xref: /linux/drivers/net/ethernet/broadcom/bnxt/bnxt.c (revision 546b928da0427b0d6c663cbb992bd7bfa9ac7971)
1 /* Broadcom NetXtreme-C/E network driver.
2  *
3  * Copyright (c) 2014-2016 Broadcom Corporation
4  * Copyright (c) 2016-2019 Broadcom Limited
5  *
6  * This program is free software; you can redistribute it and/or modify
7  * it under the terms of the GNU General Public License as published by
8  * the Free Software Foundation.
9  */
10 
11 #include <linux/module.h>
12 
13 #include <linux/stringify.h>
14 #include <linux/kernel.h>
15 #include <linux/timer.h>
16 #include <linux/errno.h>
17 #include <linux/ioport.h>
18 #include <linux/slab.h>
19 #include <linux/vmalloc.h>
20 #include <linux/interrupt.h>
21 #include <linux/pci.h>
22 #include <linux/netdevice.h>
23 #include <linux/etherdevice.h>
24 #include <linux/skbuff.h>
25 #include <linux/dma-mapping.h>
26 #include <linux/bitops.h>
27 #include <linux/io.h>
28 #include <linux/irq.h>
29 #include <linux/delay.h>
30 #include <asm/byteorder.h>
31 #include <asm/page.h>
32 #include <linux/time.h>
33 #include <linux/mii.h>
34 #include <linux/mdio.h>
35 #include <linux/if.h>
36 #include <linux/if_vlan.h>
37 #include <linux/if_bridge.h>
38 #include <linux/rtc.h>
39 #include <linux/bpf.h>
40 #include <net/gro.h>
41 #include <net/ip.h>
42 #include <net/tcp.h>
43 #include <net/udp.h>
44 #include <net/checksum.h>
45 #include <net/ip6_checksum.h>
46 #include <net/udp_tunnel.h>
47 #include <linux/workqueue.h>
48 #include <linux/prefetch.h>
49 #include <linux/cache.h>
50 #include <linux/log2.h>
51 #include <linux/bitmap.h>
52 #include <linux/cpu_rmap.h>
53 #include <linux/cpumask.h>
54 #include <net/pkt_cls.h>
55 #include <net/page_pool/helpers.h>
56 #include <linux/align.h>
57 #include <net/netdev_lock.h>
58 #include <net/netdev_queues.h>
59 #include <net/netdev_rx_queue.h>
60 #include <linux/pci-tph.h>
61 #include <linux/bnxt/hsi.h>
62 #include <linux/bnxt/ulp.h>
63 
64 #include "bnxt.h"
65 #include "bnxt_hwrm.h"
66 #include "bnxt_sriov.h"
67 #include "bnxt_ethtool.h"
68 #include "bnxt_dcb.h"
69 #include "bnxt_xdp.h"
70 #include "bnxt_ptp.h"
71 #include "bnxt_vfr.h"
72 #include "bnxt_tc.h"
73 #include "bnxt_devlink.h"
74 #include "bnxt_debugfs.h"
75 #include "bnxt_coredump.h"
76 #include "bnxt_hwmon.h"
77 #include "bnxt_gso.h"
78 #include <net/tso.h>
79 
80 #define BNXT_TX_TIMEOUT		(5 * HZ)
81 #define BNXT_DEF_MSG_ENABLE	(NETIF_MSG_DRV | NETIF_MSG_HW | \
82 				 NETIF_MSG_TX_ERR)
83 
84 MODULE_IMPORT_NS("NETDEV_INTERNAL");
85 MODULE_LICENSE("GPL");
86 MODULE_DESCRIPTION("Broadcom NetXtreme network driver");
87 
88 #define BNXT_RX_OFFSET (NET_SKB_PAD + NET_IP_ALIGN)
89 #define BNXT_RX_DMA_OFFSET NET_SKB_PAD
90 
91 #define BNXT_TX_PUSH_THRESH 164
92 
93 /* indexed by enum board_idx */
94 static const struct {
95 	char *name;
96 } board_info[] = {
97 	[BCM57301] = { "Broadcom BCM57301 NetXtreme-C 10Gb Ethernet" },
98 	[BCM57302] = { "Broadcom BCM57302 NetXtreme-C 10Gb/25Gb Ethernet" },
99 	[BCM57304] = { "Broadcom BCM57304 NetXtreme-C 10Gb/25Gb/40Gb/50Gb Ethernet" },
100 	[BCM57417_NPAR] = { "Broadcom BCM57417 NetXtreme-E Ethernet Partition" },
101 	[BCM58700] = { "Broadcom BCM58700 Nitro 1Gb/2.5Gb/10Gb Ethernet" },
102 	[BCM57311] = { "Broadcom BCM57311 NetXtreme-C 10Gb Ethernet" },
103 	[BCM57312] = { "Broadcom BCM57312 NetXtreme-C 10Gb/25Gb Ethernet" },
104 	[BCM57402] = { "Broadcom BCM57402 NetXtreme-E 10Gb Ethernet" },
105 	[BCM57404] = { "Broadcom BCM57404 NetXtreme-E 10Gb/25Gb Ethernet" },
106 	[BCM57406] = { "Broadcom BCM57406 NetXtreme-E 10GBase-T Ethernet" },
107 	[BCM57402_NPAR] = { "Broadcom BCM57402 NetXtreme-E Ethernet Partition" },
108 	[BCM57407] = { "Broadcom BCM57407 NetXtreme-E 10GBase-T Ethernet" },
109 	[BCM57412] = { "Broadcom BCM57412 NetXtreme-E 10Gb Ethernet" },
110 	[BCM57414] = { "Broadcom BCM57414 NetXtreme-E 10Gb/25Gb Ethernet" },
111 	[BCM57416] = { "Broadcom BCM57416 NetXtreme-E 10GBase-T Ethernet" },
112 	[BCM57417] = { "Broadcom BCM57417 NetXtreme-E 10GBase-T Ethernet" },
113 	[BCM57412_NPAR] = { "Broadcom BCM57412 NetXtreme-E Ethernet Partition" },
114 	[BCM57314] = { "Broadcom BCM57314 NetXtreme-C 10Gb/25Gb/40Gb/50Gb Ethernet" },
115 	[BCM57417_SFP] = { "Broadcom BCM57417 NetXtreme-E 10Gb/25Gb Ethernet" },
116 	[BCM57416_SFP] = { "Broadcom BCM57416 NetXtreme-E 10Gb Ethernet" },
117 	[BCM57404_NPAR] = { "Broadcom BCM57404 NetXtreme-E Ethernet Partition" },
118 	[BCM57406_NPAR] = { "Broadcom BCM57406 NetXtreme-E Ethernet Partition" },
119 	[BCM57407_SFP] = { "Broadcom BCM57407 NetXtreme-E 25Gb Ethernet" },
120 	[BCM57407_NPAR] = { "Broadcom BCM57407 NetXtreme-E Ethernet Partition" },
121 	[BCM57414_NPAR] = { "Broadcom BCM57414 NetXtreme-E Ethernet Partition" },
122 	[BCM57416_NPAR] = { "Broadcom BCM57416 NetXtreme-E Ethernet Partition" },
123 	[BCM57452] = { "Broadcom BCM57452 NetXtreme-E 10Gb/25Gb/40Gb/50Gb Ethernet" },
124 	[BCM57454] = { "Broadcom BCM57454 NetXtreme-E 10Gb/25Gb/40Gb/50Gb/100Gb Ethernet" },
125 	[BCM5745x_NPAR] = { "Broadcom BCM5745x NetXtreme-E Ethernet Partition" },
126 	[BCM57508] = { "Broadcom BCM57508 NetXtreme-E 10Gb/25Gb/50Gb/100Gb/200Gb Ethernet" },
127 	[BCM57504] = { "Broadcom BCM57504 NetXtreme-E 10Gb/25Gb/50Gb/100Gb/200Gb Ethernet" },
128 	[BCM57502] = { "Broadcom BCM57502 NetXtreme-E 10Gb/25Gb/50Gb Ethernet" },
129 	[BCM57608] = { "Broadcom BCM57608 NetXtreme-E 10Gb/25Gb/50Gb/100Gb/200Gb/400Gb Ethernet" },
130 	[BCM57604] = { "Broadcom BCM57604 NetXtreme-E 10Gb/25Gb/50Gb/100Gb/200Gb Ethernet" },
131 	[BCM57602] = { "Broadcom BCM57602 NetXtreme-E 10Gb/25Gb/50Gb/100Gb Ethernet" },
132 	[BCM57601] = { "Broadcom BCM57601 NetXtreme-E 10Gb/25Gb/50Gb/100Gb/200Gb/400Gb Ethernet" },
133 	[BCM57508_NPAR] = { "Broadcom BCM57508 NetXtreme-E Ethernet Partition" },
134 	[BCM57504_NPAR] = { "Broadcom BCM57504 NetXtreme-E Ethernet Partition" },
135 	[BCM57502_NPAR] = { "Broadcom BCM57502 NetXtreme-E Ethernet Partition" },
136 	[BCM58802] = { "Broadcom BCM58802 NetXtreme-S 10Gb/25Gb/40Gb/50Gb Ethernet" },
137 	[BCM58804] = { "Broadcom BCM58804 NetXtreme-S 10Gb/25Gb/40Gb/50Gb/100Gb Ethernet" },
138 	[BCM58808] = { "Broadcom BCM58808 NetXtreme-S 10Gb/25Gb/40Gb/50Gb/100Gb Ethernet" },
139 	[NETXTREME_E_VF] = { "Broadcom NetXtreme-E Ethernet Virtual Function" },
140 	[NETXTREME_C_VF] = { "Broadcom NetXtreme-C Ethernet Virtual Function" },
141 	[NETXTREME_S_VF] = { "Broadcom NetXtreme-S Ethernet Virtual Function" },
142 	[NETXTREME_C_VF_HV] = { "Broadcom NetXtreme-C Virtual Function for Hyper-V" },
143 	[NETXTREME_E_VF_HV] = { "Broadcom NetXtreme-E Virtual Function for Hyper-V" },
144 	[NETXTREME_E_P5_VF] = { "Broadcom BCM5750X NetXtreme-E Ethernet Virtual Function" },
145 	[NETXTREME_E_P5_VF_HV] = { "Broadcom BCM5750X NetXtreme-E Virtual Function for Hyper-V" },
146 	[NETXTREME_E_P7_VF] = { "Broadcom BCM5760X Virtual Function" },
147 	[NETXTREME_E_P7_VF_HV] = { "Broadcom BCM5760X Virtual Function for Hyper-V" },
148 };
149 
150 static const struct pci_device_id bnxt_pci_tbl[] = {
151 	{ PCI_VDEVICE(BROADCOM, 0x1604), .driver_data = BCM5745x_NPAR },
152 	{ PCI_VDEVICE(BROADCOM, 0x1605), .driver_data = BCM5745x_NPAR },
153 	{ PCI_VDEVICE(BROADCOM, 0x1614), .driver_data = BCM57454 },
154 	{ PCI_VDEVICE(BROADCOM, 0x16c0), .driver_data = BCM57417_NPAR },
155 	{ PCI_VDEVICE(BROADCOM, 0x16c8), .driver_data = BCM57301 },
156 	{ PCI_VDEVICE(BROADCOM, 0x16c9), .driver_data = BCM57302 },
157 	{ PCI_VDEVICE(BROADCOM, 0x16ca), .driver_data = BCM57304 },
158 	{ PCI_VDEVICE(BROADCOM, 0x16cc), .driver_data = BCM57417_NPAR },
159 	{ PCI_VDEVICE(BROADCOM, 0x16cd), .driver_data = BCM58700 },
160 	{ PCI_VDEVICE(BROADCOM, 0x16ce), .driver_data = BCM57311 },
161 	{ PCI_VDEVICE(BROADCOM, 0x16cf), .driver_data = BCM57312 },
162 	{ PCI_VDEVICE(BROADCOM, 0x16d0), .driver_data = BCM57402 },
163 	{ PCI_VDEVICE(BROADCOM, 0x16d1), .driver_data = BCM57404 },
164 	{ PCI_VDEVICE(BROADCOM, 0x16d2), .driver_data = BCM57406 },
165 	{ PCI_VDEVICE(BROADCOM, 0x16d4), .driver_data = BCM57402_NPAR },
166 	{ PCI_VDEVICE(BROADCOM, 0x16d5), .driver_data = BCM57407 },
167 	{ PCI_VDEVICE(BROADCOM, 0x16d6), .driver_data = BCM57412 },
168 	{ PCI_VDEVICE(BROADCOM, 0x16d7), .driver_data = BCM57414 },
169 	{ PCI_VDEVICE(BROADCOM, 0x16d8), .driver_data = BCM57416 },
170 	{ PCI_VDEVICE(BROADCOM, 0x16d9), .driver_data = BCM57417 },
171 	{ PCI_VDEVICE(BROADCOM, 0x16de), .driver_data = BCM57412_NPAR },
172 	{ PCI_VDEVICE(BROADCOM, 0x16df), .driver_data = BCM57314 },
173 	{ PCI_VDEVICE(BROADCOM, 0x16e2), .driver_data = BCM57417_SFP },
174 	{ PCI_VDEVICE(BROADCOM, 0x16e3), .driver_data = BCM57416_SFP },
175 	{ PCI_VDEVICE(BROADCOM, 0x16e7), .driver_data = BCM57404_NPAR },
176 	{ PCI_VDEVICE(BROADCOM, 0x16e8), .driver_data = BCM57406_NPAR },
177 	{ PCI_VDEVICE(BROADCOM, 0x16e9), .driver_data = BCM57407_SFP },
178 	{ PCI_VDEVICE(BROADCOM, 0x16ea), .driver_data = BCM57407_NPAR },
179 	{ PCI_VDEVICE(BROADCOM, 0x16eb), .driver_data = BCM57412_NPAR },
180 	{ PCI_VDEVICE(BROADCOM, 0x16ec), .driver_data = BCM57414_NPAR },
181 	{ PCI_VDEVICE(BROADCOM, 0x16ed), .driver_data = BCM57414_NPAR },
182 	{ PCI_VDEVICE(BROADCOM, 0x16ee), .driver_data = BCM57416_NPAR },
183 	{ PCI_VDEVICE(BROADCOM, 0x16ef), .driver_data = BCM57416_NPAR },
184 	{ PCI_VDEVICE(BROADCOM, 0x16f0), .driver_data = BCM58808 },
185 	{ PCI_VDEVICE(BROADCOM, 0x16f1), .driver_data = BCM57452 },
186 	{ PCI_VDEVICE(BROADCOM, 0x1750), .driver_data = BCM57508 },
187 	{ PCI_VDEVICE(BROADCOM, 0x1751), .driver_data = BCM57504 },
188 	{ PCI_VDEVICE(BROADCOM, 0x1752), .driver_data = BCM57502 },
189 	{ PCI_VDEVICE(BROADCOM, 0x1760), .driver_data = BCM57608 },
190 	{ PCI_VDEVICE(BROADCOM, 0x1761), .driver_data = BCM57604 },
191 	{ PCI_VDEVICE(BROADCOM, 0x1762), .driver_data = BCM57602 },
192 	{ PCI_VDEVICE(BROADCOM, 0x1763), .driver_data = BCM57601 },
193 	{ PCI_VDEVICE(BROADCOM, 0x1800), .driver_data = BCM57502_NPAR },
194 	{ PCI_VDEVICE(BROADCOM, 0x1801), .driver_data = BCM57504_NPAR },
195 	{ PCI_VDEVICE(BROADCOM, 0x1802), .driver_data = BCM57508_NPAR },
196 	{ PCI_VDEVICE(BROADCOM, 0x1803), .driver_data = BCM57502_NPAR },
197 	{ PCI_VDEVICE(BROADCOM, 0x1804), .driver_data = BCM57504_NPAR },
198 	{ PCI_VDEVICE(BROADCOM, 0x1805), .driver_data = BCM57508_NPAR },
199 	{ PCI_VDEVICE(BROADCOM, 0xd802), .driver_data = BCM58802 },
200 	{ PCI_VDEVICE(BROADCOM, 0xd804), .driver_data = BCM58804 },
201 #ifdef CONFIG_BNXT_SRIOV
202 	{ PCI_VDEVICE(BROADCOM, 0x1606), .driver_data = NETXTREME_E_VF },
203 	{ PCI_VDEVICE(BROADCOM, 0x1607), .driver_data = NETXTREME_E_VF_HV },
204 	{ PCI_VDEVICE(BROADCOM, 0x1608), .driver_data = NETXTREME_E_VF_HV },
205 	{ PCI_VDEVICE(BROADCOM, 0x1609), .driver_data = NETXTREME_E_VF },
206 	{ PCI_VDEVICE(BROADCOM, 0x16bd), .driver_data = NETXTREME_E_VF_HV },
207 	{ PCI_VDEVICE(BROADCOM, 0x16c1), .driver_data = NETXTREME_E_VF },
208 	{ PCI_VDEVICE(BROADCOM, 0x16c2), .driver_data = NETXTREME_C_VF_HV },
209 	{ PCI_VDEVICE(BROADCOM, 0x16c3), .driver_data = NETXTREME_C_VF_HV },
210 	{ PCI_VDEVICE(BROADCOM, 0x16c4), .driver_data = NETXTREME_E_VF_HV },
211 	{ PCI_VDEVICE(BROADCOM, 0x16c5), .driver_data = NETXTREME_E_VF_HV },
212 	{ PCI_VDEVICE(BROADCOM, 0x16cb), .driver_data = NETXTREME_C_VF },
213 	{ PCI_VDEVICE(BROADCOM, 0x16d3), .driver_data = NETXTREME_E_VF },
214 	{ PCI_VDEVICE(BROADCOM, 0x16dc), .driver_data = NETXTREME_E_VF },
215 	{ PCI_VDEVICE(BROADCOM, 0x16e1), .driver_data = NETXTREME_C_VF },
216 	{ PCI_VDEVICE(BROADCOM, 0x16e5), .driver_data = NETXTREME_C_VF },
217 	{ PCI_VDEVICE(BROADCOM, 0x16e6), .driver_data = NETXTREME_C_VF_HV },
218 	{ PCI_VDEVICE(BROADCOM, 0x1806), .driver_data = NETXTREME_E_P5_VF },
219 	{ PCI_VDEVICE(BROADCOM, 0x1807), .driver_data = NETXTREME_E_P5_VF },
220 	{ PCI_VDEVICE(BROADCOM, 0x1808), .driver_data = NETXTREME_E_P5_VF_HV },
221 	{ PCI_VDEVICE(BROADCOM, 0x1809), .driver_data = NETXTREME_E_P5_VF_HV },
222 	{ PCI_VDEVICE(BROADCOM, 0x1819), .driver_data = NETXTREME_E_P7_VF },
223 	{ PCI_VDEVICE(BROADCOM, 0x181b), .driver_data = NETXTREME_E_P7_VF_HV },
224 	{ PCI_VDEVICE(BROADCOM, 0xd800), .driver_data = NETXTREME_S_VF },
225 #endif
226 	{ 0 }
227 };
228 
229 MODULE_DEVICE_TABLE(pci, bnxt_pci_tbl);
230 
231 static const u16 bnxt_vf_req_snif[] = {
232 	HWRM_FUNC_CFG,
233 	HWRM_FUNC_VF_CFG,
234 	HWRM_PORT_PHY_QCFG,
235 	HWRM_CFA_L2_FILTER_ALLOC,
236 };
237 
238 static const u16 bnxt_async_events_arr[] = {
239 	ASYNC_EVENT_CMPL_EVENT_ID_LINK_STATUS_CHANGE,
240 	ASYNC_EVENT_CMPL_EVENT_ID_LINK_SPEED_CHANGE,
241 	ASYNC_EVENT_CMPL_EVENT_ID_PF_DRVR_UNLOAD,
242 	ASYNC_EVENT_CMPL_EVENT_ID_PORT_CONN_NOT_ALLOWED,
243 	ASYNC_EVENT_CMPL_EVENT_ID_VF_CFG_CHANGE,
244 	ASYNC_EVENT_CMPL_EVENT_ID_LINK_SPEED_CFG_CHANGE,
245 	ASYNC_EVENT_CMPL_EVENT_ID_PORT_PHY_CFG_CHANGE,
246 	ASYNC_EVENT_CMPL_EVENT_ID_RESET_NOTIFY,
247 	ASYNC_EVENT_CMPL_EVENT_ID_ERROR_RECOVERY,
248 	ASYNC_EVENT_CMPL_EVENT_ID_DEBUG_NOTIFICATION,
249 	ASYNC_EVENT_CMPL_EVENT_ID_DEFERRED_RESPONSE,
250 	ASYNC_EVENT_CMPL_EVENT_ID_RING_MONITOR_MSG,
251 	ASYNC_EVENT_CMPL_EVENT_ID_ECHO_REQUEST,
252 	ASYNC_EVENT_CMPL_EVENT_ID_PPS_TIMESTAMP,
253 	ASYNC_EVENT_CMPL_EVENT_ID_ERROR_REPORT,
254 	ASYNC_EVENT_CMPL_EVENT_ID_PHC_UPDATE,
255 	ASYNC_EVENT_CMPL_EVENT_ID_DBG_BUF_PRODUCER,
256 };
257 
258 const u16 bnxt_bstore_to_trace[] = {
259 	[BNXT_CTX_SRT]		= DBG_LOG_BUFFER_FLUSH_REQ_TYPE_SRT_TRACE,
260 	[BNXT_CTX_SRT2]		= DBG_LOG_BUFFER_FLUSH_REQ_TYPE_SRT2_TRACE,
261 	[BNXT_CTX_CRT]		= DBG_LOG_BUFFER_FLUSH_REQ_TYPE_CRT_TRACE,
262 	[BNXT_CTX_CRT2]		= DBG_LOG_BUFFER_FLUSH_REQ_TYPE_CRT2_TRACE,
263 	[BNXT_CTX_RIGP0]	= DBG_LOG_BUFFER_FLUSH_REQ_TYPE_RIGP0_TRACE,
264 	[BNXT_CTX_L2HWRM]	= DBG_LOG_BUFFER_FLUSH_REQ_TYPE_L2_HWRM_TRACE,
265 	[BNXT_CTX_REHWRM]	= DBG_LOG_BUFFER_FLUSH_REQ_TYPE_ROCE_HWRM_TRACE,
266 	[BNXT_CTX_CA0]		= DBG_LOG_BUFFER_FLUSH_REQ_TYPE_CA0_TRACE,
267 	[BNXT_CTX_CA1]		= DBG_LOG_BUFFER_FLUSH_REQ_TYPE_CA1_TRACE,
268 	[BNXT_CTX_CA2]		= DBG_LOG_BUFFER_FLUSH_REQ_TYPE_CA2_TRACE,
269 	[BNXT_CTX_RIGP1]	= DBG_LOG_BUFFER_FLUSH_REQ_TYPE_RIGP1_TRACE,
270 	[BNXT_CTX_KONG]		= DBG_LOG_BUFFER_FLUSH_REQ_TYPE_AFM_KONG_HWRM_TRACE,
271 	[BNXT_CTX_QPC]		= DBG_LOG_BUFFER_FLUSH_REQ_TYPE_ERR_QPC_TRACE,
272 };
273 
274 static struct workqueue_struct *bnxt_pf_wq;
275 
276 #define BNXT_IPV6_MASK_ALL {{{ 0xff, 0xff, 0xff, 0xff, 0xff, 0xff, 0xff, 0xff, \
277 			       0xff, 0xff, 0xff, 0xff, 0xff, 0xff, 0xff, 0xff }}}
278 #define BNXT_IPV6_MASK_NONE {{{ 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0 }}}
279 
280 const struct bnxt_flow_masks BNXT_FLOW_MASK_NONE = {
281 	.ports = {
282 		.src = 0,
283 		.dst = 0,
284 	},
285 	.addrs = {
286 		.v6addrs = {
287 			.src = BNXT_IPV6_MASK_NONE,
288 			.dst = BNXT_IPV6_MASK_NONE,
289 		},
290 	},
291 };
292 
293 const struct bnxt_flow_masks BNXT_FLOW_IPV6_MASK_ALL = {
294 	.ports = {
295 		.src = cpu_to_be16(0xffff),
296 		.dst = cpu_to_be16(0xffff),
297 	},
298 	.addrs = {
299 		.v6addrs = {
300 			.src = BNXT_IPV6_MASK_ALL,
301 			.dst = BNXT_IPV6_MASK_ALL,
302 		},
303 	},
304 };
305 
306 const struct bnxt_flow_masks BNXT_FLOW_IPV4_MASK_ALL = {
307 	.ports = {
308 		.src = cpu_to_be16(0xffff),
309 		.dst = cpu_to_be16(0xffff),
310 	},
311 	.addrs = {
312 		.v4addrs = {
313 			.src = cpu_to_be32(0xffffffff),
314 			.dst = cpu_to_be32(0xffffffff),
315 		},
316 	},
317 };
318 
bnxt_vf_pciid(enum board_idx idx)319 static bool bnxt_vf_pciid(enum board_idx idx)
320 {
321 	return (idx == NETXTREME_C_VF || idx == NETXTREME_E_VF ||
322 		idx == NETXTREME_S_VF || idx == NETXTREME_C_VF_HV ||
323 		idx == NETXTREME_E_VF_HV || idx == NETXTREME_E_P5_VF ||
324 		idx == NETXTREME_E_P5_VF_HV || idx == NETXTREME_E_P7_VF ||
325 		idx == NETXTREME_E_P7_VF_HV);
326 }
327 
328 #define DB_CP_REARM_FLAGS	(DB_KEY_CP | DB_IDX_VALID)
329 #define DB_CP_FLAGS		(DB_KEY_CP | DB_IDX_VALID | DB_IRQ_DIS)
330 
331 #define BNXT_DB_CQ(db, idx)						\
332 	writel(DB_CP_FLAGS | DB_RING_IDX(db, idx), (db)->doorbell)
333 
334 #define BNXT_DB_NQ_P5(db, idx)						\
335 	bnxt_writeq(bp, (db)->db_key64 | DBR_TYPE_NQ | DB_RING_IDX(db, idx),\
336 		    (db)->doorbell)
337 
338 #define BNXT_DB_NQ_P7(db, idx)						\
339 	bnxt_writeq(bp, (db)->db_key64 | DBR_TYPE_NQ_MASK |		\
340 		    DB_RING_IDX(db, idx), (db)->doorbell)
341 
342 #define BNXT_DB_CQ_ARM(db, idx)						\
343 	writel(DB_CP_REARM_FLAGS | DB_RING_IDX(db, idx), (db)->doorbell)
344 
345 #define BNXT_DB_NQ_ARM_P5(db, idx)					\
346 	bnxt_writeq(bp, (db)->db_key64 | DBR_TYPE_NQ_ARM |		\
347 		    DB_RING_IDX(db, idx), (db)->doorbell)
348 
bnxt_db_nq(struct bnxt * bp,struct bnxt_db_info * db,u32 idx)349 static void bnxt_db_nq(struct bnxt *bp, struct bnxt_db_info *db, u32 idx)
350 {
351 	if (bp->flags & BNXT_FLAG_CHIP_P7)
352 		BNXT_DB_NQ_P7(db, idx);
353 	else if (bp->flags & BNXT_FLAG_CHIP_P5_PLUS)
354 		BNXT_DB_NQ_P5(db, idx);
355 	else
356 		BNXT_DB_CQ(db, idx);
357 }
358 
bnxt_db_nq_arm(struct bnxt * bp,struct bnxt_db_info * db,u32 idx)359 static void bnxt_db_nq_arm(struct bnxt *bp, struct bnxt_db_info *db, u32 idx)
360 {
361 	if (bp->flags & BNXT_FLAG_CHIP_P5_PLUS)
362 		BNXT_DB_NQ_ARM_P5(db, idx);
363 	else
364 		BNXT_DB_CQ_ARM(db, idx);
365 }
366 
bnxt_db_cq(struct bnxt * bp,struct bnxt_db_info * db,u32 idx)367 static void bnxt_db_cq(struct bnxt *bp, struct bnxt_db_info *db, u32 idx)
368 {
369 	if (bp->flags & BNXT_FLAG_CHIP_P5_PLUS)
370 		bnxt_writeq(bp, db->db_key64 | DBR_TYPE_CQ_ARMALL |
371 			    DB_RING_IDX(db, idx), db->doorbell);
372 	else
373 		BNXT_DB_CQ(db, idx);
374 }
375 
bnxt_queue_fw_reset_work(struct bnxt * bp,unsigned long delay)376 static void bnxt_queue_fw_reset_work(struct bnxt *bp, unsigned long delay)
377 {
378 	if (!(test_bit(BNXT_STATE_IN_FW_RESET, &bp->state)))
379 		return;
380 
381 	if (BNXT_PF(bp))
382 		queue_delayed_work(bnxt_pf_wq, &bp->fw_reset_task, delay);
383 	else
384 		schedule_delayed_work(&bp->fw_reset_task, delay);
385 }
386 
__bnxt_queue_sp_work(struct bnxt * bp)387 static void __bnxt_queue_sp_work(struct bnxt *bp)
388 {
389 	if (BNXT_PF(bp))
390 		queue_work(bnxt_pf_wq, &bp->sp_task);
391 	else
392 		schedule_work(&bp->sp_task);
393 }
394 
bnxt_queue_sp_work(struct bnxt * bp,unsigned int event)395 static void bnxt_queue_sp_work(struct bnxt *bp, unsigned int event)
396 {
397 	set_bit(event, &bp->sp_event);
398 	__bnxt_queue_sp_work(bp);
399 }
400 
bnxt_sched_reset_rxr(struct bnxt * bp,struct bnxt_rx_ring_info * rxr)401 static void bnxt_sched_reset_rxr(struct bnxt *bp, struct bnxt_rx_ring_info *rxr)
402 {
403 	if (!rxr->bnapi->in_reset) {
404 		rxr->bnapi->in_reset = true;
405 		if (bp->flags & BNXT_FLAG_CHIP_P5_PLUS)
406 			set_bit(BNXT_RESET_TASK_SP_EVENT, &bp->sp_event);
407 		else
408 			set_bit(BNXT_RST_RING_SP_EVENT, &bp->sp_event);
409 		__bnxt_queue_sp_work(bp);
410 	}
411 	rxr->rx_next_cons = 0xffff;
412 }
413 
bnxt_sched_reset_txr(struct bnxt * bp,struct bnxt_tx_ring_info * txr,u16 curr)414 void bnxt_sched_reset_txr(struct bnxt *bp, struct bnxt_tx_ring_info *txr,
415 			  u16 curr)
416 {
417 	struct bnxt_napi *bnapi = txr->bnapi;
418 
419 	if (bnapi->tx_fault)
420 		return;
421 
422 	netdev_err(bp->dev, "Invalid Tx completion (ring:%d tx_hw_cons:%u cons:%u prod:%u curr:%u)",
423 		   txr->txq_index, txr->tx_hw_cons,
424 		   txr->tx_cons, txr->tx_prod, curr);
425 	WARN_ON_ONCE(1);
426 	bnapi->tx_fault = 1;
427 	bnxt_queue_sp_work(bp, BNXT_RESET_TASK_SP_EVENT);
428 }
429 
430 const u16 bnxt_lhint_arr[] = {
431 	TX_BD_FLAGS_LHINT_512_AND_SMALLER,
432 	TX_BD_FLAGS_LHINT_512_TO_1023,
433 	TX_BD_FLAGS_LHINT_1024_TO_2047,
434 	TX_BD_FLAGS_LHINT_1024_TO_2047,
435 	TX_BD_FLAGS_LHINT_2048_AND_LARGER,
436 	TX_BD_FLAGS_LHINT_2048_AND_LARGER,
437 	TX_BD_FLAGS_LHINT_2048_AND_LARGER,
438 	TX_BD_FLAGS_LHINT_2048_AND_LARGER,
439 	TX_BD_FLAGS_LHINT_2048_AND_LARGER,
440 	TX_BD_FLAGS_LHINT_2048_AND_LARGER,
441 	TX_BD_FLAGS_LHINT_2048_AND_LARGER,
442 	TX_BD_FLAGS_LHINT_2048_AND_LARGER,
443 	TX_BD_FLAGS_LHINT_2048_AND_LARGER,
444 	TX_BD_FLAGS_LHINT_2048_AND_LARGER,
445 	TX_BD_FLAGS_LHINT_2048_AND_LARGER,
446 	TX_BD_FLAGS_LHINT_2048_AND_LARGER,
447 	TX_BD_FLAGS_LHINT_2048_AND_LARGER,
448 	TX_BD_FLAGS_LHINT_2048_AND_LARGER,
449 	TX_BD_FLAGS_LHINT_2048_AND_LARGER,
450 };
451 
bnxt_xmit_get_cfa_action(struct sk_buff * skb)452 u16 bnxt_xmit_get_cfa_action(struct sk_buff *skb)
453 {
454 	struct metadata_dst *md_dst = skb_metadata_dst(skb);
455 
456 	if (!md_dst || md_dst->type != METADATA_HW_PORT_MUX)
457 		return 0;
458 
459 	return md_dst->u.port_info.port_id;
460 }
461 
bnxt_txr_db_kick(struct bnxt * bp,struct bnxt_tx_ring_info * txr,u16 prod)462 static void bnxt_txr_db_kick(struct bnxt *bp, struct bnxt_tx_ring_info *txr,
463 			     u16 prod)
464 {
465 	/* If the most recent BD has its completion suppressed, unset the bit
466 	 * so that a completion is generated, otherwise nothing is left to
467 	 * clean the ring and wake the queue.
468 	 */
469 	if (txr->kick_txbd0) {
470 		txr->kick_txbd0->tx_bd_len_flags_type &=
471 			cpu_to_le32(~TX_BD_FLAGS_NO_CMPL);
472 		txr->kick_txbd0 = NULL;
473 	}
474 
475 	/* Sync BD data before updating doorbell */
476 	wmb();
477 	bnxt_db_write(bp, &txr->tx_db, prod);
478 	txr->kick_pending = 0;
479 }
480 
bnxt_start_xmit(struct sk_buff * skb,struct net_device * dev)481 static netdev_tx_t bnxt_start_xmit(struct sk_buff *skb, struct net_device *dev)
482 {
483 	struct bnxt *bp = netdev_priv(dev);
484 	struct tx_bd *txbd, *txbd0;
485 	struct tx_bd_ext *txbd1;
486 	struct netdev_queue *txq;
487 	int i;
488 	dma_addr_t mapping;
489 	unsigned int length, pad = 0;
490 	u32 len, free_size, vlan_tag_flags, cfa_action, flags;
491 	struct bnxt_ptp_cfg *ptp = bp->ptp_cfg;
492 	struct pci_dev *pdev = bp->pdev;
493 	u16 prod, last_frag, txts_prod;
494 	struct bnxt_tx_ring_info *txr;
495 	struct bnxt_sw_tx_bd *tx_buf;
496 	__le32 lflags = 0;
497 	skb_frag_t *frag;
498 
499 	i = skb_get_queue_mapping(skb);
500 	if (unlikely(i >= bp->tx_nr_rings)) {
501 		dev_kfree_skb_any(skb);
502 		dev_core_stats_tx_dropped_inc(dev);
503 		return NETDEV_TX_OK;
504 	}
505 
506 	txq = netdev_get_tx_queue(dev, i);
507 	txr = &bp->tx_ring[bp->tx_ring_map[i]];
508 	prod = txr->tx_prod;
509 
510 #if (MAX_SKB_FRAGS > TX_MAX_FRAGS)
511 	if (skb_shinfo(skb)->nr_frags > TX_MAX_FRAGS) {
512 		netdev_warn_once(dev, "SKB has too many (%d) fragments, max supported is %d.  SKB will be linearized.\n",
513 				 skb_shinfo(skb)->nr_frags, TX_MAX_FRAGS);
514 		if (skb_linearize(skb))
515 			goto tx_free;
516 	}
517 #endif
518 	if (skb_is_gso(skb) &&
519 	    (skb_shinfo(skb)->gso_type & SKB_GSO_UDP_L4) &&
520 	    !(bp->flags & BNXT_FLAG_UDP_GSO_CAP)) {
521 		int rc = bnxt_sw_udp_gso_xmit(bp, txr, txq, skb);
522 
523 		/* if SW USO queued a packet, the doorbell will be written
524 		 * below and there is no reason to track the last BD with
525 		 * suppressed completions
526 		 */
527 		if (rc > 0)
528 			txr->kick_txbd0 = NULL;
529 
530 		/* if a packet was queued by SW USO or a doorbell was pending
531 		 * from a previous xmit that was deferred, write the doorbell.
532 		 */
533 		if (rc > 0 || txr->kick_pending)
534 			bnxt_txr_db_kick(bp, txr, txr->tx_prod);
535 
536 		return rc < 0 ? NETDEV_TX_BUSY : NETDEV_TX_OK;
537 	}
538 
539 	free_size = bnxt_tx_avail(bp, txr);
540 	if (unlikely(free_size < skb_shinfo(skb)->nr_frags + 2)) {
541 		/* We must have raced with NAPI cleanup */
542 		if (net_ratelimit() && txr->kick_pending)
543 			netif_warn(bp, tx_err, dev,
544 				   "bnxt: ring busy w/ flush pending!\n");
545 		if (!netif_txq_try_stop(txq, bnxt_tx_avail(bp, txr),
546 					bp->tx_wake_thresh))
547 			return NETDEV_TX_BUSY;
548 	}
549 
550 	length = skb->len;
551 	len = skb_headlen(skb);
552 	last_frag = skb_shinfo(skb)->nr_frags;
553 
554 	txbd = &txr->tx_desc_ring[TX_RING(bp, prod)][TX_IDX(prod)];
555 
556 	tx_buf = &txr->tx_buf_ring[RING_TX(bp, prod)];
557 	tx_buf->skb = skb;
558 	tx_buf->nr_frags = last_frag;
559 
560 	vlan_tag_flags = 0;
561 	cfa_action = bnxt_xmit_get_cfa_action(skb);
562 	if (skb_vlan_tag_present(skb)) {
563 		vlan_tag_flags = TX_BD_CFA_META_KEY_VLAN |
564 				 skb_vlan_tag_get(skb);
565 		/* Currently supports 8021Q, 8021AD vlan offloads
566 		 * QINQ1, QINQ2, QINQ3 vlan headers are deprecated
567 		 */
568 		if (skb->vlan_proto == htons(ETH_P_8021Q))
569 			vlan_tag_flags |= 1 << TX_BD_CFA_META_TPID_SHIFT;
570 	}
571 
572 	if (unlikely(skb_shinfo(skb)->tx_flags & SKBTX_HW_TSTAMP) && ptp &&
573 	    ptp->tx_tstamp_en) {
574 		if (bp->fw_cap & BNXT_FW_CAP_TX_TS_CMP) {
575 			lflags |= cpu_to_le32(TX_BD_FLAGS_STAMP);
576 			tx_buf->is_ts_pkt = 1;
577 			skb_shinfo(skb)->tx_flags |= SKBTX_IN_PROGRESS;
578 		} else if (!skb_is_gso(skb)) {
579 			u16 seq_id, hdr_off;
580 
581 			if (!bnxt_ptp_parse(skb, &seq_id, &hdr_off) &&
582 			    !bnxt_ptp_get_txts_prod(ptp, &txts_prod)) {
583 				if (vlan_tag_flags)
584 					hdr_off += VLAN_HLEN;
585 				lflags |= cpu_to_le32(TX_BD_FLAGS_STAMP);
586 				tx_buf->is_ts_pkt = 1;
587 				skb_shinfo(skb)->tx_flags |= SKBTX_IN_PROGRESS;
588 
589 				ptp->txts_req[txts_prod].tx_seqid = seq_id;
590 				ptp->txts_req[txts_prod].tx_hdr_off = hdr_off;
591 				tx_buf->txts_prod = txts_prod;
592 			}
593 		}
594 	}
595 	if (unlikely(skb->no_fcs))
596 		lflags |= cpu_to_le32(TX_BD_FLAGS_NO_CRC);
597 
598 	if (free_size == bp->tx_ring_size && length <= bp->tx_push_thresh &&
599 	    skb_frags_readable(skb) && !lflags) {
600 		struct tx_push_buffer *tx_push_buf = txr->tx_push;
601 		struct tx_push_bd *tx_push = &tx_push_buf->push_bd;
602 		struct tx_bd_ext *tx_push1 = &tx_push->txbd2;
603 		void __iomem *db = txr->tx_db.doorbell;
604 		void *pdata = tx_push_buf->data;
605 		u64 *end;
606 		int j, push_len;
607 
608 		/* Set COAL_NOW to be ready quickly for the next push */
609 		tx_push->tx_bd_len_flags_type =
610 			cpu_to_le32((length << TX_BD_LEN_SHIFT) |
611 					TX_BD_TYPE_LONG_TX_BD |
612 					TX_BD_FLAGS_LHINT_512_AND_SMALLER |
613 					TX_BD_FLAGS_COAL_NOW |
614 					TX_BD_FLAGS_PACKET_END |
615 					TX_BD_CNT(2));
616 
617 		if (skb->ip_summed == CHECKSUM_PARTIAL)
618 			tx_push1->tx_bd_hsize_lflags =
619 					cpu_to_le32(TX_BD_FLAGS_TCP_UDP_CHKSUM);
620 		else
621 			tx_push1->tx_bd_hsize_lflags = 0;
622 
623 		tx_push1->tx_bd_cfa_meta = cpu_to_le32(vlan_tag_flags);
624 		tx_push1->tx_bd_cfa_action =
625 			cpu_to_le32(cfa_action << TX_BD_CFA_ACTION_SHIFT);
626 
627 		end = pdata + length;
628 		end = PTR_ALIGN(end, 8) - 1;
629 		*end = 0;
630 
631 		skb_copy_from_linear_data(skb, pdata, len);
632 		pdata += len;
633 		for (j = 0; j < last_frag; j++) {
634 			void *fptr;
635 
636 			frag = &skb_shinfo(skb)->frags[j];
637 			fptr = skb_frag_address_safe(frag);
638 			if (!fptr)
639 				goto normal_tx;
640 
641 			memcpy(pdata, fptr, skb_frag_size(frag));
642 			pdata += skb_frag_size(frag);
643 		}
644 
645 		txbd->tx_bd_len_flags_type = tx_push->tx_bd_len_flags_type;
646 		txbd->tx_bd_haddr = txr->data_mapping;
647 		txbd->tx_bd_opaque = SET_TX_OPAQUE(bp, txr, prod, 2);
648 		prod = NEXT_TX(prod);
649 		tx_push->tx_bd_opaque = txbd->tx_bd_opaque;
650 		txbd = &txr->tx_desc_ring[TX_RING(bp, prod)][TX_IDX(prod)];
651 		memcpy(txbd, tx_push1, sizeof(*txbd));
652 		prod = NEXT_TX(prod);
653 		tx_push->doorbell =
654 			cpu_to_le32(DB_KEY_TX_PUSH | DB_LONG_TX_PUSH |
655 				    DB_RING_IDX(&txr->tx_db, prod));
656 		WRITE_ONCE(txr->tx_prod, prod);
657 
658 		tx_buf->is_push = 1;
659 		netdev_tx_sent_queue(txq, skb->len);
660 		wmb();	/* Sync is_push and byte queue before pushing data */
661 
662 		push_len = (length + sizeof(*tx_push) + 7) / 8;
663 		if (push_len > 16) {
664 			__iowrite64_copy(db, tx_push_buf, 16);
665 			__iowrite32_copy(db + 4, tx_push_buf + 1,
666 					 (push_len - 16) << 1);
667 		} else {
668 			__iowrite64_copy(db, tx_push_buf, push_len);
669 		}
670 
671 		goto tx_done;
672 	}
673 
674 normal_tx:
675 	if (length < BNXT_MIN_PKT_SIZE) {
676 		pad = BNXT_MIN_PKT_SIZE - length;
677 		if (skb_pad(skb, pad))
678 			/* SKB already freed. */
679 			goto tx_kick_pending;
680 		length = BNXT_MIN_PKT_SIZE;
681 	}
682 
683 	mapping = dma_map_single(&pdev->dev, skb->data, len, DMA_TO_DEVICE);
684 
685 	if (unlikely(dma_mapping_error(&pdev->dev, mapping)))
686 		goto tx_free;
687 
688 	dma_unmap_addr_set(tx_buf, mapping, mapping);
689 	dma_unmap_len_set(tx_buf, len, len);
690 	flags = (len << TX_BD_LEN_SHIFT) | TX_BD_TYPE_LONG_TX_BD |
691 		TX_BD_CNT(last_frag + 2);
692 
693 	txbd->tx_bd_haddr = cpu_to_le64(mapping);
694 	txbd->tx_bd_opaque = SET_TX_OPAQUE(bp, txr, prod, 2 + last_frag);
695 
696 	prod = NEXT_TX(prod);
697 	txbd1 = bnxt_init_ext_bd(bp, txr, prod, lflags, vlan_tag_flags,
698 				 cfa_action);
699 
700 	if (skb_is_gso(skb)) {
701 		bool udp_gso = !!(skb_shinfo(skb)->gso_type & SKB_GSO_UDP_L4);
702 		u32 hdr_len;
703 
704 		if (skb->encapsulation) {
705 			if (udp_gso)
706 				hdr_len = skb_inner_transport_offset(skb) +
707 					  sizeof(struct udphdr);
708 			else
709 				hdr_len = skb_inner_tcp_all_headers(skb);
710 		} else if (udp_gso) {
711 			hdr_len = skb_transport_offset(skb) +
712 				  sizeof(struct udphdr);
713 		} else {
714 			hdr_len = skb_tcp_all_headers(skb);
715 		}
716 
717 		txbd1->tx_bd_hsize_lflags |= cpu_to_le32(TX_BD_FLAGS_LSO |
718 					TX_BD_FLAGS_T_IPID |
719 					(hdr_len << (TX_BD_HSIZE_SHIFT - 1)));
720 		length = skb_shinfo(skb)->gso_size;
721 		txbd1->tx_bd_mss = cpu_to_le32(length);
722 		length += hdr_len;
723 	} else if (skb->ip_summed == CHECKSUM_PARTIAL) {
724 		txbd1->tx_bd_hsize_lflags |=
725 			cpu_to_le32(TX_BD_FLAGS_TCP_UDP_CHKSUM);
726 	}
727 
728 	length >>= 9;
729 	if (unlikely(length >= ARRAY_SIZE(bnxt_lhint_arr))) {
730 		dev_warn_ratelimited(&pdev->dev, "Dropped oversize %d bytes TX packet.\n",
731 				     skb->len);
732 		i = 0;
733 		goto tx_dma_error;
734 	}
735 	flags |= bnxt_lhint_arr[length];
736 	txbd->tx_bd_len_flags_type = cpu_to_le32(flags);
737 
738 	txbd0 = txbd;
739 	for (i = 0; i < last_frag; i++) {
740 		frag = &skb_shinfo(skb)->frags[i];
741 		prod = NEXT_TX(prod);
742 		txbd = &txr->tx_desc_ring[TX_RING(bp, prod)][TX_IDX(prod)];
743 
744 		len = skb_frag_size(frag);
745 		mapping = skb_frag_dma_map(&pdev->dev, frag, 0, len,
746 					   DMA_TO_DEVICE);
747 
748 		if (unlikely(dma_mapping_error(&pdev->dev, mapping)))
749 			goto tx_dma_error;
750 
751 		tx_buf = &txr->tx_buf_ring[RING_TX(bp, prod)];
752 		netmem_dma_unmap_addr_set(skb_frag_netmem(frag), tx_buf,
753 					  mapping, mapping);
754 		dma_unmap_len_set(tx_buf, len, len);
755 
756 		txbd->tx_bd_haddr = cpu_to_le64(mapping);
757 
758 		flags = len << TX_BD_LEN_SHIFT;
759 		txbd->tx_bd_len_flags_type = cpu_to_le32(flags);
760 	}
761 
762 	flags &= ~TX_BD_LEN;
763 	txbd->tx_bd_len_flags_type =
764 		cpu_to_le32(((len + pad) << TX_BD_LEN_SHIFT) | flags |
765 			    TX_BD_FLAGS_PACKET_END);
766 
767 	netdev_tx_sent_queue(txq, skb->len);
768 
769 	skb_tx_timestamp(skb);
770 
771 	prod = NEXT_TX(prod);
772 	WRITE_ONCE(txr->tx_prod, prod);
773 
774 	txr->kick_txbd0 = NULL;
775 	if (!netdev_xmit_more() || netif_xmit_stopped(txq)) {
776 		bnxt_txr_db_kick(bp, txr, prod);
777 	} else {
778 		if (free_size >= bp->tx_wake_thresh) {
779 			txbd0->tx_bd_len_flags_type |=
780 				cpu_to_le32(TX_BD_FLAGS_NO_CMPL);
781 			txr->kick_txbd0 = txbd0;
782 		}
783 		txr->kick_pending = 1;
784 	}
785 
786 tx_done:
787 
788 	if (unlikely(bnxt_tx_avail(bp, txr) <= MAX_SKB_FRAGS + 1)) {
789 		if (txr->kick_pending)
790 			bnxt_txr_db_kick(bp, txr, prod);
791 
792 		netif_txq_try_stop(txq, bnxt_tx_avail(bp, txr),
793 				   bp->tx_wake_thresh);
794 	}
795 	return NETDEV_TX_OK;
796 
797 tx_dma_error:
798 	last_frag = i;
799 
800 	/* start back at beginning and unmap skb */
801 	prod = txr->tx_prod;
802 	tx_buf = &txr->tx_buf_ring[RING_TX(bp, prod)];
803 	dma_unmap_single(&pdev->dev, dma_unmap_addr(tx_buf, mapping),
804 			 skb_headlen(skb), DMA_TO_DEVICE);
805 	prod = NEXT_TX(prod);
806 
807 	/* unmap remaining mapped pages */
808 	for (i = 0; i < last_frag; i++) {
809 		prod = NEXT_TX(prod);
810 		tx_buf = &txr->tx_buf_ring[RING_TX(bp, prod)];
811 		frag = &skb_shinfo(skb)->frags[i];
812 		netmem_dma_unmap_page_attrs(&pdev->dev,
813 					    dma_unmap_addr(tx_buf, mapping),
814 					    skb_frag_size(frag),
815 					    DMA_TO_DEVICE, 0);
816 	}
817 
818 tx_free:
819 	dev_kfree_skb_any(skb);
820 tx_kick_pending:
821 	if (BNXT_TX_PTP_IS_SET(lflags)) {
822 		txr->tx_buf_ring[RING_TX(bp, txr->tx_prod)].is_ts_pkt = 0;
823 		atomic64_inc(&bp->ptp_cfg->stats.ts_err);
824 		if (!(bp->fw_cap & BNXT_FW_CAP_TX_TS_CMP))
825 			/* set SKB to err so PTP worker will clean up */
826 			ptp->txts_req[txts_prod].tx_skb = ERR_PTR(-EIO);
827 	}
828 	if (txr->kick_pending)
829 		bnxt_txr_db_kick(bp, txr, txr->tx_prod);
830 	txr->tx_buf_ring[RING_TX(bp, txr->tx_prod)].skb = NULL;
831 	dev_core_stats_tx_dropped_inc(dev);
832 	return NETDEV_TX_OK;
833 }
834 
835 /* Returns true if some remaining TX packets not processed. */
__bnxt_tx_int(struct bnxt * bp,struct bnxt_tx_ring_info * txr,int budget)836 static bool __bnxt_tx_int(struct bnxt *bp, struct bnxt_tx_ring_info *txr,
837 			  int budget)
838 {
839 	struct netdev_queue *txq = netdev_get_tx_queue(bp->dev, txr->txq_index);
840 	struct pci_dev *pdev = bp->pdev;
841 	u16 hw_cons = txr->tx_hw_cons;
842 	unsigned int tx_bytes = 0;
843 	u16 cons = txr->tx_cons;
844 	unsigned int dma_len;
845 	dma_addr_t dma_addr;
846 	int tx_pkts = 0;
847 	bool rc = false;
848 
849 	while (RING_TX(bp, cons) != hw_cons) {
850 		struct bnxt_sw_tx_bd *tx_buf, *head_buf;
851 		struct sk_buff *skb;
852 		bool is_ts_pkt;
853 		int j, last;
854 
855 		tx_buf = &txr->tx_buf_ring[RING_TX(bp, cons)];
856 		head_buf = tx_buf;
857 		skb = tx_buf->skb;
858 
859 		if (unlikely(!skb)) {
860 			bnxt_sched_reset_txr(bp, txr, cons);
861 			return rc;
862 		}
863 
864 		is_ts_pkt = tx_buf->is_ts_pkt;
865 		if (is_ts_pkt && (bp->fw_cap & BNXT_FW_CAP_TX_TS_CMP)) {
866 			rc = true;
867 			break;
868 		}
869 
870 		cons = NEXT_TX(cons);
871 		tx_pkts++;
872 		tx_bytes += skb->len;
873 		tx_buf->skb = NULL;
874 		tx_buf->is_ts_pkt = 0;
875 
876 		if (tx_buf->is_push) {
877 			tx_buf->is_push = 0;
878 			goto next_tx_int;
879 		}
880 
881 		if (dma_unmap_len(tx_buf, len)) {
882 			dma_addr = dma_unmap_addr(tx_buf, mapping);
883 			dma_len = dma_unmap_len(tx_buf, len);
884 
885 			dma_unmap_single(&pdev->dev, dma_addr, dma_len,
886 					 DMA_TO_DEVICE);
887 		}
888 
889 		last = tx_buf->nr_frags;
890 
891 		for (j = 0; j < last; j++) {
892 			cons = NEXT_TX(cons);
893 			tx_buf = &txr->tx_buf_ring[RING_TX(bp, cons)];
894 			if (dma_unmap_len(tx_buf, len)) {
895 				dma_addr = dma_unmap_addr(tx_buf, mapping);
896 				dma_len = dma_unmap_len(tx_buf, len);
897 
898 				netmem_dma_unmap_page_attrs(&pdev->dev,
899 							    dma_addr, dma_len,
900 							    DMA_TO_DEVICE, 0);
901 			}
902 		}
903 
904 		if (unlikely(head_buf->is_sw_gso)) {
905 			u16 inline_cons = txr->tx_inline_cons + 1;
906 
907 			WRITE_ONCE(txr->tx_inline_cons, inline_cons);
908 			if (head_buf->is_sw_gso == BNXT_SW_GSO_LAST) {
909 				tso_dma_map_complete(&pdev->dev,
910 						     &head_buf->sw_gso_cstate);
911 			} else {
912 				tx_pkts--;
913 				tx_bytes -= skb->len;
914 				skb = NULL;
915 			}
916 			head_buf->is_sw_gso = 0;
917 		}
918 
919 		if (unlikely(is_ts_pkt)) {
920 			if (BNXT_CHIP_P5(bp)) {
921 				/* PTP worker takes ownership of the skb */
922 				bnxt_get_tx_ts_p5(bp, skb, tx_buf->txts_prod);
923 				skb = NULL;
924 			}
925 		}
926 
927 next_tx_int:
928 		cons = NEXT_TX(cons);
929 
930 		napi_consume_skb(skb, budget);
931 	}
932 
933 	WRITE_ONCE(txr->tx_cons, cons);
934 
935 	__netif_txq_completed_wake(txq, tx_pkts, tx_bytes,
936 				   bnxt_tx_avail(bp, txr), bp->tx_wake_thresh,
937 				   READ_ONCE(txr->dev_state) == BNXT_DEV_STATE_CLOSING);
938 
939 	return rc;
940 }
941 
bnxt_tx_int(struct bnxt * bp,struct bnxt_napi * bnapi,int budget)942 static void bnxt_tx_int(struct bnxt *bp, struct bnxt_napi *bnapi, int budget)
943 {
944 	struct bnxt_tx_ring_info *txr;
945 	bool more = false;
946 	int i;
947 
948 	bnxt_for_each_napi_tx(i, bnapi, txr) {
949 		if (txr->tx_hw_cons != RING_TX(bp, txr->tx_cons))
950 			more |= __bnxt_tx_int(bp, txr, budget);
951 	}
952 	if (!more)
953 		bnapi->events &= ~BNXT_TX_CMP_EVENT;
954 }
955 
bnxt_separate_head_pool(struct bnxt_rx_ring_info * rxr)956 static bool bnxt_separate_head_pool(struct bnxt_rx_ring_info *rxr)
957 {
958 	return rxr->need_head_pool || rxr->rx_page_size < PAGE_SIZE;
959 }
960 
__bnxt_alloc_rx_page(struct bnxt * bp,dma_addr_t * mapping,struct bnxt_rx_ring_info * rxr,unsigned int * offset,gfp_t gfp)961 static struct page *__bnxt_alloc_rx_page(struct bnxt *bp, dma_addr_t *mapping,
962 					 struct bnxt_rx_ring_info *rxr,
963 					 unsigned int *offset,
964 					 gfp_t gfp)
965 {
966 	struct page *page;
967 
968 	if (rxr->rx_page_size < PAGE_SIZE) {
969 		page = page_pool_dev_alloc_frag(rxr->page_pool, offset,
970 						rxr->rx_page_size);
971 	} else {
972 		page = page_pool_dev_alloc_pages(rxr->page_pool);
973 		*offset = 0;
974 	}
975 	if (!page)
976 		return NULL;
977 
978 	*mapping = page_pool_get_dma_addr(page) + *offset;
979 	return page;
980 }
981 
__bnxt_alloc_rx_netmem(struct bnxt * bp,dma_addr_t * mapping,struct bnxt_rx_ring_info * rxr,unsigned int * offset,gfp_t gfp)982 static netmem_ref __bnxt_alloc_rx_netmem(struct bnxt *bp, dma_addr_t *mapping,
983 					 struct bnxt_rx_ring_info *rxr,
984 					 unsigned int *offset,
985 					 gfp_t gfp)
986 {
987 	netmem_ref netmem;
988 
989 	if (rxr->rx_page_size < PAGE_SIZE) {
990 		netmem = page_pool_alloc_frag_netmem(rxr->page_pool, offset,
991 						     rxr->rx_page_size, gfp);
992 	} else {
993 		netmem = page_pool_alloc_netmems(rxr->page_pool, gfp);
994 		*offset = 0;
995 	}
996 	if (!netmem)
997 		return 0;
998 
999 	*mapping = page_pool_get_dma_addr_netmem(netmem) + *offset;
1000 	return netmem;
1001 }
1002 
__bnxt_alloc_rx_frag(struct bnxt * bp,dma_addr_t * mapping,struct bnxt_rx_ring_info * rxr,gfp_t gfp)1003 static inline u8 *__bnxt_alloc_rx_frag(struct bnxt *bp, dma_addr_t *mapping,
1004 				       struct bnxt_rx_ring_info *rxr,
1005 				       gfp_t gfp)
1006 {
1007 	unsigned int offset;
1008 	struct page *page;
1009 
1010 	page = page_pool_alloc_frag(rxr->head_pool, &offset,
1011 				    bp->rx_buf_size, gfp);
1012 	if (!page)
1013 		return NULL;
1014 
1015 	*mapping = page_pool_get_dma_addr(page) + bp->rx_dma_offset + offset;
1016 	return page_address(page) + offset;
1017 }
1018 
bnxt_alloc_rx_data(struct bnxt * bp,struct bnxt_rx_ring_info * rxr,u16 prod,gfp_t gfp)1019 int bnxt_alloc_rx_data(struct bnxt *bp, struct bnxt_rx_ring_info *rxr,
1020 		       u16 prod, gfp_t gfp)
1021 {
1022 	struct rx_bd *rxbd = &rxr->rx_desc_ring[RX_RING(bp, prod)][RX_IDX(prod)];
1023 	struct bnxt_sw_rx_bd *rx_buf = &rxr->rx_buf_ring[RING_RX(bp, prod)];
1024 	dma_addr_t mapping;
1025 
1026 	if (BNXT_RX_PAGE_MODE(bp)) {
1027 		unsigned int offset;
1028 		struct page *page =
1029 			__bnxt_alloc_rx_page(bp, &mapping, rxr, &offset, gfp);
1030 
1031 		if (!page)
1032 			return -ENOMEM;
1033 
1034 		mapping += bp->rx_dma_offset;
1035 		rx_buf->data = page;
1036 		rx_buf->data_ptr = page_address(page) + offset + bp->rx_offset;
1037 		rx_buf->offset = offset;
1038 	} else {
1039 		u8 *data = __bnxt_alloc_rx_frag(bp, &mapping, rxr, gfp);
1040 
1041 		if (!data)
1042 			return -ENOMEM;
1043 
1044 		rx_buf->data = data;
1045 		rx_buf->data_ptr = data + bp->rx_offset;
1046 		rx_buf->offset = 0;
1047 	}
1048 	rx_buf->mapping = mapping;
1049 
1050 	rxbd->rx_bd_haddr = cpu_to_le64(mapping);
1051 	return 0;
1052 }
1053 
bnxt_reuse_rx_data(struct bnxt_rx_ring_info * rxr,u16 cons,void * data)1054 void bnxt_reuse_rx_data(struct bnxt_rx_ring_info *rxr, u16 cons, void *data)
1055 {
1056 	u16 prod = rxr->rx_prod;
1057 	struct bnxt_sw_rx_bd *cons_rx_buf, *prod_rx_buf;
1058 	struct bnxt *bp = rxr->bnapi->bp;
1059 	struct rx_bd *cons_bd, *prod_bd;
1060 
1061 	prod_rx_buf = &rxr->rx_buf_ring[RING_RX(bp, prod)];
1062 	cons_rx_buf = &rxr->rx_buf_ring[cons];
1063 
1064 	prod_rx_buf->data = data;
1065 	prod_rx_buf->data_ptr = cons_rx_buf->data_ptr;
1066 
1067 	prod_rx_buf->mapping = cons_rx_buf->mapping;
1068 	prod_rx_buf->offset = cons_rx_buf->offset;
1069 
1070 	prod_bd = &rxr->rx_desc_ring[RX_RING(bp, prod)][RX_IDX(prod)];
1071 	cons_bd = &rxr->rx_desc_ring[RX_RING(bp, cons)][RX_IDX(cons)];
1072 
1073 	prod_bd->rx_bd_haddr = cons_bd->rx_bd_haddr;
1074 }
1075 
bnxt_find_next_agg_idx(struct bnxt_rx_ring_info * rxr,u16 idx)1076 static inline u16 bnxt_find_next_agg_idx(struct bnxt_rx_ring_info *rxr, u16 idx)
1077 {
1078 	u16 next, max = rxr->rx_agg_bmap_size;
1079 
1080 	next = find_next_zero_bit(rxr->rx_agg_bmap, max, idx);
1081 	if (next >= max)
1082 		next = find_first_zero_bit(rxr->rx_agg_bmap, max);
1083 	return next;
1084 }
1085 
bnxt_alloc_rx_netmem(struct bnxt * bp,struct bnxt_rx_ring_info * rxr,u16 prod,gfp_t gfp)1086 static int bnxt_alloc_rx_netmem(struct bnxt *bp, struct bnxt_rx_ring_info *rxr,
1087 				u16 prod, gfp_t gfp)
1088 {
1089 	struct rx_bd *rxbd =
1090 		&rxr->rx_agg_desc_ring[RX_AGG_RING(bp, prod)][RX_IDX(prod)];
1091 	struct bnxt_sw_rx_agg_bd *rx_agg_buf;
1092 	u16 sw_prod = rxr->rx_sw_agg_prod;
1093 	unsigned int offset = 0;
1094 	dma_addr_t mapping;
1095 	netmem_ref netmem;
1096 
1097 	netmem = __bnxt_alloc_rx_netmem(bp, &mapping, rxr, &offset, gfp);
1098 	if (!netmem)
1099 		return -ENOMEM;
1100 
1101 	if (unlikely(test_bit(sw_prod, rxr->rx_agg_bmap)))
1102 		sw_prod = bnxt_find_next_agg_idx(rxr, sw_prod);
1103 
1104 	__set_bit(sw_prod, rxr->rx_agg_bmap);
1105 	rx_agg_buf = &rxr->rx_agg_ring[sw_prod];
1106 	rxr->rx_sw_agg_prod = RING_RX_AGG(bp, NEXT_RX_AGG(sw_prod));
1107 
1108 	rx_agg_buf->netmem = netmem;
1109 	rx_agg_buf->offset = offset;
1110 	rx_agg_buf->mapping = mapping;
1111 	rxbd->rx_bd_haddr = cpu_to_le64(mapping);
1112 	rxbd->rx_bd_opaque = sw_prod;
1113 	return 0;
1114 }
1115 
bnxt_get_agg(struct bnxt * bp,struct bnxt_cp_ring_info * cpr,u16 cp_cons,u16 curr)1116 static struct rx_agg_cmp *bnxt_get_agg(struct bnxt *bp,
1117 				       struct bnxt_cp_ring_info *cpr,
1118 				       u16 cp_cons, u16 curr)
1119 {
1120 	struct rx_agg_cmp *agg;
1121 
1122 	cp_cons = RING_CMP(ADV_RAW_CMP(cp_cons, curr));
1123 	agg = (struct rx_agg_cmp *)
1124 		&cpr->cp_desc_ring[CP_RING(cp_cons)][CP_IDX(cp_cons)];
1125 	return agg;
1126 }
1127 
bnxt_get_tpa_agg_p5(struct bnxt * bp,struct bnxt_rx_ring_info * rxr,u16 agg_id,u16 curr)1128 static struct rx_agg_cmp *bnxt_get_tpa_agg_p5(struct bnxt *bp,
1129 					      struct bnxt_rx_ring_info *rxr,
1130 					      u16 agg_id, u16 curr)
1131 {
1132 	struct bnxt_tpa_info *tpa_info = &rxr->rx_tpa[agg_id];
1133 
1134 	return &tpa_info->agg_arr[curr];
1135 }
1136 
bnxt_reuse_rx_agg_bufs(struct bnxt_cp_ring_info * cpr,u16 idx,u16 start,u32 agg_bufs,bool tpa)1137 static void bnxt_reuse_rx_agg_bufs(struct bnxt_cp_ring_info *cpr, u16 idx,
1138 				   u16 start, u32 agg_bufs, bool tpa)
1139 {
1140 	struct bnxt_napi *bnapi = cpr->bnapi;
1141 	struct bnxt *bp = bnapi->bp;
1142 	struct bnxt_rx_ring_info *rxr = bnapi->rx_ring;
1143 	u16 prod = rxr->rx_agg_prod;
1144 	u16 sw_prod = rxr->rx_sw_agg_prod;
1145 	bool p5_tpa = false;
1146 	u32 i;
1147 
1148 	if ((bp->flags & BNXT_FLAG_CHIP_P5_PLUS) && tpa)
1149 		p5_tpa = true;
1150 
1151 	for (i = 0; i < agg_bufs; i++) {
1152 		struct bnxt_sw_rx_agg_bd *cons_rx_buf, *prod_rx_buf;
1153 		struct rx_agg_cmp *agg;
1154 		struct rx_bd *prod_bd;
1155 		netmem_ref netmem;
1156 		u16 cons;
1157 
1158 		if (p5_tpa)
1159 			agg = bnxt_get_tpa_agg_p5(bp, rxr, idx, start + i);
1160 		else
1161 			agg = bnxt_get_agg(bp, cpr, idx, start + i);
1162 		cons = agg->rx_agg_cmp_opaque;
1163 		__clear_bit(cons, rxr->rx_agg_bmap);
1164 
1165 		if (unlikely(test_bit(sw_prod, rxr->rx_agg_bmap)))
1166 			sw_prod = bnxt_find_next_agg_idx(rxr, sw_prod);
1167 
1168 		__set_bit(sw_prod, rxr->rx_agg_bmap);
1169 		prod_rx_buf = &rxr->rx_agg_ring[sw_prod];
1170 		cons_rx_buf = &rxr->rx_agg_ring[cons];
1171 
1172 		/* It is possible for sw_prod to be equal to cons, so
1173 		 * set cons_rx_buf->netmem to 0 first.
1174 		 */
1175 		netmem = cons_rx_buf->netmem;
1176 		cons_rx_buf->netmem = 0;
1177 		prod_rx_buf->netmem = netmem;
1178 		prod_rx_buf->offset = cons_rx_buf->offset;
1179 
1180 		prod_rx_buf->mapping = cons_rx_buf->mapping;
1181 
1182 		prod_bd = &rxr->rx_agg_desc_ring[RX_AGG_RING(bp, prod)][RX_IDX(prod)];
1183 
1184 		prod_bd->rx_bd_haddr = cpu_to_le64(cons_rx_buf->mapping);
1185 		prod_bd->rx_bd_opaque = sw_prod;
1186 
1187 		prod = NEXT_RX_AGG(prod);
1188 		sw_prod = RING_RX_AGG(bp, NEXT_RX_AGG(sw_prod));
1189 	}
1190 	rxr->rx_agg_prod = prod;
1191 	rxr->rx_sw_agg_prod = sw_prod;
1192 }
1193 
bnxt_rx_multi_page_skb(struct bnxt * bp,struct bnxt_rx_ring_info * rxr,u16 cons,void * data,u8 * data_ptr,dma_addr_t dma_addr,unsigned int offset_and_len)1194 static struct sk_buff *bnxt_rx_multi_page_skb(struct bnxt *bp,
1195 					      struct bnxt_rx_ring_info *rxr,
1196 					      u16 cons, void *data, u8 *data_ptr,
1197 					      dma_addr_t dma_addr,
1198 					      unsigned int offset_and_len)
1199 {
1200 	unsigned int len = offset_and_len & 0xffff;
1201 	struct page *page = data;
1202 	u16 prod = rxr->rx_prod;
1203 	struct sk_buff *skb;
1204 	void *frag_start;
1205 	int err;
1206 
1207 	frag_start = page_address(page) + rxr->rx_buf_ring[cons].offset;
1208 
1209 	err = bnxt_alloc_rx_data(bp, rxr, prod, GFP_ATOMIC);
1210 	if (unlikely(err)) {
1211 		bnxt_reuse_rx_data(rxr, cons, data);
1212 		return NULL;
1213 	}
1214 	dma_addr -= bp->rx_dma_offset;
1215 	dma_sync_single_for_cpu(&bp->pdev->dev, dma_addr, rxr->rx_page_size,
1216 				bp->rx_dir);
1217 	skb = napi_build_skb(frag_start, rxr->rx_page_size);
1218 	if (!skb) {
1219 		page_pool_recycle_direct(rxr->page_pool, page);
1220 		return NULL;
1221 	}
1222 	skb_mark_for_recycle(skb);
1223 	skb_reserve(skb, data_ptr - (u8 *)frag_start);
1224 	__skb_put(skb, len);
1225 
1226 	return skb;
1227 }
1228 
bnxt_rx_page_skb(struct bnxt * bp,struct bnxt_rx_ring_info * rxr,u16 cons,void * data,u8 * data_ptr,dma_addr_t dma_addr,unsigned int offset_and_len)1229 static struct sk_buff *bnxt_rx_page_skb(struct bnxt *bp,
1230 					struct bnxt_rx_ring_info *rxr,
1231 					u16 cons, void *data, u8 *data_ptr,
1232 					dma_addr_t dma_addr,
1233 					unsigned int offset_and_len)
1234 {
1235 	unsigned int payload = offset_and_len >> 16;
1236 	unsigned int len = offset_and_len & 0xffff;
1237 	skb_frag_t *frag;
1238 	struct page *page = data;
1239 	u16 prod = rxr->rx_prod;
1240 	struct sk_buff *skb;
1241 	int off, err;
1242 
1243 	err = bnxt_alloc_rx_data(bp, rxr, prod, GFP_ATOMIC);
1244 	if (unlikely(err)) {
1245 		bnxt_reuse_rx_data(rxr, cons, data);
1246 		return NULL;
1247 	}
1248 	dma_addr -= bp->rx_dma_offset;
1249 	dma_sync_single_for_cpu(&bp->pdev->dev, dma_addr, rxr->rx_page_size,
1250 				bp->rx_dir);
1251 
1252 	if (unlikely(!payload))
1253 		payload = eth_get_headlen(bp->dev, data_ptr, len);
1254 
1255 	skb = napi_alloc_skb(&rxr->bnapi->napi, payload);
1256 	if (!skb) {
1257 		page_pool_recycle_direct(rxr->page_pool, page);
1258 		return NULL;
1259 	}
1260 
1261 	skb_mark_for_recycle(skb);
1262 	off = (void *)data_ptr - page_address(page);
1263 	skb_add_rx_frag(skb, 0, page, off, len, rxr->rx_page_size);
1264 	memcpy(skb->data - NET_IP_ALIGN, data_ptr - NET_IP_ALIGN,
1265 	       payload + NET_IP_ALIGN);
1266 
1267 	frag = &skb_shinfo(skb)->frags[0];
1268 	skb_frag_size_sub(frag, payload);
1269 	skb_frag_off_add(frag, payload);
1270 	skb->data_len -= payload;
1271 	skb->tail += payload;
1272 
1273 	return skb;
1274 }
1275 
bnxt_rx_skb(struct bnxt * bp,struct bnxt_rx_ring_info * rxr,u16 cons,void * data,u8 * data_ptr,dma_addr_t dma_addr,unsigned int offset_and_len)1276 static struct sk_buff *bnxt_rx_skb(struct bnxt *bp,
1277 				   struct bnxt_rx_ring_info *rxr, u16 cons,
1278 				   void *data, u8 *data_ptr,
1279 				   dma_addr_t dma_addr,
1280 				   unsigned int offset_and_len)
1281 {
1282 	u16 prod = rxr->rx_prod;
1283 	struct sk_buff *skb;
1284 	int err;
1285 
1286 	err = bnxt_alloc_rx_data(bp, rxr, prod, GFP_ATOMIC);
1287 	if (unlikely(err)) {
1288 		bnxt_reuse_rx_data(rxr, cons, data);
1289 		return NULL;
1290 	}
1291 
1292 	skb = napi_build_skb(data, bp->rx_buf_size);
1293 	dma_sync_single_for_cpu(&bp->pdev->dev, dma_addr, bp->rx_buf_use_size,
1294 				bp->rx_dir);
1295 	if (!skb) {
1296 		page_pool_free_va(rxr->head_pool, data, true);
1297 		return NULL;
1298 	}
1299 
1300 	skb_mark_for_recycle(skb);
1301 	skb_reserve(skb, bp->rx_offset);
1302 	skb_put(skb, offset_and_len & 0xffff);
1303 	return skb;
1304 }
1305 
__bnxt_rx_agg_netmems(struct bnxt * bp,struct bnxt_cp_ring_info * cpr,u16 idx,u32 agg_bufs,bool tpa,struct sk_buff * skb,struct xdp_buff * xdp)1306 static u32 __bnxt_rx_agg_netmems(struct bnxt *bp,
1307 				 struct bnxt_cp_ring_info *cpr,
1308 				 u16 idx, u32 agg_bufs, bool tpa,
1309 				 struct sk_buff *skb,
1310 				 struct xdp_buff *xdp)
1311 {
1312 	struct bnxt_napi *bnapi = cpr->bnapi;
1313 	struct skb_shared_info *shinfo;
1314 	struct bnxt_rx_ring_info *rxr;
1315 	u32 i, total_frag_len = 0;
1316 	bool p5_tpa = false;
1317 	u16 prod;
1318 
1319 	rxr = bnapi->rx_ring;
1320 	prod = rxr->rx_agg_prod;
1321 
1322 	if ((bp->flags & BNXT_FLAG_CHIP_P5_PLUS) && tpa)
1323 		p5_tpa = true;
1324 
1325 	if (skb)
1326 		shinfo = skb_shinfo(skb);
1327 	else
1328 		shinfo = xdp_get_shared_info_from_buff(xdp);
1329 
1330 	for (i = 0; i < agg_bufs; i++) {
1331 		struct bnxt_sw_rx_agg_bd *cons_rx_buf;
1332 		struct rx_agg_cmp *agg;
1333 		u16 cons, frag_len;
1334 		netmem_ref netmem;
1335 
1336 		if (p5_tpa)
1337 			agg = bnxt_get_tpa_agg_p5(bp, rxr, idx, i);
1338 		else
1339 			agg = bnxt_get_agg(bp, cpr, idx, i);
1340 		cons = agg->rx_agg_cmp_opaque;
1341 		frag_len = (le32_to_cpu(agg->rx_agg_cmp_len_flags_type) &
1342 			    RX_AGG_CMP_LEN) >> RX_AGG_CMP_LEN_SHIFT;
1343 
1344 		cons_rx_buf = &rxr->rx_agg_ring[cons];
1345 		if (skb) {
1346 			skb_add_rx_frag_netmem(skb, i, cons_rx_buf->netmem,
1347 					       cons_rx_buf->offset,
1348 					       frag_len, rxr->rx_page_size);
1349 		} else {
1350 			skb_frag_t *frag = &shinfo->frags[i];
1351 
1352 			skb_frag_fill_netmem_desc(frag, cons_rx_buf->netmem,
1353 						  cons_rx_buf->offset,
1354 						  frag_len);
1355 			shinfo->nr_frags = i + 1;
1356 		}
1357 		__clear_bit(cons, rxr->rx_agg_bmap);
1358 
1359 		/* It is possible for bnxt_alloc_rx_netmem() to allocate
1360 		 * a sw_prod index that equals the cons index, so we
1361 		 * need to clear the cons entry now.
1362 		 */
1363 		netmem = cons_rx_buf->netmem;
1364 		cons_rx_buf->netmem = 0;
1365 
1366 		if (xdp && netmem_is_pfmemalloc(netmem))
1367 			xdp_buff_set_frag_pfmemalloc(xdp);
1368 
1369 		if (bnxt_alloc_rx_netmem(bp, rxr, prod, GFP_ATOMIC) != 0) {
1370 			if (skb) {
1371 				skb->len -= frag_len;
1372 				skb->data_len -= frag_len;
1373 				skb->truesize -= rxr->rx_page_size;
1374 			}
1375 
1376 			--shinfo->nr_frags;
1377 			cons_rx_buf->netmem = netmem;
1378 
1379 			/* Update prod since possibly some netmems have been
1380 			 * allocated already.
1381 			 */
1382 			rxr->rx_agg_prod = prod;
1383 			bnxt_reuse_rx_agg_bufs(cpr, idx, i, agg_bufs - i, tpa);
1384 			return 0;
1385 		}
1386 
1387 		page_pool_dma_sync_netmem_for_cpu(rxr->page_pool, netmem, 0,
1388 						  rxr->rx_page_size);
1389 
1390 		total_frag_len += frag_len;
1391 		prod = NEXT_RX_AGG(prod);
1392 	}
1393 	rxr->rx_agg_prod = prod;
1394 	return total_frag_len;
1395 }
1396 
bnxt_rx_agg_netmems_skb(struct bnxt * bp,struct bnxt_cp_ring_info * cpr,struct sk_buff * skb,u16 idx,u32 agg_bufs,bool tpa)1397 static struct sk_buff *bnxt_rx_agg_netmems_skb(struct bnxt *bp,
1398 					       struct bnxt_cp_ring_info *cpr,
1399 					       struct sk_buff *skb, u16 idx,
1400 					       u32 agg_bufs, bool tpa)
1401 {
1402 	u32 total_frag_len = 0;
1403 
1404 	total_frag_len = __bnxt_rx_agg_netmems(bp, cpr, idx, agg_bufs, tpa,
1405 					       skb, NULL);
1406 	if (!total_frag_len) {
1407 		skb_mark_for_recycle(skb);
1408 		dev_kfree_skb(skb);
1409 		return NULL;
1410 	}
1411 
1412 	return skb;
1413 }
1414 
bnxt_rx_agg_netmems_xdp(struct bnxt * bp,struct bnxt_cp_ring_info * cpr,struct xdp_buff * xdp,u16 idx,u32 agg_bufs,bool tpa)1415 static u32 bnxt_rx_agg_netmems_xdp(struct bnxt *bp,
1416 				   struct bnxt_cp_ring_info *cpr,
1417 				   struct xdp_buff *xdp, u16 idx,
1418 				   u32 agg_bufs, bool tpa)
1419 {
1420 	struct skb_shared_info *shinfo = xdp_get_shared_info_from_buff(xdp);
1421 	u32 total_frag_len = 0;
1422 
1423 	if (!xdp_buff_has_frags(xdp))
1424 		shinfo->nr_frags = 0;
1425 
1426 	total_frag_len = __bnxt_rx_agg_netmems(bp, cpr, idx, agg_bufs, tpa,
1427 					       NULL, xdp);
1428 	if (total_frag_len) {
1429 		xdp_buff_set_frags_flag(xdp);
1430 		shinfo->nr_frags = agg_bufs;
1431 		shinfo->xdp_frags_size = total_frag_len;
1432 	}
1433 	return total_frag_len;
1434 }
1435 
bnxt_agg_bufs_valid(struct bnxt * bp,struct bnxt_cp_ring_info * cpr,u8 agg_bufs,u32 * raw_cons)1436 static int bnxt_agg_bufs_valid(struct bnxt *bp, struct bnxt_cp_ring_info *cpr,
1437 			       u8 agg_bufs, u32 *raw_cons)
1438 {
1439 	u16 last;
1440 	struct rx_agg_cmp *agg;
1441 
1442 	*raw_cons = ADV_RAW_CMP(*raw_cons, agg_bufs);
1443 	last = RING_CMP(*raw_cons);
1444 	agg = (struct rx_agg_cmp *)
1445 		&cpr->cp_desc_ring[CP_RING(last)][CP_IDX(last)];
1446 	return RX_AGG_CMP_VALID(agg, *raw_cons);
1447 }
1448 
bnxt_copy_data(struct bnxt_napi * bnapi,u8 * data,unsigned int len,dma_addr_t mapping)1449 static struct sk_buff *bnxt_copy_data(struct bnxt_napi *bnapi, u8 *data,
1450 				      unsigned int len,
1451 				      dma_addr_t mapping)
1452 {
1453 	struct bnxt *bp = bnapi->bp;
1454 	struct pci_dev *pdev = bp->pdev;
1455 	struct sk_buff *skb;
1456 
1457 	skb = napi_alloc_skb(&bnapi->napi, len);
1458 	if (!skb)
1459 		return NULL;
1460 
1461 	dma_sync_single_for_cpu(&pdev->dev, mapping, bp->rx_copybreak,
1462 				bp->rx_dir);
1463 
1464 	memcpy(skb->data - NET_IP_ALIGN, data - NET_IP_ALIGN,
1465 	       len + NET_IP_ALIGN);
1466 
1467 	dma_sync_single_for_device(&pdev->dev, mapping, bp->rx_copybreak,
1468 				   bp->rx_dir);
1469 
1470 	skb_put(skb, len);
1471 
1472 	return skb;
1473 }
1474 
bnxt_copy_skb(struct bnxt_napi * bnapi,u8 * data,unsigned int len,dma_addr_t mapping)1475 static struct sk_buff *bnxt_copy_skb(struct bnxt_napi *bnapi, u8 *data,
1476 				     unsigned int len,
1477 				     dma_addr_t mapping)
1478 {
1479 	return bnxt_copy_data(bnapi, data, len, mapping);
1480 }
1481 
bnxt_copy_xdp(struct bnxt_napi * bnapi,struct xdp_buff * xdp,unsigned int len,dma_addr_t mapping)1482 static struct sk_buff *bnxt_copy_xdp(struct bnxt_napi *bnapi,
1483 				     struct xdp_buff *xdp,
1484 				     unsigned int len,
1485 				     dma_addr_t mapping)
1486 {
1487 	unsigned int metasize = 0;
1488 	u8 *data = xdp->data;
1489 	struct sk_buff *skb;
1490 
1491 	len = xdp->data_end - xdp->data_meta;
1492 	metasize = xdp->data - xdp->data_meta;
1493 	data = xdp->data_meta;
1494 
1495 	skb = bnxt_copy_data(bnapi, data, len, mapping);
1496 	if (!skb)
1497 		return skb;
1498 
1499 	if (metasize) {
1500 		skb_metadata_set(skb, metasize);
1501 		__skb_pull(skb, metasize);
1502 	}
1503 
1504 	return skb;
1505 }
1506 
bnxt_discard_rx(struct bnxt * bp,struct bnxt_cp_ring_info * cpr,u32 * raw_cons,void * cmp)1507 static int bnxt_discard_rx(struct bnxt *bp, struct bnxt_cp_ring_info *cpr,
1508 			   u32 *raw_cons, void *cmp)
1509 {
1510 	struct rx_cmp *rxcmp = cmp;
1511 	u32 tmp_raw_cons = *raw_cons;
1512 	u8 cmp_type, agg_bufs = 0;
1513 
1514 	cmp_type = RX_CMP_TYPE(rxcmp);
1515 
1516 	if (cmp_type == CMP_TYPE_RX_L2_CMP) {
1517 		agg_bufs = (le32_to_cpu(rxcmp->rx_cmp_misc_v1) &
1518 			    RX_CMP_AGG_BUFS) >>
1519 			   RX_CMP_AGG_BUFS_SHIFT;
1520 	} else if (cmp_type == CMP_TYPE_RX_L2_TPA_END_CMP) {
1521 		struct rx_tpa_end_cmp *tpa_end = cmp;
1522 
1523 		if (bp->flags & BNXT_FLAG_CHIP_P5_PLUS)
1524 			return 0;
1525 
1526 		agg_bufs = TPA_END_AGG_BUFS(tpa_end);
1527 	}
1528 
1529 	if (agg_bufs) {
1530 		if (!bnxt_agg_bufs_valid(bp, cpr, agg_bufs, &tmp_raw_cons))
1531 			return -EBUSY;
1532 	}
1533 	*raw_cons = tmp_raw_cons;
1534 	return 0;
1535 }
1536 
bnxt_alloc_agg_idx(struct bnxt * bp,struct bnxt_rx_ring_info * rxr,u16 agg_id)1537 static u16 bnxt_alloc_agg_idx(struct bnxt *bp, struct bnxt_rx_ring_info *rxr,
1538 			      u16 agg_id)
1539 {
1540 	struct bnxt_tpa_idx_map *map = rxr->rx_tpa_idx_map;
1541 	u16 idx = agg_id & (bp->max_tpa_roundup_size - 1);
1542 
1543 	if (test_bit(idx, map->agg_idx_bmap)) {
1544 		idx = find_first_zero_bit(map->agg_idx_bmap,
1545 					  bp->max_tpa_roundup_size);
1546 		if (idx >= bp->max_tpa_roundup_size)
1547 			return INVALID_HW_RING_ID;
1548 	}
1549 	__set_bit(idx, map->agg_idx_bmap);
1550 	map->agg_id_tbl[agg_id] = idx;
1551 	return idx;
1552 }
1553 
bnxt_free_agg_idx(struct bnxt_rx_ring_info * rxr,u16 idx)1554 static void bnxt_free_agg_idx(struct bnxt_rx_ring_info *rxr, u16 idx)
1555 {
1556 	struct bnxt_tpa_idx_map *map = rxr->rx_tpa_idx_map;
1557 
1558 	__clear_bit(idx, map->agg_idx_bmap);
1559 }
1560 
bnxt_lookup_agg_idx(struct bnxt_rx_ring_info * rxr,u16 agg_id)1561 static u16 bnxt_lookup_agg_idx(struct bnxt_rx_ring_info *rxr, u16 agg_id)
1562 {
1563 	struct bnxt_tpa_idx_map *map = rxr->rx_tpa_idx_map;
1564 
1565 	return map->agg_id_tbl[agg_id];
1566 }
1567 
bnxt_tpa_metadata(struct bnxt_tpa_info * tpa_info,struct rx_tpa_start_cmp * tpa_start,struct rx_tpa_start_cmp_ext * tpa_start1)1568 static void bnxt_tpa_metadata(struct bnxt_tpa_info *tpa_info,
1569 			      struct rx_tpa_start_cmp *tpa_start,
1570 			      struct rx_tpa_start_cmp_ext *tpa_start1)
1571 {
1572 	tpa_info->cfa_code_valid = 1;
1573 	tpa_info->cfa_code = TPA_START_CFA_CODE(tpa_start1);
1574 	tpa_info->vlan_valid = 0;
1575 	if (tpa_info->flags2 & RX_CMP_FLAGS2_META_FORMAT_VLAN) {
1576 		tpa_info->vlan_valid = 1;
1577 		tpa_info->metadata =
1578 			le32_to_cpu(tpa_start1->rx_tpa_start_cmp_metadata);
1579 	}
1580 }
1581 
bnxt_tpa_metadata_v2(struct bnxt_tpa_info * tpa_info,struct rx_tpa_start_cmp * tpa_start,struct rx_tpa_start_cmp_ext * tpa_start1)1582 static void bnxt_tpa_metadata_v2(struct bnxt_tpa_info *tpa_info,
1583 				 struct rx_tpa_start_cmp *tpa_start,
1584 				 struct rx_tpa_start_cmp_ext *tpa_start1)
1585 {
1586 	tpa_info->vlan_valid = 0;
1587 	if (TPA_START_VLAN_VALID(tpa_start)) {
1588 		u32 tpid_sel = TPA_START_VLAN_TPID_SEL(tpa_start);
1589 		u32 vlan_proto = ETH_P_8021Q;
1590 
1591 		tpa_info->vlan_valid = 1;
1592 		if (tpid_sel == RX_TPA_START_METADATA1_TPID_8021AD)
1593 			vlan_proto = ETH_P_8021AD;
1594 		tpa_info->metadata = vlan_proto << 16 |
1595 				     TPA_START_METADATA0_TCI(tpa_start1);
1596 	}
1597 }
1598 
bnxt_tpa_start(struct bnxt * bp,struct bnxt_rx_ring_info * rxr,u8 cmp_type,struct rx_tpa_start_cmp * tpa_start,struct rx_tpa_start_cmp_ext * tpa_start1)1599 static void bnxt_tpa_start(struct bnxt *bp, struct bnxt_rx_ring_info *rxr,
1600 			   u8 cmp_type, struct rx_tpa_start_cmp *tpa_start,
1601 			   struct rx_tpa_start_cmp_ext *tpa_start1)
1602 {
1603 	struct bnxt_sw_rx_bd *cons_rx_buf, *prod_rx_buf;
1604 	struct bnxt_tpa_info *tpa_info;
1605 	u16 cons, prod, agg_id;
1606 	struct rx_bd *prod_bd;
1607 	dma_addr_t mapping;
1608 
1609 	if (bp->flags & BNXT_FLAG_CHIP_P5_PLUS) {
1610 		agg_id = TPA_START_AGG_ID_P5(tpa_start);
1611 		agg_id = bnxt_alloc_agg_idx(bp, rxr, agg_id);
1612 		if (unlikely(agg_id == INVALID_HW_RING_ID)) {
1613 			netdev_warn(bp->dev, "Unable to allocate agg ID for ring %d, agg 0x%x\n",
1614 				    rxr->bnapi->index,
1615 				    TPA_START_AGG_ID_P5(tpa_start));
1616 			bnxt_sched_reset_rxr(bp, rxr);
1617 			return;
1618 		}
1619 	} else {
1620 		agg_id = TPA_START_AGG_ID(tpa_start);
1621 	}
1622 	cons = tpa_start->rx_tpa_start_cmp_opaque;
1623 	prod = rxr->rx_prod;
1624 	cons_rx_buf = &rxr->rx_buf_ring[cons];
1625 	prod_rx_buf = &rxr->rx_buf_ring[RING_RX(bp, prod)];
1626 	tpa_info = &rxr->rx_tpa[agg_id];
1627 
1628 	if (unlikely(cons != rxr->rx_next_cons ||
1629 		     TPA_START_ERROR(tpa_start))) {
1630 		netdev_warn(bp->dev, "TPA cons %x, expected cons %x, error code %x\n",
1631 			    cons, rxr->rx_next_cons,
1632 			    TPA_START_ERROR_CODE(tpa_start1));
1633 		bnxt_sched_reset_rxr(bp, rxr);
1634 		return;
1635 	}
1636 	prod_rx_buf->data = tpa_info->data;
1637 	prod_rx_buf->data_ptr = tpa_info->data_ptr;
1638 
1639 	mapping = tpa_info->mapping;
1640 	prod_rx_buf->mapping = mapping;
1641 
1642 	prod_bd = &rxr->rx_desc_ring[RX_RING(bp, prod)][RX_IDX(prod)];
1643 
1644 	prod_bd->rx_bd_haddr = cpu_to_le64(mapping);
1645 
1646 	tpa_info->data = cons_rx_buf->data;
1647 	tpa_info->data_ptr = cons_rx_buf->data_ptr;
1648 	cons_rx_buf->data = NULL;
1649 	tpa_info->mapping = cons_rx_buf->mapping;
1650 
1651 	tpa_info->len =
1652 		le32_to_cpu(tpa_start->rx_tpa_start_cmp_len_flags_type) >>
1653 				RX_TPA_START_CMP_LEN_SHIFT;
1654 	if (likely(TPA_START_HASH_VALID(tpa_start))) {
1655 		tpa_info->hash_type = PKT_HASH_TYPE_L4;
1656 		tpa_info->gso_type = SKB_GSO_TCPV4;
1657 		if (TPA_START_IS_IPV6(tpa_start1))
1658 			tpa_info->gso_type = SKB_GSO_TCPV6;
1659 		/* RSS profiles 1 and 3 with extract code 0 for inner 4-tuple */
1660 		else if (!BNXT_CHIP_P4_PLUS(bp) &&
1661 			 TPA_START_HASH_TYPE(tpa_start) == 3)
1662 			tpa_info->gso_type = SKB_GSO_TCPV6;
1663 		tpa_info->rss_hash =
1664 			le32_to_cpu(tpa_start->rx_tpa_start_cmp_rss_hash);
1665 	} else {
1666 		tpa_info->hash_type = PKT_HASH_TYPE_NONE;
1667 		tpa_info->gso_type = 0;
1668 		netif_warn(bp, rx_err, bp->dev, "TPA packet without valid hash\n");
1669 	}
1670 	tpa_info->flags2 = le32_to_cpu(tpa_start1->rx_tpa_start_cmp_flags2);
1671 	tpa_info->hdr_info = le32_to_cpu(tpa_start1->rx_tpa_start_cmp_hdr_info);
1672 	if (cmp_type == CMP_TYPE_RX_L2_TPA_START_CMP)
1673 		bnxt_tpa_metadata(tpa_info, tpa_start, tpa_start1);
1674 	else
1675 		bnxt_tpa_metadata_v2(tpa_info, tpa_start, tpa_start1);
1676 	tpa_info->agg_count = 0;
1677 
1678 	rxr->rx_prod = NEXT_RX(prod);
1679 	cons = RING_RX(bp, NEXT_RX(cons));
1680 	rxr->rx_next_cons = RING_RX(bp, NEXT_RX(cons));
1681 	cons_rx_buf = &rxr->rx_buf_ring[cons];
1682 
1683 	bnxt_reuse_rx_data(rxr, cons, cons_rx_buf->data);
1684 	rxr->rx_prod = NEXT_RX(rxr->rx_prod);
1685 	cons_rx_buf->data = NULL;
1686 }
1687 
bnxt_abort_tpa(struct bnxt_cp_ring_info * cpr,u16 idx,u32 agg_bufs)1688 static void bnxt_abort_tpa(struct bnxt_cp_ring_info *cpr, u16 idx, u32 agg_bufs)
1689 {
1690 	if (agg_bufs)
1691 		bnxt_reuse_rx_agg_bufs(cpr, idx, 0, agg_bufs, true);
1692 }
1693 
1694 #ifdef CONFIG_INET
bnxt_gro_tunnel(struct sk_buff * skb,__be16 ip_proto)1695 static void bnxt_gro_tunnel(struct sk_buff *skb, __be16 ip_proto)
1696 {
1697 	struct udphdr *uh = NULL;
1698 
1699 	if (ip_proto == htons(ETH_P_IP)) {
1700 		struct iphdr *iph = (struct iphdr *)skb->data;
1701 
1702 		if (iph->protocol == IPPROTO_UDP)
1703 			uh = (struct udphdr *)(iph + 1);
1704 	} else {
1705 		struct ipv6hdr *iph = (struct ipv6hdr *)skb->data;
1706 
1707 		if (iph->nexthdr == IPPROTO_UDP)
1708 			uh = (struct udphdr *)(iph + 1);
1709 	}
1710 	if (uh) {
1711 		if (uh->check)
1712 			skb_shinfo(skb)->gso_type |= SKB_GSO_UDP_TUNNEL_CSUM;
1713 		else
1714 			skb_shinfo(skb)->gso_type |= SKB_GSO_UDP_TUNNEL;
1715 	}
1716 }
1717 #endif
1718 
bnxt_gro_func_5731x(struct bnxt_tpa_info * tpa_info,int payload_off,int tcp_ts,struct sk_buff * skb)1719 static struct sk_buff *bnxt_gro_func_5731x(struct bnxt_tpa_info *tpa_info,
1720 					   int payload_off, int tcp_ts,
1721 					   struct sk_buff *skb)
1722 {
1723 #ifdef CONFIG_INET
1724 	struct tcphdr *th;
1725 	int len, nw_off;
1726 	u16 outer_ip_off, inner_ip_off, inner_mac_off;
1727 	u32 hdr_info = tpa_info->hdr_info;
1728 	bool loopback = false;
1729 
1730 	inner_ip_off = BNXT_TPA_INNER_L3_OFF(hdr_info);
1731 	inner_mac_off = BNXT_TPA_INNER_L2_OFF(hdr_info);
1732 	outer_ip_off = BNXT_TPA_OUTER_L3_OFF(hdr_info);
1733 
1734 	/* If the packet is an internal loopback packet, the offsets will
1735 	 * have an extra 4 bytes.
1736 	 */
1737 	if (inner_mac_off == 4) {
1738 		loopback = true;
1739 	} else if (inner_mac_off > 4) {
1740 		__be16 proto = *((__be16 *)(skb->data + inner_ip_off -
1741 					    ETH_HLEN - 2));
1742 
1743 		/* We only support inner iPv4/ipv6.  If we don't see the
1744 		 * correct protocol ID, it must be a loopback packet where
1745 		 * the offsets are off by 4.
1746 		 */
1747 		if (proto != htons(ETH_P_IP) && proto != htons(ETH_P_IPV6))
1748 			loopback = true;
1749 	}
1750 	if (loopback) {
1751 		/* internal loopback packet, subtract all offsets by 4 */
1752 		inner_ip_off -= 4;
1753 		inner_mac_off -= 4;
1754 		outer_ip_off -= 4;
1755 	}
1756 
1757 	nw_off = inner_ip_off - ETH_HLEN;
1758 	skb_set_network_header(skb, nw_off);
1759 	if (tpa_info->flags2 & RX_TPA_START_CMP_FLAGS2_IP_TYPE) {
1760 		struct ipv6hdr *iph = ipv6_hdr(skb);
1761 
1762 		skb_set_transport_header(skb, nw_off + sizeof(struct ipv6hdr));
1763 		len = skb->len - skb_transport_offset(skb);
1764 		th = tcp_hdr(skb);
1765 		th->check = ~tcp_v6_check(len, &iph->saddr, &iph->daddr, 0);
1766 	} else {
1767 		struct iphdr *iph = ip_hdr(skb);
1768 
1769 		skb_set_transport_header(skb, nw_off + sizeof(struct iphdr));
1770 		len = skb->len - skb_transport_offset(skb);
1771 		th = tcp_hdr(skb);
1772 		th->check = ~tcp_v4_check(len, iph->saddr, iph->daddr, 0);
1773 	}
1774 
1775 	if (inner_mac_off) { /* tunnel */
1776 		__be16 proto = *((__be16 *)(skb->data + outer_ip_off -
1777 					    ETH_HLEN - 2));
1778 
1779 		bnxt_gro_tunnel(skb, proto);
1780 	}
1781 #endif
1782 	return skb;
1783 }
1784 
bnxt_gro_func_5750x(struct bnxt_tpa_info * tpa_info,int payload_off,int tcp_ts,struct sk_buff * skb)1785 static struct sk_buff *bnxt_gro_func_5750x(struct bnxt_tpa_info *tpa_info,
1786 					   int payload_off, int tcp_ts,
1787 					   struct sk_buff *skb)
1788 {
1789 #ifdef CONFIG_INET
1790 	u16 outer_ip_off, inner_ip_off, inner_mac_off;
1791 	u32 hdr_info = tpa_info->hdr_info;
1792 	int iphdr_len, nw_off;
1793 
1794 	inner_ip_off = BNXT_TPA_INNER_L3_OFF(hdr_info);
1795 	inner_mac_off = BNXT_TPA_INNER_L2_OFF(hdr_info);
1796 	outer_ip_off = BNXT_TPA_OUTER_L3_OFF(hdr_info);
1797 
1798 	nw_off = inner_ip_off - ETH_HLEN;
1799 	skb_set_network_header(skb, nw_off);
1800 	iphdr_len = (tpa_info->flags2 & RX_TPA_START_CMP_FLAGS2_IP_TYPE) ?
1801 		     sizeof(struct ipv6hdr) : sizeof(struct iphdr);
1802 	skb_set_transport_header(skb, nw_off + iphdr_len);
1803 
1804 	if (inner_mac_off) { /* tunnel */
1805 		__be16 proto = *((__be16 *)(skb->data + outer_ip_off -
1806 					    ETH_HLEN - 2));
1807 
1808 		bnxt_gro_tunnel(skb, proto);
1809 	}
1810 #endif
1811 	return skb;
1812 }
1813 
1814 #define BNXT_IPV4_HDR_SIZE	(sizeof(struct iphdr) + sizeof(struct tcphdr))
1815 #define BNXT_IPV6_HDR_SIZE	(sizeof(struct ipv6hdr) + sizeof(struct tcphdr))
1816 
bnxt_gro_func_5730x(struct bnxt_tpa_info * tpa_info,int payload_off,int tcp_ts,struct sk_buff * skb)1817 static struct sk_buff *bnxt_gro_func_5730x(struct bnxt_tpa_info *tpa_info,
1818 					   int payload_off, int tcp_ts,
1819 					   struct sk_buff *skb)
1820 {
1821 #ifdef CONFIG_INET
1822 	struct tcphdr *th;
1823 	int len, nw_off, tcp_opt_len = 0;
1824 
1825 	if (tcp_ts)
1826 		tcp_opt_len = 12;
1827 
1828 	if (tpa_info->gso_type == SKB_GSO_TCPV4) {
1829 		struct iphdr *iph;
1830 
1831 		nw_off = payload_off - BNXT_IPV4_HDR_SIZE - tcp_opt_len -
1832 			 ETH_HLEN;
1833 		skb_set_network_header(skb, nw_off);
1834 		iph = ip_hdr(skb);
1835 		skb_set_transport_header(skb, nw_off + sizeof(struct iphdr));
1836 		len = skb->len - skb_transport_offset(skb);
1837 		th = tcp_hdr(skb);
1838 		th->check = ~tcp_v4_check(len, iph->saddr, iph->daddr, 0);
1839 	} else if (tpa_info->gso_type == SKB_GSO_TCPV6) {
1840 		struct ipv6hdr *iph;
1841 
1842 		nw_off = payload_off - BNXT_IPV6_HDR_SIZE - tcp_opt_len -
1843 			 ETH_HLEN;
1844 		skb_set_network_header(skb, nw_off);
1845 		iph = ipv6_hdr(skb);
1846 		skb_set_transport_header(skb, nw_off + sizeof(struct ipv6hdr));
1847 		len = skb->len - skb_transport_offset(skb);
1848 		th = tcp_hdr(skb);
1849 		th->check = ~tcp_v6_check(len, &iph->saddr, &iph->daddr, 0);
1850 	} else {
1851 		dev_kfree_skb_any(skb);
1852 		return NULL;
1853 	}
1854 
1855 	if (nw_off) /* tunnel */
1856 		bnxt_gro_tunnel(skb, skb->protocol);
1857 #endif
1858 	return skb;
1859 }
1860 
bnxt_gro_skb(struct bnxt * bp,struct bnxt_tpa_info * tpa_info,struct rx_tpa_end_cmp * tpa_end,struct rx_tpa_end_cmp_ext * tpa_end1,struct sk_buff * skb,struct bnxt_rx_sw_stats * rx_stats)1861 static inline struct sk_buff *bnxt_gro_skb(struct bnxt *bp,
1862 					   struct bnxt_tpa_info *tpa_info,
1863 					   struct rx_tpa_end_cmp *tpa_end,
1864 					   struct rx_tpa_end_cmp_ext *tpa_end1,
1865 					   struct sk_buff *skb,
1866 					   struct bnxt_rx_sw_stats *rx_stats)
1867 {
1868 #ifdef CONFIG_INET
1869 	int payload_off;
1870 	u16 segs;
1871 
1872 	segs = TPA_END_TPA_SEGS(tpa_end);
1873 	if (segs == 1)
1874 		return skb;
1875 
1876 	rx_stats->rx_hw_gro_packets++;
1877 	rx_stats->rx_hw_gro_wire_packets += segs;
1878 
1879 	NAPI_GRO_CB(skb)->count = segs;
1880 	skb_shinfo(skb)->gso_size =
1881 		le32_to_cpu(tpa_end1->rx_tpa_end_cmp_seg_len);
1882 	skb_shinfo(skb)->gso_type = tpa_info->gso_type;
1883 	if (bp->flags & BNXT_FLAG_CHIP_P5_PLUS)
1884 		payload_off = TPA_END_PAYLOAD_OFF_P5(tpa_end1);
1885 	else
1886 		payload_off = TPA_END_PAYLOAD_OFF(tpa_end);
1887 	skb = bp->gro_func(tpa_info, payload_off, TPA_END_GRO_TS(tpa_end), skb);
1888 	if (likely(skb))
1889 		tcp_gro_complete(skb);
1890 #endif
1891 	return skb;
1892 }
1893 
1894 /* Given the cfa_code of a received packet determine which
1895  * netdev (vf-rep or PF) the packet is destined to.
1896  */
bnxt_get_pkt_dev(struct bnxt * bp,u16 cfa_code)1897 static struct net_device *bnxt_get_pkt_dev(struct bnxt *bp, u16 cfa_code)
1898 {
1899 	struct net_device *dev = bnxt_get_vf_rep(bp, cfa_code);
1900 
1901 	/* if vf-rep dev is NULL, it must belong to the PF */
1902 	return dev ? dev : bp->dev;
1903 }
1904 
bnxt_tpa_end(struct bnxt * bp,struct bnxt_cp_ring_info * cpr,u32 * raw_cons,struct rx_tpa_end_cmp * tpa_end,struct rx_tpa_end_cmp_ext * tpa_end1,u8 * event)1905 static inline struct sk_buff *bnxt_tpa_end(struct bnxt *bp,
1906 					   struct bnxt_cp_ring_info *cpr,
1907 					   u32 *raw_cons,
1908 					   struct rx_tpa_end_cmp *tpa_end,
1909 					   struct rx_tpa_end_cmp_ext *tpa_end1,
1910 					   u8 *event)
1911 {
1912 	struct bnxt_napi *bnapi = cpr->bnapi;
1913 	struct bnxt_rx_ring_info *rxr = bnapi->rx_ring;
1914 	struct net_device *dev = bp->dev;
1915 	u8 *data_ptr, agg_bufs;
1916 	unsigned int len;
1917 	struct bnxt_tpa_info *tpa_info;
1918 	dma_addr_t mapping;
1919 	struct sk_buff *skb;
1920 	u16 idx = 0, agg_id;
1921 	void *data;
1922 	bool gro;
1923 
1924 	if (unlikely(bnapi->in_reset)) {
1925 		int rc = bnxt_discard_rx(bp, cpr, raw_cons, tpa_end);
1926 
1927 		if (rc < 0)
1928 			return ERR_PTR(-EBUSY);
1929 		return NULL;
1930 	}
1931 
1932 	if (bp->flags & BNXT_FLAG_CHIP_P5_PLUS) {
1933 		agg_id = TPA_END_AGG_ID_P5(tpa_end);
1934 		agg_id = bnxt_lookup_agg_idx(rxr, agg_id);
1935 		agg_bufs = TPA_END_AGG_BUFS_P5(tpa_end1);
1936 		tpa_info = &rxr->rx_tpa[agg_id];
1937 		if (unlikely(agg_bufs != tpa_info->agg_count)) {
1938 			netdev_warn(bp->dev, "TPA end agg_buf %d != expected agg_bufs %d\n",
1939 				    agg_bufs, tpa_info->agg_count);
1940 			agg_bufs = tpa_info->agg_count;
1941 		}
1942 		tpa_info->agg_count = 0;
1943 		*event |= BNXT_AGG_EVENT;
1944 		bnxt_free_agg_idx(rxr, agg_id);
1945 		idx = agg_id;
1946 		gro = !!(bp->flags & BNXT_FLAG_GRO);
1947 	} else {
1948 		agg_id = TPA_END_AGG_ID(tpa_end);
1949 		agg_bufs = TPA_END_AGG_BUFS(tpa_end);
1950 		tpa_info = &rxr->rx_tpa[agg_id];
1951 		idx = RING_CMP(*raw_cons);
1952 		if (agg_bufs) {
1953 			if (!bnxt_agg_bufs_valid(bp, cpr, agg_bufs, raw_cons))
1954 				return ERR_PTR(-EBUSY);
1955 
1956 			*event |= BNXT_AGG_EVENT;
1957 			idx = NEXT_CMP(idx);
1958 		}
1959 		gro = !!TPA_END_GRO(tpa_end);
1960 	}
1961 	data = tpa_info->data;
1962 	data_ptr = tpa_info->data_ptr;
1963 	prefetch(data_ptr);
1964 	len = tpa_info->len;
1965 	mapping = tpa_info->mapping;
1966 
1967 	if (unlikely(agg_bufs > MAX_SKB_FRAGS || TPA_END_ERRORS(tpa_end1))) {
1968 		bnxt_abort_tpa(cpr, idx, agg_bufs);
1969 		if (agg_bufs > MAX_SKB_FRAGS)
1970 			netdev_warn(bp->dev, "TPA frags %d exceeded MAX_SKB_FRAGS %d\n",
1971 				    agg_bufs, (int)MAX_SKB_FRAGS);
1972 		return NULL;
1973 	}
1974 
1975 	if (len <= bp->rx_copybreak) {
1976 		skb = bnxt_copy_skb(bnapi, data_ptr, len, mapping);
1977 		if (!skb) {
1978 			bnxt_abort_tpa(cpr, idx, agg_bufs);
1979 			cpr->sw_stats->rx.rx_oom_discards += 1;
1980 			return NULL;
1981 		}
1982 	} else {
1983 		u8 *new_data;
1984 		dma_addr_t new_mapping;
1985 
1986 		new_data = __bnxt_alloc_rx_frag(bp, &new_mapping, rxr,
1987 						GFP_ATOMIC);
1988 		if (!new_data) {
1989 			bnxt_abort_tpa(cpr, idx, agg_bufs);
1990 			cpr->sw_stats->rx.rx_oom_discards += 1;
1991 			return NULL;
1992 		}
1993 
1994 		tpa_info->data = new_data;
1995 		tpa_info->data_ptr = new_data + bp->rx_offset;
1996 		tpa_info->mapping = new_mapping;
1997 
1998 		skb = napi_build_skb(data, bp->rx_buf_size);
1999 		dma_sync_single_for_cpu(&bp->pdev->dev, mapping,
2000 					bp->rx_buf_use_size, bp->rx_dir);
2001 
2002 		if (!skb) {
2003 			page_pool_free_va(rxr->head_pool, data, true);
2004 			bnxt_abort_tpa(cpr, idx, agg_bufs);
2005 			cpr->sw_stats->rx.rx_oom_discards += 1;
2006 			return NULL;
2007 		}
2008 		skb_mark_for_recycle(skb);
2009 		skb_reserve(skb, bp->rx_offset);
2010 		skb_put(skb, len);
2011 	}
2012 
2013 	if (agg_bufs) {
2014 		skb = bnxt_rx_agg_netmems_skb(bp, cpr, skb, idx, agg_bufs,
2015 					      true);
2016 		if (!skb) {
2017 			/* Page reuse already handled by bnxt_rx_pages(). */
2018 			cpr->sw_stats->rx.rx_oom_discards += 1;
2019 			return NULL;
2020 		}
2021 	}
2022 
2023 	if (tpa_info->cfa_code_valid)
2024 		dev = bnxt_get_pkt_dev(bp, tpa_info->cfa_code);
2025 	skb->protocol = eth_type_trans(skb, dev);
2026 
2027 	if (tpa_info->hash_type != PKT_HASH_TYPE_NONE)
2028 		skb_set_hash(skb, tpa_info->rss_hash, tpa_info->hash_type);
2029 
2030 	if (tpa_info->vlan_valid &&
2031 	    (dev->features & BNXT_HW_FEATURE_VLAN_ALL_RX)) {
2032 		__be16 vlan_proto = htons(tpa_info->metadata >>
2033 					  RX_CMP_FLAGS2_METADATA_TPID_SFT);
2034 		u16 vtag = tpa_info->metadata & RX_CMP_FLAGS2_METADATA_TCI_MASK;
2035 
2036 		if (eth_type_vlan(vlan_proto)) {
2037 			__vlan_hwaccel_put_tag(skb, vlan_proto, vtag);
2038 		} else {
2039 			dev_kfree_skb(skb);
2040 			return NULL;
2041 		}
2042 	}
2043 
2044 	skb_checksum_none_assert(skb);
2045 	if (likely(tpa_info->flags2 & RX_TPA_START_CMP_FLAGS2_L4_CS_CALC)) {
2046 		skb->ip_summed = CHECKSUM_UNNECESSARY;
2047 		skb->csum_level =
2048 			(tpa_info->flags2 & RX_CMP_FLAGS2_T_L4_CS_CALC) >> 3;
2049 	}
2050 
2051 	if (gro)
2052 		skb = bnxt_gro_skb(bp, tpa_info, tpa_end, tpa_end1, skb,
2053 				   &cpr->sw_stats->rx);
2054 
2055 	return skb;
2056 }
2057 
bnxt_tpa_agg(struct bnxt * bp,struct bnxt_rx_ring_info * rxr,struct rx_agg_cmp * rx_agg)2058 static void bnxt_tpa_agg(struct bnxt *bp, struct bnxt_rx_ring_info *rxr,
2059 			 struct rx_agg_cmp *rx_agg)
2060 {
2061 	u16 agg_id = TPA_AGG_AGG_ID(rx_agg);
2062 	struct bnxt_tpa_info *tpa_info;
2063 
2064 	agg_id = bnxt_lookup_agg_idx(rxr, agg_id);
2065 	tpa_info = &rxr->rx_tpa[agg_id];
2066 	BUG_ON(tpa_info->agg_count >= MAX_SKB_FRAGS);
2067 	tpa_info->agg_arr[tpa_info->agg_count++] = *rx_agg;
2068 }
2069 
bnxt_deliver_skb(struct bnxt * bp,struct bnxt_napi * bnapi,struct sk_buff * skb)2070 static void bnxt_deliver_skb(struct bnxt *bp, struct bnxt_napi *bnapi,
2071 			     struct sk_buff *skb)
2072 {
2073 	skb_mark_for_recycle(skb);
2074 
2075 	if (skb->dev != bp->dev) {
2076 		/* this packet belongs to a vf-rep */
2077 		bnxt_vf_rep_rx(bp, skb);
2078 		return;
2079 	}
2080 	skb_record_rx_queue(skb, bnapi->index);
2081 	napi_gro_receive(&bnapi->napi, skb);
2082 }
2083 
bnxt_rx_ts_valid(struct bnxt * bp,u32 flags,struct rx_cmp_ext * rxcmp1,u32 * cmpl_ts)2084 static bool bnxt_rx_ts_valid(struct bnxt *bp, u32 flags,
2085 			     struct rx_cmp_ext *rxcmp1, u32 *cmpl_ts)
2086 {
2087 	u32 ts = le32_to_cpu(rxcmp1->rx_cmp_timestamp);
2088 
2089 	if (BNXT_PTP_RX_TS_VALID(flags))
2090 		goto ts_valid;
2091 	if (!bp->ptp_all_rx_tstamp || !ts || !BNXT_ALL_RX_TS_VALID(flags))
2092 		return false;
2093 
2094 ts_valid:
2095 	*cmpl_ts = ts;
2096 	return true;
2097 }
2098 
bnxt_rx_vlan(struct sk_buff * skb,u8 cmp_type,struct rx_cmp * rxcmp,struct rx_cmp_ext * rxcmp1)2099 static struct sk_buff *bnxt_rx_vlan(struct sk_buff *skb, u8 cmp_type,
2100 				    struct rx_cmp *rxcmp,
2101 				    struct rx_cmp_ext *rxcmp1)
2102 {
2103 	__be16 vlan_proto;
2104 	u16 vtag;
2105 
2106 	if (cmp_type == CMP_TYPE_RX_L2_CMP) {
2107 		__le32 flags2 = rxcmp1->rx_cmp_flags2;
2108 		u32 meta_data;
2109 
2110 		if (!(flags2 & cpu_to_le32(RX_CMP_FLAGS2_META_FORMAT_VLAN)))
2111 			return skb;
2112 
2113 		meta_data = le32_to_cpu(rxcmp1->rx_cmp_meta_data);
2114 		vtag = meta_data & RX_CMP_FLAGS2_METADATA_TCI_MASK;
2115 		vlan_proto = htons(meta_data >> RX_CMP_FLAGS2_METADATA_TPID_SFT);
2116 		if (eth_type_vlan(vlan_proto))
2117 			__vlan_hwaccel_put_tag(skb, vlan_proto, vtag);
2118 		else
2119 			goto vlan_err;
2120 	} else if (cmp_type == CMP_TYPE_RX_L2_V3_CMP) {
2121 		if (RX_CMP_VLAN_VALID(rxcmp)) {
2122 			u32 tpid_sel = RX_CMP_VLAN_TPID_SEL(rxcmp);
2123 
2124 			if (tpid_sel == RX_CMP_METADATA1_TPID_8021Q)
2125 				vlan_proto = htons(ETH_P_8021Q);
2126 			else if (tpid_sel == RX_CMP_METADATA1_TPID_8021AD)
2127 				vlan_proto = htons(ETH_P_8021AD);
2128 			else
2129 				goto vlan_err;
2130 			vtag = RX_CMP_METADATA0_TCI(rxcmp1);
2131 			__vlan_hwaccel_put_tag(skb, vlan_proto, vtag);
2132 		}
2133 	}
2134 	return skb;
2135 vlan_err:
2136 	skb_mark_for_recycle(skb);
2137 	dev_kfree_skb(skb);
2138 	return NULL;
2139 }
2140 
2141 /* returns the following:
2142  * 1       - 1 packet successfully received
2143  * 0       - successful TPA_START, packet not completed yet
2144  * -EBUSY  - completion ring does not have all the agg buffers yet
2145  * -ENOMEM - packet aborted due to out of memory
2146  * -EIO    - packet aborted due to hw error indicated in BD
2147  */
bnxt_rx_pkt(struct bnxt * bp,struct bnxt_cp_ring_info * cpr,u32 * raw_cons,u8 * event)2148 static int bnxt_rx_pkt(struct bnxt *bp, struct bnxt_cp_ring_info *cpr,
2149 		       u32 *raw_cons, u8 *event)
2150 {
2151 	struct bnxt_napi *bnapi = cpr->bnapi;
2152 	struct bnxt_rx_ring_info *rxr = bnapi->rx_ring;
2153 	struct net_device *dev = bp->dev;
2154 	struct rx_cmp *rxcmp;
2155 	struct rx_cmp_ext *rxcmp1;
2156 	u32 tmp_raw_cons = *raw_cons;
2157 	u16 cons, prod, cp_cons = RING_CMP(tmp_raw_cons);
2158 	struct skb_shared_info *sinfo;
2159 	struct bnxt_xdp_buff bnxt_xdp;
2160 	struct bnxt_sw_rx_bd *rx_buf;
2161 	unsigned int len;
2162 	u8 *data_ptr, agg_bufs, cmp_type;
2163 	bool xdp_active = false;
2164 	dma_addr_t dma_addr;
2165 	struct sk_buff *skb;
2166 	u32 flags, misc;
2167 	u32 cmpl_ts;
2168 	void *data;
2169 	int rc = 0;
2170 
2171 	rxcmp = (struct rx_cmp *)
2172 			&cpr->cp_desc_ring[CP_RING(cp_cons)][CP_IDX(cp_cons)];
2173 
2174 	cmp_type = RX_CMP_TYPE(rxcmp);
2175 
2176 	if (cmp_type == CMP_TYPE_RX_TPA_AGG_CMP) {
2177 		bnxt_tpa_agg(bp, rxr, (struct rx_agg_cmp *)rxcmp);
2178 		goto next_rx_no_prod_no_len;
2179 	}
2180 
2181 	tmp_raw_cons = NEXT_RAW_CMP(tmp_raw_cons);
2182 	cp_cons = RING_CMP(tmp_raw_cons);
2183 	rxcmp1 = (struct rx_cmp_ext *)
2184 			&cpr->cp_desc_ring[CP_RING(cp_cons)][CP_IDX(cp_cons)];
2185 
2186 	if (!RX_CMP_VALID(rxcmp1, tmp_raw_cons))
2187 		return -EBUSY;
2188 
2189 	/* The valid test of the entry must be done first before
2190 	 * reading any further.
2191 	 */
2192 	dma_rmb();
2193 	prod = rxr->rx_prod;
2194 
2195 	if (cmp_type == CMP_TYPE_RX_L2_TPA_START_CMP ||
2196 	    cmp_type == CMP_TYPE_RX_L2_TPA_START_V3_CMP) {
2197 		bnxt_tpa_start(bp, rxr, cmp_type,
2198 			       (struct rx_tpa_start_cmp *)rxcmp,
2199 			       (struct rx_tpa_start_cmp_ext *)rxcmp1);
2200 
2201 		*event |= BNXT_RX_EVENT;
2202 		goto next_rx_no_prod_no_len;
2203 
2204 	} else if (cmp_type == CMP_TYPE_RX_L2_TPA_END_CMP) {
2205 		skb = bnxt_tpa_end(bp, cpr, &tmp_raw_cons,
2206 				   (struct rx_tpa_end_cmp *)rxcmp,
2207 				   (struct rx_tpa_end_cmp_ext *)rxcmp1, event);
2208 
2209 		if (IS_ERR(skb))
2210 			return -EBUSY;
2211 
2212 		rc = -ENOMEM;
2213 		if (likely(skb)) {
2214 			bnxt_deliver_skb(bp, bnapi, skb);
2215 			rc = 1;
2216 		}
2217 		*event |= BNXT_RX_EVENT;
2218 		goto next_rx_no_prod_no_len;
2219 	}
2220 
2221 	cons = rxcmp->rx_cmp_opaque;
2222 	if (unlikely(cons != rxr->rx_next_cons)) {
2223 		int rc1 = bnxt_discard_rx(bp, cpr, &tmp_raw_cons, rxcmp);
2224 
2225 		/* 0xffff is forced error, don't print it */
2226 		if (rxr->rx_next_cons != 0xffff)
2227 			netdev_warn(bp->dev, "RX cons %x != expected cons %x\n",
2228 				    cons, rxr->rx_next_cons);
2229 		bnxt_sched_reset_rxr(bp, rxr);
2230 		if (rc1)
2231 			return rc1;
2232 		goto next_rx_no_prod_no_len;
2233 	}
2234 	rx_buf = &rxr->rx_buf_ring[cons];
2235 	data = rx_buf->data;
2236 	data_ptr = rx_buf->data_ptr;
2237 	prefetch(data_ptr);
2238 
2239 	misc = le32_to_cpu(rxcmp->rx_cmp_misc_v1);
2240 	agg_bufs = (misc & RX_CMP_AGG_BUFS) >> RX_CMP_AGG_BUFS_SHIFT;
2241 
2242 	if (agg_bufs) {
2243 		if (!bnxt_agg_bufs_valid(bp, cpr, agg_bufs, &tmp_raw_cons))
2244 			return -EBUSY;
2245 
2246 		cp_cons = NEXT_CMP(cp_cons);
2247 		*event |= BNXT_AGG_EVENT;
2248 	}
2249 	*event |= BNXT_RX_EVENT;
2250 
2251 	rx_buf->data = NULL;
2252 	if (rxcmp1->rx_cmp_cfa_code_errors_v2 & RX_CMP_L2_ERRORS) {
2253 		u32 rx_err = le32_to_cpu(rxcmp1->rx_cmp_cfa_code_errors_v2);
2254 
2255 		bnxt_reuse_rx_data(rxr, cons, data);
2256 		if (agg_bufs)
2257 			bnxt_reuse_rx_agg_bufs(cpr, cp_cons, 0, agg_bufs,
2258 					       false);
2259 
2260 		rc = -EIO;
2261 		if (rx_err & RX_CMPL_ERRORS_BUFFER_ERROR_MASK) {
2262 			bnapi->cp_ring.sw_stats->rx.rx_buf_errors++;
2263 			if (!(bp->flags & BNXT_FLAG_CHIP_P5_PLUS) &&
2264 			    !(bp->fw_cap & BNXT_FW_CAP_RING_MONITOR)) {
2265 				netdev_warn_once(bp->dev, "RX buffer error %x\n",
2266 						 rx_err);
2267 				bnxt_sched_reset_rxr(bp, rxr);
2268 			}
2269 		}
2270 		goto next_rx_no_len;
2271 	}
2272 
2273 	flags = le32_to_cpu(rxcmp->rx_cmp_len_flags_type);
2274 	len = flags >> RX_CMP_LEN_SHIFT;
2275 	dma_addr = rx_buf->mapping;
2276 
2277 	if (bnxt_xdp_attached(bp, rxr)) {
2278 		bnxt_xdp.rxcmp = rxcmp;
2279 		bnxt_xdp.rxcmp1 = rxcmp1;
2280 		bnxt_xdp.cmp_type = cmp_type;
2281 
2282 		bnxt_xdp_buff_init(bp, rxr, cons, data_ptr, len, &bnxt_xdp.xdp);
2283 		if (agg_bufs) {
2284 			u32 frag_len = bnxt_rx_agg_netmems_xdp(bp, cpr,
2285 							       &bnxt_xdp.xdp,
2286 							       cp_cons,
2287 							       agg_bufs,
2288 							       false);
2289 			if (!frag_len)
2290 				goto oom_next_rx;
2291 
2292 		}
2293 		xdp_active = true;
2294 	}
2295 
2296 	if (xdp_active) {
2297 		if (bnxt_rx_xdp(bp, rxr, cons, &bnxt_xdp.xdp, data, &data_ptr,
2298 				&len, event)) {
2299 			rc = 1;
2300 			goto next_rx;
2301 		}
2302 		if (xdp_buff_has_frags(&bnxt_xdp.xdp)) {
2303 			sinfo = xdp_get_shared_info_from_buff(&bnxt_xdp.xdp);
2304 			agg_bufs = sinfo->nr_frags;
2305 		} else {
2306 			agg_bufs = 0;
2307 		}
2308 	}
2309 
2310 	if (len <= bp->rx_copybreak) {
2311 		if (!xdp_active)
2312 			skb = bnxt_copy_skb(bnapi, data_ptr, len, dma_addr);
2313 		else
2314 			skb = bnxt_copy_xdp(bnapi, &bnxt_xdp.xdp, len,
2315 					    dma_addr);
2316 		bnxt_reuse_rx_data(rxr, cons, data);
2317 		if (!skb) {
2318 			if (agg_bufs) {
2319 				if (!xdp_active)
2320 					bnxt_reuse_rx_agg_bufs(cpr, cp_cons, 0,
2321 							       agg_bufs, false);
2322 				else
2323 					bnxt_xdp_buff_frags_free(rxr,
2324 								 &bnxt_xdp.xdp);
2325 			}
2326 			goto oom_next_rx;
2327 		}
2328 	} else {
2329 		u32 payload;
2330 
2331 		if (rx_buf->data_ptr == data_ptr)
2332 			payload = misc & RX_CMP_PAYLOAD_OFFSET;
2333 		else
2334 			payload = 0;
2335 		skb = bp->rx_skb_func(bp, rxr, cons, data, data_ptr, dma_addr,
2336 				      payload | len);
2337 		if (!skb)
2338 			goto oom_next_rx;
2339 	}
2340 
2341 	if (agg_bufs) {
2342 		if (!xdp_active) {
2343 			skb = bnxt_rx_agg_netmems_skb(bp, cpr, skb, cp_cons,
2344 						      agg_bufs, false);
2345 			if (!skb)
2346 				goto oom_next_rx;
2347 		} else {
2348 			skb = bnxt_xdp_build_skb(bp, skb, agg_bufs,
2349 						 rxr, &bnxt_xdp.xdp);
2350 			if (!skb) {
2351 				/* we should be able to free the old skb here */
2352 				bnxt_xdp_buff_frags_free(rxr, &bnxt_xdp.xdp);
2353 				goto oom_next_rx;
2354 			}
2355 		}
2356 	}
2357 
2358 	if (RX_CMP_HASH_VALID(rxcmp)) {
2359 		enum pkt_hash_types type;
2360 
2361 		if (cmp_type == CMP_TYPE_RX_L2_V3_CMP) {
2362 			type = bnxt_rss_ext_op(bp, rxcmp);
2363 		} else {
2364 			u32 itypes = RX_CMP_ITYPES(rxcmp);
2365 
2366 			if (itypes == RX_CMP_FLAGS_ITYPE_TCP ||
2367 			    itypes == RX_CMP_FLAGS_ITYPE_UDP)
2368 				type = PKT_HASH_TYPE_L4;
2369 			else
2370 				type = PKT_HASH_TYPE_L3;
2371 		}
2372 		skb_set_hash(skb, le32_to_cpu(rxcmp->rx_cmp_rss_hash), type);
2373 	}
2374 
2375 	if (cmp_type == CMP_TYPE_RX_L2_CMP)
2376 		dev = bnxt_get_pkt_dev(bp, RX_CMP_CFA_CODE(rxcmp1));
2377 	skb->protocol = eth_type_trans(skb, dev);
2378 
2379 	if (skb->dev->features & BNXT_HW_FEATURE_VLAN_ALL_RX) {
2380 		skb = bnxt_rx_vlan(skb, cmp_type, rxcmp, rxcmp1);
2381 		if (!skb)
2382 			goto next_rx;
2383 	}
2384 
2385 	skb_checksum_none_assert(skb);
2386 	if (RX_CMP_L4_CS_OK(rxcmp1)) {
2387 		if (dev->features & NETIF_F_RXCSUM) {
2388 			skb->ip_summed = CHECKSUM_UNNECESSARY;
2389 			skb->csum_level = RX_CMP_ENCAP(rxcmp1);
2390 		}
2391 	} else {
2392 		if (rxcmp1->rx_cmp_cfa_code_errors_v2 & RX_CMP_L4_CS_ERR_BITS) {
2393 			if (dev->features & NETIF_F_RXCSUM)
2394 				bnapi->cp_ring.sw_stats->rx.rx_l4_csum_errors++;
2395 		}
2396 	}
2397 
2398 	if (bnxt_rx_ts_valid(bp, flags, rxcmp1, &cmpl_ts)) {
2399 		if (bp->flags & BNXT_FLAG_CHIP_P5_PLUS) {
2400 			u64 ns, ts;
2401 
2402 			if (!bnxt_get_rx_ts_p5(bp, &ts, cmpl_ts)) {
2403 				struct bnxt_ptp_cfg *ptp = bp->ptp_cfg;
2404 
2405 				ns = bnxt_timecounter_cyc2time(ptp, ts);
2406 				memset(skb_hwtstamps(skb), 0,
2407 				       sizeof(*skb_hwtstamps(skb)));
2408 				skb_hwtstamps(skb)->hwtstamp = ns_to_ktime(ns);
2409 			}
2410 		}
2411 	}
2412 	bnxt_deliver_skb(bp, bnapi, skb);
2413 	rc = 1;
2414 
2415 next_rx:
2416 	cpr->rx_packets += 1;
2417 	cpr->rx_bytes += len;
2418 
2419 next_rx_no_len:
2420 	rxr->rx_prod = NEXT_RX(prod);
2421 	rxr->rx_next_cons = RING_RX(bp, NEXT_RX(cons));
2422 
2423 next_rx_no_prod_no_len:
2424 	*raw_cons = tmp_raw_cons;
2425 
2426 	return rc;
2427 
2428 oom_next_rx:
2429 	cpr->sw_stats->rx.rx_oom_discards += 1;
2430 	rc = -ENOMEM;
2431 	goto next_rx;
2432 }
2433 
2434 /* In netpoll mode, if we are using a combined completion ring, we need to
2435  * discard the rx packets and recycle the buffers.
2436  */
bnxt_force_rx_discard(struct bnxt * bp,struct bnxt_cp_ring_info * cpr,u32 * raw_cons,u8 * event)2437 static int bnxt_force_rx_discard(struct bnxt *bp,
2438 				 struct bnxt_cp_ring_info *cpr,
2439 				 u32 *raw_cons, u8 *event)
2440 {
2441 	u32 tmp_raw_cons = *raw_cons;
2442 	struct rx_cmp_ext *rxcmp1;
2443 	struct rx_cmp *rxcmp;
2444 	u16 cp_cons;
2445 	u8 cmp_type;
2446 	int rc;
2447 
2448 	cp_cons = RING_CMP(tmp_raw_cons);
2449 	rxcmp = (struct rx_cmp *)
2450 			&cpr->cp_desc_ring[CP_RING(cp_cons)][CP_IDX(cp_cons)];
2451 
2452 	tmp_raw_cons = NEXT_RAW_CMP(tmp_raw_cons);
2453 	cp_cons = RING_CMP(tmp_raw_cons);
2454 	rxcmp1 = (struct rx_cmp_ext *)
2455 			&cpr->cp_desc_ring[CP_RING(cp_cons)][CP_IDX(cp_cons)];
2456 
2457 	if (!RX_CMP_VALID(rxcmp1, tmp_raw_cons))
2458 		return -EBUSY;
2459 
2460 	/* The valid test of the entry must be done first before
2461 	 * reading any further.
2462 	 */
2463 	dma_rmb();
2464 	cmp_type = RX_CMP_TYPE(rxcmp);
2465 	if (cmp_type == CMP_TYPE_RX_L2_CMP ||
2466 	    cmp_type == CMP_TYPE_RX_L2_V3_CMP) {
2467 		rxcmp1->rx_cmp_cfa_code_errors_v2 |=
2468 			cpu_to_le32(RX_CMPL_ERRORS_CRC_ERROR);
2469 	} else if (cmp_type == CMP_TYPE_RX_L2_TPA_END_CMP) {
2470 		struct rx_tpa_end_cmp_ext *tpa_end1;
2471 
2472 		tpa_end1 = (struct rx_tpa_end_cmp_ext *)rxcmp1;
2473 		tpa_end1->rx_tpa_end_cmp_errors_v2 |=
2474 			cpu_to_le32(RX_TPA_END_CMP_ERRORS);
2475 	}
2476 	rc = bnxt_rx_pkt(bp, cpr, raw_cons, event);
2477 	if (rc && rc != -EBUSY)
2478 		cpr->sw_stats->rx.rx_netpoll_discards += 1;
2479 	return rc;
2480 }
2481 
bnxt_fw_health_readl(struct bnxt * bp,int reg_idx)2482 u32 bnxt_fw_health_readl(struct bnxt *bp, int reg_idx)
2483 {
2484 	struct bnxt_fw_health *fw_health = bp->fw_health;
2485 	u32 reg = fw_health->regs[reg_idx];
2486 	u32 reg_type, reg_off, val = 0;
2487 
2488 	reg_type = BNXT_FW_HEALTH_REG_TYPE(reg);
2489 	reg_off = BNXT_FW_HEALTH_REG_OFF(reg);
2490 	switch (reg_type) {
2491 	case BNXT_FW_HEALTH_REG_TYPE_CFG:
2492 		pci_read_config_dword(bp->pdev, reg_off, &val);
2493 		break;
2494 	case BNXT_FW_HEALTH_REG_TYPE_GRC:
2495 		reg_off = fw_health->mapped_regs[reg_idx];
2496 		fallthrough;
2497 	case BNXT_FW_HEALTH_REG_TYPE_BAR0:
2498 		val = readl(bp->bar0 + reg_off);
2499 		break;
2500 	case BNXT_FW_HEALTH_REG_TYPE_BAR1:
2501 		val = readl(bp->bar1 + reg_off);
2502 		break;
2503 	}
2504 	if (reg_idx == BNXT_FW_RESET_INPROG_REG)
2505 		val &= fw_health->fw_reset_inprog_reg_mask;
2506 	return val;
2507 }
2508 
bnxt_agg_ring_id_to_grp_idx(struct bnxt * bp,u16 ring_id)2509 static u16 bnxt_agg_ring_id_to_grp_idx(struct bnxt *bp, u16 ring_id)
2510 {
2511 	int i;
2512 
2513 	for (i = 0; i < bp->rx_nr_rings; i++) {
2514 		u16 grp_idx = bp->rx_ring[i].bnapi->index;
2515 		struct bnxt_ring_grp_info *grp_info;
2516 
2517 		grp_info = &bp->grp_info[grp_idx];
2518 		if (grp_info->agg_fw_ring_id == ring_id)
2519 			return grp_idx;
2520 	}
2521 	return INVALID_HW_RING_ID;
2522 }
2523 
bnxt_get_force_speed(struct bnxt_link_info * link_info)2524 static u16 bnxt_get_force_speed(struct bnxt_link_info *link_info)
2525 {
2526 	struct bnxt *bp = container_of(link_info, struct bnxt, link_info);
2527 
2528 	if (bp->phy_flags & BNXT_PHY_FL_SPEEDS2)
2529 		return link_info->force_link_speed2;
2530 	if (link_info->req_signal_mode == BNXT_SIG_MODE_PAM4)
2531 		return link_info->force_pam4_link_speed;
2532 	return link_info->force_link_speed;
2533 }
2534 
bnxt_set_force_speed(struct bnxt_link_info * link_info)2535 static void bnxt_set_force_speed(struct bnxt_link_info *link_info)
2536 {
2537 	struct bnxt *bp = container_of(link_info, struct bnxt, link_info);
2538 
2539 	if (bp->phy_flags & BNXT_PHY_FL_SPEEDS2) {
2540 		link_info->req_link_speed = link_info->force_link_speed2;
2541 		link_info->req_signal_mode = BNXT_SIG_MODE_NRZ;
2542 		switch (link_info->req_link_speed) {
2543 		case BNXT_LINK_SPEED_50GB_PAM4:
2544 		case BNXT_LINK_SPEED_100GB_PAM4:
2545 		case BNXT_LINK_SPEED_200GB_PAM4:
2546 		case BNXT_LINK_SPEED_400GB_PAM4:
2547 			link_info->req_signal_mode = BNXT_SIG_MODE_PAM4;
2548 			break;
2549 		case BNXT_LINK_SPEED_100GB_PAM4_112:
2550 		case BNXT_LINK_SPEED_200GB_PAM4_112:
2551 		case BNXT_LINK_SPEED_400GB_PAM4_112:
2552 			link_info->req_signal_mode = BNXT_SIG_MODE_PAM4_112;
2553 			break;
2554 		default:
2555 			link_info->req_signal_mode = BNXT_SIG_MODE_NRZ;
2556 		}
2557 		return;
2558 	}
2559 	link_info->req_link_speed = link_info->force_link_speed;
2560 	link_info->req_signal_mode = BNXT_SIG_MODE_NRZ;
2561 	if (link_info->force_pam4_link_speed) {
2562 		link_info->req_link_speed = link_info->force_pam4_link_speed;
2563 		link_info->req_signal_mode = BNXT_SIG_MODE_PAM4;
2564 	}
2565 }
2566 
bnxt_set_auto_speed(struct bnxt_link_info * link_info)2567 static void bnxt_set_auto_speed(struct bnxt_link_info *link_info)
2568 {
2569 	struct bnxt *bp = container_of(link_info, struct bnxt, link_info);
2570 
2571 	if (bp->phy_flags & BNXT_PHY_FL_SPEEDS2) {
2572 		link_info->advertising = link_info->auto_link_speeds2;
2573 		return;
2574 	}
2575 	link_info->advertising = link_info->auto_link_speeds;
2576 	link_info->advertising_pam4 = link_info->auto_pam4_link_speeds;
2577 }
2578 
bnxt_force_speed_updated(struct bnxt_link_info * link_info)2579 static bool bnxt_force_speed_updated(struct bnxt_link_info *link_info)
2580 {
2581 	struct bnxt *bp = container_of(link_info, struct bnxt, link_info);
2582 
2583 	if (bp->phy_flags & BNXT_PHY_FL_SPEEDS2) {
2584 		if (link_info->req_link_speed != link_info->force_link_speed2)
2585 			return true;
2586 		return false;
2587 	}
2588 	if (link_info->req_signal_mode == BNXT_SIG_MODE_NRZ &&
2589 	    link_info->req_link_speed != link_info->force_link_speed)
2590 		return true;
2591 	if (link_info->req_signal_mode == BNXT_SIG_MODE_PAM4 &&
2592 	    link_info->req_link_speed != link_info->force_pam4_link_speed)
2593 		return true;
2594 	return false;
2595 }
2596 
bnxt_auto_speed_updated(struct bnxt_link_info * link_info)2597 static bool bnxt_auto_speed_updated(struct bnxt_link_info *link_info)
2598 {
2599 	struct bnxt *bp = container_of(link_info, struct bnxt, link_info);
2600 
2601 	if (bp->phy_flags & BNXT_PHY_FL_SPEEDS2) {
2602 		if (link_info->advertising != link_info->auto_link_speeds2)
2603 			return true;
2604 		return false;
2605 	}
2606 	if (link_info->advertising != link_info->auto_link_speeds ||
2607 	    link_info->advertising_pam4 != link_info->auto_pam4_link_speeds)
2608 		return true;
2609 	return false;
2610 }
2611 
bnxt_bs_trace_avail(struct bnxt * bp,u16 type)2612 bool bnxt_bs_trace_avail(struct bnxt *bp, u16 type)
2613 {
2614 	u32 flags = bp->ctx->ctx_arr[type].flags;
2615 
2616 	return (flags & BNXT_CTX_MEM_TYPE_VALID) &&
2617 		((flags & BNXT_CTX_MEM_FW_TRACE) ||
2618 		 (flags & BNXT_CTX_MEM_FW_BIN_TRACE));
2619 }
2620 
bnxt_bs_trace_init(struct bnxt * bp,struct bnxt_ctx_mem_type * ctxm)2621 static void bnxt_bs_trace_init(struct bnxt *bp, struct bnxt_ctx_mem_type *ctxm)
2622 {
2623 	u32 mem_size, pages, rem_bytes, magic_byte_offset;
2624 	u16 trace_type = bnxt_bstore_to_trace[ctxm->type];
2625 	struct bnxt_ctx_pg_info *ctx_pg = ctxm->pg_info;
2626 	struct bnxt_ring_mem_info *rmem, *rmem_pg_tbl;
2627 	struct bnxt_bs_trace_info *bs_trace;
2628 	int last_pg;
2629 
2630 	if (ctxm->instance_bmap && ctxm->instance_bmap > 1)
2631 		return;
2632 
2633 	mem_size = ctxm->max_entries * ctxm->entry_size;
2634 	rem_bytes = mem_size % BNXT_PAGE_SIZE;
2635 	pages = DIV_ROUND_UP(mem_size, BNXT_PAGE_SIZE);
2636 
2637 	last_pg = (pages - 1) & (MAX_CTX_PAGES - 1);
2638 	magic_byte_offset = (rem_bytes ? rem_bytes : BNXT_PAGE_SIZE) - 1;
2639 
2640 	rmem = &ctx_pg[0].ring_mem;
2641 	bs_trace = &bp->bs_trace[trace_type];
2642 	bs_trace->ctx_type = ctxm->type;
2643 	bs_trace->trace_type = trace_type;
2644 	if (pages > MAX_CTX_PAGES) {
2645 		int last_pg_dir = rmem->nr_pages - 1;
2646 
2647 		rmem_pg_tbl = &ctx_pg[0].ctx_pg_tbl[last_pg_dir]->ring_mem;
2648 		bs_trace->magic_byte = rmem_pg_tbl->pg_arr[last_pg];
2649 	} else {
2650 		bs_trace->magic_byte = rmem->pg_arr[last_pg];
2651 	}
2652 	bs_trace->magic_byte += magic_byte_offset;
2653 	*bs_trace->magic_byte = BNXT_TRACE_BUF_MAGIC_BYTE;
2654 }
2655 
2656 #define BNXT_EVENT_BUF_PRODUCER_TYPE(data1)				\
2657 	(((data1) & ASYNC_EVENT_CMPL_DBG_BUF_PRODUCER_EVENT_DATA1_TYPE_MASK) >>\
2658 	 ASYNC_EVENT_CMPL_DBG_BUF_PRODUCER_EVENT_DATA1_TYPE_SFT)
2659 
2660 #define BNXT_EVENT_BUF_PRODUCER_OFFSET(data2)				\
2661 	(((data2) &							\
2662 	  ASYNC_EVENT_CMPL_DBG_BUF_PRODUCER_EVENT_DATA2_CURR_OFF_MASK) >>\
2663 	 ASYNC_EVENT_CMPL_DBG_BUF_PRODUCER_EVENT_DATA2_CURR_OFF_SFT)
2664 
2665 #define BNXT_EVENT_THERMAL_CURRENT_TEMP(data2)				\
2666 	((data2) &							\
2667 	  ASYNC_EVENT_CMPL_ERROR_REPORT_THERMAL_EVENT_DATA2_CURRENT_TEMP_MASK)
2668 
2669 #define BNXT_EVENT_THERMAL_THRESHOLD_TEMP(data2)			\
2670 	(((data2) &							\
2671 	  ASYNC_EVENT_CMPL_ERROR_REPORT_THERMAL_EVENT_DATA2_THRESHOLD_TEMP_MASK) >>\
2672 	 ASYNC_EVENT_CMPL_ERROR_REPORT_THERMAL_EVENT_DATA2_THRESHOLD_TEMP_SFT)
2673 
2674 #define EVENT_DATA1_THERMAL_THRESHOLD_TYPE(data1)			\
2675 	((data1) &							\
2676 	 ASYNC_EVENT_CMPL_ERROR_REPORT_THERMAL_EVENT_DATA1_THRESHOLD_TYPE_MASK)
2677 
2678 #define EVENT_DATA1_THERMAL_THRESHOLD_DIR_INCREASING(data1)		\
2679 	(((data1) &							\
2680 	  ASYNC_EVENT_CMPL_ERROR_REPORT_THERMAL_EVENT_DATA1_TRANSITION_DIR) ==\
2681 	 ASYNC_EVENT_CMPL_ERROR_REPORT_THERMAL_EVENT_DATA1_TRANSITION_DIR_INCREASING)
2682 
2683 /* Return true if the workqueue has to be scheduled */
bnxt_event_error_report(struct bnxt * bp,u32 data1,u32 data2)2684 static bool bnxt_event_error_report(struct bnxt *bp, u32 data1, u32 data2)
2685 {
2686 	u32 err_type = BNXT_EVENT_ERROR_REPORT_TYPE(data1);
2687 
2688 	switch (err_type) {
2689 	case ASYNC_EVENT_CMPL_ERROR_REPORT_BASE_EVENT_DATA1_ERROR_TYPE_INVALID_SIGNAL:
2690 		netdev_err(bp->dev, "1PPS: Received invalid signal on pin%lu from the external source. Please fix the signal and reconfigure the pin\n",
2691 			   BNXT_EVENT_INVALID_SIGNAL_DATA(data2));
2692 		break;
2693 	case ASYNC_EVENT_CMPL_ERROR_REPORT_BASE_EVENT_DATA1_ERROR_TYPE_PAUSE_STORM:
2694 		netdev_warn(bp->dev, "Pause Storm detected!\n");
2695 		break;
2696 	case ASYNC_EVENT_CMPL_ERROR_REPORT_BASE_EVENT_DATA1_ERROR_TYPE_DOORBELL_DROP_THRESHOLD:
2697 		netdev_warn(bp->dev, "One or more MMIO doorbells dropped by the device!\n");
2698 		break;
2699 	case ASYNC_EVENT_CMPL_ERROR_REPORT_BASE_EVENT_DATA1_ERROR_TYPE_THERMAL_THRESHOLD: {
2700 		u32 type = EVENT_DATA1_THERMAL_THRESHOLD_TYPE(data1);
2701 		char *threshold_type;
2702 		bool notify = false;
2703 		char *dir_str;
2704 
2705 		switch (type) {
2706 		case ASYNC_EVENT_CMPL_ERROR_REPORT_THERMAL_EVENT_DATA1_THRESHOLD_TYPE_WARN:
2707 			threshold_type = "warning";
2708 			break;
2709 		case ASYNC_EVENT_CMPL_ERROR_REPORT_THERMAL_EVENT_DATA1_THRESHOLD_TYPE_CRITICAL:
2710 			threshold_type = "critical";
2711 			break;
2712 		case ASYNC_EVENT_CMPL_ERROR_REPORT_THERMAL_EVENT_DATA1_THRESHOLD_TYPE_FATAL:
2713 			threshold_type = "fatal";
2714 			break;
2715 		case ASYNC_EVENT_CMPL_ERROR_REPORT_THERMAL_EVENT_DATA1_THRESHOLD_TYPE_SHUTDOWN:
2716 			threshold_type = "shutdown";
2717 			break;
2718 		default:
2719 			netdev_err(bp->dev, "Unknown Thermal threshold type event\n");
2720 			return false;
2721 		}
2722 		if (EVENT_DATA1_THERMAL_THRESHOLD_DIR_INCREASING(data1)) {
2723 			dir_str = "above";
2724 			notify = true;
2725 		} else {
2726 			dir_str = "below";
2727 		}
2728 		netdev_warn(bp->dev, "Chip temperature has gone %s the %s thermal threshold!\n",
2729 			    dir_str, threshold_type);
2730 		netdev_warn(bp->dev, "Temperature (In Celsius), Current: %lu, threshold: %lu\n",
2731 			    BNXT_EVENT_THERMAL_CURRENT_TEMP(data2),
2732 			    BNXT_EVENT_THERMAL_THRESHOLD_TEMP(data2));
2733 		if (notify) {
2734 			bp->thermal_threshold_type = type;
2735 			set_bit(BNXT_THERMAL_THRESHOLD_SP_EVENT, &bp->sp_event);
2736 			return true;
2737 		}
2738 		return false;
2739 	}
2740 	case ASYNC_EVENT_CMPL_ERROR_REPORT_BASE_EVENT_DATA1_ERROR_TYPE_DUAL_DATA_RATE_NOT_SUPPORTED:
2741 		netdev_warn(bp->dev, "Speed change not supported with dual rate transceivers on this board\n");
2742 		break;
2743 	default:
2744 		netdev_err(bp->dev, "FW reported unknown error type %u\n",
2745 			   err_type);
2746 		break;
2747 	}
2748 	return false;
2749 }
2750 
2751 #define BNXT_GET_EVENT_PORT(data)	\
2752 	((data) &			\
2753 	 ASYNC_EVENT_CMPL_PORT_CONN_NOT_ALLOWED_EVENT_DATA1_PORT_ID_MASK)
2754 
2755 #define BNXT_EVENT_RING_TYPE(data2)	\
2756 	((data2) &			\
2757 	 ASYNC_EVENT_CMPL_RING_MONITOR_MSG_EVENT_DATA2_DISABLE_RING_TYPE_MASK)
2758 
2759 #define BNXT_EVENT_RING_TYPE_RX(data2)	\
2760 	(BNXT_EVENT_RING_TYPE(data2) ==	\
2761 	 ASYNC_EVENT_CMPL_RING_MONITOR_MSG_EVENT_DATA2_DISABLE_RING_TYPE_RX)
2762 
2763 #define BNXT_EVENT_PHC_EVENT_TYPE(data1)	\
2764 	(((data1) & ASYNC_EVENT_CMPL_PHC_UPDATE_EVENT_DATA1_FLAGS_MASK) >>\
2765 	 ASYNC_EVENT_CMPL_PHC_UPDATE_EVENT_DATA1_FLAGS_SFT)
2766 
2767 #define BNXT_EVENT_PHC_RTC_UPDATE(data1)	\
2768 	(((data1) & ASYNC_EVENT_CMPL_PHC_UPDATE_EVENT_DATA1_PHC_TIME_MSB_MASK) >>\
2769 	 ASYNC_EVENT_CMPL_PHC_UPDATE_EVENT_DATA1_PHC_TIME_MSB_SFT)
2770 
2771 #define BNXT_PHC_BITS	48
2772 
bnxt_async_event_process(struct bnxt * bp,struct hwrm_async_event_cmpl * cmpl)2773 static int bnxt_async_event_process(struct bnxt *bp,
2774 				    struct hwrm_async_event_cmpl *cmpl)
2775 {
2776 	u16 event_id = le16_to_cpu(cmpl->event_id);
2777 	u32 data1 = le32_to_cpu(cmpl->event_data1);
2778 	u32 data2 = le32_to_cpu(cmpl->event_data2);
2779 
2780 	netdev_dbg(bp->dev, "hwrm event 0x%x {0x%x, 0x%x}\n",
2781 		   event_id, data1, data2);
2782 
2783 	/* TODO CHIMP_FW: Define event id's for link change, error etc */
2784 	switch (event_id) {
2785 	case ASYNC_EVENT_CMPL_EVENT_ID_LINK_SPEED_CFG_CHANGE: {
2786 		struct bnxt_link_info *link_info = &bp->link_info;
2787 
2788 		if (BNXT_VF(bp))
2789 			goto async_event_process_exit;
2790 
2791 		/* print unsupported speed warning in forced speed mode only */
2792 		if (!(link_info->autoneg & BNXT_AUTONEG_SPEED) &&
2793 		    (data1 & 0x20000)) {
2794 			u16 fw_speed = bnxt_get_force_speed(link_info);
2795 			u32 speed = bnxt_fw_to_ethtool_speed(fw_speed);
2796 
2797 			if (speed != SPEED_UNKNOWN)
2798 				netdev_warn(bp->dev, "Link speed %d no longer supported\n",
2799 					    speed);
2800 		}
2801 		set_bit(BNXT_LINK_SPEED_CHNG_SP_EVENT, &bp->sp_event);
2802 	}
2803 		fallthrough;
2804 	case ASYNC_EVENT_CMPL_EVENT_ID_LINK_SPEED_CHANGE:
2805 	case ASYNC_EVENT_CMPL_EVENT_ID_PORT_PHY_CFG_CHANGE:
2806 		set_bit(BNXT_LINK_CFG_CHANGE_SP_EVENT, &bp->sp_event);
2807 		fallthrough;
2808 	case ASYNC_EVENT_CMPL_EVENT_ID_LINK_STATUS_CHANGE:
2809 		set_bit(BNXT_LINK_CHNG_SP_EVENT, &bp->sp_event);
2810 		break;
2811 	case ASYNC_EVENT_CMPL_EVENT_ID_PF_DRVR_UNLOAD:
2812 		set_bit(BNXT_HWRM_PF_UNLOAD_SP_EVENT, &bp->sp_event);
2813 		break;
2814 	case ASYNC_EVENT_CMPL_EVENT_ID_PORT_CONN_NOT_ALLOWED: {
2815 		u16 port_id = BNXT_GET_EVENT_PORT(data1);
2816 
2817 		if (BNXT_VF(bp))
2818 			break;
2819 
2820 		if (bp->pf.port_id != port_id)
2821 			break;
2822 
2823 		set_bit(BNXT_HWRM_PORT_MODULE_SP_EVENT, &bp->sp_event);
2824 		break;
2825 	}
2826 	case ASYNC_EVENT_CMPL_EVENT_ID_VF_CFG_CHANGE:
2827 		if (BNXT_PF(bp))
2828 			goto async_event_process_exit;
2829 		set_bit(BNXT_RESET_TASK_SILENT_SP_EVENT, &bp->sp_event);
2830 		break;
2831 	case ASYNC_EVENT_CMPL_EVENT_ID_RESET_NOTIFY: {
2832 		char *type_str = "Solicited";
2833 
2834 		if (!bp->fw_health)
2835 			goto async_event_process_exit;
2836 
2837 		bp->fw_reset_timestamp = jiffies;
2838 		bp->fw_reset_min_dsecs = cmpl->timestamp_lo;
2839 		if (!bp->fw_reset_min_dsecs)
2840 			bp->fw_reset_min_dsecs = BNXT_DFLT_FW_RST_MIN_DSECS;
2841 		bp->fw_reset_max_dsecs = le16_to_cpu(cmpl->timestamp_hi);
2842 		if (!bp->fw_reset_max_dsecs)
2843 			bp->fw_reset_max_dsecs = BNXT_DFLT_FW_RST_MAX_DSECS;
2844 		if (EVENT_DATA1_RESET_NOTIFY_FW_ACTIVATION(data1)) {
2845 			set_bit(BNXT_STATE_FW_ACTIVATE_RESET, &bp->state);
2846 		} else if (EVENT_DATA1_RESET_NOTIFY_FATAL(data1)) {
2847 			type_str = "Fatal";
2848 			bp->fw_health->fatalities++;
2849 			set_bit(BNXT_STATE_FW_FATAL_COND, &bp->state);
2850 		} else if (data2 && BNXT_FW_STATUS_HEALTHY !=
2851 			   EVENT_DATA2_RESET_NOTIFY_FW_STATUS_CODE(data2)) {
2852 			type_str = "Non-fatal";
2853 			bp->fw_health->survivals++;
2854 			set_bit(BNXT_STATE_FW_NON_FATAL_COND, &bp->state);
2855 		}
2856 		netif_warn(bp, hw, bp->dev,
2857 			   "%s firmware reset event, data1: 0x%x, data2: 0x%x, min wait %u ms, max wait %u ms\n",
2858 			   type_str, data1, data2,
2859 			   bp->fw_reset_min_dsecs * 100,
2860 			   bp->fw_reset_max_dsecs * 100);
2861 		set_bit(BNXT_FW_RESET_NOTIFY_SP_EVENT, &bp->sp_event);
2862 		break;
2863 	}
2864 	case ASYNC_EVENT_CMPL_EVENT_ID_ERROR_RECOVERY: {
2865 		struct bnxt_fw_health *fw_health = bp->fw_health;
2866 		char *status_desc = "healthy";
2867 		u32 status;
2868 
2869 		if (!fw_health)
2870 			goto async_event_process_exit;
2871 
2872 		if (!EVENT_DATA1_RECOVERY_ENABLED(data1)) {
2873 			fw_health->enabled = false;
2874 			netif_info(bp, drv, bp->dev, "Driver recovery watchdog is disabled\n");
2875 			break;
2876 		}
2877 		fw_health->primary = EVENT_DATA1_RECOVERY_MASTER_FUNC(data1);
2878 		fw_health->tmr_multiplier =
2879 			DIV_ROUND_UP(fw_health->polling_dsecs * HZ,
2880 				     bp->current_interval * 10);
2881 		fw_health->tmr_counter = fw_health->tmr_multiplier;
2882 		if (!fw_health->enabled)
2883 			fw_health->last_fw_heartbeat =
2884 				bnxt_fw_health_readl(bp, BNXT_FW_HEARTBEAT_REG);
2885 		fw_health->last_fw_reset_cnt =
2886 			bnxt_fw_health_readl(bp, BNXT_FW_RESET_CNT_REG);
2887 		status = bnxt_fw_health_readl(bp, BNXT_FW_HEALTH_REG);
2888 		if (status != BNXT_FW_STATUS_HEALTHY)
2889 			status_desc = "unhealthy";
2890 		netif_info(bp, drv, bp->dev,
2891 			   "Driver recovery watchdog, role: %s, firmware status: 0x%x (%s), resets: %u\n",
2892 			   fw_health->primary ? "primary" : "backup", status,
2893 			   status_desc, fw_health->last_fw_reset_cnt);
2894 		if (!fw_health->enabled) {
2895 			/* Make sure tmr_counter is set and visible to
2896 			 * bnxt_health_check() before setting enabled to true.
2897 			 */
2898 			smp_wmb();
2899 			fw_health->enabled = true;
2900 		}
2901 		goto async_event_process_exit;
2902 	}
2903 	case ASYNC_EVENT_CMPL_EVENT_ID_DEBUG_NOTIFICATION:
2904 		netif_notice(bp, hw, bp->dev,
2905 			     "Received firmware debug notification, data1: 0x%x, data2: 0x%x\n",
2906 			     data1, data2);
2907 		goto async_event_process_exit;
2908 	case ASYNC_EVENT_CMPL_EVENT_ID_RING_MONITOR_MSG: {
2909 		struct bnxt_rx_ring_info *rxr;
2910 		u16 grp_idx;
2911 
2912 		if (bp->flags & BNXT_FLAG_CHIP_P5_PLUS)
2913 			goto async_event_process_exit;
2914 
2915 		netdev_warn(bp->dev, "Ring monitor event, ring type %lu id 0x%x\n",
2916 			    BNXT_EVENT_RING_TYPE(data2), data1);
2917 		if (!BNXT_EVENT_RING_TYPE_RX(data2))
2918 			goto async_event_process_exit;
2919 
2920 		grp_idx = bnxt_agg_ring_id_to_grp_idx(bp, data1);
2921 		if (grp_idx == INVALID_HW_RING_ID) {
2922 			netdev_warn(bp->dev, "Unknown RX agg ring id 0x%x\n",
2923 				    data1);
2924 			goto async_event_process_exit;
2925 		}
2926 		rxr = bp->bnapi[grp_idx]->rx_ring;
2927 		bnxt_sched_reset_rxr(bp, rxr);
2928 		goto async_event_process_exit;
2929 	}
2930 	case ASYNC_EVENT_CMPL_EVENT_ID_ECHO_REQUEST: {
2931 		struct bnxt_fw_health *fw_health = bp->fw_health;
2932 
2933 		netif_notice(bp, hw, bp->dev,
2934 			     "Received firmware echo request, data1: 0x%x, data2: 0x%x\n",
2935 			     data1, data2);
2936 		if (fw_health) {
2937 			fw_health->echo_req_data1 = data1;
2938 			fw_health->echo_req_data2 = data2;
2939 			set_bit(BNXT_FW_ECHO_REQUEST_SP_EVENT, &bp->sp_event);
2940 			break;
2941 		}
2942 		goto async_event_process_exit;
2943 	}
2944 	case ASYNC_EVENT_CMPL_EVENT_ID_PPS_TIMESTAMP: {
2945 		bnxt_ptp_pps_event(bp, data1, data2);
2946 		goto async_event_process_exit;
2947 	}
2948 	case ASYNC_EVENT_CMPL_EVENT_ID_ERROR_REPORT: {
2949 		if (bnxt_event_error_report(bp, data1, data2))
2950 			break;
2951 		goto async_event_process_exit;
2952 	}
2953 	case ASYNC_EVENT_CMPL_EVENT_ID_PHC_UPDATE: {
2954 		switch (BNXT_EVENT_PHC_EVENT_TYPE(data1)) {
2955 		case ASYNC_EVENT_CMPL_PHC_UPDATE_EVENT_DATA1_FLAGS_PHC_RTC_UPDATE:
2956 			if (BNXT_PTP_USE_RTC(bp)) {
2957 				struct bnxt_ptp_cfg *ptp = bp->ptp_cfg;
2958 				unsigned long flags;
2959 				u64 ns;
2960 
2961 				if (!ptp)
2962 					goto async_event_process_exit;
2963 
2964 				bnxt_ptp_update_current_time(bp);
2965 				ns = (((u64)BNXT_EVENT_PHC_RTC_UPDATE(data1) <<
2966 				       BNXT_PHC_BITS) | ptp->current_time);
2967 				write_seqlock_irqsave(&ptp->ptp_lock, flags);
2968 				bnxt_ptp_rtc_timecounter_init(ptp, ns);
2969 				write_sequnlock_irqrestore(&ptp->ptp_lock, flags);
2970 			}
2971 			break;
2972 		}
2973 		goto async_event_process_exit;
2974 	}
2975 	case ASYNC_EVENT_CMPL_EVENT_ID_DEFERRED_RESPONSE: {
2976 		u16 seq_id = le32_to_cpu(cmpl->event_data2) & 0xffff;
2977 
2978 		hwrm_update_token(bp, seq_id, BNXT_HWRM_DEFERRED);
2979 		goto async_event_process_exit;
2980 	}
2981 	case ASYNC_EVENT_CMPL_EVENT_ID_DBG_BUF_PRODUCER: {
2982 		u16 type = (u16)BNXT_EVENT_BUF_PRODUCER_TYPE(data1);
2983 		u32 offset =  BNXT_EVENT_BUF_PRODUCER_OFFSET(data2);
2984 
2985 		if (type >= ARRAY_SIZE(bp->bs_trace))
2986 			goto async_event_process_exit;
2987 		bnxt_bs_trace_check_wrap(&bp->bs_trace[type], offset);
2988 		goto async_event_process_exit;
2989 	}
2990 	default:
2991 		goto async_event_process_exit;
2992 	}
2993 	__bnxt_queue_sp_work(bp);
2994 async_event_process_exit:
2995 	bnxt_ulp_async_events(bp, cmpl);
2996 	return 0;
2997 }
2998 
bnxt_hwrm_handler(struct bnxt * bp,struct tx_cmp * txcmp)2999 static int bnxt_hwrm_handler(struct bnxt *bp, struct tx_cmp *txcmp)
3000 {
3001 	u16 cmpl_type = TX_CMP_TYPE(txcmp), vf_id, seq_id;
3002 	struct hwrm_cmpl *h_cmpl = (struct hwrm_cmpl *)txcmp;
3003 	struct hwrm_fwd_req_cmpl *fwd_req_cmpl =
3004 				(struct hwrm_fwd_req_cmpl *)txcmp;
3005 
3006 	switch (cmpl_type) {
3007 	case CMPL_BASE_TYPE_HWRM_DONE:
3008 		seq_id = le16_to_cpu(h_cmpl->sequence_id);
3009 		hwrm_update_token(bp, seq_id, BNXT_HWRM_COMPLETE);
3010 		break;
3011 
3012 	case CMPL_BASE_TYPE_HWRM_FWD_REQ:
3013 		vf_id = le16_to_cpu(fwd_req_cmpl->source_id);
3014 
3015 		if ((vf_id < bp->pf.first_vf_id) ||
3016 		    (vf_id >= bp->pf.first_vf_id + bp->pf.active_vfs)) {
3017 			netdev_err(bp->dev, "Msg contains invalid VF id %x\n",
3018 				   vf_id);
3019 			return -EINVAL;
3020 		}
3021 
3022 		set_bit(vf_id - bp->pf.first_vf_id, bp->pf.vf_event_bmap);
3023 		bnxt_queue_sp_work(bp, BNXT_HWRM_EXEC_FWD_REQ_SP_EVENT);
3024 		break;
3025 
3026 	case CMPL_BASE_TYPE_HWRM_ASYNC_EVENT:
3027 		bnxt_async_event_process(bp,
3028 					 (struct hwrm_async_event_cmpl *)txcmp);
3029 		break;
3030 
3031 	default:
3032 		break;
3033 	}
3034 
3035 	return 0;
3036 }
3037 
bnxt_vnic_is_active(struct bnxt * bp)3038 static bool bnxt_vnic_is_active(struct bnxt *bp)
3039 {
3040 	struct bnxt_vnic_info *vnic = &bp->vnic_info[0];
3041 
3042 	return vnic->fw_vnic_id != INVALID_HW_RING_ID && vnic->mru > 0;
3043 }
3044 
bnxt_msix(int irq,void * dev_instance)3045 static irqreturn_t bnxt_msix(int irq, void *dev_instance)
3046 {
3047 	struct bnxt_napi *bnapi = dev_instance;
3048 	struct bnxt *bp = bnapi->bp;
3049 	struct bnxt_cp_ring_info *cpr = &bnapi->cp_ring;
3050 	u32 cons = RING_CMP(cpr->cp_raw_cons);
3051 
3052 	cpr->event_ctr++;
3053 	prefetch(&cpr->cp_desc_ring[CP_RING(cons)][CP_IDX(cons)]);
3054 	napi_schedule(&bnapi->napi);
3055 	return IRQ_HANDLED;
3056 }
3057 
bnxt_has_work(struct bnxt * bp,struct bnxt_cp_ring_info * cpr)3058 static inline int bnxt_has_work(struct bnxt *bp, struct bnxt_cp_ring_info *cpr)
3059 {
3060 	u32 raw_cons = cpr->cp_raw_cons;
3061 	u16 cons = RING_CMP(raw_cons);
3062 	struct tx_cmp *txcmp;
3063 
3064 	txcmp = &cpr->cp_desc_ring[CP_RING(cons)][CP_IDX(cons)];
3065 
3066 	return TX_CMP_VALID(txcmp, raw_cons);
3067 }
3068 
__bnxt_poll_work(struct bnxt * bp,struct bnxt_cp_ring_info * cpr,int budget)3069 static int __bnxt_poll_work(struct bnxt *bp, struct bnxt_cp_ring_info *cpr,
3070 			    int budget)
3071 {
3072 	struct bnxt_napi *bnapi = cpr->bnapi;
3073 	u32 raw_cons = cpr->cp_raw_cons;
3074 	bool flush_xdp = false;
3075 	u32 cons;
3076 	int rx_pkts = 0;
3077 	u8 event = 0;
3078 	struct tx_cmp *txcmp;
3079 
3080 	cpr->has_more_work = 0;
3081 	cpr->had_work_done = 1;
3082 	while (1) {
3083 		u8 cmp_type;
3084 		int rc;
3085 
3086 		cons = RING_CMP(raw_cons);
3087 		txcmp = &cpr->cp_desc_ring[CP_RING(cons)][CP_IDX(cons)];
3088 
3089 		if (!TX_CMP_VALID(txcmp, raw_cons))
3090 			break;
3091 
3092 		/* The valid test of the entry must be done first before
3093 		 * reading any further.
3094 		 */
3095 		dma_rmb();
3096 		cmp_type = TX_CMP_TYPE(txcmp);
3097 		if (cmp_type == CMP_TYPE_TX_L2_CMP ||
3098 		    cmp_type == CMP_TYPE_TX_L2_COAL_CMP) {
3099 			u32 opaque = txcmp->tx_cmp_opaque;
3100 			struct bnxt_tx_ring_info *txr;
3101 			u16 tx_freed;
3102 
3103 			txr = bnapi->tx_ring[TX_OPAQUE_RING(opaque)];
3104 			event |= BNXT_TX_CMP_EVENT;
3105 			if (cmp_type == CMP_TYPE_TX_L2_COAL_CMP)
3106 				txr->tx_hw_cons = TX_CMP_SQ_CONS_IDX(txcmp);
3107 			else
3108 				txr->tx_hw_cons = TX_OPAQUE_PROD(bp, opaque);
3109 			tx_freed = (txr->tx_hw_cons - txr->tx_cons) &
3110 				   bp->tx_ring_mask;
3111 			/* return full budget so NAPI will complete. */
3112 			if (unlikely(tx_freed >= bp->tx_wake_thresh)) {
3113 				rx_pkts = budget;
3114 				raw_cons = NEXT_RAW_CMP(raw_cons);
3115 				if (budget)
3116 					cpr->has_more_work = 1;
3117 				break;
3118 			}
3119 		} else if (cmp_type == CMP_TYPE_TX_L2_PKT_TS_CMP) {
3120 			bnxt_tx_ts_cmp(bp, bnapi, (struct tx_ts_cmp *)txcmp);
3121 		} else if (cmp_type >= CMP_TYPE_RX_L2_CMP &&
3122 			   cmp_type <= CMP_TYPE_RX_L2_TPA_START_V3_CMP) {
3123 			if (likely(budget))
3124 				rc = bnxt_rx_pkt(bp, cpr, &raw_cons, &event);
3125 			else
3126 				rc = bnxt_force_rx_discard(bp, cpr, &raw_cons,
3127 							   &event);
3128 			if (event & BNXT_REDIRECT_EVENT)
3129 				flush_xdp = true;
3130 			if (likely(rc >= 0))
3131 				rx_pkts += rc;
3132 			/* Increment rx_pkts when rc is -ENOMEM to count towards
3133 			 * the NAPI budget.  Otherwise, we may potentially loop
3134 			 * here forever if we consistently cannot allocate
3135 			 * buffers.
3136 			 */
3137 			else if (rc == -ENOMEM && budget)
3138 				rx_pkts++;
3139 			else if (rc == -EBUSY)	/* partial completion */
3140 				break;
3141 		} else if (unlikely(cmp_type == CMPL_BASE_TYPE_HWRM_DONE ||
3142 				    cmp_type == CMPL_BASE_TYPE_HWRM_FWD_REQ ||
3143 				    cmp_type == CMPL_BASE_TYPE_HWRM_ASYNC_EVENT)) {
3144 			bnxt_hwrm_handler(bp, txcmp);
3145 		}
3146 		raw_cons = NEXT_RAW_CMP(raw_cons);
3147 
3148 		if (rx_pkts && rx_pkts == budget) {
3149 			cpr->has_more_work = 1;
3150 			break;
3151 		}
3152 	}
3153 
3154 	if (flush_xdp) {
3155 		xdp_do_flush();
3156 		event &= ~BNXT_REDIRECT_EVENT;
3157 	}
3158 
3159 	if (event & BNXT_TX_EVENT) {
3160 		struct bnxt_tx_ring_info *txr = bnapi->tx_ring[0];
3161 		u16 prod = txr->tx_prod;
3162 
3163 		/* Sync BD data before updating doorbell */
3164 		wmb();
3165 
3166 		bnxt_db_write_relaxed(bp, &txr->tx_db, prod);
3167 		event &= ~BNXT_TX_EVENT;
3168 	}
3169 
3170 	cpr->cp_raw_cons = raw_cons;
3171 	bnapi->events |= event;
3172 	return rx_pkts;
3173 }
3174 
__bnxt_poll_work_done(struct bnxt * bp,struct bnxt_napi * bnapi,int budget)3175 static void __bnxt_poll_work_done(struct bnxt *bp, struct bnxt_napi *bnapi,
3176 				  int budget)
3177 {
3178 	if ((bnapi->events & BNXT_TX_CMP_EVENT) && !bnapi->tx_fault)
3179 		bnapi->tx_int(bp, bnapi, budget);
3180 
3181 	if ((bnapi->events & BNXT_RX_EVENT) && !(bnapi->in_reset)) {
3182 		struct bnxt_rx_ring_info *rxr = bnapi->rx_ring;
3183 
3184 		bnxt_db_write(bp, &rxr->rx_db, rxr->rx_prod);
3185 		bnapi->events &= ~BNXT_RX_EVENT;
3186 	}
3187 	if (bnapi->events & BNXT_AGG_EVENT) {
3188 		struct bnxt_rx_ring_info *rxr = bnapi->rx_ring;
3189 
3190 		bnxt_db_write(bp, &rxr->rx_agg_db, rxr->rx_agg_prod);
3191 		bnapi->events &= ~BNXT_AGG_EVENT;
3192 	}
3193 }
3194 
bnxt_poll_work(struct bnxt * bp,struct bnxt_cp_ring_info * cpr,int budget)3195 static int bnxt_poll_work(struct bnxt *bp, struct bnxt_cp_ring_info *cpr,
3196 			  int budget)
3197 {
3198 	struct bnxt_napi *bnapi = cpr->bnapi;
3199 	int rx_pkts;
3200 
3201 	rx_pkts = __bnxt_poll_work(bp, cpr, budget);
3202 
3203 	/* ACK completion ring before freeing tx ring and producing new
3204 	 * buffers in rx/agg rings to prevent overflowing the completion
3205 	 * ring.
3206 	 */
3207 	bnxt_db_cq(bp, &cpr->cp_db, cpr->cp_raw_cons);
3208 
3209 	__bnxt_poll_work_done(bp, bnapi, budget);
3210 	return rx_pkts;
3211 }
3212 
bnxt_poll_nitroa0(struct napi_struct * napi,int budget)3213 static int bnxt_poll_nitroa0(struct napi_struct *napi, int budget)
3214 {
3215 	struct bnxt_napi *bnapi = container_of(napi, struct bnxt_napi, napi);
3216 	struct bnxt *bp = bnapi->bp;
3217 	struct bnxt_cp_ring_info *cpr = &bnapi->cp_ring;
3218 	struct bnxt_rx_ring_info *rxr = bnapi->rx_ring;
3219 	struct tx_cmp *txcmp;
3220 	struct rx_cmp_ext *rxcmp1;
3221 	u32 cp_cons, tmp_raw_cons;
3222 	u32 raw_cons = cpr->cp_raw_cons;
3223 	bool flush_xdp = false;
3224 	u32 rx_pkts = 0;
3225 	u8 event = 0;
3226 
3227 	while (1) {
3228 		int rc;
3229 
3230 		cp_cons = RING_CMP(raw_cons);
3231 		txcmp = &cpr->cp_desc_ring[CP_RING(cp_cons)][CP_IDX(cp_cons)];
3232 
3233 		if (!TX_CMP_VALID(txcmp, raw_cons))
3234 			break;
3235 
3236 		/* The valid test of the entry must be done first before
3237 		 * reading any further.
3238 		 */
3239 		dma_rmb();
3240 		if ((TX_CMP_TYPE(txcmp) & 0x30) == 0x10) {
3241 			tmp_raw_cons = NEXT_RAW_CMP(raw_cons);
3242 			cp_cons = RING_CMP(tmp_raw_cons);
3243 			rxcmp1 = (struct rx_cmp_ext *)
3244 			  &cpr->cp_desc_ring[CP_RING(cp_cons)][CP_IDX(cp_cons)];
3245 
3246 			if (!RX_CMP_VALID(rxcmp1, tmp_raw_cons))
3247 				break;
3248 
3249 			/* force an error to recycle the buffer */
3250 			rxcmp1->rx_cmp_cfa_code_errors_v2 |=
3251 				cpu_to_le32(RX_CMPL_ERRORS_CRC_ERROR);
3252 
3253 			rc = bnxt_rx_pkt(bp, cpr, &raw_cons, &event);
3254 			if (likely(rc == -EIO) && budget)
3255 				rx_pkts++;
3256 			else if (rc == -EBUSY)	/* partial completion */
3257 				break;
3258 			if (event & BNXT_REDIRECT_EVENT)
3259 				flush_xdp = true;
3260 		} else if (unlikely(TX_CMP_TYPE(txcmp) ==
3261 				    CMPL_BASE_TYPE_HWRM_DONE)) {
3262 			bnxt_hwrm_handler(bp, txcmp);
3263 		} else {
3264 			netdev_err(bp->dev,
3265 				   "Invalid completion received on special ring\n");
3266 		}
3267 		raw_cons = NEXT_RAW_CMP(raw_cons);
3268 
3269 		if (rx_pkts == budget)
3270 			break;
3271 	}
3272 
3273 	cpr->cp_raw_cons = raw_cons;
3274 	BNXT_DB_CQ(&cpr->cp_db, cpr->cp_raw_cons);
3275 	bnxt_db_write(bp, &rxr->rx_db, rxr->rx_prod);
3276 
3277 	if (event & BNXT_AGG_EVENT)
3278 		bnxt_db_write(bp, &rxr->rx_agg_db, rxr->rx_agg_prod);
3279 	if (flush_xdp)
3280 		xdp_do_flush();
3281 
3282 	if (!bnxt_has_work(bp, cpr) && rx_pkts < budget) {
3283 		napi_complete_done(napi, rx_pkts);
3284 		BNXT_DB_CQ_ARM(&cpr->cp_db, cpr->cp_raw_cons);
3285 	}
3286 	return rx_pkts;
3287 }
3288 
bnxt_poll(struct napi_struct * napi,int budget)3289 static int bnxt_poll(struct napi_struct *napi, int budget)
3290 {
3291 	struct bnxt_napi *bnapi = container_of(napi, struct bnxt_napi, napi);
3292 	struct bnxt *bp = bnapi->bp;
3293 	struct bnxt_cp_ring_info *cpr = &bnapi->cp_ring;
3294 	int work_done = 0;
3295 
3296 	if (unlikely(test_bit(BNXT_STATE_FW_FATAL_COND, &bp->state))) {
3297 		napi_complete(napi);
3298 		return 0;
3299 	}
3300 	while (1) {
3301 		work_done += bnxt_poll_work(bp, cpr, budget - work_done);
3302 
3303 		if (work_done >= budget) {
3304 			if (!budget)
3305 				BNXT_DB_CQ_ARM(&cpr->cp_db, cpr->cp_raw_cons);
3306 			break;
3307 		}
3308 
3309 		if (!bnxt_has_work(bp, cpr)) {
3310 			if (napi_complete_done(napi, work_done))
3311 				BNXT_DB_CQ_ARM(&cpr->cp_db, cpr->cp_raw_cons);
3312 			break;
3313 		}
3314 	}
3315 	if ((bp->flags & BNXT_FLAG_DIM) && bnxt_vnic_is_active(bp)) {
3316 		struct dim_sample dim_sample = {};
3317 
3318 		dim_update_sample(cpr->event_ctr,
3319 				  cpr->rx_packets,
3320 				  cpr->rx_bytes,
3321 				  &dim_sample);
3322 		net_dim(&cpr->dim, &dim_sample);
3323 	}
3324 	return work_done;
3325 }
3326 
__bnxt_poll_cqs(struct bnxt * bp,struct bnxt_napi * bnapi,int budget)3327 static int __bnxt_poll_cqs(struct bnxt *bp, struct bnxt_napi *bnapi, int budget)
3328 {
3329 	struct bnxt_cp_ring_info *cpr = &bnapi->cp_ring;
3330 	int i, work_done = 0;
3331 
3332 	for (i = 0; i < cpr->cp_ring_count; i++) {
3333 		struct bnxt_cp_ring_info *cpr2 = &cpr->cp_ring_arr[i];
3334 
3335 		if (cpr2->had_nqe_notify) {
3336 			work_done += __bnxt_poll_work(bp, cpr2,
3337 						      budget - work_done);
3338 			cpr->has_more_work |= cpr2->has_more_work;
3339 		}
3340 	}
3341 	return work_done;
3342 }
3343 
__bnxt_poll_cqs_done(struct bnxt * bp,struct bnxt_napi * bnapi,u64 dbr_type,int budget)3344 static void __bnxt_poll_cqs_done(struct bnxt *bp, struct bnxt_napi *bnapi,
3345 				 u64 dbr_type, int budget)
3346 {
3347 	struct bnxt_cp_ring_info *cpr = &bnapi->cp_ring;
3348 	int i;
3349 
3350 	for (i = 0; i < cpr->cp_ring_count; i++) {
3351 		struct bnxt_cp_ring_info *cpr2 = &cpr->cp_ring_arr[i];
3352 		struct bnxt_db_info *db;
3353 
3354 		if (cpr2->had_work_done) {
3355 			u32 tgl = 0;
3356 
3357 			if (dbr_type == DBR_TYPE_CQ_ARMALL) {
3358 				cpr2->had_nqe_notify = 0;
3359 				tgl = cpr2->toggle;
3360 			}
3361 			db = &cpr2->cp_db;
3362 			bnxt_writeq(bp,
3363 				    db->db_key64 | dbr_type | DB_TOGGLE(tgl) |
3364 				    DB_RING_IDX(db, cpr2->cp_raw_cons),
3365 				    db->doorbell);
3366 			cpr2->had_work_done = 0;
3367 		}
3368 	}
3369 	__bnxt_poll_work_done(bp, bnapi, budget);
3370 }
3371 
bnxt_poll_p5(struct napi_struct * napi,int budget)3372 static int bnxt_poll_p5(struct napi_struct *napi, int budget)
3373 {
3374 	struct bnxt_napi *bnapi = container_of(napi, struct bnxt_napi, napi);
3375 	struct bnxt_cp_ring_info *cpr = &bnapi->cp_ring;
3376 	struct bnxt_cp_ring_info *cpr_rx;
3377 	u32 raw_cons = cpr->cp_raw_cons;
3378 	struct bnxt *bp = bnapi->bp;
3379 	struct nqe_cn *nqcmp;
3380 	int work_done = 0;
3381 	u32 cons;
3382 
3383 	if (unlikely(test_bit(BNXT_STATE_FW_FATAL_COND, &bp->state))) {
3384 		napi_complete(napi);
3385 		return 0;
3386 	}
3387 	if (cpr->has_more_work) {
3388 		cpr->has_more_work = 0;
3389 		work_done = __bnxt_poll_cqs(bp, bnapi, budget);
3390 	}
3391 	while (1) {
3392 		u16 type;
3393 
3394 		cons = RING_CMP(raw_cons);
3395 		nqcmp = &cpr->nq_desc_ring[CP_RING(cons)][CP_IDX(cons)];
3396 
3397 		if (!NQ_CMP_VALID(nqcmp, raw_cons)) {
3398 			if (cpr->has_more_work)
3399 				break;
3400 
3401 			__bnxt_poll_cqs_done(bp, bnapi, DBR_TYPE_CQ_ARMALL,
3402 					     budget);
3403 			cpr->cp_raw_cons = raw_cons;
3404 			if (napi_complete_done(napi, work_done))
3405 				BNXT_DB_NQ_ARM_P5(&cpr->cp_db,
3406 						  cpr->cp_raw_cons);
3407 			goto poll_done;
3408 		}
3409 
3410 		/* The valid test of the entry must be done first before
3411 		 * reading any further.
3412 		 */
3413 		dma_rmb();
3414 
3415 		type = le16_to_cpu(nqcmp->type);
3416 		if (NQE_CN_TYPE(type) == NQ_CN_TYPE_CQ_NOTIFICATION) {
3417 			u32 idx = le32_to_cpu(nqcmp->cq_handle_low);
3418 			u32 cq_type = BNXT_NQ_HDL_TYPE(idx);
3419 			struct bnxt_cp_ring_info *cpr2;
3420 
3421 			/* No more budget for RX work */
3422 			if (budget && work_done >= budget &&
3423 			    cq_type == BNXT_NQ_HDL_TYPE_RX)
3424 				break;
3425 
3426 			idx = BNXT_NQ_HDL_IDX(idx);
3427 			cpr2 = &cpr->cp_ring_arr[idx];
3428 			cpr2->had_nqe_notify = 1;
3429 			cpr2->toggle = NQE_CN_TOGGLE(type);
3430 			work_done += __bnxt_poll_work(bp, cpr2,
3431 						      budget - work_done);
3432 			cpr->has_more_work |= cpr2->has_more_work;
3433 		} else {
3434 			bnxt_hwrm_handler(bp, (struct tx_cmp *)nqcmp);
3435 		}
3436 		raw_cons = NEXT_RAW_CMP(raw_cons);
3437 	}
3438 	__bnxt_poll_cqs_done(bp, bnapi, DBR_TYPE_CQ, budget);
3439 	if (raw_cons != cpr->cp_raw_cons) {
3440 		cpr->cp_raw_cons = raw_cons;
3441 		BNXT_DB_NQ_P5(&cpr->cp_db, raw_cons);
3442 	}
3443 poll_done:
3444 	cpr_rx = &cpr->cp_ring_arr[0];
3445 	if (cpr_rx->cp_ring_type == BNXT_NQ_HDL_TYPE_RX &&
3446 	    (bp->flags & BNXT_FLAG_DIM) && bnxt_vnic_is_active(bp)) {
3447 		struct dim_sample dim_sample = {};
3448 
3449 		dim_update_sample(cpr->event_ctr,
3450 				  cpr_rx->rx_packets,
3451 				  cpr_rx->rx_bytes,
3452 				  &dim_sample);
3453 		net_dim(&cpr->dim, &dim_sample);
3454 	}
3455 	return work_done;
3456 }
3457 
bnxt_free_one_tx_ring_skbs(struct bnxt * bp,struct bnxt_tx_ring_info * txr,int idx)3458 static void bnxt_free_one_tx_ring_skbs(struct bnxt *bp,
3459 				       struct bnxt_tx_ring_info *txr, int idx)
3460 {
3461 	int i, max_idx;
3462 	struct pci_dev *pdev = bp->pdev;
3463 	unsigned int dma_len;
3464 	dma_addr_t dma_addr;
3465 
3466 	max_idx = bp->tx_nr_pages * TX_DESC_CNT;
3467 
3468 	for (i = 0; i < max_idx;) {
3469 		struct bnxt_sw_tx_bd *tx_buf = &txr->tx_buf_ring[i];
3470 		struct bnxt_sw_tx_bd *head_buf = tx_buf;
3471 		struct sk_buff *skb;
3472 		int j, last;
3473 
3474 		if (idx  < bp->tx_nr_rings_xdp &&
3475 		    tx_buf->action == XDP_REDIRECT) {
3476 			dma_addr = dma_unmap_addr(tx_buf, mapping);
3477 			dma_len = dma_unmap_len(tx_buf, len);
3478 
3479 			dma_unmap_single(&pdev->dev, dma_addr, dma_len,
3480 					 DMA_TO_DEVICE);
3481 			xdp_return_frame(tx_buf->xdpf);
3482 			tx_buf->action = 0;
3483 			tx_buf->xdpf = NULL;
3484 			i++;
3485 			continue;
3486 		}
3487 
3488 		skb = tx_buf->skb;
3489 		if (!skb) {
3490 			i++;
3491 			continue;
3492 		}
3493 
3494 		tx_buf->skb = NULL;
3495 
3496 		if (tx_buf->is_push) {
3497 			dev_kfree_skb(skb);
3498 			i += 2;
3499 			continue;
3500 		}
3501 
3502 		if (dma_unmap_len(tx_buf, len)) {
3503 			dma_addr = dma_unmap_addr(tx_buf, mapping);
3504 			dma_len = dma_unmap_len(tx_buf, len);
3505 
3506 			dma_unmap_single(&pdev->dev, dma_addr, dma_len,
3507 					 DMA_TO_DEVICE);
3508 		}
3509 
3510 		last = tx_buf->nr_frags;
3511 		i += 2;
3512 		for (j = 0; j < last; j++, i++) {
3513 			int ring_idx = i & bp->tx_ring_mask;
3514 
3515 			tx_buf = &txr->tx_buf_ring[ring_idx];
3516 			if (dma_unmap_len(tx_buf, len)) {
3517 				dma_addr = dma_unmap_addr(tx_buf, mapping);
3518 				dma_len = dma_unmap_len(tx_buf, len);
3519 
3520 				netmem_dma_unmap_page_attrs(&pdev->dev,
3521 							    dma_addr, dma_len,
3522 							    DMA_TO_DEVICE, 0);
3523 			}
3524 		}
3525 		if (head_buf->is_sw_gso) {
3526 			u16 inline_cons = txr->tx_inline_cons + 1;
3527 
3528 			WRITE_ONCE(txr->tx_inline_cons, inline_cons);
3529 			if (head_buf->is_sw_gso == BNXT_SW_GSO_LAST) {
3530 				tso_dma_map_complete(&pdev->dev,
3531 						     &head_buf->sw_gso_cstate);
3532 			} else {
3533 				skb = NULL;
3534 			}
3535 			head_buf->is_sw_gso = 0;
3536 		}
3537 		if (skb)
3538 			dev_kfree_skb(skb);
3539 	}
3540 	netdev_tx_reset_queue(netdev_get_tx_queue(bp->dev, idx));
3541 }
3542 
bnxt_free_tx_skbs(struct bnxt * bp)3543 static void bnxt_free_tx_skbs(struct bnxt *bp)
3544 {
3545 	int i;
3546 
3547 	if (!bp->tx_ring)
3548 		return;
3549 
3550 	for (i = 0; i < bp->tx_nr_rings; i++) {
3551 		struct bnxt_tx_ring_info *txr = &bp->tx_ring[i];
3552 
3553 		if (!txr->tx_buf_ring)
3554 			continue;
3555 
3556 		bnxt_free_one_tx_ring_skbs(bp, txr, i);
3557 	}
3558 
3559 	if (bp->ptp_cfg && !(bp->fw_cap & BNXT_FW_CAP_TX_TS_CMP))
3560 		bnxt_ptp_free_txts_skbs(bp->ptp_cfg);
3561 }
3562 
bnxt_free_one_rx_ring(struct bnxt * bp,struct bnxt_rx_ring_info * rxr)3563 static void bnxt_free_one_rx_ring(struct bnxt *bp, struct bnxt_rx_ring_info *rxr)
3564 {
3565 	int i, max_idx;
3566 
3567 	max_idx = bp->rx_nr_pages * RX_DESC_CNT;
3568 
3569 	for (i = 0; i < max_idx; i++) {
3570 		struct bnxt_sw_rx_bd *rx_buf = &rxr->rx_buf_ring[i];
3571 		void *data = rx_buf->data;
3572 
3573 		if (!data)
3574 			continue;
3575 
3576 		rx_buf->data = NULL;
3577 		if (BNXT_RX_PAGE_MODE(bp))
3578 			page_pool_recycle_direct(rxr->page_pool, data);
3579 		else
3580 			page_pool_free_va(rxr->head_pool, data, true);
3581 	}
3582 }
3583 
bnxt_free_one_rx_agg_ring(struct bnxt * bp,struct bnxt_rx_ring_info * rxr)3584 static void bnxt_free_one_rx_agg_ring(struct bnxt *bp, struct bnxt_rx_ring_info *rxr)
3585 {
3586 	int i, max_idx;
3587 
3588 	max_idx = bp->rx_agg_nr_pages * RX_DESC_CNT;
3589 
3590 	for (i = 0; i < max_idx; i++) {
3591 		struct bnxt_sw_rx_agg_bd *rx_agg_buf = &rxr->rx_agg_ring[i];
3592 		netmem_ref netmem = rx_agg_buf->netmem;
3593 
3594 		if (!netmem)
3595 			continue;
3596 
3597 		rx_agg_buf->netmem = 0;
3598 		__clear_bit(i, rxr->rx_agg_bmap);
3599 
3600 		page_pool_recycle_direct_netmem(rxr->page_pool, netmem);
3601 	}
3602 }
3603 
bnxt_free_one_tpa_info_data(struct bnxt * bp,struct bnxt_rx_ring_info * rxr)3604 static void bnxt_free_one_tpa_info_data(struct bnxt *bp,
3605 					struct bnxt_rx_ring_info *rxr)
3606 {
3607 	int i;
3608 
3609 	for (i = 0; i < bp->max_tpa_roundup_size; i++) {
3610 		struct bnxt_tpa_info *tpa_info = &rxr->rx_tpa[i];
3611 		u8 *data = tpa_info->data;
3612 
3613 		if (!data)
3614 			continue;
3615 
3616 		tpa_info->data = NULL;
3617 		page_pool_free_va(rxr->head_pool, data, false);
3618 	}
3619 }
3620 
bnxt_free_one_rx_ring_skbs(struct bnxt * bp,struct bnxt_rx_ring_info * rxr)3621 static void bnxt_free_one_rx_ring_skbs(struct bnxt *bp,
3622 				       struct bnxt_rx_ring_info *rxr)
3623 {
3624 	struct bnxt_tpa_idx_map *map;
3625 
3626 	if (!rxr->rx_tpa)
3627 		goto skip_rx_tpa_free;
3628 
3629 	bnxt_free_one_tpa_info_data(bp, rxr);
3630 
3631 skip_rx_tpa_free:
3632 	if (!rxr->rx_buf_ring)
3633 		goto skip_rx_buf_free;
3634 
3635 	bnxt_free_one_rx_ring(bp, rxr);
3636 
3637 skip_rx_buf_free:
3638 	if (!rxr->rx_agg_ring)
3639 		goto skip_rx_agg_free;
3640 
3641 	bnxt_free_one_rx_agg_ring(bp, rxr);
3642 
3643 skip_rx_agg_free:
3644 	map = rxr->rx_tpa_idx_map;
3645 	if (map)
3646 		memset(map->agg_idx_bmap, 0, sizeof(map->agg_idx_bmap));
3647 }
3648 
bnxt_free_rx_skbs(struct bnxt * bp)3649 static void bnxt_free_rx_skbs(struct bnxt *bp)
3650 {
3651 	int i;
3652 
3653 	if (!bp->rx_ring)
3654 		return;
3655 
3656 	for (i = 0; i < bp->rx_nr_rings; i++)
3657 		bnxt_free_one_rx_ring_skbs(bp, &bp->rx_ring[i]);
3658 }
3659 
bnxt_free_skbs(struct bnxt * bp)3660 static void bnxt_free_skbs(struct bnxt *bp)
3661 {
3662 	bnxt_free_tx_skbs(bp);
3663 	bnxt_free_rx_skbs(bp);
3664 }
3665 
bnxt_init_ctx_mem(struct bnxt_ctx_mem_type * ctxm,void * p,int len)3666 static void bnxt_init_ctx_mem(struct bnxt_ctx_mem_type *ctxm, void *p, int len)
3667 {
3668 	u8 init_val = ctxm->init_value;
3669 	u16 offset = ctxm->init_offset;
3670 	u8 *p2 = p;
3671 	int i;
3672 
3673 	if (!init_val)
3674 		return;
3675 	if (offset == BNXT_CTX_INIT_INVALID_OFFSET) {
3676 		memset(p, init_val, len);
3677 		return;
3678 	}
3679 	for (i = 0; i < len; i += ctxm->entry_size)
3680 		*(p2 + i + offset) = init_val;
3681 }
3682 
__bnxt_copy_ring(struct bnxt * bp,struct bnxt_ring_mem_info * rmem,void * buf,size_t offset,size_t head,size_t tail)3683 static size_t __bnxt_copy_ring(struct bnxt *bp, struct bnxt_ring_mem_info *rmem,
3684 			       void *buf, size_t offset, size_t head,
3685 			       size_t tail)
3686 {
3687 	int i, head_page, start_idx, source_offset;
3688 	size_t len, rem_len, total_len, max_bytes;
3689 
3690 	head_page = head / rmem->page_size;
3691 	source_offset = head % rmem->page_size;
3692 	total_len = (tail - head) & MAX_CTX_BYTES_MASK;
3693 	if (!total_len)
3694 		total_len = MAX_CTX_BYTES;
3695 	start_idx = head_page % MAX_CTX_PAGES;
3696 	max_bytes = (rmem->nr_pages - start_idx) * rmem->page_size -
3697 		    source_offset;
3698 	total_len = min(total_len, max_bytes);
3699 	rem_len = total_len;
3700 
3701 	for (i = start_idx; rem_len; i++, source_offset = 0) {
3702 		len = min((size_t)(rmem->page_size - source_offset), rem_len);
3703 		if (buf)
3704 			memcpy(buf + offset, rmem->pg_arr[i] + source_offset,
3705 			       len);
3706 		offset += len;
3707 		rem_len -= len;
3708 	}
3709 	return total_len;
3710 }
3711 
bnxt_free_ring(struct bnxt * bp,struct bnxt_ring_mem_info * rmem)3712 static void bnxt_free_ring(struct bnxt *bp, struct bnxt_ring_mem_info *rmem)
3713 {
3714 	struct pci_dev *pdev = bp->pdev;
3715 	int i;
3716 
3717 	if (!rmem->pg_arr)
3718 		goto skip_pages;
3719 
3720 	for (i = 0; i < rmem->nr_pages; i++) {
3721 		if (!rmem->pg_arr[i])
3722 			continue;
3723 
3724 		dma_free_coherent(&pdev->dev, rmem->page_size,
3725 				  rmem->pg_arr[i], rmem->dma_arr[i]);
3726 
3727 		rmem->pg_arr[i] = NULL;
3728 	}
3729 skip_pages:
3730 	if (rmem->pg_tbl) {
3731 		size_t pg_tbl_size = rmem->nr_pages * 8;
3732 
3733 		if (rmem->flags & BNXT_RMEM_USE_FULL_PAGE_FLAG)
3734 			pg_tbl_size = rmem->page_size;
3735 		dma_free_coherent(&pdev->dev, pg_tbl_size,
3736 				  rmem->pg_tbl, rmem->pg_tbl_map);
3737 		rmem->pg_tbl = NULL;
3738 	}
3739 	if (rmem->vmem_size && *rmem->vmem) {
3740 		vfree(*rmem->vmem);
3741 		*rmem->vmem = NULL;
3742 	}
3743 }
3744 
bnxt_alloc_ring(struct bnxt * bp,struct bnxt_ring_mem_info * rmem)3745 static int bnxt_alloc_ring(struct bnxt *bp, struct bnxt_ring_mem_info *rmem)
3746 {
3747 	struct pci_dev *pdev = bp->pdev;
3748 	u64 valid_bit = 0;
3749 	int i;
3750 
3751 	if (rmem->flags & (BNXT_RMEM_VALID_PTE_FLAG | BNXT_RMEM_RING_PTE_FLAG))
3752 		valid_bit = PTU_PTE_VALID;
3753 	if ((rmem->nr_pages > 1 || rmem->depth > 0) && !rmem->pg_tbl) {
3754 		size_t pg_tbl_size = rmem->nr_pages * 8;
3755 
3756 		if (rmem->flags & BNXT_RMEM_USE_FULL_PAGE_FLAG)
3757 			pg_tbl_size = rmem->page_size;
3758 		rmem->pg_tbl = dma_alloc_coherent(&pdev->dev, pg_tbl_size,
3759 						  &rmem->pg_tbl_map,
3760 						  GFP_KERNEL);
3761 		if (!rmem->pg_tbl)
3762 			return -ENOMEM;
3763 	}
3764 
3765 	for (i = 0; i < rmem->nr_pages; i++) {
3766 		u64 extra_bits = valid_bit;
3767 
3768 		rmem->pg_arr[i] = dma_alloc_coherent(&pdev->dev,
3769 						     rmem->page_size,
3770 						     &rmem->dma_arr[i],
3771 						     GFP_KERNEL);
3772 		if (!rmem->pg_arr[i])
3773 			return -ENOMEM;
3774 
3775 		if (rmem->ctx_mem)
3776 			bnxt_init_ctx_mem(rmem->ctx_mem, rmem->pg_arr[i],
3777 					  rmem->page_size);
3778 		if (rmem->nr_pages > 1 || rmem->depth > 0) {
3779 			if (i == rmem->nr_pages - 2 &&
3780 			    (rmem->flags & BNXT_RMEM_RING_PTE_FLAG))
3781 				extra_bits |= PTU_PTE_NEXT_TO_LAST;
3782 			else if (i == rmem->nr_pages - 1 &&
3783 				 (rmem->flags & BNXT_RMEM_RING_PTE_FLAG))
3784 				extra_bits |= PTU_PTE_LAST;
3785 			rmem->pg_tbl[i] =
3786 				cpu_to_le64(rmem->dma_arr[i] | extra_bits);
3787 		}
3788 	}
3789 
3790 	if (rmem->vmem_size) {
3791 		*rmem->vmem = vzalloc(rmem->vmem_size);
3792 		if (!(*rmem->vmem))
3793 			return -ENOMEM;
3794 	}
3795 	return 0;
3796 }
3797 
bnxt_free_one_tpa_info(struct bnxt * bp,struct bnxt_rx_ring_info * rxr)3798 static void bnxt_free_one_tpa_info(struct bnxt *bp,
3799 				   struct bnxt_rx_ring_info *rxr)
3800 {
3801 	int i;
3802 
3803 	kfree(rxr->rx_tpa_idx_map);
3804 	rxr->rx_tpa_idx_map = NULL;
3805 	if (rxr->rx_tpa) {
3806 		for (i = 0; i < bp->max_tpa_roundup_size; i++) {
3807 			kfree(rxr->rx_tpa[i].agg_arr);
3808 			rxr->rx_tpa[i].agg_arr = NULL;
3809 		}
3810 	}
3811 	kfree(rxr->rx_tpa);
3812 	rxr->rx_tpa = NULL;
3813 }
3814 
bnxt_free_tpa_info(struct bnxt * bp)3815 static void bnxt_free_tpa_info(struct bnxt *bp)
3816 {
3817 	int i;
3818 
3819 	for (i = 0; i < bp->rx_nr_rings; i++) {
3820 		struct bnxt_rx_ring_info *rxr = &bp->rx_ring[i];
3821 
3822 		bnxt_free_one_tpa_info(bp, rxr);
3823 	}
3824 }
3825 
bnxt_alloc_one_tpa_info(struct bnxt * bp,struct bnxt_rx_ring_info * rxr)3826 static int bnxt_alloc_one_tpa_info(struct bnxt *bp,
3827 				   struct bnxt_rx_ring_info *rxr)
3828 {
3829 	struct rx_agg_cmp *agg;
3830 	int i;
3831 
3832 	rxr->rx_tpa = kzalloc_objs(struct bnxt_tpa_info,
3833 				   bp->max_tpa_roundup_size);
3834 	if (!rxr->rx_tpa)
3835 		return -ENOMEM;
3836 
3837 	if (!(bp->flags & BNXT_FLAG_CHIP_P5_PLUS))
3838 		return 0;
3839 	for (i = 0; i < bp->max_tpa_roundup_size; i++) {
3840 		agg = kzalloc_objs(*agg, MAX_SKB_FRAGS);
3841 		if (!agg)
3842 			return -ENOMEM;
3843 		rxr->rx_tpa[i].agg_arr = agg;
3844 	}
3845 	rxr->rx_tpa_idx_map = kzalloc_obj(*rxr->rx_tpa_idx_map);
3846 	if (!rxr->rx_tpa_idx_map)
3847 		return -ENOMEM;
3848 
3849 	return 0;
3850 }
3851 
bnxt_alloc_tpa_info(struct bnxt * bp)3852 static int bnxt_alloc_tpa_info(struct bnxt *bp)
3853 {
3854 	int i, rc;
3855 
3856 	bp->max_tpa = MAX_TPA;
3857 	if (bp->flags & BNXT_FLAG_CHIP_P5_PLUS) {
3858 		/* TPA is not supported at all, so there is nothing to
3859 		 * allocate.
3860 		 */
3861 		if (!bp->max_tpa_v2)
3862 			return 0;
3863 		bp->max_tpa = min_t(u16, bp->max_tpa_v2, MAX_TPA_P5);
3864 		/* Older P5 FW sets max_tpa_v2 low by mistake except NPAR */
3865 		if (bp->max_tpa <= 32 && BNXT_CHIP_P5(bp) && !BNXT_NPAR(bp))
3866 			bp->max_tpa = MAX_TPA_P5;
3867 	}
3868 	bp->max_tpa_roundup_size = roundup_pow_of_two(bp->max_tpa);
3869 
3870 	for (i = 0; i < bp->rx_nr_rings; i++) {
3871 		struct bnxt_rx_ring_info *rxr = &bp->rx_ring[i];
3872 
3873 		rc = bnxt_alloc_one_tpa_info(bp, rxr);
3874 		if (rc)
3875 			return rc;
3876 	}
3877 	return 0;
3878 }
3879 
bnxt_free_rx_rings(struct bnxt * bp)3880 static void bnxt_free_rx_rings(struct bnxt *bp)
3881 {
3882 	int i;
3883 
3884 	if (!bp->rx_ring)
3885 		return;
3886 
3887 	bnxt_free_tpa_info(bp);
3888 	for (i = 0; i < bp->rx_nr_rings; i++) {
3889 		struct bnxt_rx_ring_info *rxr = &bp->rx_ring[i];
3890 		struct bnxt_ring_struct *ring;
3891 
3892 		if (rxr->xdp_prog)
3893 			bpf_prog_put(rxr->xdp_prog);
3894 
3895 		if (xdp_rxq_info_is_reg(&rxr->xdp_rxq))
3896 			xdp_rxq_info_unreg(&rxr->xdp_rxq);
3897 
3898 		page_pool_destroy(rxr->page_pool);
3899 		page_pool_destroy(rxr->head_pool);
3900 		rxr->page_pool = rxr->head_pool = NULL;
3901 
3902 		kfree(rxr->rx_agg_bmap);
3903 		rxr->rx_agg_bmap = NULL;
3904 
3905 		ring = &rxr->rx_ring_struct;
3906 		bnxt_free_ring(bp, &ring->ring_mem);
3907 
3908 		ring = &rxr->rx_agg_ring_struct;
3909 		bnxt_free_ring(bp, &ring->ring_mem);
3910 	}
3911 }
3912 
bnxt_rx_agg_ring_fill_level(struct bnxt * bp,struct bnxt_rx_ring_info * rxr)3913 static int bnxt_rx_agg_ring_fill_level(struct bnxt *bp,
3914 				       struct bnxt_rx_ring_info *rxr)
3915 {
3916 	/* User may have chosen larger than default rx_page_size,
3917 	 * we keep the ring sizes uniform and also want uniform amount
3918 	 * of bytes consumed per ring, so cap how much of the rings we fill.
3919 	 */
3920 	int fill_level = bp->rx_agg_ring_size;
3921 
3922 	if (rxr->rx_page_size > BNXT_RX_PAGE_SIZE)
3923 		fill_level /= rxr->rx_page_size / BNXT_RX_PAGE_SIZE;
3924 
3925 	return fill_level;
3926 }
3927 
bnxt_alloc_rx_page_pool(struct bnxt * bp,struct bnxt_rx_ring_info * rxr,int numa_node)3928 static int bnxt_alloc_rx_page_pool(struct bnxt *bp,
3929 				   struct bnxt_rx_ring_info *rxr,
3930 				   int numa_node)
3931 {
3932 	unsigned int agg_size_fac = rxr->rx_page_size / BNXT_RX_PAGE_SIZE;
3933 	const unsigned int rx_size_fac = PAGE_SIZE / SZ_4K;
3934 	struct page_pool_params pp = { 0 };
3935 	struct page_pool *pool;
3936 
3937 	pp.pool_size = bnxt_rx_agg_ring_fill_level(bp, rxr) / agg_size_fac;
3938 	if (BNXT_RX_PAGE_MODE(bp))
3939 		pp.pool_size += bp->rx_ring_size / rx_size_fac;
3940 
3941 	pp.order = get_order(rxr->rx_page_size);
3942 	pp.nid = numa_node;
3943 	pp.netdev = bp->dev;
3944 	pp.dev = &bp->pdev->dev;
3945 	pp.dma_dir = bp->rx_dir;
3946 	pp.max_len = PAGE_SIZE << pp.order;
3947 	pp.flags = PP_FLAG_DMA_MAP | PP_FLAG_DMA_SYNC_DEV |
3948 		   PP_FLAG_ALLOW_UNREADABLE_NETMEM;
3949 	pp.queue_idx = rxr->bnapi->index;
3950 
3951 	pool = page_pool_create(&pp);
3952 	if (IS_ERR(pool))
3953 		return PTR_ERR(pool);
3954 	rxr->page_pool = pool;
3955 
3956 	rxr->need_head_pool = page_pool_is_unreadable(pool);
3957 	rxr->need_head_pool |= !!pp.order;
3958 	if (bnxt_separate_head_pool(rxr)) {
3959 		pp.order = 0;
3960 		pp.max_len = PAGE_SIZE;
3961 		pp.pool_size = min(bp->rx_ring_size / rx_size_fac, 1024);
3962 		pp.flags = PP_FLAG_DMA_MAP | PP_FLAG_DMA_SYNC_DEV;
3963 		pool = page_pool_create(&pp);
3964 		if (IS_ERR(pool))
3965 			goto err_destroy_pp;
3966 	} else {
3967 		page_pool_get(pool);
3968 	}
3969 	rxr->head_pool = pool;
3970 
3971 	return 0;
3972 
3973 err_destroy_pp:
3974 	page_pool_destroy(rxr->page_pool);
3975 	rxr->page_pool = NULL;
3976 	return PTR_ERR(pool);
3977 }
3978 
bnxt_enable_rx_page_pool(struct bnxt_rx_ring_info * rxr)3979 static void bnxt_enable_rx_page_pool(struct bnxt_rx_ring_info *rxr)
3980 {
3981 	page_pool_enable_direct_recycling(rxr->head_pool, &rxr->bnapi->napi);
3982 	page_pool_enable_direct_recycling(rxr->page_pool, &rxr->bnapi->napi);
3983 }
3984 
bnxt_alloc_rx_agg_bmap(struct bnxt * bp,struct bnxt_rx_ring_info * rxr)3985 static int bnxt_alloc_rx_agg_bmap(struct bnxt *bp, struct bnxt_rx_ring_info *rxr)
3986 {
3987 	u16 mem_size;
3988 
3989 	rxr->rx_agg_bmap_size = bp->rx_agg_ring_mask + 1;
3990 	mem_size = rxr->rx_agg_bmap_size / 8;
3991 	rxr->rx_agg_bmap = kzalloc(mem_size, GFP_KERNEL);
3992 	if (!rxr->rx_agg_bmap)
3993 		return -ENOMEM;
3994 
3995 	return 0;
3996 }
3997 
bnxt_alloc_rx_rings(struct bnxt * bp)3998 static int bnxt_alloc_rx_rings(struct bnxt *bp)
3999 {
4000 	int numa_node = dev_to_node(&bp->pdev->dev);
4001 	int i, rc = 0, agg_rings = 0, cpu;
4002 
4003 	if (!bp->rx_ring)
4004 		return -ENOMEM;
4005 
4006 	if (bp->flags & BNXT_FLAG_AGG_RINGS)
4007 		agg_rings = 1;
4008 
4009 	for (i = 0; i < bp->rx_nr_rings; i++) {
4010 		struct bnxt_rx_ring_info *rxr = &bp->rx_ring[i];
4011 		struct bnxt_ring_struct *ring;
4012 		int cpu_node;
4013 
4014 		ring = &rxr->rx_ring_struct;
4015 
4016 		cpu = cpumask_local_spread(i, numa_node);
4017 		cpu_node = cpu_to_node(cpu);
4018 		netdev_dbg(bp->dev, "Allocating page pool for rx_ring[%d] on numa_node: %d\n",
4019 			   i, cpu_node);
4020 		rc = bnxt_alloc_rx_page_pool(bp, rxr, cpu_node);
4021 		if (rc)
4022 			return rc;
4023 		bnxt_enable_rx_page_pool(rxr);
4024 
4025 		rc = xdp_rxq_info_reg(&rxr->xdp_rxq, bp->dev, i, 0);
4026 		if (rc < 0)
4027 			return rc;
4028 
4029 		rc = xdp_rxq_info_reg_mem_model(&rxr->xdp_rxq,
4030 						MEM_TYPE_PAGE_POOL,
4031 						rxr->page_pool);
4032 		if (rc) {
4033 			xdp_rxq_info_unreg(&rxr->xdp_rxq);
4034 			return rc;
4035 		}
4036 
4037 		rc = bnxt_alloc_ring(bp, &ring->ring_mem);
4038 		if (rc)
4039 			return rc;
4040 
4041 		ring->grp_idx = i;
4042 		if (agg_rings) {
4043 			ring = &rxr->rx_agg_ring_struct;
4044 			rc = bnxt_alloc_ring(bp, &ring->ring_mem);
4045 			if (rc)
4046 				return rc;
4047 
4048 			ring->grp_idx = i;
4049 			rc = bnxt_alloc_rx_agg_bmap(bp, rxr);
4050 			if (rc)
4051 				return rc;
4052 		}
4053 	}
4054 	if (bp->flags & BNXT_FLAG_TPA)
4055 		rc = bnxt_alloc_tpa_info(bp);
4056 	return rc;
4057 }
4058 
bnxt_free_tx_inline_buf(struct bnxt_tx_ring_info * txr,struct pci_dev * pdev)4059 static void bnxt_free_tx_inline_buf(struct bnxt_tx_ring_info *txr,
4060 				    struct pci_dev *pdev)
4061 {
4062 	if (!txr->tx_inline_buf)
4063 		return;
4064 
4065 	dma_unmap_single(&pdev->dev, txr->tx_inline_dma,
4066 			 txr->tx_inline_size, DMA_TO_DEVICE);
4067 	kfree(txr->tx_inline_buf);
4068 	txr->tx_inline_buf = NULL;
4069 	txr->tx_inline_size = 0;
4070 }
4071 
bnxt_alloc_tx_inline_buf(struct bnxt_tx_ring_info * txr,struct pci_dev * pdev,unsigned int size)4072 static int bnxt_alloc_tx_inline_buf(struct bnxt_tx_ring_info *txr,
4073 				    struct pci_dev *pdev,
4074 				    unsigned int size)
4075 {
4076 	txr->tx_inline_buf = kmalloc(size, GFP_KERNEL);
4077 	if (!txr->tx_inline_buf)
4078 		return -ENOMEM;
4079 
4080 	txr->tx_inline_dma = dma_map_single(&pdev->dev, txr->tx_inline_buf,
4081 					    size, DMA_TO_DEVICE);
4082 	if (dma_mapping_error(&pdev->dev, txr->tx_inline_dma)) {
4083 		kfree(txr->tx_inline_buf);
4084 		txr->tx_inline_buf = NULL;
4085 		return -ENOMEM;
4086 	}
4087 	txr->tx_inline_size = size;
4088 
4089 	return 0;
4090 }
4091 
bnxt_free_tx_rings(struct bnxt * bp)4092 static void bnxt_free_tx_rings(struct bnxt *bp)
4093 {
4094 	int i;
4095 	struct pci_dev *pdev = bp->pdev;
4096 
4097 	if (!bp->tx_ring)
4098 		return;
4099 
4100 	for (i = 0; i < bp->tx_nr_rings; i++) {
4101 		struct bnxt_tx_ring_info *txr = &bp->tx_ring[i];
4102 		struct bnxt_ring_struct *ring;
4103 
4104 		if (txr->tx_push) {
4105 			dma_free_coherent(&pdev->dev, bp->tx_push_size,
4106 					  txr->tx_push, txr->tx_push_mapping);
4107 			txr->tx_push = NULL;
4108 		}
4109 
4110 		bnxt_free_tx_inline_buf(txr, pdev);
4111 
4112 		ring = &txr->tx_ring_struct;
4113 
4114 		bnxt_free_ring(bp, &ring->ring_mem);
4115 	}
4116 }
4117 
4118 #define BNXT_TC_TO_RING_BASE(bp, tc)	\
4119 	((tc) * (bp)->tx_nr_rings_per_tc)
4120 
4121 #define BNXT_RING_TO_TC_OFF(bp, tx)	\
4122 	((tx) % (bp)->tx_nr_rings_per_tc)
4123 
4124 #define BNXT_RING_TO_TC(bp, tx)		\
4125 	((tx) / (bp)->tx_nr_rings_per_tc)
4126 
bnxt_alloc_tx_rings(struct bnxt * bp)4127 static int bnxt_alloc_tx_rings(struct bnxt *bp)
4128 {
4129 	int i, j, rc;
4130 	struct pci_dev *pdev = bp->pdev;
4131 
4132 	bp->tx_push_size = 0;
4133 	if (bp->tx_push_thresh) {
4134 		int push_size;
4135 
4136 		push_size  = L1_CACHE_ALIGN(sizeof(struct tx_push_bd) +
4137 					bp->tx_push_thresh);
4138 
4139 		if (push_size > 256) {
4140 			push_size = 0;
4141 			bp->tx_push_thresh = 0;
4142 		}
4143 
4144 		bp->tx_push_size = push_size;
4145 	}
4146 
4147 	for (i = 0, j = 0; i < bp->tx_nr_rings; i++) {
4148 		struct bnxt_tx_ring_info *txr = &bp->tx_ring[i];
4149 		struct bnxt_ring_struct *ring;
4150 		u8 qidx;
4151 
4152 		ring = &txr->tx_ring_struct;
4153 
4154 		rc = bnxt_alloc_ring(bp, &ring->ring_mem);
4155 		if (rc)
4156 			return rc;
4157 
4158 		ring->grp_idx = txr->bnapi->index;
4159 		if (bp->tx_push_size) {
4160 			dma_addr_t mapping;
4161 
4162 			/* One pre-allocated DMA buffer to backup
4163 			 * TX push operation
4164 			 */
4165 			txr->tx_push = dma_alloc_coherent(&pdev->dev,
4166 						bp->tx_push_size,
4167 						&txr->tx_push_mapping,
4168 						GFP_KERNEL);
4169 
4170 			if (!txr->tx_push)
4171 				return -ENOMEM;
4172 
4173 			mapping = txr->tx_push_mapping +
4174 				sizeof(struct tx_push_bd);
4175 			txr->data_mapping = cpu_to_le64(mapping);
4176 		}
4177 		if (!(bp->flags & BNXT_FLAG_UDP_GSO_CAP)) {
4178 			rc = bnxt_alloc_tx_inline_buf(txr, pdev,
4179 						      BNXT_SW_USO_MAX_SEGS *
4180 						      TSO_HEADER_SIZE);
4181 			if (rc)
4182 				return rc;
4183 		}
4184 		qidx = bp->tc_to_qidx[j];
4185 		ring->queue_id = bp->q_info[qidx].queue_id;
4186 		spin_lock_init(&txr->xdp_tx_lock);
4187 		if (i < bp->tx_nr_rings_xdp)
4188 			continue;
4189 		if (BNXT_RING_TO_TC_OFF(bp, i) == (bp->tx_nr_rings_per_tc - 1))
4190 			j++;
4191 	}
4192 	return 0;
4193 }
4194 
bnxt_free_cp_arrays(struct bnxt_cp_ring_info * cpr)4195 static void bnxt_free_cp_arrays(struct bnxt_cp_ring_info *cpr)
4196 {
4197 	struct bnxt_ring_struct *ring = &cpr->cp_ring_struct;
4198 
4199 	kfree(cpr->cp_desc_ring);
4200 	cpr->cp_desc_ring = NULL;
4201 	ring->ring_mem.pg_arr = NULL;
4202 	kfree(cpr->cp_desc_mapping);
4203 	cpr->cp_desc_mapping = NULL;
4204 	ring->ring_mem.dma_arr = NULL;
4205 }
4206 
bnxt_alloc_cp_arrays(struct bnxt_cp_ring_info * cpr,int n)4207 static int bnxt_alloc_cp_arrays(struct bnxt_cp_ring_info *cpr, int n)
4208 {
4209 	cpr->cp_desc_ring = kzalloc_objs(*cpr->cp_desc_ring, n);
4210 	if (!cpr->cp_desc_ring)
4211 		return -ENOMEM;
4212 	cpr->cp_desc_mapping = kzalloc_objs(*cpr->cp_desc_mapping, n);
4213 	if (!cpr->cp_desc_mapping)
4214 		return -ENOMEM;
4215 	return 0;
4216 }
4217 
bnxt_free_all_cp_arrays(struct bnxt * bp)4218 static void bnxt_free_all_cp_arrays(struct bnxt *bp)
4219 {
4220 	int i;
4221 
4222 	if (!bp->bnapi)
4223 		return;
4224 	for (i = 0; i < bp->cp_nr_rings; i++) {
4225 		struct bnxt_napi *bnapi = bp->bnapi[i];
4226 
4227 		if (!bnapi)
4228 			continue;
4229 		bnxt_free_cp_arrays(&bnapi->cp_ring);
4230 	}
4231 }
4232 
bnxt_alloc_all_cp_arrays(struct bnxt * bp)4233 static int bnxt_alloc_all_cp_arrays(struct bnxt *bp)
4234 {
4235 	int i, n = bp->cp_nr_pages;
4236 
4237 	for (i = 0; i < bp->cp_nr_rings; i++) {
4238 		struct bnxt_napi *bnapi = bp->bnapi[i];
4239 		int rc;
4240 
4241 		if (!bnapi)
4242 			continue;
4243 		rc = bnxt_alloc_cp_arrays(&bnapi->cp_ring, n);
4244 		if (rc)
4245 			return rc;
4246 	}
4247 	return 0;
4248 }
4249 
bnxt_free_cp_rings(struct bnxt * bp)4250 static void bnxt_free_cp_rings(struct bnxt *bp)
4251 {
4252 	int i;
4253 
4254 	if (!bp->bnapi)
4255 		return;
4256 
4257 	for (i = 0; i < bp->cp_nr_rings; i++) {
4258 		struct bnxt_napi *bnapi = bp->bnapi[i];
4259 		struct bnxt_cp_ring_info *cpr;
4260 		struct bnxt_ring_struct *ring;
4261 		int j;
4262 
4263 		if (!bnapi)
4264 			continue;
4265 
4266 		cpr = &bnapi->cp_ring;
4267 		ring = &cpr->cp_ring_struct;
4268 
4269 		bnxt_free_ring(bp, &ring->ring_mem);
4270 
4271 		if (!cpr->cp_ring_arr)
4272 			continue;
4273 
4274 		for (j = 0; j < cpr->cp_ring_count; j++) {
4275 			struct bnxt_cp_ring_info *cpr2 = &cpr->cp_ring_arr[j];
4276 
4277 			ring = &cpr2->cp_ring_struct;
4278 			bnxt_free_ring(bp, &ring->ring_mem);
4279 			bnxt_free_cp_arrays(cpr2);
4280 		}
4281 		kfree(cpr->cp_ring_arr);
4282 		cpr->cp_ring_arr = NULL;
4283 		cpr->cp_ring_count = 0;
4284 	}
4285 }
4286 
bnxt_alloc_cp_sub_ring(struct bnxt * bp,struct bnxt_cp_ring_info * cpr)4287 static int bnxt_alloc_cp_sub_ring(struct bnxt *bp,
4288 				  struct bnxt_cp_ring_info *cpr)
4289 {
4290 	struct bnxt_ring_mem_info *rmem;
4291 	struct bnxt_ring_struct *ring;
4292 	int rc;
4293 
4294 	rc = bnxt_alloc_cp_arrays(cpr, bp->cp_nr_pages);
4295 	if (rc) {
4296 		bnxt_free_cp_arrays(cpr);
4297 		return -ENOMEM;
4298 	}
4299 	ring = &cpr->cp_ring_struct;
4300 	rmem = &ring->ring_mem;
4301 	rmem->nr_pages = bp->cp_nr_pages;
4302 	rmem->page_size = HW_CMPD_RING_SIZE;
4303 	rmem->pg_arr = (void **)cpr->cp_desc_ring;
4304 	rmem->dma_arr = cpr->cp_desc_mapping;
4305 	rmem->flags = BNXT_RMEM_RING_PTE_FLAG;
4306 	rc = bnxt_alloc_ring(bp, rmem);
4307 	if (rc) {
4308 		bnxt_free_ring(bp, rmem);
4309 		bnxt_free_cp_arrays(cpr);
4310 	}
4311 	return rc;
4312 }
4313 
bnxt_alloc_cp_rings(struct bnxt * bp)4314 static int bnxt_alloc_cp_rings(struct bnxt *bp)
4315 {
4316 	bool sh = !!(bp->flags & BNXT_FLAG_SHARED_RINGS);
4317 	int i, j, rc, ulp_msix;
4318 	int tcs = bp->num_tc;
4319 
4320 	if (!tcs)
4321 		tcs = 1;
4322 	ulp_msix = bnxt_get_ulp_msix_num(bp);
4323 	for (i = 0, j = 0; i < bp->cp_nr_rings; i++) {
4324 		struct bnxt_napi *bnapi = bp->bnapi[i];
4325 		struct bnxt_cp_ring_info *cpr, *cpr2;
4326 		struct bnxt_ring_struct *ring;
4327 		int cp_count = 0, k;
4328 		int rx = 0, tx = 0;
4329 
4330 		if (!bnapi)
4331 			continue;
4332 
4333 		cpr = &bnapi->cp_ring;
4334 		cpr->bnapi = bnapi;
4335 		ring = &cpr->cp_ring_struct;
4336 
4337 		rc = bnxt_alloc_ring(bp, &ring->ring_mem);
4338 		if (rc)
4339 			return rc;
4340 
4341 		ring->map_idx = ulp_msix + i;
4342 
4343 		if (!(bp->flags & BNXT_FLAG_CHIP_P5_PLUS))
4344 			continue;
4345 
4346 		if (i < bp->rx_nr_rings) {
4347 			cp_count++;
4348 			rx = 1;
4349 		}
4350 		if (i < bp->tx_nr_rings_xdp) {
4351 			cp_count++;
4352 			tx = 1;
4353 		} else if ((sh && i < bp->tx_nr_rings) ||
4354 			 (!sh && i >= bp->rx_nr_rings)) {
4355 			cp_count += tcs;
4356 			tx = 1;
4357 		}
4358 
4359 		cpr->cp_ring_arr = kzalloc_objs(*cpr, cp_count);
4360 		if (!cpr->cp_ring_arr)
4361 			return -ENOMEM;
4362 		cpr->cp_ring_count = cp_count;
4363 
4364 		for (k = 0; k < cp_count; k++) {
4365 			cpr2 = &cpr->cp_ring_arr[k];
4366 			rc = bnxt_alloc_cp_sub_ring(bp, cpr2);
4367 			if (rc)
4368 				return rc;
4369 			cpr2->bnapi = bnapi;
4370 			cpr2->sw_stats = cpr->sw_stats;
4371 			cpr2->cp_idx = k;
4372 			if (!k && rx) {
4373 				bp->rx_ring[i].rx_cpr = cpr2;
4374 				cpr2->cp_ring_type = BNXT_NQ_HDL_TYPE_RX;
4375 			} else {
4376 				int n, tc = k - rx;
4377 
4378 				n = BNXT_TC_TO_RING_BASE(bp, tc) + j;
4379 				bp->tx_ring[n].tx_cpr = cpr2;
4380 				cpr2->cp_ring_type = BNXT_NQ_HDL_TYPE_TX;
4381 			}
4382 		}
4383 		if (tx)
4384 			j++;
4385 	}
4386 	return 0;
4387 }
4388 
bnxt_init_rx_ring_struct(struct bnxt * bp,struct bnxt_rx_ring_info * rxr)4389 static void bnxt_init_rx_ring_struct(struct bnxt *bp,
4390 				     struct bnxt_rx_ring_info *rxr)
4391 {
4392 	struct bnxt_ring_mem_info *rmem;
4393 	struct bnxt_ring_struct *ring;
4394 
4395 	ring = &rxr->rx_ring_struct;
4396 	rmem = &ring->ring_mem;
4397 	rmem->nr_pages = bp->rx_nr_pages;
4398 	rmem->page_size = HW_RXBD_RING_SIZE;
4399 	rmem->pg_arr = (void **)rxr->rx_desc_ring;
4400 	rmem->dma_arr = rxr->rx_desc_mapping;
4401 	rmem->vmem_size = SW_RXBD_RING_SIZE * bp->rx_nr_pages;
4402 	rmem->vmem = (void **)&rxr->rx_buf_ring;
4403 
4404 	ring = &rxr->rx_agg_ring_struct;
4405 	rmem = &ring->ring_mem;
4406 	rmem->nr_pages = bp->rx_agg_nr_pages;
4407 	rmem->page_size = HW_RXBD_RING_SIZE;
4408 	rmem->pg_arr = (void **)rxr->rx_agg_desc_ring;
4409 	rmem->dma_arr = rxr->rx_agg_desc_mapping;
4410 	rmem->vmem_size = SW_RXBD_AGG_RING_SIZE * bp->rx_agg_nr_pages;
4411 	rmem->vmem = (void **)&rxr->rx_agg_ring;
4412 }
4413 
bnxt_reset_rx_ring_struct(struct bnxt * bp,struct bnxt_rx_ring_info * rxr)4414 static void bnxt_reset_rx_ring_struct(struct bnxt *bp,
4415 				      struct bnxt_rx_ring_info *rxr)
4416 {
4417 	struct bnxt_ring_mem_info *rmem;
4418 	struct bnxt_ring_struct *ring;
4419 	int i;
4420 
4421 	rxr->page_pool->p.napi = NULL;
4422 	rxr->page_pool = NULL;
4423 	rxr->head_pool->p.napi = NULL;
4424 	rxr->head_pool = NULL;
4425 	memset(&rxr->xdp_rxq, 0, sizeof(struct xdp_rxq_info));
4426 
4427 	ring = &rxr->rx_ring_struct;
4428 	rmem = &ring->ring_mem;
4429 	rmem->pg_tbl = NULL;
4430 	rmem->pg_tbl_map = 0;
4431 	for (i = 0; i < rmem->nr_pages; i++) {
4432 		rmem->pg_arr[i] = NULL;
4433 		rmem->dma_arr[i] = 0;
4434 	}
4435 	*rmem->vmem = NULL;
4436 
4437 	ring = &rxr->rx_agg_ring_struct;
4438 	rmem = &ring->ring_mem;
4439 	rmem->pg_tbl = NULL;
4440 	rmem->pg_tbl_map = 0;
4441 	for (i = 0; i < rmem->nr_pages; i++) {
4442 		rmem->pg_arr[i] = NULL;
4443 		rmem->dma_arr[i] = 0;
4444 	}
4445 	*rmem->vmem = NULL;
4446 }
4447 
bnxt_init_ring_struct(struct bnxt * bp)4448 static void bnxt_init_ring_struct(struct bnxt *bp)
4449 {
4450 	int i, j;
4451 
4452 	for (i = 0; i < bp->cp_nr_rings; i++) {
4453 		struct bnxt_napi *bnapi = bp->bnapi[i];
4454 		struct netdev_queue_config qcfg;
4455 		struct bnxt_ring_mem_info *rmem;
4456 		struct bnxt_cp_ring_info *cpr;
4457 		struct bnxt_rx_ring_info *rxr;
4458 		struct bnxt_tx_ring_info *txr;
4459 		struct bnxt_ring_struct *ring;
4460 
4461 		if (!bnapi)
4462 			continue;
4463 
4464 		cpr = &bnapi->cp_ring;
4465 		ring = &cpr->cp_ring_struct;
4466 		rmem = &ring->ring_mem;
4467 		rmem->nr_pages = bp->cp_nr_pages;
4468 		rmem->page_size = HW_CMPD_RING_SIZE;
4469 		rmem->pg_arr = (void **)cpr->cp_desc_ring;
4470 		rmem->dma_arr = cpr->cp_desc_mapping;
4471 		rmem->vmem_size = 0;
4472 
4473 		rxr = bnapi->rx_ring;
4474 		if (!rxr)
4475 			goto skip_rx;
4476 
4477 		netdev_queue_config(bp->dev, i, &qcfg);
4478 		rxr->rx_page_size = qcfg.rx_page_size;
4479 
4480 		ring = &rxr->rx_ring_struct;
4481 		rmem = &ring->ring_mem;
4482 		rmem->nr_pages = bp->rx_nr_pages;
4483 		rmem->page_size = HW_RXBD_RING_SIZE;
4484 		rmem->pg_arr = (void **)rxr->rx_desc_ring;
4485 		rmem->dma_arr = rxr->rx_desc_mapping;
4486 		rmem->vmem_size = SW_RXBD_RING_SIZE * bp->rx_nr_pages;
4487 		rmem->vmem = (void **)&rxr->rx_buf_ring;
4488 
4489 		ring = &rxr->rx_agg_ring_struct;
4490 		rmem = &ring->ring_mem;
4491 		rmem->nr_pages = bp->rx_agg_nr_pages;
4492 		rmem->page_size = HW_RXBD_RING_SIZE;
4493 		rmem->pg_arr = (void **)rxr->rx_agg_desc_ring;
4494 		rmem->dma_arr = rxr->rx_agg_desc_mapping;
4495 		rmem->vmem_size = SW_RXBD_AGG_RING_SIZE * bp->rx_agg_nr_pages;
4496 		rmem->vmem = (void **)&rxr->rx_agg_ring;
4497 
4498 skip_rx:
4499 		bnxt_for_each_napi_tx(j, bnapi, txr) {
4500 			ring = &txr->tx_ring_struct;
4501 			rmem = &ring->ring_mem;
4502 			rmem->nr_pages = bp->tx_nr_pages;
4503 			rmem->page_size = HW_TXBD_RING_SIZE;
4504 			rmem->pg_arr = (void **)txr->tx_desc_ring;
4505 			rmem->dma_arr = txr->tx_desc_mapping;
4506 			rmem->vmem_size = SW_TXBD_RING_SIZE * bp->tx_nr_pages;
4507 			rmem->vmem = (void **)&txr->tx_buf_ring;
4508 		}
4509 	}
4510 }
4511 
bnxt_init_rxbd_pages(struct bnxt_ring_struct * ring,u32 type)4512 static void bnxt_init_rxbd_pages(struct bnxt_ring_struct *ring, u32 type)
4513 {
4514 	int i;
4515 	u32 prod;
4516 	struct rx_bd **rx_buf_ring;
4517 
4518 	rx_buf_ring = (struct rx_bd **)ring->ring_mem.pg_arr;
4519 	for (i = 0, prod = 0; i < ring->ring_mem.nr_pages; i++) {
4520 		int j;
4521 		struct rx_bd *rxbd;
4522 
4523 		rxbd = rx_buf_ring[i];
4524 		if (!rxbd)
4525 			continue;
4526 
4527 		for (j = 0; j < RX_DESC_CNT; j++, rxbd++, prod++) {
4528 			rxbd->rx_bd_len_flags_type = cpu_to_le32(type);
4529 			rxbd->rx_bd_opaque = prod;
4530 		}
4531 	}
4532 }
4533 
bnxt_alloc_one_rx_ring_skb(struct bnxt * bp,struct bnxt_rx_ring_info * rxr,int ring_nr)4534 static void bnxt_alloc_one_rx_ring_skb(struct bnxt *bp,
4535 				       struct bnxt_rx_ring_info *rxr,
4536 				       int ring_nr)
4537 {
4538 	u32 prod;
4539 	int i;
4540 
4541 	prod = rxr->rx_prod;
4542 	for (i = 0; i < bp->rx_ring_size; i++) {
4543 		if (bnxt_alloc_rx_data(bp, rxr, prod, GFP_KERNEL)) {
4544 			netdev_warn(bp->dev, "init'ed rx ring %d with %d/%d skbs only\n",
4545 				    ring_nr, i, bp->rx_ring_size);
4546 			break;
4547 		}
4548 		prod = NEXT_RX(prod);
4549 	}
4550 	rxr->rx_prod = prod;
4551 }
4552 
bnxt_alloc_one_rx_ring_netmem(struct bnxt * bp,struct bnxt_rx_ring_info * rxr,int ring_nr)4553 static void bnxt_alloc_one_rx_ring_netmem(struct bnxt *bp,
4554 					  struct bnxt_rx_ring_info *rxr,
4555 					  int ring_nr)
4556 {
4557 	int fill_level, i;
4558 	u32 prod;
4559 
4560 	fill_level = bnxt_rx_agg_ring_fill_level(bp, rxr);
4561 
4562 	prod = rxr->rx_agg_prod;
4563 	for (i = 0; i < fill_level; i++) {
4564 		if (bnxt_alloc_rx_netmem(bp, rxr, prod, GFP_KERNEL)) {
4565 			netdev_warn(bp->dev, "init'ed rx ring %d with %d/%d pages only\n",
4566 				    ring_nr, i, bp->rx_agg_ring_size);
4567 			break;
4568 		}
4569 		prod = NEXT_RX_AGG(prod);
4570 	}
4571 	rxr->rx_agg_prod = prod;
4572 }
4573 
bnxt_alloc_one_tpa_info_data(struct bnxt * bp,struct bnxt_rx_ring_info * rxr)4574 static int bnxt_alloc_one_tpa_info_data(struct bnxt *bp,
4575 					struct bnxt_rx_ring_info *rxr)
4576 {
4577 	dma_addr_t mapping;
4578 	u8 *data;
4579 	int i;
4580 
4581 	for (i = 0; i < bp->max_tpa_roundup_size; i++) {
4582 		data = __bnxt_alloc_rx_frag(bp, &mapping, rxr,
4583 					    GFP_KERNEL);
4584 		if (!data)
4585 			return -ENOMEM;
4586 
4587 		rxr->rx_tpa[i].data = data;
4588 		rxr->rx_tpa[i].data_ptr = data + bp->rx_offset;
4589 		rxr->rx_tpa[i].mapping = mapping;
4590 	}
4591 
4592 	return 0;
4593 }
4594 
bnxt_alloc_one_rx_ring(struct bnxt * bp,int ring_nr)4595 static int bnxt_alloc_one_rx_ring(struct bnxt *bp, int ring_nr)
4596 {
4597 	struct bnxt_rx_ring_info *rxr = &bp->rx_ring[ring_nr];
4598 	int rc;
4599 
4600 	bnxt_alloc_one_rx_ring_skb(bp, rxr, ring_nr);
4601 
4602 	if (!(bp->flags & BNXT_FLAG_AGG_RINGS))
4603 		return 0;
4604 
4605 	bnxt_alloc_one_rx_ring_netmem(bp, rxr, ring_nr);
4606 
4607 	if (rxr->rx_tpa) {
4608 		rc = bnxt_alloc_one_tpa_info_data(bp, rxr);
4609 		if (rc)
4610 			return rc;
4611 	}
4612 	return 0;
4613 }
4614 
bnxt_init_one_rx_ring_rxbd(struct bnxt * bp,struct bnxt_rx_ring_info * rxr)4615 static void bnxt_init_one_rx_ring_rxbd(struct bnxt *bp,
4616 				       struct bnxt_rx_ring_info *rxr)
4617 {
4618 	struct bnxt_ring_struct *ring;
4619 	u32 type;
4620 
4621 	type = (bp->rx_buf_use_size << RX_BD_LEN_SHIFT) |
4622 		RX_BD_TYPE_RX_PACKET_BD | RX_BD_FLAGS_EOP;
4623 
4624 	if (NET_IP_ALIGN == 2)
4625 		type |= RX_BD_FLAGS_SOP;
4626 
4627 	ring = &rxr->rx_ring_struct;
4628 	bnxt_init_rxbd_pages(ring, type);
4629 	ring->fw_ring_id = INVALID_HW_RING_ID;
4630 }
4631 
bnxt_init_one_rx_agg_ring_rxbd(struct bnxt * bp,struct bnxt_rx_ring_info * rxr)4632 static void bnxt_init_one_rx_agg_ring_rxbd(struct bnxt *bp,
4633 					   struct bnxt_rx_ring_info *rxr)
4634 {
4635 	struct bnxt_ring_struct *ring;
4636 	u32 type;
4637 
4638 	ring = &rxr->rx_agg_ring_struct;
4639 	ring->fw_ring_id = INVALID_HW_RING_ID;
4640 	if ((bp->flags & BNXT_FLAG_AGG_RINGS)) {
4641 		type = ((u32)rxr->rx_page_size << RX_BD_LEN_SHIFT) |
4642 			RX_BD_TYPE_RX_AGG_BD;
4643 
4644 		/* Disable EOP if TPA is enabled to prevent overlapping zero
4645 		 * padding with the next segment's data.  On P7_PLUS, EOP will
4646 		 * automatically disable Relaxed Ordering (RO) to prevent
4647 		 * potential data corruption (and may degrade performance).  On
4648 		 * older chips, RO will not be automatically disabled and may
4649 		 * cause corruption.
4650 		 */
4651 		if (!(bp->flags & BNXT_FLAG_TPA))
4652 			type |= RX_BD_FLAGS_AGG_EOP;
4653 
4654 		bnxt_init_rxbd_pages(ring, type);
4655 	}
4656 }
4657 
bnxt_init_one_rx_ring(struct bnxt * bp,int ring_nr)4658 static int bnxt_init_one_rx_ring(struct bnxt *bp, int ring_nr)
4659 {
4660 	struct bnxt_rx_ring_info *rxr;
4661 
4662 	rxr = &bp->rx_ring[ring_nr];
4663 	bnxt_init_one_rx_ring_rxbd(bp, rxr);
4664 
4665 	netif_queue_set_napi(bp->dev, ring_nr, NETDEV_QUEUE_TYPE_RX,
4666 			     &rxr->bnapi->napi);
4667 
4668 	if (BNXT_RX_PAGE_MODE(bp) && bp->xdp_prog) {
4669 		bpf_prog_add(bp->xdp_prog, 1);
4670 		rxr->xdp_prog = bp->xdp_prog;
4671 	}
4672 
4673 	bnxt_init_one_rx_agg_ring_rxbd(bp, rxr);
4674 
4675 	return bnxt_alloc_one_rx_ring(bp, ring_nr);
4676 }
4677 
bnxt_init_cp_rings(struct bnxt * bp)4678 static void bnxt_init_cp_rings(struct bnxt *bp)
4679 {
4680 	int i, j;
4681 
4682 	for (i = 0; i < bp->cp_nr_rings; i++) {
4683 		struct bnxt_cp_ring_info *cpr = &bp->bnapi[i]->cp_ring;
4684 		struct bnxt_ring_struct *ring = &cpr->cp_ring_struct;
4685 
4686 		ring->fw_ring_id = INVALID_HW_RING_ID;
4687 		cpr->rx_ring_coal.coal_ticks = bp->rx_coal.coal_ticks;
4688 		cpr->rx_ring_coal.coal_bufs = bp->rx_coal.coal_bufs;
4689 		if (!cpr->cp_ring_arr)
4690 			continue;
4691 		for (j = 0; j < cpr->cp_ring_count; j++) {
4692 			struct bnxt_cp_ring_info *cpr2 = &cpr->cp_ring_arr[j];
4693 
4694 			ring = &cpr2->cp_ring_struct;
4695 			ring->fw_ring_id = INVALID_HW_RING_ID;
4696 			cpr2->rx_ring_coal.coal_ticks = bp->rx_coal.coal_ticks;
4697 			cpr2->rx_ring_coal.coal_bufs = bp->rx_coal.coal_bufs;
4698 		}
4699 	}
4700 }
4701 
bnxt_init_rx_rings(struct bnxt * bp)4702 static int bnxt_init_rx_rings(struct bnxt *bp)
4703 {
4704 	int i, rc = 0;
4705 
4706 	if (BNXT_RX_PAGE_MODE(bp)) {
4707 		bp->rx_offset = NET_IP_ALIGN + XDP_PACKET_HEADROOM;
4708 		bp->rx_dma_offset = XDP_PACKET_HEADROOM;
4709 	} else {
4710 		bp->rx_offset = BNXT_RX_OFFSET;
4711 		bp->rx_dma_offset = BNXT_RX_DMA_OFFSET;
4712 	}
4713 
4714 	for (i = 0; i < bp->rx_nr_rings; i++) {
4715 		rc = bnxt_init_one_rx_ring(bp, i);
4716 		if (rc)
4717 			break;
4718 	}
4719 
4720 	return rc;
4721 }
4722 
bnxt_init_tx_rings(struct bnxt * bp)4723 static int bnxt_init_tx_rings(struct bnxt *bp)
4724 {
4725 	netdev_features_t features;
4726 	u16 i;
4727 
4728 	features = bp->dev->features;
4729 
4730 	bp->tx_wake_thresh = max_t(int, bp->tx_ring_size / 2,
4731 				   bnxt_min_tx_desc_cnt(bp, features));
4732 
4733 	for (i = 0; i < bp->tx_nr_rings; i++) {
4734 		struct bnxt_tx_ring_info *txr = &bp->tx_ring[i];
4735 		struct bnxt_ring_struct *ring = &txr->tx_ring_struct;
4736 
4737 		ring->fw_ring_id = INVALID_HW_RING_ID;
4738 
4739 		if (i >= bp->tx_nr_rings_xdp)
4740 			netif_queue_set_napi(bp->dev, i - bp->tx_nr_rings_xdp,
4741 					     NETDEV_QUEUE_TYPE_TX,
4742 					     &txr->bnapi->napi);
4743 	}
4744 
4745 	return 0;
4746 }
4747 
bnxt_free_ring_grps(struct bnxt * bp)4748 static void bnxt_free_ring_grps(struct bnxt *bp)
4749 {
4750 	kfree(bp->grp_info);
4751 	bp->grp_info = NULL;
4752 }
4753 
bnxt_init_ring_grps(struct bnxt * bp,bool irq_re_init)4754 static int bnxt_init_ring_grps(struct bnxt *bp, bool irq_re_init)
4755 {
4756 	int i;
4757 
4758 	if (irq_re_init) {
4759 		bp->grp_info = kzalloc_objs(struct bnxt_ring_grp_info,
4760 					    bp->cp_nr_rings);
4761 		if (!bp->grp_info)
4762 			return -ENOMEM;
4763 	}
4764 	for (i = 0; i < bp->cp_nr_rings; i++) {
4765 		if (irq_re_init)
4766 			bp->grp_info[i].fw_stats_ctx = INVALID_HW_RING_ID;
4767 		bp->grp_info[i].fw_grp_id = INVALID_HW_RING_ID;
4768 		bp->grp_info[i].rx_fw_ring_id = INVALID_HW_RING_ID;
4769 		bp->grp_info[i].agg_fw_ring_id = INVALID_HW_RING_ID;
4770 		bp->grp_info[i].cp_fw_ring_id = INVALID_HW_RING_ID;
4771 	}
4772 	return 0;
4773 }
4774 
bnxt_free_vnics(struct bnxt * bp)4775 static void bnxt_free_vnics(struct bnxt *bp)
4776 {
4777 	kfree(bp->vnic_info);
4778 	bp->vnic_info = NULL;
4779 	bp->nr_vnics = 0;
4780 }
4781 
bnxt_alloc_vnics(struct bnxt * bp)4782 static int bnxt_alloc_vnics(struct bnxt *bp)
4783 {
4784 	int num_vnics = 1;
4785 
4786 #ifdef CONFIG_RFS_ACCEL
4787 	if (bp->flags & BNXT_FLAG_RFS) {
4788 		if (BNXT_SUPPORTS_NTUPLE_VNIC(bp))
4789 			num_vnics++;
4790 		else if (!(bp->flags & BNXT_FLAG_CHIP_P5_PLUS))
4791 			num_vnics += bp->rx_nr_rings;
4792 	}
4793 #endif
4794 
4795 	if (BNXT_CHIP_TYPE_NITRO_A0(bp))
4796 		num_vnics++;
4797 
4798 	bp->vnic_info = kzalloc_objs(struct bnxt_vnic_info, num_vnics);
4799 	if (!bp->vnic_info)
4800 		return -ENOMEM;
4801 
4802 	bp->nr_vnics = num_vnics;
4803 	return 0;
4804 }
4805 
bnxt_init_vnics(struct bnxt * bp)4806 static void bnxt_init_vnics(struct bnxt *bp)
4807 {
4808 	struct bnxt_vnic_info *vnic0 = &bp->vnic_info[BNXT_VNIC_DEFAULT];
4809 	int i;
4810 
4811 	for (i = 0; i < bp->nr_vnics; i++) {
4812 		struct bnxt_vnic_info *vnic = &bp->vnic_info[i];
4813 		int j;
4814 
4815 		vnic->fw_vnic_id = INVALID_HW_RING_ID;
4816 		vnic->vnic_id = i;
4817 		for (j = 0; j < BNXT_MAX_CTX_PER_VNIC; j++)
4818 			vnic->fw_rss_cos_lb_ctx[j] = INVALID_HW_RING_ID;
4819 
4820 		vnic->fw_l2_ctx_id = INVALID_HW_RING_ID;
4821 
4822 		if (bp->vnic_info[i].rss_hash_key) {
4823 			if (i == BNXT_VNIC_DEFAULT) {
4824 				u8 *key = (void *)vnic->rss_hash_key;
4825 				int k;
4826 
4827 				if (!bp->rss_hash_key_valid &&
4828 				    !bp->rss_hash_key_updated) {
4829 					get_random_bytes(bp->rss_hash_key,
4830 							 HW_HASH_KEY_SIZE);
4831 					bp->rss_hash_key_updated = true;
4832 				}
4833 
4834 				memcpy(vnic->rss_hash_key, bp->rss_hash_key,
4835 				       HW_HASH_KEY_SIZE);
4836 
4837 				if (!bp->rss_hash_key_updated)
4838 					continue;
4839 
4840 				bp->rss_hash_key_updated = false;
4841 				bp->rss_hash_key_valid = true;
4842 
4843 				bp->toeplitz_prefix = 0;
4844 				for (k = 0; k < 8; k++) {
4845 					bp->toeplitz_prefix <<= 8;
4846 					bp->toeplitz_prefix |= key[k];
4847 				}
4848 			} else {
4849 				memcpy(vnic->rss_hash_key, vnic0->rss_hash_key,
4850 				       HW_HASH_KEY_SIZE);
4851 			}
4852 		}
4853 	}
4854 }
4855 
bnxt_calc_nr_ring_pages(u32 ring_size,int desc_per_pg)4856 static int bnxt_calc_nr_ring_pages(u32 ring_size, int desc_per_pg)
4857 {
4858 	int pages;
4859 
4860 	pages = ring_size / desc_per_pg;
4861 
4862 	if (!pages)
4863 		return 1;
4864 
4865 	pages++;
4866 
4867 	while (pages & (pages - 1))
4868 		pages++;
4869 
4870 	return pages;
4871 }
4872 
bnxt_set_tpa_flags(struct bnxt * bp)4873 void bnxt_set_tpa_flags(struct bnxt *bp)
4874 {
4875 	bp->flags &= ~BNXT_FLAG_TPA;
4876 	if (bp->flags & BNXT_FLAG_NO_AGG_RINGS)
4877 		return;
4878 	if (bp->dev->features & NETIF_F_LRO)
4879 		bp->flags |= BNXT_FLAG_LRO;
4880 	else if (bp->dev->features & NETIF_F_GRO_HW)
4881 		bp->flags |= BNXT_FLAG_GRO;
4882 }
4883 
bnxt_init_ring_params(struct bnxt * bp)4884 static void bnxt_init_ring_params(struct bnxt *bp)
4885 {
4886 	unsigned int rx_size;
4887 
4888 	bp->rx_copybreak = 0; /* rx-copybreak disabled by default */
4889 	/* Try to fit 4 chunks into a 4k page */
4890 	rx_size = SZ_1K -
4891 		NET_SKB_PAD - SKB_DATA_ALIGN(sizeof(struct skb_shared_info));
4892 	bp->dev->cfg->hds_thresh = max(BNXT_MIN_RX_HDR_BUF, rx_size);
4893 }
4894 
4895 /* bp->rx_ring_size, bp->tx_ring_size, dev->mtu, BNXT_FLAG_{G|L}RO flags must
4896  * be set on entry.
4897  */
bnxt_set_ring_params(struct bnxt * bp)4898 void bnxt_set_ring_params(struct bnxt *bp)
4899 {
4900 	u32 ring_size, rx_size, rx_space, max_rx_cmpl;
4901 	u32 agg_factor = 0, agg_ring_size = 0;
4902 
4903 	/* 8 for CRC and VLAN */
4904 	rx_size = SKB_DATA_ALIGN(bp->dev->mtu + ETH_HLEN + NET_IP_ALIGN + 8);
4905 
4906 	rx_space = rx_size + ALIGN(max(NET_SKB_PAD, XDP_PACKET_HEADROOM), 8) +
4907 		SKB_DATA_ALIGN(sizeof(struct skb_shared_info));
4908 
4909 	ring_size = bp->rx_ring_size;
4910 	bp->rx_agg_ring_size = 0;
4911 	bp->rx_agg_nr_pages = 0;
4912 
4913 	if (bp->flags & BNXT_FLAG_TPA || bp->flags & BNXT_FLAG_HDS)
4914 		agg_factor = min_t(u32, 4, 65536 / BNXT_RX_PAGE_SIZE);
4915 
4916 	bp->flags &= ~BNXT_FLAG_JUMBO;
4917 	if (rx_space > PAGE_SIZE && !(bp->flags & BNXT_FLAG_NO_AGG_RINGS)) {
4918 		u32 jumbo_factor;
4919 
4920 		bp->flags |= BNXT_FLAG_JUMBO;
4921 		jumbo_factor = PAGE_ALIGN(bp->dev->mtu - 40) >> PAGE_SHIFT;
4922 		if (jumbo_factor > agg_factor)
4923 			agg_factor = jumbo_factor;
4924 	}
4925 	if (agg_factor) {
4926 		if (ring_size > BNXT_MAX_RX_DESC_CNT_JUM_ENA) {
4927 			ring_size = BNXT_MAX_RX_DESC_CNT_JUM_ENA;
4928 			netdev_warn(bp->dev, "RX ring size reduced from %d to %d because the jumbo ring is now enabled\n",
4929 				    bp->rx_ring_size, ring_size);
4930 			bp->rx_ring_size = ring_size;
4931 		}
4932 		agg_ring_size = ring_size * agg_factor;
4933 
4934 		bp->rx_agg_nr_pages = bnxt_calc_nr_ring_pages(agg_ring_size,
4935 							RX_DESC_CNT);
4936 		if (bp->rx_agg_nr_pages > MAX_RX_AGG_PAGES) {
4937 			u32 tmp = agg_ring_size;
4938 
4939 			bp->rx_agg_nr_pages = MAX_RX_AGG_PAGES;
4940 			agg_ring_size = MAX_RX_AGG_PAGES * RX_DESC_CNT - 1;
4941 			netdev_warn(bp->dev, "rx agg ring size %d reduced to %d.\n",
4942 				    tmp, agg_ring_size);
4943 		}
4944 		bp->rx_agg_ring_size = agg_ring_size;
4945 		bp->rx_agg_ring_mask = (bp->rx_agg_nr_pages * RX_DESC_CNT) - 1;
4946 
4947 		if (BNXT_RX_PAGE_MODE(bp)) {
4948 			rx_space = PAGE_SIZE;
4949 			rx_size = PAGE_SIZE -
4950 				  ALIGN(max(NET_SKB_PAD, XDP_PACKET_HEADROOM), 8) -
4951 				  SKB_DATA_ALIGN(sizeof(struct skb_shared_info));
4952 		} else {
4953 			rx_size = max3(BNXT_MIN_RX_HDR_BUF,
4954 				       bp->rx_copybreak,
4955 				       bp->dev->cfg_pending->hds_thresh);
4956 			rx_size = SKB_DATA_ALIGN(rx_size + NET_IP_ALIGN);
4957 			rx_space = rx_size + NET_SKB_PAD +
4958 				SKB_DATA_ALIGN(sizeof(struct skb_shared_info));
4959 		}
4960 	}
4961 
4962 	bp->rx_buf_use_size = rx_size;
4963 	bp->rx_buf_size = rx_space;
4964 
4965 	bp->rx_nr_pages = bnxt_calc_nr_ring_pages(ring_size, RX_DESC_CNT);
4966 	bp->rx_ring_mask = (bp->rx_nr_pages * RX_DESC_CNT) - 1;
4967 
4968 	ring_size = bp->tx_ring_size;
4969 	bp->tx_nr_pages = bnxt_calc_nr_ring_pages(ring_size, TX_DESC_CNT);
4970 	bp->tx_ring_mask = (bp->tx_nr_pages * TX_DESC_CNT) - 1;
4971 
4972 	max_rx_cmpl = bp->rx_ring_size;
4973 	/* MAX TPA needs to be added because TPA_START completions are
4974 	 * immediately recycled, so the TPA completions are not bound by
4975 	 * the RX ring size.
4976 	 */
4977 	if (bp->flags & BNXT_FLAG_TPA)
4978 		max_rx_cmpl += bp->max_tpa;
4979 	/* RX and TPA completions are 32-byte, all others are 16-byte */
4980 	ring_size = max_rx_cmpl * 2 + agg_ring_size + bp->tx_ring_size;
4981 	bp->cp_ring_size = ring_size;
4982 
4983 	bp->cp_nr_pages = bnxt_calc_nr_ring_pages(ring_size, CP_DESC_CNT);
4984 	if (bp->cp_nr_pages > MAX_CP_PAGES) {
4985 		bp->cp_nr_pages = MAX_CP_PAGES;
4986 		bp->cp_ring_size = MAX_CP_PAGES * CP_DESC_CNT - 1;
4987 		netdev_warn(bp->dev, "completion ring size %d reduced to %d.\n",
4988 			    ring_size, bp->cp_ring_size);
4989 	}
4990 	bp->cp_bit = bp->cp_nr_pages * CP_DESC_CNT;
4991 	bp->cp_ring_mask = bp->cp_bit - 1;
4992 }
4993 
4994 /* Changing allocation mode of RX rings.
4995  * TODO: Update when extending xdp_rxq_info to support allocation modes.
4996  */
__bnxt_set_rx_skb_mode(struct bnxt * bp,bool page_mode)4997 static void __bnxt_set_rx_skb_mode(struct bnxt *bp, bool page_mode)
4998 {
4999 	struct net_device *dev = bp->dev;
5000 
5001 	if (page_mode) {
5002 		bp->flags &= ~(BNXT_FLAG_AGG_RINGS | BNXT_FLAG_NO_AGG_RINGS);
5003 		bp->flags |= BNXT_FLAG_RX_PAGE_MODE;
5004 
5005 		if (bp->xdp_prog->aux->xdp_has_frags)
5006 			dev->max_mtu = min_t(u16, bp->max_mtu, BNXT_MAX_MTU);
5007 		else
5008 			dev->max_mtu =
5009 				min_t(u16, bp->max_mtu, BNXT_MAX_PAGE_MODE_MTU);
5010 		if (dev->mtu > BNXT_MAX_PAGE_MODE_MTU) {
5011 			bp->flags |= BNXT_FLAG_JUMBO;
5012 			bp->rx_skb_func = bnxt_rx_multi_page_skb;
5013 		} else {
5014 			bp->flags |= BNXT_FLAG_NO_AGG_RINGS;
5015 			bp->rx_skb_func = bnxt_rx_page_skb;
5016 		}
5017 		bp->rx_dir = DMA_BIDIRECTIONAL;
5018 	} else {
5019 		dev->max_mtu = bp->max_mtu;
5020 		bp->flags &= ~BNXT_FLAG_RX_PAGE_MODE;
5021 		bp->rx_dir = DMA_FROM_DEVICE;
5022 		bp->rx_skb_func = bnxt_rx_skb;
5023 	}
5024 }
5025 
bnxt_set_rx_skb_mode(struct bnxt * bp,bool page_mode)5026 void bnxt_set_rx_skb_mode(struct bnxt *bp, bool page_mode)
5027 {
5028 	__bnxt_set_rx_skb_mode(bp, page_mode);
5029 
5030 	if (!page_mode) {
5031 		int rx, tx;
5032 
5033 		bnxt_get_max_rings(bp, &rx, &tx, true);
5034 		if (rx > 1) {
5035 			bp->flags &= ~BNXT_FLAG_NO_AGG_RINGS;
5036 			if (BNXT_SUPPORTS_TPA(bp))
5037 				bp->dev->hw_features |= NETIF_F_LRO;
5038 		}
5039 	}
5040 
5041 	/* Update LRO and GRO_HW availability */
5042 	netdev_update_features(bp->dev);
5043 }
5044 
bnxt_free_vnic_attributes(struct bnxt * bp)5045 static void bnxt_free_vnic_attributes(struct bnxt *bp)
5046 {
5047 	int i;
5048 	struct bnxt_vnic_info *vnic;
5049 	struct pci_dev *pdev = bp->pdev;
5050 
5051 	if (!bp->vnic_info)
5052 		return;
5053 
5054 	for (i = 0; i < bp->nr_vnics; i++) {
5055 		vnic = &bp->vnic_info[i];
5056 
5057 		kfree(vnic->fw_grp_ids);
5058 		vnic->fw_grp_ids = NULL;
5059 
5060 		kfree(vnic->uc_list);
5061 		vnic->uc_list = NULL;
5062 
5063 		if (vnic->mc_list) {
5064 			dma_free_coherent(&pdev->dev, vnic->mc_list_size,
5065 					  vnic->mc_list, vnic->mc_list_mapping);
5066 			vnic->mc_list = NULL;
5067 		}
5068 
5069 		if (vnic->rss_table) {
5070 			dma_free_coherent(&pdev->dev, vnic->rss_table_size,
5071 					  vnic->rss_table,
5072 					  vnic->rss_table_dma_addr);
5073 			vnic->rss_table = NULL;
5074 		}
5075 
5076 		vnic->rss_hash_key = NULL;
5077 		vnic->flags = 0;
5078 	}
5079 }
5080 
bnxt_alloc_vnic_attributes(struct bnxt * bp)5081 static int bnxt_alloc_vnic_attributes(struct bnxt *bp)
5082 {
5083 	int i, rc = 0, size;
5084 	struct bnxt_vnic_info *vnic;
5085 	struct pci_dev *pdev = bp->pdev;
5086 	int max_rings;
5087 
5088 	for (i = 0; i < bp->nr_vnics; i++) {
5089 		vnic = &bp->vnic_info[i];
5090 
5091 		if (vnic->flags & BNXT_VNIC_UCAST_FLAG) {
5092 			int mem_size = (BNXT_MAX_UC_ADDRS - 1) * ETH_ALEN;
5093 
5094 			if (mem_size > 0) {
5095 				vnic->uc_list = kmalloc(mem_size, GFP_KERNEL);
5096 				if (!vnic->uc_list) {
5097 					rc = -ENOMEM;
5098 					goto out;
5099 				}
5100 			}
5101 		}
5102 
5103 		if (vnic->flags & BNXT_VNIC_MCAST_FLAG) {
5104 			vnic->mc_list_size = BNXT_MAX_MC_ADDRS * ETH_ALEN;
5105 			vnic->mc_list =
5106 				dma_alloc_coherent(&pdev->dev,
5107 						   vnic->mc_list_size,
5108 						   &vnic->mc_list_mapping,
5109 						   GFP_KERNEL);
5110 			if (!vnic->mc_list) {
5111 				rc = -ENOMEM;
5112 				goto out;
5113 			}
5114 		}
5115 
5116 		if (bp->flags & BNXT_FLAG_CHIP_P5_PLUS)
5117 			goto vnic_skip_grps;
5118 
5119 		if (vnic->flags & BNXT_VNIC_RSS_FLAG)
5120 			max_rings = bp->rx_nr_rings;
5121 		else
5122 			max_rings = 1;
5123 
5124 		vnic->fw_grp_ids = kcalloc(max_rings, sizeof(u16), GFP_KERNEL);
5125 		if (!vnic->fw_grp_ids) {
5126 			rc = -ENOMEM;
5127 			goto out;
5128 		}
5129 vnic_skip_grps:
5130 		if ((bp->rss_cap & BNXT_RSS_CAP_NEW_RSS_CAP) &&
5131 		    !(vnic->flags & BNXT_VNIC_RSS_FLAG))
5132 			continue;
5133 
5134 		/* Allocate rss table and hash key */
5135 		size = L1_CACHE_ALIGN(HW_HASH_INDEX_SIZE * sizeof(u16));
5136 		if (bp->flags & BNXT_FLAG_CHIP_P5_PLUS)
5137 			size = L1_CACHE_ALIGN(BNXT_MAX_RSS_TABLE_SIZE_P5);
5138 
5139 		vnic->rss_table_size = size + HW_HASH_KEY_SIZE;
5140 		vnic->rss_table = dma_alloc_coherent(&pdev->dev,
5141 						     vnic->rss_table_size,
5142 						     &vnic->rss_table_dma_addr,
5143 						     GFP_KERNEL);
5144 		if (!vnic->rss_table) {
5145 			rc = -ENOMEM;
5146 			goto out;
5147 		}
5148 
5149 		vnic->rss_hash_key = ((void *)vnic->rss_table) + size;
5150 		vnic->rss_hash_key_dma_addr = vnic->rss_table_dma_addr + size;
5151 	}
5152 	return 0;
5153 
5154 out:
5155 	return rc;
5156 }
5157 
bnxt_free_hwrm_resources(struct bnxt * bp)5158 static void bnxt_free_hwrm_resources(struct bnxt *bp)
5159 {
5160 	struct bnxt_hwrm_wait_token *token;
5161 
5162 	dma_pool_destroy(bp->hwrm_dma_pool);
5163 	bp->hwrm_dma_pool = NULL;
5164 
5165 	rcu_read_lock();
5166 	hlist_for_each_entry_rcu(token, &bp->hwrm_pending_list, node)
5167 		WRITE_ONCE(token->state, BNXT_HWRM_CANCELLED);
5168 	rcu_read_unlock();
5169 }
5170 
bnxt_alloc_hwrm_resources(struct bnxt * bp)5171 static int bnxt_alloc_hwrm_resources(struct bnxt *bp)
5172 {
5173 	bp->hwrm_dma_pool = dma_pool_create("bnxt_hwrm", &bp->pdev->dev,
5174 					    BNXT_HWRM_DMA_SIZE,
5175 					    BNXT_HWRM_DMA_ALIGN, 0);
5176 	if (!bp->hwrm_dma_pool)
5177 		return -ENOMEM;
5178 
5179 	INIT_HLIST_HEAD(&bp->hwrm_pending_list);
5180 
5181 	return 0;
5182 }
5183 
bnxt_free_stats_mem(struct bnxt * bp,struct bnxt_stats_mem * stats)5184 static void bnxt_free_stats_mem(struct bnxt *bp, struct bnxt_stats_mem *stats)
5185 {
5186 	kfree(stats->hw_masks);
5187 	stats->hw_masks = NULL;
5188 	kfree(stats->sw_stats);
5189 	stats->sw_stats = NULL;
5190 	if (stats->hw_stats) {
5191 		dma_free_coherent(&bp->pdev->dev, stats->len, stats->hw_stats,
5192 				  stats->hw_stats_map);
5193 		stats->hw_stats = NULL;
5194 	}
5195 }
5196 
bnxt_alloc_stats_mem(struct bnxt * bp,struct bnxt_stats_mem * stats,bool alloc_masks)5197 static int bnxt_alloc_stats_mem(struct bnxt *bp, struct bnxt_stats_mem *stats,
5198 				bool alloc_masks)
5199 {
5200 	stats->hw_stats = dma_alloc_coherent(&bp->pdev->dev, stats->len,
5201 					     &stats->hw_stats_map, GFP_KERNEL);
5202 	if (!stats->hw_stats)
5203 		return -ENOMEM;
5204 
5205 	stats->sw_stats = kzalloc(stats->len, GFP_KERNEL);
5206 	if (!stats->sw_stats)
5207 		goto stats_mem_err;
5208 
5209 	if (alloc_masks) {
5210 		stats->hw_masks = kzalloc(stats->len, GFP_KERNEL);
5211 		if (!stats->hw_masks)
5212 			goto stats_mem_err;
5213 	}
5214 	return 0;
5215 
5216 stats_mem_err:
5217 	bnxt_free_stats_mem(bp, stats);
5218 	return -ENOMEM;
5219 }
5220 
bnxt_fill_masks(u64 * mask_arr,u64 mask,int count)5221 static void bnxt_fill_masks(u64 *mask_arr, u64 mask, int count)
5222 {
5223 	int i;
5224 
5225 	for (i = 0; i < count; i++)
5226 		mask_arr[i] = mask;
5227 }
5228 
bnxt_copy_hw_masks(u64 * mask_arr,__le64 * hw_mask_arr,int count)5229 static void bnxt_copy_hw_masks(u64 *mask_arr, __le64 *hw_mask_arr, int count)
5230 {
5231 	int i;
5232 
5233 	for (i = 0; i < count; i++)
5234 		mask_arr[i] = le64_to_cpu(hw_mask_arr[i]);
5235 }
5236 
bnxt_hwrm_func_qstat_ext(struct bnxt * bp,struct bnxt_stats_mem * stats)5237 static int bnxt_hwrm_func_qstat_ext(struct bnxt *bp,
5238 				    struct bnxt_stats_mem *stats)
5239 {
5240 	struct hwrm_func_qstats_ext_output *resp;
5241 	struct hwrm_func_qstats_ext_input *req;
5242 	__le64 *hw_masks;
5243 	int rc;
5244 
5245 	if (!(bp->fw_cap & BNXT_FW_CAP_EXT_HW_STATS_SUPPORTED) ||
5246 	    !(bp->flags & BNXT_FLAG_CHIP_P5_PLUS))
5247 		return -EOPNOTSUPP;
5248 
5249 	rc = hwrm_req_init(bp, req, HWRM_FUNC_QSTATS_EXT);
5250 	if (rc)
5251 		return rc;
5252 
5253 	req->fid = cpu_to_le16(0xffff);
5254 	req->flags = FUNC_QSTATS_EXT_REQ_FLAGS_COUNTER_MASK;
5255 
5256 	resp = hwrm_req_hold(bp, req);
5257 	rc = hwrm_req_send(bp, req);
5258 	if (!rc) {
5259 		hw_masks = &resp->rx_ucast_pkts;
5260 		bnxt_copy_hw_masks(stats->hw_masks, hw_masks, stats->len / 8);
5261 	}
5262 	hwrm_req_drop(bp, req);
5263 	return rc;
5264 }
5265 
5266 static int bnxt_hwrm_port_qstats(struct bnxt *bp, u8 flags);
5267 static int bnxt_hwrm_port_qstats_ext(struct bnxt *bp, u8 flags);
5268 
bnxt_init_stats(struct bnxt * bp)5269 static void bnxt_init_stats(struct bnxt *bp)
5270 {
5271 	struct bnxt_napi *bnapi = bp->bnapi[0];
5272 	struct bnxt_cp_ring_info *cpr;
5273 	struct bnxt_stats_mem *stats;
5274 	__le64 *rx_stats, *tx_stats;
5275 	int rc, rx_count, tx_count;
5276 	u64 *rx_masks, *tx_masks;
5277 	u64 mask;
5278 	u8 flags;
5279 
5280 	cpr = &bnapi->cp_ring;
5281 	stats = &cpr->stats;
5282 	rc = bnxt_hwrm_func_qstat_ext(bp, stats);
5283 	if (rc) {
5284 		if (bp->flags & BNXT_FLAG_CHIP_P5_PLUS)
5285 			mask = (1ULL << 48) - 1;
5286 		else
5287 			mask = -1ULL;
5288 		bnxt_fill_masks(stats->hw_masks, mask, stats->len / 8);
5289 	}
5290 	if (bp->flags & BNXT_FLAG_PORT_STATS) {
5291 		stats = &bp->port_stats;
5292 		rx_stats = stats->hw_stats;
5293 		rx_masks = stats->hw_masks;
5294 		rx_count = sizeof(struct rx_port_stats) / 8;
5295 		tx_stats = rx_stats + BNXT_TX_PORT_STATS_BYTE_OFFSET / 8;
5296 		tx_masks = rx_masks + BNXT_TX_PORT_STATS_BYTE_OFFSET / 8;
5297 		tx_count = sizeof(struct tx_port_stats) / 8;
5298 
5299 		flags = PORT_QSTATS_REQ_FLAGS_COUNTER_MASK;
5300 		rc = bnxt_hwrm_port_qstats(bp, flags);
5301 		if (rc) {
5302 			mask = (1ULL << 40) - 1;
5303 
5304 			bnxt_fill_masks(rx_masks, mask, rx_count);
5305 			bnxt_fill_masks(tx_masks, mask, tx_count);
5306 		} else {
5307 			bnxt_copy_hw_masks(rx_masks, rx_stats, rx_count);
5308 			bnxt_copy_hw_masks(tx_masks, tx_stats, tx_count);
5309 			bnxt_hwrm_port_qstats(bp, 0);
5310 		}
5311 	}
5312 	if (bp->flags & BNXT_FLAG_PORT_STATS_EXT) {
5313 		stats = &bp->rx_port_stats_ext;
5314 		rx_stats = stats->hw_stats;
5315 		rx_masks = stats->hw_masks;
5316 		rx_count = sizeof(struct rx_port_stats_ext) / 8;
5317 		stats = &bp->tx_port_stats_ext;
5318 		tx_stats = stats->hw_stats;
5319 		tx_masks = stats->hw_masks;
5320 		tx_count = sizeof(struct tx_port_stats_ext) / 8;
5321 
5322 		flags = PORT_QSTATS_EXT_REQ_FLAGS_COUNTER_MASK;
5323 		rc = bnxt_hwrm_port_qstats_ext(bp, flags);
5324 		if (rc) {
5325 			mask = (1ULL << 40) - 1;
5326 
5327 			bnxt_fill_masks(rx_masks, mask, rx_count);
5328 			if (tx_stats)
5329 				bnxt_fill_masks(tx_masks, mask, tx_count);
5330 		} else {
5331 			bnxt_copy_hw_masks(rx_masks, rx_stats, rx_count);
5332 			if (tx_stats)
5333 				bnxt_copy_hw_masks(tx_masks, tx_stats,
5334 						   tx_count);
5335 			bnxt_hwrm_port_qstats_ext(bp, 0);
5336 		}
5337 	}
5338 }
5339 
bnxt_free_port_stats(struct bnxt * bp)5340 static void bnxt_free_port_stats(struct bnxt *bp)
5341 {
5342 	bp->flags &= ~BNXT_FLAG_PORT_STATS;
5343 	bp->flags &= ~BNXT_FLAG_PORT_STATS_EXT;
5344 
5345 	bnxt_free_stats_mem(bp, &bp->port_stats);
5346 	bnxt_free_stats_mem(bp, &bp->rx_port_stats_ext);
5347 	bnxt_free_stats_mem(bp, &bp->tx_port_stats_ext);
5348 }
5349 
bnxt_free_ring_stats(struct bnxt * bp)5350 static void bnxt_free_ring_stats(struct bnxt *bp)
5351 {
5352 	int i;
5353 
5354 	if (!bp->bnapi)
5355 		return;
5356 
5357 	for (i = 0; i < bp->cp_nr_rings; i++) {
5358 		struct bnxt_napi *bnapi = bp->bnapi[i];
5359 		struct bnxt_cp_ring_info *cpr = &bnapi->cp_ring;
5360 
5361 		bnxt_free_stats_mem(bp, &cpr->stats);
5362 
5363 		kfree(cpr->sw_stats);
5364 		cpr->sw_stats = NULL;
5365 	}
5366 }
5367 
bnxt_alloc_stats(struct bnxt * bp)5368 static int bnxt_alloc_stats(struct bnxt *bp)
5369 {
5370 	u32 size, i;
5371 	int rc;
5372 
5373 	size = bp->hw_ring_stats_size;
5374 
5375 	for (i = 0; i < bp->cp_nr_rings; i++) {
5376 		struct bnxt_napi *bnapi = bp->bnapi[i];
5377 		struct bnxt_cp_ring_info *cpr = &bnapi->cp_ring;
5378 
5379 		cpr->sw_stats = kzalloc_obj(*cpr->sw_stats);
5380 		if (!cpr->sw_stats)
5381 			return -ENOMEM;
5382 
5383 		cpr->stats.len = size;
5384 		rc = bnxt_alloc_stats_mem(bp, &cpr->stats, !i);
5385 		if (rc)
5386 			return rc;
5387 
5388 		cpr->hw_stats_ctx_id = INVALID_STATS_CTX_ID;
5389 	}
5390 
5391 	if (BNXT_VF(bp) || bp->chip_num == CHIP_NUM_58700)
5392 		return 0;
5393 
5394 	if (bp->port_stats.hw_stats)
5395 		goto alloc_ext_stats;
5396 
5397 	bp->port_stats.len = BNXT_PORT_STATS_SIZE;
5398 	rc = bnxt_alloc_stats_mem(bp, &bp->port_stats, true);
5399 	if (rc)
5400 		return rc;
5401 
5402 	bp->flags |= BNXT_FLAG_PORT_STATS;
5403 
5404 alloc_ext_stats:
5405 	/* Display extended statistics only if FW supports it */
5406 	if (bp->hwrm_spec_code < 0x10804 || bp->hwrm_spec_code == 0x10900)
5407 		if (!(bp->fw_cap & BNXT_FW_CAP_EXT_STATS_SUPPORTED))
5408 			return 0;
5409 
5410 	if (bp->rx_port_stats_ext.hw_stats)
5411 		goto alloc_tx_ext_stats;
5412 
5413 	bp->rx_port_stats_ext.len = sizeof(struct rx_port_stats_ext);
5414 	rc = bnxt_alloc_stats_mem(bp, &bp->rx_port_stats_ext, true);
5415 	/* Extended stats are optional */
5416 	if (rc)
5417 		return 0;
5418 
5419 alloc_tx_ext_stats:
5420 	if (bp->tx_port_stats_ext.hw_stats)
5421 		return 0;
5422 
5423 	if (bp->hwrm_spec_code >= 0x10902 ||
5424 	    (bp->fw_cap & BNXT_FW_CAP_EXT_STATS_SUPPORTED)) {
5425 		bp->tx_port_stats_ext.len = sizeof(struct tx_port_stats_ext);
5426 		rc = bnxt_alloc_stats_mem(bp, &bp->tx_port_stats_ext, true);
5427 		/* Extended stats are optional */
5428 		if (rc)
5429 			return 0;
5430 	}
5431 	bp->flags |= BNXT_FLAG_PORT_STATS_EXT;
5432 	return 0;
5433 }
5434 
bnxt_clear_ring_indices(struct bnxt * bp)5435 static void bnxt_clear_ring_indices(struct bnxt *bp)
5436 {
5437 	int i, j;
5438 
5439 	if (!bp->bnapi)
5440 		return;
5441 
5442 	for (i = 0; i < bp->cp_nr_rings; i++) {
5443 		struct bnxt_napi *bnapi = bp->bnapi[i];
5444 		struct bnxt_cp_ring_info *cpr;
5445 		struct bnxt_rx_ring_info *rxr;
5446 		struct bnxt_tx_ring_info *txr;
5447 
5448 		if (!bnapi)
5449 			continue;
5450 
5451 		cpr = &bnapi->cp_ring;
5452 		cpr->cp_raw_cons = 0;
5453 
5454 		bnxt_for_each_napi_tx(j, bnapi, txr) {
5455 			txr->tx_prod = 0;
5456 			txr->tx_cons = 0;
5457 			txr->tx_hw_cons = 0;
5458 			txr->kick_pending = 0;
5459 			txr->kick_txbd0 = NULL;
5460 		}
5461 
5462 		rxr = bnapi->rx_ring;
5463 		if (rxr) {
5464 			rxr->rx_prod = 0;
5465 			rxr->rx_agg_prod = 0;
5466 			rxr->rx_sw_agg_prod = 0;
5467 			rxr->rx_next_cons = 0;
5468 		}
5469 		bnapi->events = 0;
5470 	}
5471 }
5472 
bnxt_insert_usr_fltr(struct bnxt * bp,struct bnxt_filter_base * fltr)5473 void bnxt_insert_usr_fltr(struct bnxt *bp, struct bnxt_filter_base *fltr)
5474 {
5475 	u8 type = fltr->type, flags = fltr->flags;
5476 
5477 	INIT_LIST_HEAD(&fltr->list);
5478 	if ((type == BNXT_FLTR_TYPE_L2 && flags & BNXT_ACT_RING_DST) ||
5479 	    (type == BNXT_FLTR_TYPE_NTUPLE && flags & BNXT_ACT_NO_AGING))
5480 		list_add_tail(&fltr->list, &bp->usr_fltr_list);
5481 }
5482 
bnxt_del_one_usr_fltr(struct bnxt * bp,struct bnxt_filter_base * fltr)5483 void bnxt_del_one_usr_fltr(struct bnxt *bp, struct bnxt_filter_base *fltr)
5484 {
5485 	if (!list_empty(&fltr->list))
5486 		list_del_init(&fltr->list);
5487 }
5488 
bnxt_clear_usr_fltrs(struct bnxt * bp,bool all)5489 static void bnxt_clear_usr_fltrs(struct bnxt *bp, bool all)
5490 {
5491 	struct bnxt_filter_base *usr_fltr, *tmp;
5492 
5493 	list_for_each_entry_safe(usr_fltr, tmp, &bp->usr_fltr_list, list) {
5494 		if (!all && usr_fltr->type == BNXT_FLTR_TYPE_L2)
5495 			continue;
5496 		bnxt_del_one_usr_fltr(bp, usr_fltr);
5497 	}
5498 }
5499 
bnxt_del_fltr(struct bnxt * bp,struct bnxt_filter_base * fltr)5500 static void bnxt_del_fltr(struct bnxt *bp, struct bnxt_filter_base *fltr)
5501 {
5502 	hlist_del(&fltr->hash);
5503 	bnxt_del_one_usr_fltr(bp, fltr);
5504 	if (fltr->flags) {
5505 		clear_bit(fltr->sw_id, bp->ntp_fltr_bmap);
5506 		bp->ntp_fltr_count--;
5507 	}
5508 	kfree(fltr);
5509 }
5510 
bnxt_free_ntp_fltrs(struct bnxt * bp,bool all)5511 static void bnxt_free_ntp_fltrs(struct bnxt *bp, bool all)
5512 {
5513 	int i;
5514 
5515 	netdev_assert_locked_or_invisible(bp->dev);
5516 
5517 	/* Under netdev instance lock and all our NAPIs have been disabled.
5518 	 * It's safe to delete the hash table.
5519 	 */
5520 	for (i = 0; i < BNXT_NTP_FLTR_HASH_SIZE; i++) {
5521 		struct hlist_head *head;
5522 		struct hlist_node *tmp;
5523 		struct bnxt_ntuple_filter *fltr;
5524 
5525 		head = &bp->ntp_fltr_hash_tbl[i];
5526 		hlist_for_each_entry_safe(fltr, tmp, head, base.hash) {
5527 			bnxt_del_l2_filter(bp, fltr->l2_fltr);
5528 			if (!all && ((fltr->base.flags & BNXT_ACT_FUNC_DST) ||
5529 				     !list_empty(&fltr->base.list)))
5530 				continue;
5531 			bnxt_del_fltr(bp, &fltr->base);
5532 		}
5533 	}
5534 	if (!all)
5535 		return;
5536 
5537 	bitmap_free(bp->ntp_fltr_bmap);
5538 	bp->ntp_fltr_bmap = NULL;
5539 	bp->ntp_fltr_count = 0;
5540 }
5541 
bnxt_alloc_ntp_fltrs(struct bnxt * bp)5542 static int bnxt_alloc_ntp_fltrs(struct bnxt *bp)
5543 {
5544 	int i, rc = 0;
5545 
5546 	if (!(bp->flags & BNXT_FLAG_RFS) || bp->ntp_fltr_bmap)
5547 		return 0;
5548 
5549 	for (i = 0; i < BNXT_NTP_FLTR_HASH_SIZE; i++)
5550 		INIT_HLIST_HEAD(&bp->ntp_fltr_hash_tbl[i]);
5551 
5552 	bp->ntp_fltr_count = 0;
5553 	bp->ntp_fltr_bmap = bitmap_zalloc(bp->max_fltr, GFP_KERNEL);
5554 
5555 	if (!bp->ntp_fltr_bmap)
5556 		rc = -ENOMEM;
5557 
5558 	return rc;
5559 }
5560 
bnxt_free_l2_filters(struct bnxt * bp,bool all)5561 static void bnxt_free_l2_filters(struct bnxt *bp, bool all)
5562 {
5563 	int i;
5564 
5565 	for (i = 0; i < BNXT_L2_FLTR_HASH_SIZE; i++) {
5566 		struct hlist_head *head;
5567 		struct hlist_node *tmp;
5568 		struct bnxt_l2_filter *fltr;
5569 
5570 		head = &bp->l2_fltr_hash_tbl[i];
5571 		hlist_for_each_entry_safe(fltr, tmp, head, base.hash) {
5572 			if (!all && ((fltr->base.flags & BNXT_ACT_FUNC_DST) ||
5573 				     !list_empty(&fltr->base.list)))
5574 				continue;
5575 			bnxt_del_fltr(bp, &fltr->base);
5576 		}
5577 	}
5578 }
5579 
bnxt_init_l2_fltr_tbl(struct bnxt * bp)5580 static void bnxt_init_l2_fltr_tbl(struct bnxt *bp)
5581 {
5582 	int i;
5583 
5584 	for (i = 0; i < BNXT_L2_FLTR_HASH_SIZE; i++)
5585 		INIT_HLIST_HEAD(&bp->l2_fltr_hash_tbl[i]);
5586 	get_random_bytes(&bp->hash_seed, sizeof(bp->hash_seed));
5587 }
5588 
bnxt_free_mem(struct bnxt * bp,bool irq_re_init)5589 static void bnxt_free_mem(struct bnxt *bp, bool irq_re_init)
5590 {
5591 	bnxt_free_vnic_attributes(bp);
5592 	bnxt_free_tx_rings(bp);
5593 	bnxt_free_rx_rings(bp);
5594 	bnxt_free_cp_rings(bp);
5595 	bnxt_free_all_cp_arrays(bp);
5596 	bnxt_free_ntp_fltrs(bp, false);
5597 	bnxt_free_l2_filters(bp, false);
5598 	if (irq_re_init) {
5599 		bnxt_free_ring_stats(bp);
5600 		if (!(bp->phy_flags & BNXT_PHY_FL_PORT_STATS_NO_RESET) ||
5601 		    test_bit(BNXT_STATE_IN_FW_RESET, &bp->state))
5602 			bnxt_free_port_stats(bp);
5603 		bnxt_free_ring_grps(bp);
5604 		bnxt_free_vnics(bp);
5605 		kfree(bp->tx_ring_map);
5606 		bp->tx_ring_map = NULL;
5607 		kfree(bp->tx_ring);
5608 		bp->tx_ring = NULL;
5609 		kfree(bp->rx_ring);
5610 		bp->rx_ring = NULL;
5611 		kfree(bp->bnapi);
5612 		bp->bnapi = NULL;
5613 	} else {
5614 		bnxt_clear_ring_indices(bp);
5615 	}
5616 }
5617 
bnxt_alloc_mem(struct bnxt * bp,bool irq_re_init)5618 static int bnxt_alloc_mem(struct bnxt *bp, bool irq_re_init)
5619 {
5620 	int i, j, rc, size, arr_size;
5621 	void *bnapi;
5622 
5623 	if (irq_re_init) {
5624 		/* Allocate bnapi mem pointer array and mem block for
5625 		 * all queues
5626 		 */
5627 		arr_size = L1_CACHE_ALIGN(sizeof(struct bnxt_napi *) *
5628 				bp->cp_nr_rings);
5629 		size = L1_CACHE_ALIGN(sizeof(struct bnxt_napi));
5630 		bnapi = kzalloc(arr_size + size * bp->cp_nr_rings, GFP_KERNEL);
5631 		if (!bnapi)
5632 			return -ENOMEM;
5633 
5634 		bp->bnapi = bnapi;
5635 		bnapi += arr_size;
5636 		for (i = 0; i < bp->cp_nr_rings; i++, bnapi += size) {
5637 			bp->bnapi[i] = bnapi;
5638 			bp->bnapi[i]->index = i;
5639 			bp->bnapi[i]->bp = bp;
5640 			if (bp->flags & BNXT_FLAG_CHIP_P5_PLUS) {
5641 				struct bnxt_cp_ring_info *cpr =
5642 					&bp->bnapi[i]->cp_ring;
5643 
5644 				cpr->cp_ring_struct.ring_mem.flags =
5645 					BNXT_RMEM_RING_PTE_FLAG;
5646 			}
5647 		}
5648 
5649 		bp->rx_ring = kzalloc_objs(struct bnxt_rx_ring_info,
5650 					   bp->rx_nr_rings);
5651 		if (!bp->rx_ring)
5652 			return -ENOMEM;
5653 
5654 		for (i = 0; i < bp->rx_nr_rings; i++) {
5655 			struct bnxt_rx_ring_info *rxr = &bp->rx_ring[i];
5656 
5657 			if (bp->flags & BNXT_FLAG_CHIP_P5_PLUS) {
5658 				rxr->rx_ring_struct.ring_mem.flags =
5659 					BNXT_RMEM_RING_PTE_FLAG;
5660 				rxr->rx_agg_ring_struct.ring_mem.flags =
5661 					BNXT_RMEM_RING_PTE_FLAG;
5662 			} else {
5663 				rxr->rx_cpr =  &bp->bnapi[i]->cp_ring;
5664 			}
5665 			rxr->bnapi = bp->bnapi[i];
5666 			bp->bnapi[i]->rx_ring = &bp->rx_ring[i];
5667 		}
5668 
5669 		bp->tx_ring = kzalloc_objs(struct bnxt_tx_ring_info,
5670 					   bp->tx_nr_rings);
5671 		if (!bp->tx_ring)
5672 			return -ENOMEM;
5673 
5674 		bp->tx_ring_map = kcalloc(bp->tx_nr_rings, sizeof(u16),
5675 					  GFP_KERNEL);
5676 
5677 		if (!bp->tx_ring_map)
5678 			return -ENOMEM;
5679 
5680 		if (bp->flags & BNXT_FLAG_SHARED_RINGS)
5681 			j = 0;
5682 		else
5683 			j = bp->rx_nr_rings;
5684 
5685 		for (i = 0; i < bp->tx_nr_rings; i++) {
5686 			struct bnxt_tx_ring_info *txr = &bp->tx_ring[i];
5687 			struct bnxt_napi *bnapi2;
5688 
5689 			if (bp->flags & BNXT_FLAG_CHIP_P5_PLUS)
5690 				txr->tx_ring_struct.ring_mem.flags =
5691 					BNXT_RMEM_RING_PTE_FLAG;
5692 			bp->tx_ring_map[i] = bp->tx_nr_rings_xdp + i;
5693 			if (i >= bp->tx_nr_rings_xdp) {
5694 				int k = j + BNXT_RING_TO_TC_OFF(bp, i);
5695 
5696 				bnapi2 = bp->bnapi[k];
5697 				txr->txq_index = i - bp->tx_nr_rings_xdp;
5698 				txr->tx_napi_idx =
5699 					BNXT_RING_TO_TC(bp, txr->txq_index);
5700 				bnapi2->tx_ring[txr->tx_napi_idx] = txr;
5701 				bnapi2->tx_int = bnxt_tx_int;
5702 			} else {
5703 				bnapi2 = bp->bnapi[j];
5704 				bnapi2->flags |= BNXT_NAPI_FLAG_XDP;
5705 				bnapi2->tx_ring[0] = txr;
5706 				bnapi2->tx_int = bnxt_tx_int_xdp;
5707 				j++;
5708 			}
5709 			txr->bnapi = bnapi2;
5710 			if (!(bp->flags & BNXT_FLAG_CHIP_P5_PLUS))
5711 				txr->tx_cpr = &bnapi2->cp_ring;
5712 		}
5713 
5714 		rc = bnxt_alloc_stats(bp);
5715 		if (rc)
5716 			goto alloc_mem_err;
5717 		bnxt_init_stats(bp);
5718 
5719 		rc = bnxt_alloc_ntp_fltrs(bp);
5720 		if (rc)
5721 			goto alloc_mem_err;
5722 
5723 		rc = bnxt_alloc_vnics(bp);
5724 		if (rc)
5725 			goto alloc_mem_err;
5726 	}
5727 
5728 	rc = bnxt_alloc_all_cp_arrays(bp);
5729 	if (rc)
5730 		goto alloc_mem_err;
5731 
5732 	bnxt_init_ring_struct(bp);
5733 
5734 	rc = bnxt_alloc_rx_rings(bp);
5735 	if (rc)
5736 		goto alloc_mem_err;
5737 
5738 	rc = bnxt_alloc_tx_rings(bp);
5739 	if (rc)
5740 		goto alloc_mem_err;
5741 
5742 	rc = bnxt_alloc_cp_rings(bp);
5743 	if (rc)
5744 		goto alloc_mem_err;
5745 
5746 	bp->vnic_info[BNXT_VNIC_DEFAULT].flags |= BNXT_VNIC_RSS_FLAG |
5747 						  BNXT_VNIC_MCAST_FLAG |
5748 						  BNXT_VNIC_UCAST_FLAG;
5749 	if (BNXT_SUPPORTS_NTUPLE_VNIC(bp) && (bp->flags & BNXT_FLAG_RFS))
5750 		bp->vnic_info[BNXT_VNIC_NTUPLE].flags |=
5751 			BNXT_VNIC_RSS_FLAG | BNXT_VNIC_NTUPLE_FLAG;
5752 
5753 	rc = bnxt_alloc_vnic_attributes(bp);
5754 	if (rc)
5755 		goto alloc_mem_err;
5756 	return 0;
5757 
5758 alloc_mem_err:
5759 	bnxt_free_mem(bp, true);
5760 	return rc;
5761 }
5762 
bnxt_disable_int(struct bnxt * bp)5763 static void bnxt_disable_int(struct bnxt *bp)
5764 {
5765 	int i;
5766 
5767 	if (!bp->bnapi)
5768 		return;
5769 
5770 	for (i = 0; i < bp->cp_nr_rings; i++) {
5771 		struct bnxt_napi *bnapi = bp->bnapi[i];
5772 		struct bnxt_cp_ring_info *cpr = &bnapi->cp_ring;
5773 		struct bnxt_ring_struct *ring = &cpr->cp_ring_struct;
5774 
5775 		if (ring->fw_ring_id != INVALID_HW_RING_ID)
5776 			bnxt_db_nq(bp, &cpr->cp_db, cpr->cp_raw_cons);
5777 	}
5778 }
5779 
bnxt_cp_num_to_irq_num(struct bnxt * bp,int n)5780 static int bnxt_cp_num_to_irq_num(struct bnxt *bp, int n)
5781 {
5782 	struct bnxt_napi *bnapi = bp->bnapi[n];
5783 	struct bnxt_cp_ring_info *cpr;
5784 
5785 	cpr = &bnapi->cp_ring;
5786 	return cpr->cp_ring_struct.map_idx;
5787 }
5788 
bnxt_disable_int_sync(struct bnxt * bp)5789 static void bnxt_disable_int_sync(struct bnxt *bp)
5790 {
5791 	int i;
5792 
5793 	if (!bp->irq_tbl || !bp->bnapi)
5794 		return;
5795 
5796 	atomic_inc(&bp->intr_sem);
5797 
5798 	bnxt_disable_int(bp);
5799 	for (i = 0; i < bp->cp_nr_rings; i++) {
5800 		int map_idx = bnxt_cp_num_to_irq_num(bp, i);
5801 
5802 		synchronize_irq(bp->irq_tbl[map_idx].vector);
5803 	}
5804 }
5805 
bnxt_enable_int(struct bnxt * bp)5806 static void bnxt_enable_int(struct bnxt *bp)
5807 {
5808 	int i;
5809 
5810 	atomic_set(&bp->intr_sem, 0);
5811 	for (i = 0; i < bp->cp_nr_rings; i++) {
5812 		struct bnxt_napi *bnapi = bp->bnapi[i];
5813 		struct bnxt_cp_ring_info *cpr = &bnapi->cp_ring;
5814 
5815 		bnxt_db_nq_arm(bp, &cpr->cp_db, cpr->cp_raw_cons);
5816 	}
5817 }
5818 
bnxt_hwrm_func_drv_rgtr(struct bnxt * bp,unsigned long * bmap,int bmap_size,bool async_only)5819 int bnxt_hwrm_func_drv_rgtr(struct bnxt *bp, unsigned long *bmap, int bmap_size,
5820 			    bool async_only)
5821 {
5822 	DECLARE_BITMAP(async_events_bmap, 256);
5823 	u32 *events = (u32 *)async_events_bmap;
5824 	struct hwrm_func_drv_rgtr_output *resp;
5825 	struct hwrm_func_drv_rgtr_input *req;
5826 	u32 flags;
5827 	int rc, i;
5828 
5829 	rc = hwrm_req_init(bp, req, HWRM_FUNC_DRV_RGTR);
5830 	if (rc)
5831 		return rc;
5832 
5833 	req->enables = cpu_to_le32(FUNC_DRV_RGTR_REQ_ENABLES_OS_TYPE |
5834 				   FUNC_DRV_RGTR_REQ_ENABLES_VER |
5835 				   FUNC_DRV_RGTR_REQ_ENABLES_ASYNC_EVENT_FWD);
5836 
5837 	req->os_type = cpu_to_le16(FUNC_DRV_RGTR_REQ_OS_TYPE_LINUX);
5838 	flags = FUNC_DRV_RGTR_REQ_FLAGS_16BIT_VER_MODE;
5839 	if (bp->fw_cap & BNXT_FW_CAP_HOT_RESET)
5840 		flags |= FUNC_DRV_RGTR_REQ_FLAGS_HOT_RESET_SUPPORT;
5841 	if (bp->fw_cap & BNXT_FW_CAP_ERROR_RECOVERY)
5842 		flags |= FUNC_DRV_RGTR_REQ_FLAGS_ERROR_RECOVERY_SUPPORT |
5843 			 FUNC_DRV_RGTR_REQ_FLAGS_MASTER_SUPPORT;
5844 	if (bp->fw_cap & BNXT_FW_CAP_NPAR_1_2)
5845 		flags |= FUNC_DRV_RGTR_REQ_FLAGS_NPAR_1_2_SUPPORT;
5846 	req->flags = cpu_to_le32(flags);
5847 	req->ver_maj_8b = DRV_VER_MAJ;
5848 	req->ver_min_8b = DRV_VER_MIN;
5849 	req->ver_upd_8b = DRV_VER_UPD;
5850 	req->ver_maj = cpu_to_le16(DRV_VER_MAJ);
5851 	req->ver_min = cpu_to_le16(DRV_VER_MIN);
5852 	req->ver_upd = cpu_to_le16(DRV_VER_UPD);
5853 
5854 	if (BNXT_PF(bp)) {
5855 		u32 data[8];
5856 		int i;
5857 
5858 		memset(data, 0, sizeof(data));
5859 		for (i = 0; i < ARRAY_SIZE(bnxt_vf_req_snif); i++) {
5860 			u16 cmd = bnxt_vf_req_snif[i];
5861 			unsigned int bit, idx;
5862 
5863 			if ((bp->fw_cap & BNXT_FW_CAP_LINK_ADMIN) &&
5864 			    cmd == HWRM_PORT_PHY_QCFG)
5865 				continue;
5866 
5867 			idx = cmd / 32;
5868 			bit = cmd % 32;
5869 			data[idx] |= 1 << bit;
5870 		}
5871 
5872 		for (i = 0; i < 8; i++)
5873 			req->vf_req_fwd[i] = cpu_to_le32(data[i]);
5874 
5875 		req->enables |=
5876 			cpu_to_le32(FUNC_DRV_RGTR_REQ_ENABLES_VF_REQ_FWD);
5877 	}
5878 
5879 	if (bp->fw_cap & BNXT_FW_CAP_OVS_64BIT_HANDLE)
5880 		req->flags |= cpu_to_le32(
5881 			FUNC_DRV_RGTR_REQ_FLAGS_FLOW_HANDLE_64BIT_MODE);
5882 
5883 	memset(async_events_bmap, 0, sizeof(async_events_bmap));
5884 	for (i = 0; i < ARRAY_SIZE(bnxt_async_events_arr); i++) {
5885 		u16 event_id = bnxt_async_events_arr[i];
5886 
5887 		if (event_id == ASYNC_EVENT_CMPL_EVENT_ID_ERROR_RECOVERY &&
5888 		    !(bp->fw_cap & BNXT_FW_CAP_ERROR_RECOVERY))
5889 			continue;
5890 		if (event_id == ASYNC_EVENT_CMPL_EVENT_ID_PHC_UPDATE &&
5891 		    !bp->ptp_cfg)
5892 			continue;
5893 		__set_bit(bnxt_async_events_arr[i], async_events_bmap);
5894 	}
5895 	if (bmap && bmap_size) {
5896 		for (i = 0; i < bmap_size; i++) {
5897 			if (test_bit(i, bmap))
5898 				__set_bit(i, async_events_bmap);
5899 		}
5900 	}
5901 	for (i = 0; i < 8; i++)
5902 		req->async_event_fwd[i] |= cpu_to_le32(events[i]);
5903 
5904 	if (async_only)
5905 		req->enables =
5906 			cpu_to_le32(FUNC_DRV_RGTR_REQ_ENABLES_ASYNC_EVENT_FWD);
5907 
5908 	resp = hwrm_req_hold(bp, req);
5909 	rc = hwrm_req_send(bp, req);
5910 	if (!rc) {
5911 		set_bit(BNXT_STATE_DRV_REGISTERED, &bp->state);
5912 		if (resp->flags &
5913 		    cpu_to_le32(FUNC_DRV_RGTR_RESP_FLAGS_IF_CHANGE_SUPPORTED))
5914 			bp->fw_cap |= BNXT_FW_CAP_IF_CHANGE;
5915 	}
5916 	hwrm_req_drop(bp, req);
5917 	return rc;
5918 }
5919 
bnxt_hwrm_func_drv_unrgtr(struct bnxt * bp)5920 int bnxt_hwrm_func_drv_unrgtr(struct bnxt *bp)
5921 {
5922 	struct hwrm_func_drv_unrgtr_input *req;
5923 	int rc;
5924 
5925 	if (!test_and_clear_bit(BNXT_STATE_DRV_REGISTERED, &bp->state))
5926 		return 0;
5927 
5928 	rc = hwrm_req_init(bp, req, HWRM_FUNC_DRV_UNRGTR);
5929 	if (rc)
5930 		return rc;
5931 	return hwrm_req_send(bp, req);
5932 }
5933 
5934 static int bnxt_set_tpa(struct bnxt *bp, bool set_tpa);
5935 
bnxt_hwrm_tunnel_dst_port_free(struct bnxt * bp,u8 tunnel_type)5936 static int bnxt_hwrm_tunnel_dst_port_free(struct bnxt *bp, u8 tunnel_type)
5937 {
5938 	struct hwrm_tunnel_dst_port_free_input *req;
5939 	int rc;
5940 
5941 	if (tunnel_type == TUNNEL_DST_PORT_FREE_REQ_TUNNEL_TYPE_VXLAN &&
5942 	    bp->vxlan_fw_dst_port_id == INVALID_HW_RING_ID)
5943 		return 0;
5944 	if (tunnel_type == TUNNEL_DST_PORT_FREE_REQ_TUNNEL_TYPE_GENEVE &&
5945 	    bp->nge_fw_dst_port_id == INVALID_HW_RING_ID)
5946 		return 0;
5947 
5948 	rc = hwrm_req_init(bp, req, HWRM_TUNNEL_DST_PORT_FREE);
5949 	if (rc)
5950 		return rc;
5951 
5952 	req->tunnel_type = tunnel_type;
5953 
5954 	switch (tunnel_type) {
5955 	case TUNNEL_DST_PORT_FREE_REQ_TUNNEL_TYPE_VXLAN:
5956 		req->tunnel_dst_port_id = cpu_to_le16(bp->vxlan_fw_dst_port_id);
5957 		bp->vxlan_port = 0;
5958 		bp->vxlan_fw_dst_port_id = INVALID_HW_RING_ID;
5959 		break;
5960 	case TUNNEL_DST_PORT_FREE_REQ_TUNNEL_TYPE_GENEVE:
5961 		req->tunnel_dst_port_id = cpu_to_le16(bp->nge_fw_dst_port_id);
5962 		bp->nge_port = 0;
5963 		bp->nge_fw_dst_port_id = INVALID_HW_RING_ID;
5964 		break;
5965 	case TUNNEL_DST_PORT_FREE_REQ_TUNNEL_TYPE_VXLAN_GPE:
5966 		req->tunnel_dst_port_id = cpu_to_le16(bp->vxlan_gpe_fw_dst_port_id);
5967 		bp->vxlan_gpe_port = 0;
5968 		bp->vxlan_gpe_fw_dst_port_id = INVALID_HW_RING_ID;
5969 		break;
5970 	default:
5971 		break;
5972 	}
5973 
5974 	rc = hwrm_req_send(bp, req);
5975 	if (rc)
5976 		netdev_err(bp->dev, "hwrm_tunnel_dst_port_free failed. rc:%d\n",
5977 			   rc);
5978 	if (bp->flags & BNXT_FLAG_TPA)
5979 		bnxt_set_tpa(bp, true);
5980 	return rc;
5981 }
5982 
bnxt_hwrm_tunnel_dst_port_alloc(struct bnxt * bp,__be16 port,u8 tunnel_type)5983 static int bnxt_hwrm_tunnel_dst_port_alloc(struct bnxt *bp, __be16 port,
5984 					   u8 tunnel_type)
5985 {
5986 	struct hwrm_tunnel_dst_port_alloc_output *resp;
5987 	struct hwrm_tunnel_dst_port_alloc_input *req;
5988 	int rc;
5989 
5990 	rc = hwrm_req_init(bp, req, HWRM_TUNNEL_DST_PORT_ALLOC);
5991 	if (rc)
5992 		return rc;
5993 
5994 	req->tunnel_type = tunnel_type;
5995 	req->tunnel_dst_port_val = port;
5996 
5997 	resp = hwrm_req_hold(bp, req);
5998 	rc = hwrm_req_send(bp, req);
5999 	if (rc) {
6000 		netdev_err(bp->dev, "hwrm_tunnel_dst_port_alloc failed. rc:%d\n",
6001 			   rc);
6002 		goto err_out;
6003 	}
6004 
6005 	switch (tunnel_type) {
6006 	case TUNNEL_DST_PORT_ALLOC_REQ_TUNNEL_TYPE_VXLAN:
6007 		bp->vxlan_port = port;
6008 		bp->vxlan_fw_dst_port_id =
6009 			le16_to_cpu(resp->tunnel_dst_port_id);
6010 		break;
6011 	case TUNNEL_DST_PORT_ALLOC_REQ_TUNNEL_TYPE_GENEVE:
6012 		bp->nge_port = port;
6013 		bp->nge_fw_dst_port_id = le16_to_cpu(resp->tunnel_dst_port_id);
6014 		break;
6015 	case TUNNEL_DST_PORT_ALLOC_REQ_TUNNEL_TYPE_VXLAN_GPE:
6016 		bp->vxlan_gpe_port = port;
6017 		bp->vxlan_gpe_fw_dst_port_id =
6018 			le16_to_cpu(resp->tunnel_dst_port_id);
6019 		break;
6020 	default:
6021 		break;
6022 	}
6023 	if (bp->flags & BNXT_FLAG_TPA)
6024 		bnxt_set_tpa(bp, true);
6025 
6026 err_out:
6027 	hwrm_req_drop(bp, req);
6028 	return rc;
6029 }
6030 
bnxt_hwrm_cfa_l2_set_rx_mask(struct bnxt * bp,u16 vnic_id)6031 static int bnxt_hwrm_cfa_l2_set_rx_mask(struct bnxt *bp, u16 vnic_id)
6032 {
6033 	struct hwrm_cfa_l2_set_rx_mask_input *req;
6034 	struct bnxt_vnic_info *vnic = &bp->vnic_info[vnic_id];
6035 	int rc;
6036 
6037 	rc = hwrm_req_init(bp, req, HWRM_CFA_L2_SET_RX_MASK);
6038 	if (rc)
6039 		return rc;
6040 
6041 	req->vnic_id = cpu_to_le32(vnic->fw_vnic_id);
6042 	if (vnic->rx_mask & CFA_L2_SET_RX_MASK_REQ_MASK_MCAST) {
6043 		req->num_mc_entries = cpu_to_le32(vnic->mc_list_count);
6044 		req->mc_tbl_addr = cpu_to_le64(vnic->mc_list_mapping);
6045 	}
6046 	req->mask = cpu_to_le32(vnic->rx_mask);
6047 	return hwrm_req_send_silent(bp, req);
6048 }
6049 
bnxt_del_l2_filter(struct bnxt * bp,struct bnxt_l2_filter * fltr)6050 void bnxt_del_l2_filter(struct bnxt *bp, struct bnxt_l2_filter *fltr)
6051 {
6052 	if (!atomic_dec_and_test(&fltr->refcnt))
6053 		return;
6054 	spin_lock_bh(&bp->ntp_fltr_lock);
6055 	if (!test_and_clear_bit(BNXT_FLTR_INSERTED, &fltr->base.state)) {
6056 		spin_unlock_bh(&bp->ntp_fltr_lock);
6057 		return;
6058 	}
6059 	hlist_del_rcu(&fltr->base.hash);
6060 	bnxt_del_one_usr_fltr(bp, &fltr->base);
6061 	if (fltr->base.flags) {
6062 		clear_bit(fltr->base.sw_id, bp->ntp_fltr_bmap);
6063 		bp->ntp_fltr_count--;
6064 	}
6065 	spin_unlock_bh(&bp->ntp_fltr_lock);
6066 	kfree_rcu(fltr, base.rcu);
6067 }
6068 
__bnxt_lookup_l2_filter(struct bnxt * bp,struct bnxt_l2_key * key,u32 idx)6069 static struct bnxt_l2_filter *__bnxt_lookup_l2_filter(struct bnxt *bp,
6070 						      struct bnxt_l2_key *key,
6071 						      u32 idx)
6072 {
6073 	struct hlist_head *head = &bp->l2_fltr_hash_tbl[idx];
6074 	struct bnxt_l2_filter *fltr;
6075 
6076 	hlist_for_each_entry_rcu(fltr, head, base.hash) {
6077 		struct bnxt_l2_key *l2_key = &fltr->l2_key;
6078 
6079 		if (ether_addr_equal(l2_key->dst_mac_addr, key->dst_mac_addr) &&
6080 		    l2_key->vlan == key->vlan)
6081 			return fltr;
6082 	}
6083 	return NULL;
6084 }
6085 
bnxt_lookup_l2_filter(struct bnxt * bp,struct bnxt_l2_key * key,u32 idx)6086 static struct bnxt_l2_filter *bnxt_lookup_l2_filter(struct bnxt *bp,
6087 						    struct bnxt_l2_key *key,
6088 						    u32 idx)
6089 {
6090 	struct bnxt_l2_filter *fltr = NULL;
6091 
6092 	rcu_read_lock();
6093 	fltr = __bnxt_lookup_l2_filter(bp, key, idx);
6094 	if (fltr)
6095 		atomic_inc(&fltr->refcnt);
6096 	rcu_read_unlock();
6097 	return fltr;
6098 }
6099 
6100 #define BNXT_IPV4_4TUPLE(bp, fkeys)					\
6101 	(((fkeys)->basic.ip_proto == IPPROTO_TCP &&			\
6102 	  (bp)->rss_hash_cfg & VNIC_RSS_CFG_REQ_HASH_TYPE_TCP_IPV4) ||	\
6103 	 ((fkeys)->basic.ip_proto == IPPROTO_UDP &&			\
6104 	  (bp)->rss_hash_cfg & VNIC_RSS_CFG_REQ_HASH_TYPE_UDP_IPV4))
6105 
6106 #define BNXT_IPV6_4TUPLE(bp, fkeys)					\
6107 	(((fkeys)->basic.ip_proto == IPPROTO_TCP &&			\
6108 	  (bp)->rss_hash_cfg & VNIC_RSS_CFG_REQ_HASH_TYPE_TCP_IPV6) ||	\
6109 	 ((fkeys)->basic.ip_proto == IPPROTO_UDP &&			\
6110 	  (bp)->rss_hash_cfg & VNIC_RSS_CFG_REQ_HASH_TYPE_UDP_IPV6))
6111 
bnxt_get_rss_flow_tuple_len(struct bnxt * bp,struct flow_keys * fkeys)6112 static u32 bnxt_get_rss_flow_tuple_len(struct bnxt *bp, struct flow_keys *fkeys)
6113 {
6114 	if (fkeys->basic.n_proto == htons(ETH_P_IP)) {
6115 		if (BNXT_IPV4_4TUPLE(bp, fkeys))
6116 			return sizeof(fkeys->addrs.v4addrs) +
6117 			       sizeof(fkeys->ports);
6118 
6119 		if (bp->rss_hash_cfg & VNIC_RSS_CFG_REQ_HASH_TYPE_IPV4)
6120 			return sizeof(fkeys->addrs.v4addrs);
6121 	}
6122 
6123 	if (fkeys->basic.n_proto == htons(ETH_P_IPV6)) {
6124 		if (BNXT_IPV6_4TUPLE(bp, fkeys))
6125 			return sizeof(fkeys->addrs.v6addrs) +
6126 			       sizeof(fkeys->ports);
6127 
6128 		if (bp->rss_hash_cfg & VNIC_RSS_CFG_REQ_HASH_TYPE_IPV6)
6129 			return sizeof(fkeys->addrs.v6addrs);
6130 	}
6131 
6132 	return 0;
6133 }
6134 
bnxt_toeplitz(struct bnxt * bp,struct flow_keys * fkeys,const unsigned char * key)6135 static u32 bnxt_toeplitz(struct bnxt *bp, struct flow_keys *fkeys,
6136 			 const unsigned char *key)
6137 {
6138 	u64 prefix = bp->toeplitz_prefix, hash = 0;
6139 	struct bnxt_ipv4_tuple tuple4;
6140 	struct bnxt_ipv6_tuple tuple6;
6141 	int i, j, len = 0;
6142 	u8 *four_tuple;
6143 
6144 	len = bnxt_get_rss_flow_tuple_len(bp, fkeys);
6145 	if (!len)
6146 		return 0;
6147 
6148 	if (fkeys->basic.n_proto == htons(ETH_P_IP)) {
6149 		tuple4.v4addrs = fkeys->addrs.v4addrs;
6150 		tuple4.ports = fkeys->ports;
6151 		four_tuple = (unsigned char *)&tuple4;
6152 	} else {
6153 		tuple6.v6addrs = fkeys->addrs.v6addrs;
6154 		tuple6.ports = fkeys->ports;
6155 		four_tuple = (unsigned char *)&tuple6;
6156 	}
6157 
6158 	for (i = 0, j = 8; i < len; i++, j++) {
6159 		u8 byte = four_tuple[i];
6160 		int bit;
6161 
6162 		for (bit = 0; bit < 8; bit++, prefix <<= 1, byte <<= 1) {
6163 			if (byte & 0x80)
6164 				hash ^= prefix;
6165 		}
6166 		prefix |= (j < HW_HASH_KEY_SIZE) ? key[j] : 0;
6167 	}
6168 
6169 	/* The valid part of the hash is in the upper 32 bits. */
6170 	return (hash >> 32) & BNXT_NTP_FLTR_HASH_MASK;
6171 }
6172 
6173 #ifdef CONFIG_RFS_ACCEL
6174 static struct bnxt_l2_filter *
bnxt_lookup_l2_filter_from_key(struct bnxt * bp,struct bnxt_l2_key * key)6175 bnxt_lookup_l2_filter_from_key(struct bnxt *bp, struct bnxt_l2_key *key)
6176 {
6177 	struct bnxt_l2_filter *fltr;
6178 	u32 idx;
6179 
6180 	idx = jhash2(&key->filter_key, BNXT_L2_KEY_SIZE, bp->hash_seed) &
6181 	      BNXT_L2_FLTR_HASH_MASK;
6182 	fltr = bnxt_lookup_l2_filter(bp, key, idx);
6183 	return fltr;
6184 }
6185 #endif
6186 
bnxt_init_l2_filter(struct bnxt * bp,struct bnxt_l2_filter * fltr,struct bnxt_l2_key * key,u32 idx)6187 static int bnxt_init_l2_filter(struct bnxt *bp, struct bnxt_l2_filter *fltr,
6188 			       struct bnxt_l2_key *key, u32 idx)
6189 {
6190 	struct hlist_head *head;
6191 
6192 	ether_addr_copy(fltr->l2_key.dst_mac_addr, key->dst_mac_addr);
6193 	fltr->l2_key.vlan = key->vlan;
6194 	fltr->base.type = BNXT_FLTR_TYPE_L2;
6195 	if (fltr->base.flags) {
6196 		int bit_id;
6197 
6198 		bit_id = bitmap_find_free_region(bp->ntp_fltr_bmap,
6199 						 bp->max_fltr, 0);
6200 		if (bit_id < 0)
6201 			return -ENOMEM;
6202 		fltr->base.sw_id = (u16)bit_id;
6203 		bp->ntp_fltr_count++;
6204 	}
6205 	head = &bp->l2_fltr_hash_tbl[idx];
6206 	hlist_add_head_rcu(&fltr->base.hash, head);
6207 	bnxt_insert_usr_fltr(bp, &fltr->base);
6208 	set_bit(BNXT_FLTR_INSERTED, &fltr->base.state);
6209 	atomic_set(&fltr->refcnt, 1);
6210 	return 0;
6211 }
6212 
bnxt_alloc_l2_filter(struct bnxt * bp,struct bnxt_l2_key * key,gfp_t gfp)6213 static struct bnxt_l2_filter *bnxt_alloc_l2_filter(struct bnxt *bp,
6214 						   struct bnxt_l2_key *key,
6215 						   gfp_t gfp)
6216 {
6217 	struct bnxt_l2_filter *fltr;
6218 	u32 idx;
6219 	int rc;
6220 
6221 	idx = jhash2(&key->filter_key, BNXT_L2_KEY_SIZE, bp->hash_seed) &
6222 	      BNXT_L2_FLTR_HASH_MASK;
6223 	fltr = bnxt_lookup_l2_filter(bp, key, idx);
6224 	if (fltr)
6225 		return fltr;
6226 
6227 	fltr = kzalloc_obj(*fltr, gfp);
6228 	if (!fltr)
6229 		return ERR_PTR(-ENOMEM);
6230 	spin_lock_bh(&bp->ntp_fltr_lock);
6231 	rc = bnxt_init_l2_filter(bp, fltr, key, idx);
6232 	spin_unlock_bh(&bp->ntp_fltr_lock);
6233 	if (rc) {
6234 		bnxt_del_l2_filter(bp, fltr);
6235 		fltr = ERR_PTR(rc);
6236 	}
6237 	return fltr;
6238 }
6239 
bnxt_alloc_new_l2_filter(struct bnxt * bp,struct bnxt_l2_key * key,u16 flags)6240 struct bnxt_l2_filter *bnxt_alloc_new_l2_filter(struct bnxt *bp,
6241 						struct bnxt_l2_key *key,
6242 						u16 flags)
6243 {
6244 	struct bnxt_l2_filter *fltr;
6245 	u32 idx;
6246 	int rc;
6247 
6248 	idx = jhash2(&key->filter_key, BNXT_L2_KEY_SIZE, bp->hash_seed) &
6249 	      BNXT_L2_FLTR_HASH_MASK;
6250 	spin_lock_bh(&bp->ntp_fltr_lock);
6251 	fltr = __bnxt_lookup_l2_filter(bp, key, idx);
6252 	if (fltr) {
6253 		fltr = ERR_PTR(-EEXIST);
6254 		goto l2_filter_exit;
6255 	}
6256 	fltr = kzalloc_obj(*fltr, GFP_ATOMIC);
6257 	if (!fltr) {
6258 		fltr = ERR_PTR(-ENOMEM);
6259 		goto l2_filter_exit;
6260 	}
6261 	fltr->base.flags = flags;
6262 	rc = bnxt_init_l2_filter(bp, fltr, key, idx);
6263 	if (rc) {
6264 		spin_unlock_bh(&bp->ntp_fltr_lock);
6265 		bnxt_del_l2_filter(bp, fltr);
6266 		return ERR_PTR(rc);
6267 	}
6268 
6269 l2_filter_exit:
6270 	spin_unlock_bh(&bp->ntp_fltr_lock);
6271 	return fltr;
6272 }
6273 
bnxt_vf_target_id(struct bnxt_pf_info * pf,u16 vf_idx)6274 static u16 bnxt_vf_target_id(struct bnxt_pf_info *pf, u16 vf_idx)
6275 {
6276 #ifdef CONFIG_BNXT_SRIOV
6277 	struct bnxt_vf_info *vf = &pf->vf[vf_idx];
6278 
6279 	return vf->fw_fid;
6280 #else
6281 	return INVALID_HW_RING_ID;
6282 #endif
6283 }
6284 
bnxt_hwrm_l2_filter_free(struct bnxt * bp,struct bnxt_l2_filter * fltr)6285 int bnxt_hwrm_l2_filter_free(struct bnxt *bp, struct bnxt_l2_filter *fltr)
6286 {
6287 	struct hwrm_cfa_l2_filter_free_input *req;
6288 	u16 target_id = 0xffff;
6289 	int rc;
6290 
6291 	if (fltr->base.flags & BNXT_ACT_FUNC_DST) {
6292 		struct bnxt_pf_info *pf = &bp->pf;
6293 
6294 		if (fltr->base.vf_idx >= pf->active_vfs)
6295 			return -EINVAL;
6296 
6297 		target_id = bnxt_vf_target_id(pf, fltr->base.vf_idx);
6298 		if (target_id == INVALID_HW_RING_ID)
6299 			return -EINVAL;
6300 	}
6301 
6302 	rc = hwrm_req_init(bp, req, HWRM_CFA_L2_FILTER_FREE);
6303 	if (rc)
6304 		return rc;
6305 
6306 	req->target_id = cpu_to_le16(target_id);
6307 	req->l2_filter_id = fltr->base.filter_id;
6308 	return hwrm_req_send(bp, req);
6309 }
6310 
bnxt_hwrm_l2_filter_alloc(struct bnxt * bp,struct bnxt_l2_filter * fltr)6311 int bnxt_hwrm_l2_filter_alloc(struct bnxt *bp, struct bnxt_l2_filter *fltr)
6312 {
6313 	struct hwrm_cfa_l2_filter_alloc_output *resp;
6314 	struct hwrm_cfa_l2_filter_alloc_input *req;
6315 	u16 target_id = 0xffff;
6316 	int rc;
6317 
6318 	if (fltr->base.flags & BNXT_ACT_FUNC_DST) {
6319 		struct bnxt_pf_info *pf = &bp->pf;
6320 
6321 		if (fltr->base.vf_idx >= pf->active_vfs)
6322 			return -EINVAL;
6323 
6324 		target_id = bnxt_vf_target_id(pf, fltr->base.vf_idx);
6325 	}
6326 	rc = hwrm_req_init(bp, req, HWRM_CFA_L2_FILTER_ALLOC);
6327 	if (rc)
6328 		return rc;
6329 
6330 	req->target_id = cpu_to_le16(target_id);
6331 	req->flags = cpu_to_le32(CFA_L2_FILTER_ALLOC_REQ_FLAGS_PATH_RX);
6332 
6333 	if (!BNXT_CHIP_TYPE_NITRO_A0(bp))
6334 		req->flags |=
6335 			cpu_to_le32(CFA_L2_FILTER_ALLOC_REQ_FLAGS_OUTERMOST);
6336 	req->dst_id = cpu_to_le16(fltr->base.fw_vnic_id);
6337 	req->enables =
6338 		cpu_to_le32(CFA_L2_FILTER_ALLOC_REQ_ENABLES_L2_ADDR |
6339 			    CFA_L2_FILTER_ALLOC_REQ_ENABLES_DST_ID |
6340 			    CFA_L2_FILTER_ALLOC_REQ_ENABLES_L2_ADDR_MASK);
6341 	ether_addr_copy(req->l2_addr, fltr->l2_key.dst_mac_addr);
6342 	eth_broadcast_addr(req->l2_addr_mask);
6343 
6344 	if (fltr->l2_key.vlan) {
6345 		req->enables |=
6346 			cpu_to_le32(CFA_L2_FILTER_ALLOC_REQ_ENABLES_L2_IVLAN |
6347 				CFA_L2_FILTER_ALLOC_REQ_ENABLES_L2_IVLAN_MASK |
6348 				CFA_L2_FILTER_ALLOC_REQ_ENABLES_NUM_VLANS);
6349 		req->num_vlans = 1;
6350 		req->l2_ivlan = cpu_to_le16(fltr->l2_key.vlan);
6351 		req->l2_ivlan_mask = cpu_to_le16(0xfff);
6352 	}
6353 
6354 	resp = hwrm_req_hold(bp, req);
6355 	rc = hwrm_req_send(bp, req);
6356 	if (!rc) {
6357 		fltr->base.filter_id = resp->l2_filter_id;
6358 		set_bit(BNXT_FLTR_VALID, &fltr->base.state);
6359 	}
6360 	hwrm_req_drop(bp, req);
6361 	return rc;
6362 }
6363 
bnxt_hwrm_cfa_ntuple_filter_free(struct bnxt * bp,struct bnxt_ntuple_filter * fltr)6364 int bnxt_hwrm_cfa_ntuple_filter_free(struct bnxt *bp,
6365 				     struct bnxt_ntuple_filter *fltr)
6366 {
6367 	struct hwrm_cfa_ntuple_filter_free_input *req;
6368 	int rc;
6369 
6370 	set_bit(BNXT_FLTR_FW_DELETED, &fltr->base.state);
6371 	if (!test_bit(BNXT_STATE_OPEN, &bp->state))
6372 		return 0;
6373 
6374 	rc = hwrm_req_init(bp, req, HWRM_CFA_NTUPLE_FILTER_FREE);
6375 	if (rc)
6376 		return rc;
6377 
6378 	req->ntuple_filter_id = fltr->base.filter_id;
6379 	return hwrm_req_send(bp, req);
6380 }
6381 
6382 #define BNXT_NTP_FLTR_FLAGS					\
6383 	(CFA_NTUPLE_FILTER_ALLOC_REQ_ENABLES_L2_FILTER_ID |	\
6384 	 CFA_NTUPLE_FILTER_ALLOC_REQ_ENABLES_ETHERTYPE |	\
6385 	 CFA_NTUPLE_FILTER_ALLOC_REQ_ENABLES_IPADDR_TYPE |	\
6386 	 CFA_NTUPLE_FILTER_ALLOC_REQ_ENABLES_SRC_IPADDR |	\
6387 	 CFA_NTUPLE_FILTER_ALLOC_REQ_ENABLES_SRC_IPADDR_MASK |	\
6388 	 CFA_NTUPLE_FILTER_ALLOC_REQ_ENABLES_DST_IPADDR |	\
6389 	 CFA_NTUPLE_FILTER_ALLOC_REQ_ENABLES_DST_IPADDR_MASK |	\
6390 	 CFA_NTUPLE_FILTER_ALLOC_REQ_ENABLES_IP_PROTOCOL |	\
6391 	 CFA_NTUPLE_FILTER_ALLOC_REQ_ENABLES_SRC_PORT |		\
6392 	 CFA_NTUPLE_FILTER_ALLOC_REQ_ENABLES_SRC_PORT_MASK |	\
6393 	 CFA_NTUPLE_FILTER_ALLOC_REQ_ENABLES_DST_PORT |		\
6394 	 CFA_NTUPLE_FILTER_ALLOC_REQ_ENABLES_DST_PORT_MASK |	\
6395 	 CFA_NTUPLE_FILTER_ALLOC_REQ_ENABLES_DST_ID)
6396 
6397 #define BNXT_NTP_TUNNEL_FLTR_FLAG				\
6398 		CFA_NTUPLE_FILTER_ALLOC_REQ_ENABLES_TUNNEL_TYPE
6399 
bnxt_fill_ipv6_mask(__be32 mask[4])6400 void bnxt_fill_ipv6_mask(__be32 mask[4])
6401 {
6402 	int i;
6403 
6404 	for (i = 0; i < 4; i++)
6405 		mask[i] = cpu_to_be32(~0);
6406 }
6407 
6408 static void
bnxt_cfg_rfs_ring_tbl_idx(struct bnxt * bp,struct hwrm_cfa_ntuple_filter_alloc_input * req,struct bnxt_ntuple_filter * fltr)6409 bnxt_cfg_rfs_ring_tbl_idx(struct bnxt *bp,
6410 			  struct hwrm_cfa_ntuple_filter_alloc_input *req,
6411 			  struct bnxt_ntuple_filter *fltr)
6412 {
6413 	u16 rxq = fltr->base.rxq;
6414 
6415 	if (fltr->base.flags & BNXT_ACT_RSS_CTX) {
6416 		struct ethtool_rxfh_context *ctx;
6417 		struct bnxt_rss_ctx *rss_ctx;
6418 		struct bnxt_vnic_info *vnic;
6419 
6420 		ctx = xa_load(&bp->dev->ethtool->rss_ctx,
6421 			      fltr->base.fw_vnic_id);
6422 		if (ctx) {
6423 			rss_ctx = ethtool_rxfh_context_priv(ctx);
6424 			vnic = &rss_ctx->vnic;
6425 
6426 			req->dst_id = cpu_to_le16(vnic->fw_vnic_id);
6427 		}
6428 		return;
6429 	}
6430 	if (BNXT_SUPPORTS_NTUPLE_VNIC(bp)) {
6431 		struct bnxt_vnic_info *vnic;
6432 		u32 enables;
6433 
6434 		vnic = &bp->vnic_info[BNXT_VNIC_NTUPLE];
6435 		req->dst_id = cpu_to_le16(vnic->fw_vnic_id);
6436 		enables = CFA_NTUPLE_FILTER_ALLOC_REQ_ENABLES_RFS_RING_TBL_IDX;
6437 		req->enables |= cpu_to_le32(enables);
6438 		req->rfs_ring_tbl_idx = cpu_to_le16(rxq);
6439 	} else {
6440 		u32 flags;
6441 
6442 		flags = CFA_NTUPLE_FILTER_ALLOC_REQ_FLAGS_DEST_RFS_RING_IDX;
6443 		req->flags |= cpu_to_le32(flags);
6444 		req->dst_id = cpu_to_le16(rxq);
6445 	}
6446 }
6447 
bnxt_hwrm_cfa_ntuple_filter_alloc(struct bnxt * bp,struct bnxt_ntuple_filter * fltr)6448 int bnxt_hwrm_cfa_ntuple_filter_alloc(struct bnxt *bp,
6449 				      struct bnxt_ntuple_filter *fltr)
6450 {
6451 	struct hwrm_cfa_ntuple_filter_alloc_output *resp;
6452 	struct hwrm_cfa_ntuple_filter_alloc_input *req;
6453 	struct bnxt_flow_masks *masks = &fltr->fmasks;
6454 	struct flow_keys *keys = &fltr->fkeys;
6455 	struct bnxt_l2_filter *l2_fltr;
6456 	struct bnxt_vnic_info *vnic;
6457 	int rc;
6458 
6459 	rc = hwrm_req_init(bp, req, HWRM_CFA_NTUPLE_FILTER_ALLOC);
6460 	if (rc)
6461 		return rc;
6462 
6463 	l2_fltr = fltr->l2_fltr;
6464 	req->l2_filter_id = l2_fltr->base.filter_id;
6465 
6466 	if (fltr->base.flags & BNXT_ACT_DROP) {
6467 		req->flags =
6468 			cpu_to_le32(CFA_NTUPLE_FILTER_ALLOC_REQ_FLAGS_DROP);
6469 	} else if (bp->fw_cap & BNXT_FW_CAP_CFA_RFS_RING_TBL_IDX_V2) {
6470 		bnxt_cfg_rfs_ring_tbl_idx(bp, req, fltr);
6471 	} else {
6472 		vnic = &bp->vnic_info[fltr->base.rxq + 1];
6473 		req->dst_id = cpu_to_le16(vnic->fw_vnic_id);
6474 	}
6475 	req->enables |= cpu_to_le32(BNXT_NTP_FLTR_FLAGS);
6476 
6477 	req->ethertype = htons(ETH_P_IP);
6478 	req->ip_addr_type = CFA_NTUPLE_FILTER_ALLOC_REQ_IP_ADDR_TYPE_IPV4;
6479 	req->ip_protocol = keys->basic.ip_proto;
6480 
6481 	if (keys->basic.n_proto == htons(ETH_P_IPV6)) {
6482 		req->ethertype = htons(ETH_P_IPV6);
6483 		req->ip_addr_type =
6484 			CFA_NTUPLE_FILTER_ALLOC_REQ_IP_ADDR_TYPE_IPV6;
6485 		*(struct in6_addr *)&req->src_ipaddr[0] = keys->addrs.v6addrs.src;
6486 		*(struct in6_addr *)&req->src_ipaddr_mask[0] = masks->addrs.v6addrs.src;
6487 		*(struct in6_addr *)&req->dst_ipaddr[0] = keys->addrs.v6addrs.dst;
6488 		*(struct in6_addr *)&req->dst_ipaddr_mask[0] = masks->addrs.v6addrs.dst;
6489 	} else {
6490 		req->src_ipaddr[0] = keys->addrs.v4addrs.src;
6491 		req->src_ipaddr_mask[0] = masks->addrs.v4addrs.src;
6492 		req->dst_ipaddr[0] = keys->addrs.v4addrs.dst;
6493 		req->dst_ipaddr_mask[0] = masks->addrs.v4addrs.dst;
6494 	}
6495 	if (keys->control.flags & FLOW_DIS_ENCAPSULATION) {
6496 		req->enables |= cpu_to_le32(BNXT_NTP_TUNNEL_FLTR_FLAG);
6497 		req->tunnel_type =
6498 			CFA_NTUPLE_FILTER_ALLOC_REQ_TUNNEL_TYPE_ANYTUNNEL;
6499 	}
6500 
6501 	req->src_port = keys->ports.src;
6502 	req->src_port_mask = masks->ports.src;
6503 	req->dst_port = keys->ports.dst;
6504 	req->dst_port_mask = masks->ports.dst;
6505 
6506 	resp = hwrm_req_hold(bp, req);
6507 	rc = hwrm_req_send(bp, req);
6508 	if (!rc)
6509 		fltr->base.filter_id = resp->ntuple_filter_id;
6510 	hwrm_req_drop(bp, req);
6511 	return rc;
6512 }
6513 
bnxt_hwrm_set_vnic_filter(struct bnxt * bp,u16 vnic_id,u16 idx,const u8 * mac_addr)6514 static int bnxt_hwrm_set_vnic_filter(struct bnxt *bp, u16 vnic_id, u16 idx,
6515 				     const u8 *mac_addr)
6516 {
6517 	struct bnxt_l2_filter *fltr;
6518 	struct bnxt_l2_key key;
6519 	int rc;
6520 
6521 	ether_addr_copy(key.dst_mac_addr, mac_addr);
6522 	key.vlan = 0;
6523 	fltr = bnxt_alloc_l2_filter(bp, &key, GFP_KERNEL);
6524 	if (IS_ERR(fltr))
6525 		return PTR_ERR(fltr);
6526 
6527 	fltr->base.fw_vnic_id = bp->vnic_info[vnic_id].fw_vnic_id;
6528 	rc = bnxt_hwrm_l2_filter_alloc(bp, fltr);
6529 	if (rc)
6530 		bnxt_del_l2_filter(bp, fltr);
6531 	else
6532 		bp->vnic_info[vnic_id].l2_filters[idx] = fltr;
6533 	return rc;
6534 }
6535 
bnxt_hwrm_clear_vnic_filter(struct bnxt * bp)6536 static void bnxt_hwrm_clear_vnic_filter(struct bnxt *bp)
6537 {
6538 	u16 i, j, num_of_vnics = 1; /* only vnic 0 supported */
6539 
6540 	/* Any associated ntuple filters will also be cleared by firmware. */
6541 	for (i = 0; i < num_of_vnics; i++) {
6542 		struct bnxt_vnic_info *vnic = &bp->vnic_info[i];
6543 
6544 		for (j = 0; j < vnic->uc_filter_count; j++) {
6545 			struct bnxt_l2_filter *fltr = vnic->l2_filters[j];
6546 
6547 			bnxt_hwrm_l2_filter_free(bp, fltr);
6548 			bnxt_del_l2_filter(bp, fltr);
6549 		}
6550 		vnic->uc_filter_count = 0;
6551 	}
6552 }
6553 
6554 #define BNXT_DFLT_TUNL_TPA_BMAP				\
6555 	(VNIC_TPA_CFG_REQ_TNL_TPA_EN_BITMAP_GRE |	\
6556 	 VNIC_TPA_CFG_REQ_TNL_TPA_EN_BITMAP_IPV4 |	\
6557 	 VNIC_TPA_CFG_REQ_TNL_TPA_EN_BITMAP_IPV6)
6558 
bnxt_hwrm_vnic_update_tunl_tpa(struct bnxt * bp,struct hwrm_vnic_tpa_cfg_input * req)6559 static void bnxt_hwrm_vnic_update_tunl_tpa(struct bnxt *bp,
6560 					   struct hwrm_vnic_tpa_cfg_input *req)
6561 {
6562 	u32 tunl_tpa_bmap = BNXT_DFLT_TUNL_TPA_BMAP;
6563 
6564 	if (!(bp->fw_cap & BNXT_FW_CAP_VNIC_TUNNEL_TPA))
6565 		return;
6566 
6567 	if (bp->vxlan_port)
6568 		tunl_tpa_bmap |= VNIC_TPA_CFG_REQ_TNL_TPA_EN_BITMAP_VXLAN;
6569 	if (bp->vxlan_gpe_port)
6570 		tunl_tpa_bmap |= VNIC_TPA_CFG_REQ_TNL_TPA_EN_BITMAP_VXLAN_GPE;
6571 	if (bp->nge_port)
6572 		tunl_tpa_bmap |= VNIC_TPA_CFG_REQ_TNL_TPA_EN_BITMAP_GENEVE;
6573 
6574 	req->enables |= cpu_to_le32(VNIC_TPA_CFG_REQ_ENABLES_TNL_TPA_EN);
6575 	req->tnl_tpa_en_bitmap = cpu_to_le32(tunl_tpa_bmap);
6576 }
6577 
bnxt_hwrm_vnic_set_tpa(struct bnxt * bp,struct bnxt_vnic_info * vnic,u32 tpa_flags)6578 int bnxt_hwrm_vnic_set_tpa(struct bnxt *bp, struct bnxt_vnic_info *vnic,
6579 			   u32 tpa_flags)
6580 {
6581 	u16 max_aggs = VNIC_TPA_CFG_REQ_MAX_AGGS_MAX;
6582 	struct hwrm_vnic_tpa_cfg_input *req;
6583 	int rc;
6584 
6585 	if (vnic->fw_vnic_id == INVALID_HW_RING_ID)
6586 		return 0;
6587 
6588 	rc = hwrm_req_init(bp, req, HWRM_VNIC_TPA_CFG);
6589 	if (rc)
6590 		return rc;
6591 
6592 	if (tpa_flags) {
6593 		u16 mss = bp->dev->mtu - 40;
6594 		u32 nsegs, n, segs = 0, flags;
6595 
6596 		flags = VNIC_TPA_CFG_REQ_FLAGS_TPA |
6597 			VNIC_TPA_CFG_REQ_FLAGS_ENCAP_TPA |
6598 			VNIC_TPA_CFG_REQ_FLAGS_RSC_WND_UPDATE |
6599 			VNIC_TPA_CFG_REQ_FLAGS_AGG_WITH_ECN |
6600 			VNIC_TPA_CFG_REQ_FLAGS_AGG_WITH_SAME_GRE_SEQ;
6601 		if (tpa_flags & BNXT_FLAG_GRO)
6602 			flags |= VNIC_TPA_CFG_REQ_FLAGS_GRO;
6603 
6604 		req->flags = cpu_to_le32(flags);
6605 
6606 		req->enables =
6607 			cpu_to_le32(VNIC_TPA_CFG_REQ_ENABLES_MAX_AGG_SEGS |
6608 				    VNIC_TPA_CFG_REQ_ENABLES_MAX_AGGS |
6609 				    VNIC_TPA_CFG_REQ_ENABLES_MIN_AGG_LEN);
6610 
6611 		/* Number of segs are log2 units, and first packet is not
6612 		 * included as part of this units.
6613 		 */
6614 		if (mss <= BNXT_RX_PAGE_SIZE) {
6615 			n = BNXT_RX_PAGE_SIZE / mss;
6616 			nsegs = (MAX_SKB_FRAGS - 1) * n;
6617 		} else {
6618 			n = mss / BNXT_RX_PAGE_SIZE;
6619 			if (mss & (BNXT_RX_PAGE_SIZE - 1))
6620 				n++;
6621 			nsegs = (MAX_SKB_FRAGS - n) / n;
6622 		}
6623 
6624 		if (bp->flags & BNXT_FLAG_CHIP_P5_PLUS) {
6625 			segs = MAX_TPA_SEGS_P5;
6626 			max_aggs = bp->max_tpa;
6627 		} else {
6628 			segs = ilog2(nsegs);
6629 		}
6630 		req->max_agg_segs = cpu_to_le16(segs);
6631 		req->max_aggs = cpu_to_le16(max_aggs);
6632 
6633 		req->min_agg_len = cpu_to_le32(512);
6634 		bnxt_hwrm_vnic_update_tunl_tpa(bp, req);
6635 	}
6636 	req->vnic_id = cpu_to_le16(vnic->fw_vnic_id);
6637 
6638 	return hwrm_req_send(bp, req);
6639 }
6640 
bnxt_cp_ring_from_grp(struct bnxt * bp,struct bnxt_ring_struct * ring)6641 static u16 bnxt_cp_ring_from_grp(struct bnxt *bp, struct bnxt_ring_struct *ring)
6642 {
6643 	struct bnxt_ring_grp_info *grp_info;
6644 
6645 	grp_info = &bp->grp_info[ring->grp_idx];
6646 	return grp_info->cp_fw_ring_id;
6647 }
6648 
bnxt_cp_ring_for_rx(struct bnxt * bp,struct bnxt_rx_ring_info * rxr)6649 static u16 bnxt_cp_ring_for_rx(struct bnxt *bp, struct bnxt_rx_ring_info *rxr)
6650 {
6651 	if (bp->flags & BNXT_FLAG_CHIP_P5_PLUS)
6652 		return rxr->rx_cpr->cp_ring_struct.fw_ring_id;
6653 	else
6654 		return bnxt_cp_ring_from_grp(bp, &rxr->rx_ring_struct);
6655 }
6656 
bnxt_cp_ring_for_tx(struct bnxt * bp,struct bnxt_tx_ring_info * txr)6657 static u16 bnxt_cp_ring_for_tx(struct bnxt *bp, struct bnxt_tx_ring_info *txr)
6658 {
6659 	if (bp->flags & BNXT_FLAG_CHIP_P5_PLUS)
6660 		return txr->tx_cpr->cp_ring_struct.fw_ring_id;
6661 	else
6662 		return bnxt_cp_ring_from_grp(bp, &txr->tx_ring_struct);
6663 }
6664 
bnxt_alloc_rss_indir_tbl(struct bnxt * bp)6665 static int bnxt_alloc_rss_indir_tbl(struct bnxt *bp)
6666 {
6667 	int entries;
6668 
6669 	if (bp->flags & BNXT_FLAG_CHIP_P5_PLUS)
6670 		entries = BNXT_MAX_RSS_TABLE_ENTRIES_P5;
6671 	else
6672 		entries = HW_HASH_INDEX_SIZE;
6673 
6674 	bp->rss_indir_tbl_entries = entries;
6675 	bp->rss_indir_tbl =
6676 		kmalloc_array(entries, sizeof(*bp->rss_indir_tbl), GFP_KERNEL);
6677 	if (!bp->rss_indir_tbl)
6678 		return -ENOMEM;
6679 
6680 	return 0;
6681 }
6682 
bnxt_set_dflt_rss_indir_tbl(struct bnxt * bp,struct ethtool_rxfh_context * rss_ctx)6683 void bnxt_set_dflt_rss_indir_tbl(struct bnxt *bp,
6684 				 struct ethtool_rxfh_context *rss_ctx)
6685 {
6686 	u16 max_rings, max_entries, pad, i;
6687 	u32 *rss_indir_tbl;
6688 
6689 	if (!bp->rx_nr_rings)
6690 		return;
6691 
6692 	if (BNXT_CHIP_TYPE_NITRO_A0(bp))
6693 		max_rings = bp->rx_nr_rings - 1;
6694 	else
6695 		max_rings = bp->rx_nr_rings;
6696 
6697 	max_entries = bnxt_get_rxfh_indir_size(bp->dev);
6698 	if (rss_ctx)
6699 		rss_indir_tbl = ethtool_rxfh_context_indir(rss_ctx);
6700 	else
6701 		rss_indir_tbl = &bp->rss_indir_tbl[0];
6702 
6703 	for (i = 0; i < max_entries; i++)
6704 		rss_indir_tbl[i] = ethtool_rxfh_indir_default(i, max_rings);
6705 
6706 	pad = bp->rss_indir_tbl_entries - max_entries;
6707 	if (pad)
6708 		memset(&rss_indir_tbl[i], 0, pad * sizeof(*rss_indir_tbl));
6709 }
6710 
bnxt_get_max_rss_ring(struct bnxt * bp)6711 static u16 bnxt_get_max_rss_ring(struct bnxt *bp)
6712 {
6713 	u32 i, tbl_size, max_ring = 0;
6714 
6715 	if (!bp->rss_indir_tbl)
6716 		return 0;
6717 
6718 	tbl_size = bnxt_get_rxfh_indir_size(bp->dev);
6719 	for (i = 0; i < tbl_size; i++)
6720 		max_ring = max(max_ring, bp->rss_indir_tbl[i]);
6721 	return max_ring;
6722 }
6723 
bnxt_get_nr_rss_ctxs(struct bnxt * bp,int rx_rings)6724 int bnxt_get_nr_rss_ctxs(struct bnxt *bp, int rx_rings)
6725 {
6726 	if (bp->flags & BNXT_FLAG_CHIP_P5_PLUS) {
6727 		if (!rx_rings)
6728 			return 0;
6729 		if (bp->rss_cap & BNXT_RSS_CAP_LARGE_RSS_CTX)
6730 			return BNXT_RSS_TABLE_MAX_TBL_P5;
6731 
6732 		return bnxt_calc_nr_ring_pages(rx_rings - 1,
6733 					       BNXT_RSS_TABLE_ENTRIES_P5);
6734 	}
6735 	if (BNXT_CHIP_TYPE_NITRO_A0(bp))
6736 		return 2;
6737 	return 1;
6738 }
6739 
bnxt_fill_hw_rss_tbl(struct bnxt * bp,struct bnxt_vnic_info * vnic)6740 static void bnxt_fill_hw_rss_tbl(struct bnxt *bp, struct bnxt_vnic_info *vnic)
6741 {
6742 	bool no_rss = !(vnic->flags & BNXT_VNIC_RSS_FLAG);
6743 	u16 i, j, min_j = bp->rx_nr_rings - 1;
6744 
6745 	if (!vnic->rss_table)
6746 		goto skip_rss_tbl;
6747 
6748 	/* Fill the RSS indirection table with ring group ids */
6749 	for (i = 0, j = 0; i < HW_HASH_INDEX_SIZE; i++) {
6750 		if (!no_rss)
6751 			j = bp->rss_indir_tbl[i];
6752 		min_j = min(j, min_j);
6753 		vnic->rss_table[i] = cpu_to_le16(vnic->fw_grp_ids[j]);
6754 	}
6755 
6756 skip_rss_tbl:
6757 	if (vnic->rss_table && !no_rss)
6758 		vnic->default_rx_ring = min_j;
6759 	else if (vnic->flags & BNXT_VNIC_RFS_FLAG)
6760 		vnic->default_rx_ring = vnic->vnic_id - 1;
6761 	else if ((vnic->vnic_id == 1) && BNXT_CHIP_TYPE_NITRO_A0(bp))
6762 		vnic->default_rx_ring = bp->rx_nr_rings - 1;
6763 	else
6764 		vnic->default_rx_ring = 0;
6765 }
6766 
bnxt_fill_hw_rss_tbl_p5(struct bnxt * bp,struct bnxt_vnic_info * vnic)6767 static void bnxt_fill_hw_rss_tbl_p5(struct bnxt *bp,
6768 				    struct bnxt_vnic_info *vnic)
6769 {
6770 	u16 tbl_size, i, min_j = bp->rx_nr_rings - 1;
6771 	__le16 *ring_tbl = vnic->rss_table;
6772 	struct bnxt_rx_ring_info *rxr;
6773 
6774 	tbl_size = bnxt_get_rxfh_indir_size(bp->dev);
6775 
6776 	for (i = 0; i < tbl_size; i++) {
6777 		u16 ring_id, j;
6778 
6779 		if (vnic->flags & BNXT_VNIC_NTUPLE_FLAG)
6780 			j = ethtool_rxfh_indir_default(i, bp->rx_nr_rings);
6781 		else if (vnic->flags & BNXT_VNIC_RSSCTX_FLAG)
6782 			j = ethtool_rxfh_context_indir(vnic->rss_ctx)[i];
6783 		else
6784 			j = bp->rss_indir_tbl[i];
6785 		min_j = min(j, min_j);
6786 		rxr = &bp->rx_ring[j];
6787 
6788 		ring_id = rxr->rx_ring_struct.fw_ring_id;
6789 		*ring_tbl++ = cpu_to_le16(ring_id);
6790 		ring_id = bnxt_cp_ring_for_rx(bp, rxr);
6791 		*ring_tbl++ = cpu_to_le16(ring_id);
6792 	}
6793 	vnic->default_rx_ring = min_j;
6794 }
6795 
6796 static void
__bnxt_hwrm_vnic_set_rss(struct bnxt * bp,struct hwrm_vnic_rss_cfg_input * req,struct bnxt_vnic_info * vnic)6797 __bnxt_hwrm_vnic_set_rss(struct bnxt *bp, struct hwrm_vnic_rss_cfg_input *req,
6798 			 struct bnxt_vnic_info *vnic)
6799 {
6800 	if (bp->flags & BNXT_FLAG_CHIP_P7)
6801 		req->flags |= VNIC_RSS_CFG_REQ_FLAGS_IPSEC_HASH_TYPE_CFG_SUPPORT;
6802 
6803 	if (bp->rss_hash_delta) {
6804 		req->hash_type = cpu_to_le32(bp->rss_hash_delta);
6805 		if (bp->rss_hash_cfg & bp->rss_hash_delta)
6806 			req->flags |= VNIC_RSS_CFG_REQ_FLAGS_HASH_TYPE_INCLUDE;
6807 		else
6808 			req->flags |= VNIC_RSS_CFG_REQ_FLAGS_HASH_TYPE_EXCLUDE;
6809 	} else {
6810 		req->hash_type = cpu_to_le32(bp->rss_hash_cfg);
6811 	}
6812 	req->hash_mode_flags = VNIC_RSS_CFG_REQ_HASH_MODE_FLAGS_DEFAULT;
6813 	req->ring_grp_tbl_addr = cpu_to_le64(vnic->rss_table_dma_addr);
6814 	req->hash_key_tbl_addr = cpu_to_le64(vnic->rss_hash_key_dma_addr);
6815 }
6816 
bnxt_hwrm_vnic_set_rss(struct bnxt * bp,struct bnxt_vnic_info * vnic,bool set_rss)6817 static int bnxt_hwrm_vnic_set_rss(struct bnxt *bp, struct bnxt_vnic_info *vnic,
6818 				  bool set_rss)
6819 {
6820 	struct hwrm_vnic_rss_cfg_input *req;
6821 	int rc;
6822 
6823 	if ((bp->flags & BNXT_FLAG_CHIP_P5_PLUS) ||
6824 	    vnic->fw_rss_cos_lb_ctx[0] == INVALID_HW_RING_ID)
6825 		return 0;
6826 
6827 	rc = hwrm_req_init(bp, req, HWRM_VNIC_RSS_CFG);
6828 	if (rc)
6829 		return rc;
6830 
6831 	if (set_rss)
6832 		__bnxt_hwrm_vnic_set_rss(bp, req, vnic);
6833 	req->rss_ctx_idx = cpu_to_le16(vnic->fw_rss_cos_lb_ctx[0]);
6834 	return hwrm_req_send(bp, req);
6835 }
6836 
bnxt_hwrm_vnic_set_rss_p5(struct bnxt * bp,struct bnxt_vnic_info * vnic,bool set_rss)6837 static int bnxt_hwrm_vnic_set_rss_p5(struct bnxt *bp,
6838 				     struct bnxt_vnic_info *vnic, bool set_rss)
6839 {
6840 	struct hwrm_vnic_rss_cfg_input *req;
6841 	dma_addr_t ring_tbl_map;
6842 	u32 i, nr_ctxs;
6843 	int rc;
6844 
6845 	rc = hwrm_req_init(bp, req, HWRM_VNIC_RSS_CFG);
6846 	if (rc)
6847 		return rc;
6848 
6849 	req->vnic_id = cpu_to_le16(vnic->fw_vnic_id);
6850 	if (!set_rss)
6851 		return hwrm_req_send(bp, req);
6852 
6853 	bnxt_fill_hw_rss_tbl_p5(bp, vnic);
6854 	__bnxt_hwrm_vnic_set_rss(bp, req, vnic);
6855 	ring_tbl_map = vnic->rss_table_dma_addr;
6856 	nr_ctxs = bnxt_get_nr_rss_ctxs(bp, bp->rx_nr_rings);
6857 
6858 	hwrm_req_hold(bp, req);
6859 	for (i = 0; i < nr_ctxs; ring_tbl_map += BNXT_RSS_TABLE_SIZE_P5, i++) {
6860 		req->ring_grp_tbl_addr = cpu_to_le64(ring_tbl_map);
6861 		req->ring_table_pair_index = i;
6862 		req->rss_ctx_idx = cpu_to_le16(vnic->fw_rss_cos_lb_ctx[i]);
6863 		rc = hwrm_req_send(bp, req);
6864 		if (rc)
6865 			goto exit;
6866 	}
6867 
6868 exit:
6869 	hwrm_req_drop(bp, req);
6870 	return rc;
6871 }
6872 
bnxt_hwrm_update_rss_hash_cfg(struct bnxt * bp)6873 static void bnxt_hwrm_update_rss_hash_cfg(struct bnxt *bp)
6874 {
6875 	struct bnxt_vnic_info *vnic = &bp->vnic_info[BNXT_VNIC_DEFAULT];
6876 	struct hwrm_vnic_rss_qcfg_output *resp;
6877 	struct hwrm_vnic_rss_qcfg_input *req;
6878 
6879 	if (hwrm_req_init(bp, req, HWRM_VNIC_RSS_QCFG))
6880 		return;
6881 
6882 	req->vnic_id = cpu_to_le16(vnic->fw_vnic_id);
6883 	/* all contexts configured to same hash_type, zero always exists */
6884 	req->rss_ctx_idx = cpu_to_le16(vnic->fw_rss_cos_lb_ctx[0]);
6885 	resp = hwrm_req_hold(bp, req);
6886 	if (!hwrm_req_send(bp, req)) {
6887 		bp->rss_hash_cfg = le32_to_cpu(resp->hash_type) ?: bp->rss_hash_cfg;
6888 		bp->rss_hash_delta = 0;
6889 	}
6890 	hwrm_req_drop(bp, req);
6891 }
6892 
bnxt_hwrm_vnic_set_hds(struct bnxt * bp,struct bnxt_vnic_info * vnic)6893 static int bnxt_hwrm_vnic_set_hds(struct bnxt *bp, struct bnxt_vnic_info *vnic)
6894 {
6895 	u16 hds_thresh = (u16)bp->dev->cfg_pending->hds_thresh;
6896 	struct hwrm_vnic_plcmodes_cfg_input *req;
6897 	int rc;
6898 
6899 	rc = hwrm_req_init(bp, req, HWRM_VNIC_PLCMODES_CFG);
6900 	if (rc)
6901 		return rc;
6902 
6903 	req->flags = cpu_to_le32(VNIC_PLCMODES_CFG_REQ_FLAGS_JUMBO_PLACEMENT);
6904 	req->enables = cpu_to_le32(VNIC_PLCMODES_CFG_REQ_ENABLES_JUMBO_THRESH_VALID);
6905 	req->jumbo_thresh = cpu_to_le16(bp->rx_buf_use_size);
6906 
6907 	if (!BNXT_RX_PAGE_MODE(bp) && (bp->flags & BNXT_FLAG_AGG_RINGS)) {
6908 		req->flags |= cpu_to_le32(VNIC_PLCMODES_CFG_REQ_FLAGS_HDS_IPV4 |
6909 					  VNIC_PLCMODES_CFG_REQ_FLAGS_HDS_IPV6);
6910 		req->enables |=
6911 			cpu_to_le32(VNIC_PLCMODES_CFG_REQ_ENABLES_HDS_THRESHOLD_VALID);
6912 		req->hds_threshold = cpu_to_le16(hds_thresh);
6913 	}
6914 	req->vnic_id = cpu_to_le32(vnic->fw_vnic_id);
6915 	return hwrm_req_send(bp, req);
6916 }
6917 
bnxt_hwrm_vnic_ctx_free_one(struct bnxt * bp,struct bnxt_vnic_info * vnic,u16 ctx_idx)6918 static void bnxt_hwrm_vnic_ctx_free_one(struct bnxt *bp,
6919 					struct bnxt_vnic_info *vnic,
6920 					u16 ctx_idx)
6921 {
6922 	struct hwrm_vnic_rss_cos_lb_ctx_free_input *req;
6923 
6924 	if (hwrm_req_init(bp, req, HWRM_VNIC_RSS_COS_LB_CTX_FREE))
6925 		return;
6926 
6927 	req->rss_cos_lb_ctx_id =
6928 		cpu_to_le16(vnic->fw_rss_cos_lb_ctx[ctx_idx]);
6929 
6930 	hwrm_req_send(bp, req);
6931 	vnic->fw_rss_cos_lb_ctx[ctx_idx] = INVALID_HW_RING_ID;
6932 }
6933 
bnxt_hwrm_vnic_ctx_free(struct bnxt * bp)6934 static void bnxt_hwrm_vnic_ctx_free(struct bnxt *bp)
6935 {
6936 	int i, j;
6937 
6938 	for (i = 0; i < bp->nr_vnics; i++) {
6939 		struct bnxt_vnic_info *vnic = &bp->vnic_info[i];
6940 
6941 		for (j = 0; j < BNXT_MAX_CTX_PER_VNIC; j++) {
6942 			if (vnic->fw_rss_cos_lb_ctx[j] != INVALID_HW_RING_ID)
6943 				bnxt_hwrm_vnic_ctx_free_one(bp, vnic, j);
6944 		}
6945 	}
6946 	bp->rsscos_nr_ctxs = 0;
6947 }
6948 
bnxt_hwrm_vnic_ctx_alloc(struct bnxt * bp,struct bnxt_vnic_info * vnic,u16 ctx_idx)6949 static int bnxt_hwrm_vnic_ctx_alloc(struct bnxt *bp,
6950 				    struct bnxt_vnic_info *vnic, u16 ctx_idx)
6951 {
6952 	struct hwrm_vnic_rss_cos_lb_ctx_alloc_output *resp;
6953 	struct hwrm_vnic_rss_cos_lb_ctx_alloc_input *req;
6954 	int rc;
6955 
6956 	rc = hwrm_req_init(bp, req, HWRM_VNIC_RSS_COS_LB_CTX_ALLOC);
6957 	if (rc)
6958 		return rc;
6959 
6960 	resp = hwrm_req_hold(bp, req);
6961 	rc = hwrm_req_send(bp, req);
6962 	if (!rc)
6963 		vnic->fw_rss_cos_lb_ctx[ctx_idx] =
6964 			le16_to_cpu(resp->rss_cos_lb_ctx_id);
6965 	hwrm_req_drop(bp, req);
6966 
6967 	return rc;
6968 }
6969 
bnxt_get_roce_vnic_mode(struct bnxt * bp)6970 static u32 bnxt_get_roce_vnic_mode(struct bnxt *bp)
6971 {
6972 	if (bp->flags & BNXT_FLAG_ROCE_MIRROR_CAP)
6973 		return VNIC_CFG_REQ_FLAGS_ROCE_MIRRORING_CAPABLE_VNIC_MODE;
6974 	return VNIC_CFG_REQ_FLAGS_ROCE_DUAL_VNIC_MODE;
6975 }
6976 
bnxt_hwrm_vnic_cfg(struct bnxt * bp,struct bnxt_vnic_info * vnic)6977 int bnxt_hwrm_vnic_cfg(struct bnxt *bp, struct bnxt_vnic_info *vnic)
6978 {
6979 	struct bnxt_vnic_info *vnic0 = &bp->vnic_info[BNXT_VNIC_DEFAULT];
6980 	struct hwrm_vnic_cfg_input *req;
6981 	unsigned int ring = 0, grp_idx;
6982 	u16 def_vlan = 0;
6983 	int rc;
6984 
6985 	rc = hwrm_req_init(bp, req, HWRM_VNIC_CFG);
6986 	if (rc)
6987 		return rc;
6988 
6989 	if (bp->flags & BNXT_FLAG_CHIP_P5_PLUS) {
6990 		struct bnxt_rx_ring_info *rxr;
6991 
6992 		rxr = &bp->rx_ring[vnic->default_rx_ring];
6993 		req->default_rx_ring_id =
6994 			cpu_to_le16(rxr->rx_ring_struct.fw_ring_id);
6995 		req->default_cmpl_ring_id =
6996 			cpu_to_le16(bnxt_cp_ring_for_rx(bp, rxr));
6997 		req->enables =
6998 			cpu_to_le32(VNIC_CFG_REQ_ENABLES_DEFAULT_RX_RING_ID |
6999 				    VNIC_CFG_REQ_ENABLES_DEFAULT_CMPL_RING_ID);
7000 		goto vnic_mru;
7001 	}
7002 	req->enables = cpu_to_le32(VNIC_CFG_REQ_ENABLES_DFLT_RING_GRP);
7003 	/* Only RSS support for now TBD: COS & LB */
7004 	if (vnic->fw_rss_cos_lb_ctx[0] != INVALID_HW_RING_ID) {
7005 		req->rss_rule = cpu_to_le16(vnic->fw_rss_cos_lb_ctx[0]);
7006 		req->enables |= cpu_to_le32(VNIC_CFG_REQ_ENABLES_RSS_RULE |
7007 					   VNIC_CFG_REQ_ENABLES_MRU);
7008 	} else if (vnic->flags & BNXT_VNIC_RFS_NEW_RSS_FLAG) {
7009 		req->rss_rule = cpu_to_le16(vnic0->fw_rss_cos_lb_ctx[0]);
7010 		req->enables |= cpu_to_le32(VNIC_CFG_REQ_ENABLES_RSS_RULE |
7011 					   VNIC_CFG_REQ_ENABLES_MRU);
7012 		req->flags |= cpu_to_le32(VNIC_CFG_REQ_FLAGS_RSS_DFLT_CR_MODE);
7013 	} else {
7014 		req->rss_rule = cpu_to_le16(0xffff);
7015 	}
7016 
7017 	if (BNXT_CHIP_TYPE_NITRO_A0(bp) &&
7018 	    (vnic->fw_rss_cos_lb_ctx[0] != INVALID_HW_RING_ID)) {
7019 		req->cos_rule = cpu_to_le16(vnic->fw_rss_cos_lb_ctx[1]);
7020 		req->enables |= cpu_to_le32(VNIC_CFG_REQ_ENABLES_COS_RULE);
7021 	} else {
7022 		req->cos_rule = cpu_to_le16(0xffff);
7023 	}
7024 
7025 	ring = vnic->default_rx_ring;
7026 	grp_idx = bp->rx_ring[ring].bnapi->index;
7027 	req->dflt_ring_grp = cpu_to_le16(bp->grp_info[grp_idx].fw_grp_id);
7028 	req->lb_rule = cpu_to_le16(0xffff);
7029 vnic_mru:
7030 	vnic->mru = bp->dev->mtu + VLAN_ETH_HLEN;
7031 	req->mru = cpu_to_le16(vnic->mru);
7032 
7033 	req->vnic_id = cpu_to_le16(vnic->fw_vnic_id);
7034 #ifdef CONFIG_BNXT_SRIOV
7035 	if (BNXT_VF(bp))
7036 		def_vlan = bp->vf.vlan;
7037 #endif
7038 	if ((bp->flags & BNXT_FLAG_STRIP_VLAN) || def_vlan)
7039 		req->flags |= cpu_to_le32(VNIC_CFG_REQ_FLAGS_VLAN_STRIP_MODE);
7040 	if (vnic->vnic_id == BNXT_VNIC_DEFAULT &&
7041 	    bnxt_ulp_registered(bp->edev[BNXT_AUXDEV_RDMA]))
7042 		req->flags |= cpu_to_le32(bnxt_get_roce_vnic_mode(bp));
7043 
7044 	return hwrm_req_send(bp, req);
7045 }
7046 
bnxt_hwrm_vnic_free_one(struct bnxt * bp,struct bnxt_vnic_info * vnic)7047 static void bnxt_hwrm_vnic_free_one(struct bnxt *bp,
7048 				    struct bnxt_vnic_info *vnic)
7049 {
7050 	if (vnic->fw_vnic_id != INVALID_HW_RING_ID) {
7051 		struct hwrm_vnic_free_input *req;
7052 
7053 		if (hwrm_req_init(bp, req, HWRM_VNIC_FREE))
7054 			return;
7055 
7056 		req->vnic_id = cpu_to_le32(vnic->fw_vnic_id);
7057 
7058 		hwrm_req_send(bp, req);
7059 		vnic->fw_vnic_id = INVALID_HW_RING_ID;
7060 	}
7061 }
7062 
bnxt_hwrm_vnic_free(struct bnxt * bp)7063 static void bnxt_hwrm_vnic_free(struct bnxt *bp)
7064 {
7065 	u16 i;
7066 
7067 	for (i = 0; i < bp->nr_vnics; i++)
7068 		bnxt_hwrm_vnic_free_one(bp, &bp->vnic_info[i]);
7069 }
7070 
bnxt_hwrm_vnic_alloc(struct bnxt * bp,struct bnxt_vnic_info * vnic,unsigned int start_rx_ring_idx,unsigned int nr_rings)7071 int bnxt_hwrm_vnic_alloc(struct bnxt *bp, struct bnxt_vnic_info *vnic,
7072 			 unsigned int start_rx_ring_idx,
7073 			 unsigned int nr_rings)
7074 {
7075 	unsigned int i, j, grp_idx, end_idx = start_rx_ring_idx + nr_rings;
7076 	struct hwrm_vnic_alloc_output *resp;
7077 	struct hwrm_vnic_alloc_input *req;
7078 	int rc;
7079 
7080 	rc = hwrm_req_init(bp, req, HWRM_VNIC_ALLOC);
7081 	if (rc)
7082 		return rc;
7083 
7084 	if (bp->flags & BNXT_FLAG_CHIP_P5_PLUS)
7085 		goto vnic_no_ring_grps;
7086 
7087 	/* map ring groups to this vnic */
7088 	for (i = start_rx_ring_idx, j = 0; i < end_idx; i++, j++) {
7089 		grp_idx = bp->rx_ring[i].bnapi->index;
7090 		if (bp->grp_info[grp_idx].fw_grp_id == INVALID_HW_RING_ID) {
7091 			netdev_err(bp->dev, "Not enough ring groups avail:%x req:%x\n",
7092 				   j, nr_rings);
7093 			break;
7094 		}
7095 		vnic->fw_grp_ids[j] = bp->grp_info[grp_idx].fw_grp_id;
7096 	}
7097 
7098 vnic_no_ring_grps:
7099 	for (i = 0; i < BNXT_MAX_CTX_PER_VNIC; i++)
7100 		vnic->fw_rss_cos_lb_ctx[i] = INVALID_HW_RING_ID;
7101 	if (vnic->vnic_id == BNXT_VNIC_DEFAULT)
7102 		req->flags = cpu_to_le32(VNIC_ALLOC_REQ_FLAGS_DEFAULT);
7103 
7104 	resp = hwrm_req_hold(bp, req);
7105 	rc = hwrm_req_send(bp, req);
7106 	if (!rc)
7107 		vnic->fw_vnic_id = le32_to_cpu(resp->vnic_id);
7108 	hwrm_req_drop(bp, req);
7109 	return rc;
7110 }
7111 
bnxt_hwrm_vnic_qcaps(struct bnxt * bp)7112 static int bnxt_hwrm_vnic_qcaps(struct bnxt *bp)
7113 {
7114 	struct hwrm_vnic_qcaps_output *resp;
7115 	struct hwrm_vnic_qcaps_input *req;
7116 	int rc;
7117 
7118 	bp->hw_ring_stats_size = sizeof(struct ctx_hw_stats);
7119 	bp->flags &= ~BNXT_FLAG_ROCE_MIRROR_CAP;
7120 	bp->rss_cap &= ~BNXT_RSS_CAP_NEW_RSS_CAP;
7121 	if (bp->hwrm_spec_code < 0x10600)
7122 		return 0;
7123 
7124 	rc = hwrm_req_init(bp, req, HWRM_VNIC_QCAPS);
7125 	if (rc)
7126 		return rc;
7127 
7128 	resp = hwrm_req_hold(bp, req);
7129 	rc = hwrm_req_send(bp, req);
7130 	if (!rc) {
7131 		u32 flags = le32_to_cpu(resp->flags);
7132 
7133 		if (!(bp->flags & BNXT_FLAG_CHIP_P5_PLUS) &&
7134 		    (flags & VNIC_QCAPS_RESP_FLAGS_RSS_DFLT_CR_CAP))
7135 			bp->rss_cap |= BNXT_RSS_CAP_NEW_RSS_CAP;
7136 		if (flags &
7137 		    VNIC_QCAPS_RESP_FLAGS_ROCE_MIRRORING_CAPABLE_VNIC_CAP)
7138 			bp->flags |= BNXT_FLAG_ROCE_MIRROR_CAP;
7139 
7140 		/* Older P5 fw before EXT_HW_STATS support did not set
7141 		 * VLAN_STRIP_CAP properly.
7142 		 */
7143 		if ((flags & VNIC_QCAPS_RESP_FLAGS_VLAN_STRIP_CAP) ||
7144 		    (BNXT_CHIP_P5(bp) &&
7145 		     !(bp->fw_cap & BNXT_FW_CAP_EXT_HW_STATS_SUPPORTED)))
7146 			bp->fw_cap |= BNXT_FW_CAP_VLAN_RX_STRIP;
7147 		if (flags & VNIC_QCAPS_RESP_FLAGS_RSS_HASH_TYPE_DELTA_CAP)
7148 			bp->rss_cap |= BNXT_RSS_CAP_RSS_HASH_TYPE_DELTA;
7149 		if (flags & VNIC_QCAPS_RESP_FLAGS_RSS_PROF_TCAM_MODE_ENABLED)
7150 			bp->rss_cap |= BNXT_RSS_CAP_RSS_TCAM;
7151 		bp->max_tpa_v2 = le16_to_cpu(resp->max_aggs_supported);
7152 		if (bp->max_tpa_v2) {
7153 			if (BNXT_CHIP_P5(bp))
7154 				bp->hw_ring_stats_size = BNXT_RING_STATS_SIZE_P5;
7155 			else
7156 				bp->hw_ring_stats_size = BNXT_RING_STATS_SIZE_P7;
7157 		}
7158 		if (flags & VNIC_QCAPS_RESP_FLAGS_HW_TUNNEL_TPA_CAP)
7159 			bp->fw_cap |= BNXT_FW_CAP_VNIC_TUNNEL_TPA;
7160 		if (flags & VNIC_QCAPS_RESP_FLAGS_RSS_IPSEC_AH_SPI_IPV4_CAP)
7161 			bp->rss_cap |= BNXT_RSS_CAP_AH_V4_RSS_CAP;
7162 		if (flags & VNIC_QCAPS_RESP_FLAGS_RSS_IPSEC_AH_SPI_IPV6_CAP)
7163 			bp->rss_cap |= BNXT_RSS_CAP_AH_V6_RSS_CAP;
7164 		if (flags & VNIC_QCAPS_RESP_FLAGS_RSS_IPSEC_ESP_SPI_IPV4_CAP)
7165 			bp->rss_cap |= BNXT_RSS_CAP_ESP_V4_RSS_CAP;
7166 		if (flags & VNIC_QCAPS_RESP_FLAGS_RSS_IPSEC_ESP_SPI_IPV6_CAP)
7167 			bp->rss_cap |= BNXT_RSS_CAP_ESP_V6_RSS_CAP;
7168 		if (flags & VNIC_QCAPS_RESP_FLAGS_RSS_IPV6_FLOW_LABEL_CAP)
7169 			bp->rss_cap |= BNXT_RSS_CAP_IPV6_FLOW_LABEL_RSS_CAP;
7170 		if (flags & VNIC_QCAPS_RESP_FLAGS_RE_FLUSH_CAP)
7171 			bp->fw_cap |= BNXT_FW_CAP_VNIC_RE_FLUSH;
7172 	}
7173 	hwrm_req_drop(bp, req);
7174 	return rc;
7175 }
7176 
bnxt_hwrm_ring_grp_alloc(struct bnxt * bp)7177 static int bnxt_hwrm_ring_grp_alloc(struct bnxt *bp)
7178 {
7179 	struct hwrm_ring_grp_alloc_output *resp;
7180 	struct hwrm_ring_grp_alloc_input *req;
7181 	int rc;
7182 	u16 i;
7183 
7184 	if (bp->flags & BNXT_FLAG_CHIP_P5_PLUS)
7185 		return 0;
7186 
7187 	rc = hwrm_req_init(bp, req, HWRM_RING_GRP_ALLOC);
7188 	if (rc)
7189 		return rc;
7190 
7191 	resp = hwrm_req_hold(bp, req);
7192 	for (i = 0; i < bp->rx_nr_rings; i++) {
7193 		unsigned int grp_idx = bp->rx_ring[i].bnapi->index;
7194 
7195 		req->cr = cpu_to_le16(bp->grp_info[grp_idx].cp_fw_ring_id);
7196 		req->rr = cpu_to_le16(bp->grp_info[grp_idx].rx_fw_ring_id);
7197 		req->ar = cpu_to_le16(bp->grp_info[grp_idx].agg_fw_ring_id);
7198 		req->sc = cpu_to_le16(bp->grp_info[grp_idx].fw_stats_ctx);
7199 
7200 		rc = hwrm_req_send(bp, req);
7201 
7202 		if (rc)
7203 			break;
7204 
7205 		bp->grp_info[grp_idx].fw_grp_id =
7206 			le32_to_cpu(resp->ring_group_id);
7207 	}
7208 	hwrm_req_drop(bp, req);
7209 	return rc;
7210 }
7211 
bnxt_hwrm_ring_grp_free(struct bnxt * bp)7212 static void bnxt_hwrm_ring_grp_free(struct bnxt *bp)
7213 {
7214 	struct hwrm_ring_grp_free_input *req;
7215 	u16 i;
7216 
7217 	if (!bp->grp_info || (bp->flags & BNXT_FLAG_CHIP_P5_PLUS))
7218 		return;
7219 
7220 	if (hwrm_req_init(bp, req, HWRM_RING_GRP_FREE))
7221 		return;
7222 
7223 	hwrm_req_hold(bp, req);
7224 	for (i = 0; i < bp->cp_nr_rings; i++) {
7225 		if (bp->grp_info[i].fw_grp_id == INVALID_HW_RING_ID)
7226 			continue;
7227 		req->ring_group_id =
7228 			cpu_to_le32(bp->grp_info[i].fw_grp_id);
7229 
7230 		hwrm_req_send(bp, req);
7231 		bp->grp_info[i].fw_grp_id = INVALID_HW_RING_ID;
7232 	}
7233 	hwrm_req_drop(bp, req);
7234 }
7235 
bnxt_set_rx_ring_params_p5(struct bnxt * bp,u32 ring_type,struct hwrm_ring_alloc_input * req,struct bnxt_rx_ring_info * rxr,struct bnxt_ring_struct * ring)7236 static void bnxt_set_rx_ring_params_p5(struct bnxt *bp, u32 ring_type,
7237 				       struct hwrm_ring_alloc_input *req,
7238 				       struct bnxt_rx_ring_info *rxr,
7239 				       struct bnxt_ring_struct *ring)
7240 {
7241 	struct bnxt_ring_grp_info *grp_info = &bp->grp_info[ring->grp_idx];
7242 	u32 enables = RING_ALLOC_REQ_ENABLES_RX_BUF_SIZE_VALID |
7243 		      RING_ALLOC_REQ_ENABLES_NQ_RING_ID_VALID;
7244 
7245 	if (ring_type == HWRM_RING_ALLOC_AGG) {
7246 		req->ring_type = RING_ALLOC_REQ_RING_TYPE_RX_AGG;
7247 		req->rx_ring_id = cpu_to_le16(grp_info->rx_fw_ring_id);
7248 		req->rx_buf_size = cpu_to_le16(rxr->rx_page_size);
7249 		enables |= RING_ALLOC_REQ_ENABLES_RX_RING_ID_VALID;
7250 	} else {
7251 		req->rx_buf_size = cpu_to_le16(bp->rx_buf_use_size);
7252 		if (NET_IP_ALIGN == 2)
7253 			req->flags =
7254 				cpu_to_le16(RING_ALLOC_REQ_FLAGS_RX_SOP_PAD);
7255 	}
7256 	req->stat_ctx_id = cpu_to_le32(grp_info->fw_stats_ctx);
7257 	req->nq_ring_id = cpu_to_le16(grp_info->cp_fw_ring_id);
7258 	req->enables |= cpu_to_le32(enables);
7259 }
7260 
hwrm_ring_alloc_send_msg(struct bnxt * bp,struct bnxt_rx_ring_info * rxr,struct bnxt_ring_struct * ring,u32 ring_type,u32 map_index)7261 static int hwrm_ring_alloc_send_msg(struct bnxt *bp,
7262 				    struct bnxt_rx_ring_info *rxr,
7263 				    struct bnxt_ring_struct *ring,
7264 				    u32 ring_type, u32 map_index)
7265 {
7266 	struct hwrm_ring_alloc_output *resp;
7267 	struct hwrm_ring_alloc_input *req;
7268 	struct bnxt_ring_mem_info *rmem = &ring->ring_mem;
7269 	struct bnxt_ring_grp_info *grp_info;
7270 	int rc, err = 0;
7271 	u16 ring_id;
7272 
7273 	rc = hwrm_req_init(bp, req, HWRM_RING_ALLOC);
7274 	if (rc)
7275 		goto exit;
7276 
7277 	req->enables = 0;
7278 	if (rmem->nr_pages > 1) {
7279 		req->page_tbl_addr = cpu_to_le64(rmem->pg_tbl_map);
7280 		/* Page size is in log2 units */
7281 		req->page_size = BNXT_PAGE_SHIFT;
7282 		req->page_tbl_depth = 1;
7283 	} else {
7284 		req->page_tbl_addr =  cpu_to_le64(rmem->dma_arr[0]);
7285 	}
7286 	req->fbo = 0;
7287 	/* Association of ring index with doorbell index and MSIX number */
7288 	req->logical_id = cpu_to_le16(map_index);
7289 
7290 	switch (ring_type) {
7291 	case HWRM_RING_ALLOC_TX: {
7292 		struct bnxt_tx_ring_info *txr;
7293 		u16 flags = 0;
7294 
7295 		txr = container_of(ring, struct bnxt_tx_ring_info,
7296 				   tx_ring_struct);
7297 		req->ring_type = RING_ALLOC_REQ_RING_TYPE_TX;
7298 		/* Association of transmit ring with completion ring */
7299 		grp_info = &bp->grp_info[ring->grp_idx];
7300 		req->cmpl_ring_id = cpu_to_le16(bnxt_cp_ring_for_tx(bp, txr));
7301 		req->length = cpu_to_le32(bp->tx_ring_mask + 1);
7302 		req->stat_ctx_id = cpu_to_le32(grp_info->fw_stats_ctx);
7303 		req->queue_id = cpu_to_le16(ring->queue_id);
7304 		if (bp->flags & BNXT_FLAG_TX_COAL_CMPL)
7305 			req->cmpl_coal_cnt =
7306 				RING_ALLOC_REQ_CMPL_COAL_CNT_COAL_64;
7307 		if ((bp->fw_cap & BNXT_FW_CAP_TX_TS_CMP) && bp->ptp_cfg)
7308 			flags |= RING_ALLOC_REQ_FLAGS_TX_PKT_TS_CMPL_ENABLE;
7309 		req->flags = cpu_to_le16(flags);
7310 		break;
7311 	}
7312 	case HWRM_RING_ALLOC_RX:
7313 	case HWRM_RING_ALLOC_AGG:
7314 		req->ring_type = RING_ALLOC_REQ_RING_TYPE_RX;
7315 		req->length = (ring_type == HWRM_RING_ALLOC_RX) ?
7316 			      cpu_to_le32(bp->rx_ring_mask + 1) :
7317 			      cpu_to_le32(bp->rx_agg_ring_mask + 1);
7318 		if (bp->flags & BNXT_FLAG_CHIP_P5_PLUS)
7319 			bnxt_set_rx_ring_params_p5(bp, ring_type, req,
7320 						   rxr, ring);
7321 		break;
7322 	case HWRM_RING_ALLOC_CMPL:
7323 		req->ring_type = RING_ALLOC_REQ_RING_TYPE_L2_CMPL;
7324 		req->length = cpu_to_le32(bp->cp_ring_mask + 1);
7325 		if (bp->flags & BNXT_FLAG_CHIP_P5_PLUS) {
7326 			/* Association of cp ring with nq */
7327 			grp_info = &bp->grp_info[map_index];
7328 			req->nq_ring_id = cpu_to_le16(grp_info->cp_fw_ring_id);
7329 			req->cq_handle = cpu_to_le64(ring->handle);
7330 			req->enables |= cpu_to_le32(
7331 				RING_ALLOC_REQ_ENABLES_NQ_RING_ID_VALID);
7332 		} else {
7333 			req->int_mode = RING_ALLOC_REQ_INT_MODE_MSIX;
7334 		}
7335 		break;
7336 	case HWRM_RING_ALLOC_NQ:
7337 		req->ring_type = RING_ALLOC_REQ_RING_TYPE_NQ;
7338 		req->length = cpu_to_le32(bp->cp_ring_mask + 1);
7339 		req->int_mode = RING_ALLOC_REQ_INT_MODE_MSIX;
7340 		break;
7341 	default:
7342 		netdev_err(bp->dev, "hwrm alloc invalid ring type %d\n",
7343 			   ring_type);
7344 		return -EINVAL;
7345 	}
7346 
7347 	resp = hwrm_req_hold(bp, req);
7348 	rc = hwrm_req_send(bp, req);
7349 	err = le16_to_cpu(resp->error_code);
7350 	ring_id = le16_to_cpu(resp->ring_id);
7351 	hwrm_req_drop(bp, req);
7352 
7353 exit:
7354 	if (rc || err) {
7355 		netdev_err(bp->dev, "hwrm_ring_alloc type %d failed. rc:%x err:%x\n",
7356 			   ring_type, rc, err);
7357 		return -EIO;
7358 	}
7359 	ring->fw_ring_id = ring_id;
7360 	return rc;
7361 }
7362 
bnxt_hwrm_set_async_event_cr(struct bnxt * bp,int idx)7363 static int bnxt_hwrm_set_async_event_cr(struct bnxt *bp, int idx)
7364 {
7365 	int rc;
7366 
7367 	if (BNXT_PF(bp)) {
7368 		struct hwrm_func_cfg_input *req;
7369 
7370 		rc = bnxt_hwrm_func_cfg_short_req_init(bp, &req);
7371 		if (rc)
7372 			return rc;
7373 
7374 		req->fid = cpu_to_le16(0xffff);
7375 		req->enables = cpu_to_le32(FUNC_CFG_REQ_ENABLES_ASYNC_EVENT_CR);
7376 		req->async_event_cr = cpu_to_le16(idx);
7377 		return hwrm_req_send(bp, req);
7378 	} else {
7379 		struct hwrm_func_vf_cfg_input *req;
7380 
7381 		rc = hwrm_req_init(bp, req, HWRM_FUNC_VF_CFG);
7382 		if (rc)
7383 			return rc;
7384 
7385 		req->enables =
7386 			cpu_to_le32(FUNC_VF_CFG_REQ_ENABLES_ASYNC_EVENT_CR);
7387 		req->async_event_cr = cpu_to_le16(idx);
7388 		return hwrm_req_send(bp, req);
7389 	}
7390 }
7391 
bnxt_set_db_mask(struct bnxt * bp,struct bnxt_db_info * db,u32 ring_type)7392 static void bnxt_set_db_mask(struct bnxt *bp, struct bnxt_db_info *db,
7393 			     u32 ring_type)
7394 {
7395 	switch (ring_type) {
7396 	case HWRM_RING_ALLOC_TX:
7397 		db->db_ring_mask = bp->tx_ring_mask;
7398 		break;
7399 	case HWRM_RING_ALLOC_RX:
7400 		db->db_ring_mask = bp->rx_ring_mask;
7401 		break;
7402 	case HWRM_RING_ALLOC_AGG:
7403 		db->db_ring_mask = bp->rx_agg_ring_mask;
7404 		break;
7405 	case HWRM_RING_ALLOC_CMPL:
7406 	case HWRM_RING_ALLOC_NQ:
7407 		db->db_ring_mask = bp->cp_ring_mask;
7408 		break;
7409 	}
7410 	if (bp->flags & BNXT_FLAG_CHIP_P7) {
7411 		db->db_epoch_mask = db->db_ring_mask + 1;
7412 		db->db_epoch_shift = DBR_EPOCH_SFT - ilog2(db->db_epoch_mask);
7413 	}
7414 }
7415 
bnxt_set_db(struct bnxt * bp,struct bnxt_db_info * db,u32 ring_type,u32 map_idx,u32 xid)7416 static void bnxt_set_db(struct bnxt *bp, struct bnxt_db_info *db, u32 ring_type,
7417 			u32 map_idx, u32 xid)
7418 {
7419 	if (bp->flags & BNXT_FLAG_CHIP_P5_PLUS) {
7420 		switch (ring_type) {
7421 		case HWRM_RING_ALLOC_TX:
7422 			db->db_key64 = DBR_PATH_L2 | DBR_TYPE_SQ;
7423 			break;
7424 		case HWRM_RING_ALLOC_RX:
7425 		case HWRM_RING_ALLOC_AGG:
7426 			db->db_key64 = DBR_PATH_L2 | DBR_TYPE_SRQ;
7427 			break;
7428 		case HWRM_RING_ALLOC_CMPL:
7429 			db->db_key64 = DBR_PATH_L2;
7430 			break;
7431 		case HWRM_RING_ALLOC_NQ:
7432 			db->db_key64 = DBR_PATH_L2;
7433 			break;
7434 		}
7435 		db->db_key64 |= (u64)xid << DBR_XID_SFT;
7436 
7437 		if (bp->flags & BNXT_FLAG_CHIP_P7)
7438 			db->db_key64 |= DBR_VALID;
7439 
7440 		db->doorbell = bp->bar1 + bp->db_offset;
7441 	} else {
7442 		db->doorbell = bp->bar1 + map_idx * 0x80;
7443 		switch (ring_type) {
7444 		case HWRM_RING_ALLOC_TX:
7445 			db->db_key32 = DB_KEY_TX;
7446 			break;
7447 		case HWRM_RING_ALLOC_RX:
7448 		case HWRM_RING_ALLOC_AGG:
7449 			db->db_key32 = DB_KEY_RX;
7450 			break;
7451 		case HWRM_RING_ALLOC_CMPL:
7452 			db->db_key32 = DB_KEY_CP;
7453 			break;
7454 		}
7455 	}
7456 	bnxt_set_db_mask(bp, db, ring_type);
7457 }
7458 
bnxt_hwrm_rx_ring_alloc(struct bnxt * bp,struct bnxt_rx_ring_info * rxr)7459 static int bnxt_hwrm_rx_ring_alloc(struct bnxt *bp,
7460 				   struct bnxt_rx_ring_info *rxr)
7461 {
7462 	struct bnxt_ring_struct *ring = &rxr->rx_ring_struct;
7463 	struct bnxt_napi *bnapi = rxr->bnapi;
7464 	u32 type = HWRM_RING_ALLOC_RX;
7465 	u32 map_idx = bnapi->index;
7466 	int rc;
7467 
7468 	rc = hwrm_ring_alloc_send_msg(bp, rxr, ring, type, map_idx);
7469 	if (rc)
7470 		return rc;
7471 
7472 	bnxt_set_db(bp, &rxr->rx_db, type, map_idx, ring->fw_ring_id);
7473 	bp->grp_info[map_idx].rx_fw_ring_id = ring->fw_ring_id;
7474 
7475 	return 0;
7476 }
7477 
bnxt_hwrm_rx_agg_ring_alloc(struct bnxt * bp,struct bnxt_rx_ring_info * rxr)7478 static int bnxt_hwrm_rx_agg_ring_alloc(struct bnxt *bp,
7479 				       struct bnxt_rx_ring_info *rxr)
7480 {
7481 	struct bnxt_ring_struct *ring = &rxr->rx_agg_ring_struct;
7482 	u32 type = HWRM_RING_ALLOC_AGG;
7483 	u32 grp_idx = ring->grp_idx;
7484 	u32 map_idx;
7485 	int rc;
7486 
7487 	map_idx = grp_idx + bp->rx_nr_rings;
7488 	rc = hwrm_ring_alloc_send_msg(bp, rxr, ring, type, map_idx);
7489 	if (rc)
7490 		return rc;
7491 
7492 	bnxt_set_db(bp, &rxr->rx_agg_db, type, map_idx,
7493 		    ring->fw_ring_id);
7494 	bnxt_db_write(bp, &rxr->rx_agg_db, rxr->rx_agg_prod);
7495 	bnxt_db_write(bp, &rxr->rx_db, rxr->rx_prod);
7496 	bp->grp_info[grp_idx].agg_fw_ring_id = ring->fw_ring_id;
7497 
7498 	return 0;
7499 }
7500 
bnxt_hwrm_cp_ring_alloc_p5(struct bnxt * bp,struct bnxt_cp_ring_info * cpr)7501 static int bnxt_hwrm_cp_ring_alloc_p5(struct bnxt *bp,
7502 				      struct bnxt_cp_ring_info *cpr)
7503 {
7504 	const u32 type = HWRM_RING_ALLOC_CMPL;
7505 	struct bnxt_napi *bnapi = cpr->bnapi;
7506 	struct bnxt_ring_struct *ring;
7507 	u32 map_idx = bnapi->index;
7508 	int rc;
7509 
7510 	ring = &cpr->cp_ring_struct;
7511 	ring->handle = BNXT_SET_NQ_HDL(cpr);
7512 	rc = hwrm_ring_alloc_send_msg(bp, NULL, ring, type, map_idx);
7513 	if (rc)
7514 		return rc;
7515 	bnxt_set_db(bp, &cpr->cp_db, type, map_idx, ring->fw_ring_id);
7516 	bnxt_db_cq(bp, &cpr->cp_db, cpr->cp_raw_cons);
7517 	return 0;
7518 }
7519 
bnxt_hwrm_tx_ring_alloc(struct bnxt * bp,struct bnxt_tx_ring_info * txr,u32 tx_idx)7520 static int bnxt_hwrm_tx_ring_alloc(struct bnxt *bp,
7521 				   struct bnxt_tx_ring_info *txr, u32 tx_idx)
7522 {
7523 	struct bnxt_ring_struct *ring = &txr->tx_ring_struct;
7524 	const u32 type = HWRM_RING_ALLOC_TX;
7525 	int rc;
7526 
7527 	rc = hwrm_ring_alloc_send_msg(bp, NULL, ring, type, tx_idx);
7528 	if (rc)
7529 		return rc;
7530 	bnxt_set_db(bp, &txr->tx_db, type, tx_idx, ring->fw_ring_id);
7531 	return 0;
7532 }
7533 
bnxt_hwrm_ring_alloc(struct bnxt * bp)7534 static int bnxt_hwrm_ring_alloc(struct bnxt *bp)
7535 {
7536 	bool agg_rings = !!(bp->flags & BNXT_FLAG_AGG_RINGS);
7537 	int i, rc = 0;
7538 	u32 type;
7539 
7540 	if (bp->flags & BNXT_FLAG_CHIP_P5_PLUS)
7541 		type = HWRM_RING_ALLOC_NQ;
7542 	else
7543 		type = HWRM_RING_ALLOC_CMPL;
7544 	for (i = 0; i < bp->cp_nr_rings; i++) {
7545 		struct bnxt_napi *bnapi = bp->bnapi[i];
7546 		struct bnxt_cp_ring_info *cpr = &bnapi->cp_ring;
7547 		struct bnxt_ring_struct *ring = &cpr->cp_ring_struct;
7548 		u32 map_idx = ring->map_idx;
7549 		unsigned int vector;
7550 
7551 		vector = bp->irq_tbl[map_idx].vector;
7552 		disable_irq_nosync(vector);
7553 		rc = hwrm_ring_alloc_send_msg(bp, NULL, ring, type, map_idx);
7554 		if (rc) {
7555 			enable_irq(vector);
7556 			goto err_out;
7557 		}
7558 		bnxt_set_db(bp, &cpr->cp_db, type, map_idx, ring->fw_ring_id);
7559 		bnxt_db_nq(bp, &cpr->cp_db, cpr->cp_raw_cons);
7560 		enable_irq(vector);
7561 		bp->grp_info[i].cp_fw_ring_id = ring->fw_ring_id;
7562 
7563 		if (!i) {
7564 			rc = bnxt_hwrm_set_async_event_cr(bp, ring->fw_ring_id);
7565 			if (rc)
7566 				netdev_warn(bp->dev, "Failed to set async event completion ring.\n");
7567 		}
7568 	}
7569 
7570 	for (i = 0; i < bp->tx_nr_rings; i++) {
7571 		struct bnxt_tx_ring_info *txr = &bp->tx_ring[i];
7572 
7573 		if (bp->flags & BNXT_FLAG_CHIP_P5_PLUS) {
7574 			rc = bnxt_hwrm_cp_ring_alloc_p5(bp, txr->tx_cpr);
7575 			if (rc)
7576 				goto err_out;
7577 		}
7578 		rc = bnxt_hwrm_tx_ring_alloc(bp, txr, i);
7579 		if (rc)
7580 			goto err_out;
7581 	}
7582 
7583 	for (i = 0; i < bp->rx_nr_rings; i++) {
7584 		struct bnxt_rx_ring_info *rxr = &bp->rx_ring[i];
7585 
7586 		rc = bnxt_hwrm_rx_ring_alloc(bp, rxr);
7587 		if (rc)
7588 			goto err_out;
7589 		/* If we have agg rings, post agg buffers first. */
7590 		if (!agg_rings)
7591 			bnxt_db_write(bp, &rxr->rx_db, rxr->rx_prod);
7592 		if (bp->flags & BNXT_FLAG_CHIP_P5_PLUS) {
7593 			rc = bnxt_hwrm_cp_ring_alloc_p5(bp, rxr->rx_cpr);
7594 			if (rc)
7595 				goto err_out;
7596 		}
7597 	}
7598 
7599 	if (agg_rings) {
7600 		for (i = 0; i < bp->rx_nr_rings; i++) {
7601 			rc = bnxt_hwrm_rx_agg_ring_alloc(bp, &bp->rx_ring[i]);
7602 			if (rc)
7603 				goto err_out;
7604 		}
7605 	}
7606 err_out:
7607 	return rc;
7608 }
7609 
bnxt_cancel_dim(struct bnxt * bp)7610 static void bnxt_cancel_dim(struct bnxt *bp)
7611 {
7612 	int i;
7613 
7614 	/* DIM work is initialized in bnxt_enable_napi().  Proceed only
7615 	 * if NAPI is enabled.
7616 	 */
7617 	if (!bp->bnapi || test_bit(BNXT_STATE_NAPI_DISABLED, &bp->state))
7618 		return;
7619 
7620 	/* Make sure NAPI sees that the VNIC is disabled */
7621 	synchronize_net();
7622 	for (i = 0; i < bp->rx_nr_rings; i++) {
7623 		struct bnxt_rx_ring_info *rxr = &bp->rx_ring[i];
7624 		struct bnxt_napi *bnapi = rxr->bnapi;
7625 
7626 		cancel_work_sync(&bnapi->cp_ring.dim.work);
7627 	}
7628 }
7629 
hwrm_ring_free_send_msg(struct bnxt * bp,struct bnxt_ring_struct * ring,u32 ring_type,int cmpl_ring_id)7630 static int hwrm_ring_free_send_msg(struct bnxt *bp,
7631 				   struct bnxt_ring_struct *ring,
7632 				   u32 ring_type, int cmpl_ring_id)
7633 {
7634 	struct hwrm_ring_free_output *resp;
7635 	struct hwrm_ring_free_input *req;
7636 	u16 error_code = 0;
7637 	int rc;
7638 
7639 	if (BNXT_NO_FW_ACCESS(bp))
7640 		return 0;
7641 
7642 	rc = hwrm_req_init(bp, req, HWRM_RING_FREE);
7643 	if (rc)
7644 		goto exit;
7645 
7646 	req->cmpl_ring = cpu_to_le16(cmpl_ring_id);
7647 	req->ring_type = ring_type;
7648 	req->ring_id = cpu_to_le16(ring->fw_ring_id);
7649 
7650 	resp = hwrm_req_hold(bp, req);
7651 	rc = hwrm_req_send(bp, req);
7652 	error_code = le16_to_cpu(resp->error_code);
7653 	hwrm_req_drop(bp, req);
7654 exit:
7655 	if (rc || error_code) {
7656 		netdev_err(bp->dev, "hwrm_ring_free type %d failed. rc:%x err:%x\n",
7657 			   ring_type, rc, error_code);
7658 		return -EIO;
7659 	}
7660 	return 0;
7661 }
7662 
bnxt_hwrm_tx_ring_free(struct bnxt * bp,struct bnxt_tx_ring_info * txr,bool close_path)7663 static void bnxt_hwrm_tx_ring_free(struct bnxt *bp,
7664 				   struct bnxt_tx_ring_info *txr,
7665 				   bool close_path)
7666 {
7667 	struct bnxt_ring_struct *ring = &txr->tx_ring_struct;
7668 	u32 cmpl_ring_id;
7669 
7670 	if (ring->fw_ring_id == INVALID_HW_RING_ID)
7671 		return;
7672 
7673 	cmpl_ring_id = close_path ? bnxt_cp_ring_for_tx(bp, txr) :
7674 		       INVALID_HW_RING_ID;
7675 	hwrm_ring_free_send_msg(bp, ring, RING_FREE_REQ_RING_TYPE_TX,
7676 				cmpl_ring_id);
7677 	ring->fw_ring_id = INVALID_HW_RING_ID;
7678 }
7679 
bnxt_hwrm_rx_ring_free(struct bnxt * bp,struct bnxt_rx_ring_info * rxr,bool close_path)7680 static void bnxt_hwrm_rx_ring_free(struct bnxt *bp,
7681 				   struct bnxt_rx_ring_info *rxr,
7682 				   bool close_path)
7683 {
7684 	struct bnxt_ring_struct *ring = &rxr->rx_ring_struct;
7685 	u32 grp_idx = rxr->bnapi->index;
7686 	u32 cmpl_ring_id;
7687 
7688 	if (ring->fw_ring_id == INVALID_HW_RING_ID)
7689 		return;
7690 
7691 	cmpl_ring_id = bnxt_cp_ring_for_rx(bp, rxr);
7692 	hwrm_ring_free_send_msg(bp, ring,
7693 				RING_FREE_REQ_RING_TYPE_RX,
7694 				close_path ? cmpl_ring_id :
7695 				INVALID_HW_RING_ID);
7696 	ring->fw_ring_id = INVALID_HW_RING_ID;
7697 	bp->grp_info[grp_idx].rx_fw_ring_id = INVALID_HW_RING_ID;
7698 }
7699 
bnxt_hwrm_rx_agg_ring_free(struct bnxt * bp,struct bnxt_rx_ring_info * rxr,bool close_path)7700 static void bnxt_hwrm_rx_agg_ring_free(struct bnxt *bp,
7701 				       struct bnxt_rx_ring_info *rxr,
7702 				       bool close_path)
7703 {
7704 	struct bnxt_ring_struct *ring = &rxr->rx_agg_ring_struct;
7705 	u32 grp_idx = rxr->bnapi->index;
7706 	u32 type, cmpl_ring_id;
7707 
7708 	if (bp->flags & BNXT_FLAG_CHIP_P5_PLUS)
7709 		type = RING_FREE_REQ_RING_TYPE_RX_AGG;
7710 	else
7711 		type = RING_FREE_REQ_RING_TYPE_RX;
7712 
7713 	if (ring->fw_ring_id == INVALID_HW_RING_ID)
7714 		return;
7715 
7716 	cmpl_ring_id = bnxt_cp_ring_for_rx(bp, rxr);
7717 	hwrm_ring_free_send_msg(bp, ring, type,
7718 				close_path ? cmpl_ring_id :
7719 				INVALID_HW_RING_ID);
7720 	ring->fw_ring_id = INVALID_HW_RING_ID;
7721 	bp->grp_info[grp_idx].agg_fw_ring_id = INVALID_HW_RING_ID;
7722 }
7723 
bnxt_hwrm_cp_ring_free(struct bnxt * bp,struct bnxt_cp_ring_info * cpr)7724 static void bnxt_hwrm_cp_ring_free(struct bnxt *bp,
7725 				   struct bnxt_cp_ring_info *cpr)
7726 {
7727 	struct bnxt_ring_struct *ring;
7728 
7729 	ring = &cpr->cp_ring_struct;
7730 	if (ring->fw_ring_id == INVALID_HW_RING_ID)
7731 		return;
7732 
7733 	hwrm_ring_free_send_msg(bp, ring, RING_FREE_REQ_RING_TYPE_L2_CMPL,
7734 				INVALID_HW_RING_ID);
7735 	ring->fw_ring_id = INVALID_HW_RING_ID;
7736 }
7737 
bnxt_clear_one_cp_ring(struct bnxt * bp,struct bnxt_cp_ring_info * cpr)7738 static void bnxt_clear_one_cp_ring(struct bnxt *bp, struct bnxt_cp_ring_info *cpr)
7739 {
7740 	struct bnxt_ring_struct *ring = &cpr->cp_ring_struct;
7741 	int i, size = ring->ring_mem.page_size;
7742 
7743 	cpr->cp_raw_cons = 0;
7744 	cpr->toggle = 0;
7745 
7746 	for (i = 0; i < bp->cp_nr_pages; i++)
7747 		if (cpr->cp_desc_ring[i])
7748 			memset(cpr->cp_desc_ring[i], 0, size);
7749 }
7750 
bnxt_hwrm_ring_free(struct bnxt * bp,bool close_path)7751 static void bnxt_hwrm_ring_free(struct bnxt *bp, bool close_path)
7752 {
7753 	u32 type;
7754 	int i;
7755 
7756 	if (!bp->bnapi)
7757 		return;
7758 
7759 	for (i = 0; i < bp->tx_nr_rings; i++)
7760 		bnxt_hwrm_tx_ring_free(bp, &bp->tx_ring[i], close_path);
7761 
7762 	bnxt_cancel_dim(bp);
7763 	for (i = 0; i < bp->rx_nr_rings; i++) {
7764 		bnxt_hwrm_rx_ring_free(bp, &bp->rx_ring[i], close_path);
7765 		bnxt_hwrm_rx_agg_ring_free(bp, &bp->rx_ring[i], close_path);
7766 	}
7767 
7768 	/* The completion rings are about to be freed.  After that the
7769 	 * IRQ doorbell will not work anymore.  So we need to disable
7770 	 * IRQ here.
7771 	 */
7772 	bnxt_disable_int_sync(bp);
7773 
7774 	if (bp->flags & BNXT_FLAG_CHIP_P5_PLUS)
7775 		type = RING_FREE_REQ_RING_TYPE_NQ;
7776 	else
7777 		type = RING_FREE_REQ_RING_TYPE_L2_CMPL;
7778 	for (i = 0; i < bp->cp_nr_rings; i++) {
7779 		struct bnxt_napi *bnapi = bp->bnapi[i];
7780 		struct bnxt_cp_ring_info *cpr = &bnapi->cp_ring;
7781 		struct bnxt_ring_struct *ring;
7782 		int j;
7783 
7784 		for (j = 0; j < cpr->cp_ring_count && cpr->cp_ring_arr; j++)
7785 			bnxt_hwrm_cp_ring_free(bp, &cpr->cp_ring_arr[j]);
7786 
7787 		ring = &cpr->cp_ring_struct;
7788 		if (ring->fw_ring_id != INVALID_HW_RING_ID) {
7789 			hwrm_ring_free_send_msg(bp, ring, type,
7790 						INVALID_HW_RING_ID);
7791 			ring->fw_ring_id = INVALID_HW_RING_ID;
7792 			bp->grp_info[i].cp_fw_ring_id = INVALID_HW_RING_ID;
7793 		}
7794 	}
7795 }
7796 
7797 static int __bnxt_trim_rings(struct bnxt *bp, int *rx, int *tx, int max,
7798 			     bool shared);
7799 static int bnxt_trim_rings(struct bnxt *bp, int *rx, int *tx, int max,
7800 			   bool shared);
7801 
bnxt_hwrm_get_rings(struct bnxt * bp)7802 static int bnxt_hwrm_get_rings(struct bnxt *bp)
7803 {
7804 	struct bnxt_hw_resc *hw_resc = &bp->hw_resc;
7805 	struct hwrm_func_qcfg_output *resp;
7806 	struct hwrm_func_qcfg_input *req;
7807 	int rc;
7808 
7809 	if (bp->hwrm_spec_code < 0x10601)
7810 		return 0;
7811 
7812 	rc = hwrm_req_init(bp, req, HWRM_FUNC_QCFG);
7813 	if (rc)
7814 		return rc;
7815 
7816 	req->fid = cpu_to_le16(0xffff);
7817 	resp = hwrm_req_hold(bp, req);
7818 	rc = hwrm_req_send(bp, req);
7819 	if (rc) {
7820 		hwrm_req_drop(bp, req);
7821 		return rc;
7822 	}
7823 
7824 	hw_resc->resv_tx_rings = le16_to_cpu(resp->alloc_tx_rings);
7825 	if (BNXT_NEW_RM(bp)) {
7826 		u16 cp, stats;
7827 
7828 		hw_resc->resv_rx_rings = le16_to_cpu(resp->alloc_rx_rings);
7829 		hw_resc->resv_hw_ring_grps =
7830 			le32_to_cpu(resp->alloc_hw_ring_grps);
7831 		hw_resc->resv_vnics = le16_to_cpu(resp->alloc_vnics);
7832 		hw_resc->resv_rsscos_ctxs = le16_to_cpu(resp->alloc_rsscos_ctx);
7833 		cp = le16_to_cpu(resp->alloc_cmpl_rings);
7834 		stats = le16_to_cpu(resp->alloc_stat_ctx);
7835 		hw_resc->resv_irqs = cp;
7836 		if (bp->flags & BNXT_FLAG_CHIP_P5_PLUS) {
7837 			int rx = hw_resc->resv_rx_rings;
7838 			int tx = hw_resc->resv_tx_rings;
7839 
7840 			if (bp->flags & BNXT_FLAG_AGG_RINGS)
7841 				rx >>= 1;
7842 			if (cp < (rx + tx)) {
7843 				rc = __bnxt_trim_rings(bp, &rx, &tx, cp, false);
7844 				if (rc)
7845 					goto get_rings_exit;
7846 				if (bp->flags & BNXT_FLAG_AGG_RINGS)
7847 					rx <<= 1;
7848 				hw_resc->resv_rx_rings = rx;
7849 				hw_resc->resv_tx_rings = tx;
7850 			}
7851 			hw_resc->resv_irqs = le16_to_cpu(resp->alloc_msix);
7852 			hw_resc->resv_hw_ring_grps = rx;
7853 		}
7854 		hw_resc->resv_cp_rings = cp;
7855 		hw_resc->resv_stat_ctxs = stats;
7856 	}
7857 get_rings_exit:
7858 	hwrm_req_drop(bp, req);
7859 	return rc;
7860 }
7861 
__bnxt_hwrm_get_tx_rings(struct bnxt * bp,u16 fid,int * tx_rings)7862 int __bnxt_hwrm_get_tx_rings(struct bnxt *bp, u16 fid, int *tx_rings)
7863 {
7864 	struct hwrm_func_qcfg_output *resp;
7865 	struct hwrm_func_qcfg_input *req;
7866 	int rc;
7867 
7868 	if (bp->hwrm_spec_code < 0x10601)
7869 		return 0;
7870 
7871 	rc = hwrm_req_init(bp, req, HWRM_FUNC_QCFG);
7872 	if (rc)
7873 		return rc;
7874 
7875 	req->fid = cpu_to_le16(fid);
7876 	resp = hwrm_req_hold(bp, req);
7877 	rc = hwrm_req_send(bp, req);
7878 	if (!rc)
7879 		*tx_rings = le16_to_cpu(resp->alloc_tx_rings);
7880 
7881 	hwrm_req_drop(bp, req);
7882 	return rc;
7883 }
7884 
7885 static bool bnxt_rfs_supported(struct bnxt *bp);
7886 
7887 static struct hwrm_func_cfg_input *
__bnxt_hwrm_reserve_pf_rings(struct bnxt * bp,struct bnxt_hw_rings * hwr)7888 __bnxt_hwrm_reserve_pf_rings(struct bnxt *bp, struct bnxt_hw_rings *hwr)
7889 {
7890 	struct hwrm_func_cfg_input *req;
7891 	u32 enables = 0;
7892 
7893 	if (bnxt_hwrm_func_cfg_short_req_init(bp, &req))
7894 		return NULL;
7895 
7896 	req->fid = cpu_to_le16(0xffff);
7897 	enables |= hwr->tx ? FUNC_CFG_REQ_ENABLES_NUM_TX_RINGS : 0;
7898 	req->num_tx_rings = cpu_to_le16(hwr->tx);
7899 	if (BNXT_NEW_RM(bp)) {
7900 		enables |= hwr->rx ? FUNC_CFG_REQ_ENABLES_NUM_RX_RINGS : 0;
7901 		enables |= hwr->stat ? FUNC_CFG_REQ_ENABLES_NUM_STAT_CTXS : 0;
7902 		if (bp->flags & BNXT_FLAG_CHIP_P5_PLUS) {
7903 			enables |= hwr->cp ? FUNC_CFG_REQ_ENABLES_NUM_MSIX : 0;
7904 			enables |= hwr->cp_p5 ?
7905 				   FUNC_CFG_REQ_ENABLES_NUM_CMPL_RINGS : 0;
7906 		} else {
7907 			enables |= hwr->cp ?
7908 				   FUNC_CFG_REQ_ENABLES_NUM_CMPL_RINGS : 0;
7909 			enables |= hwr->grp ?
7910 				   FUNC_CFG_REQ_ENABLES_NUM_HW_RING_GRPS : 0;
7911 		}
7912 		enables |= hwr->vnic ? FUNC_CFG_REQ_ENABLES_NUM_VNICS : 0;
7913 		enables |= hwr->rss_ctx ? FUNC_CFG_REQ_ENABLES_NUM_RSSCOS_CTXS :
7914 					  0;
7915 		req->num_rx_rings = cpu_to_le16(hwr->rx);
7916 		req->num_rsscos_ctxs = cpu_to_le16(hwr->rss_ctx);
7917 		if (bp->flags & BNXT_FLAG_CHIP_P5_PLUS) {
7918 			req->num_cmpl_rings = cpu_to_le16(hwr->cp_p5);
7919 			req->num_msix = cpu_to_le16(hwr->cp);
7920 		} else {
7921 			req->num_cmpl_rings = cpu_to_le16(hwr->cp);
7922 			req->num_hw_ring_grps = cpu_to_le16(hwr->grp);
7923 		}
7924 		req->num_stat_ctxs = cpu_to_le16(hwr->stat);
7925 		req->num_vnics = cpu_to_le16(hwr->vnic);
7926 	}
7927 	req->enables = cpu_to_le32(enables);
7928 	return req;
7929 }
7930 
7931 static struct hwrm_func_vf_cfg_input *
__bnxt_hwrm_reserve_vf_rings(struct bnxt * bp,struct bnxt_hw_rings * hwr)7932 __bnxt_hwrm_reserve_vf_rings(struct bnxt *bp, struct bnxt_hw_rings *hwr)
7933 {
7934 	struct hwrm_func_vf_cfg_input *req;
7935 	u32 enables = 0;
7936 
7937 	if (hwrm_req_init(bp, req, HWRM_FUNC_VF_CFG))
7938 		return NULL;
7939 
7940 	enables |= hwr->tx ? FUNC_VF_CFG_REQ_ENABLES_NUM_TX_RINGS : 0;
7941 	enables |= hwr->rx ? FUNC_VF_CFG_REQ_ENABLES_NUM_RX_RINGS |
7942 			     FUNC_VF_CFG_REQ_ENABLES_NUM_RSSCOS_CTXS : 0;
7943 	enables |= hwr->stat ? FUNC_VF_CFG_REQ_ENABLES_NUM_STAT_CTXS : 0;
7944 	enables |= hwr->rss_ctx ? FUNC_VF_CFG_REQ_ENABLES_NUM_RSSCOS_CTXS : 0;
7945 	if (bp->flags & BNXT_FLAG_CHIP_P5_PLUS) {
7946 		enables |= hwr->cp_p5 ?
7947 			   FUNC_VF_CFG_REQ_ENABLES_NUM_CMPL_RINGS : 0;
7948 	} else {
7949 		enables |= hwr->cp ? FUNC_VF_CFG_REQ_ENABLES_NUM_CMPL_RINGS : 0;
7950 		enables |= hwr->grp ?
7951 			   FUNC_VF_CFG_REQ_ENABLES_NUM_HW_RING_GRPS : 0;
7952 	}
7953 	enables |= hwr->vnic ? FUNC_VF_CFG_REQ_ENABLES_NUM_VNICS : 0;
7954 	enables |= FUNC_VF_CFG_REQ_ENABLES_NUM_L2_CTXS;
7955 
7956 	req->num_l2_ctxs = cpu_to_le16(BNXT_VF_MAX_L2_CTX);
7957 	req->num_tx_rings = cpu_to_le16(hwr->tx);
7958 	req->num_rx_rings = cpu_to_le16(hwr->rx);
7959 	req->num_rsscos_ctxs = cpu_to_le16(hwr->rss_ctx);
7960 	if (bp->flags & BNXT_FLAG_CHIP_P5_PLUS) {
7961 		req->num_cmpl_rings = cpu_to_le16(hwr->cp_p5);
7962 	} else {
7963 		req->num_cmpl_rings = cpu_to_le16(hwr->cp);
7964 		req->num_hw_ring_grps = cpu_to_le16(hwr->grp);
7965 	}
7966 	req->num_stat_ctxs = cpu_to_le16(hwr->stat);
7967 	req->num_vnics = cpu_to_le16(hwr->vnic);
7968 
7969 	req->enables = cpu_to_le32(enables);
7970 	return req;
7971 }
7972 
7973 static int
bnxt_hwrm_reserve_pf_rings(struct bnxt * bp,struct bnxt_hw_rings * hwr)7974 bnxt_hwrm_reserve_pf_rings(struct bnxt *bp, struct bnxt_hw_rings *hwr)
7975 {
7976 	struct hwrm_func_cfg_input *req;
7977 	int rc;
7978 
7979 	req = __bnxt_hwrm_reserve_pf_rings(bp, hwr);
7980 	if (!req)
7981 		return -ENOMEM;
7982 
7983 	if (!req->enables) {
7984 		hwrm_req_drop(bp, req);
7985 		return 0;
7986 	}
7987 
7988 	rc = hwrm_req_send(bp, req);
7989 	if (rc)
7990 		return rc;
7991 
7992 	if (bp->hwrm_spec_code < 0x10601)
7993 		bp->hw_resc.resv_tx_rings = hwr->tx;
7994 
7995 	return bnxt_hwrm_get_rings(bp);
7996 }
7997 
7998 static int
bnxt_hwrm_reserve_vf_rings(struct bnxt * bp,struct bnxt_hw_rings * hwr)7999 bnxt_hwrm_reserve_vf_rings(struct bnxt *bp, struct bnxt_hw_rings *hwr)
8000 {
8001 	struct hwrm_func_vf_cfg_input *req;
8002 	int rc;
8003 
8004 	if (!BNXT_NEW_RM(bp)) {
8005 		bp->hw_resc.resv_tx_rings = hwr->tx;
8006 		return 0;
8007 	}
8008 
8009 	req = __bnxt_hwrm_reserve_vf_rings(bp, hwr);
8010 	if (!req)
8011 		return -ENOMEM;
8012 
8013 	rc = hwrm_req_send(bp, req);
8014 	if (rc)
8015 		return rc;
8016 
8017 	return bnxt_hwrm_get_rings(bp);
8018 }
8019 
bnxt_hwrm_reserve_rings(struct bnxt * bp,struct bnxt_hw_rings * hwr)8020 static int bnxt_hwrm_reserve_rings(struct bnxt *bp, struct bnxt_hw_rings *hwr)
8021 {
8022 	if (BNXT_PF(bp))
8023 		return bnxt_hwrm_reserve_pf_rings(bp, hwr);
8024 	else
8025 		return bnxt_hwrm_reserve_vf_rings(bp, hwr);
8026 }
8027 
bnxt_nq_rings_in_use(struct bnxt * bp)8028 int bnxt_nq_rings_in_use(struct bnxt *bp)
8029 {
8030 	return bp->cp_nr_rings + bnxt_get_ulp_msix_num(bp);
8031 }
8032 
bnxt_cp_rings_in_use(struct bnxt * bp)8033 static int bnxt_cp_rings_in_use(struct bnxt *bp)
8034 {
8035 	int cp;
8036 
8037 	if (!(bp->flags & BNXT_FLAG_CHIP_P5_PLUS))
8038 		return bnxt_nq_rings_in_use(bp);
8039 
8040 	cp = bp->tx_nr_rings + bp->rx_nr_rings;
8041 	return cp;
8042 }
8043 
bnxt_get_func_stat_ctxs(struct bnxt * bp)8044 static int bnxt_get_func_stat_ctxs(struct bnxt *bp)
8045 {
8046 	return bp->cp_nr_rings + bnxt_get_ulp_stat_ctxs(bp);
8047 }
8048 
bnxt_get_total_rss_ctxs(struct bnxt * bp,struct bnxt_hw_rings * hwr)8049 static int bnxt_get_total_rss_ctxs(struct bnxt *bp, struct bnxt_hw_rings *hwr)
8050 {
8051 	if (!hwr->grp)
8052 		return 0;
8053 	if (bp->flags & BNXT_FLAG_CHIP_P5_PLUS) {
8054 		int rss_ctx = bnxt_get_nr_rss_ctxs(bp, hwr->grp);
8055 
8056 		if (BNXT_SUPPORTS_NTUPLE_VNIC(bp))
8057 			rss_ctx *= hwr->vnic;
8058 		return rss_ctx;
8059 	}
8060 	if (BNXT_VF(bp))
8061 		return BNXT_VF_MAX_RSS_CTX;
8062 	if (!(bp->rss_cap & BNXT_RSS_CAP_NEW_RSS_CAP) && bnxt_rfs_supported(bp))
8063 		return hwr->grp + 1;
8064 	return 1;
8065 }
8066 
8067 /* Check if a default RSS map needs to be setup.  This function is only
8068  * used on older firmware that does not require reserving RX rings.
8069  */
bnxt_check_rss_tbl_no_rmgr(struct bnxt * bp)8070 static void bnxt_check_rss_tbl_no_rmgr(struct bnxt *bp)
8071 {
8072 	struct bnxt_hw_resc *hw_resc = &bp->hw_resc;
8073 
8074 	/* The RSS map is valid for RX rings set to resv_rx_rings */
8075 	if (hw_resc->resv_rx_rings != bp->rx_nr_rings) {
8076 		hw_resc->resv_rx_rings = bp->rx_nr_rings;
8077 		if (!netif_is_rxfh_configured(bp->dev))
8078 			bnxt_set_dflt_rss_indir_tbl(bp, NULL);
8079 	}
8080 }
8081 
bnxt_get_total_vnics(struct bnxt * bp,int rx_rings)8082 static int bnxt_get_total_vnics(struct bnxt *bp, int rx_rings)
8083 {
8084 	if (bp->flags & BNXT_FLAG_RFS) {
8085 		if (BNXT_SUPPORTS_NTUPLE_VNIC(bp))
8086 			return 2 + bp->num_rss_ctx;
8087 		if (!(bp->flags & BNXT_FLAG_CHIP_P5_PLUS))
8088 			return rx_rings + 1;
8089 	}
8090 	return 1;
8091 }
8092 
bnxt_get_total_resources(struct bnxt * bp,struct bnxt_hw_rings * hwr)8093 static void bnxt_get_total_resources(struct bnxt *bp, struct bnxt_hw_rings *hwr)
8094 {
8095 	hwr->cp = bnxt_nq_rings_in_use(bp);
8096 	hwr->cp_p5 = 0;
8097 	if (bp->flags & BNXT_FLAG_CHIP_P5_PLUS)
8098 		hwr->cp_p5 = bnxt_cp_rings_in_use(bp);
8099 	hwr->tx = bp->tx_nr_rings;
8100 	hwr->rx = bp->rx_nr_rings;
8101 	hwr->grp = hwr->rx;
8102 	hwr->vnic = bnxt_get_total_vnics(bp, hwr->rx);
8103 	hwr->rss_ctx = bnxt_get_total_rss_ctxs(bp, hwr);
8104 	if (bp->flags & BNXT_FLAG_AGG_RINGS)
8105 		hwr->rx <<= 1;
8106 	hwr->stat = bnxt_get_func_stat_ctxs(bp);
8107 }
8108 
bnxt_need_reserve_rings(struct bnxt * bp)8109 static bool bnxt_need_reserve_rings(struct bnxt *bp)
8110 {
8111 	struct bnxt_hw_resc *hw_resc = &bp->hw_resc;
8112 	struct bnxt_hw_rings hwr;
8113 
8114 	bnxt_get_total_resources(bp, &hwr);
8115 
8116 	/* Old firmware does not need RX ring reservations but we still
8117 	 * need to setup a default RSS map when needed.  With new firmware
8118 	 * we go through RX ring reservations first and then set up the
8119 	 * RSS map for the successfully reserved RX rings when needed.
8120 	 */
8121 	if (!BNXT_NEW_RM(bp))
8122 		bnxt_check_rss_tbl_no_rmgr(bp);
8123 
8124 	if (hw_resc->resv_tx_rings != hwr.tx && bp->hwrm_spec_code >= 0x10601)
8125 		return true;
8126 
8127 	if (!BNXT_NEW_RM(bp))
8128 		return false;
8129 
8130 	if (hw_resc->resv_rx_rings != hwr.rx ||
8131 	    hw_resc->resv_vnics != hwr.vnic ||
8132 	    hw_resc->resv_stat_ctxs != hwr.stat ||
8133 	    hw_resc->resv_rsscos_ctxs != hwr.rss_ctx ||
8134 	    (hw_resc->resv_hw_ring_grps != hwr.grp &&
8135 	     !(bp->flags & BNXT_FLAG_CHIP_P5_PLUS)))
8136 		return true;
8137 	if (bp->flags & BNXT_FLAG_CHIP_P5_PLUS) {
8138 		if (hw_resc->resv_cp_rings != hwr.cp_p5)
8139 			return true;
8140 	} else if (hw_resc->resv_cp_rings != hwr.cp) {
8141 		return true;
8142 	}
8143 	if ((bp->flags & BNXT_FLAG_CHIP_P5_PLUS) && BNXT_PF(bp) &&
8144 	    hw_resc->resv_irqs != hwr.cp)
8145 		return true;
8146 	return false;
8147 }
8148 
bnxt_copy_reserved_rings(struct bnxt * bp,struct bnxt_hw_rings * hwr)8149 static void bnxt_copy_reserved_rings(struct bnxt *bp, struct bnxt_hw_rings *hwr)
8150 {
8151 	struct bnxt_hw_resc *hw_resc = &bp->hw_resc;
8152 
8153 	hwr->tx = hw_resc->resv_tx_rings;
8154 	if (BNXT_NEW_RM(bp)) {
8155 		hwr->rx = hw_resc->resv_rx_rings;
8156 		hwr->cp = hw_resc->resv_irqs;
8157 		if (bp->flags & BNXT_FLAG_CHIP_P5_PLUS)
8158 			hwr->cp_p5 = hw_resc->resv_cp_rings;
8159 		hwr->grp = hw_resc->resv_hw_ring_grps;
8160 		hwr->vnic = hw_resc->resv_vnics;
8161 		hwr->stat = hw_resc->resv_stat_ctxs;
8162 		hwr->rss_ctx = hw_resc->resv_rsscos_ctxs;
8163 	}
8164 }
8165 
bnxt_rings_ok(struct bnxt * bp,struct bnxt_hw_rings * hwr)8166 static bool bnxt_rings_ok(struct bnxt *bp, struct bnxt_hw_rings *hwr)
8167 {
8168 	return hwr->tx && hwr->rx && hwr->cp && hwr->grp && hwr->vnic &&
8169 	       hwr->stat && (hwr->cp_p5 || !(bp->flags & BNXT_FLAG_CHIP_P5_PLUS));
8170 }
8171 
8172 static int bnxt_get_avail_msix(struct bnxt *bp, int num);
8173 
__bnxt_reserve_rings(struct bnxt * bp)8174 static int __bnxt_reserve_rings(struct bnxt *bp)
8175 {
8176 	struct bnxt_en_dev *edev = bp->edev[BNXT_AUXDEV_RDMA];
8177 	struct bnxt_hw_rings hwr = {0};
8178 	int rx_rings, old_rx_rings, rc;
8179 	int cp = bp->cp_nr_rings;
8180 	int ulp_msix = 0;
8181 	bool sh = false;
8182 	int tx_cp;
8183 
8184 	if (!bnxt_need_reserve_rings(bp))
8185 		return 0;
8186 
8187 	if (BNXT_NEW_RM(bp) && !bnxt_ulp_registered(edev)) {
8188 		ulp_msix = bnxt_get_avail_msix(bp, bp->ulp_num_msix_want);
8189 		if (!ulp_msix)
8190 			bnxt_set_ulp_stat_ctxs(bp, 0);
8191 		else
8192 			bnxt_set_dflt_ulp_stat_ctxs(bp);
8193 
8194 		if (ulp_msix > bp->ulp_num_msix_want)
8195 			ulp_msix = bp->ulp_num_msix_want;
8196 		hwr.cp = cp + ulp_msix;
8197 	} else {
8198 		hwr.cp = bnxt_nq_rings_in_use(bp);
8199 	}
8200 
8201 	hwr.tx = bp->tx_nr_rings;
8202 	hwr.rx = bp->rx_nr_rings;
8203 	if (bp->flags & BNXT_FLAG_SHARED_RINGS)
8204 		sh = true;
8205 	if (bp->flags & BNXT_FLAG_CHIP_P5_PLUS)
8206 		hwr.cp_p5 = hwr.rx + hwr.tx;
8207 
8208 	hwr.vnic = bnxt_get_total_vnics(bp, hwr.rx);
8209 
8210 	if (bp->flags & BNXT_FLAG_AGG_RINGS)
8211 		hwr.rx <<= 1;
8212 	hwr.grp = bp->rx_nr_rings;
8213 	hwr.rss_ctx = bnxt_get_total_rss_ctxs(bp, &hwr);
8214 	hwr.stat = bnxt_get_func_stat_ctxs(bp);
8215 	old_rx_rings = bp->hw_resc.resv_rx_rings;
8216 
8217 	rc = bnxt_hwrm_reserve_rings(bp, &hwr);
8218 	if (rc)
8219 		return rc;
8220 
8221 	bnxt_copy_reserved_rings(bp, &hwr);
8222 
8223 	rx_rings = hwr.rx;
8224 	if (bp->flags & BNXT_FLAG_AGG_RINGS) {
8225 		if (hwr.rx >= 2) {
8226 			rx_rings = hwr.rx >> 1;
8227 		} else {
8228 			if (netif_running(bp->dev))
8229 				return -ENOMEM;
8230 
8231 			bp->flags &= ~BNXT_FLAG_AGG_RINGS;
8232 			bp->flags |= BNXT_FLAG_NO_AGG_RINGS;
8233 			bp->dev->hw_features &= ~NETIF_F_LRO;
8234 			bp->dev->features &= ~NETIF_F_LRO;
8235 			bnxt_set_ring_params(bp);
8236 		}
8237 	}
8238 	rx_rings = min_t(int, rx_rings, hwr.grp);
8239 	hwr.cp = min_t(int, hwr.cp, bp->cp_nr_rings);
8240 	if (bnxt_ulp_registered(edev) && hwr.stat > bnxt_get_ulp_stat_ctxs(bp))
8241 		hwr.stat -= bnxt_get_ulp_stat_ctxs(bp);
8242 	hwr.cp = min_t(int, hwr.cp, hwr.stat);
8243 	rc = bnxt_trim_rings(bp, &rx_rings, &hwr.tx, hwr.cp, sh);
8244 	if (bp->flags & BNXT_FLAG_AGG_RINGS)
8245 		hwr.rx = rx_rings << 1;
8246 	tx_cp = bnxt_num_tx_to_cp(bp, hwr.tx);
8247 	hwr.cp = sh ? max_t(int, tx_cp, rx_rings) : tx_cp + rx_rings;
8248 	if (hwr.tx != bp->tx_nr_rings) {
8249 		netdev_warn(bp->dev,
8250 			    "Able to reserve only %d out of %d requested TX rings\n",
8251 			    hwr.tx, bp->tx_nr_rings);
8252 	}
8253 	bp->tx_nr_rings = hwr.tx;
8254 
8255 	/* If we cannot reserve all the RX rings, reset the RSS map only
8256 	 * if absolutely necessary
8257 	 */
8258 	if (rx_rings != bp->rx_nr_rings) {
8259 		netdev_warn(bp->dev, "Able to reserve only %d out of %d requested RX rings\n",
8260 			    rx_rings, bp->rx_nr_rings);
8261 		if (netif_is_rxfh_configured(bp->dev) &&
8262 		    (bnxt_get_nr_rss_ctxs(bp, bp->rx_nr_rings) !=
8263 		     bnxt_get_nr_rss_ctxs(bp, rx_rings) ||
8264 		     bnxt_get_max_rss_ring(bp) >= rx_rings)) {
8265 			ethtool_rxfh_indir_lost(bp->dev);
8266 		}
8267 	}
8268 	bp->rx_nr_rings = rx_rings;
8269 	bp->cp_nr_rings = hwr.cp;
8270 
8271 	/* Fall back if we cannot reserve enough HW RSS contexts */
8272 	if ((bp->rss_cap & BNXT_RSS_CAP_LARGE_RSS_CTX) &&
8273 	    hwr.rss_ctx < bnxt_get_total_rss_ctxs(bp, &hwr))
8274 		bp->rss_cap &= ~BNXT_RSS_CAP_LARGE_RSS_CTX;
8275 
8276 	if (!bnxt_rings_ok(bp, &hwr))
8277 		return -ENOMEM;
8278 
8279 	if (old_rx_rings != bp->hw_resc.resv_rx_rings &&
8280 	    !netif_is_rxfh_configured(bp->dev))
8281 		bnxt_set_dflt_rss_indir_tbl(bp, NULL);
8282 
8283 	if (!bnxt_ulp_registered(edev) && BNXT_NEW_RM(bp)) {
8284 		int resv_msix, resv_ctx, ulp_ctxs;
8285 		struct bnxt_hw_resc *hw_resc;
8286 
8287 		hw_resc = &bp->hw_resc;
8288 		resv_msix = hw_resc->resv_irqs - bp->cp_nr_rings;
8289 		ulp_msix = min_t(int, resv_msix, ulp_msix);
8290 		bnxt_set_ulp_msix_num(bp, ulp_msix);
8291 		resv_ctx = hw_resc->resv_stat_ctxs  - bp->cp_nr_rings;
8292 		ulp_ctxs = min(resv_ctx, bnxt_get_ulp_stat_ctxs(bp));
8293 		bnxt_set_ulp_stat_ctxs(bp, ulp_ctxs);
8294 	}
8295 
8296 	return rc;
8297 }
8298 
bnxt_hwrm_check_vf_rings(struct bnxt * bp,struct bnxt_hw_rings * hwr)8299 static int bnxt_hwrm_check_vf_rings(struct bnxt *bp, struct bnxt_hw_rings *hwr)
8300 {
8301 	struct hwrm_func_vf_cfg_input *req;
8302 	u32 flags;
8303 
8304 	if (!BNXT_NEW_RM(bp))
8305 		return 0;
8306 
8307 	req = __bnxt_hwrm_reserve_vf_rings(bp, hwr);
8308 	flags = FUNC_VF_CFG_REQ_FLAGS_TX_ASSETS_TEST |
8309 		FUNC_VF_CFG_REQ_FLAGS_RX_ASSETS_TEST |
8310 		FUNC_VF_CFG_REQ_FLAGS_CMPL_ASSETS_TEST |
8311 		FUNC_VF_CFG_REQ_FLAGS_STAT_CTX_ASSETS_TEST |
8312 		FUNC_VF_CFG_REQ_FLAGS_VNIC_ASSETS_TEST |
8313 		FUNC_VF_CFG_REQ_FLAGS_RSSCOS_CTX_ASSETS_TEST;
8314 	if (!(bp->flags & BNXT_FLAG_CHIP_P5_PLUS))
8315 		flags |= FUNC_VF_CFG_REQ_FLAGS_RING_GRP_ASSETS_TEST;
8316 
8317 	req->flags = cpu_to_le32(flags);
8318 	return hwrm_req_send_silent(bp, req);
8319 }
8320 
bnxt_hwrm_check_pf_rings(struct bnxt * bp,struct bnxt_hw_rings * hwr)8321 static int bnxt_hwrm_check_pf_rings(struct bnxt *bp, struct bnxt_hw_rings *hwr)
8322 {
8323 	struct hwrm_func_cfg_input *req;
8324 	u32 flags;
8325 
8326 	req = __bnxt_hwrm_reserve_pf_rings(bp, hwr);
8327 	flags = FUNC_CFG_REQ_FLAGS_TX_ASSETS_TEST;
8328 	if (BNXT_NEW_RM(bp)) {
8329 		flags |= FUNC_CFG_REQ_FLAGS_RX_ASSETS_TEST |
8330 			 FUNC_CFG_REQ_FLAGS_CMPL_ASSETS_TEST |
8331 			 FUNC_CFG_REQ_FLAGS_STAT_CTX_ASSETS_TEST |
8332 			 FUNC_CFG_REQ_FLAGS_VNIC_ASSETS_TEST;
8333 		if (bp->flags & BNXT_FLAG_CHIP_P5_PLUS)
8334 			flags |= FUNC_CFG_REQ_FLAGS_RSSCOS_CTX_ASSETS_TEST |
8335 				 FUNC_CFG_REQ_FLAGS_NQ_ASSETS_TEST;
8336 		else
8337 			flags |= FUNC_CFG_REQ_FLAGS_RING_GRP_ASSETS_TEST;
8338 	}
8339 
8340 	req->flags = cpu_to_le32(flags);
8341 	return hwrm_req_send_silent(bp, req);
8342 }
8343 
bnxt_hwrm_check_rings(struct bnxt * bp,struct bnxt_hw_rings * hwr)8344 static int bnxt_hwrm_check_rings(struct bnxt *bp, struct bnxt_hw_rings *hwr)
8345 {
8346 	if (bp->hwrm_spec_code < 0x10801)
8347 		return 0;
8348 
8349 	if (BNXT_PF(bp))
8350 		return bnxt_hwrm_check_pf_rings(bp, hwr);
8351 
8352 	return bnxt_hwrm_check_vf_rings(bp, hwr);
8353 }
8354 
bnxt_hwrm_coal_params_qcaps(struct bnxt * bp)8355 static void bnxt_hwrm_coal_params_qcaps(struct bnxt *bp)
8356 {
8357 	struct bnxt_coal_cap *coal_cap = &bp->coal_cap;
8358 	struct hwrm_ring_aggint_qcaps_output *resp;
8359 	struct hwrm_ring_aggint_qcaps_input *req;
8360 	int rc;
8361 
8362 	coal_cap->cmpl_params = BNXT_LEGACY_COAL_CMPL_PARAMS;
8363 	coal_cap->num_cmpl_dma_aggr_max = 63;
8364 	coal_cap->num_cmpl_dma_aggr_during_int_max = 63;
8365 	coal_cap->cmpl_aggr_dma_tmr_max = 65535;
8366 	coal_cap->cmpl_aggr_dma_tmr_during_int_max = 65535;
8367 	coal_cap->int_lat_tmr_min_max = 65535;
8368 	coal_cap->int_lat_tmr_max_max = 65535;
8369 	coal_cap->num_cmpl_aggr_int_max = 65535;
8370 	coal_cap->timer_units = 80;
8371 
8372 	if (bp->hwrm_spec_code < 0x10902)
8373 		return;
8374 
8375 	if (hwrm_req_init(bp, req, HWRM_RING_AGGINT_QCAPS))
8376 		return;
8377 
8378 	resp = hwrm_req_hold(bp, req);
8379 	rc = hwrm_req_send_silent(bp, req);
8380 	if (!rc) {
8381 		coal_cap->cmpl_params = le32_to_cpu(resp->cmpl_params);
8382 		coal_cap->nq_params = le32_to_cpu(resp->nq_params);
8383 		coal_cap->num_cmpl_dma_aggr_max =
8384 			le16_to_cpu(resp->num_cmpl_dma_aggr_max);
8385 		coal_cap->num_cmpl_dma_aggr_during_int_max =
8386 			le16_to_cpu(resp->num_cmpl_dma_aggr_during_int_max);
8387 		coal_cap->cmpl_aggr_dma_tmr_max =
8388 			le16_to_cpu(resp->cmpl_aggr_dma_tmr_max);
8389 		coal_cap->cmpl_aggr_dma_tmr_during_int_max =
8390 			le16_to_cpu(resp->cmpl_aggr_dma_tmr_during_int_max);
8391 		coal_cap->int_lat_tmr_min_max =
8392 			le16_to_cpu(resp->int_lat_tmr_min_max);
8393 		coal_cap->int_lat_tmr_max_max =
8394 			le16_to_cpu(resp->int_lat_tmr_max_max);
8395 		coal_cap->num_cmpl_aggr_int_max =
8396 			le16_to_cpu(resp->num_cmpl_aggr_int_max);
8397 		coal_cap->timer_units = le16_to_cpu(resp->timer_units);
8398 	}
8399 	hwrm_req_drop(bp, req);
8400 }
8401 
bnxt_usec_to_coal_tmr(struct bnxt * bp,u16 usec)8402 static u16 bnxt_usec_to_coal_tmr(struct bnxt *bp, u16 usec)
8403 {
8404 	struct bnxt_coal_cap *coal_cap = &bp->coal_cap;
8405 
8406 	return usec * 1000 / coal_cap->timer_units;
8407 }
8408 
bnxt_hwrm_set_coal_params(struct bnxt * bp,struct bnxt_coal * hw_coal,struct hwrm_ring_cmpl_ring_cfg_aggint_params_input * req)8409 static void bnxt_hwrm_set_coal_params(struct bnxt *bp,
8410 	struct bnxt_coal *hw_coal,
8411 	struct hwrm_ring_cmpl_ring_cfg_aggint_params_input *req)
8412 {
8413 	struct bnxt_coal_cap *coal_cap = &bp->coal_cap;
8414 	u16 val, tmr, max, flags = hw_coal->flags;
8415 	u32 cmpl_params = coal_cap->cmpl_params;
8416 
8417 	max = hw_coal->bufs_per_record * 128;
8418 	if (hw_coal->budget)
8419 		max = hw_coal->bufs_per_record * hw_coal->budget;
8420 	max = min_t(u16, max, coal_cap->num_cmpl_aggr_int_max);
8421 
8422 	val = clamp_t(u16, hw_coal->coal_bufs, 1, max);
8423 	req->num_cmpl_aggr_int = cpu_to_le16(val);
8424 
8425 	val = min_t(u16, val, coal_cap->num_cmpl_dma_aggr_max);
8426 	req->num_cmpl_dma_aggr = cpu_to_le16(val);
8427 
8428 	val = clamp_t(u16, hw_coal->coal_bufs_irq, 1,
8429 		      coal_cap->num_cmpl_dma_aggr_during_int_max);
8430 	req->num_cmpl_dma_aggr_during_int = cpu_to_le16(val);
8431 
8432 	tmr = bnxt_usec_to_coal_tmr(bp, hw_coal->coal_ticks);
8433 	tmr = clamp_t(u16, tmr, 1, coal_cap->int_lat_tmr_max_max);
8434 	req->int_lat_tmr_max = cpu_to_le16(tmr);
8435 
8436 	/* min timer set to 1/2 of interrupt timer */
8437 	if (cmpl_params & RING_AGGINT_QCAPS_RESP_CMPL_PARAMS_INT_LAT_TMR_MIN) {
8438 		val = tmr / 2;
8439 		val = clamp_t(u16, val, 1, coal_cap->int_lat_tmr_min_max);
8440 		req->int_lat_tmr_min = cpu_to_le16(val);
8441 		req->enables |= cpu_to_le16(BNXT_COAL_CMPL_MIN_TMR_ENABLE);
8442 	}
8443 
8444 	/* buf timer set to 1/4 of interrupt timer */
8445 	val = clamp_t(u16, tmr / 4, 1, coal_cap->cmpl_aggr_dma_tmr_max);
8446 	req->cmpl_aggr_dma_tmr = cpu_to_le16(val);
8447 
8448 	if (cmpl_params &
8449 	    RING_AGGINT_QCAPS_RESP_CMPL_PARAMS_NUM_CMPL_DMA_AGGR_DURING_INT) {
8450 		tmr = bnxt_usec_to_coal_tmr(bp, hw_coal->coal_ticks_irq);
8451 		val = clamp_t(u16, tmr, 1,
8452 			      coal_cap->cmpl_aggr_dma_tmr_during_int_max);
8453 		req->cmpl_aggr_dma_tmr_during_int = cpu_to_le16(val);
8454 		req->enables |=
8455 			cpu_to_le16(BNXT_COAL_CMPL_AGGR_TMR_DURING_INT_ENABLE);
8456 	}
8457 
8458 	if ((cmpl_params & RING_AGGINT_QCAPS_RESP_CMPL_PARAMS_RING_IDLE) &&
8459 	    hw_coal->idle_thresh && hw_coal->coal_ticks < hw_coal->idle_thresh)
8460 		flags |= RING_CMPL_RING_CFG_AGGINT_PARAMS_REQ_FLAGS_RING_IDLE;
8461 	req->flags = cpu_to_le16(flags);
8462 	req->enables |= cpu_to_le16(BNXT_COAL_CMPL_ENABLES);
8463 }
8464 
__bnxt_hwrm_set_coal_nq(struct bnxt * bp,struct bnxt_napi * bnapi,struct bnxt_coal * hw_coal)8465 static int __bnxt_hwrm_set_coal_nq(struct bnxt *bp, struct bnxt_napi *bnapi,
8466 				   struct bnxt_coal *hw_coal)
8467 {
8468 	struct hwrm_ring_cmpl_ring_cfg_aggint_params_input *req;
8469 	struct bnxt_cp_ring_info *cpr = &bnapi->cp_ring;
8470 	struct bnxt_coal_cap *coal_cap = &bp->coal_cap;
8471 	u32 nq_params = coal_cap->nq_params;
8472 	u16 tmr;
8473 	int rc;
8474 
8475 	if (!(nq_params & RING_AGGINT_QCAPS_RESP_NQ_PARAMS_INT_LAT_TMR_MIN))
8476 		return 0;
8477 
8478 	rc = hwrm_req_init(bp, req, HWRM_RING_CMPL_RING_CFG_AGGINT_PARAMS);
8479 	if (rc)
8480 		return rc;
8481 
8482 	req->ring_id = cpu_to_le16(cpr->cp_ring_struct.fw_ring_id);
8483 	req->flags =
8484 		cpu_to_le16(RING_CMPL_RING_CFG_AGGINT_PARAMS_REQ_FLAGS_IS_NQ);
8485 
8486 	tmr = bnxt_usec_to_coal_tmr(bp, hw_coal->coal_ticks) / 2;
8487 	tmr = clamp_t(u16, tmr, 1, coal_cap->int_lat_tmr_min_max);
8488 	req->int_lat_tmr_min = cpu_to_le16(tmr);
8489 	req->enables |= cpu_to_le16(BNXT_COAL_CMPL_MIN_TMR_ENABLE);
8490 	return hwrm_req_send(bp, req);
8491 }
8492 
bnxt_hwrm_set_ring_coal(struct bnxt * bp,struct bnxt_napi * bnapi)8493 int bnxt_hwrm_set_ring_coal(struct bnxt *bp, struct bnxt_napi *bnapi)
8494 {
8495 	struct hwrm_ring_cmpl_ring_cfg_aggint_params_input *req_rx;
8496 	struct bnxt_cp_ring_info *cpr = &bnapi->cp_ring;
8497 	struct bnxt_coal coal;
8498 	int rc;
8499 
8500 	/* Tick values in micro seconds.
8501 	 * 1 coal_buf x bufs_per_record = 1 completion record.
8502 	 */
8503 	memcpy(&coal, &bp->rx_coal, sizeof(struct bnxt_coal));
8504 
8505 	coal.coal_ticks = cpr->rx_ring_coal.coal_ticks;
8506 	coal.coal_bufs = cpr->rx_ring_coal.coal_bufs;
8507 
8508 	if (!bnapi->rx_ring)
8509 		return -ENODEV;
8510 
8511 	rc = hwrm_req_init(bp, req_rx, HWRM_RING_CMPL_RING_CFG_AGGINT_PARAMS);
8512 	if (rc)
8513 		return rc;
8514 
8515 	bnxt_hwrm_set_coal_params(bp, &coal, req_rx);
8516 
8517 	req_rx->ring_id = cpu_to_le16(bnxt_cp_ring_for_rx(bp, bnapi->rx_ring));
8518 
8519 	return hwrm_req_send(bp, req_rx);
8520 }
8521 
8522 static int
bnxt_hwrm_set_rx_coal(struct bnxt * bp,struct bnxt_napi * bnapi,struct hwrm_ring_cmpl_ring_cfg_aggint_params_input * req)8523 bnxt_hwrm_set_rx_coal(struct bnxt *bp, struct bnxt_napi *bnapi,
8524 		      struct hwrm_ring_cmpl_ring_cfg_aggint_params_input *req)
8525 {
8526 	u16 ring_id = bnxt_cp_ring_for_rx(bp, bnapi->rx_ring);
8527 
8528 	req->ring_id = cpu_to_le16(ring_id);
8529 	return hwrm_req_send(bp, req);
8530 }
8531 
8532 static int
bnxt_hwrm_set_tx_coal(struct bnxt * bp,struct bnxt_napi * bnapi,struct hwrm_ring_cmpl_ring_cfg_aggint_params_input * req)8533 bnxt_hwrm_set_tx_coal(struct bnxt *bp, struct bnxt_napi *bnapi,
8534 		      struct hwrm_ring_cmpl_ring_cfg_aggint_params_input *req)
8535 {
8536 	struct bnxt_tx_ring_info *txr;
8537 	int i, rc;
8538 
8539 	bnxt_for_each_napi_tx(i, bnapi, txr) {
8540 		u16 ring_id;
8541 
8542 		ring_id = bnxt_cp_ring_for_tx(bp, txr);
8543 		req->ring_id = cpu_to_le16(ring_id);
8544 		rc = hwrm_req_send(bp, req);
8545 		if (rc)
8546 			return rc;
8547 		if (!(bp->flags & BNXT_FLAG_CHIP_P5_PLUS))
8548 			return 0;
8549 	}
8550 	return 0;
8551 }
8552 
bnxt_hwrm_set_coal(struct bnxt * bp)8553 int bnxt_hwrm_set_coal(struct bnxt *bp)
8554 {
8555 	struct hwrm_ring_cmpl_ring_cfg_aggint_params_input *req_rx, *req_tx;
8556 	int i, rc;
8557 
8558 	rc = hwrm_req_init(bp, req_rx, HWRM_RING_CMPL_RING_CFG_AGGINT_PARAMS);
8559 	if (rc)
8560 		return rc;
8561 
8562 	rc = hwrm_req_init(bp, req_tx, HWRM_RING_CMPL_RING_CFG_AGGINT_PARAMS);
8563 	if (rc) {
8564 		hwrm_req_drop(bp, req_rx);
8565 		return rc;
8566 	}
8567 
8568 	bnxt_hwrm_set_coal_params(bp, &bp->rx_coal, req_rx);
8569 	bnxt_hwrm_set_coal_params(bp, &bp->tx_coal, req_tx);
8570 
8571 	hwrm_req_hold(bp, req_rx);
8572 	hwrm_req_hold(bp, req_tx);
8573 	for (i = 0; i < bp->cp_nr_rings; i++) {
8574 		struct bnxt_napi *bnapi = bp->bnapi[i];
8575 		struct bnxt_coal *hw_coal;
8576 
8577 		if (!bnapi->rx_ring)
8578 			rc = bnxt_hwrm_set_tx_coal(bp, bnapi, req_tx);
8579 		else
8580 			rc = bnxt_hwrm_set_rx_coal(bp, bnapi, req_rx);
8581 		if (rc)
8582 			break;
8583 
8584 		if (!(bp->flags & BNXT_FLAG_CHIP_P5_PLUS))
8585 			continue;
8586 
8587 		if (bnapi->rx_ring && bnapi->tx_ring[0]) {
8588 			rc = bnxt_hwrm_set_tx_coal(bp, bnapi, req_tx);
8589 			if (rc)
8590 				break;
8591 		}
8592 		if (bnapi->rx_ring)
8593 			hw_coal = &bp->rx_coal;
8594 		else
8595 			hw_coal = &bp->tx_coal;
8596 		__bnxt_hwrm_set_coal_nq(bp, bnapi, hw_coal);
8597 	}
8598 	hwrm_req_drop(bp, req_rx);
8599 	hwrm_req_drop(bp, req_tx);
8600 	return rc;
8601 }
8602 
bnxt_hwrm_stat_ctx_free(struct bnxt * bp)8603 static void bnxt_hwrm_stat_ctx_free(struct bnxt *bp)
8604 {
8605 	struct hwrm_stat_ctx_clr_stats_input *req0 = NULL;
8606 	struct hwrm_stat_ctx_free_input *req;
8607 	int i;
8608 
8609 	if (!bp->bnapi)
8610 		return;
8611 
8612 	if (BNXT_CHIP_TYPE_NITRO_A0(bp))
8613 		return;
8614 
8615 	if (hwrm_req_init(bp, req, HWRM_STAT_CTX_FREE))
8616 		return;
8617 	if (BNXT_FW_MAJ(bp) <= 20) {
8618 		if (hwrm_req_init(bp, req0, HWRM_STAT_CTX_CLR_STATS)) {
8619 			hwrm_req_drop(bp, req);
8620 			return;
8621 		}
8622 		hwrm_req_hold(bp, req0);
8623 	}
8624 	hwrm_req_hold(bp, req);
8625 	for (i = 0; i < bp->cp_nr_rings; i++) {
8626 		struct bnxt_napi *bnapi = bp->bnapi[i];
8627 		struct bnxt_cp_ring_info *cpr = &bnapi->cp_ring;
8628 
8629 		if (cpr->hw_stats_ctx_id != INVALID_STATS_CTX_ID) {
8630 			req->stat_ctx_id = cpu_to_le32(cpr->hw_stats_ctx_id);
8631 			if (req0) {
8632 				req0->stat_ctx_id = req->stat_ctx_id;
8633 				hwrm_req_send(bp, req0);
8634 			}
8635 			hwrm_req_send(bp, req);
8636 
8637 			cpr->hw_stats_ctx_id = INVALID_STATS_CTX_ID;
8638 		}
8639 	}
8640 	hwrm_req_drop(bp, req);
8641 	if (req0)
8642 		hwrm_req_drop(bp, req0);
8643 }
8644 
bnxt_hwrm_stat_ctx_alloc(struct bnxt * bp)8645 static int bnxt_hwrm_stat_ctx_alloc(struct bnxt *bp)
8646 {
8647 	struct hwrm_stat_ctx_alloc_output *resp;
8648 	struct hwrm_stat_ctx_alloc_input *req;
8649 	int rc, i;
8650 
8651 	if (BNXT_CHIP_TYPE_NITRO_A0(bp))
8652 		return 0;
8653 
8654 	rc = hwrm_req_init(bp, req, HWRM_STAT_CTX_ALLOC);
8655 	if (rc)
8656 		return rc;
8657 
8658 	req->stats_dma_length = cpu_to_le16(bp->hw_ring_stats_size);
8659 	req->update_period_ms = cpu_to_le32(bp->stats_coal_ticks / 1000);
8660 
8661 	resp = hwrm_req_hold(bp, req);
8662 	for (i = 0; i < bp->cp_nr_rings; i++) {
8663 		struct bnxt_napi *bnapi = bp->bnapi[i];
8664 		struct bnxt_cp_ring_info *cpr = &bnapi->cp_ring;
8665 
8666 		req->stats_dma_addr = cpu_to_le64(cpr->stats.hw_stats_map);
8667 
8668 		rc = hwrm_req_send(bp, req);
8669 		if (rc)
8670 			break;
8671 
8672 		cpr->hw_stats_ctx_id = le32_to_cpu(resp->stat_ctx_id);
8673 
8674 		bp->grp_info[i].fw_stats_ctx = cpr->hw_stats_ctx_id;
8675 	}
8676 	hwrm_req_drop(bp, req);
8677 	return rc;
8678 }
8679 
bnxt_hwrm_func_qcfg(struct bnxt * bp)8680 static int bnxt_hwrm_func_qcfg(struct bnxt *bp)
8681 {
8682 	struct hwrm_func_qcfg_output *resp;
8683 	struct hwrm_func_qcfg_input *req;
8684 	u16 flags;
8685 	int rc;
8686 
8687 	rc = hwrm_req_init(bp, req, HWRM_FUNC_QCFG);
8688 	if (rc)
8689 		return rc;
8690 
8691 	req->fid = cpu_to_le16(0xffff);
8692 	resp = hwrm_req_hold(bp, req);
8693 	rc = hwrm_req_send(bp, req);
8694 	if (rc)
8695 		goto func_qcfg_exit;
8696 
8697 	flags = le16_to_cpu(resp->flags);
8698 #ifdef CONFIG_BNXT_SRIOV
8699 	if (BNXT_VF(bp)) {
8700 		struct bnxt_vf_info *vf = &bp->vf;
8701 
8702 		vf->vlan = le16_to_cpu(resp->vlan) & VLAN_VID_MASK;
8703 		if (flags & FUNC_QCFG_RESP_FLAGS_TRUSTED_VF)
8704 			vf->flags |= BNXT_VF_TRUST;
8705 		else
8706 			vf->flags &= ~BNXT_VF_TRUST;
8707 	} else {
8708 		bp->pf.registered_vfs = le16_to_cpu(resp->registered_vfs);
8709 	}
8710 #endif
8711 	if (flags & (FUNC_QCFG_RESP_FLAGS_FW_DCBX_AGENT_ENABLED |
8712 		     FUNC_QCFG_RESP_FLAGS_FW_LLDP_AGENT_ENABLED)) {
8713 		bp->fw_cap |= BNXT_FW_CAP_LLDP_AGENT;
8714 		if (flags & FUNC_QCFG_RESP_FLAGS_FW_DCBX_AGENT_ENABLED)
8715 			bp->fw_cap |= BNXT_FW_CAP_DCBX_AGENT;
8716 	}
8717 	if (BNXT_PF(bp) && (flags & FUNC_QCFG_RESP_FLAGS_MULTI_HOST))
8718 		bp->flags |= BNXT_FLAG_MULTI_HOST;
8719 
8720 	if (flags & FUNC_QCFG_RESP_FLAGS_RING_MONITOR_ENABLED)
8721 		bp->fw_cap |= BNXT_FW_CAP_RING_MONITOR;
8722 
8723 	if (flags & FUNC_QCFG_RESP_FLAGS_ENABLE_RDMA_SRIOV)
8724 		bp->fw_cap |= BNXT_FW_CAP_ENABLE_RDMA_SRIOV;
8725 	if (resp->roce_bidi_opt_mode &
8726 	    FUNC_QCFG_RESP_ROCE_BIDI_OPT_MODE_DEDICATED)
8727 		bp->cos0_cos1_shared = 1;
8728 	else
8729 		bp->cos0_cos1_shared = 0;
8730 
8731 	switch (resp->port_partition_type) {
8732 	case FUNC_QCFG_RESP_PORT_PARTITION_TYPE_NPAR1_0:
8733 	case FUNC_QCFG_RESP_PORT_PARTITION_TYPE_NPAR1_2:
8734 	case FUNC_QCFG_RESP_PORT_PARTITION_TYPE_NPAR1_5:
8735 	case FUNC_QCFG_RESP_PORT_PARTITION_TYPE_NPAR2_0:
8736 		bp->port_partition_type = resp->port_partition_type;
8737 		break;
8738 	}
8739 	if (bp->hwrm_spec_code < 0x10707 ||
8740 	    resp->evb_mode == FUNC_QCFG_RESP_EVB_MODE_VEB)
8741 		bp->br_mode = BRIDGE_MODE_VEB;
8742 	else if (resp->evb_mode == FUNC_QCFG_RESP_EVB_MODE_VEPA)
8743 		bp->br_mode = BRIDGE_MODE_VEPA;
8744 	else
8745 		bp->br_mode = BRIDGE_MODE_UNDEF;
8746 
8747 	bp->max_mtu = le16_to_cpu(resp->max_mtu_configured);
8748 	if (!bp->max_mtu)
8749 		bp->max_mtu = BNXT_MAX_MTU;
8750 
8751 	if (bp->db_size)
8752 		goto func_qcfg_exit;
8753 
8754 	bp->db_offset = le16_to_cpu(resp->legacy_l2_db_size_kb) * 1024;
8755 	if (BNXT_CHIP_P5(bp)) {
8756 		if (BNXT_PF(bp))
8757 			bp->db_offset = DB_PF_OFFSET_P5;
8758 		else
8759 			bp->db_offset = DB_VF_OFFSET_P5;
8760 	}
8761 	bp->db_size = PAGE_ALIGN(le16_to_cpu(resp->l2_doorbell_bar_size_kb) *
8762 				 1024);
8763 	if (!bp->db_size || bp->db_size > pci_resource_len(bp->pdev, 2) ||
8764 	    bp->db_size <= bp->db_offset)
8765 		bp->db_size = pci_resource_len(bp->pdev, 2);
8766 
8767 func_qcfg_exit:
8768 	hwrm_req_drop(bp, req);
8769 	return rc;
8770 }
8771 
bnxt_init_ctx_initializer(struct bnxt_ctx_mem_type * ctxm,u8 init_val,u8 init_offset,bool init_mask_set)8772 static void bnxt_init_ctx_initializer(struct bnxt_ctx_mem_type *ctxm,
8773 				      u8 init_val, u8 init_offset,
8774 				      bool init_mask_set)
8775 {
8776 	ctxm->init_value = init_val;
8777 	ctxm->init_offset = BNXT_CTX_INIT_INVALID_OFFSET;
8778 	if (init_mask_set)
8779 		ctxm->init_offset = init_offset * 4;
8780 	else
8781 		ctxm->init_value = 0;
8782 }
8783 
bnxt_alloc_all_ctx_pg_info(struct bnxt * bp,int ctx_max)8784 static int bnxt_alloc_all_ctx_pg_info(struct bnxt *bp, int ctx_max)
8785 {
8786 	struct bnxt_ctx_mem_info *ctx = bp->ctx;
8787 	u16 type;
8788 
8789 	for (type = 0; type < ctx_max; type++) {
8790 		struct bnxt_ctx_mem_type *ctxm = &ctx->ctx_arr[type];
8791 		int n = 1;
8792 
8793 		if (!ctxm->max_entries || ctxm->pg_info)
8794 			continue;
8795 
8796 		if (ctxm->instance_bmap)
8797 			n = hweight32(ctxm->instance_bmap);
8798 		ctxm->pg_info = kzalloc_objs(*ctxm->pg_info, n);
8799 		if (!ctxm->pg_info)
8800 			return -ENOMEM;
8801 	}
8802 	return 0;
8803 }
8804 
8805 static void bnxt_free_one_ctx_mem(struct bnxt *bp,
8806 				  struct bnxt_ctx_mem_type *ctxm, bool force);
8807 
8808 #define BNXT_CTX_INIT_VALID(flags)	\
8809 	(!!((flags) &			\
8810 	    FUNC_BACKING_STORE_QCAPS_V2_RESP_FLAGS_ENABLE_CTX_KIND_INIT))
8811 
bnxt_hwrm_func_backing_store_qcaps_v2(struct bnxt * bp)8812 static int bnxt_hwrm_func_backing_store_qcaps_v2(struct bnxt *bp)
8813 {
8814 	struct hwrm_func_backing_store_qcaps_v2_output *resp;
8815 	struct hwrm_func_backing_store_qcaps_v2_input *req;
8816 	struct bnxt_ctx_mem_info *ctx = bp->ctx;
8817 	u16 type, next_type = 0;
8818 	int rc;
8819 
8820 	rc = hwrm_req_init(bp, req, HWRM_FUNC_BACKING_STORE_QCAPS_V2);
8821 	if (rc)
8822 		return rc;
8823 
8824 	if (!ctx) {
8825 		ctx = kzalloc_obj(*ctx);
8826 		if (!ctx)
8827 			return -ENOMEM;
8828 		bp->ctx = ctx;
8829 	}
8830 
8831 	resp = hwrm_req_hold(bp, req);
8832 
8833 	for (type = 0; type < BNXT_CTX_V2_MAX; type = next_type) {
8834 		struct bnxt_ctx_mem_type *ctxm = &ctx->ctx_arr[type];
8835 		u8 init_val, init_off, i;
8836 		u32 max_entries;
8837 		u16 entry_size;
8838 		__le32 *p;
8839 		u32 flags;
8840 
8841 		req->type = cpu_to_le16(type);
8842 		rc = hwrm_req_send(bp, req);
8843 		if (rc)
8844 			goto ctx_done;
8845 		flags = le32_to_cpu(resp->flags);
8846 		next_type = le16_to_cpu(resp->next_valid_type);
8847 		if (!(flags & BNXT_CTX_MEM_TYPE_VALID)) {
8848 			bnxt_free_one_ctx_mem(bp, ctxm, true);
8849 			continue;
8850 		}
8851 		entry_size = le16_to_cpu(resp->entry_size);
8852 		max_entries = le32_to_cpu(resp->max_num_entries);
8853 		if (ctxm->mem_valid) {
8854 			if (!(flags & BNXT_CTX_MEM_PERSIST) ||
8855 			    ctxm->entry_size != entry_size ||
8856 			    ctxm->max_entries != max_entries)
8857 				bnxt_free_one_ctx_mem(bp, ctxm, true);
8858 			else
8859 				continue;
8860 		}
8861 		ctxm->type = type;
8862 		ctxm->entry_size = entry_size;
8863 		ctxm->flags = flags;
8864 		ctxm->instance_bmap = le32_to_cpu(resp->instance_bit_map);
8865 		ctxm->entry_multiple = resp->entry_multiple;
8866 		ctxm->max_entries = max_entries;
8867 		ctxm->min_entries = le32_to_cpu(resp->min_num_entries);
8868 		init_val = resp->ctx_init_value;
8869 		init_off = resp->ctx_init_offset;
8870 		bnxt_init_ctx_initializer(ctxm, init_val, init_off,
8871 					  BNXT_CTX_INIT_VALID(flags));
8872 		ctxm->split_entry_cnt = min_t(u8, resp->subtype_valid_cnt,
8873 					      BNXT_MAX_SPLIT_ENTRY);
8874 		for (i = 0, p = &resp->split_entry_0; i < ctxm->split_entry_cnt;
8875 		     i++, p++)
8876 			ctxm->split[i] = le32_to_cpu(*p);
8877 	}
8878 	rc = bnxt_alloc_all_ctx_pg_info(bp, BNXT_CTX_V2_MAX);
8879 
8880 ctx_done:
8881 	hwrm_req_drop(bp, req);
8882 	return rc;
8883 }
8884 
bnxt_hwrm_func_backing_store_qcaps(struct bnxt * bp)8885 static int bnxt_hwrm_func_backing_store_qcaps(struct bnxt *bp)
8886 {
8887 	struct hwrm_func_backing_store_qcaps_output *resp;
8888 	struct hwrm_func_backing_store_qcaps_input *req;
8889 	int rc;
8890 
8891 	if (bp->hwrm_spec_code < 0x10902 || BNXT_VF(bp) ||
8892 	    (bp->ctx && bp->ctx->flags & BNXT_CTX_FLAG_INITED))
8893 		return 0;
8894 
8895 	if (bp->fw_cap & BNXT_FW_CAP_BACKING_STORE_V2)
8896 		return bnxt_hwrm_func_backing_store_qcaps_v2(bp);
8897 
8898 	rc = hwrm_req_init(bp, req, HWRM_FUNC_BACKING_STORE_QCAPS);
8899 	if (rc)
8900 		return rc;
8901 
8902 	resp = hwrm_req_hold(bp, req);
8903 	rc = hwrm_req_send_silent(bp, req);
8904 	if (!rc) {
8905 		struct bnxt_ctx_mem_type *ctxm;
8906 		struct bnxt_ctx_mem_info *ctx;
8907 		u8 init_val, init_idx = 0;
8908 		u16 init_mask;
8909 
8910 		ctx = bp->ctx;
8911 		if (!ctx) {
8912 			ctx = kzalloc_obj(*ctx);
8913 			if (!ctx) {
8914 				rc = -ENOMEM;
8915 				goto ctx_err;
8916 			}
8917 			bp->ctx = ctx;
8918 		}
8919 		init_val = resp->ctx_kind_initializer;
8920 		init_mask = le16_to_cpu(resp->ctx_init_mask);
8921 
8922 		ctxm = &ctx->ctx_arr[BNXT_CTX_QP];
8923 		ctxm->max_entries = le32_to_cpu(resp->qp_max_entries);
8924 		ctxm->qp_qp1_entries = le16_to_cpu(resp->qp_min_qp1_entries);
8925 		ctxm->qp_l2_entries = le16_to_cpu(resp->qp_max_l2_entries);
8926 		ctxm->qp_fast_qpmd_entries = le16_to_cpu(resp->fast_qpmd_qp_num_entries);
8927 		ctxm->entry_size = le16_to_cpu(resp->qp_entry_size);
8928 		bnxt_init_ctx_initializer(ctxm, init_val, resp->qp_init_offset,
8929 					  (init_mask & (1 << init_idx++)) != 0);
8930 
8931 		ctxm = &ctx->ctx_arr[BNXT_CTX_SRQ];
8932 		ctxm->srq_l2_entries = le16_to_cpu(resp->srq_max_l2_entries);
8933 		ctxm->max_entries = le32_to_cpu(resp->srq_max_entries);
8934 		ctxm->entry_size = le16_to_cpu(resp->srq_entry_size);
8935 		bnxt_init_ctx_initializer(ctxm, init_val, resp->srq_init_offset,
8936 					  (init_mask & (1 << init_idx++)) != 0);
8937 
8938 		ctxm = &ctx->ctx_arr[BNXT_CTX_CQ];
8939 		ctxm->cq_l2_entries = le16_to_cpu(resp->cq_max_l2_entries);
8940 		ctxm->max_entries = le32_to_cpu(resp->cq_max_entries);
8941 		ctxm->entry_size = le16_to_cpu(resp->cq_entry_size);
8942 		bnxt_init_ctx_initializer(ctxm, init_val, resp->cq_init_offset,
8943 					  (init_mask & (1 << init_idx++)) != 0);
8944 
8945 		ctxm = &ctx->ctx_arr[BNXT_CTX_VNIC];
8946 		ctxm->vnic_entries = le16_to_cpu(resp->vnic_max_vnic_entries);
8947 		ctxm->max_entries = ctxm->vnic_entries +
8948 			le16_to_cpu(resp->vnic_max_ring_table_entries);
8949 		ctxm->entry_size = le16_to_cpu(resp->vnic_entry_size);
8950 		bnxt_init_ctx_initializer(ctxm, init_val,
8951 					  resp->vnic_init_offset,
8952 					  (init_mask & (1 << init_idx++)) != 0);
8953 
8954 		ctxm = &ctx->ctx_arr[BNXT_CTX_STAT];
8955 		ctxm->max_entries = le32_to_cpu(resp->stat_max_entries);
8956 		ctxm->entry_size = le16_to_cpu(resp->stat_entry_size);
8957 		bnxt_init_ctx_initializer(ctxm, init_val,
8958 					  resp->stat_init_offset,
8959 					  (init_mask & (1 << init_idx++)) != 0);
8960 
8961 		ctxm = &ctx->ctx_arr[BNXT_CTX_STQM];
8962 		ctxm->entry_size = le16_to_cpu(resp->tqm_entry_size);
8963 		ctxm->min_entries = le32_to_cpu(resp->tqm_min_entries_per_ring);
8964 		ctxm->max_entries = le32_to_cpu(resp->tqm_max_entries_per_ring);
8965 		ctxm->entry_multiple = resp->tqm_entries_multiple;
8966 		if (!ctxm->entry_multiple)
8967 			ctxm->entry_multiple = 1;
8968 
8969 		memcpy(&ctx->ctx_arr[BNXT_CTX_FTQM], ctxm, sizeof(*ctxm));
8970 
8971 		ctxm = &ctx->ctx_arr[BNXT_CTX_MRAV];
8972 		ctxm->max_entries = le32_to_cpu(resp->mrav_max_entries);
8973 		ctxm->entry_size = le16_to_cpu(resp->mrav_entry_size);
8974 		ctxm->mrav_num_entries_units =
8975 			le16_to_cpu(resp->mrav_num_entries_units);
8976 		bnxt_init_ctx_initializer(ctxm, init_val,
8977 					  resp->mrav_init_offset,
8978 					  (init_mask & (1 << init_idx++)) != 0);
8979 
8980 		ctxm = &ctx->ctx_arr[BNXT_CTX_TIM];
8981 		ctxm->entry_size = le16_to_cpu(resp->tim_entry_size);
8982 		ctxm->max_entries = le32_to_cpu(resp->tim_max_entries);
8983 
8984 		ctx->tqm_fp_rings_count = resp->tqm_fp_rings_count;
8985 		if (!ctx->tqm_fp_rings_count)
8986 			ctx->tqm_fp_rings_count = bp->max_q;
8987 		else if (ctx->tqm_fp_rings_count > BNXT_MAX_TQM_FP_RINGS)
8988 			ctx->tqm_fp_rings_count = BNXT_MAX_TQM_FP_RINGS;
8989 
8990 		ctxm = &ctx->ctx_arr[BNXT_CTX_FTQM];
8991 		memcpy(ctxm, &ctx->ctx_arr[BNXT_CTX_STQM], sizeof(*ctxm));
8992 		ctxm->instance_bmap = (1 << ctx->tqm_fp_rings_count) - 1;
8993 
8994 		rc = bnxt_alloc_all_ctx_pg_info(bp, BNXT_CTX_MAX);
8995 	} else {
8996 		rc = 0;
8997 	}
8998 ctx_err:
8999 	hwrm_req_drop(bp, req);
9000 	return rc;
9001 }
9002 
bnxt_hwrm_set_pg_attr(struct bnxt_ring_mem_info * rmem,u8 * pg_attr,__le64 * pg_dir)9003 static void bnxt_hwrm_set_pg_attr(struct bnxt_ring_mem_info *rmem, u8 *pg_attr,
9004 				  __le64 *pg_dir)
9005 {
9006 	if (!rmem->nr_pages)
9007 		return;
9008 
9009 	BNXT_SET_CTX_PAGE_ATTR(*pg_attr);
9010 	if (rmem->depth >= 1) {
9011 		if (rmem->depth == 2)
9012 			*pg_attr |= 2;
9013 		else
9014 			*pg_attr |= 1;
9015 		*pg_dir = cpu_to_le64(rmem->pg_tbl_map);
9016 	} else {
9017 		*pg_dir = cpu_to_le64(rmem->dma_arr[0]);
9018 	}
9019 }
9020 
9021 #define FUNC_BACKING_STORE_CFG_REQ_DFLT_ENABLES			\
9022 	(FUNC_BACKING_STORE_CFG_REQ_ENABLES_QP |		\
9023 	 FUNC_BACKING_STORE_CFG_REQ_ENABLES_SRQ |		\
9024 	 FUNC_BACKING_STORE_CFG_REQ_ENABLES_CQ |		\
9025 	 FUNC_BACKING_STORE_CFG_REQ_ENABLES_VNIC |		\
9026 	 FUNC_BACKING_STORE_CFG_REQ_ENABLES_STAT)
9027 
bnxt_hwrm_func_backing_store_cfg(struct bnxt * bp,u32 enables)9028 static int bnxt_hwrm_func_backing_store_cfg(struct bnxt *bp, u32 enables)
9029 {
9030 	struct hwrm_func_backing_store_cfg_input *req;
9031 	struct bnxt_ctx_mem_info *ctx = bp->ctx;
9032 	struct bnxt_ctx_pg_info *ctx_pg;
9033 	struct bnxt_ctx_mem_type *ctxm;
9034 	void **__req = (void **)&req;
9035 	u32 req_len = sizeof(*req);
9036 	__le32 *num_entries;
9037 	__le64 *pg_dir;
9038 	u32 flags = 0;
9039 	u8 *pg_attr;
9040 	u32 ena;
9041 	int rc;
9042 	int i;
9043 
9044 	if (!ctx)
9045 		return 0;
9046 
9047 	if (req_len > bp->hwrm_max_ext_req_len)
9048 		req_len = BNXT_BACKING_STORE_CFG_LEGACY_LEN;
9049 	rc = __hwrm_req_init(bp, __req, HWRM_FUNC_BACKING_STORE_CFG, req_len);
9050 	if (rc)
9051 		return rc;
9052 
9053 	req->enables = cpu_to_le32(enables);
9054 	if (enables & FUNC_BACKING_STORE_CFG_REQ_ENABLES_QP) {
9055 		ctxm = &ctx->ctx_arr[BNXT_CTX_QP];
9056 		ctx_pg = ctxm->pg_info;
9057 		req->qp_num_entries = cpu_to_le32(ctx_pg->entries);
9058 		req->qp_num_qp1_entries = cpu_to_le16(ctxm->qp_qp1_entries);
9059 		req->qp_num_l2_entries = cpu_to_le16(ctxm->qp_l2_entries);
9060 		req->qp_entry_size = cpu_to_le16(ctxm->entry_size);
9061 		bnxt_hwrm_set_pg_attr(&ctx_pg->ring_mem,
9062 				      &req->qpc_pg_size_qpc_lvl,
9063 				      &req->qpc_page_dir);
9064 
9065 		if (enables & FUNC_BACKING_STORE_CFG_REQ_ENABLES_QP_FAST_QPMD)
9066 			req->qp_num_fast_qpmd_entries = cpu_to_le16(ctxm->qp_fast_qpmd_entries);
9067 	}
9068 	if (enables & FUNC_BACKING_STORE_CFG_REQ_ENABLES_SRQ) {
9069 		ctxm = &ctx->ctx_arr[BNXT_CTX_SRQ];
9070 		ctx_pg = ctxm->pg_info;
9071 		req->srq_num_entries = cpu_to_le32(ctx_pg->entries);
9072 		req->srq_num_l2_entries = cpu_to_le16(ctxm->srq_l2_entries);
9073 		req->srq_entry_size = cpu_to_le16(ctxm->entry_size);
9074 		bnxt_hwrm_set_pg_attr(&ctx_pg->ring_mem,
9075 				      &req->srq_pg_size_srq_lvl,
9076 				      &req->srq_page_dir);
9077 	}
9078 	if (enables & FUNC_BACKING_STORE_CFG_REQ_ENABLES_CQ) {
9079 		ctxm = &ctx->ctx_arr[BNXT_CTX_CQ];
9080 		ctx_pg = ctxm->pg_info;
9081 		req->cq_num_entries = cpu_to_le32(ctx_pg->entries);
9082 		req->cq_num_l2_entries = cpu_to_le16(ctxm->cq_l2_entries);
9083 		req->cq_entry_size = cpu_to_le16(ctxm->entry_size);
9084 		bnxt_hwrm_set_pg_attr(&ctx_pg->ring_mem,
9085 				      &req->cq_pg_size_cq_lvl,
9086 				      &req->cq_page_dir);
9087 	}
9088 	if (enables & FUNC_BACKING_STORE_CFG_REQ_ENABLES_VNIC) {
9089 		ctxm = &ctx->ctx_arr[BNXT_CTX_VNIC];
9090 		ctx_pg = ctxm->pg_info;
9091 		req->vnic_num_vnic_entries = cpu_to_le16(ctxm->vnic_entries);
9092 		req->vnic_num_ring_table_entries =
9093 			cpu_to_le16(ctxm->max_entries - ctxm->vnic_entries);
9094 		req->vnic_entry_size = cpu_to_le16(ctxm->entry_size);
9095 		bnxt_hwrm_set_pg_attr(&ctx_pg->ring_mem,
9096 				      &req->vnic_pg_size_vnic_lvl,
9097 				      &req->vnic_page_dir);
9098 	}
9099 	if (enables & FUNC_BACKING_STORE_CFG_REQ_ENABLES_STAT) {
9100 		ctxm = &ctx->ctx_arr[BNXT_CTX_STAT];
9101 		ctx_pg = ctxm->pg_info;
9102 		req->stat_num_entries = cpu_to_le32(ctxm->max_entries);
9103 		req->stat_entry_size = cpu_to_le16(ctxm->entry_size);
9104 		bnxt_hwrm_set_pg_attr(&ctx_pg->ring_mem,
9105 				      &req->stat_pg_size_stat_lvl,
9106 				      &req->stat_page_dir);
9107 	}
9108 	if (enables & FUNC_BACKING_STORE_CFG_REQ_ENABLES_MRAV) {
9109 		u32 units;
9110 
9111 		ctxm = &ctx->ctx_arr[BNXT_CTX_MRAV];
9112 		ctx_pg = ctxm->pg_info;
9113 		req->mrav_num_entries = cpu_to_le32(ctx_pg->entries);
9114 		units = ctxm->mrav_num_entries_units;
9115 		if (units) {
9116 			u32 num_mr, num_ah = ctxm->mrav_av_entries;
9117 			u32 entries;
9118 
9119 			num_mr = ctx_pg->entries - num_ah;
9120 			entries = ((num_mr / units) << 16) | (num_ah / units);
9121 			req->mrav_num_entries = cpu_to_le32(entries);
9122 			flags |= FUNC_BACKING_STORE_CFG_REQ_FLAGS_MRAV_RESERVATION_SPLIT;
9123 		}
9124 		req->mrav_entry_size = cpu_to_le16(ctxm->entry_size);
9125 		bnxt_hwrm_set_pg_attr(&ctx_pg->ring_mem,
9126 				      &req->mrav_pg_size_mrav_lvl,
9127 				      &req->mrav_page_dir);
9128 	}
9129 	if (enables & FUNC_BACKING_STORE_CFG_REQ_ENABLES_TIM) {
9130 		ctxm = &ctx->ctx_arr[BNXT_CTX_TIM];
9131 		ctx_pg = ctxm->pg_info;
9132 		req->tim_num_entries = cpu_to_le32(ctx_pg->entries);
9133 		req->tim_entry_size = cpu_to_le16(ctxm->entry_size);
9134 		bnxt_hwrm_set_pg_attr(&ctx_pg->ring_mem,
9135 				      &req->tim_pg_size_tim_lvl,
9136 				      &req->tim_page_dir);
9137 	}
9138 	ctxm = &ctx->ctx_arr[BNXT_CTX_STQM];
9139 	for (i = 0, num_entries = &req->tqm_sp_num_entries,
9140 	     pg_attr = &req->tqm_sp_pg_size_tqm_sp_lvl,
9141 	     pg_dir = &req->tqm_sp_page_dir,
9142 	     ena = FUNC_BACKING_STORE_CFG_REQ_ENABLES_TQM_SP,
9143 	     ctx_pg = ctxm->pg_info;
9144 	     i < BNXT_MAX_TQM_RINGS;
9145 	     ctx_pg = &ctx->ctx_arr[BNXT_CTX_FTQM].pg_info[i],
9146 	     i++, num_entries++, pg_attr++, pg_dir++, ena <<= 1) {
9147 		if (!(enables & ena))
9148 			continue;
9149 
9150 		req->tqm_entry_size = cpu_to_le16(ctxm->entry_size);
9151 		*num_entries = cpu_to_le32(ctx_pg->entries);
9152 		bnxt_hwrm_set_pg_attr(&ctx_pg->ring_mem, pg_attr, pg_dir);
9153 	}
9154 	req->flags = cpu_to_le32(flags);
9155 	return hwrm_req_send(bp, req);
9156 }
9157 
bnxt_alloc_ctx_mem_blk(struct bnxt * bp,struct bnxt_ctx_pg_info * ctx_pg)9158 static int bnxt_alloc_ctx_mem_blk(struct bnxt *bp,
9159 				  struct bnxt_ctx_pg_info *ctx_pg)
9160 {
9161 	struct bnxt_ring_mem_info *rmem = &ctx_pg->ring_mem;
9162 
9163 	rmem->page_size = BNXT_PAGE_SIZE;
9164 	rmem->pg_arr = ctx_pg->ctx_pg_arr;
9165 	rmem->dma_arr = ctx_pg->ctx_dma_arr;
9166 	rmem->flags = BNXT_RMEM_VALID_PTE_FLAG;
9167 	if (rmem->depth >= 1)
9168 		rmem->flags |= BNXT_RMEM_USE_FULL_PAGE_FLAG;
9169 	return bnxt_alloc_ring(bp, rmem);
9170 }
9171 
bnxt_alloc_ctx_pg_tbls(struct bnxt * bp,struct bnxt_ctx_pg_info * ctx_pg,u32 mem_size,u8 depth,struct bnxt_ctx_mem_type * ctxm)9172 static int bnxt_alloc_ctx_pg_tbls(struct bnxt *bp,
9173 				  struct bnxt_ctx_pg_info *ctx_pg, u32 mem_size,
9174 				  u8 depth, struct bnxt_ctx_mem_type *ctxm)
9175 {
9176 	struct bnxt_ring_mem_info *rmem = &ctx_pg->ring_mem;
9177 	int rc;
9178 
9179 	if (!mem_size)
9180 		return -EINVAL;
9181 
9182 	ctx_pg->nr_pages = DIV_ROUND_UP(mem_size, BNXT_PAGE_SIZE);
9183 	if (ctx_pg->nr_pages > MAX_CTX_TOTAL_PAGES) {
9184 		ctx_pg->nr_pages = 0;
9185 		return -EINVAL;
9186 	}
9187 	if (ctx_pg->nr_pages > MAX_CTX_PAGES || depth > 1) {
9188 		int nr_tbls, i;
9189 
9190 		rmem->depth = 2;
9191 		ctx_pg->ctx_pg_tbl = kzalloc_objs(ctx_pg, MAX_CTX_PAGES);
9192 		if (!ctx_pg->ctx_pg_tbl)
9193 			return -ENOMEM;
9194 		nr_tbls = DIV_ROUND_UP(ctx_pg->nr_pages, MAX_CTX_PAGES);
9195 		rmem->nr_pages = nr_tbls;
9196 		rc = bnxt_alloc_ctx_mem_blk(bp, ctx_pg);
9197 		if (rc)
9198 			return rc;
9199 		for (i = 0; i < nr_tbls; i++) {
9200 			struct bnxt_ctx_pg_info *pg_tbl;
9201 
9202 			pg_tbl = kzalloc_obj(*pg_tbl);
9203 			if (!pg_tbl)
9204 				return -ENOMEM;
9205 			ctx_pg->ctx_pg_tbl[i] = pg_tbl;
9206 			rmem = &pg_tbl->ring_mem;
9207 			rmem->pg_tbl = ctx_pg->ctx_pg_arr[i];
9208 			rmem->pg_tbl_map = ctx_pg->ctx_dma_arr[i];
9209 			rmem->depth = 1;
9210 			rmem->nr_pages = MAX_CTX_PAGES;
9211 			rmem->ctx_mem = ctxm;
9212 			if (i == (nr_tbls - 1)) {
9213 				int rem = ctx_pg->nr_pages % MAX_CTX_PAGES;
9214 
9215 				if (rem)
9216 					rmem->nr_pages = rem;
9217 			}
9218 			rc = bnxt_alloc_ctx_mem_blk(bp, pg_tbl);
9219 			if (rc)
9220 				break;
9221 		}
9222 	} else {
9223 		rmem->nr_pages = DIV_ROUND_UP(mem_size, BNXT_PAGE_SIZE);
9224 		if (rmem->nr_pages > 1 || depth)
9225 			rmem->depth = 1;
9226 		rmem->ctx_mem = ctxm;
9227 		rc = bnxt_alloc_ctx_mem_blk(bp, ctx_pg);
9228 	}
9229 	return rc;
9230 }
9231 
bnxt_copy_ctx_pg_tbls(struct bnxt * bp,struct bnxt_ctx_pg_info * ctx_pg,void * buf,size_t offset,size_t head,size_t tail)9232 static size_t bnxt_copy_ctx_pg_tbls(struct bnxt *bp,
9233 				    struct bnxt_ctx_pg_info *ctx_pg,
9234 				    void *buf, size_t offset, size_t head,
9235 				    size_t tail)
9236 {
9237 	struct bnxt_ring_mem_info *rmem = &ctx_pg->ring_mem;
9238 	size_t nr_pages = ctx_pg->nr_pages;
9239 	int page_size = rmem->page_size;
9240 	size_t len = 0, total_len = 0;
9241 	u16 depth = rmem->depth;
9242 
9243 	tail %= nr_pages * page_size;
9244 	do {
9245 		if (depth > 1) {
9246 			int i = head / (page_size * MAX_CTX_PAGES);
9247 			struct bnxt_ctx_pg_info *pg_tbl;
9248 
9249 			pg_tbl = ctx_pg->ctx_pg_tbl[i];
9250 			rmem = &pg_tbl->ring_mem;
9251 		}
9252 		len = __bnxt_copy_ring(bp, rmem, buf, offset, head, tail);
9253 		head += len;
9254 		offset += len;
9255 		total_len += len;
9256 		if (head >= nr_pages * page_size)
9257 			head = 0;
9258 	} while (head != tail);
9259 	return total_len;
9260 }
9261 
bnxt_free_ctx_pg_tbls(struct bnxt * bp,struct bnxt_ctx_pg_info * ctx_pg)9262 static void bnxt_free_ctx_pg_tbls(struct bnxt *bp,
9263 				  struct bnxt_ctx_pg_info *ctx_pg)
9264 {
9265 	struct bnxt_ring_mem_info *rmem = &ctx_pg->ring_mem;
9266 
9267 	if (rmem->depth > 1 || ctx_pg->nr_pages > MAX_CTX_PAGES ||
9268 	    ctx_pg->ctx_pg_tbl) {
9269 		int i, nr_tbls = rmem->nr_pages;
9270 
9271 		for (i = 0; i < nr_tbls; i++) {
9272 			struct bnxt_ctx_pg_info *pg_tbl;
9273 			struct bnxt_ring_mem_info *rmem2;
9274 
9275 			pg_tbl = ctx_pg->ctx_pg_tbl[i];
9276 			if (!pg_tbl)
9277 				continue;
9278 			rmem2 = &pg_tbl->ring_mem;
9279 			bnxt_free_ring(bp, rmem2);
9280 			ctx_pg->ctx_pg_arr[i] = NULL;
9281 			kfree(pg_tbl);
9282 			ctx_pg->ctx_pg_tbl[i] = NULL;
9283 		}
9284 		kfree(ctx_pg->ctx_pg_tbl);
9285 		ctx_pg->ctx_pg_tbl = NULL;
9286 	}
9287 	bnxt_free_ring(bp, rmem);
9288 	ctx_pg->nr_pages = 0;
9289 }
9290 
bnxt_setup_ctxm_pg_tbls(struct bnxt * bp,struct bnxt_ctx_mem_type * ctxm,u32 entries,u8 pg_lvl)9291 static int bnxt_setup_ctxm_pg_tbls(struct bnxt *bp,
9292 				   struct bnxt_ctx_mem_type *ctxm, u32 entries,
9293 				   u8 pg_lvl)
9294 {
9295 	struct bnxt_ctx_pg_info *ctx_pg = ctxm->pg_info;
9296 	int i, rc = 0, n = 1;
9297 	u32 mem_size;
9298 
9299 	if (!ctxm->entry_size || !ctx_pg)
9300 		return -EINVAL;
9301 	if (ctxm->instance_bmap)
9302 		n = hweight32(ctxm->instance_bmap);
9303 	if (ctxm->entry_multiple)
9304 		entries = roundup(entries, ctxm->entry_multiple);
9305 	entries = clamp_t(u32, entries, ctxm->min_entries, ctxm->max_entries);
9306 	mem_size = entries * ctxm->entry_size;
9307 	for (i = 0; i < n && !rc; i++) {
9308 		ctx_pg[i].entries = entries;
9309 		rc = bnxt_alloc_ctx_pg_tbls(bp, &ctx_pg[i], mem_size, pg_lvl,
9310 					    ctxm->init_value ? ctxm : NULL);
9311 	}
9312 	if (!rc)
9313 		ctxm->mem_valid = 1;
9314 	return rc;
9315 }
9316 
bnxt_hwrm_func_backing_store_cfg_v2(struct bnxt * bp,struct bnxt_ctx_mem_type * ctxm,bool last)9317 static int bnxt_hwrm_func_backing_store_cfg_v2(struct bnxt *bp,
9318 					       struct bnxt_ctx_mem_type *ctxm,
9319 					       bool last)
9320 {
9321 	struct hwrm_func_backing_store_cfg_v2_input *req;
9322 	u32 instance_bmap = ctxm->instance_bmap;
9323 	int i, j, rc = 0, n = 1;
9324 	__le32 *p;
9325 
9326 	if (!(ctxm->flags & BNXT_CTX_MEM_TYPE_VALID) || !ctxm->pg_info)
9327 		return 0;
9328 
9329 	if (instance_bmap)
9330 		n = hweight32(ctxm->instance_bmap);
9331 	else
9332 		instance_bmap = 1;
9333 
9334 	rc = hwrm_req_init(bp, req, HWRM_FUNC_BACKING_STORE_CFG_V2);
9335 	if (rc)
9336 		return rc;
9337 	hwrm_req_hold(bp, req);
9338 	req->type = cpu_to_le16(ctxm->type);
9339 	req->entry_size = cpu_to_le16(ctxm->entry_size);
9340 	if ((ctxm->flags & BNXT_CTX_MEM_PERSIST) &&
9341 	    bnxt_bs_trace_avail(bp, ctxm->type)) {
9342 		struct bnxt_bs_trace_info *bs_trace;
9343 		u32 enables;
9344 
9345 		enables = FUNC_BACKING_STORE_CFG_V2_REQ_ENABLES_NEXT_BS_OFFSET;
9346 		req->enables = cpu_to_le32(enables);
9347 		bs_trace = &bp->bs_trace[bnxt_bstore_to_trace[ctxm->type]];
9348 		req->next_bs_offset = cpu_to_le32(bs_trace->last_offset);
9349 	}
9350 	req->subtype_valid_cnt = ctxm->split_entry_cnt;
9351 	for (i = 0, p = &req->split_entry_0; i < ctxm->split_entry_cnt; i++)
9352 		p[i] = cpu_to_le32(ctxm->split[i]);
9353 	for (i = 0, j = 0; j < n && !rc; i++) {
9354 		struct bnxt_ctx_pg_info *ctx_pg;
9355 
9356 		if (!(instance_bmap & (1 << i)))
9357 			continue;
9358 		req->instance = cpu_to_le16(i);
9359 		ctx_pg = &ctxm->pg_info[j++];
9360 		if (!ctx_pg->entries)
9361 			continue;
9362 		req->num_entries = cpu_to_le32(ctx_pg->entries);
9363 		bnxt_hwrm_set_pg_attr(&ctx_pg->ring_mem,
9364 				      &req->page_size_pbl_level,
9365 				      &req->page_dir);
9366 		if (last && j == n)
9367 			req->flags =
9368 				cpu_to_le32(FUNC_BACKING_STORE_CFG_V2_REQ_FLAGS_BS_CFG_ALL_DONE);
9369 		rc = hwrm_req_send(bp, req);
9370 	}
9371 	hwrm_req_drop(bp, req);
9372 	return rc;
9373 }
9374 
bnxt_backing_store_cfg_v2(struct bnxt * bp)9375 static int bnxt_backing_store_cfg_v2(struct bnxt *bp)
9376 {
9377 	struct bnxt_ctx_mem_info *ctx = bp->ctx;
9378 	struct bnxt_ctx_mem_type *ctxm;
9379 	u16 last_type = BNXT_CTX_INV;
9380 	int rc = 0;
9381 	u16 type;
9382 
9383 	for (type = BNXT_CTX_SRT; type <= BNXT_CTX_QPC; type++) {
9384 		ctxm = &ctx->ctx_arr[type];
9385 		if (!bnxt_bs_trace_avail(bp, type))
9386 			continue;
9387 		if (!ctxm->mem_valid) {
9388 			rc = bnxt_setup_ctxm_pg_tbls(bp, ctxm,
9389 						     ctxm->max_entries, 1);
9390 			if (rc) {
9391 				netdev_warn(bp->dev, "Unable to setup ctx page for type:0x%x.\n",
9392 					    type);
9393 				continue;
9394 			}
9395 			bnxt_bs_trace_init(bp, ctxm);
9396 		}
9397 		last_type = type;
9398 	}
9399 
9400 	if (last_type == BNXT_CTX_INV) {
9401 		for (type = 0; type < BNXT_CTX_MAX; type++) {
9402 			ctxm = &ctx->ctx_arr[type];
9403 			if (ctxm->mem_valid)
9404 				last_type = type;
9405 		}
9406 		if (last_type == BNXT_CTX_INV)
9407 			return 0;
9408 	}
9409 	ctx->ctx_arr[last_type].last = 1;
9410 
9411 	for (type = 0 ; type < BNXT_CTX_V2_MAX; type++) {
9412 		ctxm = &ctx->ctx_arr[type];
9413 
9414 		if (!ctxm->mem_valid)
9415 			continue;
9416 		rc = bnxt_hwrm_func_backing_store_cfg_v2(bp, ctxm, ctxm->last);
9417 		if (rc)
9418 			return rc;
9419 	}
9420 	return 0;
9421 }
9422 
9423 /**
9424  * __bnxt_copy_ctx_mem - copy host context memory
9425  * @bp: The driver context
9426  * @ctxm: The pointer to the context memory type
9427  * @buf: The destination buffer or NULL to just obtain the length
9428  * @offset: The buffer offset to copy the data to
9429  * @head: The head offset of context memory to copy from
9430  * @tail: The tail offset (last byte + 1) of context memory to end the copy
9431  *
9432  * This function is called for debugging purposes to dump the host context
9433  * used by the chip.
9434  *
9435  * Return: Length of memory copied
9436  */
__bnxt_copy_ctx_mem(struct bnxt * bp,struct bnxt_ctx_mem_type * ctxm,void * buf,size_t offset,size_t head,size_t tail)9437 static size_t __bnxt_copy_ctx_mem(struct bnxt *bp,
9438 				  struct bnxt_ctx_mem_type *ctxm, void *buf,
9439 				  size_t offset, size_t head, size_t tail)
9440 {
9441 	struct bnxt_ctx_pg_info *ctx_pg = ctxm->pg_info;
9442 	size_t len = 0, total_len = 0;
9443 	int i, n = 1;
9444 
9445 	if (!ctx_pg)
9446 		return 0;
9447 
9448 	if (ctxm->instance_bmap)
9449 		n = hweight32(ctxm->instance_bmap);
9450 	for (i = 0; i < n; i++) {
9451 		len = bnxt_copy_ctx_pg_tbls(bp, &ctx_pg[i], buf, offset, head,
9452 					    tail);
9453 		offset += len;
9454 		total_len += len;
9455 	}
9456 	return total_len;
9457 }
9458 
bnxt_copy_ctx_mem(struct bnxt * bp,struct bnxt_ctx_mem_type * ctxm,void * buf,size_t offset)9459 size_t bnxt_copy_ctx_mem(struct bnxt *bp, struct bnxt_ctx_mem_type *ctxm,
9460 			 void *buf, size_t offset)
9461 {
9462 	size_t tail = ctxm->max_entries * ctxm->entry_size;
9463 
9464 	return __bnxt_copy_ctx_mem(bp, ctxm, buf, offset, 0, tail);
9465 }
9466 
bnxt_free_one_ctx_mem(struct bnxt * bp,struct bnxt_ctx_mem_type * ctxm,bool force)9467 static void bnxt_free_one_ctx_mem(struct bnxt *bp,
9468 				  struct bnxt_ctx_mem_type *ctxm, bool force)
9469 {
9470 	struct bnxt_ctx_pg_info *ctx_pg;
9471 	int i, n = 1;
9472 
9473 	ctxm->last = 0;
9474 
9475 	if (ctxm->mem_valid && !force && (ctxm->flags & BNXT_CTX_MEM_PERSIST))
9476 		return;
9477 
9478 	ctx_pg = ctxm->pg_info;
9479 	if (ctx_pg) {
9480 		if (ctxm->instance_bmap)
9481 			n = hweight32(ctxm->instance_bmap);
9482 		for (i = 0; i < n; i++)
9483 			bnxt_free_ctx_pg_tbls(bp, &ctx_pg[i]);
9484 
9485 		kfree(ctx_pg);
9486 		ctxm->pg_info = NULL;
9487 		ctxm->mem_valid = 0;
9488 	}
9489 	memset(ctxm, 0, sizeof(*ctxm));
9490 }
9491 
bnxt_free_ctx_mem(struct bnxt * bp,bool force)9492 void bnxt_free_ctx_mem(struct bnxt *bp, bool force)
9493 {
9494 	struct bnxt_ctx_mem_info *ctx = bp->ctx;
9495 	u16 type;
9496 
9497 	if (!ctx)
9498 		return;
9499 
9500 	for (type = 0; type < BNXT_CTX_V2_MAX; type++)
9501 		bnxt_free_one_ctx_mem(bp, &ctx->ctx_arr[type], force);
9502 
9503 	ctx->flags &= ~BNXT_CTX_FLAG_INITED;
9504 	if (force) {
9505 		kfree(ctx);
9506 		bp->ctx = NULL;
9507 	}
9508 }
9509 
bnxt_alloc_ctx_mem(struct bnxt * bp)9510 static int bnxt_alloc_ctx_mem(struct bnxt *bp)
9511 {
9512 	struct bnxt_ctx_mem_type *ctxm;
9513 	struct bnxt_ctx_mem_info *ctx;
9514 	u32 l2_qps, qp1_qps, max_qps;
9515 	u32 ena, entries_sp, entries;
9516 	u32 srqs, max_srqs, min;
9517 	u32 num_mr, num_ah;
9518 	u32 extra_srqs = 0;
9519 	u32 extra_qps = 0;
9520 	u32 fast_qpmd_qps;
9521 	u8 pg_lvl = 1;
9522 	int i, rc;
9523 
9524 	rc = bnxt_hwrm_func_backing_store_qcaps(bp);
9525 	if (rc) {
9526 		netdev_err(bp->dev, "Failed querying context mem capability, rc = %d.\n",
9527 			   rc);
9528 		return rc;
9529 	}
9530 	ctx = bp->ctx;
9531 	if (!ctx || (ctx->flags & BNXT_CTX_FLAG_INITED))
9532 		return 0;
9533 
9534 	ena = 0;
9535 	if (!(bp->flags & BNXT_FLAG_CHIP_P5_PLUS))
9536 		goto skip_legacy;
9537 
9538 	ctxm = &ctx->ctx_arr[BNXT_CTX_QP];
9539 	l2_qps = ctxm->qp_l2_entries;
9540 	qp1_qps = ctxm->qp_qp1_entries;
9541 	fast_qpmd_qps = ctxm->qp_fast_qpmd_entries;
9542 	max_qps = ctxm->max_entries;
9543 	ctxm = &ctx->ctx_arr[BNXT_CTX_SRQ];
9544 	srqs = ctxm->srq_l2_entries;
9545 	max_srqs = ctxm->max_entries;
9546 	if ((bp->flags & BNXT_FLAG_ROCE_CAP) && !is_kdump_kernel()) {
9547 		pg_lvl = 2;
9548 		if (BNXT_SW_RES_LMT(bp)) {
9549 			extra_qps = max_qps - l2_qps - qp1_qps;
9550 			extra_srqs = max_srqs - srqs;
9551 		} else {
9552 			extra_qps = min_t(u32, 65536,
9553 					  max_qps - l2_qps - qp1_qps);
9554 			/* allocate extra qps if fw supports RoCE fast qp
9555 			 * destroy feature
9556 			 */
9557 			extra_qps += fast_qpmd_qps;
9558 			extra_srqs = min_t(u32, 8192, max_srqs - srqs);
9559 		}
9560 		if (fast_qpmd_qps)
9561 			ena |= FUNC_BACKING_STORE_CFG_REQ_ENABLES_QP_FAST_QPMD;
9562 	}
9563 
9564 	ctxm = &ctx->ctx_arr[BNXT_CTX_QP];
9565 	rc = bnxt_setup_ctxm_pg_tbls(bp, ctxm, l2_qps + qp1_qps + extra_qps,
9566 				     pg_lvl);
9567 	if (rc)
9568 		return rc;
9569 
9570 	ctxm = &ctx->ctx_arr[BNXT_CTX_SRQ];
9571 	rc = bnxt_setup_ctxm_pg_tbls(bp, ctxm, srqs + extra_srqs, pg_lvl);
9572 	if (rc)
9573 		return rc;
9574 
9575 	ctxm = &ctx->ctx_arr[BNXT_CTX_CQ];
9576 	rc = bnxt_setup_ctxm_pg_tbls(bp, ctxm, ctxm->cq_l2_entries +
9577 				     extra_qps * 2, pg_lvl);
9578 	if (rc)
9579 		return rc;
9580 
9581 	ctxm = &ctx->ctx_arr[BNXT_CTX_VNIC];
9582 	rc = bnxt_setup_ctxm_pg_tbls(bp, ctxm, ctxm->max_entries, 1);
9583 	if (rc)
9584 		return rc;
9585 
9586 	ctxm = &ctx->ctx_arr[BNXT_CTX_STAT];
9587 	rc = bnxt_setup_ctxm_pg_tbls(bp, ctxm, ctxm->max_entries, 1);
9588 	if (rc)
9589 		return rc;
9590 
9591 	if (!(bp->flags & BNXT_FLAG_ROCE_CAP))
9592 		goto skip_rdma;
9593 
9594 	ctxm = &ctx->ctx_arr[BNXT_CTX_MRAV];
9595 	if (BNXT_SW_RES_LMT(bp) &&
9596 	    ctxm->split_entry_cnt == BNXT_CTX_MRAV_AV_SPLIT_ENTRY + 1) {
9597 		num_ah = ctxm->mrav_av_entries;
9598 		num_mr = ctxm->max_entries - num_ah;
9599 	} else {
9600 		/* 128K extra is needed to accommodate static AH context
9601 		 * allocation by f/w.
9602 		 */
9603 		num_mr = min_t(u32, ctxm->max_entries / 2, 1024 * 256);
9604 		num_ah = min_t(u32, num_mr, 1024 * 128);
9605 		ctxm->split_entry_cnt = BNXT_CTX_MRAV_AV_SPLIT_ENTRY + 1;
9606 		if (!ctxm->mrav_av_entries || ctxm->mrav_av_entries > num_ah)
9607 			ctxm->mrav_av_entries = num_ah;
9608 	}
9609 
9610 	rc = bnxt_setup_ctxm_pg_tbls(bp, ctxm, num_mr + num_ah, 2);
9611 	if (rc)
9612 		return rc;
9613 	ena |= FUNC_BACKING_STORE_CFG_REQ_ENABLES_MRAV;
9614 
9615 	ctxm = &ctx->ctx_arr[BNXT_CTX_TIM];
9616 	rc = bnxt_setup_ctxm_pg_tbls(bp, ctxm, l2_qps + qp1_qps + extra_qps, 1);
9617 	if (rc)
9618 		return rc;
9619 	ena |= FUNC_BACKING_STORE_CFG_REQ_ENABLES_TIM;
9620 
9621 skip_rdma:
9622 	ctxm = &ctx->ctx_arr[BNXT_CTX_STQM];
9623 	min = ctxm->min_entries;
9624 	entries_sp = ctx->ctx_arr[BNXT_CTX_VNIC].vnic_entries + l2_qps +
9625 		     2 * (extra_qps + qp1_qps) + min;
9626 	rc = bnxt_setup_ctxm_pg_tbls(bp, ctxm, entries_sp, 2);
9627 	if (rc)
9628 		return rc;
9629 
9630 	ctxm = &ctx->ctx_arr[BNXT_CTX_FTQM];
9631 	entries = l2_qps + 2 * (extra_qps + qp1_qps);
9632 	rc = bnxt_setup_ctxm_pg_tbls(bp, ctxm, entries, 2);
9633 	if (rc)
9634 		return rc;
9635 	for (i = 0; i < ctx->tqm_fp_rings_count + 1; i++)
9636 		ena |= FUNC_BACKING_STORE_CFG_REQ_ENABLES_TQM_SP << i;
9637 	ena |= FUNC_BACKING_STORE_CFG_REQ_DFLT_ENABLES;
9638 
9639 skip_legacy:
9640 	if (bp->fw_cap & BNXT_FW_CAP_BACKING_STORE_V2)
9641 		rc = bnxt_backing_store_cfg_v2(bp);
9642 	else
9643 		rc = bnxt_hwrm_func_backing_store_cfg(bp, ena);
9644 	if (rc) {
9645 		netdev_err(bp->dev, "Failed configuring context mem, rc = %d.\n",
9646 			   rc);
9647 		return rc;
9648 	}
9649 	ctx->flags |= BNXT_CTX_FLAG_INITED;
9650 	return 0;
9651 }
9652 
bnxt_hwrm_crash_dump_mem_cfg(struct bnxt * bp)9653 static int bnxt_hwrm_crash_dump_mem_cfg(struct bnxt *bp)
9654 {
9655 	struct hwrm_dbg_crashdump_medium_cfg_input *req;
9656 	u16 page_attr;
9657 	int rc;
9658 
9659 	if (!(bp->fw_dbg_cap & DBG_QCAPS_RESP_FLAGS_CRASHDUMP_HOST_DDR))
9660 		return 0;
9661 
9662 	rc = hwrm_req_init(bp, req, HWRM_DBG_CRASHDUMP_MEDIUM_CFG);
9663 	if (rc)
9664 		return rc;
9665 
9666 	if (BNXT_PAGE_SIZE == 0x2000)
9667 		page_attr = DBG_CRASHDUMP_MEDIUM_CFG_REQ_PG_SIZE_PG_8K;
9668 	else if (BNXT_PAGE_SIZE == 0x10000)
9669 		page_attr = DBG_CRASHDUMP_MEDIUM_CFG_REQ_PG_SIZE_PG_64K;
9670 	else
9671 		page_attr = DBG_CRASHDUMP_MEDIUM_CFG_REQ_PG_SIZE_PG_4K;
9672 	req->pg_size_lvl = cpu_to_le16(page_attr |
9673 				       bp->fw_crash_mem->ring_mem.depth);
9674 	req->pbl = cpu_to_le64(bp->fw_crash_mem->ring_mem.pg_tbl_map);
9675 	req->size = cpu_to_le32(bp->fw_crash_len);
9676 	req->output_dest_flags = cpu_to_le16(BNXT_DBG_CR_DUMP_MDM_CFG_DDR);
9677 	return hwrm_req_send(bp, req);
9678 }
9679 
bnxt_free_crash_dump_mem(struct bnxt * bp)9680 static void bnxt_free_crash_dump_mem(struct bnxt *bp)
9681 {
9682 	if (bp->fw_crash_mem) {
9683 		bnxt_free_ctx_pg_tbls(bp, bp->fw_crash_mem);
9684 		kfree(bp->fw_crash_mem);
9685 		bp->fw_crash_mem = NULL;
9686 	}
9687 }
9688 
bnxt_alloc_crash_dump_mem(struct bnxt * bp)9689 static int bnxt_alloc_crash_dump_mem(struct bnxt *bp)
9690 {
9691 	u32 mem_size = 0;
9692 	int rc;
9693 
9694 	if (!(bp->fw_dbg_cap & DBG_QCAPS_RESP_FLAGS_CRASHDUMP_HOST_DDR))
9695 		return 0;
9696 
9697 	rc = bnxt_hwrm_get_dump_len(bp, BNXT_DUMP_CRASH, &mem_size);
9698 	if (rc)
9699 		return rc;
9700 
9701 	mem_size = round_up(mem_size, 4);
9702 
9703 	/* keep and use the existing pages */
9704 	if (bp->fw_crash_mem &&
9705 	    mem_size <= bp->fw_crash_mem->nr_pages * BNXT_PAGE_SIZE)
9706 		goto alloc_done;
9707 
9708 	if (bp->fw_crash_mem)
9709 		bnxt_free_ctx_pg_tbls(bp, bp->fw_crash_mem);
9710 	else
9711 		bp->fw_crash_mem = kzalloc_obj(*bp->fw_crash_mem);
9712 	if (!bp->fw_crash_mem)
9713 		return -ENOMEM;
9714 
9715 	rc = bnxt_alloc_ctx_pg_tbls(bp, bp->fw_crash_mem, mem_size, 1, NULL);
9716 	if (rc) {
9717 		bnxt_free_crash_dump_mem(bp);
9718 		return rc;
9719 	}
9720 
9721 alloc_done:
9722 	bp->fw_crash_len = mem_size;
9723 	return 0;
9724 }
9725 
bnxt_hwrm_func_resc_qcaps(struct bnxt * bp,bool all)9726 int bnxt_hwrm_func_resc_qcaps(struct bnxt *bp, bool all)
9727 {
9728 	struct hwrm_func_resource_qcaps_output *resp;
9729 	struct hwrm_func_resource_qcaps_input *req;
9730 	struct bnxt_hw_resc *hw_resc = &bp->hw_resc;
9731 	int rc;
9732 
9733 	rc = hwrm_req_init(bp, req, HWRM_FUNC_RESOURCE_QCAPS);
9734 	if (rc)
9735 		return rc;
9736 
9737 	req->fid = cpu_to_le16(0xffff);
9738 	resp = hwrm_req_hold(bp, req);
9739 	rc = hwrm_req_send_silent(bp, req);
9740 	if (rc)
9741 		goto hwrm_func_resc_qcaps_exit;
9742 
9743 	hw_resc->max_tx_sch_inputs = le16_to_cpu(resp->max_tx_scheduler_inputs);
9744 	if (!all)
9745 		goto hwrm_func_resc_qcaps_exit;
9746 
9747 	hw_resc->min_rsscos_ctxs = le16_to_cpu(resp->min_rsscos_ctx);
9748 	hw_resc->max_rsscos_ctxs = le16_to_cpu(resp->max_rsscos_ctx);
9749 	hw_resc->min_cp_rings = le16_to_cpu(resp->min_cmpl_rings);
9750 	hw_resc->max_cp_rings = le16_to_cpu(resp->max_cmpl_rings);
9751 	hw_resc->min_tx_rings = le16_to_cpu(resp->min_tx_rings);
9752 	hw_resc->max_tx_rings = le16_to_cpu(resp->max_tx_rings);
9753 	hw_resc->min_rx_rings = le16_to_cpu(resp->min_rx_rings);
9754 	hw_resc->max_rx_rings = le16_to_cpu(resp->max_rx_rings);
9755 	hw_resc->min_hw_ring_grps = le16_to_cpu(resp->min_hw_ring_grps);
9756 	hw_resc->max_hw_ring_grps = le16_to_cpu(resp->max_hw_ring_grps);
9757 	hw_resc->min_l2_ctxs = le16_to_cpu(resp->min_l2_ctxs);
9758 	hw_resc->max_l2_ctxs = le16_to_cpu(resp->max_l2_ctxs);
9759 	hw_resc->min_vnics = le16_to_cpu(resp->min_vnics);
9760 	hw_resc->max_vnics = le16_to_cpu(resp->max_vnics);
9761 	hw_resc->min_stat_ctxs = le16_to_cpu(resp->min_stat_ctx);
9762 	hw_resc->max_stat_ctxs = le16_to_cpu(resp->max_stat_ctx);
9763 
9764 	if (hw_resc->max_rsscos_ctxs >=
9765 	    hw_resc->max_vnics * BNXT_LARGE_RSS_TO_VNIC_RATIO)
9766 		bp->rss_cap |= BNXT_RSS_CAP_LARGE_RSS_CTX;
9767 
9768 	if (bp->flags & BNXT_FLAG_CHIP_P5_PLUS) {
9769 		u16 max_msix = le16_to_cpu(resp->max_msix);
9770 
9771 		hw_resc->max_nqs = max_msix;
9772 		hw_resc->max_hw_ring_grps = hw_resc->max_rx_rings;
9773 	}
9774 
9775 	if (BNXT_PF(bp)) {
9776 		struct bnxt_pf_info *pf = &bp->pf;
9777 
9778 		pf->vf_resv_strategy =
9779 			le16_to_cpu(resp->vf_reservation_strategy);
9780 		if (pf->vf_resv_strategy > BNXT_VF_RESV_STRATEGY_MINIMAL_STATIC)
9781 			pf->vf_resv_strategy = BNXT_VF_RESV_STRATEGY_MAXIMAL;
9782 	}
9783 hwrm_func_resc_qcaps_exit:
9784 	hwrm_req_drop(bp, req);
9785 	return rc;
9786 }
9787 
__bnxt_hwrm_ptp_qcfg(struct bnxt * bp)9788 static int __bnxt_hwrm_ptp_qcfg(struct bnxt *bp)
9789 {
9790 	struct hwrm_port_mac_ptp_qcfg_output *resp;
9791 	struct hwrm_port_mac_ptp_qcfg_input *req;
9792 	struct bnxt_ptp_cfg *ptp = bp->ptp_cfg;
9793 	u8 flags;
9794 	int rc;
9795 
9796 	if (bp->hwrm_spec_code < 0x10801 || !BNXT_CHIP_P5_PLUS(bp)) {
9797 		rc = -ENODEV;
9798 		goto no_ptp;
9799 	}
9800 
9801 	rc = hwrm_req_init(bp, req, HWRM_PORT_MAC_PTP_QCFG);
9802 	if (rc)
9803 		goto no_ptp;
9804 
9805 	req->port_id = cpu_to_le16(bp->pf.port_id);
9806 	resp = hwrm_req_hold(bp, req);
9807 	rc = hwrm_req_send(bp, req);
9808 	if (rc)
9809 		goto exit;
9810 
9811 	flags = resp->flags;
9812 	if (BNXT_CHIP_P5_AND_MINUS(bp) &&
9813 	    !(flags & PORT_MAC_PTP_QCFG_RESP_FLAGS_HWRM_ACCESS)) {
9814 		rc = -ENODEV;
9815 		goto exit;
9816 	}
9817 	if (!ptp) {
9818 		ptp = kzalloc_obj(*ptp);
9819 		if (!ptp) {
9820 			rc = -ENOMEM;
9821 			goto exit;
9822 		}
9823 		ptp->bp = bp;
9824 		bp->ptp_cfg = ptp;
9825 	}
9826 
9827 	if (flags &
9828 	    (PORT_MAC_PTP_QCFG_RESP_FLAGS_PARTIAL_DIRECT_ACCESS_REF_CLOCK |
9829 	     PORT_MAC_PTP_QCFG_RESP_FLAGS_64B_PHC_TIME)) {
9830 		ptp->refclk_regs[0] = le32_to_cpu(resp->ts_ref_clock_reg_lower);
9831 		ptp->refclk_regs[1] = le32_to_cpu(resp->ts_ref_clock_reg_upper);
9832 	} else if (BNXT_CHIP_P5(bp)) {
9833 		ptp->refclk_regs[0] = BNXT_TS_REG_TIMESYNC_TS0_LOWER;
9834 		ptp->refclk_regs[1] = BNXT_TS_REG_TIMESYNC_TS0_UPPER;
9835 	} else {
9836 		rc = -ENODEV;
9837 		goto exit;
9838 	}
9839 	ptp->rtc_configured =
9840 		(flags & PORT_MAC_PTP_QCFG_RESP_FLAGS_RTC_CONFIGURED) != 0;
9841 	rc = bnxt_ptp_init(bp);
9842 	if (rc)
9843 		netdev_warn(bp->dev, "PTP initialization failed.\n");
9844 exit:
9845 	hwrm_req_drop(bp, req);
9846 	if (!rc)
9847 		return 0;
9848 
9849 no_ptp:
9850 	bnxt_ptp_clear(bp);
9851 	kfree(ptp);
9852 	bp->ptp_cfg = NULL;
9853 	return rc;
9854 }
9855 
__bnxt_hwrm_func_qcaps(struct bnxt * bp)9856 static int __bnxt_hwrm_func_qcaps(struct bnxt *bp)
9857 {
9858 	u32 flags, flags_ext, flags_ext2, flags_ext3;
9859 	struct bnxt_hw_resc *hw_resc = &bp->hw_resc;
9860 	struct hwrm_func_qcaps_output *resp;
9861 	struct hwrm_func_qcaps_input *req;
9862 	int rc;
9863 
9864 	rc = hwrm_req_init(bp, req, HWRM_FUNC_QCAPS);
9865 	if (rc)
9866 		return rc;
9867 
9868 	req->fid = cpu_to_le16(0xffff);
9869 	resp = hwrm_req_hold(bp, req);
9870 	rc = hwrm_req_send(bp, req);
9871 	if (rc)
9872 		goto hwrm_func_qcaps_exit;
9873 
9874 	flags = le32_to_cpu(resp->flags);
9875 	if (flags & FUNC_QCAPS_RESP_FLAGS_ROCE_V1_SUPPORTED)
9876 		bp->flags |= BNXT_FLAG_ROCEV1_CAP;
9877 	if (flags & FUNC_QCAPS_RESP_FLAGS_ROCE_V2_SUPPORTED)
9878 		bp->flags |= BNXT_FLAG_ROCEV2_CAP;
9879 	if (flags & FUNC_QCAPS_RESP_FLAGS_LINK_ADMIN_STATUS_SUPPORTED)
9880 		bp->fw_cap |= BNXT_FW_CAP_LINK_ADMIN;
9881 	if (flags & FUNC_QCAPS_RESP_FLAGS_PCIE_STATS_SUPPORTED)
9882 		bp->fw_cap |= BNXT_FW_CAP_PCIE_STATS_SUPPORTED;
9883 	if (flags & FUNC_QCAPS_RESP_FLAGS_HOT_RESET_CAPABLE)
9884 		bp->fw_cap |= BNXT_FW_CAP_HOT_RESET;
9885 	if (flags & FUNC_QCAPS_RESP_FLAGS_EXT_STATS_SUPPORTED)
9886 		bp->fw_cap |= BNXT_FW_CAP_EXT_STATS_SUPPORTED;
9887 	if (flags &  FUNC_QCAPS_RESP_FLAGS_ERROR_RECOVERY_CAPABLE)
9888 		bp->fw_cap |= BNXT_FW_CAP_ERROR_RECOVERY;
9889 	if (flags & FUNC_QCAPS_RESP_FLAGS_ERR_RECOVER_RELOAD)
9890 		bp->fw_cap |= BNXT_FW_CAP_ERR_RECOVER_RELOAD;
9891 	if (!(flags & FUNC_QCAPS_RESP_FLAGS_VLAN_ACCELERATION_TX_DISABLED))
9892 		bp->fw_cap |= BNXT_FW_CAP_VLAN_TX_INSERT;
9893 	if (flags & FUNC_QCAPS_RESP_FLAGS_DBG_QCAPS_CMD_SUPPORTED)
9894 		bp->fw_cap |= BNXT_FW_CAP_DBG_QCAPS;
9895 
9896 	flags_ext = le32_to_cpu(resp->flags_ext);
9897 	if (flags_ext & FUNC_QCAPS_RESP_FLAGS_EXT_EXT_HW_STATS_SUPPORTED)
9898 		bp->fw_cap |= BNXT_FW_CAP_EXT_HW_STATS_SUPPORTED;
9899 	if (BNXT_PF(bp) && (flags_ext & FUNC_QCAPS_RESP_FLAGS_EXT_PTP_PPS_SUPPORTED))
9900 		bp->fw_cap |= BNXT_FW_CAP_PTP_PPS;
9901 	if (flags_ext & FUNC_QCAPS_RESP_FLAGS_EXT_PTP_PTM_SUPPORTED)
9902 		bp->fw_cap |= BNXT_FW_CAP_PTP_PTM;
9903 	if (flags_ext & FUNC_QCAPS_RESP_FLAGS_EXT_PTP_64BIT_RTC_SUPPORTED)
9904 		bp->fw_cap |= BNXT_FW_CAP_PTP_RTC;
9905 	if (BNXT_PF(bp) && (flags_ext & FUNC_QCAPS_RESP_FLAGS_EXT_HOT_RESET_IF_SUPPORT))
9906 		bp->fw_cap |= BNXT_FW_CAP_HOT_RESET_IF;
9907 	if (BNXT_PF(bp) && (flags_ext & FUNC_QCAPS_RESP_FLAGS_EXT_FW_LIVEPATCH_SUPPORTED))
9908 		bp->fw_cap |= BNXT_FW_CAP_LIVEPATCH;
9909 	if (flags_ext & FUNC_QCAPS_RESP_FLAGS_EXT_NPAR_1_2_SUPPORTED)
9910 		bp->fw_cap |= BNXT_FW_CAP_NPAR_1_2;
9911 	if (BNXT_PF(bp) && (flags_ext & FUNC_QCAPS_RESP_FLAGS_EXT_DFLT_VLAN_TPID_PCP_SUPPORTED))
9912 		bp->fw_cap |= BNXT_FW_CAP_DFLT_VLAN_TPID_PCP;
9913 	if (flags_ext & FUNC_QCAPS_RESP_FLAGS_EXT_BS_V2_SUPPORTED)
9914 		bp->fw_cap |= BNXT_FW_CAP_BACKING_STORE_V2;
9915 	if (flags_ext & FUNC_QCAPS_RESP_FLAGS_EXT_TX_COAL_CMPL_CAP)
9916 		bp->flags |= BNXT_FLAG_TX_COAL_CMPL;
9917 
9918 	flags_ext2 = le32_to_cpu(resp->flags_ext2);
9919 	if (flags_ext2 & FUNC_QCAPS_RESP_FLAGS_EXT2_RX_ALL_PKTS_TIMESTAMPS_SUPPORTED)
9920 		bp->fw_cap |= BNXT_FW_CAP_RX_ALL_PKT_TS;
9921 	if (flags_ext2 & FUNC_QCAPS_RESP_FLAGS_EXT2_UDP_GSO_SUPPORTED)
9922 		bp->flags |= BNXT_FLAG_UDP_GSO_CAP;
9923 	if (flags_ext2 & FUNC_QCAPS_RESP_FLAGS_EXT2_TX_PKT_TS_CMPL_SUPPORTED)
9924 		bp->fw_cap |= BNXT_FW_CAP_TX_TS_CMP;
9925 	if (flags_ext2 &
9926 	    FUNC_QCAPS_RESP_FLAGS_EXT2_SW_MAX_RESOURCE_LIMITS_SUPPORTED)
9927 		bp->fw_cap |= BNXT_FW_CAP_SW_MAX_RESOURCE_LIMITS;
9928 	if (BNXT_PF(bp) &&
9929 	    (flags_ext2 & FUNC_QCAPS_RESP_FLAGS_EXT2_ROCE_VF_RESOURCE_MGMT_SUPPORTED))
9930 		bp->fw_cap |= BNXT_FW_CAP_ROCE_VF_RESC_MGMT_SUPPORTED;
9931 
9932 	flags_ext3 = le32_to_cpu(resp->flags_ext3);
9933 	if (flags_ext3 & FUNC_QCAPS_RESP_FLAGS_EXT3_ROCE_VF_DYN_ALLOC_SUPPORT)
9934 		bp->fw_cap |= BNXT_FW_CAP_ROCE_VF_DYN_ALLOC_SUPPORT;
9935 	if (flags_ext3 & FUNC_QCAPS_RESP_FLAGS_EXT3_MIRROR_ON_ROCE_SUPPORTED)
9936 		bp->fw_cap |= BNXT_FW_CAP_MIRROR_ON_ROCE;
9937 
9938 	bp->tx_push_thresh = 0;
9939 	if ((flags & FUNC_QCAPS_RESP_FLAGS_PUSH_MODE_SUPPORTED) &&
9940 	    BNXT_FW_MAJ(bp) > 217)
9941 		bp->tx_push_thresh = BNXT_TX_PUSH_THRESH;
9942 
9943 	hw_resc->max_rsscos_ctxs = le16_to_cpu(resp->max_rsscos_ctx);
9944 	hw_resc->max_cp_rings = le16_to_cpu(resp->max_cmpl_rings);
9945 	hw_resc->max_tx_rings = le16_to_cpu(resp->max_tx_rings);
9946 	hw_resc->max_rx_rings = le16_to_cpu(resp->max_rx_rings);
9947 	hw_resc->max_hw_ring_grps = le32_to_cpu(resp->max_hw_ring_grps);
9948 	if (!hw_resc->max_hw_ring_grps)
9949 		hw_resc->max_hw_ring_grps = hw_resc->max_tx_rings;
9950 	hw_resc->max_l2_ctxs = le16_to_cpu(resp->max_l2_ctxs);
9951 	hw_resc->max_vnics = le16_to_cpu(resp->max_vnics);
9952 	hw_resc->max_stat_ctxs = le16_to_cpu(resp->max_stat_ctx);
9953 
9954 	hw_resc->max_encap_records = le32_to_cpu(resp->max_encap_records);
9955 	hw_resc->max_decap_records = le32_to_cpu(resp->max_decap_records);
9956 	hw_resc->max_tx_em_flows = le32_to_cpu(resp->max_tx_em_flows);
9957 	hw_resc->max_tx_wm_flows = le32_to_cpu(resp->max_tx_wm_flows);
9958 	hw_resc->max_rx_em_flows = le32_to_cpu(resp->max_rx_em_flows);
9959 	hw_resc->max_rx_wm_flows = le32_to_cpu(resp->max_rx_wm_flows);
9960 
9961 	if (BNXT_PF(bp)) {
9962 		struct bnxt_pf_info *pf = &bp->pf;
9963 
9964 		pf->fw_fid = le16_to_cpu(resp->fid);
9965 		pf->port_id = le16_to_cpu(resp->port_id);
9966 		memcpy(pf->mac_addr, resp->mac_address, ETH_ALEN);
9967 		pf->first_vf_id = le16_to_cpu(resp->first_vf_id);
9968 		pf->max_vfs = le16_to_cpu(resp->max_vfs);
9969 		bp->flags &= ~BNXT_FLAG_WOL_CAP;
9970 		if (flags & FUNC_QCAPS_RESP_FLAGS_WOL_MAGICPKT_SUPPORTED)
9971 			bp->flags |= BNXT_FLAG_WOL_CAP;
9972 		if (flags & FUNC_QCAPS_RESP_FLAGS_PTP_SUPPORTED) {
9973 			bp->fw_cap |= BNXT_FW_CAP_PTP;
9974 		} else {
9975 			bnxt_ptp_clear(bp);
9976 			kfree(bp->ptp_cfg);
9977 			bp->ptp_cfg = NULL;
9978 		}
9979 	} else {
9980 #ifdef CONFIG_BNXT_SRIOV
9981 		struct bnxt_vf_info *vf = &bp->vf;
9982 
9983 		vf->fw_fid = le16_to_cpu(resp->fid);
9984 		memcpy(vf->mac_addr, resp->mac_address, ETH_ALEN);
9985 #endif
9986 	}
9987 	bp->tso_max_segs = le16_to_cpu(resp->max_tso_segs);
9988 
9989 hwrm_func_qcaps_exit:
9990 	hwrm_req_drop(bp, req);
9991 	return rc;
9992 }
9993 
bnxt_hwrm_dbg_qcaps(struct bnxt * bp)9994 static void bnxt_hwrm_dbg_qcaps(struct bnxt *bp)
9995 {
9996 	struct hwrm_dbg_qcaps_output *resp;
9997 	struct hwrm_dbg_qcaps_input *req;
9998 	int rc;
9999 
10000 	bp->fw_dbg_cap = 0;
10001 	if (!(bp->fw_cap & BNXT_FW_CAP_DBG_QCAPS))
10002 		return;
10003 
10004 	rc = hwrm_req_init(bp, req, HWRM_DBG_QCAPS);
10005 	if (rc)
10006 		return;
10007 
10008 	req->fid = cpu_to_le16(0xffff);
10009 	resp = hwrm_req_hold(bp, req);
10010 	rc = hwrm_req_send(bp, req);
10011 	if (rc)
10012 		goto hwrm_dbg_qcaps_exit;
10013 
10014 	bp->fw_dbg_cap = le32_to_cpu(resp->flags);
10015 
10016 hwrm_dbg_qcaps_exit:
10017 	hwrm_req_drop(bp, req);
10018 }
10019 
10020 static int bnxt_hwrm_queue_qportcfg(struct bnxt *bp);
10021 
bnxt_hwrm_func_qcaps(struct bnxt * bp)10022 int bnxt_hwrm_func_qcaps(struct bnxt *bp)
10023 {
10024 	int rc;
10025 
10026 	rc = __bnxt_hwrm_func_qcaps(bp);
10027 	if (rc)
10028 		return rc;
10029 
10030 	bnxt_hwrm_dbg_qcaps(bp);
10031 
10032 	rc = bnxt_hwrm_queue_qportcfg(bp);
10033 	if (rc) {
10034 		netdev_err(bp->dev, "hwrm query qportcfg failure rc: %d\n", rc);
10035 		return rc;
10036 	}
10037 	if (bp->hwrm_spec_code >= 0x10803) {
10038 		rc = bnxt_alloc_ctx_mem(bp);
10039 		if (rc)
10040 			return rc;
10041 		rc = bnxt_hwrm_func_resc_qcaps(bp, true);
10042 		if (!rc)
10043 			bp->fw_cap |= BNXT_FW_CAP_NEW_RM;
10044 	}
10045 	return 0;
10046 }
10047 
bnxt_hwrm_cfa_adv_flow_mgnt_qcaps(struct bnxt * bp)10048 static int bnxt_hwrm_cfa_adv_flow_mgnt_qcaps(struct bnxt *bp)
10049 {
10050 	struct hwrm_cfa_adv_flow_mgnt_qcaps_output *resp;
10051 	struct hwrm_cfa_adv_flow_mgnt_qcaps_input *req;
10052 	u32 flags;
10053 	int rc;
10054 
10055 	if (!(bp->fw_cap & BNXT_FW_CAP_CFA_ADV_FLOW))
10056 		return 0;
10057 
10058 	rc = hwrm_req_init(bp, req, HWRM_CFA_ADV_FLOW_MGNT_QCAPS);
10059 	if (rc)
10060 		return rc;
10061 
10062 	resp = hwrm_req_hold(bp, req);
10063 	rc = hwrm_req_send(bp, req);
10064 	if (rc)
10065 		goto hwrm_cfa_adv_qcaps_exit;
10066 
10067 	flags = le32_to_cpu(resp->flags);
10068 	if (flags &
10069 	    CFA_ADV_FLOW_MGNT_QCAPS_RESP_FLAGS_RFS_RING_TBL_IDX_V2_SUPPORTED)
10070 		bp->fw_cap |= BNXT_FW_CAP_CFA_RFS_RING_TBL_IDX_V2;
10071 
10072 	if (flags &
10073 	    CFA_ADV_FLOW_MGNT_QCAPS_RESP_FLAGS_RFS_RING_TBL_IDX_V3_SUPPORTED)
10074 		bp->fw_cap |= BNXT_FW_CAP_CFA_RFS_RING_TBL_IDX_V3;
10075 
10076 	if (flags &
10077 	    CFA_ADV_FLOW_MGNT_QCAPS_RESP_FLAGS_NTUPLE_FLOW_RX_EXT_IP_PROTO_SUPPORTED)
10078 		bp->fw_cap |= BNXT_FW_CAP_CFA_NTUPLE_RX_EXT_IP_PROTO;
10079 
10080 hwrm_cfa_adv_qcaps_exit:
10081 	hwrm_req_drop(bp, req);
10082 	return rc;
10083 }
10084 
__bnxt_alloc_fw_health(struct bnxt * bp)10085 static int __bnxt_alloc_fw_health(struct bnxt *bp)
10086 {
10087 	if (bp->fw_health)
10088 		return 0;
10089 
10090 	bp->fw_health = kzalloc_obj(*bp->fw_health);
10091 	if (!bp->fw_health)
10092 		return -ENOMEM;
10093 
10094 	mutex_init(&bp->fw_health->lock);
10095 	return 0;
10096 }
10097 
bnxt_alloc_fw_health(struct bnxt * bp)10098 static int bnxt_alloc_fw_health(struct bnxt *bp)
10099 {
10100 	int rc;
10101 
10102 	if (!(bp->fw_cap & BNXT_FW_CAP_HOT_RESET) &&
10103 	    !(bp->fw_cap & BNXT_FW_CAP_ERROR_RECOVERY))
10104 		return 0;
10105 
10106 	rc = __bnxt_alloc_fw_health(bp);
10107 	if (rc) {
10108 		bp->fw_cap &= ~BNXT_FW_CAP_HOT_RESET;
10109 		bp->fw_cap &= ~BNXT_FW_CAP_ERROR_RECOVERY;
10110 		return rc;
10111 	}
10112 
10113 	return 0;
10114 }
10115 
__bnxt_map_fw_health_reg(struct bnxt * bp,u32 reg)10116 static void __bnxt_map_fw_health_reg(struct bnxt *bp, u32 reg)
10117 {
10118 	writel(reg & BNXT_GRC_BASE_MASK, bp->bar0 +
10119 					 BNXT_GRCPF_REG_WINDOW_BASE_OUT +
10120 					 BNXT_FW_HEALTH_WIN_MAP_OFF);
10121 }
10122 
bnxt_inv_fw_health_reg(struct bnxt * bp)10123 static void bnxt_inv_fw_health_reg(struct bnxt *bp)
10124 {
10125 	struct bnxt_fw_health *fw_health = bp->fw_health;
10126 	u32 reg_type;
10127 
10128 	if (!fw_health)
10129 		return;
10130 
10131 	reg_type = BNXT_FW_HEALTH_REG_TYPE(fw_health->regs[BNXT_FW_HEALTH_REG]);
10132 	if (reg_type == BNXT_FW_HEALTH_REG_TYPE_GRC)
10133 		fw_health->status_reliable = false;
10134 
10135 	reg_type = BNXT_FW_HEALTH_REG_TYPE(fw_health->regs[BNXT_FW_RESET_CNT_REG]);
10136 	if (reg_type == BNXT_FW_HEALTH_REG_TYPE_GRC)
10137 		fw_health->resets_reliable = false;
10138 }
10139 
bnxt_try_map_fw_health_reg(struct bnxt * bp)10140 static void bnxt_try_map_fw_health_reg(struct bnxt *bp)
10141 {
10142 	void __iomem *hs;
10143 	u32 status_loc;
10144 	u32 reg_type;
10145 	u32 sig;
10146 
10147 	if (bp->fw_health)
10148 		bp->fw_health->status_reliable = false;
10149 
10150 	__bnxt_map_fw_health_reg(bp, HCOMM_STATUS_STRUCT_LOC);
10151 	hs = bp->bar0 + BNXT_FW_HEALTH_WIN_OFF(HCOMM_STATUS_STRUCT_LOC);
10152 
10153 	sig = readl(hs + offsetof(struct hcomm_status, sig_ver));
10154 	if ((sig & HCOMM_STATUS_SIGNATURE_MASK) != HCOMM_STATUS_SIGNATURE_VAL) {
10155 		if (!bp->chip_num) {
10156 			__bnxt_map_fw_health_reg(bp, BNXT_GRC_REG_BASE);
10157 			bp->chip_num = readl(bp->bar0 +
10158 					     BNXT_FW_HEALTH_WIN_BASE +
10159 					     BNXT_GRC_REG_CHIP_NUM);
10160 		}
10161 		if (!BNXT_CHIP_P5_PLUS(bp))
10162 			return;
10163 
10164 		status_loc = BNXT_GRC_REG_STATUS_P5 |
10165 			     BNXT_FW_HEALTH_REG_TYPE_BAR0;
10166 	} else {
10167 		status_loc = readl(hs + offsetof(struct hcomm_status,
10168 						 fw_status_loc));
10169 	}
10170 
10171 	if (__bnxt_alloc_fw_health(bp)) {
10172 		netdev_warn(bp->dev, "no memory for firmware status checks\n");
10173 		return;
10174 	}
10175 
10176 	bp->fw_health->regs[BNXT_FW_HEALTH_REG] = status_loc;
10177 	reg_type = BNXT_FW_HEALTH_REG_TYPE(status_loc);
10178 	if (reg_type == BNXT_FW_HEALTH_REG_TYPE_GRC) {
10179 		__bnxt_map_fw_health_reg(bp, status_loc);
10180 		bp->fw_health->mapped_regs[BNXT_FW_HEALTH_REG] =
10181 			BNXT_FW_HEALTH_WIN_OFF(status_loc);
10182 	}
10183 
10184 	bp->fw_health->status_reliable = true;
10185 }
10186 
bnxt_map_fw_health_regs(struct bnxt * bp)10187 static int bnxt_map_fw_health_regs(struct bnxt *bp)
10188 {
10189 	struct bnxt_fw_health *fw_health = bp->fw_health;
10190 	u32 reg_base = 0xffffffff;
10191 	int i;
10192 
10193 	bp->fw_health->status_reliable = false;
10194 	bp->fw_health->resets_reliable = false;
10195 	/* Only pre-map the monitoring GRC registers using window 3 */
10196 	for (i = 0; i < 4; i++) {
10197 		u32 reg = fw_health->regs[i];
10198 
10199 		if (BNXT_FW_HEALTH_REG_TYPE(reg) != BNXT_FW_HEALTH_REG_TYPE_GRC)
10200 			continue;
10201 		if (reg_base == 0xffffffff)
10202 			reg_base = reg & BNXT_GRC_BASE_MASK;
10203 		if ((reg & BNXT_GRC_BASE_MASK) != reg_base)
10204 			return -ERANGE;
10205 		fw_health->mapped_regs[i] = BNXT_FW_HEALTH_WIN_OFF(reg);
10206 	}
10207 	bp->fw_health->status_reliable = true;
10208 	bp->fw_health->resets_reliable = true;
10209 	if (reg_base == 0xffffffff)
10210 		return 0;
10211 
10212 	__bnxt_map_fw_health_reg(bp, reg_base);
10213 	return 0;
10214 }
10215 
bnxt_remap_fw_health_regs(struct bnxt * bp)10216 static void bnxt_remap_fw_health_regs(struct bnxt *bp)
10217 {
10218 	if (!bp->fw_health)
10219 		return;
10220 
10221 	if (bp->fw_cap & BNXT_FW_CAP_ERROR_RECOVERY) {
10222 		bp->fw_health->status_reliable = true;
10223 		bp->fw_health->resets_reliable = true;
10224 	} else {
10225 		bnxt_try_map_fw_health_reg(bp);
10226 	}
10227 }
10228 
bnxt_hwrm_error_recovery_qcfg(struct bnxt * bp)10229 static int bnxt_hwrm_error_recovery_qcfg(struct bnxt *bp)
10230 {
10231 	struct bnxt_fw_health *fw_health = bp->fw_health;
10232 	struct hwrm_error_recovery_qcfg_output *resp;
10233 	struct hwrm_error_recovery_qcfg_input *req;
10234 	int rc, i;
10235 
10236 	if (!(bp->fw_cap & BNXT_FW_CAP_ERROR_RECOVERY))
10237 		return 0;
10238 
10239 	rc = hwrm_req_init(bp, req, HWRM_ERROR_RECOVERY_QCFG);
10240 	if (rc)
10241 		return rc;
10242 
10243 	resp = hwrm_req_hold(bp, req);
10244 	rc = hwrm_req_send(bp, req);
10245 	if (rc)
10246 		goto err_recovery_out;
10247 	fw_health->flags = le32_to_cpu(resp->flags);
10248 	if ((fw_health->flags & ERROR_RECOVERY_QCFG_RESP_FLAGS_CO_CPU) &&
10249 	    !(bp->fw_cap & BNXT_FW_CAP_KONG_MB_CHNL)) {
10250 		rc = -EINVAL;
10251 		goto err_recovery_out;
10252 	}
10253 	fw_health->polling_dsecs = le32_to_cpu(resp->driver_polling_freq);
10254 	fw_health->master_func_wait_dsecs =
10255 		le32_to_cpu(resp->master_func_wait_period);
10256 	fw_health->normal_func_wait_dsecs =
10257 		le32_to_cpu(resp->normal_func_wait_period);
10258 	fw_health->post_reset_wait_dsecs =
10259 		le32_to_cpu(resp->master_func_wait_period_after_reset);
10260 	fw_health->post_reset_max_wait_dsecs =
10261 		le32_to_cpu(resp->max_bailout_time_after_reset);
10262 	fw_health->regs[BNXT_FW_HEALTH_REG] =
10263 		le32_to_cpu(resp->fw_health_status_reg);
10264 	fw_health->regs[BNXT_FW_HEARTBEAT_REG] =
10265 		le32_to_cpu(resp->fw_heartbeat_reg);
10266 	fw_health->regs[BNXT_FW_RESET_CNT_REG] =
10267 		le32_to_cpu(resp->fw_reset_cnt_reg);
10268 	fw_health->regs[BNXT_FW_RESET_INPROG_REG] =
10269 		le32_to_cpu(resp->reset_inprogress_reg);
10270 	fw_health->fw_reset_inprog_reg_mask =
10271 		le32_to_cpu(resp->reset_inprogress_reg_mask);
10272 	fw_health->fw_reset_seq_cnt = resp->reg_array_cnt;
10273 	if (fw_health->fw_reset_seq_cnt >= 16) {
10274 		rc = -EINVAL;
10275 		goto err_recovery_out;
10276 	}
10277 	for (i = 0; i < fw_health->fw_reset_seq_cnt; i++) {
10278 		fw_health->fw_reset_seq_regs[i] =
10279 			le32_to_cpu(resp->reset_reg[i]);
10280 		fw_health->fw_reset_seq_vals[i] =
10281 			le32_to_cpu(resp->reset_reg_val[i]);
10282 		fw_health->fw_reset_seq_delay_msec[i] =
10283 			resp->delay_after_reset[i];
10284 	}
10285 err_recovery_out:
10286 	hwrm_req_drop(bp, req);
10287 	if (!rc)
10288 		rc = bnxt_map_fw_health_regs(bp);
10289 	if (rc)
10290 		bp->fw_cap &= ~BNXT_FW_CAP_ERROR_RECOVERY;
10291 	return rc;
10292 }
10293 
bnxt_hwrm_func_reset(struct bnxt * bp)10294 static int bnxt_hwrm_func_reset(struct bnxt *bp)
10295 {
10296 	struct hwrm_func_reset_input *req;
10297 	int rc;
10298 
10299 	rc = hwrm_req_init(bp, req, HWRM_FUNC_RESET);
10300 	if (rc)
10301 		return rc;
10302 
10303 	req->enables = 0;
10304 	hwrm_req_timeout(bp, req, HWRM_RESET_TIMEOUT);
10305 	return hwrm_req_send(bp, req);
10306 }
10307 
bnxt_nvm_cfg_ver_get(struct bnxt * bp)10308 static void bnxt_nvm_cfg_ver_get(struct bnxt *bp)
10309 {
10310 	struct hwrm_nvm_get_dev_info_output nvm_info;
10311 
10312 	if (!bnxt_hwrm_nvm_get_dev_info(bp, &nvm_info))
10313 		snprintf(bp->nvm_cfg_ver, FW_VER_STR_LEN, "%d.%d.%d",
10314 			 nvm_info.nvm_cfg_ver_maj, nvm_info.nvm_cfg_ver_min,
10315 			 nvm_info.nvm_cfg_ver_upd);
10316 }
10317 
bnxt_hwrm_queue_qportcfg(struct bnxt * bp)10318 static int bnxt_hwrm_queue_qportcfg(struct bnxt *bp)
10319 {
10320 	struct hwrm_queue_qportcfg_output *resp;
10321 	struct hwrm_queue_qportcfg_input *req;
10322 	u8 i, j, *qptr;
10323 	bool no_rdma;
10324 	int rc = 0;
10325 
10326 	rc = hwrm_req_init(bp, req, HWRM_QUEUE_QPORTCFG);
10327 	if (rc)
10328 		return rc;
10329 
10330 	resp = hwrm_req_hold(bp, req);
10331 	rc = hwrm_req_send(bp, req);
10332 	if (rc)
10333 		goto qportcfg_exit;
10334 
10335 	if (!resp->max_configurable_queues) {
10336 		rc = -EINVAL;
10337 		goto qportcfg_exit;
10338 	}
10339 	bp->max_tc = resp->max_configurable_queues;
10340 	bp->max_lltc = resp->max_configurable_lossless_queues;
10341 	if (bp->max_tc > BNXT_MAX_QUEUE)
10342 		bp->max_tc = BNXT_MAX_QUEUE;
10343 
10344 	no_rdma = !(bp->flags & BNXT_FLAG_ROCE_CAP);
10345 	qptr = &resp->queue_id0;
10346 	for (i = 0, j = 0; i < bp->max_tc; i++) {
10347 		bp->q_info[j].queue_id = *qptr;
10348 		bp->q_ids[i] = *qptr++;
10349 		bp->q_info[j].queue_profile = *qptr++;
10350 		bp->tc_to_qidx[j] = j;
10351 		if (!BNXT_CNPQ(bp->q_info[j].queue_profile) ||
10352 		    (no_rdma && BNXT_PF(bp)))
10353 			j++;
10354 	}
10355 	bp->max_q = bp->max_tc;
10356 	bp->max_tc = max_t(u8, j, 1);
10357 
10358 	if (resp->queue_cfg_info & QUEUE_QPORTCFG_RESP_QUEUE_CFG_INFO_ASYM_CFG)
10359 		bp->max_tc = 1;
10360 
10361 	if (bp->max_lltc > bp->max_tc)
10362 		bp->max_lltc = bp->max_tc;
10363 
10364 qportcfg_exit:
10365 	hwrm_req_drop(bp, req);
10366 	return rc;
10367 }
10368 
bnxt_hwrm_poll(struct bnxt * bp)10369 static int bnxt_hwrm_poll(struct bnxt *bp)
10370 {
10371 	struct hwrm_ver_get_input *req;
10372 	int rc;
10373 
10374 	rc = hwrm_req_init(bp, req, HWRM_VER_GET);
10375 	if (rc)
10376 		return rc;
10377 
10378 	req->hwrm_intf_maj = HWRM_VERSION_MAJOR;
10379 	req->hwrm_intf_min = HWRM_VERSION_MINOR;
10380 	req->hwrm_intf_upd = HWRM_VERSION_UPDATE;
10381 
10382 	hwrm_req_flags(bp, req, BNXT_HWRM_CTX_SILENT | BNXT_HWRM_FULL_WAIT);
10383 	rc = hwrm_req_send(bp, req);
10384 	return rc;
10385 }
10386 
bnxt_hwrm_ver_get(struct bnxt * bp)10387 static int bnxt_hwrm_ver_get(struct bnxt *bp)
10388 {
10389 	struct hwrm_ver_get_output *resp;
10390 	struct hwrm_ver_get_input *req;
10391 	u16 fw_maj, fw_min, fw_bld, fw_rsv;
10392 	u32 dev_caps_cfg, hwrm_ver;
10393 	int rc, len, max_tmo_secs;
10394 
10395 	rc = hwrm_req_init(bp, req, HWRM_VER_GET);
10396 	if (rc)
10397 		return rc;
10398 
10399 	hwrm_req_flags(bp, req, BNXT_HWRM_FULL_WAIT);
10400 	bp->hwrm_max_req_len = HWRM_MAX_REQ_LEN;
10401 	req->hwrm_intf_maj = HWRM_VERSION_MAJOR;
10402 	req->hwrm_intf_min = HWRM_VERSION_MINOR;
10403 	req->hwrm_intf_upd = HWRM_VERSION_UPDATE;
10404 
10405 	resp = hwrm_req_hold(bp, req);
10406 	rc = hwrm_req_send(bp, req);
10407 	if (rc)
10408 		goto hwrm_ver_get_exit;
10409 
10410 	memcpy(&bp->ver_resp, resp, sizeof(struct hwrm_ver_get_output));
10411 
10412 	bp->hwrm_spec_code = resp->hwrm_intf_maj_8b << 16 |
10413 			     resp->hwrm_intf_min_8b << 8 |
10414 			     resp->hwrm_intf_upd_8b;
10415 	if (resp->hwrm_intf_maj_8b < 1) {
10416 		netdev_warn(bp->dev, "HWRM interface %d.%d.%d is older than 1.0.0.\n",
10417 			    resp->hwrm_intf_maj_8b, resp->hwrm_intf_min_8b,
10418 			    resp->hwrm_intf_upd_8b);
10419 		netdev_warn(bp->dev, "Please update firmware with HWRM interface 1.0.0 or newer.\n");
10420 	}
10421 
10422 	hwrm_ver = HWRM_VERSION_MAJOR << 16 | HWRM_VERSION_MINOR << 8 |
10423 			HWRM_VERSION_UPDATE;
10424 
10425 	if (bp->hwrm_spec_code > hwrm_ver)
10426 		snprintf(bp->hwrm_ver_supp, FW_VER_STR_LEN, "%d.%d.%d",
10427 			 HWRM_VERSION_MAJOR, HWRM_VERSION_MINOR,
10428 			 HWRM_VERSION_UPDATE);
10429 	else
10430 		snprintf(bp->hwrm_ver_supp, FW_VER_STR_LEN, "%d.%d.%d",
10431 			 resp->hwrm_intf_maj_8b, resp->hwrm_intf_min_8b,
10432 			 resp->hwrm_intf_upd_8b);
10433 
10434 	fw_maj = le16_to_cpu(resp->hwrm_fw_major);
10435 	if (bp->hwrm_spec_code > 0x10803 && fw_maj) {
10436 		fw_min = le16_to_cpu(resp->hwrm_fw_minor);
10437 		fw_bld = le16_to_cpu(resp->hwrm_fw_build);
10438 		fw_rsv = le16_to_cpu(resp->hwrm_fw_patch);
10439 		len = FW_VER_STR_LEN;
10440 	} else {
10441 		fw_maj = resp->hwrm_fw_maj_8b;
10442 		fw_min = resp->hwrm_fw_min_8b;
10443 		fw_bld = resp->hwrm_fw_bld_8b;
10444 		fw_rsv = resp->hwrm_fw_rsvd_8b;
10445 		len = BC_HWRM_STR_LEN;
10446 	}
10447 	bp->fw_ver_code = BNXT_FW_VER_CODE(fw_maj, fw_min, fw_bld, fw_rsv);
10448 	snprintf(bp->fw_ver_str, len, "%d.%d.%d.%d", fw_maj, fw_min, fw_bld,
10449 		 fw_rsv);
10450 
10451 	if (strlen(resp->active_pkg_name)) {
10452 		int fw_ver_len = strlen(bp->fw_ver_str);
10453 
10454 		snprintf(bp->fw_ver_str + fw_ver_len,
10455 			 FW_VER_STR_LEN - fw_ver_len - 1, "/pkg %s",
10456 			 resp->active_pkg_name);
10457 		bp->fw_cap |= BNXT_FW_CAP_PKG_VER;
10458 	}
10459 
10460 	bp->hwrm_cmd_timeout = le16_to_cpu(resp->def_req_timeout);
10461 	if (!bp->hwrm_cmd_timeout)
10462 		bp->hwrm_cmd_timeout = DFLT_HWRM_CMD_TIMEOUT;
10463 	bp->hwrm_cmd_max_timeout = le16_to_cpu(resp->max_req_timeout) * 1000;
10464 	if (!bp->hwrm_cmd_max_timeout)
10465 		bp->hwrm_cmd_max_timeout = HWRM_CMD_MAX_TIMEOUT;
10466 	max_tmo_secs = bp->hwrm_cmd_max_timeout / 1000;
10467 #ifdef CONFIG_DETECT_HUNG_TASK
10468 	if (bp->hwrm_cmd_max_timeout > HWRM_CMD_MAX_TIMEOUT ||
10469 	    max_tmo_secs > CONFIG_DEFAULT_HUNG_TASK_TIMEOUT) {
10470 		netdev_warn(bp->dev, "Device requests max timeout of %d seconds, may trigger hung task watchdog (kernel default %ds)\n",
10471 			    max_tmo_secs, CONFIG_DEFAULT_HUNG_TASK_TIMEOUT);
10472 	}
10473 #endif
10474 
10475 	if (resp->hwrm_intf_maj_8b >= 1) {
10476 		bp->hwrm_max_req_len = le16_to_cpu(resp->max_req_win_len);
10477 		bp->hwrm_max_ext_req_len = le16_to_cpu(resp->max_ext_req_len);
10478 	}
10479 	if (bp->hwrm_max_ext_req_len < HWRM_MAX_REQ_LEN)
10480 		bp->hwrm_max_ext_req_len = HWRM_MAX_REQ_LEN;
10481 
10482 	bp->chip_num = le16_to_cpu(resp->chip_num);
10483 	bp->chip_rev = resp->chip_rev;
10484 	if (bp->chip_num == CHIP_NUM_58700 && !resp->chip_rev &&
10485 	    !resp->chip_metal)
10486 		bp->flags |= BNXT_FLAG_CHIP_NITRO_A0;
10487 
10488 	dev_caps_cfg = le32_to_cpu(resp->dev_caps_cfg);
10489 	if ((dev_caps_cfg & VER_GET_RESP_DEV_CAPS_CFG_SHORT_CMD_SUPPORTED) &&
10490 	    (dev_caps_cfg & VER_GET_RESP_DEV_CAPS_CFG_SHORT_CMD_REQUIRED))
10491 		bp->fw_cap |= BNXT_FW_CAP_SHORT_CMD;
10492 
10493 	if (dev_caps_cfg & VER_GET_RESP_DEV_CAPS_CFG_KONG_MB_CHNL_SUPPORTED)
10494 		bp->fw_cap |= BNXT_FW_CAP_KONG_MB_CHNL;
10495 
10496 	if (dev_caps_cfg &
10497 	    VER_GET_RESP_DEV_CAPS_CFG_FLOW_HANDLE_64BIT_SUPPORTED)
10498 		bp->fw_cap |= BNXT_FW_CAP_OVS_64BIT_HANDLE;
10499 
10500 	if (dev_caps_cfg &
10501 	    VER_GET_RESP_DEV_CAPS_CFG_TRUSTED_VF_SUPPORTED)
10502 		bp->fw_cap |= BNXT_FW_CAP_TRUSTED_VF;
10503 
10504 	if (dev_caps_cfg &
10505 	    VER_GET_RESP_DEV_CAPS_CFG_CFA_ADV_FLOW_MGNT_SUPPORTED)
10506 		bp->fw_cap |= BNXT_FW_CAP_CFA_ADV_FLOW;
10507 
10508 hwrm_ver_get_exit:
10509 	hwrm_req_drop(bp, req);
10510 	return rc;
10511 }
10512 
bnxt_hwrm_fw_set_time(struct bnxt * bp)10513 int bnxt_hwrm_fw_set_time(struct bnxt *bp)
10514 {
10515 	struct hwrm_fw_set_time_input *req;
10516 	struct tm tm;
10517 	time64_t now = ktime_get_real_seconds();
10518 	int rc;
10519 
10520 	if ((BNXT_VF(bp) && bp->hwrm_spec_code < 0x10901) ||
10521 	    bp->hwrm_spec_code < 0x10400)
10522 		return -EOPNOTSUPP;
10523 
10524 	time64_to_tm(now, 0, &tm);
10525 	rc = hwrm_req_init(bp, req, HWRM_FW_SET_TIME);
10526 	if (rc)
10527 		return rc;
10528 
10529 	req->year = cpu_to_le16(1900 + tm.tm_year);
10530 	req->month = 1 + tm.tm_mon;
10531 	req->day = tm.tm_mday;
10532 	req->hour = tm.tm_hour;
10533 	req->minute = tm.tm_min;
10534 	req->second = tm.tm_sec;
10535 	return hwrm_req_send(bp, req);
10536 }
10537 
bnxt_add_one_ctr(u64 hw,u64 * sw,u64 mask)10538 static void bnxt_add_one_ctr(u64 hw, u64 *sw, u64 mask)
10539 {
10540 	u64 sw_tmp;
10541 
10542 	hw &= mask;
10543 	sw_tmp = (*sw & ~mask) | hw;
10544 	if (hw < (*sw & mask))
10545 		sw_tmp += mask + 1;
10546 	WRITE_ONCE(*sw, sw_tmp);
10547 }
10548 
__bnxt_accumulate_stats(__le64 * hw_stats,u64 * sw_stats,u64 * masks,int count,bool ignore_zero)10549 static void __bnxt_accumulate_stats(__le64 *hw_stats, u64 *sw_stats, u64 *masks,
10550 				    int count, bool ignore_zero)
10551 {
10552 	int i;
10553 
10554 	for (i = 0; i < count; i++) {
10555 		u64 hw = le64_to_cpu(READ_ONCE(hw_stats[i]));
10556 
10557 		if (ignore_zero && !hw)
10558 			continue;
10559 
10560 		if (masks[i] == -1ULL)
10561 			sw_stats[i] = hw;
10562 		else
10563 			bnxt_add_one_ctr(hw, &sw_stats[i], masks[i]);
10564 	}
10565 }
10566 
bnxt_accumulate_stats(struct bnxt_stats_mem * stats)10567 static void bnxt_accumulate_stats(struct bnxt_stats_mem *stats)
10568 {
10569 	if (!stats->hw_stats)
10570 		return;
10571 
10572 	__bnxt_accumulate_stats(stats->hw_stats, stats->sw_stats,
10573 				stats->hw_masks, stats->len / 8, false);
10574 }
10575 
bnxt_accumulate_ring_stats(struct bnxt * bp)10576 static void bnxt_accumulate_ring_stats(struct bnxt *bp)
10577 {
10578 	struct bnxt_stats_mem *ring0_stats;
10579 	bool ignore_zero = false;
10580 	int i;
10581 
10582 	/* Chip bug.  Counter intermittently becomes 0. */
10583 	if (bp->flags & BNXT_FLAG_CHIP_P5_PLUS)
10584 		ignore_zero = true;
10585 
10586 	for (i = 0; i < bp->cp_nr_rings; i++) {
10587 		struct bnxt_napi *bnapi = bp->bnapi[i];
10588 		struct bnxt_cp_ring_info *cpr;
10589 		struct bnxt_stats_mem *stats;
10590 
10591 		cpr = &bnapi->cp_ring;
10592 		stats = &cpr->stats;
10593 		if (!i)
10594 			ring0_stats = stats;
10595 		__bnxt_accumulate_stats(stats->hw_stats, stats->sw_stats,
10596 					ring0_stats->hw_masks,
10597 					ring0_stats->len / 8, ignore_zero);
10598 	}
10599 }
10600 
bnxt_accumulate_port_stats(struct bnxt * bp)10601 static void bnxt_accumulate_port_stats(struct bnxt *bp)
10602 {
10603 	if (bp->flags & BNXT_FLAG_PORT_STATS) {
10604 		struct bnxt_stats_mem *stats = &bp->port_stats;
10605 		__le64 *hw_stats = stats->hw_stats;
10606 		u64 *sw_stats = stats->sw_stats;
10607 		u64 *masks = stats->hw_masks;
10608 		int cnt;
10609 
10610 		cnt = sizeof(struct rx_port_stats) / 8;
10611 		__bnxt_accumulate_stats(hw_stats, sw_stats, masks, cnt, false);
10612 
10613 		hw_stats += BNXT_TX_PORT_STATS_BYTE_OFFSET / 8;
10614 		sw_stats += BNXT_TX_PORT_STATS_BYTE_OFFSET / 8;
10615 		masks += BNXT_TX_PORT_STATS_BYTE_OFFSET / 8;
10616 		cnt = sizeof(struct tx_port_stats) / 8;
10617 		__bnxt_accumulate_stats(hw_stats, sw_stats, masks, cnt, false);
10618 	}
10619 	if (bp->flags & BNXT_FLAG_PORT_STATS_EXT) {
10620 		bnxt_accumulate_stats(&bp->rx_port_stats_ext);
10621 		bnxt_accumulate_stats(&bp->tx_port_stats_ext);
10622 	}
10623 }
10624 
bnxt_accumulate_all_stats(struct bnxt * bp)10625 static void bnxt_accumulate_all_stats(struct bnxt *bp)
10626 {
10627 	bnxt_accumulate_ring_stats(bp);
10628 	bnxt_accumulate_port_stats(bp);
10629 }
10630 
10631 /* Re-accumulate ring stats from DMA buffers if stale.
10632  * uAPIs for reading sw_stats should call this first.
10633  *
10634  * We promise user space update frequency of bp->stats_coal_ticks but
10635  * the update is a two step process - first device updates the DMA buffer,
10636  * then we have to update from that buffer to driver stats in the service work.
10637  * Worst case we would be 2x off from the desired frequency.
10638  * Sync the stats sooner, if stale. The 20% threshold was chosen arbitrarily.
10639  *
10640  * Ideally we would split the user-configured time into two portions,
10641  * i.e. also lower the DMA period by the 20%. But the DMA timer seems to have
10642  * too coarse granularity to play such tricks.
10643  */
bnxt_sync_ring_stats(struct bnxt * bp)10644 void bnxt_sync_ring_stats(struct bnxt *bp)
10645 {
10646 	unsigned long stale;
10647 
10648 	if (!netif_running(bp->dev) || !bp->stats_coal_ticks)
10649 		return;
10650 
10651 	spin_lock(&bp->stats_lock);
10652 	stale = usecs_to_jiffies(bp->stats_coal_ticks / 5);
10653 	if (time_after_eq(jiffies, bp->stats_updated_jiffies + stale)) {
10654 		bnxt_accumulate_ring_stats(bp);
10655 		bp->stats_updated_jiffies = jiffies;
10656 	}
10657 	spin_unlock(&bp->stats_lock);
10658 }
10659 
bnxt_hwrm_port_qstats(struct bnxt * bp,u8 flags)10660 static int bnxt_hwrm_port_qstats(struct bnxt *bp, u8 flags)
10661 {
10662 	struct hwrm_port_qstats_input *req;
10663 	struct bnxt_pf_info *pf = &bp->pf;
10664 	int rc;
10665 
10666 	if (!(bp->flags & BNXT_FLAG_PORT_STATS))
10667 		return 0;
10668 
10669 	if (flags && !(bp->fw_cap & BNXT_FW_CAP_EXT_HW_STATS_SUPPORTED))
10670 		return -EOPNOTSUPP;
10671 
10672 	rc = hwrm_req_init(bp, req, HWRM_PORT_QSTATS);
10673 	if (rc)
10674 		return rc;
10675 
10676 	req->flags = flags;
10677 	req->port_id = cpu_to_le16(pf->port_id);
10678 	req->tx_stat_host_addr = cpu_to_le64(bp->port_stats.hw_stats_map +
10679 					    BNXT_TX_PORT_STATS_BYTE_OFFSET);
10680 	req->rx_stat_host_addr = cpu_to_le64(bp->port_stats.hw_stats_map);
10681 	return hwrm_req_send(bp, req);
10682 }
10683 
bnxt_hwrm_port_qstats_ext(struct bnxt * bp,u8 flags)10684 static int bnxt_hwrm_port_qstats_ext(struct bnxt *bp, u8 flags)
10685 {
10686 	struct hwrm_queue_pri2cos_qcfg_output *resp_qc;
10687 	struct hwrm_queue_pri2cos_qcfg_input *req_qc;
10688 	struct hwrm_port_qstats_ext_output *resp_qs;
10689 	struct hwrm_port_qstats_ext_input *req_qs;
10690 	struct bnxt_pf_info *pf = &bp->pf;
10691 	u32 tx_stat_size;
10692 	int rc;
10693 
10694 	if (!(bp->flags & BNXT_FLAG_PORT_STATS_EXT))
10695 		return 0;
10696 
10697 	if (flags && !(bp->fw_cap & BNXT_FW_CAP_EXT_HW_STATS_SUPPORTED))
10698 		return -EOPNOTSUPP;
10699 
10700 	rc = hwrm_req_init(bp, req_qs, HWRM_PORT_QSTATS_EXT);
10701 	if (rc)
10702 		return rc;
10703 
10704 	req_qs->flags = flags;
10705 	req_qs->port_id = cpu_to_le16(pf->port_id);
10706 	req_qs->rx_stat_size = cpu_to_le16(sizeof(struct rx_port_stats_ext));
10707 	req_qs->rx_stat_host_addr = cpu_to_le64(bp->rx_port_stats_ext.hw_stats_map);
10708 	tx_stat_size = bp->tx_port_stats_ext.hw_stats ?
10709 		       sizeof(struct tx_port_stats_ext) : 0;
10710 	req_qs->tx_stat_size = cpu_to_le16(tx_stat_size);
10711 	req_qs->tx_stat_host_addr = cpu_to_le64(bp->tx_port_stats_ext.hw_stats_map);
10712 	resp_qs = hwrm_req_hold(bp, req_qs);
10713 	rc = hwrm_req_send(bp, req_qs);
10714 	if (!rc) {
10715 		bp->fw_rx_stats_ext_size =
10716 			le16_to_cpu(resp_qs->rx_stat_size) / 8;
10717 		if (BNXT_FW_MAJ(bp) < 220 &&
10718 		    bp->fw_rx_stats_ext_size > BNXT_RX_STATS_EXT_NUM_LEGACY)
10719 			bp->fw_rx_stats_ext_size = BNXT_RX_STATS_EXT_NUM_LEGACY;
10720 
10721 		bp->fw_tx_stats_ext_size = tx_stat_size ?
10722 			le16_to_cpu(resp_qs->tx_stat_size) / 8 : 0;
10723 	} else {
10724 		bp->fw_rx_stats_ext_size = 0;
10725 		bp->fw_tx_stats_ext_size = 0;
10726 	}
10727 	hwrm_req_drop(bp, req_qs);
10728 
10729 	if (flags)
10730 		return rc;
10731 
10732 	if (bp->fw_tx_stats_ext_size <=
10733 	    offsetof(struct tx_port_stats_ext, pfc_pri0_tx_duration_us) / 8) {
10734 		bp->pri2cos_valid = 0;
10735 		return rc;
10736 	}
10737 
10738 	rc = hwrm_req_init(bp, req_qc, HWRM_QUEUE_PRI2COS_QCFG);
10739 	if (rc)
10740 		return rc;
10741 
10742 	req_qc->flags = cpu_to_le32(QUEUE_PRI2COS_QCFG_REQ_FLAGS_IVLAN);
10743 
10744 	resp_qc = hwrm_req_hold(bp, req_qc);
10745 	rc = hwrm_req_send(bp, req_qc);
10746 	if (!rc) {
10747 		u8 *pri2cos;
10748 		int i, j;
10749 
10750 		pri2cos = &resp_qc->pri0_cos_queue_id;
10751 		for (i = 0; i < 8; i++) {
10752 			u8 queue_id = pri2cos[i];
10753 			u8 queue_idx;
10754 
10755 			/* Per port queue IDs start from 0, 10, 20, etc */
10756 			queue_idx = queue_id % 10;
10757 			if (queue_idx > BNXT_MAX_QUEUE) {
10758 				bp->pri2cos_valid = false;
10759 				hwrm_req_drop(bp, req_qc);
10760 				return rc;
10761 			}
10762 			for (j = 0; j < bp->max_q; j++) {
10763 				if (bp->q_ids[j] == queue_id)
10764 					bp->pri2cos_idx[i] = queue_idx;
10765 			}
10766 		}
10767 		bp->pri2cos_valid = true;
10768 	}
10769 	hwrm_req_drop(bp, req_qc);
10770 
10771 	return rc;
10772 }
10773 
bnxt_hwrm_free_tunnel_ports(struct bnxt * bp)10774 static void bnxt_hwrm_free_tunnel_ports(struct bnxt *bp)
10775 {
10776 	bnxt_hwrm_tunnel_dst_port_free(bp,
10777 		TUNNEL_DST_PORT_FREE_REQ_TUNNEL_TYPE_VXLAN);
10778 	bnxt_hwrm_tunnel_dst_port_free(bp,
10779 		TUNNEL_DST_PORT_FREE_REQ_TUNNEL_TYPE_GENEVE);
10780 }
10781 
bnxt_set_tpa(struct bnxt * bp,bool set_tpa)10782 static int bnxt_set_tpa(struct bnxt *bp, bool set_tpa)
10783 {
10784 	int rc, i;
10785 	u32 tpa_flags = 0;
10786 
10787 	if (set_tpa)
10788 		tpa_flags = bp->flags & BNXT_FLAG_TPA;
10789 	else if (BNXT_NO_FW_ACCESS(bp))
10790 		return 0;
10791 	for (i = 0; i < bp->nr_vnics; i++) {
10792 		rc = bnxt_hwrm_vnic_set_tpa(bp, &bp->vnic_info[i], tpa_flags);
10793 		if (rc) {
10794 			netdev_err(bp->dev, "hwrm vnic set tpa failure rc for vnic %d: %x\n",
10795 				   i, rc);
10796 			return rc;
10797 		}
10798 	}
10799 	return 0;
10800 }
10801 
bnxt_hwrm_clear_vnic_rss(struct bnxt * bp)10802 static void bnxt_hwrm_clear_vnic_rss(struct bnxt *bp)
10803 {
10804 	int i;
10805 
10806 	for (i = 0; i < bp->nr_vnics; i++)
10807 		bnxt_hwrm_vnic_set_rss(bp, &bp->vnic_info[i], false);
10808 }
10809 
bnxt_clear_vnic(struct bnxt * bp)10810 static void bnxt_clear_vnic(struct bnxt *bp)
10811 {
10812 	if (!bp->vnic_info)
10813 		return;
10814 
10815 	bnxt_hwrm_clear_vnic_filter(bp);
10816 	if (!(bp->flags & BNXT_FLAG_CHIP_P5_PLUS)) {
10817 		/* clear all RSS setting before free vnic ctx */
10818 		bnxt_hwrm_clear_vnic_rss(bp);
10819 		bnxt_hwrm_vnic_ctx_free(bp);
10820 	}
10821 	/* before free the vnic, undo the vnic tpa settings */
10822 	if (bp->flags & BNXT_FLAG_TPA)
10823 		bnxt_set_tpa(bp, false);
10824 	bnxt_hwrm_vnic_free(bp);
10825 	if (bp->flags & BNXT_FLAG_CHIP_P5_PLUS)
10826 		bnxt_hwrm_vnic_ctx_free(bp);
10827 }
10828 
bnxt_hwrm_resource_free(struct bnxt * bp,bool close_path,bool irq_re_init)10829 static void bnxt_hwrm_resource_free(struct bnxt *bp, bool close_path,
10830 				    bool irq_re_init)
10831 {
10832 	bnxt_clear_vnic(bp);
10833 	bnxt_hwrm_ring_free(bp, close_path);
10834 	bnxt_hwrm_ring_grp_free(bp);
10835 	if (irq_re_init) {
10836 		bnxt_hwrm_stat_ctx_free(bp);
10837 		bnxt_hwrm_free_tunnel_ports(bp);
10838 	}
10839 }
10840 
bnxt_hwrm_set_br_mode(struct bnxt * bp,u16 br_mode)10841 static int bnxt_hwrm_set_br_mode(struct bnxt *bp, u16 br_mode)
10842 {
10843 	struct hwrm_func_cfg_input *req;
10844 	u8 evb_mode;
10845 	int rc;
10846 
10847 	if (br_mode == BRIDGE_MODE_VEB)
10848 		evb_mode = FUNC_CFG_REQ_EVB_MODE_VEB;
10849 	else if (br_mode == BRIDGE_MODE_VEPA)
10850 		evb_mode = FUNC_CFG_REQ_EVB_MODE_VEPA;
10851 	else
10852 		return -EINVAL;
10853 
10854 	rc = bnxt_hwrm_func_cfg_short_req_init(bp, &req);
10855 	if (rc)
10856 		return rc;
10857 
10858 	req->fid = cpu_to_le16(0xffff);
10859 	req->enables = cpu_to_le32(FUNC_CFG_REQ_ENABLES_EVB_MODE);
10860 	req->evb_mode = evb_mode;
10861 	return hwrm_req_send(bp, req);
10862 }
10863 
bnxt_hwrm_set_cache_line_size(struct bnxt * bp,int size)10864 static int bnxt_hwrm_set_cache_line_size(struct bnxt *bp, int size)
10865 {
10866 	struct hwrm_func_cfg_input *req;
10867 	int rc;
10868 
10869 	if (BNXT_VF(bp) || bp->hwrm_spec_code < 0x10803)
10870 		return 0;
10871 
10872 	rc = bnxt_hwrm_func_cfg_short_req_init(bp, &req);
10873 	if (rc)
10874 		return rc;
10875 
10876 	req->fid = cpu_to_le16(0xffff);
10877 	req->enables = cpu_to_le32(FUNC_CFG_REQ_ENABLES_CACHE_LINESIZE);
10878 	req->options = FUNC_CFG_REQ_OPTIONS_CACHE_LINESIZE_SIZE_64;
10879 	if (size == 128)
10880 		req->options = FUNC_CFG_REQ_OPTIONS_CACHE_LINESIZE_SIZE_128;
10881 
10882 	return hwrm_req_send(bp, req);
10883 }
10884 
__bnxt_setup_vnic(struct bnxt * bp,struct bnxt_vnic_info * vnic)10885 static int __bnxt_setup_vnic(struct bnxt *bp, struct bnxt_vnic_info *vnic)
10886 {
10887 	int rc;
10888 
10889 	if (vnic->flags & BNXT_VNIC_RFS_NEW_RSS_FLAG)
10890 		goto skip_rss_ctx;
10891 
10892 	/* allocate context for vnic */
10893 	rc = bnxt_hwrm_vnic_ctx_alloc(bp, vnic, 0);
10894 	if (rc) {
10895 		netdev_err(bp->dev, "hwrm vnic %d alloc failure rc: %x\n",
10896 			   vnic->vnic_id, rc);
10897 		goto vnic_setup_err;
10898 	}
10899 	bp->rsscos_nr_ctxs++;
10900 
10901 	if (BNXT_CHIP_TYPE_NITRO_A0(bp)) {
10902 		rc = bnxt_hwrm_vnic_ctx_alloc(bp, vnic, 1);
10903 		if (rc) {
10904 			netdev_err(bp->dev, "hwrm vnic %d cos ctx alloc failure rc: %x\n",
10905 				   vnic->vnic_id, rc);
10906 			goto vnic_setup_err;
10907 		}
10908 		bp->rsscos_nr_ctxs++;
10909 	}
10910 
10911 skip_rss_ctx:
10912 	bnxt_fill_hw_rss_tbl(bp, vnic);
10913 	/* configure default vnic, ring grp */
10914 	rc = bnxt_hwrm_vnic_cfg(bp, vnic);
10915 	if (rc) {
10916 		netdev_err(bp->dev, "hwrm vnic %d cfg failure rc: %x\n",
10917 			   vnic->vnic_id, rc);
10918 		goto vnic_setup_err;
10919 	}
10920 
10921 	/* Enable RSS hashing on vnic */
10922 	rc = bnxt_hwrm_vnic_set_rss(bp, vnic, true);
10923 	if (rc) {
10924 		netdev_err(bp->dev, "hwrm vnic %d set rss failure rc: %x\n",
10925 			   vnic->vnic_id, rc);
10926 		goto vnic_setup_err;
10927 	}
10928 
10929 	if (bp->flags & BNXT_FLAG_AGG_RINGS) {
10930 		rc = bnxt_hwrm_vnic_set_hds(bp, vnic);
10931 		if (rc) {
10932 			netdev_err(bp->dev, "hwrm vnic %d set hds failure rc: %x\n",
10933 				   vnic->vnic_id, rc);
10934 		}
10935 	}
10936 
10937 vnic_setup_err:
10938 	return rc;
10939 }
10940 
bnxt_hwrm_vnic_update(struct bnxt * bp,struct bnxt_vnic_info * vnic,u8 valid)10941 int bnxt_hwrm_vnic_update(struct bnxt *bp, struct bnxt_vnic_info *vnic,
10942 			  u8 valid)
10943 {
10944 	struct hwrm_vnic_update_input *req;
10945 	int rc;
10946 
10947 	rc = hwrm_req_init(bp, req, HWRM_VNIC_UPDATE);
10948 	if (rc)
10949 		return rc;
10950 
10951 	req->vnic_id = cpu_to_le32(vnic->fw_vnic_id);
10952 
10953 	if (valid & VNIC_UPDATE_REQ_ENABLES_MRU_VALID)
10954 		req->mru = cpu_to_le16(vnic->mru);
10955 
10956 	req->enables = cpu_to_le32(valid);
10957 
10958 	return hwrm_req_send(bp, req);
10959 }
10960 
bnxt_hwrm_vnic_rss_cfg_p5(struct bnxt * bp,struct bnxt_vnic_info * vnic)10961 int bnxt_hwrm_vnic_rss_cfg_p5(struct bnxt *bp, struct bnxt_vnic_info *vnic)
10962 {
10963 	int rc;
10964 
10965 	rc = bnxt_hwrm_vnic_set_rss_p5(bp, vnic, true);
10966 	if (rc) {
10967 		netdev_err(bp->dev, "hwrm vnic %d set rss failure rc: %d\n",
10968 			   vnic->vnic_id, rc);
10969 		return rc;
10970 	}
10971 	rc = bnxt_hwrm_vnic_cfg(bp, vnic);
10972 	if (rc)
10973 		netdev_err(bp->dev, "hwrm vnic %d cfg failure rc: %x\n",
10974 			   vnic->vnic_id, rc);
10975 	return rc;
10976 }
10977 
__bnxt_setup_vnic_p5(struct bnxt * bp,struct bnxt_vnic_info * vnic)10978 int __bnxt_setup_vnic_p5(struct bnxt *bp, struct bnxt_vnic_info *vnic)
10979 {
10980 	int rc, i, nr_ctxs;
10981 
10982 	nr_ctxs = bnxt_get_nr_rss_ctxs(bp, bp->rx_nr_rings);
10983 	for (i = 0; i < nr_ctxs; i++) {
10984 		rc = bnxt_hwrm_vnic_ctx_alloc(bp, vnic, i);
10985 		if (rc) {
10986 			netdev_err(bp->dev, "hwrm vnic %d ctx %d alloc failure rc: %x\n",
10987 				   vnic->vnic_id, i, rc);
10988 			break;
10989 		}
10990 		bp->rsscos_nr_ctxs++;
10991 	}
10992 	if (i < nr_ctxs)
10993 		return -ENOMEM;
10994 
10995 	rc = bnxt_hwrm_vnic_rss_cfg_p5(bp, vnic);
10996 	if (rc)
10997 		return rc;
10998 
10999 	if (bp->flags & BNXT_FLAG_AGG_RINGS) {
11000 		rc = bnxt_hwrm_vnic_set_hds(bp, vnic);
11001 		if (rc) {
11002 			netdev_err(bp->dev, "hwrm vnic %d set hds failure rc: %x\n",
11003 				   vnic->vnic_id, rc);
11004 		}
11005 	}
11006 	return rc;
11007 }
11008 
bnxt_setup_vnic(struct bnxt * bp,struct bnxt_vnic_info * vnic)11009 static int bnxt_setup_vnic(struct bnxt *bp, struct bnxt_vnic_info *vnic)
11010 {
11011 	if (bp->flags & BNXT_FLAG_CHIP_P5_PLUS)
11012 		return __bnxt_setup_vnic_p5(bp, vnic);
11013 	else
11014 		return __bnxt_setup_vnic(bp, vnic);
11015 }
11016 
bnxt_alloc_and_setup_vnic(struct bnxt * bp,struct bnxt_vnic_info * vnic,u16 start_rx_ring_idx,int rx_rings)11017 static int bnxt_alloc_and_setup_vnic(struct bnxt *bp,
11018 				     struct bnxt_vnic_info *vnic,
11019 				     u16 start_rx_ring_idx, int rx_rings)
11020 {
11021 	int rc;
11022 
11023 	rc = bnxt_hwrm_vnic_alloc(bp, vnic, start_rx_ring_idx, rx_rings);
11024 	if (rc) {
11025 		netdev_err(bp->dev, "hwrm vnic %d alloc failure rc: %x\n",
11026 			   vnic->vnic_id, rc);
11027 		return rc;
11028 	}
11029 	return bnxt_setup_vnic(bp, vnic);
11030 }
11031 
bnxt_alloc_rfs_vnics(struct bnxt * bp)11032 static int bnxt_alloc_rfs_vnics(struct bnxt *bp)
11033 {
11034 	struct bnxt_vnic_info *vnic;
11035 	int i, rc = 0;
11036 
11037 	if (BNXT_SUPPORTS_NTUPLE_VNIC(bp)) {
11038 		vnic = &bp->vnic_info[BNXT_VNIC_NTUPLE];
11039 		return bnxt_alloc_and_setup_vnic(bp, vnic, 0, bp->rx_nr_rings);
11040 	}
11041 
11042 	if (bp->flags & BNXT_FLAG_CHIP_P5_PLUS)
11043 		return 0;
11044 
11045 	for (i = 0; i < bp->rx_nr_rings; i++) {
11046 		u16 vnic_id = i + 1;
11047 		u16 ring_id = i;
11048 
11049 		if (vnic_id >= bp->nr_vnics)
11050 			break;
11051 
11052 		vnic = &bp->vnic_info[vnic_id];
11053 		vnic->flags |= BNXT_VNIC_RFS_FLAG;
11054 		if (bp->rss_cap & BNXT_RSS_CAP_NEW_RSS_CAP)
11055 			vnic->flags |= BNXT_VNIC_RFS_NEW_RSS_FLAG;
11056 		if (bnxt_alloc_and_setup_vnic(bp, &bp->vnic_info[vnic_id], ring_id, 1))
11057 			break;
11058 	}
11059 	return rc;
11060 }
11061 
bnxt_del_one_rss_ctx(struct bnxt * bp,struct bnxt_rss_ctx * rss_ctx,bool all)11062 void bnxt_del_one_rss_ctx(struct bnxt *bp, struct bnxt_rss_ctx *rss_ctx,
11063 			  bool all)
11064 {
11065 	struct bnxt_vnic_info *vnic = &rss_ctx->vnic;
11066 	struct bnxt_filter_base *usr_fltr, *tmp;
11067 	struct bnxt_ntuple_filter *ntp_fltr;
11068 	int i;
11069 
11070 	bnxt_hwrm_vnic_free_one(bp, &rss_ctx->vnic);
11071 	for (i = 0; i < BNXT_MAX_CTX_PER_VNIC; i++) {
11072 		if (vnic->fw_rss_cos_lb_ctx[i] != INVALID_HW_RING_ID)
11073 			bnxt_hwrm_vnic_ctx_free_one(bp, vnic, i);
11074 	}
11075 	if (!all)
11076 		return;
11077 
11078 	list_for_each_entry_safe(usr_fltr, tmp, &bp->usr_fltr_list, list) {
11079 		if ((usr_fltr->flags & BNXT_ACT_RSS_CTX) &&
11080 		    usr_fltr->fw_vnic_id == rss_ctx->index) {
11081 			ntp_fltr = container_of(usr_fltr,
11082 						struct bnxt_ntuple_filter,
11083 						base);
11084 			bnxt_hwrm_cfa_ntuple_filter_free(bp, ntp_fltr);
11085 			bnxt_del_ntp_filter(bp, ntp_fltr);
11086 			bnxt_del_one_usr_fltr(bp, usr_fltr);
11087 		}
11088 	}
11089 
11090 	if (vnic->rss_table)
11091 		dma_free_coherent(&bp->pdev->dev, vnic->rss_table_size,
11092 				  vnic->rss_table,
11093 				  vnic->rss_table_dma_addr);
11094 	bp->num_rss_ctx--;
11095 }
11096 
bnxt_vnic_has_rx_ring(struct bnxt * bp,struct bnxt_vnic_info * vnic,int rxr_id)11097 static bool bnxt_vnic_has_rx_ring(struct bnxt *bp, struct bnxt_vnic_info *vnic,
11098 				  int rxr_id)
11099 {
11100 	u16 tbl_size = bnxt_get_rxfh_indir_size(bp->dev);
11101 	int i, vnic_rx;
11102 
11103 	/* Ntuple VNIC always has all the rx rings. Any change of ring id
11104 	 * must be updated because a future filter may use it.
11105 	 */
11106 	if (vnic->flags & BNXT_VNIC_NTUPLE_FLAG)
11107 		return true;
11108 
11109 	for (i = 0; i < tbl_size; i++) {
11110 		if (vnic->flags & BNXT_VNIC_RSSCTX_FLAG)
11111 			vnic_rx = ethtool_rxfh_context_indir(vnic->rss_ctx)[i];
11112 		else
11113 			vnic_rx = bp->rss_indir_tbl[i];
11114 
11115 		if (rxr_id == vnic_rx)
11116 			return true;
11117 	}
11118 
11119 	return false;
11120 }
11121 
bnxt_set_vnic_mru_p5(struct bnxt * bp,struct bnxt_vnic_info * vnic,u16 mru,int rxr_id)11122 static int bnxt_set_vnic_mru_p5(struct bnxt *bp, struct bnxt_vnic_info *vnic,
11123 				u16 mru, int rxr_id)
11124 {
11125 	int rc;
11126 
11127 	if (!bnxt_vnic_has_rx_ring(bp, vnic, rxr_id))
11128 		return 0;
11129 
11130 	if (mru) {
11131 		rc = bnxt_hwrm_vnic_set_rss_p5(bp, vnic, true);
11132 		if (rc) {
11133 			netdev_err(bp->dev, "hwrm vnic %d set rss failure rc: %d\n",
11134 				   vnic->vnic_id, rc);
11135 			return rc;
11136 		}
11137 		if (rxr_id == vnic->default_rx_ring) {
11138 			rc = bnxt_hwrm_vnic_cfg(bp, vnic);
11139 			if (rc)
11140 				return rc;
11141 		}
11142 	}
11143 	vnic->mru = mru;
11144 	bnxt_hwrm_vnic_update(bp, vnic,
11145 			      VNIC_UPDATE_REQ_ENABLES_MRU_VALID);
11146 
11147 	return 0;
11148 }
11149 
bnxt_set_rss_ctx_vnic_mru(struct bnxt * bp,u16 mru,int rxr_id)11150 static int bnxt_set_rss_ctx_vnic_mru(struct bnxt *bp, u16 mru, int rxr_id)
11151 {
11152 	struct ethtool_rxfh_context *ctx;
11153 	unsigned long context;
11154 	int rc;
11155 
11156 	xa_for_each(&bp->dev->ethtool->rss_ctx, context, ctx) {
11157 		struct bnxt_rss_ctx *rss_ctx = ethtool_rxfh_context_priv(ctx);
11158 		struct bnxt_vnic_info *vnic = &rss_ctx->vnic;
11159 
11160 		rc = bnxt_set_vnic_mru_p5(bp, vnic, mru, rxr_id);
11161 		if (rc)
11162 			return rc;
11163 	}
11164 
11165 	return 0;
11166 }
11167 
bnxt_hwrm_realloc_rss_ctx_vnic(struct bnxt * bp)11168 static void bnxt_hwrm_realloc_rss_ctx_vnic(struct bnxt *bp)
11169 {
11170 	bool set_tpa = !!(bp->flags & BNXT_FLAG_TPA);
11171 	struct ethtool_rxfh_context *ctx;
11172 	unsigned long context;
11173 
11174 	xa_for_each(&bp->dev->ethtool->rss_ctx, context, ctx) {
11175 		struct bnxt_rss_ctx *rss_ctx = ethtool_rxfh_context_priv(ctx);
11176 		struct bnxt_vnic_info *vnic = &rss_ctx->vnic;
11177 
11178 		if (bnxt_hwrm_vnic_alloc(bp, vnic, 0, bp->rx_nr_rings) ||
11179 		    bnxt_hwrm_vnic_set_tpa(bp, vnic, set_tpa) ||
11180 		    __bnxt_setup_vnic_p5(bp, vnic)) {
11181 			netdev_err(bp->dev, "Failed to restore RSS ctx %d\n",
11182 				   rss_ctx->index);
11183 			bnxt_del_one_rss_ctx(bp, rss_ctx, true);
11184 			ethtool_rxfh_context_lost(bp->dev, rss_ctx->index);
11185 		}
11186 	}
11187 }
11188 
bnxt_clear_rss_ctxs(struct bnxt * bp)11189 static void bnxt_clear_rss_ctxs(struct bnxt *bp)
11190 {
11191 	struct ethtool_rxfh_context *ctx;
11192 	unsigned long context;
11193 
11194 	xa_for_each(&bp->dev->ethtool->rss_ctx, context, ctx) {
11195 		struct bnxt_rss_ctx *rss_ctx = ethtool_rxfh_context_priv(ctx);
11196 
11197 		bnxt_del_one_rss_ctx(bp, rss_ctx, false);
11198 	}
11199 }
11200 
11201 /* Allow PF, trusted VFs and VFs with default VLAN to be in promiscuous mode */
bnxt_promisc_ok(struct bnxt * bp)11202 static bool bnxt_promisc_ok(struct bnxt *bp)
11203 {
11204 #ifdef CONFIG_BNXT_SRIOV
11205 	if (BNXT_VF(bp) && !bp->vf.vlan && !bnxt_is_trusted_vf(bp, &bp->vf))
11206 		return false;
11207 #endif
11208 	return true;
11209 }
11210 
bnxt_setup_nitroa0_vnic(struct bnxt * bp)11211 static int bnxt_setup_nitroa0_vnic(struct bnxt *bp)
11212 {
11213 	struct bnxt_vnic_info *vnic = &bp->vnic_info[1];
11214 	unsigned int rc = 0;
11215 
11216 	rc = bnxt_hwrm_vnic_alloc(bp, vnic, bp->rx_nr_rings - 1, 1);
11217 	if (rc) {
11218 		netdev_err(bp->dev, "Cannot allocate special vnic for NS2 A0: %x\n",
11219 			   rc);
11220 		return rc;
11221 	}
11222 
11223 	/* Setup the proper default RX ring */
11224 	bnxt_fill_hw_rss_tbl(bp, vnic);
11225 
11226 	rc = bnxt_hwrm_vnic_cfg(bp, vnic);
11227 	if (rc) {
11228 		netdev_err(bp->dev, "Cannot allocate special vnic for NS2 A0: %x\n",
11229 			   rc);
11230 		return rc;
11231 	}
11232 	return rc;
11233 }
11234 
11235 static int bnxt_cfg_rx_mode(struct bnxt *, struct netdev_hw_addr_list *, bool);
11236 static bool bnxt_mc_list_updated(struct bnxt *, u32 *,
11237 				 const struct netdev_hw_addr_list *);
11238 
bnxt_init_chip(struct bnxt * bp,bool irq_re_init)11239 static int bnxt_init_chip(struct bnxt *bp, bool irq_re_init)
11240 {
11241 	struct bnxt_vnic_info *vnic = &bp->vnic_info[BNXT_VNIC_DEFAULT];
11242 	int rc = 0;
11243 	unsigned int rx_nr_rings = bp->rx_nr_rings;
11244 
11245 	if (irq_re_init) {
11246 		rc = bnxt_hwrm_stat_ctx_alloc(bp);
11247 		if (rc) {
11248 			netdev_err(bp->dev, "hwrm stat ctx alloc failure rc: %x\n",
11249 				   rc);
11250 			goto err_out;
11251 		}
11252 	}
11253 
11254 	rc = bnxt_hwrm_ring_alloc(bp);
11255 	if (rc) {
11256 		netdev_err(bp->dev, "hwrm ring alloc failure rc: %x\n", rc);
11257 		goto err_out;
11258 	}
11259 
11260 	rc = bnxt_hwrm_ring_grp_alloc(bp);
11261 	if (rc) {
11262 		netdev_err(bp->dev, "hwrm_ring_grp alloc failure: %x\n", rc);
11263 		goto err_out;
11264 	}
11265 
11266 	if (BNXT_CHIP_TYPE_NITRO_A0(bp))
11267 		rx_nr_rings--;
11268 
11269 	/* default vnic 0 */
11270 	rc = bnxt_hwrm_vnic_alloc(bp, vnic, 0, rx_nr_rings);
11271 	if (rc) {
11272 		netdev_err(bp->dev, "hwrm vnic alloc failure rc: %x\n", rc);
11273 		goto err_out;
11274 	}
11275 
11276 	if (BNXT_VF(bp))
11277 		bnxt_hwrm_func_qcfg(bp);
11278 
11279 	rc = bnxt_setup_vnic(bp, vnic);
11280 	if (rc)
11281 		goto err_out;
11282 	if (bp->rss_cap & BNXT_RSS_CAP_RSS_HASH_TYPE_DELTA)
11283 		bnxt_hwrm_update_rss_hash_cfg(bp);
11284 
11285 	if (bp->flags & BNXT_FLAG_RFS) {
11286 		rc = bnxt_alloc_rfs_vnics(bp);
11287 		if (rc)
11288 			goto err_out;
11289 	}
11290 
11291 	if (bp->flags & BNXT_FLAG_TPA) {
11292 		rc = bnxt_set_tpa(bp, true);
11293 		if (rc)
11294 			goto err_out;
11295 	}
11296 
11297 	if (BNXT_VF(bp))
11298 		bnxt_update_vf_mac(bp);
11299 
11300 	/* Filter for default vnic 0 */
11301 	rc = bnxt_hwrm_set_vnic_filter(bp, 0, 0, bp->dev->dev_addr);
11302 	if (rc) {
11303 		if (BNXT_VF(bp) && rc == -ENODEV)
11304 			netdev_err(bp->dev, "Cannot configure L2 filter while PF is unavailable\n");
11305 		else
11306 			netdev_err(bp->dev, "HWRM vnic filter failure rc: %x\n", rc);
11307 		goto err_out;
11308 	}
11309 	vnic->uc_filter_count = 1;
11310 
11311 	vnic->rx_mask = 0;
11312 	if (test_bit(BNXT_STATE_HALF_OPEN, &bp->state))
11313 		goto skip_rx_mask;
11314 
11315 	if (bp->dev->flags & IFF_BROADCAST)
11316 		vnic->rx_mask |= CFA_L2_SET_RX_MASK_REQ_MASK_BCAST;
11317 
11318 	if (bp->dev->flags & IFF_PROMISC)
11319 		vnic->rx_mask |= CFA_L2_SET_RX_MASK_REQ_MASK_PROMISCUOUS;
11320 
11321 	if (bp->dev->flags & IFF_ALLMULTI) {
11322 		vnic->rx_mask |= CFA_L2_SET_RX_MASK_REQ_MASK_ALL_MCAST;
11323 		vnic->mc_list_count = 0;
11324 	} else if (bp->dev->flags & IFF_MULTICAST) {
11325 		u32 mask = 0;
11326 
11327 		bnxt_mc_list_updated(bp, &mask, &bp->dev->mc);
11328 		vnic->rx_mask |= mask;
11329 	}
11330 
11331 	rc = bnxt_cfg_rx_mode(bp, &bp->dev->uc, true);
11332 	if (rc == -EAGAIN) {
11333 		netif_rx_mode_schedule_retry(bp->dev);
11334 		rc = 0;
11335 	} else if (rc) {
11336 		goto err_out;
11337 	}
11338 
11339 skip_rx_mask:
11340 	rc = bnxt_hwrm_set_coal(bp);
11341 	if (rc)
11342 		netdev_warn(bp->dev, "HWRM set coalescing failure rc: %x\n",
11343 				rc);
11344 
11345 	if (BNXT_CHIP_TYPE_NITRO_A0(bp)) {
11346 		rc = bnxt_setup_nitroa0_vnic(bp);
11347 		if (rc)
11348 			netdev_err(bp->dev, "Special vnic setup failure for NS2 A0 rc: %x\n",
11349 				   rc);
11350 	}
11351 
11352 	if (BNXT_VF(bp)) {
11353 		bnxt_hwrm_func_qcfg(bp);
11354 		netdev_update_features(bp->dev);
11355 	}
11356 
11357 	return 0;
11358 
11359 err_out:
11360 	bnxt_hwrm_resource_free(bp, 0, true);
11361 
11362 	return rc;
11363 }
11364 
bnxt_shutdown_nic(struct bnxt * bp,bool irq_re_init)11365 static int bnxt_shutdown_nic(struct bnxt *bp, bool irq_re_init)
11366 {
11367 	bnxt_hwrm_resource_free(bp, 1, irq_re_init);
11368 	return 0;
11369 }
11370 
bnxt_init_nic(struct bnxt * bp,bool irq_re_init)11371 static int bnxt_init_nic(struct bnxt *bp, bool irq_re_init)
11372 {
11373 	int rc;
11374 
11375 	bnxt_init_cp_rings(bp);
11376 	rc = bnxt_init_rx_rings(bp);
11377 	if (rc)
11378 		return rc;
11379 
11380 	bnxt_init_tx_rings(bp);
11381 	bnxt_init_ring_grps(bp, irq_re_init);
11382 	bnxt_init_vnics(bp);
11383 
11384 	return bnxt_init_chip(bp, irq_re_init);
11385 }
11386 
bnxt_set_real_num_queues(struct bnxt * bp)11387 static int bnxt_set_real_num_queues(struct bnxt *bp)
11388 {
11389 	int rc;
11390 	struct net_device *dev = bp->dev;
11391 
11392 	rc = netif_set_real_num_tx_queues(dev, bp->tx_nr_rings -
11393 					  bp->tx_nr_rings_xdp);
11394 	if (rc)
11395 		return rc;
11396 
11397 	rc = netif_set_real_num_rx_queues(dev, bp->rx_nr_rings);
11398 	if (rc)
11399 		return rc;
11400 
11401 #ifdef CONFIG_RFS_ACCEL
11402 	if (bp->flags & BNXT_FLAG_RFS)
11403 		dev->rx_cpu_rmap = alloc_irq_cpu_rmap(bp->rx_nr_rings);
11404 #endif
11405 
11406 	return rc;
11407 }
11408 
__bnxt_trim_rings(struct bnxt * bp,int * rx,int * tx,int max,bool shared)11409 static int __bnxt_trim_rings(struct bnxt *bp, int *rx, int *tx, int max,
11410 			     bool shared)
11411 {
11412 	int _rx = *rx, _tx = *tx;
11413 
11414 	if (shared) {
11415 		*rx = min_t(int, _rx, max);
11416 		*tx = min_t(int, _tx, max);
11417 	} else {
11418 		if (max < 2)
11419 			return -ENOMEM;
11420 
11421 		while (_rx + _tx > max) {
11422 			if (_rx > _tx && _rx > 1)
11423 				_rx--;
11424 			else if (_tx > 1)
11425 				_tx--;
11426 		}
11427 		*rx = _rx;
11428 		*tx = _tx;
11429 	}
11430 	return 0;
11431 }
11432 
__bnxt_num_tx_to_cp(struct bnxt * bp,int tx,int tx_sets,int tx_xdp)11433 static int __bnxt_num_tx_to_cp(struct bnxt *bp, int tx, int tx_sets, int tx_xdp)
11434 {
11435 	return (tx - tx_xdp) / tx_sets + tx_xdp;
11436 }
11437 
bnxt_num_tx_to_cp(struct bnxt * bp,int tx)11438 int bnxt_num_tx_to_cp(struct bnxt *bp, int tx)
11439 {
11440 	int tcs = bp->num_tc;
11441 
11442 	if (!tcs)
11443 		tcs = 1;
11444 	return __bnxt_num_tx_to_cp(bp, tx, tcs, bp->tx_nr_rings_xdp);
11445 }
11446 
bnxt_num_cp_to_tx(struct bnxt * bp,int tx_cp)11447 static int bnxt_num_cp_to_tx(struct bnxt *bp, int tx_cp)
11448 {
11449 	int tcs = bp->num_tc;
11450 
11451 	return (tx_cp - bp->tx_nr_rings_xdp) * tcs +
11452 	       bp->tx_nr_rings_xdp;
11453 }
11454 
bnxt_trim_rings(struct bnxt * bp,int * rx,int * tx,int max,bool sh)11455 static int bnxt_trim_rings(struct bnxt *bp, int *rx, int *tx, int max,
11456 			   bool sh)
11457 {
11458 	int tx_cp = bnxt_num_tx_to_cp(bp, *tx);
11459 
11460 	if (tx_cp != *tx) {
11461 		int tx_saved = tx_cp, rc;
11462 
11463 		rc = __bnxt_trim_rings(bp, rx, &tx_cp, max, sh);
11464 		if (rc)
11465 			return rc;
11466 		if (tx_cp != tx_saved)
11467 			*tx = bnxt_num_cp_to_tx(bp, tx_cp);
11468 		return 0;
11469 	}
11470 	return __bnxt_trim_rings(bp, rx, tx, max, sh);
11471 }
11472 
bnxt_setup_msix(struct bnxt * bp)11473 static void bnxt_setup_msix(struct bnxt *bp)
11474 {
11475 	const int len = sizeof(bp->irq_tbl[0].name);
11476 	struct net_device *dev = bp->dev;
11477 	int tcs, i;
11478 
11479 	tcs = bp->num_tc;
11480 	if (tcs) {
11481 		int i, off, count;
11482 
11483 		for (i = 0; i < tcs; i++) {
11484 			count = bp->tx_nr_rings_per_tc;
11485 			off = BNXT_TC_TO_RING_BASE(bp, i);
11486 			netdev_set_tc_queue(dev, i, count, off);
11487 		}
11488 	}
11489 
11490 	for (i = 0; i < bp->cp_nr_rings; i++) {
11491 		int map_idx = bnxt_cp_num_to_irq_num(bp, i);
11492 		char *attr;
11493 
11494 		if (bp->flags & BNXT_FLAG_SHARED_RINGS)
11495 			attr = "TxRx";
11496 		else if (i < bp->rx_nr_rings)
11497 			attr = "rx";
11498 		else
11499 			attr = "tx";
11500 
11501 		snprintf(bp->irq_tbl[map_idx].name, len, "%s-%s-%d", dev->name,
11502 			 attr, i);
11503 		bp->irq_tbl[map_idx].handler = bnxt_msix;
11504 	}
11505 }
11506 
11507 static int bnxt_init_int_mode(struct bnxt *bp);
11508 
bnxt_change_msix(struct bnxt * bp,int total)11509 static int bnxt_change_msix(struct bnxt *bp, int total)
11510 {
11511 	struct msi_map map;
11512 	int i;
11513 
11514 	/* add MSIX to the end if needed */
11515 	for (i = bp->total_irqs; i < total; i++) {
11516 		map = pci_msix_alloc_irq_at(bp->pdev, i, NULL);
11517 		if (map.index < 0)
11518 			return bp->total_irqs;
11519 		bp->irq_tbl[i].vector = map.virq;
11520 		bp->total_irqs++;
11521 	}
11522 
11523 	/* trim MSIX from the end if needed */
11524 	for (i = bp->total_irqs; i > total; i--) {
11525 		map.index = i - 1;
11526 		map.virq = bp->irq_tbl[i - 1].vector;
11527 		pci_msix_free_irq(bp->pdev, map);
11528 		bp->total_irqs--;
11529 	}
11530 	return bp->total_irqs;
11531 }
11532 
bnxt_setup_int_mode(struct bnxt * bp)11533 static int bnxt_setup_int_mode(struct bnxt *bp)
11534 {
11535 	int rc;
11536 
11537 	if (!bp->irq_tbl) {
11538 		rc = bnxt_init_int_mode(bp);
11539 		if (rc || !bp->irq_tbl)
11540 			return rc ?: -ENODEV;
11541 	}
11542 
11543 	bnxt_setup_msix(bp);
11544 
11545 	rc = bnxt_set_real_num_queues(bp);
11546 	return rc;
11547 }
11548 
bnxt_get_max_func_rss_ctxs(struct bnxt * bp)11549 static unsigned int bnxt_get_max_func_rss_ctxs(struct bnxt *bp)
11550 {
11551 	return bp->hw_resc.max_rsscos_ctxs;
11552 }
11553 
bnxt_get_max_func_vnics(struct bnxt * bp)11554 static unsigned int bnxt_get_max_func_vnics(struct bnxt *bp)
11555 {
11556 	return bp->hw_resc.max_vnics;
11557 }
11558 
bnxt_get_max_func_stat_ctxs(struct bnxt * bp)11559 unsigned int bnxt_get_max_func_stat_ctxs(struct bnxt *bp)
11560 {
11561 	return bp->hw_resc.max_stat_ctxs;
11562 }
11563 
bnxt_get_max_func_cp_rings(struct bnxt * bp)11564 unsigned int bnxt_get_max_func_cp_rings(struct bnxt *bp)
11565 {
11566 	return bp->hw_resc.max_cp_rings;
11567 }
11568 
bnxt_get_max_func_cp_rings_for_en(struct bnxt * bp)11569 static unsigned int bnxt_get_max_func_cp_rings_for_en(struct bnxt *bp)
11570 {
11571 	unsigned int cp = bp->hw_resc.max_cp_rings;
11572 
11573 	if (!(bp->flags & BNXT_FLAG_CHIP_P5_PLUS))
11574 		cp -= bnxt_get_ulp_msix_num(bp);
11575 
11576 	return cp;
11577 }
11578 
bnxt_get_max_func_irqs(struct bnxt * bp)11579 static unsigned int bnxt_get_max_func_irqs(struct bnxt *bp)
11580 {
11581 	struct bnxt_hw_resc *hw_resc = &bp->hw_resc;
11582 
11583 	if (bp->flags & BNXT_FLAG_CHIP_P5_PLUS)
11584 		return min_t(unsigned int, hw_resc->max_irqs, hw_resc->max_nqs);
11585 
11586 	return min_t(unsigned int, hw_resc->max_irqs, hw_resc->max_cp_rings);
11587 }
11588 
bnxt_set_max_func_irqs(struct bnxt * bp,unsigned int max_irqs)11589 static void bnxt_set_max_func_irqs(struct bnxt *bp, unsigned int max_irqs)
11590 {
11591 	bp->hw_resc.max_irqs = max_irqs;
11592 }
11593 
bnxt_get_avail_cp_rings_for_en(struct bnxt * bp)11594 unsigned int bnxt_get_avail_cp_rings_for_en(struct bnxt *bp)
11595 {
11596 	unsigned int cp;
11597 
11598 	cp = bnxt_get_max_func_cp_rings_for_en(bp);
11599 	if (bp->flags & BNXT_FLAG_CHIP_P5_PLUS)
11600 		return cp - bp->rx_nr_rings - bp->tx_nr_rings;
11601 	else
11602 		return cp - bp->cp_nr_rings;
11603 }
11604 
bnxt_get_avail_stat_ctxs_for_en(struct bnxt * bp)11605 unsigned int bnxt_get_avail_stat_ctxs_for_en(struct bnxt *bp)
11606 {
11607 	return bnxt_get_max_func_stat_ctxs(bp) - bnxt_get_func_stat_ctxs(bp);
11608 }
11609 
bnxt_get_avail_msix(struct bnxt * bp,int num)11610 static int bnxt_get_avail_msix(struct bnxt *bp, int num)
11611 {
11612 	int max_irq = bnxt_get_max_func_irqs(bp);
11613 	int total_req = bp->cp_nr_rings + num;
11614 
11615 	if (max_irq < total_req) {
11616 		num = max_irq - bp->cp_nr_rings;
11617 		if (num <= 0)
11618 			return 0;
11619 	}
11620 	return num;
11621 }
11622 
bnxt_get_num_msix(struct bnxt * bp)11623 static int bnxt_get_num_msix(struct bnxt *bp)
11624 {
11625 	if (!BNXT_NEW_RM(bp))
11626 		return bnxt_get_max_func_irqs(bp);
11627 
11628 	return bnxt_nq_rings_in_use(bp);
11629 }
11630 
bnxt_init_int_mode(struct bnxt * bp)11631 static int bnxt_init_int_mode(struct bnxt *bp)
11632 {
11633 	int i, total_vecs, max, rc, min = 1, ulp_msix, tx_cp, tbl_size;
11634 
11635 	total_vecs = bnxt_get_num_msix(bp);
11636 	max = bnxt_get_max_func_irqs(bp);
11637 	if (total_vecs > max)
11638 		total_vecs = max;
11639 
11640 	if (!total_vecs)
11641 		return 0;
11642 
11643 	if (!(bp->flags & BNXT_FLAG_SHARED_RINGS))
11644 		min = 2;
11645 
11646 	total_vecs = pci_alloc_irq_vectors(bp->pdev, min, total_vecs,
11647 					   PCI_IRQ_MSIX);
11648 	ulp_msix = bnxt_get_ulp_msix_num(bp);
11649 	if (total_vecs < 0 || total_vecs < ulp_msix) {
11650 		rc = -ENODEV;
11651 		goto msix_setup_exit;
11652 	}
11653 
11654 	tbl_size = total_vecs;
11655 	if (pci_msix_can_alloc_dyn(bp->pdev))
11656 		tbl_size = max;
11657 	bp->irq_tbl = kzalloc_objs(*bp->irq_tbl, tbl_size);
11658 	if (!bp->irq_tbl) {
11659 		rc = -ENOMEM;
11660 		goto msix_setup_exit;
11661 	}
11662 
11663 	for (i = 0; i < total_vecs; i++)
11664 		bp->irq_tbl[i].vector = pci_irq_vector(bp->pdev, i);
11665 
11666 	bp->total_irqs = total_vecs;
11667 	/* Trim rings based upon num of vectors allocated */
11668 	rc = bnxt_trim_rings(bp, &bp->rx_nr_rings, &bp->tx_nr_rings,
11669 			     total_vecs - ulp_msix, min == 1);
11670 	if (rc)
11671 		goto msix_setup_exit;
11672 
11673 	tx_cp = bnxt_num_tx_to_cp(bp, bp->tx_nr_rings);
11674 	bp->cp_nr_rings = (min == 1) ?
11675 			  max_t(int, tx_cp, bp->rx_nr_rings) :
11676 			  tx_cp + bp->rx_nr_rings;
11677 
11678 	return 0;
11679 
11680 msix_setup_exit:
11681 	netdev_err(bp->dev, "bnxt_init_int_mode err: %x\n", rc);
11682 	kfree(bp->irq_tbl);
11683 	bp->irq_tbl = NULL;
11684 	pci_free_irq_vectors(bp->pdev);
11685 	return rc;
11686 }
11687 
bnxt_clear_int_mode(struct bnxt * bp)11688 static void bnxt_clear_int_mode(struct bnxt *bp)
11689 {
11690 	pci_free_irq_vectors(bp->pdev);
11691 
11692 	kfree(bp->irq_tbl);
11693 	bp->irq_tbl = NULL;
11694 }
11695 
bnxt_reserve_rings(struct bnxt * bp,bool irq_re_init)11696 int bnxt_reserve_rings(struct bnxt *bp, bool irq_re_init)
11697 {
11698 	struct bnxt_en_dev *edev = bp->edev[BNXT_AUXDEV_RDMA];
11699 	bool irq_cleared = false;
11700 	bool irq_change = false;
11701 	int tcs = bp->num_tc;
11702 	int irqs_required;
11703 	int rc;
11704 
11705 	if (!bnxt_need_reserve_rings(bp))
11706 		return 0;
11707 
11708 	if (BNXT_NEW_RM(bp) && !bnxt_ulp_registered(edev)) {
11709 		int ulp_msix = bnxt_get_avail_msix(bp, bp->ulp_num_msix_want);
11710 
11711 		if (ulp_msix > bp->ulp_num_msix_want)
11712 			ulp_msix = bp->ulp_num_msix_want;
11713 		irqs_required = ulp_msix + bp->cp_nr_rings;
11714 	} else {
11715 		irqs_required = bnxt_get_num_msix(bp);
11716 	}
11717 
11718 	if (irq_re_init && BNXT_NEW_RM(bp) && irqs_required != bp->total_irqs) {
11719 		irq_change = true;
11720 		if (!pci_msix_can_alloc_dyn(bp->pdev)) {
11721 			bnxt_ulp_irq_stop(bp);
11722 			bnxt_clear_int_mode(bp);
11723 			irq_cleared = true;
11724 		}
11725 	}
11726 	rc = __bnxt_reserve_rings(bp);
11727 	if (irq_cleared) {
11728 		if (!rc)
11729 			rc = bnxt_init_int_mode(bp);
11730 		bnxt_ulp_irq_restart(bp, rc);
11731 	} else if (irq_change && !rc) {
11732 		if (bnxt_change_msix(bp, irqs_required) != irqs_required)
11733 			rc = -ENOSPC;
11734 	}
11735 	if (rc) {
11736 		netdev_err(bp->dev, "ring reservation/IRQ init failure rc: %d\n", rc);
11737 		return rc;
11738 	}
11739 	if (tcs && (bp->tx_nr_rings_per_tc * tcs !=
11740 		    bp->tx_nr_rings - bp->tx_nr_rings_xdp)) {
11741 		netdev_err(bp->dev, "tx ring reservation failure\n");
11742 		netdev_reset_tc(bp->dev);
11743 		bp->num_tc = 0;
11744 		if (bp->tx_nr_rings_xdp)
11745 			bp->tx_nr_rings_per_tc = bp->tx_nr_rings_xdp;
11746 		else
11747 			bp->tx_nr_rings_per_tc = bp->tx_nr_rings;
11748 		return -ENOMEM;
11749 	}
11750 	return 0;
11751 }
11752 
bnxt_tx_queue_stop(struct bnxt * bp,int idx)11753 static void bnxt_tx_queue_stop(struct bnxt *bp, int idx)
11754 {
11755 	struct bnxt_tx_ring_info *txr;
11756 	struct netdev_queue *txq;
11757 	struct bnxt_napi *bnapi;
11758 	int i;
11759 
11760 	bnapi = bp->bnapi[idx];
11761 	bnxt_for_each_napi_tx(i, bnapi, txr) {
11762 		WRITE_ONCE(txr->dev_state, BNXT_DEV_STATE_CLOSING);
11763 		synchronize_net();
11764 
11765 		if (!(bnapi->flags & BNXT_NAPI_FLAG_XDP)) {
11766 			txq = netdev_get_tx_queue(bp->dev, txr->txq_index);
11767 			if (txq) {
11768 				__netif_tx_lock_bh(txq);
11769 				netif_tx_stop_queue(txq);
11770 				__netif_tx_unlock_bh(txq);
11771 			}
11772 		}
11773 
11774 		if (!bp->tph_mode)
11775 			continue;
11776 
11777 		bnxt_hwrm_tx_ring_free(bp, txr, true);
11778 		bnxt_hwrm_cp_ring_free(bp, txr->tx_cpr);
11779 		bnxt_free_one_tx_ring_skbs(bp, txr, txr->txq_index);
11780 		bnxt_clear_one_cp_ring(bp, txr->tx_cpr);
11781 	}
11782 }
11783 
bnxt_tx_queue_start(struct bnxt * bp,int idx)11784 static int bnxt_tx_queue_start(struct bnxt *bp, int idx)
11785 {
11786 	struct bnxt_tx_ring_info *txr;
11787 	struct netdev_queue *txq;
11788 	struct bnxt_napi *bnapi;
11789 	int rc, i;
11790 
11791 	bnapi = bp->bnapi[idx];
11792 	/* All rings have been reserved and previously allocated.
11793 	 * Reallocating with the same parameters should never fail.
11794 	 */
11795 	bnxt_for_each_napi_tx(i, bnapi, txr) {
11796 		if (!bp->tph_mode)
11797 			goto start_tx;
11798 
11799 		rc = bnxt_hwrm_cp_ring_alloc_p5(bp, txr->tx_cpr);
11800 		if (rc)
11801 			return rc;
11802 
11803 		rc = bnxt_hwrm_tx_ring_alloc(bp, txr, false);
11804 		if (rc)
11805 			return rc;
11806 
11807 		txr->tx_prod = 0;
11808 		txr->tx_cons = 0;
11809 		txr->tx_hw_cons = 0;
11810 		txr->kick_pending = 0;
11811 		txr->kick_txbd0 = NULL;
11812 start_tx:
11813 		WRITE_ONCE(txr->dev_state, 0);
11814 		synchronize_net();
11815 
11816 		if (bnapi->flags & BNXT_NAPI_FLAG_XDP)
11817 			continue;
11818 
11819 		txq = netdev_get_tx_queue(bp->dev, txr->txq_index);
11820 		if (txq)
11821 			netif_tx_start_queue(txq);
11822 	}
11823 
11824 	return 0;
11825 }
11826 
bnxt_irq_affinity_notify(struct irq_affinity_notify * notify,const cpumask_t * mask)11827 static void bnxt_irq_affinity_notify(struct irq_affinity_notify *notify,
11828 				     const cpumask_t *mask)
11829 {
11830 	struct bnxt_irq *irq;
11831 	u16 tag;
11832 
11833 	irq = container_of(notify, struct bnxt_irq, affinity_notify);
11834 
11835 	cpumask_copy(irq->bp->ring_cpu_mask[irq->ring_nr], mask);
11836 	set_bit(irq->ring_nr, irq->bp->ring_affinity_set);
11837 
11838 #ifdef CONFIG_RFS_ACCEL
11839 	if (irq->bp->dev->rx_cpu_rmap && irq->ring_nr < irq->bp->rx_nr_rings) {
11840 		int err;
11841 
11842 		err = cpu_rmap_update(irq->bp->dev->rx_cpu_rmap, irq->ring_nr,
11843 				      mask);
11844 		if (err)
11845 			netdev_warn(irq->bp->dev,
11846 				    "aRFS rmap update failed: %d\n", err);
11847 	}
11848 #endif
11849 
11850 	if (!irq->bp->tph_mode)
11851 		return;
11852 
11853 	if (irq->ring_nr >= irq->bp->rx_nr_rings)
11854 		return;
11855 
11856 	if (pcie_tph_get_cpu_st(irq->bp->pdev, TPH_MEM_TYPE_VM,
11857 				cpumask_first(mask), &tag))
11858 		return;
11859 
11860 	WRITE_ONCE(irq->new_tag, tag);
11861 	bnxt_queue_sp_work(irq->bp, BNXT_TPH_UPDATE_SP_EVENT);
11862 }
11863 
bnxt_irq_affinity_release(struct kref * ref)11864 static void bnxt_irq_affinity_release(struct kref *ref)
11865 {
11866 	struct irq_affinity_notify *notify =
11867 		container_of(ref, struct irq_affinity_notify, kref);
11868 	struct bnxt_irq *irq;
11869 
11870 	irq = container_of(notify, struct bnxt_irq, affinity_notify);
11871 
11872 	if (!irq->bp->tph_mode)
11873 		return;
11874 
11875 	if (pcie_tph_set_st_entry(irq->bp->pdev, irq->msix_nr, 0)) {
11876 		netdev_err(irq->bp->dev,
11877 			   "Setting ST=0 for MSIX entry %d failed\n",
11878 			   irq->msix_nr);
11879 		return;
11880 	}
11881 }
11882 
bnxt_release_irq_notifier(struct bnxt_irq * irq)11883 static void bnxt_release_irq_notifier(struct bnxt_irq *irq)
11884 {
11885 	irq_set_affinity_notifier(irq->vector, NULL);
11886 }
11887 
bnxt_register_irq_notifier(struct bnxt * bp,struct bnxt_irq * irq)11888 static void bnxt_register_irq_notifier(struct bnxt *bp, struct bnxt_irq *irq)
11889 {
11890 	struct irq_affinity_notify *notify;
11891 
11892 	irq->bp = bp;
11893 
11894 	/* Register IRQ affinity notifier */
11895 	notify = &irq->affinity_notify;
11896 	notify->irq = irq->vector;
11897 	notify->notify = bnxt_irq_affinity_notify;
11898 	notify->release = bnxt_irq_affinity_release;
11899 
11900 	irq_set_affinity_notifier(irq->vector, notify);
11901 }
11902 
bnxt_alloc_ring_cpu_masks(struct bnxt * bp)11903 static int bnxt_alloc_ring_cpu_masks(struct bnxt *bp)
11904 {
11905 	int i;
11906 
11907 	bp->ring_cpu_mask = kzalloc_objs(*bp->ring_cpu_mask, bp->max_irqs);
11908 	if (!bp->ring_cpu_mask)
11909 		return -ENOMEM;
11910 
11911 	bp->ring_affinity_set = bitmap_zalloc(bp->max_irqs, GFP_KERNEL);
11912 	if (!bp->ring_affinity_set)
11913 		return -ENOMEM;
11914 
11915 	for (i = 0; i < bp->max_irqs; i++)
11916 		if (!zalloc_cpumask_var(&bp->ring_cpu_mask[i], GFP_KERNEL))
11917 			return -ENOMEM;
11918 
11919 	return 0;
11920 }
11921 
bnxt_free_ring_cpu_masks(struct bnxt * bp)11922 static void bnxt_free_ring_cpu_masks(struct bnxt *bp)
11923 {
11924 	int i;
11925 
11926 	if (!bp->ring_cpu_mask)
11927 		return;
11928 
11929 	for (i = 0; i < bp->max_irqs; i++)
11930 		free_cpumask_var(bp->ring_cpu_mask[i]);
11931 
11932 	bitmap_free(bp->ring_affinity_set);
11933 	bp->ring_affinity_set = NULL;
11934 	kfree(bp->ring_cpu_mask);
11935 	bp->ring_cpu_mask = NULL;
11936 }
11937 
bnxt_free_irq(struct bnxt * bp)11938 static void bnxt_free_irq(struct bnxt *bp)
11939 {
11940 	struct bnxt_irq *irq;
11941 	int i;
11942 
11943 	if (!bp->irq_tbl || !bp->bnapi)
11944 		return;
11945 
11946 	for (i = 0; i < bp->cp_nr_rings; i++) {
11947 		int map_idx = bnxt_cp_num_to_irq_num(bp, i);
11948 
11949 		irq = &bp->irq_tbl[map_idx];
11950 		if (irq->requested) {
11951 			bnxt_release_irq_notifier(irq);
11952 			irq_update_affinity_hint(irq->vector, NULL);
11953 			free_irq(irq->vector, bp->bnapi[i]);
11954 		}
11955 
11956 		irq->requested = 0;
11957 		irq->tag = 0;
11958 		irq->new_tag = 0;
11959 	}
11960 
11961 	/* Disable TPH support */
11962 	pcie_disable_tph(bp->pdev);
11963 	bp->tph_mode = 0;
11964 
11965 #ifdef CONFIG_RFS_ACCEL
11966 	free_irq_cpu_rmap(bp->dev->rx_cpu_rmap);
11967 	bp->dev->rx_cpu_rmap = NULL;
11968 #endif
11969 }
11970 
bnxt_request_irq(struct bnxt * bp)11971 static int bnxt_request_irq(struct bnxt *bp)
11972 {
11973 	const int numa_node = dev_to_node(&bp->pdev->dev);
11974 	struct cpu_rmap *rmap = NULL;
11975 	int i, j, rc = 0;
11976 	unsigned long flags = 0;
11977 
11978 	rc = bnxt_setup_int_mode(bp);
11979 	if (rc) {
11980 		netdev_err(bp->dev, "bnxt_setup_int_mode err: %x\n",
11981 			   rc);
11982 		return rc;
11983 	}
11984 #ifdef CONFIG_RFS_ACCEL
11985 	rmap = bp->dev->rx_cpu_rmap;
11986 #endif
11987 
11988 	/* Enable TPH support as part of IRQ request */
11989 	if (BNXT_SUPPORTS_QUEUE_API(bp)) {
11990 		rc = pcie_enable_tph(bp->pdev, PCI_TPH_ST_IV_MODE);
11991 		if (!rc)
11992 			bp->tph_mode = PCI_TPH_ST_IV_MODE;
11993 	}
11994 
11995 	for (i = 0, j = 0; i < bp->cp_nr_rings; i++) {
11996 		struct cpumask *cpu_mask = bp->ring_cpu_mask[i];
11997 		int map_idx = bnxt_cp_num_to_irq_num(bp, i);
11998 		struct bnxt_irq *irq = &bp->irq_tbl[map_idx];
11999 		u16 tag;
12000 
12001 		if (IS_ENABLED(CONFIG_RFS_ACCEL) &&
12002 		    rmap && bp->bnapi[i]->rx_ring) {
12003 			rc = irq_cpu_rmap_add(rmap, irq->vector);
12004 			if (rc)
12005 				netdev_warn(bp->dev, "failed adding irq rmap for ring %d\n",
12006 					    j);
12007 			j++;
12008 		}
12009 
12010 		rc = request_irq(irq->vector, irq->handler, flags, irq->name,
12011 				 bp->bnapi[i]);
12012 		if (rc)
12013 			break;
12014 
12015 		netif_napi_set_irq_locked(&bp->bnapi[i]->napi, irq->vector);
12016 		irq->requested = 1;
12017 		irq->msix_nr = map_idx;
12018 		irq->ring_nr = i;
12019 
12020 		/* Reuse the mask recorded before the IRQs were freed. Nothing
12021 		 * was recorded yet on the very first request, and the mask
12022 		 * may have gone stale if the CPUs went offline in between.
12023 		 */
12024 		if (!test_bit(i, bp->ring_affinity_set) ||
12025 		    !cpumask_intersects(cpu_mask, cpu_online_mask)) {
12026 			clear_bit(i, bp->ring_affinity_set);
12027 			cpumask_clear(cpu_mask);
12028 			cpumask_set_cpu(cpumask_local_spread(i, numa_node),
12029 					cpu_mask);
12030 		}
12031 
12032 		/* Init ST table entry if we can get the mapping */
12033 		if (!pcie_tph_get_cpu_st(bp->pdev, TPH_MEM_TYPE_VM,
12034 					 cpumask_first(cpu_mask), &tag)) {
12035 			pcie_tph_set_st_entry(bp->pdev, irq->msix_nr, tag);
12036 			irq->tag = tag;
12037 			irq->new_tag = tag;
12038 		}
12039 
12040 		bnxt_register_irq_notifier(bp, irq);
12041 
12042 		/* Only put the IRQ back where it was configured to be, our own
12043 		 * placement is just a hint, the core spreads within
12044 		 * irq_default_affinity which we know nothing about.
12045 		 * Set after installing the notifier, if we race with the user
12046 		 * it's better to overwrite than miss the notification.
12047 		 */
12048 		if (test_bit(i, bp->ring_affinity_set))
12049 			rc = irq_set_affinity_and_hint(irq->vector, cpu_mask);
12050 		else
12051 			rc = irq_update_affinity_hint(irq->vector, cpu_mask);
12052 		if (rc) {
12053 			netdev_warn(bp->dev,
12054 				    "Setting IRQ affinity failed, IRQ = %d\n",
12055 				    irq->vector);
12056 			break;
12057 		}
12058 	}
12059 	return rc;
12060 }
12061 
bnxt_del_napi(struct bnxt * bp)12062 static void bnxt_del_napi(struct bnxt *bp)
12063 {
12064 	int i;
12065 
12066 	if (!bp->bnapi)
12067 		return;
12068 
12069 	for (i = 0; i < bp->rx_nr_rings; i++)
12070 		netif_queue_set_napi(bp->dev, i, NETDEV_QUEUE_TYPE_RX, NULL);
12071 	for (i = 0; i < bp->tx_nr_rings - bp->tx_nr_rings_xdp; i++)
12072 		netif_queue_set_napi(bp->dev, i, NETDEV_QUEUE_TYPE_TX, NULL);
12073 
12074 	for (i = 0; i < bp->cp_nr_rings; i++) {
12075 		struct bnxt_napi *bnapi = bp->bnapi[i];
12076 
12077 		__netif_napi_del_locked(&bnapi->napi);
12078 	}
12079 	/* We called __netif_napi_del_locked(), we need
12080 	 * to respect an RCU grace period before freeing napi structures.
12081 	 */
12082 	synchronize_net();
12083 }
12084 
bnxt_init_napi(struct bnxt * bp)12085 static void bnxt_init_napi(struct bnxt *bp)
12086 {
12087 	int (*poll_fn)(struct napi_struct *, int) = bnxt_poll;
12088 	unsigned int cp_nr_rings = bp->cp_nr_rings;
12089 	struct bnxt_napi *bnapi;
12090 	int i;
12091 
12092 	if (bp->flags & BNXT_FLAG_CHIP_P5_PLUS)
12093 		poll_fn = bnxt_poll_p5;
12094 	else if (BNXT_CHIP_TYPE_NITRO_A0(bp))
12095 		cp_nr_rings--;
12096 
12097 	set_bit(BNXT_STATE_NAPI_DISABLED, &bp->state);
12098 
12099 	for (i = 0; i < cp_nr_rings; i++) {
12100 		bnapi = bp->bnapi[i];
12101 		netif_napi_add_config_locked(bp->dev, &bnapi->napi, poll_fn,
12102 					     bnapi->index);
12103 	}
12104 	if (BNXT_CHIP_TYPE_NITRO_A0(bp)) {
12105 		bnapi = bp->bnapi[cp_nr_rings];
12106 		netif_napi_add_locked(bp->dev, &bnapi->napi, bnxt_poll_nitroa0);
12107 	}
12108 }
12109 
bnxt_disable_napi(struct bnxt * bp)12110 static void bnxt_disable_napi(struct bnxt *bp)
12111 {
12112 	int i;
12113 
12114 	if (!bp->bnapi ||
12115 	    test_and_set_bit(BNXT_STATE_NAPI_DISABLED, &bp->state))
12116 		return;
12117 
12118 	for (i = 0; i < bp->cp_nr_rings; i++) {
12119 		struct bnxt_napi *bnapi = bp->bnapi[i];
12120 		struct bnxt_cp_ring_info *cpr;
12121 
12122 		cpr = &bnapi->cp_ring;
12123 		if (bnapi->tx_fault)
12124 			cpr->sw_stats->tx.tx_resets++;
12125 		if (bnapi->in_reset)
12126 			cpr->sw_stats->rx.rx_resets++;
12127 		napi_disable_locked(&bnapi->napi);
12128 	}
12129 }
12130 
bnxt_enable_napi(struct bnxt * bp)12131 static void bnxt_enable_napi(struct bnxt *bp)
12132 {
12133 	int i;
12134 
12135 	clear_bit(BNXT_STATE_NAPI_DISABLED, &bp->state);
12136 	for (i = 0; i < bp->cp_nr_rings; i++) {
12137 		struct bnxt_napi *bnapi = bp->bnapi[i];
12138 		struct bnxt_cp_ring_info *cpr;
12139 
12140 		bnapi->tx_fault = 0;
12141 
12142 		cpr = &bnapi->cp_ring;
12143 		bnapi->in_reset = false;
12144 
12145 		if (bnapi->rx_ring) {
12146 			INIT_WORK(&cpr->dim.work, bnxt_dim_work);
12147 			cpr->dim.mode = DIM_CQ_PERIOD_MODE_START_FROM_EQE;
12148 		}
12149 		napi_enable_locked(&bnapi->napi);
12150 	}
12151 }
12152 
bnxt_tx_disable(struct bnxt * bp)12153 void bnxt_tx_disable(struct bnxt *bp)
12154 {
12155 	int i;
12156 	struct bnxt_tx_ring_info *txr;
12157 
12158 	if (bp->tx_ring) {
12159 		for (i = 0; i < bp->tx_nr_rings; i++) {
12160 			txr = &bp->tx_ring[i];
12161 			WRITE_ONCE(txr->dev_state, BNXT_DEV_STATE_CLOSING);
12162 		}
12163 	}
12164 	/* Make sure napi polls see @dev_state change */
12165 	synchronize_net();
12166 	/* Drop carrier first to prevent TX timeout */
12167 	netif_carrier_off(bp->dev);
12168 	/* Stop all TX queues */
12169 	netif_tx_disable(bp->dev);
12170 }
12171 
bnxt_tx_enable(struct bnxt * bp)12172 void bnxt_tx_enable(struct bnxt *bp)
12173 {
12174 	int i;
12175 	struct bnxt_tx_ring_info *txr;
12176 
12177 	for (i = 0; i < bp->tx_nr_rings; i++) {
12178 		txr = &bp->tx_ring[i];
12179 		WRITE_ONCE(txr->dev_state, 0);
12180 	}
12181 	/* Make sure napi polls see @dev_state change */
12182 	synchronize_net();
12183 	netif_tx_wake_all_queues(bp->dev);
12184 	if (BNXT_LINK_IS_UP(bp))
12185 		netif_carrier_on(bp->dev);
12186 }
12187 
bnxt_report_fec(struct bnxt_link_info * link_info)12188 static char *bnxt_report_fec(struct bnxt_link_info *link_info)
12189 {
12190 	u8 active_fec = link_info->active_fec_sig_mode &
12191 			PORT_PHY_QCFG_RESP_ACTIVE_FEC_MASK;
12192 
12193 	switch (active_fec) {
12194 	default:
12195 	case PORT_PHY_QCFG_RESP_ACTIVE_FEC_FEC_NONE_ACTIVE:
12196 		return "None";
12197 	case PORT_PHY_QCFG_RESP_ACTIVE_FEC_FEC_CLAUSE74_ACTIVE:
12198 		return "Clause 74 BaseR";
12199 	case PORT_PHY_QCFG_RESP_ACTIVE_FEC_FEC_CLAUSE91_ACTIVE:
12200 		return "Clause 91 RS(528,514)";
12201 	case PORT_PHY_QCFG_RESP_ACTIVE_FEC_FEC_RS544_1XN_ACTIVE:
12202 		return "Clause 91 RS544_1XN";
12203 	case PORT_PHY_QCFG_RESP_ACTIVE_FEC_FEC_RS544_IEEE_ACTIVE:
12204 		return "Clause 91 RS(544,514)";
12205 	case PORT_PHY_QCFG_RESP_ACTIVE_FEC_FEC_RS272_1XN_ACTIVE:
12206 		return "Clause 91 RS272_1XN";
12207 	case PORT_PHY_QCFG_RESP_ACTIVE_FEC_FEC_RS272_IEEE_ACTIVE:
12208 		return "Clause 91 RS(272,257)";
12209 	}
12210 }
12211 
bnxt_link_down_reason(struct bnxt_link_info * link_info)12212 static char *bnxt_link_down_reason(struct bnxt_link_info *link_info)
12213 {
12214 	u8 reason = link_info->link_down_reason;
12215 
12216 	/* Multiple bits can be set, we report 1 bit only in order of
12217 	 * priority.
12218 	 */
12219 	if (reason & PORT_PHY_QCFG_RESP_LINK_DOWN_REASON_RF)
12220 		return "(Remote fault)";
12221 	if (reason & PORT_PHY_QCFG_RESP_LINK_DOWN_REASON_OTP_SPEED_VIOLATION)
12222 		return "(OTP Speed limit violation)";
12223 	if (reason & PORT_PHY_QCFG_RESP_LINK_DOWN_REASON_CABLE_REMOVED)
12224 		return "(Cable removed)";
12225 	if (reason & PORT_PHY_QCFG_RESP_LINK_DOWN_REASON_MODULE_FAULT)
12226 		return "(Module fault)";
12227 	if (reason & PORT_PHY_QCFG_RESP_LINK_DOWN_REASON_BMC_REQUEST)
12228 		return "(BMC request down)";
12229 	return "";
12230 }
12231 
bnxt_report_link(struct bnxt * bp)12232 void bnxt_report_link(struct bnxt *bp)
12233 {
12234 	if (BNXT_LINK_IS_UP(bp)) {
12235 		const char *signal = "";
12236 		const char *flow_ctrl;
12237 		const char *duplex;
12238 		u32 speed;
12239 		u16 fec;
12240 
12241 		netif_carrier_on(bp->dev);
12242 		speed = bnxt_fw_to_ethtool_speed(bp->link_info.link_speed);
12243 		if (speed == SPEED_UNKNOWN) {
12244 			netdev_info(bp->dev, "NIC Link is Up, speed unknown\n");
12245 			return;
12246 		}
12247 		if (bp->link_info.duplex == BNXT_LINK_DUPLEX_FULL)
12248 			duplex = "full";
12249 		else
12250 			duplex = "half";
12251 		if (bp->link_info.pause == BNXT_LINK_PAUSE_BOTH)
12252 			flow_ctrl = "ON - receive & transmit";
12253 		else if (bp->link_info.pause == BNXT_LINK_PAUSE_TX)
12254 			flow_ctrl = "ON - transmit";
12255 		else if (bp->link_info.pause == BNXT_LINK_PAUSE_RX)
12256 			flow_ctrl = "ON - receive";
12257 		else
12258 			flow_ctrl = "none";
12259 		if (bp->link_info.phy_qcfg_resp.option_flags &
12260 		    PORT_PHY_QCFG_RESP_OPTION_FLAGS_SIGNAL_MODE_KNOWN) {
12261 			u8 sig_mode = bp->link_info.active_fec_sig_mode &
12262 				      PORT_PHY_QCFG_RESP_SIGNAL_MODE_MASK;
12263 			switch (sig_mode) {
12264 			case PORT_PHY_QCFG_RESP_SIGNAL_MODE_NRZ:
12265 				signal = "(NRZ) ";
12266 				break;
12267 			case PORT_PHY_QCFG_RESP_SIGNAL_MODE_PAM4:
12268 				signal = "(PAM4 56Gbps) ";
12269 				break;
12270 			case PORT_PHY_QCFG_RESP_SIGNAL_MODE_PAM4_112:
12271 				signal = "(PAM4 112Gbps) ";
12272 				break;
12273 			default:
12274 				break;
12275 			}
12276 		}
12277 		netdev_info(bp->dev, "NIC Link is Up, %u Mbps %s%s duplex, Flow control: %s\n",
12278 			    speed, signal, duplex, flow_ctrl);
12279 		if (bp->phy_flags & BNXT_PHY_FL_EEE_CAP)
12280 			netdev_info(bp->dev, "EEE is %s\n",
12281 				    bp->eee.eee_active ? "active" :
12282 							 "not active");
12283 		fec = bp->link_info.fec_cfg;
12284 		if (!(fec & PORT_PHY_QCFG_RESP_FEC_CFG_FEC_NONE_SUPPORTED))
12285 			netdev_info(bp->dev, "FEC autoneg %s encoding: %s\n",
12286 				    (fec & BNXT_FEC_AUTONEG) ? "on" : "off",
12287 				    bnxt_report_fec(&bp->link_info));
12288 	} else {
12289 		char *str = bnxt_link_down_reason(&bp->link_info);
12290 
12291 		netif_carrier_off(bp->dev);
12292 		netdev_err(bp->dev, "NIC Link is Down %s\n", str);
12293 	}
12294 }
12295 
bnxt_phy_qcaps_no_speed(struct hwrm_port_phy_qcaps_output * resp)12296 static bool bnxt_phy_qcaps_no_speed(struct hwrm_port_phy_qcaps_output *resp)
12297 {
12298 	if (!resp->supported_speeds_auto_mode &&
12299 	    !resp->supported_speeds_force_mode &&
12300 	    !resp->supported_pam4_speeds_auto_mode &&
12301 	    !resp->supported_pam4_speeds_force_mode &&
12302 	    !resp->supported_speeds2_auto_mode &&
12303 	    !resp->supported_speeds2_force_mode)
12304 		return true;
12305 	return false;
12306 }
12307 
bnxt_hwrm_phy_qcaps(struct bnxt * bp)12308 static int bnxt_hwrm_phy_qcaps(struct bnxt *bp)
12309 {
12310 	struct bnxt_link_info *link_info = &bp->link_info;
12311 	struct hwrm_port_phy_qcaps_output *resp;
12312 	struct hwrm_port_phy_qcaps_input *req;
12313 	int rc = 0;
12314 
12315 	if (bp->hwrm_spec_code < 0x10201)
12316 		return 0;
12317 
12318 	rc = hwrm_req_init(bp, req, HWRM_PORT_PHY_QCAPS);
12319 	if (rc)
12320 		return rc;
12321 
12322 	resp = hwrm_req_hold(bp, req);
12323 	rc = hwrm_req_send(bp, req);
12324 	if (rc)
12325 		goto hwrm_phy_qcaps_exit;
12326 
12327 	bp->phy_flags = resp->flags | (le16_to_cpu(resp->flags2) << 8);
12328 	if (resp->flags & PORT_PHY_QCAPS_RESP_FLAGS_EEE_SUPPORTED) {
12329 		struct ethtool_keee *eee = &bp->eee;
12330 		u16 fw_speeds = le16_to_cpu(resp->supported_speeds_eee_mode);
12331 
12332 		_bnxt_fw_to_linkmode(eee->supported, fw_speeds);
12333 		bp->lpi_tmr_lo = le32_to_cpu(resp->tx_lpi_timer_low) &
12334 				 PORT_PHY_QCAPS_RESP_TX_LPI_TIMER_LOW_MASK;
12335 		bp->lpi_tmr_hi = le32_to_cpu(resp->valid_tx_lpi_timer_high) &
12336 				 PORT_PHY_QCAPS_RESP_TX_LPI_TIMER_HIGH_MASK;
12337 	}
12338 
12339 	if (bp->hwrm_spec_code >= 0x10a01) {
12340 		if (bnxt_phy_qcaps_no_speed(resp)) {
12341 			link_info->phy_state = BNXT_PHY_STATE_DISABLED;
12342 			netdev_warn(bp->dev, "Ethernet link disabled\n");
12343 		} else if (link_info->phy_state == BNXT_PHY_STATE_DISABLED) {
12344 			link_info->phy_state = BNXT_PHY_STATE_ENABLED;
12345 			netdev_info(bp->dev, "Ethernet link enabled\n");
12346 			/* Phy re-enabled, reprobe the speeds */
12347 			link_info->support_auto_speeds = 0;
12348 			link_info->support_pam4_auto_speeds = 0;
12349 			link_info->support_auto_speeds2 = 0;
12350 		}
12351 	}
12352 	if (resp->supported_speeds_auto_mode)
12353 		link_info->support_auto_speeds =
12354 			le16_to_cpu(resp->supported_speeds_auto_mode);
12355 	if (resp->supported_pam4_speeds_auto_mode)
12356 		link_info->support_pam4_auto_speeds =
12357 			le16_to_cpu(resp->supported_pam4_speeds_auto_mode);
12358 	if (resp->supported_speeds2_auto_mode)
12359 		link_info->support_auto_speeds2 =
12360 			le16_to_cpu(resp->supported_speeds2_auto_mode);
12361 
12362 	bp->port_count = resp->port_cnt;
12363 
12364 hwrm_phy_qcaps_exit:
12365 	hwrm_req_drop(bp, req);
12366 	return rc;
12367 }
12368 
bnxt_hwrm_mac_qcaps(struct bnxt * bp)12369 static void bnxt_hwrm_mac_qcaps(struct bnxt *bp)
12370 {
12371 	struct hwrm_port_mac_qcaps_output *resp;
12372 	struct hwrm_port_mac_qcaps_input *req;
12373 	int rc;
12374 
12375 	if (bp->hwrm_spec_code < 0x10a03)
12376 		return;
12377 
12378 	rc = hwrm_req_init(bp, req, HWRM_PORT_MAC_QCAPS);
12379 	if (rc)
12380 		return;
12381 
12382 	resp = hwrm_req_hold(bp, req);
12383 	rc = hwrm_req_send_silent(bp, req);
12384 	if (!rc)
12385 		bp->mac_flags = resp->flags;
12386 	hwrm_req_drop(bp, req);
12387 }
12388 
bnxt_support_dropped(u16 advertising,u16 supported)12389 static bool bnxt_support_dropped(u16 advertising, u16 supported)
12390 {
12391 	u16 diff = advertising ^ supported;
12392 
12393 	return ((supported | diff) != supported);
12394 }
12395 
bnxt_support_speed_dropped(struct bnxt_link_info * link_info)12396 static bool bnxt_support_speed_dropped(struct bnxt_link_info *link_info)
12397 {
12398 	struct bnxt *bp = container_of(link_info, struct bnxt, link_info);
12399 
12400 	/* Check if any advertised speeds are no longer supported. The caller
12401 	 * holds the link_lock mutex, so we can modify link_info settings.
12402 	 */
12403 	if (bp->phy_flags & BNXT_PHY_FL_SPEEDS2) {
12404 		if (bnxt_support_dropped(link_info->advertising,
12405 					 link_info->support_auto_speeds2)) {
12406 			link_info->advertising = link_info->support_auto_speeds2;
12407 			return true;
12408 		}
12409 		return false;
12410 	}
12411 	if (bnxt_support_dropped(link_info->advertising,
12412 				 link_info->support_auto_speeds)) {
12413 		link_info->advertising = link_info->support_auto_speeds;
12414 		return true;
12415 	}
12416 	if (bnxt_support_dropped(link_info->advertising_pam4,
12417 				 link_info->support_pam4_auto_speeds)) {
12418 		link_info->advertising_pam4 = link_info->support_pam4_auto_speeds;
12419 		return true;
12420 	}
12421 	return false;
12422 }
12423 
bnxt_update_link(struct bnxt * bp,bool chng_link_state)12424 int bnxt_update_link(struct bnxt *bp, bool chng_link_state)
12425 {
12426 	struct bnxt_link_info *link_info = &bp->link_info;
12427 	struct hwrm_port_phy_qcfg_output *resp;
12428 	struct hwrm_port_phy_qcfg_input *req;
12429 	u8 link_state = link_info->link_state;
12430 	bool support_changed;
12431 	int rc;
12432 
12433 	rc = hwrm_req_init(bp, req, HWRM_PORT_PHY_QCFG);
12434 	if (rc)
12435 		return rc;
12436 
12437 	resp = hwrm_req_hold(bp, req);
12438 	rc = hwrm_req_send(bp, req);
12439 	if (rc) {
12440 		hwrm_req_drop(bp, req);
12441 		if (BNXT_VF(bp) && rc == -ENODEV) {
12442 			netdev_warn(bp->dev, "Cannot obtain link state while PF unavailable.\n");
12443 			rc = 0;
12444 		}
12445 		return rc;
12446 	}
12447 
12448 	memcpy(&link_info->phy_qcfg_resp, resp, sizeof(*resp));
12449 	link_info->phy_link_status = resp->link;
12450 	link_info->duplex = resp->duplex_cfg;
12451 	if (bp->hwrm_spec_code >= 0x10800)
12452 		link_info->duplex = resp->duplex_state;
12453 	link_info->pause = resp->pause;
12454 	link_info->auto_mode = resp->auto_mode;
12455 	link_info->auto_pause_setting = resp->auto_pause;
12456 	link_info->lp_pause = resp->link_partner_adv_pause;
12457 	link_info->force_pause_setting = resp->force_pause;
12458 	link_info->duplex_setting = resp->duplex_cfg;
12459 	if (link_info->phy_link_status == BNXT_LINK_LINK) {
12460 		link_info->link_speed = le16_to_cpu(resp->link_speed);
12461 		if (bp->phy_flags & BNXT_PHY_FL_SPEEDS2)
12462 			link_info->active_lanes = resp->active_lanes;
12463 	} else {
12464 		link_info->link_speed = 0;
12465 		link_info->active_lanes = 0;
12466 	}
12467 	link_info->force_link_speed = le16_to_cpu(resp->force_link_speed);
12468 	link_info->force_pam4_link_speed =
12469 		le16_to_cpu(resp->force_pam4_link_speed);
12470 	link_info->force_link_speed2 = le16_to_cpu(resp->force_link_speeds2);
12471 	link_info->support_speeds = le16_to_cpu(resp->support_speeds);
12472 	link_info->support_pam4_speeds = le16_to_cpu(resp->support_pam4_speeds);
12473 	link_info->support_speeds2 = le16_to_cpu(resp->support_speeds2);
12474 	link_info->auto_link_speeds = le16_to_cpu(resp->auto_link_speed_mask);
12475 	link_info->auto_pam4_link_speeds =
12476 		le16_to_cpu(resp->auto_pam4_link_speed_mask);
12477 	link_info->auto_link_speeds2 = le16_to_cpu(resp->auto_link_speeds2);
12478 	link_info->lp_auto_link_speeds =
12479 		le16_to_cpu(resp->link_partner_adv_speeds);
12480 	link_info->lp_auto_pam4_link_speeds =
12481 		resp->link_partner_pam4_adv_speeds;
12482 	link_info->preemphasis = le32_to_cpu(resp->preemphasis);
12483 	link_info->phy_ver[0] = resp->phy_maj;
12484 	link_info->phy_ver[1] = resp->phy_min;
12485 	link_info->phy_ver[2] = resp->phy_bld;
12486 	link_info->media_type = resp->media_type;
12487 	link_info->phy_type = resp->phy_type;
12488 	link_info->transceiver = resp->xcvr_pkg_type;
12489 	link_info->phy_addr = resp->eee_config_phy_addr &
12490 			      PORT_PHY_QCFG_RESP_PHY_ADDR_MASK;
12491 	link_info->module_status = resp->module_status;
12492 	link_info->link_down_reason = resp->link_down_reason;
12493 
12494 	if (bp->phy_flags & BNXT_PHY_FL_EEE_CAP) {
12495 		struct ethtool_keee *eee = &bp->eee;
12496 		u16 fw_speeds;
12497 
12498 		eee->eee_active = 0;
12499 		if (resp->eee_config_phy_addr &
12500 		    PORT_PHY_QCFG_RESP_EEE_CONFIG_EEE_ACTIVE) {
12501 			eee->eee_active = 1;
12502 			fw_speeds = le16_to_cpu(
12503 				resp->link_partner_adv_eee_link_speed_mask);
12504 			_bnxt_fw_to_linkmode(eee->lp_advertised, fw_speeds);
12505 		}
12506 
12507 		/* Pull initial EEE config */
12508 		if (!chng_link_state) {
12509 			if (resp->eee_config_phy_addr &
12510 			    PORT_PHY_QCFG_RESP_EEE_CONFIG_EEE_ENABLED)
12511 				eee->eee_enabled = 1;
12512 
12513 			fw_speeds = le16_to_cpu(resp->adv_eee_link_speed_mask);
12514 			_bnxt_fw_to_linkmode(eee->advertised, fw_speeds);
12515 
12516 			if (resp->eee_config_phy_addr &
12517 			    PORT_PHY_QCFG_RESP_EEE_CONFIG_EEE_TX_LPI) {
12518 				__le32 tmr;
12519 
12520 				eee->tx_lpi_enabled = 1;
12521 				tmr = resp->xcvr_identifier_type_tx_lpi_timer;
12522 				eee->tx_lpi_timer = le32_to_cpu(tmr) &
12523 					PORT_PHY_QCFG_RESP_TX_LPI_TIMER_MASK;
12524 			}
12525 		}
12526 	}
12527 
12528 	link_info->fec_cfg = PORT_PHY_QCFG_RESP_FEC_CFG_FEC_NONE_SUPPORTED;
12529 	if (bp->hwrm_spec_code >= 0x10504) {
12530 		link_info->fec_cfg = le16_to_cpu(resp->fec_cfg);
12531 		link_info->active_fec_sig_mode = resp->active_fec_signal_mode;
12532 	}
12533 	/* TODO: need to add more logic to report VF link */
12534 	if (chng_link_state) {
12535 		if (link_info->phy_link_status == BNXT_LINK_LINK)
12536 			link_info->link_state = BNXT_LINK_STATE_UP;
12537 		else
12538 			link_info->link_state = BNXT_LINK_STATE_DOWN;
12539 		if (link_state != link_info->link_state)
12540 			bnxt_report_link(bp);
12541 	} else {
12542 		/* always link down if not require to update link state */
12543 		link_info->link_state = BNXT_LINK_STATE_DOWN;
12544 	}
12545 	hwrm_req_drop(bp, req);
12546 
12547 	if (!BNXT_PHY_CFG_ABLE(bp))
12548 		return 0;
12549 
12550 	support_changed = bnxt_support_speed_dropped(link_info);
12551 	if (support_changed && (link_info->autoneg & BNXT_AUTONEG_SPEED))
12552 		bnxt_hwrm_set_link_setting(bp, true, false);
12553 	return 0;
12554 }
12555 
bnxt_get_port_module_status(struct bnxt * bp)12556 static void bnxt_get_port_module_status(struct bnxt *bp)
12557 {
12558 	struct bnxt_link_info *link_info = &bp->link_info;
12559 	struct hwrm_port_phy_qcfg_output *resp = &link_info->phy_qcfg_resp;
12560 	u8 module_status;
12561 
12562 	if (bnxt_update_link(bp, true))
12563 		return;
12564 
12565 	module_status = link_info->module_status;
12566 	switch (module_status) {
12567 	case PORT_PHY_QCFG_RESP_MODULE_STATUS_DISABLETX:
12568 	case PORT_PHY_QCFG_RESP_MODULE_STATUS_PWRDOWN:
12569 	case PORT_PHY_QCFG_RESP_MODULE_STATUS_WARNINGMSG:
12570 		netdev_warn(bp->dev, "Unqualified SFP+ module detected on port %d\n",
12571 			    bp->pf.port_id);
12572 		if (bp->hwrm_spec_code >= 0x10201) {
12573 			netdev_warn(bp->dev, "Module part number %s\n",
12574 				    resp->phy_vendor_partnumber);
12575 		}
12576 		if (module_status == PORT_PHY_QCFG_RESP_MODULE_STATUS_DISABLETX)
12577 			netdev_warn(bp->dev, "TX is disabled\n");
12578 		if (module_status == PORT_PHY_QCFG_RESP_MODULE_STATUS_PWRDOWN)
12579 			netdev_warn(bp->dev, "SFP+ module is shutdown\n");
12580 	}
12581 }
12582 
12583 static void
bnxt_hwrm_set_pause_common(struct bnxt * bp,struct hwrm_port_phy_cfg_input * req)12584 bnxt_hwrm_set_pause_common(struct bnxt *bp, struct hwrm_port_phy_cfg_input *req)
12585 {
12586 	if (bp->link_info.autoneg & BNXT_AUTONEG_FLOW_CTRL) {
12587 		if (bp->hwrm_spec_code >= 0x10201)
12588 			req->auto_pause =
12589 				PORT_PHY_CFG_REQ_AUTO_PAUSE_AUTONEG_PAUSE;
12590 		if (bp->link_info.req_flow_ctrl & BNXT_LINK_PAUSE_RX)
12591 			req->auto_pause |= PORT_PHY_CFG_REQ_AUTO_PAUSE_RX;
12592 		if (bp->link_info.req_flow_ctrl & BNXT_LINK_PAUSE_TX)
12593 			req->auto_pause |= PORT_PHY_CFG_REQ_AUTO_PAUSE_TX;
12594 		req->enables |=
12595 			cpu_to_le32(PORT_PHY_CFG_REQ_ENABLES_AUTO_PAUSE);
12596 	} else {
12597 		if (bp->link_info.req_flow_ctrl & BNXT_LINK_PAUSE_RX)
12598 			req->force_pause |= PORT_PHY_CFG_REQ_FORCE_PAUSE_RX;
12599 		if (bp->link_info.req_flow_ctrl & BNXT_LINK_PAUSE_TX)
12600 			req->force_pause |= PORT_PHY_CFG_REQ_FORCE_PAUSE_TX;
12601 		req->enables |=
12602 			cpu_to_le32(PORT_PHY_CFG_REQ_ENABLES_FORCE_PAUSE);
12603 		if (bp->hwrm_spec_code >= 0x10201) {
12604 			req->auto_pause = req->force_pause;
12605 			req->enables |= cpu_to_le32(
12606 				PORT_PHY_CFG_REQ_ENABLES_AUTO_PAUSE);
12607 		}
12608 	}
12609 }
12610 
bnxt_hwrm_set_link_common(struct bnxt * bp,struct hwrm_port_phy_cfg_input * req)12611 static void bnxt_hwrm_set_link_common(struct bnxt *bp, struct hwrm_port_phy_cfg_input *req)
12612 {
12613 	if (bp->link_info.autoneg & BNXT_AUTONEG_SPEED) {
12614 		req->auto_mode |= PORT_PHY_CFG_REQ_AUTO_MODE_SPEED_MASK;
12615 		if (bp->phy_flags & BNXT_PHY_FL_SPEEDS2) {
12616 			req->enables |=
12617 				cpu_to_le32(PORT_PHY_CFG_REQ_ENABLES_AUTO_LINK_SPEEDS2_MASK);
12618 			req->auto_link_speeds2_mask = cpu_to_le16(bp->link_info.advertising);
12619 		} else if (bp->link_info.advertising) {
12620 			req->enables |= cpu_to_le32(PORT_PHY_CFG_REQ_ENABLES_AUTO_LINK_SPEED_MASK);
12621 			req->auto_link_speed_mask = cpu_to_le16(bp->link_info.advertising);
12622 		}
12623 		if (bp->link_info.advertising_pam4) {
12624 			req->enables |=
12625 				cpu_to_le32(PORT_PHY_CFG_REQ_ENABLES_AUTO_PAM4_LINK_SPEED_MASK);
12626 			req->auto_link_pam4_speed_mask =
12627 				cpu_to_le16(bp->link_info.advertising_pam4);
12628 		}
12629 		req->enables |= cpu_to_le32(PORT_PHY_CFG_REQ_ENABLES_AUTO_MODE);
12630 		req->flags |= cpu_to_le32(PORT_PHY_CFG_REQ_FLAGS_RESTART_AUTONEG);
12631 	} else {
12632 		req->flags |= cpu_to_le32(PORT_PHY_CFG_REQ_FLAGS_FORCE);
12633 		if (bp->phy_flags & BNXT_PHY_FL_SPEEDS2) {
12634 			req->force_link_speeds2 = cpu_to_le16(bp->link_info.req_link_speed);
12635 			req->enables |= cpu_to_le32(PORT_PHY_CFG_REQ_ENABLES_FORCE_LINK_SPEEDS2);
12636 			netif_info(bp, link, bp->dev, "Forcing FW speed2: %d\n",
12637 				   (u32)bp->link_info.req_link_speed);
12638 		} else if (bp->link_info.req_signal_mode == BNXT_SIG_MODE_PAM4) {
12639 			req->force_pam4_link_speed = cpu_to_le16(bp->link_info.req_link_speed);
12640 			req->enables |= cpu_to_le32(PORT_PHY_CFG_REQ_ENABLES_FORCE_PAM4_LINK_SPEED);
12641 		} else {
12642 			req->force_link_speed = cpu_to_le16(bp->link_info.req_link_speed);
12643 		}
12644 	}
12645 
12646 	/* tell chimp that the setting takes effect immediately */
12647 	req->flags |= cpu_to_le32(PORT_PHY_CFG_REQ_FLAGS_RESET_PHY);
12648 }
12649 
bnxt_hwrm_set_pause(struct bnxt * bp)12650 int bnxt_hwrm_set_pause(struct bnxt *bp)
12651 {
12652 	struct hwrm_port_phy_cfg_input *req;
12653 	int rc;
12654 
12655 	rc = hwrm_req_init(bp, req, HWRM_PORT_PHY_CFG);
12656 	if (rc)
12657 		return rc;
12658 
12659 	bnxt_hwrm_set_pause_common(bp, req);
12660 
12661 	if ((bp->link_info.autoneg & BNXT_AUTONEG_FLOW_CTRL) ||
12662 	    bp->link_info.force_link_chng)
12663 		bnxt_hwrm_set_link_common(bp, req);
12664 
12665 	rc = hwrm_req_send(bp, req);
12666 	if (!rc && !(bp->link_info.autoneg & BNXT_AUTONEG_FLOW_CTRL)) {
12667 		/* since changing of pause setting doesn't trigger any link
12668 		 * change event, the driver needs to update the current pause
12669 		 * result upon successfully return of the phy_cfg command
12670 		 */
12671 		bp->link_info.pause =
12672 		bp->link_info.force_pause_setting = bp->link_info.req_flow_ctrl;
12673 		bp->link_info.auto_pause_setting = 0;
12674 		if (!bp->link_info.force_link_chng)
12675 			bnxt_report_link(bp);
12676 	}
12677 	bp->link_info.force_link_chng = false;
12678 	return rc;
12679 }
12680 
bnxt_hwrm_set_eee(struct bnxt * bp,struct hwrm_port_phy_cfg_input * req)12681 static void bnxt_hwrm_set_eee(struct bnxt *bp,
12682 			      struct hwrm_port_phy_cfg_input *req)
12683 {
12684 	struct ethtool_keee *eee = &bp->eee;
12685 
12686 	if (eee->eee_enabled) {
12687 		u16 eee_speeds;
12688 		u32 flags = PORT_PHY_CFG_REQ_FLAGS_EEE_ENABLE;
12689 
12690 		if (eee->tx_lpi_enabled)
12691 			flags |= PORT_PHY_CFG_REQ_FLAGS_EEE_TX_LPI_ENABLE;
12692 		else
12693 			flags |= PORT_PHY_CFG_REQ_FLAGS_EEE_TX_LPI_DISABLE;
12694 
12695 		req->flags |= cpu_to_le32(flags);
12696 		eee_speeds = bnxt_get_fw_auto_link_speeds(eee->advertised);
12697 		req->eee_link_speed_mask = cpu_to_le16(eee_speeds);
12698 		req->tx_lpi_timer = cpu_to_le32(eee->tx_lpi_timer);
12699 	} else {
12700 		req->flags |= cpu_to_le32(PORT_PHY_CFG_REQ_FLAGS_EEE_DISABLE);
12701 	}
12702 }
12703 
bnxt_hwrm_set_link_setting(struct bnxt * bp,bool set_pause,bool set_eee)12704 int bnxt_hwrm_set_link_setting(struct bnxt *bp, bool set_pause, bool set_eee)
12705 {
12706 	struct hwrm_port_phy_cfg_input *req;
12707 	int rc;
12708 
12709 	rc = hwrm_req_init(bp, req, HWRM_PORT_PHY_CFG);
12710 	if (rc)
12711 		return rc;
12712 
12713 	if (set_pause)
12714 		bnxt_hwrm_set_pause_common(bp, req);
12715 
12716 	bnxt_hwrm_set_link_common(bp, req);
12717 
12718 	if (set_eee)
12719 		bnxt_hwrm_set_eee(bp, req);
12720 	return hwrm_req_send(bp, req);
12721 }
12722 
bnxt_hwrm_shutdown_link(struct bnxt * bp)12723 static int bnxt_hwrm_shutdown_link(struct bnxt *bp)
12724 {
12725 	struct hwrm_port_phy_cfg_input *req;
12726 	int rc;
12727 
12728 	if (!BNXT_SINGLE_PF(bp))
12729 		return 0;
12730 
12731 	if (pci_num_vf(bp->pdev) &&
12732 	    !(bp->phy_flags & BNXT_PHY_FL_FW_MANAGED_LKDN))
12733 		return 0;
12734 
12735 	rc = hwrm_req_init(bp, req, HWRM_PORT_PHY_CFG);
12736 	if (rc)
12737 		return rc;
12738 
12739 	req->flags = cpu_to_le32(PORT_PHY_CFG_REQ_FLAGS_FORCE_LINK_DWN);
12740 	rc = hwrm_req_send(bp, req);
12741 	if (!rc) {
12742 		mutex_lock(&bp->link_lock);
12743 		/* Device is not obliged link down in certain scenarios, even
12744 		 * when forced. Setting the state unknown is consistent with
12745 		 * driver startup and will force link state to be reported
12746 		 * during subsequent open based on PORT_PHY_QCFG.
12747 		 */
12748 		bp->link_info.link_state = BNXT_LINK_STATE_UNKNOWN;
12749 		mutex_unlock(&bp->link_lock);
12750 	}
12751 	return rc;
12752 }
12753 
bnxt_fw_reset_via_optee(struct bnxt * bp)12754 static int bnxt_fw_reset_via_optee(struct bnxt *bp)
12755 {
12756 #ifdef CONFIG_TEE_BNXT_FW
12757 	int rc = tee_bnxt_fw_load();
12758 
12759 	if (rc)
12760 		netdev_err(bp->dev, "Failed FW reset via OP-TEE, rc=%d\n", rc);
12761 
12762 	return rc;
12763 #else
12764 	netdev_err(bp->dev, "OP-TEE not supported\n");
12765 	return -ENODEV;
12766 #endif
12767 }
12768 
bnxt_try_recover_fw(struct bnxt * bp)12769 static int bnxt_try_recover_fw(struct bnxt *bp)
12770 {
12771 	if (bp->fw_health && bp->fw_health->status_reliable) {
12772 		int retry = 0, rc;
12773 		u32 sts;
12774 
12775 		do {
12776 			sts = bnxt_fw_health_readl(bp, BNXT_FW_HEALTH_REG);
12777 			rc = bnxt_hwrm_poll(bp);
12778 			if (!BNXT_FW_IS_BOOTING(sts) &&
12779 			    !BNXT_FW_IS_RECOVERING(sts))
12780 				break;
12781 			retry++;
12782 		} while (rc == -EBUSY && retry < BNXT_FW_RETRY);
12783 
12784 		if (!BNXT_FW_IS_HEALTHY(sts)) {
12785 			netdev_err(bp->dev,
12786 				   "Firmware not responding, status: 0x%x\n",
12787 				   sts);
12788 			rc = -ENODEV;
12789 		}
12790 		if (sts & FW_STATUS_REG_CRASHED_NO_MASTER) {
12791 			netdev_warn(bp->dev, "Firmware recover via OP-TEE requested\n");
12792 			return bnxt_fw_reset_via_optee(bp);
12793 		}
12794 		return rc;
12795 	}
12796 
12797 	return -ENODEV;
12798 }
12799 
bnxt_clear_reservations(struct bnxt * bp,bool fw_reset)12800 void bnxt_clear_reservations(struct bnxt *bp, bool fw_reset)
12801 {
12802 	struct bnxt_hw_resc *hw_resc = &bp->hw_resc;
12803 
12804 	if (!BNXT_NEW_RM(bp))
12805 		return; /* no resource reservations required */
12806 
12807 	hw_resc->resv_cp_rings = 0;
12808 	hw_resc->resv_stat_ctxs = 0;
12809 	hw_resc->resv_irqs = 0;
12810 	hw_resc->resv_tx_rings = 0;
12811 	hw_resc->resv_rx_rings = 0;
12812 	hw_resc->resv_hw_ring_grps = 0;
12813 	hw_resc->resv_vnics = 0;
12814 	hw_resc->resv_rsscos_ctxs = 0;
12815 	if (!fw_reset) {
12816 		bp->tx_nr_rings = 0;
12817 		bp->rx_nr_rings = 0;
12818 	}
12819 }
12820 
bnxt_cancel_reservations(struct bnxt * bp,bool fw_reset)12821 int bnxt_cancel_reservations(struct bnxt *bp, bool fw_reset)
12822 {
12823 	int rc;
12824 
12825 	if (!BNXT_NEW_RM(bp))
12826 		return 0; /* no resource reservations required */
12827 
12828 	rc = bnxt_hwrm_func_resc_qcaps(bp, true);
12829 	if (rc)
12830 		netdev_err(bp->dev, "resc_qcaps failed\n");
12831 
12832 	bnxt_clear_reservations(bp, fw_reset);
12833 
12834 	return rc;
12835 }
12836 
bnxt_hwrm_if_change(struct bnxt * bp,bool up)12837 static int bnxt_hwrm_if_change(struct bnxt *bp, bool up)
12838 {
12839 	struct hwrm_func_drv_if_change_output *resp;
12840 	struct hwrm_func_drv_if_change_input *req;
12841 	bool resc_reinit = false;
12842 	bool caps_change = false;
12843 	int rc, retry = 0;
12844 	bool fw_reset;
12845 	u32 flags = 0;
12846 
12847 	fw_reset = (bp->fw_reset_state == BNXT_FW_RESET_STATE_ABORT);
12848 	bp->fw_reset_state = 0;
12849 
12850 	if (!(bp->fw_cap & BNXT_FW_CAP_IF_CHANGE))
12851 		return 0;
12852 
12853 	rc = hwrm_req_init(bp, req, HWRM_FUNC_DRV_IF_CHANGE);
12854 	if (rc)
12855 		return rc;
12856 
12857 	if (up)
12858 		req->flags = cpu_to_le32(FUNC_DRV_IF_CHANGE_REQ_FLAGS_UP);
12859 	resp = hwrm_req_hold(bp, req);
12860 
12861 	hwrm_req_flags(bp, req, BNXT_HWRM_FULL_WAIT);
12862 	while (retry < BNXT_FW_IF_RETRY) {
12863 		rc = hwrm_req_send(bp, req);
12864 		if (rc != -EAGAIN)
12865 			break;
12866 
12867 		msleep(50);
12868 		retry++;
12869 	}
12870 
12871 	if (rc == -EAGAIN) {
12872 		hwrm_req_drop(bp, req);
12873 		return rc;
12874 	} else if (!rc) {
12875 		flags = le32_to_cpu(resp->flags);
12876 	} else if (up) {
12877 		rc = bnxt_try_recover_fw(bp);
12878 		fw_reset = true;
12879 	}
12880 	hwrm_req_drop(bp, req);
12881 	if (rc)
12882 		return rc;
12883 
12884 	if (!up) {
12885 		bnxt_inv_fw_health_reg(bp);
12886 		return 0;
12887 	}
12888 
12889 	if (flags & FUNC_DRV_IF_CHANGE_RESP_FLAGS_RESC_CHANGE)
12890 		resc_reinit = true;
12891 	if (flags & FUNC_DRV_IF_CHANGE_RESP_FLAGS_HOT_FW_RESET_DONE ||
12892 	    test_bit(BNXT_STATE_FW_RESET_DET, &bp->state))
12893 		fw_reset = true;
12894 	else
12895 		bnxt_remap_fw_health_regs(bp);
12896 
12897 	if (test_bit(BNXT_STATE_IN_FW_RESET, &bp->state) && !fw_reset) {
12898 		netdev_err(bp->dev, "RESET_DONE not set during FW reset.\n");
12899 		set_bit(BNXT_STATE_ABORT_ERR, &bp->state);
12900 		return -ENODEV;
12901 	}
12902 	if (flags & FUNC_DRV_IF_CHANGE_RESP_FLAGS_CAPS_CHANGE)
12903 		caps_change = true;
12904 
12905 	if (resc_reinit || fw_reset || caps_change) {
12906 		if (fw_reset || caps_change) {
12907 			set_bit(BNXT_STATE_FW_RESET_DET, &bp->state);
12908 			if (!test_bit(BNXT_STATE_IN_FW_RESET, &bp->state))
12909 				bnxt_ulp_irq_stop(bp);
12910 			bnxt_free_ctx_mem(bp, false);
12911 			bnxt_dcb_free(bp);
12912 			rc = bnxt_fw_init_one(bp);
12913 			if (rc) {
12914 				clear_bit(BNXT_STATE_FW_RESET_DET, &bp->state);
12915 				set_bit(BNXT_STATE_ABORT_ERR, &bp->state);
12916 				return rc;
12917 			}
12918 			/* IRQ will be initialized later in bnxt_request_irq()*/
12919 			bnxt_clear_int_mode(bp);
12920 		}
12921 		rc = bnxt_cancel_reservations(bp, fw_reset);
12922 	}
12923 	return rc;
12924 }
12925 
bnxt_hwrm_port_led_qcaps(struct bnxt * bp)12926 static int bnxt_hwrm_port_led_qcaps(struct bnxt *bp)
12927 {
12928 	struct hwrm_port_led_qcaps_output *resp;
12929 	struct hwrm_port_led_qcaps_input *req;
12930 	struct bnxt_pf_info *pf = &bp->pf;
12931 	int rc;
12932 
12933 	bp->num_leds = 0;
12934 	if (BNXT_VF(bp) || bp->hwrm_spec_code < 0x10601)
12935 		return 0;
12936 
12937 	rc = hwrm_req_init(bp, req, HWRM_PORT_LED_QCAPS);
12938 	if (rc)
12939 		return rc;
12940 
12941 	req->port_id = cpu_to_le16(pf->port_id);
12942 	resp = hwrm_req_hold(bp, req);
12943 	rc = hwrm_req_send(bp, req);
12944 	if (rc) {
12945 		hwrm_req_drop(bp, req);
12946 		return rc;
12947 	}
12948 	if (resp->num_leds > 0 && resp->num_leds < BNXT_MAX_LED) {
12949 		int i;
12950 
12951 		bp->num_leds = resp->num_leds;
12952 		memcpy(bp->leds, &resp->led0_id, sizeof(bp->leds[0]) *
12953 						 bp->num_leds);
12954 		for (i = 0; i < bp->num_leds; i++) {
12955 			struct bnxt_led_info *led = &bp->leds[i];
12956 			__le16 caps = led->led_state_caps;
12957 
12958 			if (!led->led_group_id ||
12959 			    !BNXT_LED_ALT_BLINK_CAP(caps)) {
12960 				bp->num_leds = 0;
12961 				break;
12962 			}
12963 		}
12964 	}
12965 	hwrm_req_drop(bp, req);
12966 	return 0;
12967 }
12968 
bnxt_hwrm_alloc_wol_fltr(struct bnxt * bp)12969 int bnxt_hwrm_alloc_wol_fltr(struct bnxt *bp)
12970 {
12971 	struct hwrm_wol_filter_alloc_output *resp;
12972 	struct hwrm_wol_filter_alloc_input *req;
12973 	int rc;
12974 
12975 	rc = hwrm_req_init(bp, req, HWRM_WOL_FILTER_ALLOC);
12976 	if (rc)
12977 		return rc;
12978 
12979 	req->port_id = cpu_to_le16(bp->pf.port_id);
12980 	req->wol_type = WOL_FILTER_ALLOC_REQ_WOL_TYPE_MAGICPKT;
12981 	req->enables = cpu_to_le32(WOL_FILTER_ALLOC_REQ_ENABLES_MAC_ADDRESS);
12982 	memcpy(req->mac_address, bp->dev->dev_addr, ETH_ALEN);
12983 
12984 	resp = hwrm_req_hold(bp, req);
12985 	rc = hwrm_req_send(bp, req);
12986 	if (!rc)
12987 		bp->wol_filter_id = resp->wol_filter_id;
12988 	hwrm_req_drop(bp, req);
12989 	return rc;
12990 }
12991 
bnxt_hwrm_free_wol_fltr(struct bnxt * bp)12992 int bnxt_hwrm_free_wol_fltr(struct bnxt *bp)
12993 {
12994 	struct hwrm_wol_filter_free_input *req;
12995 	int rc;
12996 
12997 	rc = hwrm_req_init(bp, req, HWRM_WOL_FILTER_FREE);
12998 	if (rc)
12999 		return rc;
13000 
13001 	req->port_id = cpu_to_le16(bp->pf.port_id);
13002 	req->enables = cpu_to_le32(WOL_FILTER_FREE_REQ_ENABLES_WOL_FILTER_ID);
13003 	req->wol_filter_id = bp->wol_filter_id;
13004 
13005 	return hwrm_req_send(bp, req);
13006 }
13007 
bnxt_hwrm_get_wol_fltrs(struct bnxt * bp,u16 handle)13008 static u16 bnxt_hwrm_get_wol_fltrs(struct bnxt *bp, u16 handle)
13009 {
13010 	struct hwrm_wol_filter_qcfg_output *resp;
13011 	struct hwrm_wol_filter_qcfg_input *req;
13012 	u16 next_handle = 0;
13013 	int rc;
13014 
13015 	rc = hwrm_req_init(bp, req, HWRM_WOL_FILTER_QCFG);
13016 	if (rc)
13017 		return rc;
13018 
13019 	req->port_id = cpu_to_le16(bp->pf.port_id);
13020 	req->handle = cpu_to_le16(handle);
13021 	resp = hwrm_req_hold(bp, req);
13022 	rc = hwrm_req_send(bp, req);
13023 	if (!rc) {
13024 		next_handle = le16_to_cpu(resp->next_handle);
13025 		if (next_handle != 0) {
13026 			if (resp->wol_type ==
13027 			    WOL_FILTER_ALLOC_REQ_WOL_TYPE_MAGICPKT) {
13028 				bp->wol = 1;
13029 				bp->wol_filter_id = resp->wol_filter_id;
13030 			}
13031 		}
13032 	}
13033 	hwrm_req_drop(bp, req);
13034 	return next_handle;
13035 }
13036 
bnxt_get_wol_settings(struct bnxt * bp)13037 static void bnxt_get_wol_settings(struct bnxt *bp)
13038 {
13039 	u16 handle = 0;
13040 
13041 	bp->wol = 0;
13042 	if (!BNXT_PF(bp) || !(bp->flags & BNXT_FLAG_WOL_CAP))
13043 		return;
13044 
13045 	do {
13046 		handle = bnxt_hwrm_get_wol_fltrs(bp, handle);
13047 	} while (handle && handle != 0xffff);
13048 }
13049 
bnxt_eee_config_ok(struct bnxt * bp)13050 static bool bnxt_eee_config_ok(struct bnxt *bp)
13051 {
13052 	struct ethtool_keee *eee = &bp->eee;
13053 	struct bnxt_link_info *link_info = &bp->link_info;
13054 
13055 	if (!(bp->phy_flags & BNXT_PHY_FL_EEE_CAP))
13056 		return true;
13057 
13058 	if (eee->eee_enabled) {
13059 		__ETHTOOL_DECLARE_LINK_MODE_MASK(advertising);
13060 		__ETHTOOL_DECLARE_LINK_MODE_MASK(tmp);
13061 
13062 		_bnxt_fw_to_linkmode(advertising, link_info->advertising);
13063 
13064 		if (!(link_info->autoneg & BNXT_AUTONEG_SPEED)) {
13065 			eee->eee_enabled = 0;
13066 			return false;
13067 		}
13068 		if (linkmode_andnot(tmp, eee->advertised, advertising)) {
13069 			linkmode_and(eee->advertised, advertising,
13070 				     eee->supported);
13071 			return false;
13072 		}
13073 	}
13074 	return true;
13075 }
13076 
bnxt_update_phy_setting(struct bnxt * bp)13077 static int bnxt_update_phy_setting(struct bnxt *bp)
13078 {
13079 	int rc;
13080 	bool update_link = false;
13081 	bool update_pause = false;
13082 	bool update_eee = false;
13083 	struct bnxt_link_info *link_info = &bp->link_info;
13084 
13085 	rc = bnxt_update_link(bp, true);
13086 	if (rc) {
13087 		netdev_err(bp->dev, "failed to update link (rc: %x)\n",
13088 			   rc);
13089 		return rc;
13090 	}
13091 	if (!BNXT_SINGLE_PF(bp))
13092 		return 0;
13093 
13094 	if ((link_info->autoneg & BNXT_AUTONEG_FLOW_CTRL) &&
13095 	    (link_info->auto_pause_setting & BNXT_LINK_PAUSE_BOTH) !=
13096 	    link_info->req_flow_ctrl)
13097 		update_pause = true;
13098 	if (!(link_info->autoneg & BNXT_AUTONEG_FLOW_CTRL) &&
13099 	    link_info->force_pause_setting != link_info->req_flow_ctrl)
13100 		update_pause = true;
13101 	if (!(link_info->autoneg & BNXT_AUTONEG_SPEED)) {
13102 		if (BNXT_AUTO_MODE(link_info->auto_mode))
13103 			update_link = true;
13104 		if (bnxt_force_speed_updated(link_info))
13105 			update_link = true;
13106 		if (link_info->req_duplex != link_info->duplex_setting)
13107 			update_link = true;
13108 	} else {
13109 		if (link_info->auto_mode == BNXT_LINK_AUTO_NONE)
13110 			update_link = true;
13111 		if (bnxt_auto_speed_updated(link_info))
13112 			update_link = true;
13113 	}
13114 
13115 	/* The last close may have shutdown the link, so need to call
13116 	 * PHY_CFG to bring it back up.
13117 	 */
13118 	if (!BNXT_LINK_IS_UP(bp))
13119 		update_link = true;
13120 
13121 	if (!bnxt_eee_config_ok(bp))
13122 		update_eee = true;
13123 
13124 	if (update_link)
13125 		rc = bnxt_hwrm_set_link_setting(bp, update_pause, update_eee);
13126 	else if (update_pause)
13127 		rc = bnxt_hwrm_set_pause(bp);
13128 	if (rc) {
13129 		netdev_err(bp->dev, "failed to update phy setting (rc: %x)\n",
13130 			   rc);
13131 		return rc;
13132 	}
13133 
13134 	return rc;
13135 }
13136 
13137 static int bnxt_init_dflt_ring_mode(struct bnxt *bp);
13138 
bnxt_reinit_after_abort(struct bnxt * bp)13139 static int bnxt_reinit_after_abort(struct bnxt *bp)
13140 {
13141 	int rc;
13142 
13143 	if (test_bit(BNXT_STATE_IN_FW_RESET, &bp->state))
13144 		return -EBUSY;
13145 
13146 	if (bp->dev->reg_state == NETREG_UNREGISTERED)
13147 		return -ENODEV;
13148 
13149 	rc = bnxt_fw_init_one(bp);
13150 	if (!rc) {
13151 		bnxt_clear_int_mode(bp);
13152 		rc = bnxt_init_int_mode(bp);
13153 		if (!rc) {
13154 			clear_bit(BNXT_STATE_ABORT_ERR, &bp->state);
13155 			set_bit(BNXT_STATE_FW_RESET_DET, &bp->state);
13156 		}
13157 	}
13158 	return rc;
13159 }
13160 
bnxt_cfg_one_usr_fltr(struct bnxt * bp,struct bnxt_filter_base * fltr)13161 static void bnxt_cfg_one_usr_fltr(struct bnxt *bp, struct bnxt_filter_base *fltr)
13162 {
13163 	struct bnxt_ntuple_filter *ntp_fltr;
13164 	struct bnxt_l2_filter *l2_fltr;
13165 
13166 	if (list_empty(&fltr->list))
13167 		return;
13168 
13169 	if (fltr->type == BNXT_FLTR_TYPE_NTUPLE) {
13170 		ntp_fltr = container_of(fltr, struct bnxt_ntuple_filter, base);
13171 		l2_fltr = bp->vnic_info[BNXT_VNIC_DEFAULT].l2_filters[0];
13172 		atomic_inc(&l2_fltr->refcnt);
13173 		ntp_fltr->l2_fltr = l2_fltr;
13174 		if (bnxt_hwrm_cfa_ntuple_filter_alloc(bp, ntp_fltr)) {
13175 			bnxt_del_ntp_filter(bp, ntp_fltr);
13176 			netdev_err(bp->dev, "restoring previously configured ntuple filter id %d failed\n",
13177 				   fltr->sw_id);
13178 		}
13179 	} else if (fltr->type == BNXT_FLTR_TYPE_L2) {
13180 		l2_fltr = container_of(fltr, struct bnxt_l2_filter, base);
13181 		if (bnxt_hwrm_l2_filter_alloc(bp, l2_fltr)) {
13182 			bnxt_del_l2_filter(bp, l2_fltr);
13183 			netdev_err(bp->dev, "restoring previously configured l2 filter id %d failed\n",
13184 				   fltr->sw_id);
13185 		}
13186 	}
13187 }
13188 
bnxt_cfg_usr_fltrs(struct bnxt * bp)13189 static void bnxt_cfg_usr_fltrs(struct bnxt *bp)
13190 {
13191 	struct bnxt_filter_base *usr_fltr, *tmp;
13192 
13193 	list_for_each_entry_safe(usr_fltr, tmp, &bp->usr_fltr_list, list)
13194 		bnxt_cfg_one_usr_fltr(bp, usr_fltr);
13195 }
13196 
bnxt_set_xps_mapping(struct bnxt * bp)13197 static int bnxt_set_xps_mapping(struct bnxt *bp)
13198 {
13199 	int numa_node = dev_to_node(&bp->pdev->dev);
13200 	unsigned int q_idx, map_idx, cpu, i;
13201 	const struct cpumask *cpu_mask_ptr;
13202 	int nr_cpus = num_online_cpus();
13203 	cpumask_t *q_map;
13204 	int rc = 0;
13205 
13206 	q_map = kzalloc_objs(*q_map, bp->tx_nr_rings_per_tc);
13207 	if (!q_map)
13208 		return -ENOMEM;
13209 
13210 	/* Create CPU mask for all TX queues across MQPRIO traffic classes.
13211 	 * Each TC has the same number of TX queues. The nth TX queue for each
13212 	 * TC will have the same CPU mask.
13213 	 */
13214 	for (i = 0; i < nr_cpus; i++) {
13215 		map_idx = i % bp->tx_nr_rings_per_tc;
13216 		cpu = cpumask_local_spread(i, numa_node);
13217 		cpu_mask_ptr = get_cpu_mask(cpu);
13218 		cpumask_or(&q_map[map_idx], &q_map[map_idx], cpu_mask_ptr);
13219 	}
13220 
13221 	/* Register CPU mask for each TX queue except the ones marked for XDP */
13222 	for (q_idx = 0; q_idx < bp->dev->real_num_tx_queues; q_idx++) {
13223 		map_idx = q_idx % bp->tx_nr_rings_per_tc;
13224 		rc = netif_set_xps_queue(bp->dev, &q_map[map_idx], q_idx);
13225 		if (rc) {
13226 			netdev_warn(bp->dev, "Error setting XPS for q:%d\n",
13227 				    q_idx);
13228 			break;
13229 		}
13230 	}
13231 
13232 	kfree(q_map);
13233 
13234 	return rc;
13235 }
13236 
bnxt_tx_nr_rings(struct bnxt * bp)13237 static int bnxt_tx_nr_rings(struct bnxt *bp)
13238 {
13239 	return bp->num_tc ? bp->tx_nr_rings_per_tc * bp->num_tc :
13240 			    bp->tx_nr_rings_per_tc;
13241 }
13242 
bnxt_tx_nr_rings_per_tc(struct bnxt * bp)13243 static int bnxt_tx_nr_rings_per_tc(struct bnxt *bp)
13244 {
13245 	return bp->num_tc ? bp->tx_nr_rings / bp->num_tc : bp->tx_nr_rings;
13246 }
13247 
bnxt_set_xdp_tx_rings(struct bnxt * bp)13248 static void bnxt_set_xdp_tx_rings(struct bnxt *bp)
13249 {
13250 	bp->tx_nr_rings_xdp = bp->tx_nr_rings_per_tc;
13251 	bp->tx_nr_rings += bp->tx_nr_rings_xdp;
13252 }
13253 
bnxt_adj_tx_rings(struct bnxt * bp)13254 static void bnxt_adj_tx_rings(struct bnxt *bp)
13255 {
13256 	/* Make adjustments if reserved TX rings are less than requested */
13257 	bp->tx_nr_rings -= bp->tx_nr_rings_xdp;
13258 	bp->tx_nr_rings_per_tc = bnxt_tx_nr_rings_per_tc(bp);
13259 	if (bp->tx_nr_rings_xdp)
13260 		bnxt_set_xdp_tx_rings(bp);
13261 }
13262 
__bnxt_open_nic(struct bnxt * bp,bool irq_re_init,bool link_re_init)13263 static int __bnxt_open_nic(struct bnxt *bp, bool irq_re_init, bool link_re_init)
13264 {
13265 	int rc = 0;
13266 
13267 	netif_carrier_off(bp->dev);
13268 	if (irq_re_init) {
13269 		/* Reserve rings now if none were reserved at driver probe. */
13270 		rc = bnxt_init_dflt_ring_mode(bp);
13271 		if (rc) {
13272 			netdev_err(bp->dev, "Failed to reserve default rings at open\n");
13273 			return rc;
13274 		}
13275 	}
13276 	rc = bnxt_reserve_rings(bp, irq_re_init);
13277 	if (rc)
13278 		return rc;
13279 
13280 	bnxt_adj_tx_rings(bp);
13281 	rc = bnxt_alloc_mem(bp, irq_re_init);
13282 	if (rc) {
13283 		netdev_err(bp->dev, "bnxt_alloc_mem err: %x\n", rc);
13284 		goto open_err_free_mem;
13285 	}
13286 
13287 	if (irq_re_init) {
13288 		bnxt_init_napi(bp);
13289 		rc = bnxt_request_irq(bp);
13290 		if (rc) {
13291 			netdev_err(bp->dev, "bnxt_request_irq err: %x\n", rc);
13292 			goto open_err_irq;
13293 		}
13294 	}
13295 
13296 	rc = bnxt_init_nic(bp, irq_re_init);
13297 	if (rc) {
13298 		netdev_err(bp->dev, "bnxt_init_nic err: %x\n", rc);
13299 		goto open_err_irq;
13300 	}
13301 
13302 	bnxt_enable_napi(bp);
13303 	bnxt_debug_dev_init(bp);
13304 
13305 	if (link_re_init) {
13306 		mutex_lock(&bp->link_lock);
13307 		rc = bnxt_update_phy_setting(bp);
13308 		mutex_unlock(&bp->link_lock);
13309 		if (rc) {
13310 			netdev_warn(bp->dev, "failed to update phy settings\n");
13311 			if (BNXT_SINGLE_PF(bp)) {
13312 				bp->link_info.phy_retry = true;
13313 				bp->link_info.phy_retry_expires =
13314 					jiffies + 5 * HZ;
13315 			}
13316 		}
13317 	}
13318 
13319 	if (irq_re_init) {
13320 		udp_tunnel_nic_reset_ntf(bp->dev);
13321 		rc = bnxt_set_xps_mapping(bp);
13322 		if (rc)
13323 			netdev_warn(bp->dev, "failed to set xps mapping\n");
13324 	}
13325 
13326 	if (bp->tx_nr_rings_xdp < num_possible_cpus()) {
13327 		if (!static_key_enabled(&bnxt_xdp_locking_key))
13328 			static_branch_enable(&bnxt_xdp_locking_key);
13329 	} else if (static_key_enabled(&bnxt_xdp_locking_key)) {
13330 		static_branch_disable(&bnxt_xdp_locking_key);
13331 	}
13332 	set_bit(BNXT_STATE_OPEN, &bp->state);
13333 	bnxt_enable_int(bp);
13334 	/* Enable TX queues */
13335 	bnxt_tx_enable(bp);
13336 	mod_timer(&bp->timer, jiffies + bp->current_interval);
13337 	/* Poll link status and check for SFP+ module status */
13338 	mutex_lock(&bp->link_lock);
13339 	bnxt_get_port_module_status(bp);
13340 	mutex_unlock(&bp->link_lock);
13341 
13342 	/* VF-reps may need to be re-opened after the PF is re-opened */
13343 	if (BNXT_PF(bp))
13344 		bnxt_vf_reps_open(bp);
13345 	bnxt_ptp_init_rtc(bp, true);
13346 	bnxt_ptp_cfg_tstamp_filters(bp);
13347 	if (BNXT_SUPPORTS_MULTI_RSS_CTX(bp))
13348 		bnxt_hwrm_realloc_rss_ctx_vnic(bp);
13349 	bnxt_cfg_usr_fltrs(bp);
13350 	return 0;
13351 
13352 open_err_irq:
13353 	bnxt_del_napi(bp);
13354 
13355 open_err_free_mem:
13356 	bnxt_free_skbs(bp);
13357 	bnxt_free_irq(bp);
13358 	bnxt_free_mem(bp, true);
13359 	return rc;
13360 }
13361 
bnxt_open_nic(struct bnxt * bp,bool irq_re_init,bool link_re_init)13362 int bnxt_open_nic(struct bnxt *bp, bool irq_re_init, bool link_re_init)
13363 {
13364 	int rc = 0;
13365 
13366 	if (test_bit(BNXT_STATE_ABORT_ERR, &bp->state))
13367 		rc = -EIO;
13368 	if (!rc)
13369 		rc = __bnxt_open_nic(bp, irq_re_init, link_re_init);
13370 	if (rc) {
13371 		netdev_err(bp->dev, "nic open fail (rc: %x)\n", rc);
13372 		netif_close(bp->dev);
13373 	}
13374 	return rc;
13375 }
13376 
13377 /* netdev instance lock held, open the NIC half way by allocating all
13378  * resources, but NAPI, IRQ, and TX are not enabled.  This is mainly used
13379  * for offline self tests.
13380  */
bnxt_half_open_nic(struct bnxt * bp)13381 int bnxt_half_open_nic(struct bnxt *bp)
13382 {
13383 	int rc = 0;
13384 
13385 	if (test_bit(BNXT_STATE_ABORT_ERR, &bp->state)) {
13386 		netdev_err(bp->dev, "A previous firmware reset has not completed, aborting half open\n");
13387 		rc = -ENODEV;
13388 		goto half_open_err;
13389 	}
13390 
13391 	rc = bnxt_alloc_mem(bp, true);
13392 	if (rc) {
13393 		netdev_err(bp->dev, "bnxt_alloc_mem err: %x\n", rc);
13394 		goto half_open_err;
13395 	}
13396 	bnxt_init_napi(bp);
13397 	set_bit(BNXT_STATE_HALF_OPEN, &bp->state);
13398 	rc = bnxt_init_nic(bp, true);
13399 	if (rc) {
13400 		clear_bit(BNXT_STATE_HALF_OPEN, &bp->state);
13401 		bnxt_del_napi(bp);
13402 		netdev_err(bp->dev, "bnxt_init_nic err: %x\n", rc);
13403 		goto half_open_err;
13404 	}
13405 	return 0;
13406 
13407 half_open_err:
13408 	bnxt_free_skbs(bp);
13409 	bnxt_free_mem(bp, true);
13410 	netif_close(bp->dev);
13411 	return rc;
13412 }
13413 
13414 /* netdev instance lock held, this call can only be made after a previous
13415  * successful call to bnxt_half_open_nic().
13416  */
bnxt_half_close_nic(struct bnxt * bp)13417 void bnxt_half_close_nic(struct bnxt *bp)
13418 {
13419 	bnxt_hwrm_resource_free(bp, false, true);
13420 	bnxt_del_napi(bp);
13421 	bnxt_free_skbs(bp);
13422 	bnxt_free_mem(bp, true);
13423 	clear_bit(BNXT_STATE_HALF_OPEN, &bp->state);
13424 }
13425 
bnxt_reenable_sriov(struct bnxt * bp)13426 void bnxt_reenable_sriov(struct bnxt *bp)
13427 {
13428 	if (BNXT_PF(bp)) {
13429 		struct bnxt_pf_info *pf = &bp->pf;
13430 		int n = pf->active_vfs;
13431 
13432 		if (n)
13433 			bnxt_cfg_hw_sriov(bp, &n, true);
13434 	}
13435 }
13436 
bnxt_open(struct net_device * dev)13437 static int bnxt_open(struct net_device *dev)
13438 {
13439 	struct bnxt *bp = netdev_priv(dev);
13440 	int rc;
13441 
13442 	if (test_bit(BNXT_STATE_ABORT_ERR, &bp->state)) {
13443 		rc = bnxt_reinit_after_abort(bp);
13444 		if (rc) {
13445 			if (rc == -EBUSY)
13446 				netdev_err(bp->dev, "A previous firmware reset has not completed, aborting\n");
13447 			else
13448 				netdev_err(bp->dev, "Failed to reinitialize after aborted firmware reset\n");
13449 			return -ENODEV;
13450 		}
13451 	}
13452 
13453 	rc = bnxt_hwrm_if_change(bp, true);
13454 	if (rc)
13455 		return rc;
13456 
13457 	rc = __bnxt_open_nic(bp, true, true);
13458 	if (rc) {
13459 		bnxt_hwrm_if_change(bp, false);
13460 	} else {
13461 		if (test_and_clear_bit(BNXT_STATE_FW_RESET_DET, &bp->state)) {
13462 			if (!test_bit(BNXT_STATE_IN_FW_RESET, &bp->state))
13463 				bnxt_queue_sp_work(bp,
13464 						   BNXT_RESTART_ULP_SP_EVENT);
13465 		}
13466 	}
13467 
13468 	return rc;
13469 }
13470 
bnxt_drv_busy(struct bnxt * bp)13471 static bool bnxt_drv_busy(struct bnxt *bp)
13472 {
13473 	return (test_bit(BNXT_STATE_IN_SP_TASK, &bp->state) ||
13474 		test_bit(BNXT_STATE_READ_STATS, &bp->state));
13475 }
13476 
13477 static void bnxt_get_ring_stats(struct bnxt *bp,
13478 				struct rtnl_link_stats64 *stats);
13479 
__bnxt_close_nic(struct bnxt * bp,bool irq_re_init,bool link_re_init)13480 static void __bnxt_close_nic(struct bnxt *bp, bool irq_re_init,
13481 			     bool link_re_init)
13482 {
13483 	/* Close the VF-reps before closing PF */
13484 	if (BNXT_PF(bp))
13485 		bnxt_vf_reps_close(bp);
13486 
13487 	/* Change device state to avoid TX queue wake up's */
13488 	bnxt_tx_disable(bp);
13489 
13490 	clear_bit(BNXT_STATE_OPEN, &bp->state);
13491 	smp_mb__after_atomic();
13492 	while (bnxt_drv_busy(bp))
13493 		msleep(20);
13494 
13495 	if (BNXT_SUPPORTS_MULTI_RSS_CTX(bp))
13496 		bnxt_clear_rss_ctxs(bp);
13497 	/* Flush rings and disable interrupts */
13498 	bnxt_shutdown_nic(bp, irq_re_init);
13499 
13500 	/* TODO CHIMP_FW: Link/PHY related cleanup if (link_re_init) */
13501 
13502 	bnxt_debug_dev_exit(bp);
13503 	bnxt_disable_napi(bp);
13504 	timer_delete_sync(&bp->timer);
13505 	bnxt_free_skbs(bp);
13506 
13507 	/* Save ring stats before shutdown */
13508 	if (bp->bnapi && irq_re_init) {
13509 		bnxt_get_ring_stats(bp, &bp->net_stats_prev);
13510 		bnxt_get_ring_drv_stats(bp, &bp->ring_drv_stats_prev);
13511 	}
13512 	if (irq_re_init) {
13513 		bnxt_free_irq(bp);
13514 		bnxt_del_napi(bp);
13515 	}
13516 	bnxt_free_mem(bp, irq_re_init);
13517 }
13518 
bnxt_close_nic(struct bnxt * bp,bool irq_re_init,bool link_re_init)13519 void bnxt_close_nic(struct bnxt *bp, bool irq_re_init, bool link_re_init)
13520 {
13521 	if (test_bit(BNXT_STATE_IN_FW_RESET, &bp->state)) {
13522 		/* If we get here, it means firmware reset is in progress
13523 		 * while we are trying to close.  We can safely proceed with
13524 		 * the close because we are holding netdev instance lock.
13525 		 * Some firmware messages may fail as we proceed to close.
13526 		 * We set the ABORT_ERR flag here so that the FW reset thread
13527 		 * will later abort when it gets the netdev instance lock
13528 		 * and sees the flag.
13529 		 */
13530 		netdev_warn(bp->dev, "FW reset in progress during close, FW reset will be aborted\n");
13531 		set_bit(BNXT_STATE_ABORT_ERR, &bp->state);
13532 	}
13533 
13534 #ifdef CONFIG_BNXT_SRIOV
13535 	if (bp->sriov_cfg) {
13536 		int rc;
13537 
13538 		rc = wait_event_interruptible_timeout(bp->sriov_cfg_wait,
13539 						      !bp->sriov_cfg,
13540 						      BNXT_SRIOV_CFG_WAIT_TMO);
13541 		if (!rc)
13542 			netdev_warn(bp->dev, "timeout waiting for SRIOV config operation to complete, proceeding to close!\n");
13543 		else if (rc < 0)
13544 			netdev_warn(bp->dev, "SRIOV config operation interrupted, proceeding to close!\n");
13545 	}
13546 #endif
13547 	__bnxt_close_nic(bp, irq_re_init, link_re_init);
13548 }
13549 
bnxt_close(struct net_device * dev)13550 static int bnxt_close(struct net_device *dev)
13551 {
13552 	struct bnxt *bp = netdev_priv(dev);
13553 
13554 	bnxt_close_nic(bp, true, true);
13555 	bnxt_hwrm_shutdown_link(bp);
13556 	bnxt_hwrm_if_change(bp, false);
13557 	return 0;
13558 }
13559 
bnxt_hwrm_port_phy_read(struct bnxt * bp,u16 phy_addr,u16 reg,u16 * val)13560 static int bnxt_hwrm_port_phy_read(struct bnxt *bp, u16 phy_addr, u16 reg,
13561 				   u16 *val)
13562 {
13563 	struct hwrm_port_phy_mdio_read_output *resp;
13564 	struct hwrm_port_phy_mdio_read_input *req;
13565 	int rc;
13566 
13567 	if (bp->hwrm_spec_code < 0x10a00)
13568 		return -EOPNOTSUPP;
13569 
13570 	rc = hwrm_req_init(bp, req, HWRM_PORT_PHY_MDIO_READ);
13571 	if (rc)
13572 		return rc;
13573 
13574 	req->port_id = cpu_to_le16(bp->pf.port_id);
13575 	req->phy_addr = phy_addr;
13576 	req->reg_addr = cpu_to_le16(reg & 0x1f);
13577 	if (mdio_phy_id_is_c45(phy_addr)) {
13578 		req->cl45_mdio = 1;
13579 		req->phy_addr = mdio_phy_id_prtad(phy_addr);
13580 		req->dev_addr = mdio_phy_id_devad(phy_addr);
13581 		req->reg_addr = cpu_to_le16(reg);
13582 	}
13583 
13584 	resp = hwrm_req_hold(bp, req);
13585 	rc = hwrm_req_send(bp, req);
13586 	if (!rc)
13587 		*val = le16_to_cpu(resp->reg_data);
13588 	hwrm_req_drop(bp, req);
13589 	return rc;
13590 }
13591 
bnxt_hwrm_port_phy_write(struct bnxt * bp,u16 phy_addr,u16 reg,u16 val)13592 static int bnxt_hwrm_port_phy_write(struct bnxt *bp, u16 phy_addr, u16 reg,
13593 				    u16 val)
13594 {
13595 	struct hwrm_port_phy_mdio_write_input *req;
13596 	int rc;
13597 
13598 	if (bp->hwrm_spec_code < 0x10a00)
13599 		return -EOPNOTSUPP;
13600 
13601 	rc = hwrm_req_init(bp, req, HWRM_PORT_PHY_MDIO_WRITE);
13602 	if (rc)
13603 		return rc;
13604 
13605 	req->port_id = cpu_to_le16(bp->pf.port_id);
13606 	req->phy_addr = phy_addr;
13607 	req->reg_addr = cpu_to_le16(reg & 0x1f);
13608 	if (mdio_phy_id_is_c45(phy_addr)) {
13609 		req->cl45_mdio = 1;
13610 		req->phy_addr = mdio_phy_id_prtad(phy_addr);
13611 		req->dev_addr = mdio_phy_id_devad(phy_addr);
13612 		req->reg_addr = cpu_to_le16(reg);
13613 	}
13614 	req->reg_data = cpu_to_le16(val);
13615 
13616 	return hwrm_req_send(bp, req);
13617 }
13618 
13619 /* netdev instance lock held */
bnxt_ioctl(struct net_device * dev,struct ifreq * ifr,int cmd)13620 static int bnxt_ioctl(struct net_device *dev, struct ifreq *ifr, int cmd)
13621 {
13622 	struct mii_ioctl_data *mdio = if_mii(ifr);
13623 	struct bnxt *bp = netdev_priv(dev);
13624 	int rc;
13625 
13626 	switch (cmd) {
13627 	case SIOCGMIIPHY:
13628 		mdio->phy_id = bp->link_info.phy_addr;
13629 
13630 		fallthrough;
13631 	case SIOCGMIIREG: {
13632 		u16 mii_regval = 0;
13633 
13634 		if (!netif_running(dev))
13635 			return -EAGAIN;
13636 
13637 		rc = bnxt_hwrm_port_phy_read(bp, mdio->phy_id, mdio->reg_num,
13638 					     &mii_regval);
13639 		mdio->val_out = mii_regval;
13640 		return rc;
13641 	}
13642 
13643 	case SIOCSMIIREG:
13644 		if (!netif_running(dev))
13645 			return -EAGAIN;
13646 
13647 		return bnxt_hwrm_port_phy_write(bp, mdio->phy_id, mdio->reg_num,
13648 						mdio->val_in);
13649 
13650 	default:
13651 		/* do nothing */
13652 		break;
13653 	}
13654 	return -EOPNOTSUPP;
13655 }
13656 
bnxt_get_ring_stats(struct bnxt * bp,struct rtnl_link_stats64 * stats)13657 static void bnxt_get_ring_stats(struct bnxt *bp,
13658 				struct rtnl_link_stats64 *stats)
13659 {
13660 	int i;
13661 
13662 	for (i = 0; i < bp->cp_nr_rings; i++) {
13663 		struct bnxt_napi *bnapi = bp->bnapi[i];
13664 		struct bnxt_cp_ring_info *cpr = &bnapi->cp_ring;
13665 		u64 *sw = cpr->stats.sw_stats;
13666 
13667 		stats->rx_packets += BNXT_GET_RING_STATS64(sw, rx_ucast_pkts);
13668 		stats->rx_packets += BNXT_GET_RING_STATS64(sw, rx_mcast_pkts);
13669 		stats->rx_packets += BNXT_GET_RING_STATS64(sw, rx_bcast_pkts);
13670 
13671 		stats->tx_packets += BNXT_GET_RING_STATS64(sw, tx_ucast_pkts);
13672 		stats->tx_packets += BNXT_GET_RING_STATS64(sw, tx_mcast_pkts);
13673 		stats->tx_packets += BNXT_GET_RING_STATS64(sw, tx_bcast_pkts);
13674 
13675 		stats->rx_bytes += BNXT_GET_RING_STATS64(sw, rx_ucast_bytes);
13676 		stats->rx_bytes += BNXT_GET_RING_STATS64(sw, rx_mcast_bytes);
13677 		stats->rx_bytes += BNXT_GET_RING_STATS64(sw, rx_bcast_bytes);
13678 
13679 		stats->tx_bytes += BNXT_GET_RING_STATS64(sw, tx_ucast_bytes);
13680 		stats->tx_bytes += BNXT_GET_RING_STATS64(sw, tx_mcast_bytes);
13681 		stats->tx_bytes += BNXT_GET_RING_STATS64(sw, tx_bcast_bytes);
13682 
13683 		stats->rx_missed_errors +=
13684 			BNXT_GET_RING_STATS64(sw, rx_discard_pkts);
13685 
13686 		stats->multicast += BNXT_GET_RING_STATS64(sw, rx_mcast_pkts);
13687 
13688 		stats->tx_dropped += BNXT_GET_RING_STATS64(sw, tx_error_pkts);
13689 
13690 		stats->rx_dropped +=
13691 			cpr->sw_stats->rx.rx_netpoll_discards +
13692 			cpr->sw_stats->rx.rx_oom_discards;
13693 	}
13694 }
13695 
bnxt_add_prev_stats(struct bnxt * bp,struct rtnl_link_stats64 * stats)13696 static void bnxt_add_prev_stats(struct bnxt *bp,
13697 				struct rtnl_link_stats64 *stats)
13698 {
13699 	struct rtnl_link_stats64 *prev_stats = &bp->net_stats_prev;
13700 
13701 	stats->rx_packets += prev_stats->rx_packets;
13702 	stats->tx_packets += prev_stats->tx_packets;
13703 	stats->rx_bytes += prev_stats->rx_bytes;
13704 	stats->tx_bytes += prev_stats->tx_bytes;
13705 	stats->rx_missed_errors += prev_stats->rx_missed_errors;
13706 	stats->multicast += prev_stats->multicast;
13707 	stats->rx_dropped += prev_stats->rx_dropped;
13708 	stats->tx_dropped += prev_stats->tx_dropped;
13709 }
13710 
13711 static void
bnxt_get_stats64(struct net_device * dev,struct rtnl_link_stats64 * stats)13712 bnxt_get_stats64(struct net_device *dev, struct rtnl_link_stats64 *stats)
13713 {
13714 	struct bnxt *bp = netdev_priv(dev);
13715 
13716 	set_bit(BNXT_STATE_READ_STATS, &bp->state);
13717 	/* Make sure bnxt_close_nic() sees that we are reading stats before
13718 	 * we check the BNXT_STATE_OPEN flag.
13719 	 */
13720 	smp_mb__after_atomic();
13721 	if (!test_bit(BNXT_STATE_OPEN, &bp->state)) {
13722 		clear_bit(BNXT_STATE_READ_STATS, &bp->state);
13723 		*stats = bp->net_stats_prev;
13724 		return;
13725 	}
13726 
13727 	bnxt_sync_ring_stats(bp);
13728 	bnxt_get_ring_stats(bp, stats);
13729 	bnxt_add_prev_stats(bp, stats);
13730 
13731 	if (bp->flags & BNXT_FLAG_PORT_STATS) {
13732 		u64 *rx = bp->port_stats.sw_stats;
13733 		u64 *tx = bp->port_stats.sw_stats +
13734 			  BNXT_TX_PORT_STATS_BYTE_OFFSET / 8;
13735 
13736 		stats->rx_crc_errors =
13737 			BNXT_GET_RX_PORT_STATS64(rx, rx_fcs_err_frames);
13738 		stats->rx_frame_errors =
13739 			BNXT_GET_RX_PORT_STATS64(rx, rx_align_err_frames);
13740 		stats->rx_length_errors =
13741 			BNXT_GET_RX_PORT_STATS64(rx, rx_undrsz_frames) +
13742 			BNXT_GET_RX_PORT_STATS64(rx, rx_ovrsz_frames) +
13743 			BNXT_GET_RX_PORT_STATS64(rx, rx_runt_frames);
13744 		stats->rx_errors =
13745 			BNXT_GET_RX_PORT_STATS64(rx, rx_false_carrier_frames) +
13746 			BNXT_GET_RX_PORT_STATS64(rx, rx_jbr_frames);
13747 		stats->collisions =
13748 			BNXT_GET_TX_PORT_STATS64(tx, tx_total_collisions);
13749 		stats->tx_fifo_errors =
13750 			BNXT_GET_TX_PORT_STATS64(tx, tx_fifo_underruns);
13751 		stats->tx_errors = BNXT_GET_TX_PORT_STATS64(tx, tx_err);
13752 	}
13753 	clear_bit(BNXT_STATE_READ_STATS, &bp->state);
13754 }
13755 
bnxt_get_one_ring_drv_stats(struct bnxt * bp,struct bnxt_total_ring_drv_stats * stats,struct bnxt_cp_ring_info * cpr)13756 static void bnxt_get_one_ring_drv_stats(struct bnxt *bp,
13757 					struct bnxt_total_ring_drv_stats *stats,
13758 					struct bnxt_cp_ring_info *cpr)
13759 {
13760 	struct bnxt_sw_stats *sw_stats = cpr->sw_stats;
13761 	u64 *hw_stats = cpr->stats.sw_stats;
13762 
13763 	stats->rx_total_l4_csum_errors += sw_stats->rx.rx_l4_csum_errors;
13764 	stats->rx_total_resets += sw_stats->rx.rx_resets;
13765 	stats->rx_total_buf_errors += sw_stats->rx.rx_buf_errors;
13766 	stats->rx_total_oom_discards += sw_stats->rx.rx_oom_discards;
13767 	stats->rx_total_netpoll_discards += sw_stats->rx.rx_netpoll_discards;
13768 	stats->rx_total_ring_discards +=
13769 		BNXT_GET_RING_STATS64(hw_stats, rx_discard_pkts);
13770 	stats->rx_total_hw_gro_packets += sw_stats->rx.rx_hw_gro_packets;
13771 	stats->rx_total_hw_gro_wire_packets += sw_stats->rx.rx_hw_gro_wire_packets;
13772 	stats->tx_total_resets += sw_stats->tx.tx_resets;
13773 	stats->tx_total_ring_discards +=
13774 		BNXT_GET_RING_STATS64(hw_stats, tx_discard_pkts);
13775 	stats->total_missed_irqs += sw_stats->cmn.missed_irqs;
13776 }
13777 
bnxt_get_ring_drv_stats(struct bnxt * bp,struct bnxt_total_ring_drv_stats * stats)13778 void bnxt_get_ring_drv_stats(struct bnxt *bp,
13779 			     struct bnxt_total_ring_drv_stats *stats)
13780 {
13781 	int i;
13782 
13783 	for (i = 0; i < bp->cp_nr_rings; i++)
13784 		bnxt_get_one_ring_drv_stats(bp, stats, &bp->bnapi[i]->cp_ring);
13785 }
13786 
bnxt_mc_list_updated(struct bnxt * bp,u32 * rx_mask,const struct netdev_hw_addr_list * mc)13787 static bool bnxt_mc_list_updated(struct bnxt *bp, u32 *rx_mask,
13788 				 const struct netdev_hw_addr_list *mc)
13789 {
13790 	struct bnxt_vnic_info *vnic = &bp->vnic_info[BNXT_VNIC_DEFAULT];
13791 	struct netdev_hw_addr *ha;
13792 	u8 *haddr;
13793 	int mc_count = 0;
13794 	bool update = false;
13795 	int off = 0;
13796 
13797 	netdev_hw_addr_list_for_each(ha, mc) {
13798 		if (mc_count >= BNXT_MAX_MC_ADDRS) {
13799 			*rx_mask |= CFA_L2_SET_RX_MASK_REQ_MASK_ALL_MCAST;
13800 			vnic->mc_list_count = 0;
13801 			return false;
13802 		}
13803 		haddr = ha->addr;
13804 		if (!ether_addr_equal(haddr, vnic->mc_list + off)) {
13805 			memcpy(vnic->mc_list + off, haddr, ETH_ALEN);
13806 			update = true;
13807 		}
13808 		off += ETH_ALEN;
13809 		mc_count++;
13810 	}
13811 	if (mc_count)
13812 		*rx_mask |= CFA_L2_SET_RX_MASK_REQ_MASK_MCAST;
13813 
13814 	if (mc_count != vnic->mc_list_count) {
13815 		vnic->mc_list_count = mc_count;
13816 		update = true;
13817 	}
13818 	return update;
13819 }
13820 
bnxt_uc_list_updated(struct bnxt * bp,const struct netdev_hw_addr_list * uc)13821 static bool bnxt_uc_list_updated(struct bnxt *bp,
13822 				 const struct netdev_hw_addr_list *uc)
13823 {
13824 	struct bnxt_vnic_info *vnic = &bp->vnic_info[BNXT_VNIC_DEFAULT];
13825 	struct netdev_hw_addr *ha;
13826 	int off = 0;
13827 
13828 	if (netdev_hw_addr_list_count(uc) != (vnic->uc_filter_count - 1))
13829 		return true;
13830 
13831 	netdev_hw_addr_list_for_each(ha, uc) {
13832 		if (!ether_addr_equal(ha->addr, vnic->uc_list + off))
13833 			return true;
13834 
13835 		off += ETH_ALEN;
13836 	}
13837 	return false;
13838 }
13839 
bnxt_set_rx_mode(struct net_device * dev,struct netdev_hw_addr_list * uc,struct netdev_hw_addr_list * mc)13840 static int bnxt_set_rx_mode(struct net_device *dev,
13841 			    struct netdev_hw_addr_list *uc,
13842 			    struct netdev_hw_addr_list *mc)
13843 {
13844 	struct bnxt *bp = netdev_priv(dev);
13845 	struct bnxt_vnic_info *vnic;
13846 	bool mc_update = false;
13847 	bool uc_update;
13848 	u32 mask;
13849 
13850 	if (!test_bit(BNXT_STATE_OPEN, &bp->state))
13851 		return 0;
13852 
13853 	vnic = &bp->vnic_info[BNXT_VNIC_DEFAULT];
13854 	mask = vnic->rx_mask;
13855 	mask &= ~(CFA_L2_SET_RX_MASK_REQ_MASK_PROMISCUOUS |
13856 		  CFA_L2_SET_RX_MASK_REQ_MASK_MCAST |
13857 		  CFA_L2_SET_RX_MASK_REQ_MASK_ALL_MCAST |
13858 		  CFA_L2_SET_RX_MASK_REQ_MASK_BCAST);
13859 
13860 	if (dev->flags & IFF_PROMISC)
13861 		mask |= CFA_L2_SET_RX_MASK_REQ_MASK_PROMISCUOUS;
13862 
13863 	uc_update = bnxt_uc_list_updated(bp, uc);
13864 
13865 	if (dev->flags & IFF_BROADCAST)
13866 		mask |= CFA_L2_SET_RX_MASK_REQ_MASK_BCAST;
13867 	if (dev->flags & IFF_ALLMULTI) {
13868 		mask |= CFA_L2_SET_RX_MASK_REQ_MASK_ALL_MCAST;
13869 		vnic->mc_list_count = 0;
13870 	} else if (dev->flags & IFF_MULTICAST) {
13871 		mc_update = bnxt_mc_list_updated(bp, &mask, mc);
13872 	}
13873 
13874 	if (mask != vnic->rx_mask || uc_update || mc_update) {
13875 		vnic->rx_mask = mask;
13876 
13877 		return bnxt_cfg_rx_mode(bp, uc, uc_update);
13878 	}
13879 
13880 	return 0;
13881 }
13882 
bnxt_cfg_rx_mode(struct bnxt * bp,struct netdev_hw_addr_list * uc,bool uc_update)13883 static int bnxt_cfg_rx_mode(struct bnxt *bp, struct netdev_hw_addr_list *uc,
13884 			    bool uc_update)
13885 {
13886 	struct net_device *dev = bp->dev;
13887 	struct bnxt_vnic_info *vnic = &bp->vnic_info[BNXT_VNIC_DEFAULT];
13888 	struct netdev_hw_addr *ha;
13889 	int i, off = 0, rc;
13890 
13891 	if (!uc_update)
13892 		goto skip_uc;
13893 
13894 	for (i = 1; i < vnic->uc_filter_count; i++) {
13895 		struct bnxt_l2_filter *fltr = vnic->l2_filters[i];
13896 
13897 		bnxt_hwrm_l2_filter_free(bp, fltr);
13898 		bnxt_del_l2_filter(bp, fltr);
13899 	}
13900 
13901 	vnic->uc_filter_count = 1;
13902 
13903 	netif_addr_lock_bh(dev);
13904 	if (netdev_hw_addr_list_count(uc) > (BNXT_MAX_UC_ADDRS - 1)) {
13905 		vnic->rx_mask |= CFA_L2_SET_RX_MASK_REQ_MASK_PROMISCUOUS;
13906 	} else {
13907 		netdev_hw_addr_list_for_each(ha, uc) {
13908 			memcpy(vnic->uc_list + off, ha->addr, ETH_ALEN);
13909 			off += ETH_ALEN;
13910 			vnic->uc_filter_count++;
13911 		}
13912 	}
13913 	netif_addr_unlock_bh(dev);
13914 
13915 	for (i = 1, off = 0; i < vnic->uc_filter_count; i++, off += ETH_ALEN) {
13916 		rc = bnxt_hwrm_set_vnic_filter(bp, 0, i, vnic->uc_list + off);
13917 		if (rc) {
13918 			if (BNXT_VF(bp) && rc == -ENODEV) {
13919 				netdev_warn(bp->dev, "Cannot configure L2 filters while PF is unavailable, will retry\n");
13920 				rc = -EAGAIN;
13921 			} else if (rc == -EAGAIN) {
13922 				netdev_warn(bp->dev, "FW busy while setting vnic filter, will retry\n");
13923 			} else {
13924 				netdev_err(bp->dev, "HWRM vnic filter failure rc: %x\n", rc);
13925 			}
13926 			vnic->uc_filter_count = i;
13927 			return rc;
13928 		}
13929 	}
13930 
13931 skip_uc:
13932 	if ((vnic->rx_mask & CFA_L2_SET_RX_MASK_REQ_MASK_PROMISCUOUS) &&
13933 	    !bnxt_promisc_ok(bp))
13934 		vnic->rx_mask &= ~CFA_L2_SET_RX_MASK_REQ_MASK_PROMISCUOUS;
13935 	rc = bnxt_hwrm_cfa_l2_set_rx_mask(bp, 0);
13936 	if (rc && (vnic->rx_mask & CFA_L2_SET_RX_MASK_REQ_MASK_MCAST)) {
13937 		netdev_info(bp->dev, "Failed setting MC filters rc: %d, turning on ALL_MCAST mode\n",
13938 			    rc);
13939 		vnic->rx_mask &= ~CFA_L2_SET_RX_MASK_REQ_MASK_MCAST;
13940 		vnic->rx_mask |= CFA_L2_SET_RX_MASK_REQ_MASK_ALL_MCAST;
13941 		vnic->mc_list_count = 0;
13942 		rc = bnxt_hwrm_cfa_l2_set_rx_mask(bp, 0);
13943 	}
13944 	if (rc)
13945 		netdev_err(bp->dev, "HWRM cfa l2 rx mask failure rc: %d\n",
13946 			   rc);
13947 
13948 	return rc;
13949 }
13950 
bnxt_can_reserve_rings(struct bnxt * bp)13951 static bool bnxt_can_reserve_rings(struct bnxt *bp)
13952 {
13953 #ifdef CONFIG_BNXT_SRIOV
13954 	if (BNXT_NEW_RM(bp) && BNXT_VF(bp)) {
13955 		struct bnxt_hw_resc *hw_resc = &bp->hw_resc;
13956 
13957 		/* No minimum rings were provisioned by the PF.  Don't
13958 		 * reserve rings by default when device is down.
13959 		 */
13960 		if (hw_resc->min_tx_rings || hw_resc->resv_tx_rings)
13961 			return true;
13962 
13963 		if (!netif_running(bp->dev))
13964 			return false;
13965 	}
13966 #endif
13967 	return true;
13968 }
13969 
13970 /* If the chip and firmware supports RFS */
bnxt_rfs_supported(struct bnxt * bp)13971 static bool bnxt_rfs_supported(struct bnxt *bp)
13972 {
13973 	if (bp->flags & BNXT_FLAG_CHIP_P5_PLUS) {
13974 		if (bp->fw_cap & BNXT_FW_CAP_CFA_RFS_RING_TBL_IDX_V2)
13975 			return true;
13976 		return false;
13977 	}
13978 	/* 212 firmware is broken for aRFS */
13979 	if (BNXT_FW_MAJ(bp) == 212)
13980 		return false;
13981 	if (BNXT_PF(bp) && !BNXT_CHIP_TYPE_NITRO_A0(bp))
13982 		return true;
13983 	if (bp->rss_cap & BNXT_RSS_CAP_NEW_RSS_CAP)
13984 		return true;
13985 	return false;
13986 }
13987 
13988 /* If runtime conditions support RFS */
bnxt_rfs_capable(struct bnxt * bp,bool new_rss_ctx)13989 bool bnxt_rfs_capable(struct bnxt *bp, bool new_rss_ctx)
13990 {
13991 	struct bnxt_hw_rings hwr = {0};
13992 	int max_vnics, max_rss_ctxs;
13993 
13994 	if ((bp->flags & BNXT_FLAG_CHIP_P5_PLUS) &&
13995 	    !BNXT_SUPPORTS_NTUPLE_VNIC(bp))
13996 		return bnxt_rfs_supported(bp);
13997 
13998 	if (!bnxt_can_reserve_rings(bp) || !bp->rx_nr_rings)
13999 		return false;
14000 
14001 	hwr.grp = bp->rx_nr_rings;
14002 	hwr.vnic = bnxt_get_total_vnics(bp, bp->rx_nr_rings);
14003 	if (new_rss_ctx)
14004 		hwr.vnic++;
14005 	hwr.rss_ctx = bnxt_get_total_rss_ctxs(bp, &hwr);
14006 	max_vnics = bnxt_get_max_func_vnics(bp);
14007 	max_rss_ctxs = bnxt_get_max_func_rss_ctxs(bp);
14008 
14009 	if (hwr.vnic > max_vnics || hwr.rss_ctx > max_rss_ctxs) {
14010 		if (bp->rx_nr_rings > 1)
14011 			netdev_warn(bp->dev,
14012 				    "Not enough resources to support NTUPLE filters, enough resources for up to %d rx rings\n",
14013 				    min(max_rss_ctxs - 1, max_vnics - 1));
14014 		return false;
14015 	}
14016 
14017 	if (!BNXT_NEW_RM(bp))
14018 		return true;
14019 
14020 	/* Do not reduce VNIC and RSS ctx reservations.  There is a FW
14021 	 * issue that will mess up the default VNIC if we reduce the
14022 	 * reservations.
14023 	 */
14024 	if (hwr.vnic <= bp->hw_resc.resv_vnics &&
14025 	    hwr.rss_ctx <= bp->hw_resc.resv_rsscos_ctxs)
14026 		return true;
14027 
14028 	bnxt_hwrm_reserve_rings(bp, &hwr);
14029 	if (hwr.vnic <= bp->hw_resc.resv_vnics &&
14030 	    hwr.rss_ctx <= bp->hw_resc.resv_rsscos_ctxs)
14031 		return true;
14032 
14033 	netdev_warn(bp->dev, "Unable to reserve resources to support NTUPLE filters.\n");
14034 	hwr.vnic = 1;
14035 	hwr.rss_ctx = 0;
14036 	bnxt_hwrm_reserve_rings(bp, &hwr);
14037 	return false;
14038 }
14039 
bnxt_fix_features(struct net_device * dev,netdev_features_t features)14040 static netdev_features_t bnxt_fix_features(struct net_device *dev,
14041 					   netdev_features_t features)
14042 {
14043 	struct bnxt *bp = netdev_priv(dev);
14044 	netdev_features_t vlan_features;
14045 
14046 	if ((features & NETIF_F_NTUPLE) && !bnxt_rfs_capable(bp, false))
14047 		features &= ~NETIF_F_NTUPLE;
14048 
14049 	if ((features & NETIF_F_GSO_UDP_L4) &&
14050 	    !(bp->flags & BNXT_FLAG_UDP_GSO_CAP) &&
14051 	    bp->tx_ring_size < 2 * BNXT_SW_USO_MAX_DESCS)
14052 		features &= ~NETIF_F_GSO_UDP_L4;
14053 
14054 	if ((bp->flags & BNXT_FLAG_NO_AGG_RINGS) || bp->xdp_prog)
14055 		features &= ~(NETIF_F_LRO | NETIF_F_GRO_HW);
14056 
14057 	if (!(features & NETIF_F_GRO))
14058 		features &= ~NETIF_F_GRO_HW;
14059 
14060 	if (features & NETIF_F_GRO_HW)
14061 		features &= ~NETIF_F_LRO;
14062 
14063 	/* Both CTAG and STAG VLAN acceleration on the RX side have to be
14064 	 * turned on or off together.
14065 	 */
14066 	vlan_features = features & BNXT_HW_FEATURE_VLAN_ALL_RX;
14067 	if (vlan_features != BNXT_HW_FEATURE_VLAN_ALL_RX) {
14068 		if (dev->features & BNXT_HW_FEATURE_VLAN_ALL_RX)
14069 			features &= ~BNXT_HW_FEATURE_VLAN_ALL_RX;
14070 		else if (vlan_features)
14071 			features |= BNXT_HW_FEATURE_VLAN_ALL_RX;
14072 	}
14073 #ifdef CONFIG_BNXT_SRIOV
14074 	if (BNXT_VF(bp) && bp->vf.vlan)
14075 		features &= ~BNXT_HW_FEATURE_VLAN_ALL_RX;
14076 #endif
14077 	return features;
14078 }
14079 
bnxt_reinit_features(struct bnxt * bp,bool irq_re_init,bool link_re_init,u32 flags,bool update_tpa)14080 static int bnxt_reinit_features(struct bnxt *bp, bool irq_re_init,
14081 				bool link_re_init, u32 flags, bool update_tpa)
14082 {
14083 	bnxt_close_nic(bp, irq_re_init, link_re_init);
14084 	bp->flags = flags;
14085 	if (update_tpa)
14086 		bnxt_set_ring_params(bp);
14087 	return bnxt_open_nic(bp, irq_re_init, link_re_init);
14088 }
14089 
bnxt_set_features(struct net_device * dev,netdev_features_t features)14090 static int bnxt_set_features(struct net_device *dev, netdev_features_t features)
14091 {
14092 	bool update_tpa = false, update_ntuple = false;
14093 	struct bnxt *bp = netdev_priv(dev);
14094 	u32 flags = bp->flags;
14095 	u32 changes;
14096 	int rc = 0;
14097 	bool re_init = false;
14098 
14099 	bp->tx_wake_thresh = max_t(int, bp->tx_ring_size / 2,
14100 				   bnxt_min_tx_desc_cnt(bp, features));
14101 
14102 	flags &= ~BNXT_FLAG_ALL_CONFIG_FEATS;
14103 	if (features & NETIF_F_GRO_HW)
14104 		flags |= BNXT_FLAG_GRO;
14105 	else if (features & NETIF_F_LRO)
14106 		flags |= BNXT_FLAG_LRO;
14107 
14108 	if (bp->flags & BNXT_FLAG_NO_AGG_RINGS)
14109 		flags &= ~BNXT_FLAG_TPA;
14110 
14111 	if (features & BNXT_HW_FEATURE_VLAN_ALL_RX)
14112 		flags |= BNXT_FLAG_STRIP_VLAN;
14113 
14114 	if (features & NETIF_F_NTUPLE)
14115 		flags |= BNXT_FLAG_RFS;
14116 	else
14117 		bnxt_clear_usr_fltrs(bp, true);
14118 
14119 	changes = flags ^ bp->flags;
14120 	if (changes & BNXT_FLAG_TPA) {
14121 		update_tpa = true;
14122 		if ((bp->flags & BNXT_FLAG_TPA) == 0 ||
14123 		    (flags & BNXT_FLAG_TPA) == 0 ||
14124 		    (bp->flags & BNXT_FLAG_CHIP_P5_PLUS))
14125 			re_init = true;
14126 	}
14127 
14128 	if (changes & ~BNXT_FLAG_TPA)
14129 		re_init = true;
14130 
14131 	if (changes & BNXT_FLAG_RFS)
14132 		update_ntuple = true;
14133 
14134 	if (flags != bp->flags) {
14135 		u32 old_flags = bp->flags;
14136 
14137 		if (!test_bit(BNXT_STATE_OPEN, &bp->state)) {
14138 			bp->flags = flags;
14139 			if (update_tpa)
14140 				bnxt_set_ring_params(bp);
14141 			return rc;
14142 		}
14143 
14144 		if (update_ntuple)
14145 			return bnxt_reinit_features(bp, true, false, flags, update_tpa);
14146 
14147 		if (re_init)
14148 			return bnxt_reinit_features(bp, false, false, flags, update_tpa);
14149 
14150 		if (update_tpa) {
14151 			bp->flags = flags;
14152 			rc = bnxt_set_tpa(bp,
14153 					  (flags & BNXT_FLAG_TPA) ?
14154 					  true : false);
14155 			if (rc)
14156 				bp->flags = old_flags;
14157 		}
14158 	}
14159 	return rc;
14160 }
14161 
bnxt_exthdr_check(struct bnxt * bp,struct sk_buff * skb,int nw_off,u8 ** nextp)14162 static bool bnxt_exthdr_check(struct bnxt *bp, struct sk_buff *skb, int nw_off,
14163 			      u8 **nextp)
14164 {
14165 	struct ipv6hdr *ip6h = (struct ipv6hdr *)(skb->data + nw_off);
14166 	int hdr_count = 0;
14167 	u8 *nexthdr;
14168 	int start;
14169 
14170 	/* Check that there are at most 2 IPv6 extension headers, no
14171 	 * fragment header, and each is <= 64 bytes.
14172 	 */
14173 	start = nw_off + sizeof(*ip6h);
14174 	nexthdr = &ip6h->nexthdr;
14175 	while (ipv6_ext_hdr(*nexthdr)) {
14176 		struct ipv6_opt_hdr *hp;
14177 		int hdrlen;
14178 
14179 		if (hdr_count >= 3 || *nexthdr == NEXTHDR_NONE ||
14180 		    *nexthdr == NEXTHDR_FRAGMENT)
14181 			return false;
14182 		hp = __skb_header_pointer(NULL, start, sizeof(*hp), skb->data,
14183 					  skb_headlen(skb), NULL);
14184 		if (!hp)
14185 			return false;
14186 		if (*nexthdr == NEXTHDR_AUTH)
14187 			hdrlen = ipv6_authlen(hp);
14188 		else
14189 			hdrlen = ipv6_optlen(hp);
14190 
14191 		if (hdrlen > 64)
14192 			return false;
14193 
14194 		hdr_count++;
14195 		nexthdr = &hp->nexthdr;
14196 		start += hdrlen;
14197 	}
14198 	if (nextp) {
14199 		/* Caller will check inner protocol */
14200 		if (skb->encapsulation) {
14201 			*nextp = nexthdr;
14202 			return true;
14203 		}
14204 		*nextp = NULL;
14205 	}
14206 	/* Only support TCP/UDP for non-tunneled ipv6 and inner ipv6 */
14207 	return *nexthdr == IPPROTO_TCP || *nexthdr == IPPROTO_UDP;
14208 }
14209 
14210 /* For UDP, we can only handle 1 Vxlan port and 1 Geneve port. */
bnxt_udp_tunl_check(struct bnxt * bp,struct sk_buff * skb)14211 static bool bnxt_udp_tunl_check(struct bnxt *bp, struct sk_buff *skb)
14212 {
14213 	struct udphdr *uh = udp_hdr(skb);
14214 	__be16 udp_port = uh->dest;
14215 
14216 	if (udp_port != bp->vxlan_port && udp_port != bp->nge_port &&
14217 	    udp_port != bp->vxlan_gpe_port)
14218 		return false;
14219 	if (skb->inner_protocol == htons(ETH_P_TEB)) {
14220 		struct ethhdr *eh = inner_eth_hdr(skb);
14221 
14222 		switch (eh->h_proto) {
14223 		case htons(ETH_P_IP):
14224 			return true;
14225 		case htons(ETH_P_IPV6):
14226 			return bnxt_exthdr_check(bp, skb,
14227 						 skb_inner_network_offset(skb),
14228 						 NULL);
14229 		}
14230 	} else if (skb->inner_protocol == htons(ETH_P_IP)) {
14231 		return true;
14232 	} else if (skb->inner_protocol == htons(ETH_P_IPV6)) {
14233 		return bnxt_exthdr_check(bp, skb, skb_inner_network_offset(skb),
14234 					 NULL);
14235 	}
14236 	return false;
14237 }
14238 
bnxt_tunl_check(struct bnxt * bp,struct sk_buff * skb,u8 l4_proto)14239 static bool bnxt_tunl_check(struct bnxt *bp, struct sk_buff *skb, u8 l4_proto)
14240 {
14241 	switch (l4_proto) {
14242 	case IPPROTO_UDP:
14243 		return bnxt_udp_tunl_check(bp, skb);
14244 	case IPPROTO_IPIP:
14245 		return true;
14246 	case IPPROTO_GRE: {
14247 		switch (skb->inner_protocol) {
14248 		default:
14249 			return false;
14250 		case htons(ETH_P_IP):
14251 			return true;
14252 		case htons(ETH_P_IPV6):
14253 			fallthrough;
14254 		}
14255 	}
14256 	case IPPROTO_IPV6:
14257 		/* Check ext headers of inner ipv6 */
14258 		return bnxt_exthdr_check(bp, skb, skb_inner_network_offset(skb),
14259 					 NULL);
14260 	}
14261 	return false;
14262 }
14263 
bnxt_features_check(struct sk_buff * skb,struct net_device * dev,netdev_features_t features)14264 static netdev_features_t bnxt_features_check(struct sk_buff *skb,
14265 					     struct net_device *dev,
14266 					     netdev_features_t features)
14267 {
14268 	struct bnxt *bp = netdev_priv(dev);
14269 	u8 *l4_proto;
14270 
14271 	features = vlan_features_check(skb, features);
14272 	switch (vlan_get_protocol(skb)) {
14273 	case htons(ETH_P_IP):
14274 		if (!skb->encapsulation)
14275 			return features;
14276 		l4_proto = &ip_hdr(skb)->protocol;
14277 		if (bnxt_tunl_check(bp, skb, *l4_proto))
14278 			return features;
14279 		break;
14280 	case htons(ETH_P_IPV6):
14281 		if (!bnxt_exthdr_check(bp, skb, skb_network_offset(skb),
14282 				       &l4_proto))
14283 			break;
14284 		if (!l4_proto || bnxt_tunl_check(bp, skb, *l4_proto))
14285 			return features;
14286 		break;
14287 	}
14288 	return features & ~(NETIF_F_CSUM_MASK | NETIF_F_GSO_MASK);
14289 }
14290 
bnxt_dbg_hwrm_rd_reg(struct bnxt * bp,u32 reg_off,u16 num_words,u32 * reg_buf)14291 int bnxt_dbg_hwrm_rd_reg(struct bnxt *bp, u32 reg_off, u16 num_words,
14292 			 u32 *reg_buf)
14293 {
14294 	struct hwrm_dbg_read_direct_output *resp;
14295 	struct hwrm_dbg_read_direct_input *req;
14296 	__le32 *dbg_reg_buf;
14297 	dma_addr_t mapping;
14298 	int rc, i;
14299 
14300 	rc = hwrm_req_init(bp, req, HWRM_DBG_READ_DIRECT);
14301 	if (rc)
14302 		return rc;
14303 
14304 	dbg_reg_buf = hwrm_req_dma_slice(bp, req, num_words * 4,
14305 					 &mapping);
14306 	if (!dbg_reg_buf) {
14307 		rc = -ENOMEM;
14308 		goto dbg_rd_reg_exit;
14309 	}
14310 
14311 	req->host_dest_addr = cpu_to_le64(mapping);
14312 
14313 	resp = hwrm_req_hold(bp, req);
14314 	req->read_addr = cpu_to_le32(reg_off + CHIMP_REG_VIEW_ADDR);
14315 	req->read_len32 = cpu_to_le32(num_words);
14316 
14317 	rc = hwrm_req_send(bp, req);
14318 	if (rc || resp->error_code) {
14319 		rc = -EIO;
14320 		goto dbg_rd_reg_exit;
14321 	}
14322 	for (i = 0; i < num_words; i++)
14323 		reg_buf[i] = le32_to_cpu(dbg_reg_buf[i]);
14324 
14325 dbg_rd_reg_exit:
14326 	hwrm_req_drop(bp, req);
14327 	return rc;
14328 }
14329 
bnxt_dbg_hwrm_ring_info_get(struct bnxt * bp,u8 ring_type,u32 ring_id,u32 * prod,u32 * cons)14330 static int bnxt_dbg_hwrm_ring_info_get(struct bnxt *bp, u8 ring_type,
14331 				       u32 ring_id, u32 *prod, u32 *cons)
14332 {
14333 	struct hwrm_dbg_ring_info_get_output *resp;
14334 	struct hwrm_dbg_ring_info_get_input *req;
14335 	int rc;
14336 
14337 	rc = hwrm_req_init(bp, req, HWRM_DBG_RING_INFO_GET);
14338 	if (rc)
14339 		return rc;
14340 
14341 	req->ring_type = ring_type;
14342 	req->fw_ring_id = cpu_to_le32(ring_id);
14343 	resp = hwrm_req_hold(bp, req);
14344 	rc = hwrm_req_send(bp, req);
14345 	if (!rc) {
14346 		*prod = le32_to_cpu(resp->producer_index);
14347 		*cons = le32_to_cpu(resp->consumer_index);
14348 	}
14349 	hwrm_req_drop(bp, req);
14350 	return rc;
14351 }
14352 
bnxt_dump_tx_sw_state(struct bnxt_napi * bnapi)14353 static void bnxt_dump_tx_sw_state(struct bnxt_napi *bnapi)
14354 {
14355 	struct bnxt_tx_ring_info *txr;
14356 	int i = bnapi->index, j;
14357 
14358 	bnxt_for_each_napi_tx(j, bnapi, txr)
14359 		netdev_info(bnapi->bp->dev, "[%d.%d]: tx{fw_ring: %d prod: %x cons: %x}\n",
14360 			    i, j, txr->tx_ring_struct.fw_ring_id, txr->tx_prod,
14361 			    txr->tx_cons);
14362 }
14363 
bnxt_dump_rx_sw_state(struct bnxt_napi * bnapi)14364 static void bnxt_dump_rx_sw_state(struct bnxt_napi *bnapi)
14365 {
14366 	struct bnxt_rx_ring_info *rxr = bnapi->rx_ring;
14367 	int i = bnapi->index;
14368 
14369 	if (!rxr)
14370 		return;
14371 
14372 	netdev_info(bnapi->bp->dev, "[%d]: rx{fw_ring: %d prod: %x} rx_agg{fw_ring: %d agg_prod: %x sw_agg_prod: %x}\n",
14373 		    i, rxr->rx_ring_struct.fw_ring_id, rxr->rx_prod,
14374 		    rxr->rx_agg_ring_struct.fw_ring_id, rxr->rx_agg_prod,
14375 		    rxr->rx_sw_agg_prod);
14376 }
14377 
bnxt_dump_cp_sw_state(struct bnxt_napi * bnapi)14378 static void bnxt_dump_cp_sw_state(struct bnxt_napi *bnapi)
14379 {
14380 	struct bnxt_cp_ring_info *cpr = &bnapi->cp_ring, *cpr2;
14381 	int i = bnapi->index, j;
14382 
14383 	netdev_info(bnapi->bp->dev, "[%d]: cp{fw_ring: %d raw_cons: %x}\n",
14384 		    i, cpr->cp_ring_struct.fw_ring_id, cpr->cp_raw_cons);
14385 	for (j = 0; j < cpr->cp_ring_count; j++) {
14386 		cpr2 = &cpr->cp_ring_arr[j];
14387 		if (!cpr2->bnapi)
14388 			continue;
14389 		netdev_info(bnapi->bp->dev, "[%d.%d]: cp{fw_ring: %d raw_cons: %x}\n",
14390 			    i, j, cpr2->cp_ring_struct.fw_ring_id,
14391 			    cpr2->cp_raw_cons);
14392 	}
14393 }
14394 
bnxt_dbg_dump_states(struct bnxt * bp)14395 static void bnxt_dbg_dump_states(struct bnxt *bp)
14396 {
14397 	int i;
14398 	struct bnxt_napi *bnapi;
14399 
14400 	for (i = 0; i < bp->cp_nr_rings; i++) {
14401 		bnapi = bp->bnapi[i];
14402 		if (netif_msg_drv(bp)) {
14403 			bnxt_dump_tx_sw_state(bnapi);
14404 			bnxt_dump_rx_sw_state(bnapi);
14405 			bnxt_dump_cp_sw_state(bnapi);
14406 		}
14407 	}
14408 }
14409 
bnxt_hwrm_rx_ring_reset(struct bnxt * bp,int ring_nr)14410 static int bnxt_hwrm_rx_ring_reset(struct bnxt *bp, int ring_nr)
14411 {
14412 	struct bnxt_rx_ring_info *rxr = &bp->rx_ring[ring_nr];
14413 	struct hwrm_ring_reset_input *req;
14414 	struct bnxt_napi *bnapi = rxr->bnapi;
14415 	struct bnxt_cp_ring_info *cpr;
14416 	u16 cp_ring_id;
14417 	int rc;
14418 
14419 	rc = hwrm_req_init(bp, req, HWRM_RING_RESET);
14420 	if (rc)
14421 		return rc;
14422 
14423 	cpr = &bnapi->cp_ring;
14424 	cp_ring_id = cpr->cp_ring_struct.fw_ring_id;
14425 	req->cmpl_ring = cpu_to_le16(cp_ring_id);
14426 	req->ring_type = RING_RESET_REQ_RING_TYPE_RX_RING_GRP;
14427 	req->ring_id = cpu_to_le16(bp->grp_info[bnapi->index].fw_grp_id);
14428 	return hwrm_req_send_silent(bp, req);
14429 }
14430 
bnxt_reset_task(struct bnxt * bp,bool silent)14431 static void bnxt_reset_task(struct bnxt *bp, bool silent)
14432 {
14433 	if (!silent)
14434 		bnxt_dbg_dump_states(bp);
14435 	if (netif_running(bp->dev)) {
14436 		bnxt_close_nic(bp, !silent, false);
14437 		bnxt_open_nic(bp, !silent, false);
14438 	}
14439 }
14440 
bnxt_tx_timeout(struct net_device * dev,unsigned int txqueue)14441 static void bnxt_tx_timeout(struct net_device *dev, unsigned int txqueue)
14442 {
14443 	struct bnxt *bp = netdev_priv(dev);
14444 
14445 	netdev_err(bp->dev,  "TX timeout detected, starting reset task!\n");
14446 	bnxt_queue_sp_work(bp, BNXT_RESET_TASK_SP_EVENT);
14447 }
14448 
bnxt_fw_health_check(struct bnxt * bp)14449 static void bnxt_fw_health_check(struct bnxt *bp)
14450 {
14451 	struct bnxt_fw_health *fw_health = bp->fw_health;
14452 	struct pci_dev *pdev = bp->pdev;
14453 	u32 val;
14454 
14455 	if (!fw_health->enabled || test_bit(BNXT_STATE_IN_FW_RESET, &bp->state))
14456 		return;
14457 
14458 	/* Make sure it is enabled before checking the tmr_counter. */
14459 	smp_rmb();
14460 	if (fw_health->tmr_counter) {
14461 		fw_health->tmr_counter--;
14462 		return;
14463 	}
14464 
14465 	val = bnxt_fw_health_readl(bp, BNXT_FW_HEARTBEAT_REG);
14466 	if (val == fw_health->last_fw_heartbeat && pci_device_is_present(pdev)) {
14467 		fw_health->arrests++;
14468 		goto fw_reset;
14469 	}
14470 
14471 	fw_health->last_fw_heartbeat = val;
14472 
14473 	val = bnxt_fw_health_readl(bp, BNXT_FW_RESET_CNT_REG);
14474 	if (val != fw_health->last_fw_reset_cnt && pci_device_is_present(pdev)) {
14475 		fw_health->discoveries++;
14476 		goto fw_reset;
14477 	}
14478 
14479 	fw_health->tmr_counter = fw_health->tmr_multiplier;
14480 	return;
14481 
14482 fw_reset:
14483 	bnxt_queue_sp_work(bp, BNXT_FW_EXCEPTION_SP_EVENT);
14484 }
14485 
bnxt_timer(struct timer_list * t)14486 static void bnxt_timer(struct timer_list *t)
14487 {
14488 	struct bnxt *bp = timer_container_of(bp, t, timer);
14489 	struct net_device *dev = bp->dev;
14490 
14491 	if (!netif_running(dev) || !test_bit(BNXT_STATE_OPEN, &bp->state))
14492 		return;
14493 
14494 	if (atomic_read(&bp->intr_sem) != 0)
14495 		goto bnxt_restart_timer;
14496 
14497 	if (bp->fw_cap & BNXT_FW_CAP_ERROR_RECOVERY)
14498 		bnxt_fw_health_check(bp);
14499 
14500 	if (BNXT_LINK_IS_UP(bp) && bp->stats_coal_ticks)
14501 		bnxt_queue_sp_work(bp, BNXT_PERIODIC_STATS_SP_EVENT);
14502 
14503 	if (bnxt_tc_flower_enabled(bp))
14504 		bnxt_queue_sp_work(bp, BNXT_FLOW_STATS_SP_EVENT);
14505 
14506 #ifdef CONFIG_RFS_ACCEL
14507 	if ((bp->flags & BNXT_FLAG_RFS) && bp->ntp_fltr_count)
14508 		bnxt_queue_sp_work(bp, BNXT_RX_NTP_FLTR_SP_EVENT);
14509 #endif /*CONFIG_RFS_ACCEL*/
14510 
14511 	if (bp->link_info.phy_retry) {
14512 		if (time_after(jiffies, bp->link_info.phy_retry_expires)) {
14513 			bp->link_info.phy_retry = false;
14514 			netdev_warn(bp->dev, "failed to update phy settings after maximum retries.\n");
14515 		} else {
14516 			bnxt_queue_sp_work(bp, BNXT_UPDATE_PHY_SP_EVENT);
14517 		}
14518 	}
14519 
14520 	if ((BNXT_CHIP_P5(bp)) && !bp->chip_rev && netif_carrier_ok(dev))
14521 		bnxt_queue_sp_work(bp, BNXT_RING_COAL_NOW_SP_EVENT);
14522 
14523 bnxt_restart_timer:
14524 	mod_timer(&bp->timer, jiffies + bp->current_interval);
14525 }
14526 
bnxt_lock_sp(struct bnxt * bp)14527 static void bnxt_lock_sp(struct bnxt *bp)
14528 {
14529 	/* We are called from bnxt_sp_task which has BNXT_STATE_IN_SP_TASK
14530 	 * set.  If the device is being closed, bnxt_close() may be holding
14531 	 * netdev instance lock and waiting for BNXT_STATE_IN_SP_TASK to clear.
14532 	 * So we must clear BNXT_STATE_IN_SP_TASK before holding netdev
14533 	 * instance lock.
14534 	 */
14535 	clear_bit(BNXT_STATE_IN_SP_TASK, &bp->state);
14536 	netdev_lock(bp->dev);
14537 }
14538 
bnxt_unlock_sp(struct bnxt * bp)14539 static void bnxt_unlock_sp(struct bnxt *bp)
14540 {
14541 	set_bit(BNXT_STATE_IN_SP_TASK, &bp->state);
14542 	netdev_unlock(bp->dev);
14543 }
14544 
14545 /* Same as bnxt_lock_sp() with additional rtnl_lock */
bnxt_rtnl_lock_sp(struct bnxt * bp)14546 static void bnxt_rtnl_lock_sp(struct bnxt *bp)
14547 {
14548 	clear_bit(BNXT_STATE_IN_SP_TASK, &bp->state);
14549 	rtnl_lock();
14550 	netdev_lock(bp->dev);
14551 }
14552 
bnxt_rtnl_unlock_sp(struct bnxt * bp)14553 static void bnxt_rtnl_unlock_sp(struct bnxt *bp)
14554 {
14555 	set_bit(BNXT_STATE_IN_SP_TASK, &bp->state);
14556 	netdev_unlock(bp->dev);
14557 	rtnl_unlock();
14558 }
14559 
bnxt_tph_update(struct bnxt * bp)14560 static void bnxt_tph_update(struct bnxt *bp)
14561 {
14562 	struct net_device *dev = bp->dev;
14563 	int i;
14564 
14565 	bnxt_lock_sp(bp);
14566 	if (!test_bit(BNXT_STATE_OPEN, &bp->state))
14567 		goto unlock;
14568 
14569 	for (i = 0; i < bp->rx_nr_rings; i++) {
14570 		struct bnxt_irq *irq;
14571 		int map_idx, err;
14572 		u16 tag;
14573 
14574 		map_idx = bnxt_cp_num_to_irq_num(bp, i);
14575 		irq = &bp->irq_tbl[map_idx];
14576 		tag = READ_ONCE(irq->new_tag);
14577 		if (irq->tag == tag)
14578 			continue;
14579 
14580 		if (pcie_tph_set_st_entry(bp->pdev, irq->msix_nr, tag))
14581 			continue;
14582 
14583 		err = netdev_rx_queue_restart(dev, irq->ring_nr);
14584 		if (err) {
14585 			netdev_err(dev, "RX queue restart failed: err=%d\n",
14586 				   err);
14587 			continue;
14588 		}
14589 
14590 		irq->tag = tag;
14591 	}
14592 
14593 unlock:
14594 	bnxt_unlock_sp(bp);
14595 }
14596 
14597 /* Only called from bnxt_sp_task() */
bnxt_reset(struct bnxt * bp,bool silent)14598 static void bnxt_reset(struct bnxt *bp, bool silent)
14599 {
14600 	bnxt_rtnl_lock_sp(bp);
14601 	if (test_bit(BNXT_STATE_OPEN, &bp->state))
14602 		bnxt_reset_task(bp, silent);
14603 	bnxt_rtnl_unlock_sp(bp);
14604 }
14605 
14606 /* Only called from bnxt_sp_task() */
bnxt_rx_ring_reset(struct bnxt * bp)14607 static void bnxt_rx_ring_reset(struct bnxt *bp)
14608 {
14609 	int i;
14610 
14611 	bnxt_rtnl_lock_sp(bp);
14612 	if (!test_bit(BNXT_STATE_OPEN, &bp->state)) {
14613 		bnxt_rtnl_unlock_sp(bp);
14614 		return;
14615 	}
14616 	/* Disable and flush TPA before resetting the RX ring */
14617 	if (bp->flags & BNXT_FLAG_TPA)
14618 		bnxt_set_tpa(bp, false);
14619 	for (i = 0; i < bp->rx_nr_rings; i++) {
14620 		struct bnxt_rx_ring_info *rxr = &bp->rx_ring[i];
14621 		struct bnxt_cp_ring_info *cpr;
14622 		int rc;
14623 
14624 		if (!rxr->bnapi->in_reset)
14625 			continue;
14626 
14627 		rc = bnxt_hwrm_rx_ring_reset(bp, i);
14628 		if (rc) {
14629 			if (rc == -EINVAL || rc == -EOPNOTSUPP)
14630 				netdev_info_once(bp->dev, "RX ring reset not supported by firmware, falling back to global reset\n");
14631 			else
14632 				netdev_warn(bp->dev, "RX ring reset failed, rc = %d, falling back to global reset\n",
14633 					    rc);
14634 			bnxt_reset_task(bp, true);
14635 			break;
14636 		}
14637 		bnxt_free_one_rx_ring_skbs(bp, rxr);
14638 		rxr->rx_prod = 0;
14639 		rxr->rx_agg_prod = 0;
14640 		rxr->rx_sw_agg_prod = 0;
14641 		rxr->rx_next_cons = 0;
14642 		rxr->bnapi->in_reset = false;
14643 		rc = bnxt_alloc_one_rx_ring(bp, i);
14644 		if (rc) {
14645 			netdev_warn(bp->dev, "RX ring reset failed to allocate buffers, rc = %d, falling back to global reset\n",
14646 				    rc);
14647 			bnxt_reset_task(bp, true);
14648 			bnxt_rtnl_unlock_sp(bp);
14649 			return;
14650 		}
14651 		cpr = &rxr->bnapi->cp_ring;
14652 		cpr->sw_stats->rx.rx_resets++;
14653 		if (bp->flags & BNXT_FLAG_AGG_RINGS)
14654 			bnxt_db_write(bp, &rxr->rx_agg_db, rxr->rx_agg_prod);
14655 		bnxt_db_write(bp, &rxr->rx_db, rxr->rx_prod);
14656 	}
14657 	if (bp->flags & BNXT_FLAG_TPA)
14658 		bnxt_set_tpa(bp, true);
14659 	bnxt_rtnl_unlock_sp(bp);
14660 }
14661 
bnxt_fw_fatal_close(struct bnxt * bp)14662 static void bnxt_fw_fatal_close(struct bnxt *bp)
14663 {
14664 	bnxt_tx_disable(bp);
14665 	bnxt_disable_napi(bp);
14666 	bnxt_disable_int_sync(bp);
14667 	bnxt_free_irq(bp);
14668 	bnxt_clear_int_mode(bp);
14669 	pci_disable_device(bp->pdev);
14670 }
14671 
bnxt_fw_reset_close(struct bnxt * bp)14672 static void bnxt_fw_reset_close(struct bnxt *bp)
14673 {
14674 	/* When firmware is in fatal state, quiesce device and disable
14675 	 * bus master to prevent any potential bad DMAs before freeing
14676 	 * kernel memory.
14677 	 */
14678 	if (test_bit(BNXT_STATE_FW_FATAL_COND, &bp->state)) {
14679 		u16 val = 0;
14680 
14681 		pci_read_config_word(bp->pdev, PCI_SUBSYSTEM_ID, &val);
14682 		if (val == 0xffff)
14683 			bp->fw_reset_min_dsecs = 0;
14684 		bnxt_fw_fatal_close(bp);
14685 	}
14686 	__bnxt_close_nic(bp, true, false);
14687 	bnxt_vf_reps_free(bp);
14688 	bnxt_clear_int_mode(bp);
14689 	bnxt_hwrm_func_drv_unrgtr(bp);
14690 	if (pci_is_enabled(bp->pdev))
14691 		pci_disable_device(bp->pdev);
14692 	bnxt_free_ctx_mem(bp, false);
14693 }
14694 
is_bnxt_fw_ok(struct bnxt * bp)14695 static bool is_bnxt_fw_ok(struct bnxt *bp)
14696 {
14697 	struct bnxt_fw_health *fw_health = bp->fw_health;
14698 	bool no_heartbeat = false, has_reset = false;
14699 	u32 val;
14700 
14701 	val = bnxt_fw_health_readl(bp, BNXT_FW_HEARTBEAT_REG);
14702 	if (val == fw_health->last_fw_heartbeat)
14703 		no_heartbeat = true;
14704 
14705 	val = bnxt_fw_health_readl(bp, BNXT_FW_RESET_CNT_REG);
14706 	if (val != fw_health->last_fw_reset_cnt)
14707 		has_reset = true;
14708 
14709 	if (!no_heartbeat && has_reset)
14710 		return true;
14711 
14712 	return false;
14713 }
14714 
14715 /* netdev instance lock is acquired before calling this function */
bnxt_force_fw_reset(struct bnxt * bp)14716 static void bnxt_force_fw_reset(struct bnxt *bp)
14717 {
14718 	struct bnxt_fw_health *fw_health = bp->fw_health;
14719 	struct bnxt_ptp_cfg *ptp = bp->ptp_cfg;
14720 	u32 wait_dsecs;
14721 
14722 	if (!test_bit(BNXT_STATE_OPEN, &bp->state) ||
14723 	    test_bit(BNXT_STATE_IN_FW_RESET, &bp->state))
14724 		return;
14725 
14726 	/* we have to serialize with bnxt_refclk_read()*/
14727 	if (ptp) {
14728 		unsigned long flags;
14729 
14730 		write_seqlock_irqsave(&ptp->ptp_lock, flags);
14731 		set_bit(BNXT_STATE_IN_FW_RESET, &bp->state);
14732 		write_sequnlock_irqrestore(&ptp->ptp_lock, flags);
14733 	} else {
14734 		set_bit(BNXT_STATE_IN_FW_RESET, &bp->state);
14735 	}
14736 	bnxt_fw_reset_close(bp);
14737 	wait_dsecs = fw_health->master_func_wait_dsecs;
14738 	if (fw_health->primary) {
14739 		if (fw_health->flags & ERROR_RECOVERY_QCFG_RESP_FLAGS_CO_CPU)
14740 			wait_dsecs = 0;
14741 		bp->fw_reset_state = BNXT_FW_RESET_STATE_RESET_FW;
14742 	} else {
14743 		bp->fw_reset_timestamp = jiffies + wait_dsecs * HZ / 10;
14744 		wait_dsecs = fw_health->normal_func_wait_dsecs;
14745 		bp->fw_reset_state = BNXT_FW_RESET_STATE_ENABLE_DEV;
14746 	}
14747 
14748 	bp->fw_reset_min_dsecs = fw_health->post_reset_wait_dsecs;
14749 	bp->fw_reset_max_dsecs = fw_health->post_reset_max_wait_dsecs;
14750 	bnxt_queue_fw_reset_work(bp, wait_dsecs * HZ / 10);
14751 }
14752 
bnxt_fw_exception(struct bnxt * bp)14753 void bnxt_fw_exception(struct bnxt *bp)
14754 {
14755 	netdev_warn(bp->dev, "Detected firmware fatal condition, initiating reset\n");
14756 	set_bit(BNXT_STATE_FW_FATAL_COND, &bp->state);
14757 	bnxt_ulp_stop(bp);
14758 	bnxt_lock_sp(bp);
14759 	bnxt_force_fw_reset(bp);
14760 	bnxt_unlock_sp(bp);
14761 }
14762 
14763 /* Returns the number of registered VFs, or 1 if VF configuration is pending, or
14764  * < 0 on error.
14765  */
bnxt_get_registered_vfs(struct bnxt * bp)14766 static int bnxt_get_registered_vfs(struct bnxt *bp)
14767 {
14768 #ifdef CONFIG_BNXT_SRIOV
14769 	int rc;
14770 
14771 	if (!BNXT_PF(bp))
14772 		return 0;
14773 
14774 	rc = bnxt_hwrm_func_qcfg(bp);
14775 	if (rc) {
14776 		netdev_err(bp->dev, "func_qcfg cmd failed, rc = %d\n", rc);
14777 		return rc;
14778 	}
14779 	if (bp->pf.registered_vfs)
14780 		return bp->pf.registered_vfs;
14781 	if (bp->sriov_cfg)
14782 		return 1;
14783 #endif
14784 	return 0;
14785 }
14786 
bnxt_fw_reset(struct bnxt * bp)14787 void bnxt_fw_reset(struct bnxt *bp)
14788 {
14789 	bnxt_ulp_stop(bp);
14790 	bnxt_lock_sp(bp);
14791 	if (test_bit(BNXT_STATE_OPEN, &bp->state) &&
14792 	    !test_bit(BNXT_STATE_IN_FW_RESET, &bp->state)) {
14793 		struct bnxt_ptp_cfg *ptp = bp->ptp_cfg;
14794 		int n = 0, tmo;
14795 
14796 		/* we have to serialize with bnxt_refclk_read()*/
14797 		if (ptp) {
14798 			unsigned long flags;
14799 
14800 			write_seqlock_irqsave(&ptp->ptp_lock, flags);
14801 			set_bit(BNXT_STATE_IN_FW_RESET, &bp->state);
14802 			write_sequnlock_irqrestore(&ptp->ptp_lock, flags);
14803 		} else {
14804 			set_bit(BNXT_STATE_IN_FW_RESET, &bp->state);
14805 		}
14806 		if (bp->pf.active_vfs &&
14807 		    !test_bit(BNXT_STATE_FW_FATAL_COND, &bp->state))
14808 			n = bnxt_get_registered_vfs(bp);
14809 		if (n < 0) {
14810 			netdev_err(bp->dev, "Firmware reset aborted, rc = %d\n",
14811 				   n);
14812 			clear_bit(BNXT_STATE_IN_FW_RESET, &bp->state);
14813 			netif_close(bp->dev);
14814 			goto fw_reset_exit;
14815 		} else if (n > 0) {
14816 			u16 vf_tmo_dsecs = n * 10;
14817 
14818 			if (bp->fw_reset_max_dsecs < vf_tmo_dsecs)
14819 				bp->fw_reset_max_dsecs = vf_tmo_dsecs;
14820 			bp->fw_reset_state =
14821 				BNXT_FW_RESET_STATE_POLL_VF;
14822 			bnxt_queue_fw_reset_work(bp, HZ / 10);
14823 			goto fw_reset_exit;
14824 		}
14825 		bnxt_fw_reset_close(bp);
14826 		if (bp->fw_cap & BNXT_FW_CAP_ERR_RECOVER_RELOAD) {
14827 			bp->fw_reset_state = BNXT_FW_RESET_STATE_POLL_FW_DOWN;
14828 			tmo = HZ / 10;
14829 		} else {
14830 			bp->fw_reset_state = BNXT_FW_RESET_STATE_ENABLE_DEV;
14831 			tmo = bp->fw_reset_min_dsecs * HZ / 10;
14832 		}
14833 		bnxt_queue_fw_reset_work(bp, tmo);
14834 	}
14835 fw_reset_exit:
14836 	bnxt_unlock_sp(bp);
14837 }
14838 
bnxt_chk_missed_irq(struct bnxt * bp)14839 static void bnxt_chk_missed_irq(struct bnxt *bp)
14840 {
14841 	int i;
14842 
14843 	if (!(bp->flags & BNXT_FLAG_CHIP_P5_PLUS))
14844 		return;
14845 
14846 	for (i = 0; i < bp->cp_nr_rings; i++) {
14847 		struct bnxt_napi *bnapi = bp->bnapi[i];
14848 		struct bnxt_cp_ring_info *cpr;
14849 		u32 fw_ring_id;
14850 		int j;
14851 
14852 		if (!bnapi)
14853 			continue;
14854 
14855 		cpr = &bnapi->cp_ring;
14856 		for (j = 0; j < cpr->cp_ring_count; j++) {
14857 			struct bnxt_cp_ring_info *cpr2 = &cpr->cp_ring_arr[j];
14858 			u32 val[2];
14859 
14860 			if (cpr2->has_more_work || !bnxt_has_work(bp, cpr2))
14861 				continue;
14862 
14863 			if (cpr2->cp_raw_cons != cpr2->last_cp_raw_cons) {
14864 				cpr2->last_cp_raw_cons = cpr2->cp_raw_cons;
14865 				continue;
14866 			}
14867 			fw_ring_id = cpr2->cp_ring_struct.fw_ring_id;
14868 			bnxt_dbg_hwrm_ring_info_get(bp,
14869 				DBG_RING_INFO_GET_REQ_RING_TYPE_L2_CMPL,
14870 				fw_ring_id, &val[0], &val[1]);
14871 			cpr->sw_stats->cmn.missed_irqs++;
14872 		}
14873 	}
14874 }
14875 
14876 static void bnxt_cfg_ntp_filters(struct bnxt *);
14877 
bnxt_init_ethtool_link_settings(struct bnxt * bp)14878 static void bnxt_init_ethtool_link_settings(struct bnxt *bp)
14879 {
14880 	struct bnxt_link_info *link_info = &bp->link_info;
14881 
14882 	if (BNXT_AUTO_MODE(link_info->auto_mode)) {
14883 		link_info->autoneg = BNXT_AUTONEG_SPEED;
14884 		if (bp->hwrm_spec_code >= 0x10201) {
14885 			if (link_info->auto_pause_setting &
14886 			    PORT_PHY_CFG_REQ_AUTO_PAUSE_AUTONEG_PAUSE)
14887 				link_info->autoneg |= BNXT_AUTONEG_FLOW_CTRL;
14888 		} else {
14889 			link_info->autoneg |= BNXT_AUTONEG_FLOW_CTRL;
14890 		}
14891 		bnxt_set_auto_speed(link_info);
14892 	} else {
14893 		bnxt_set_force_speed(link_info);
14894 		link_info->req_duplex = link_info->duplex_setting;
14895 	}
14896 	if (link_info->autoneg & BNXT_AUTONEG_FLOW_CTRL)
14897 		link_info->req_flow_ctrl =
14898 			link_info->auto_pause_setting & BNXT_LINK_PAUSE_BOTH;
14899 	else
14900 		link_info->req_flow_ctrl = link_info->force_pause_setting;
14901 }
14902 
bnxt_fw_echo_reply(struct bnxt * bp)14903 static void bnxt_fw_echo_reply(struct bnxt *bp)
14904 {
14905 	struct bnxt_fw_health *fw_health = bp->fw_health;
14906 	struct hwrm_func_echo_response_input *req;
14907 	int rc;
14908 
14909 	rc = hwrm_req_init(bp, req, HWRM_FUNC_ECHO_RESPONSE);
14910 	if (rc)
14911 		return;
14912 	req->event_data1 = cpu_to_le32(fw_health->echo_req_data1);
14913 	req->event_data2 = cpu_to_le32(fw_health->echo_req_data2);
14914 	hwrm_req_send(bp, req);
14915 }
14916 
bnxt_ulp_restart(struct bnxt * bp)14917 static void bnxt_ulp_restart(struct bnxt *bp)
14918 {
14919 	bnxt_ulp_stop(bp);
14920 	bnxt_ulp_start(bp);
14921 }
14922 
bnxt_sp_task(struct work_struct * work)14923 static void bnxt_sp_task(struct work_struct *work)
14924 {
14925 	struct bnxt *bp = container_of(work, struct bnxt, sp_task);
14926 
14927 	set_bit(BNXT_STATE_IN_SP_TASK, &bp->state);
14928 	smp_mb__after_atomic();
14929 	if (!test_bit(BNXT_STATE_OPEN, &bp->state)) {
14930 		clear_bit(BNXT_STATE_IN_SP_TASK, &bp->state);
14931 		return;
14932 	}
14933 
14934 	if (test_and_clear_bit(BNXT_RESTART_ULP_SP_EVENT, &bp->sp_event)) {
14935 		bnxt_ulp_restart(bp);
14936 		bnxt_reenable_sriov(bp);
14937 	}
14938 
14939 	if (test_and_clear_bit(BNXT_RX_NTP_FLTR_SP_EVENT, &bp->sp_event))
14940 		bnxt_cfg_ntp_filters(bp);
14941 	if (test_and_clear_bit(BNXT_HWRM_EXEC_FWD_REQ_SP_EVENT, &bp->sp_event))
14942 		bnxt_hwrm_exec_fwd_req(bp);
14943 	if (test_and_clear_bit(BNXT_HWRM_PF_UNLOAD_SP_EVENT, &bp->sp_event))
14944 		netdev_info(bp->dev, "Receive PF driver unload event!\n");
14945 	if (test_and_clear_bit(BNXT_PERIODIC_STATS_SP_EVENT, &bp->sp_event)) {
14946 		bnxt_hwrm_port_qstats(bp, 0);
14947 		bnxt_hwrm_port_qstats_ext(bp, 0);
14948 		spin_lock(&bp->stats_lock);
14949 		bnxt_accumulate_all_stats(bp);
14950 		bp->stats_updated_jiffies = jiffies;
14951 		spin_unlock(&bp->stats_lock);
14952 	}
14953 
14954 	if (test_and_clear_bit(BNXT_LINK_CHNG_SP_EVENT, &bp->sp_event)) {
14955 		int rc;
14956 
14957 		mutex_lock(&bp->link_lock);
14958 		if (test_and_clear_bit(BNXT_LINK_SPEED_CHNG_SP_EVENT,
14959 				       &bp->sp_event))
14960 			bnxt_hwrm_phy_qcaps(bp);
14961 
14962 		rc = bnxt_update_link(bp, true);
14963 		if (rc)
14964 			netdev_err(bp->dev, "SP task can't update link (rc: %x)\n",
14965 				   rc);
14966 
14967 		if (test_and_clear_bit(BNXT_LINK_CFG_CHANGE_SP_EVENT,
14968 				       &bp->sp_event))
14969 			bnxt_init_ethtool_link_settings(bp);
14970 		mutex_unlock(&bp->link_lock);
14971 	}
14972 	if (test_and_clear_bit(BNXT_UPDATE_PHY_SP_EVENT, &bp->sp_event)) {
14973 		int rc;
14974 
14975 		mutex_lock(&bp->link_lock);
14976 		rc = bnxt_update_phy_setting(bp);
14977 		mutex_unlock(&bp->link_lock);
14978 		if (rc) {
14979 			netdev_warn(bp->dev, "update phy settings retry failed\n");
14980 		} else {
14981 			bp->link_info.phy_retry = false;
14982 			netdev_info(bp->dev, "update phy settings retry succeeded\n");
14983 		}
14984 	}
14985 	if (test_and_clear_bit(BNXT_HWRM_PORT_MODULE_SP_EVENT, &bp->sp_event)) {
14986 		mutex_lock(&bp->link_lock);
14987 		bnxt_get_port_module_status(bp);
14988 		mutex_unlock(&bp->link_lock);
14989 	}
14990 
14991 	if (test_and_clear_bit(BNXT_FLOW_STATS_SP_EVENT, &bp->sp_event))
14992 		bnxt_tc_flow_stats_work(bp);
14993 
14994 	if (test_and_clear_bit(BNXT_RING_COAL_NOW_SP_EVENT, &bp->sp_event))
14995 		bnxt_chk_missed_irq(bp);
14996 
14997 	if (test_and_clear_bit(BNXT_FW_ECHO_REQUEST_SP_EVENT, &bp->sp_event))
14998 		bnxt_fw_echo_reply(bp);
14999 
15000 	if (test_and_clear_bit(BNXT_THERMAL_THRESHOLD_SP_EVENT, &bp->sp_event))
15001 		bnxt_hwmon_notify_event(bp);
15002 
15003 	/* These functions below will clear BNXT_STATE_IN_SP_TASK.  They
15004 	 * must be the last functions to be called before exiting.
15005 	 */
15006 	if (test_and_clear_bit(BNXT_RESET_TASK_SP_EVENT, &bp->sp_event))
15007 		bnxt_reset(bp, false);
15008 
15009 	if (test_and_clear_bit(BNXT_RESET_TASK_SILENT_SP_EVENT, &bp->sp_event))
15010 		bnxt_reset(bp, true);
15011 
15012 	if (test_and_clear_bit(BNXT_RST_RING_SP_EVENT, &bp->sp_event))
15013 		bnxt_rx_ring_reset(bp);
15014 
15015 	if (test_and_clear_bit(BNXT_FW_RESET_NOTIFY_SP_EVENT, &bp->sp_event)) {
15016 		if (test_bit(BNXT_STATE_FW_FATAL_COND, &bp->state) ||
15017 		    test_bit(BNXT_STATE_FW_NON_FATAL_COND, &bp->state))
15018 			bnxt_devlink_health_fw_report(bp);
15019 		else
15020 			bnxt_fw_reset(bp);
15021 	}
15022 
15023 	if (test_and_clear_bit(BNXT_FW_EXCEPTION_SP_EVENT, &bp->sp_event)) {
15024 		if (!is_bnxt_fw_ok(bp))
15025 			bnxt_devlink_health_fw_report(bp);
15026 	}
15027 
15028 	if (test_and_clear_bit(BNXT_TPH_UPDATE_SP_EVENT, &bp->sp_event))
15029 		bnxt_tph_update(bp);
15030 
15031 	smp_mb__before_atomic();
15032 	clear_bit(BNXT_STATE_IN_SP_TASK, &bp->state);
15033 }
15034 
15035 static void _bnxt_get_max_rings(struct bnxt *bp, int *max_rx, int *max_tx,
15036 				int *max_cp);
15037 
15038 /* Under netdev instance lock */
bnxt_check_rings(struct bnxt * bp,int tx,int rx,bool sh,int tcs,int tx_xdp)15039 int bnxt_check_rings(struct bnxt *bp, int tx, int rx, bool sh, int tcs,
15040 		     int tx_xdp)
15041 {
15042 	int max_rx, max_tx, max_cp, tx_sets = 1, tx_cp;
15043 	struct bnxt_hw_rings hwr = {0};
15044 	int rx_rings = rx;
15045 	int rc;
15046 
15047 	if (tcs)
15048 		tx_sets = tcs;
15049 
15050 	_bnxt_get_max_rings(bp, &max_rx, &max_tx, &max_cp);
15051 
15052 	if (max_rx < rx_rings)
15053 		return -ENOMEM;
15054 
15055 	if (bp->flags & BNXT_FLAG_AGG_RINGS)
15056 		rx_rings <<= 1;
15057 
15058 	hwr.rx = rx_rings;
15059 	hwr.tx = tx * tx_sets + tx_xdp;
15060 	if (max_tx < hwr.tx)
15061 		return -ENOMEM;
15062 
15063 	hwr.vnic = bnxt_get_total_vnics(bp, rx);
15064 
15065 	tx_cp = __bnxt_num_tx_to_cp(bp, hwr.tx, tx_sets, tx_xdp);
15066 	hwr.cp = sh ? max_t(int, tx_cp, rx) : tx_cp + rx;
15067 	if (max_cp < hwr.cp)
15068 		return -ENOMEM;
15069 	hwr.stat = hwr.cp;
15070 	if (BNXT_NEW_RM(bp)) {
15071 		hwr.cp += bnxt_get_ulp_msix_num_in_use(bp);
15072 		hwr.stat += bnxt_get_ulp_stat_ctxs_in_use(bp);
15073 		hwr.grp = rx;
15074 		hwr.rss_ctx = bnxt_get_total_rss_ctxs(bp, &hwr);
15075 	}
15076 	if (bp->flags & BNXT_FLAG_CHIP_P5_PLUS)
15077 		hwr.cp_p5 = hwr.tx + rx;
15078 	rc = bnxt_hwrm_check_rings(bp, &hwr);
15079 	if (!rc && pci_msix_can_alloc_dyn(bp->pdev)) {
15080 		if (!bnxt_ulp_registered(bp->edev[BNXT_AUXDEV_RDMA])) {
15081 			hwr.cp += bnxt_get_ulp_msix_num(bp);
15082 			hwr.cp = min_t(int, hwr.cp, bnxt_get_max_func_irqs(bp));
15083 		}
15084 		if (hwr.cp > bp->total_irqs) {
15085 			int total_msix = bnxt_change_msix(bp, hwr.cp);
15086 
15087 			if (total_msix < hwr.cp) {
15088 				netdev_warn(bp->dev, "Unable to allocate %d MSIX vectors, maximum available %d\n",
15089 					    hwr.cp, total_msix);
15090 				rc = -ENOSPC;
15091 			}
15092 		}
15093 	}
15094 	return rc;
15095 }
15096 
bnxt_unmap_bars(struct bnxt * bp,struct pci_dev * pdev)15097 static void bnxt_unmap_bars(struct bnxt *bp, struct pci_dev *pdev)
15098 {
15099 	if (bp->bar2) {
15100 		pci_iounmap(pdev, bp->bar2);
15101 		bp->bar2 = NULL;
15102 	}
15103 
15104 	if (bp->bar1) {
15105 		pci_iounmap(pdev, bp->bar1);
15106 		bp->bar1 = NULL;
15107 	}
15108 
15109 	if (bp->bar0) {
15110 		pci_iounmap(pdev, bp->bar0);
15111 		bp->bar0 = NULL;
15112 	}
15113 }
15114 
bnxt_cleanup_pci(struct bnxt * bp)15115 static void bnxt_cleanup_pci(struct bnxt *bp)
15116 {
15117 	pci_disable_ptm(bp->pdev);
15118 	bnxt_unmap_bars(bp, bp->pdev);
15119 	pci_release_regions(bp->pdev);
15120 	if (pci_is_enabled(bp->pdev))
15121 		pci_disable_device(bp->pdev);
15122 }
15123 
bnxt_init_dflt_coal(struct bnxt * bp)15124 static void bnxt_init_dflt_coal(struct bnxt *bp)
15125 {
15126 	struct bnxt_coal_cap *coal_cap = &bp->coal_cap;
15127 	struct bnxt_coal *coal;
15128 	u16 flags = 0;
15129 
15130 	if (coal_cap->cmpl_params &
15131 	    RING_AGGINT_QCAPS_RESP_CMPL_PARAMS_TIMER_RESET)
15132 		flags |= RING_CMPL_RING_CFG_AGGINT_PARAMS_REQ_FLAGS_TIMER_RESET;
15133 
15134 	/* Tick values in micro seconds.
15135 	 * 1 coal_buf x bufs_per_record = 1 completion record.
15136 	 */
15137 	coal = &bp->rx_coal;
15138 	coal->coal_ticks = 10;
15139 	coal->coal_bufs = 30;
15140 	coal->coal_ticks_irq = 1;
15141 	coal->coal_bufs_irq = 2;
15142 	coal->idle_thresh = 50;
15143 	coal->bufs_per_record = 2;
15144 	coal->budget = 64;		/* NAPI budget */
15145 	coal->flags = flags;
15146 
15147 	coal = &bp->tx_coal;
15148 	coal->coal_ticks = 28;
15149 	coal->coal_bufs = 30;
15150 	coal->coal_ticks_irq = 2;
15151 	coal->coal_bufs_irq = 2;
15152 	coal->bufs_per_record = 1;
15153 	coal->flags = flags;
15154 
15155 	bp->stats_coal_ticks = BNXT_DEF_STATS_COAL_TICKS;
15156 }
15157 
15158 /* FW that pre-reserves 1 VNIC per function */
bnxt_fw_pre_resv_vnics(struct bnxt * bp)15159 static bool bnxt_fw_pre_resv_vnics(struct bnxt *bp)
15160 {
15161 	u16 fw_maj = BNXT_FW_MAJ(bp), fw_bld = BNXT_FW_BLD(bp);
15162 
15163 	if (!(bp->flags & BNXT_FLAG_CHIP_P5_PLUS) &&
15164 	    (fw_maj > 218 || (fw_maj == 218 && fw_bld >= 18)))
15165 		return true;
15166 	if ((bp->flags & BNXT_FLAG_CHIP_P5_PLUS) &&
15167 	    (fw_maj > 216 || (fw_maj == 216 && fw_bld >= 172)))
15168 		return true;
15169 	return false;
15170 }
15171 
bnxt_hwrm_pfcwd_qcaps(struct bnxt * bp)15172 static void bnxt_hwrm_pfcwd_qcaps(struct bnxt *bp)
15173 {
15174 	struct hwrm_queue_pfcwd_timeout_qcaps_output *resp;
15175 	struct hwrm_queue_pfcwd_timeout_qcaps_input *req;
15176 	int rc;
15177 
15178 	bp->max_pfcwd_tmo_ms = 0;
15179 	rc = hwrm_req_init(bp, req, HWRM_QUEUE_PFCWD_TIMEOUT_QCAPS);
15180 	if (rc)
15181 		return;
15182 	resp = hwrm_req_hold(bp, req);
15183 	rc = hwrm_req_send_silent(bp, req);
15184 	if (!rc)
15185 		bp->max_pfcwd_tmo_ms = le16_to_cpu(resp->max_pfcwd_timeout);
15186 	hwrm_req_drop(bp, req);
15187 }
15188 
bnxt_fw_init_one_p1(struct bnxt * bp)15189 static int bnxt_fw_init_one_p1(struct bnxt *bp)
15190 {
15191 	int rc;
15192 
15193 	bp->fw_cap = 0;
15194 	rc = bnxt_hwrm_ver_get(bp);
15195 	/* FW may be unresponsive after FLR. FLR must complete within 100 msec
15196 	 * so wait before continuing with recovery.
15197 	 */
15198 	if (rc)
15199 		msleep(100);
15200 	bnxt_try_map_fw_health_reg(bp);
15201 	if (rc) {
15202 		rc = bnxt_try_recover_fw(bp);
15203 		if (rc)
15204 			return rc;
15205 		rc = bnxt_hwrm_ver_get(bp);
15206 		if (rc)
15207 			return rc;
15208 	}
15209 
15210 	bnxt_nvm_cfg_ver_get(bp);
15211 
15212 	rc = bnxt_hwrm_func_reset(bp);
15213 	if (rc)
15214 		return -ENODEV;
15215 
15216 	bnxt_hwrm_fw_set_time(bp);
15217 	return 0;
15218 }
15219 
bnxt_fw_init_one_p2(struct bnxt * bp)15220 static int bnxt_fw_init_one_p2(struct bnxt *bp)
15221 {
15222 	int rc;
15223 
15224 	/* Get the MAX capabilities for this function */
15225 	rc = bnxt_hwrm_func_qcaps(bp);
15226 	if (rc) {
15227 		netdev_err(bp->dev, "hwrm query capability failure rc: %x\n",
15228 			   rc);
15229 		return -ENODEV;
15230 	}
15231 
15232 	rc = bnxt_hwrm_cfa_adv_flow_mgnt_qcaps(bp);
15233 	if (rc)
15234 		netdev_warn(bp->dev, "hwrm query adv flow mgnt failure rc: %d\n",
15235 			    rc);
15236 
15237 	if (bnxt_alloc_fw_health(bp)) {
15238 		netdev_warn(bp->dev, "no memory for firmware error recovery\n");
15239 	} else {
15240 		rc = bnxt_hwrm_error_recovery_qcfg(bp);
15241 		if (rc)
15242 			netdev_warn(bp->dev, "hwrm query error recovery failure rc: %d\n",
15243 				    rc);
15244 	}
15245 
15246 	rc = bnxt_hwrm_func_drv_rgtr(bp, NULL, 0, false);
15247 	if (rc)
15248 		return -ENODEV;
15249 
15250 	rc = bnxt_alloc_crash_dump_mem(bp);
15251 	if (rc)
15252 		netdev_warn(bp->dev, "crash dump mem alloc failure rc: %d\n",
15253 			    rc);
15254 	if (!rc) {
15255 		rc = bnxt_hwrm_crash_dump_mem_cfg(bp);
15256 		if (rc) {
15257 			bnxt_free_crash_dump_mem(bp);
15258 			netdev_warn(bp->dev,
15259 				    "hwrm crash dump mem failure rc: %d\n", rc);
15260 		}
15261 	}
15262 
15263 	if (bnxt_fw_pre_resv_vnics(bp))
15264 		bp->fw_cap |= BNXT_FW_CAP_PRE_RESV_VNICS;
15265 
15266 	bnxt_hwrm_pfcwd_qcaps(bp);
15267 	bnxt_hwrm_func_qcfg(bp);
15268 	bnxt_hwrm_vnic_qcaps(bp);
15269 	bnxt_hwrm_port_led_qcaps(bp);
15270 	bnxt_ethtool_init(bp);
15271 	if (bp->fw_cap & BNXT_FW_CAP_PTP)
15272 		__bnxt_hwrm_ptp_qcfg(bp);
15273 	bnxt_dcb_init(bp);
15274 	bnxt_hwmon_init(bp);
15275 	return 0;
15276 }
15277 
bnxt_set_dflt_rss_hash_type(struct bnxt * bp)15278 static void bnxt_set_dflt_rss_hash_type(struct bnxt *bp)
15279 {
15280 	bp->rss_cap &= ~BNXT_RSS_CAP_UDP_RSS_CAP;
15281 	bp->rss_hash_cfg = VNIC_RSS_CFG_REQ_HASH_TYPE_IPV4 |
15282 			   VNIC_RSS_CFG_REQ_HASH_TYPE_TCP_IPV4 |
15283 			   VNIC_RSS_CFG_REQ_HASH_TYPE_IPV6 |
15284 			   VNIC_RSS_CFG_REQ_HASH_TYPE_TCP_IPV6;
15285 	if (bp->rss_cap & BNXT_RSS_CAP_RSS_HASH_TYPE_DELTA)
15286 		bp->rss_hash_delta = bp->rss_hash_cfg;
15287 	if (BNXT_CHIP_P4_PLUS(bp) && bp->hwrm_spec_code >= 0x10501) {
15288 		bp->rss_cap |= BNXT_RSS_CAP_UDP_RSS_CAP;
15289 		bp->rss_hash_cfg |= VNIC_RSS_CFG_REQ_HASH_TYPE_UDP_IPV4 |
15290 				    VNIC_RSS_CFG_REQ_HASH_TYPE_UDP_IPV6;
15291 	}
15292 }
15293 
bnxt_set_dflt_rfs(struct bnxt * bp)15294 static void bnxt_set_dflt_rfs(struct bnxt *bp)
15295 {
15296 	struct net_device *dev = bp->dev;
15297 
15298 	dev->hw_features &= ~NETIF_F_NTUPLE;
15299 	dev->features &= ~NETIF_F_NTUPLE;
15300 	bp->flags &= ~BNXT_FLAG_RFS;
15301 	if (bnxt_rfs_supported(bp)) {
15302 		dev->hw_features |= NETIF_F_NTUPLE;
15303 		if (bnxt_rfs_capable(bp, false)) {
15304 			bp->flags |= BNXT_FLAG_RFS;
15305 			dev->features |= NETIF_F_NTUPLE;
15306 		}
15307 	}
15308 }
15309 
bnxt_fw_init_one_p3(struct bnxt * bp)15310 static void bnxt_fw_init_one_p3(struct bnxt *bp)
15311 {
15312 	struct pci_dev *pdev = bp->pdev;
15313 
15314 	bnxt_set_dflt_rss_hash_type(bp);
15315 	bnxt_set_dflt_rfs(bp);
15316 
15317 	bnxt_get_wol_settings(bp);
15318 	if (bp->flags & BNXT_FLAG_WOL_CAP)
15319 		device_set_wakeup_enable(&pdev->dev, bp->wol);
15320 	else
15321 		device_set_wakeup_capable(&pdev->dev, false);
15322 
15323 	bnxt_hwrm_set_cache_line_size(bp, cache_line_size());
15324 	bnxt_hwrm_coal_params_qcaps(bp);
15325 }
15326 
15327 static int bnxt_probe_phy(struct bnxt *bp, bool fw_dflt);
15328 
bnxt_fw_init_one(struct bnxt * bp)15329 int bnxt_fw_init_one(struct bnxt *bp)
15330 {
15331 	int rc;
15332 
15333 	rc = bnxt_fw_init_one_p1(bp);
15334 	if (rc) {
15335 		netdev_err(bp->dev, "Firmware init phase 1 failed\n");
15336 		return rc;
15337 	}
15338 	rc = bnxt_fw_init_one_p2(bp);
15339 	if (rc) {
15340 		netdev_err(bp->dev, "Firmware init phase 2 failed\n");
15341 		return rc;
15342 	}
15343 	rc = bnxt_probe_phy(bp, false);
15344 	if (rc)
15345 		return rc;
15346 	rc = bnxt_approve_mac(bp, bp->dev->dev_addr, false);
15347 	if (rc)
15348 		return rc;
15349 
15350 	bnxt_fw_init_one_p3(bp);
15351 	return 0;
15352 }
15353 
bnxt_fw_reset_writel(struct bnxt * bp,int reg_idx)15354 static void bnxt_fw_reset_writel(struct bnxt *bp, int reg_idx)
15355 {
15356 	struct bnxt_fw_health *fw_health = bp->fw_health;
15357 	u32 reg = fw_health->fw_reset_seq_regs[reg_idx];
15358 	u32 val = fw_health->fw_reset_seq_vals[reg_idx];
15359 	u32 reg_type, reg_off, delay_msecs;
15360 
15361 	delay_msecs = fw_health->fw_reset_seq_delay_msec[reg_idx];
15362 	reg_type = BNXT_FW_HEALTH_REG_TYPE(reg);
15363 	reg_off = BNXT_FW_HEALTH_REG_OFF(reg);
15364 	switch (reg_type) {
15365 	case BNXT_FW_HEALTH_REG_TYPE_CFG:
15366 		pci_write_config_dword(bp->pdev, reg_off, val);
15367 		break;
15368 	case BNXT_FW_HEALTH_REG_TYPE_GRC:
15369 		writel(reg_off & BNXT_GRC_BASE_MASK,
15370 		       bp->bar0 + BNXT_GRCPF_REG_WINDOW_BASE_OUT + 4);
15371 		reg_off = (reg_off & BNXT_GRC_OFFSET_MASK) + 0x2000;
15372 		fallthrough;
15373 	case BNXT_FW_HEALTH_REG_TYPE_BAR0:
15374 		writel(val, bp->bar0 + reg_off);
15375 		break;
15376 	case BNXT_FW_HEALTH_REG_TYPE_BAR1:
15377 		writel(val, bp->bar1 + reg_off);
15378 		break;
15379 	}
15380 	if (delay_msecs) {
15381 		pci_read_config_dword(bp->pdev, 0, &val);
15382 		msleep(delay_msecs);
15383 	}
15384 }
15385 
bnxt_hwrm_reset_permitted(struct bnxt * bp)15386 bool bnxt_hwrm_reset_permitted(struct bnxt *bp)
15387 {
15388 	struct hwrm_func_qcfg_output *resp;
15389 	struct hwrm_func_qcfg_input *req;
15390 	bool result = true; /* firmware will enforce if unknown */
15391 
15392 	if (~bp->fw_cap & BNXT_FW_CAP_HOT_RESET_IF)
15393 		return result;
15394 
15395 	if (hwrm_req_init(bp, req, HWRM_FUNC_QCFG))
15396 		return result;
15397 
15398 	req->fid = cpu_to_le16(0xffff);
15399 	resp = hwrm_req_hold(bp, req);
15400 	if (!hwrm_req_send(bp, req))
15401 		result = !!(le16_to_cpu(resp->flags) &
15402 			    FUNC_QCFG_RESP_FLAGS_HOT_RESET_ALLOWED);
15403 	hwrm_req_drop(bp, req);
15404 	return result;
15405 }
15406 
bnxt_reset_all(struct bnxt * bp)15407 static void bnxt_reset_all(struct bnxt *bp)
15408 {
15409 	struct bnxt_fw_health *fw_health = bp->fw_health;
15410 	int i, rc;
15411 
15412 	if (bp->fw_cap & BNXT_FW_CAP_ERR_RECOVER_RELOAD) {
15413 		bnxt_fw_reset_via_optee(bp);
15414 		bp->fw_reset_timestamp = jiffies;
15415 		return;
15416 	}
15417 
15418 	if (fw_health->flags & ERROR_RECOVERY_QCFG_RESP_FLAGS_HOST) {
15419 		for (i = 0; i < fw_health->fw_reset_seq_cnt; i++)
15420 			bnxt_fw_reset_writel(bp, i);
15421 	} else if (fw_health->flags & ERROR_RECOVERY_QCFG_RESP_FLAGS_CO_CPU) {
15422 		struct hwrm_fw_reset_input *req;
15423 
15424 		rc = hwrm_req_init(bp, req, HWRM_FW_RESET);
15425 		if (!rc) {
15426 			req->target_id = cpu_to_le16(HWRM_TARGET_ID_KONG);
15427 			req->embedded_proc_type = FW_RESET_REQ_EMBEDDED_PROC_TYPE_CHIP;
15428 			req->selfrst_status = FW_RESET_REQ_SELFRST_STATUS_SELFRSTASAP;
15429 			req->flags = FW_RESET_REQ_FLAGS_RESET_GRACEFUL;
15430 			rc = hwrm_req_send(bp, req);
15431 		}
15432 		if (rc != -ENODEV)
15433 			netdev_warn(bp->dev, "Unable to reset FW rc=%d\n", rc);
15434 	}
15435 	bp->fw_reset_timestamp = jiffies;
15436 }
15437 
bnxt_fw_reset_timeout(struct bnxt * bp)15438 static bool bnxt_fw_reset_timeout(struct bnxt *bp)
15439 {
15440 	return time_after(jiffies, bp->fw_reset_timestamp +
15441 			  (bp->fw_reset_max_dsecs * HZ / 10));
15442 }
15443 
bnxt_fw_reset_abort(struct bnxt * bp,int rc)15444 static void bnxt_fw_reset_abort(struct bnxt *bp, int rc)
15445 {
15446 	clear_bit(BNXT_STATE_IN_FW_RESET, &bp->state);
15447 	if (bp->fw_reset_state != BNXT_FW_RESET_STATE_POLL_VF)
15448 		bnxt_dl_health_fw_status_update(bp, false);
15449 	bp->fw_reset_state = BNXT_FW_RESET_STATE_ABORT;
15450 	netif_close(bp->dev);
15451 }
15452 
bnxt_fw_reset_task(struct work_struct * work)15453 static void bnxt_fw_reset_task(struct work_struct *work)
15454 {
15455 	struct bnxt *bp = container_of(work, struct bnxt, fw_reset_task.work);
15456 	int rc = 0;
15457 
15458 	if (!test_bit(BNXT_STATE_IN_FW_RESET, &bp->state)) {
15459 		netdev_err(bp->dev, "bnxt_fw_reset_task() called when not in fw reset mode!\n");
15460 		return;
15461 	}
15462 
15463 	switch (bp->fw_reset_state) {
15464 	case BNXT_FW_RESET_STATE_POLL_VF: {
15465 		int n = bnxt_get_registered_vfs(bp);
15466 		int tmo;
15467 
15468 		if (n < 0) {
15469 			netdev_err(bp->dev, "Firmware reset aborted, subsequent func_qcfg cmd failed, rc = %d, %d msecs since reset timestamp\n",
15470 				   n, jiffies_to_msecs(jiffies -
15471 				   bp->fw_reset_timestamp));
15472 			goto fw_reset_abort;
15473 		} else if (n > 0) {
15474 			if (bnxt_fw_reset_timeout(bp)) {
15475 				clear_bit(BNXT_STATE_IN_FW_RESET, &bp->state);
15476 				bp->fw_reset_state = 0;
15477 				netdev_err(bp->dev, "Firmware reset aborted, bnxt_get_registered_vfs() returns %d\n",
15478 					   n);
15479 				goto ulp_start;
15480 			}
15481 			bnxt_queue_fw_reset_work(bp, HZ / 10);
15482 			return;
15483 		}
15484 		bp->fw_reset_timestamp = jiffies;
15485 		netdev_lock(bp->dev);
15486 		if (test_bit(BNXT_STATE_ABORT_ERR, &bp->state)) {
15487 			bnxt_fw_reset_abort(bp, rc);
15488 			netdev_unlock(bp->dev);
15489 			goto ulp_start;
15490 		}
15491 		bnxt_fw_reset_close(bp);
15492 		if (bp->fw_cap & BNXT_FW_CAP_ERR_RECOVER_RELOAD) {
15493 			bp->fw_reset_state = BNXT_FW_RESET_STATE_POLL_FW_DOWN;
15494 			tmo = HZ / 10;
15495 		} else {
15496 			bp->fw_reset_state = BNXT_FW_RESET_STATE_ENABLE_DEV;
15497 			tmo = bp->fw_reset_min_dsecs * HZ / 10;
15498 		}
15499 		netdev_unlock(bp->dev);
15500 		bnxt_queue_fw_reset_work(bp, tmo);
15501 		return;
15502 	}
15503 	case BNXT_FW_RESET_STATE_POLL_FW_DOWN: {
15504 		u32 val;
15505 
15506 		val = bnxt_fw_health_readl(bp, BNXT_FW_HEALTH_REG);
15507 		if (!(val & BNXT_FW_STATUS_SHUTDOWN) &&
15508 		    !bnxt_fw_reset_timeout(bp)) {
15509 			bnxt_queue_fw_reset_work(bp, HZ / 5);
15510 			return;
15511 		}
15512 
15513 		if (!bp->fw_health->primary) {
15514 			u32 wait_dsecs = bp->fw_health->normal_func_wait_dsecs;
15515 
15516 			bp->fw_reset_state = BNXT_FW_RESET_STATE_ENABLE_DEV;
15517 			bnxt_queue_fw_reset_work(bp, wait_dsecs * HZ / 10);
15518 			return;
15519 		}
15520 		bp->fw_reset_state = BNXT_FW_RESET_STATE_RESET_FW;
15521 	}
15522 		fallthrough;
15523 	case BNXT_FW_RESET_STATE_RESET_FW:
15524 		bnxt_reset_all(bp);
15525 		bp->fw_reset_state = BNXT_FW_RESET_STATE_ENABLE_DEV;
15526 		bnxt_queue_fw_reset_work(bp, bp->fw_reset_min_dsecs * HZ / 10);
15527 		return;
15528 	case BNXT_FW_RESET_STATE_ENABLE_DEV:
15529 		bnxt_inv_fw_health_reg(bp);
15530 		if (test_bit(BNXT_STATE_FW_FATAL_COND, &bp->state) &&
15531 		    !bp->fw_reset_min_dsecs) {
15532 			u16 val;
15533 
15534 			pci_read_config_word(bp->pdev, PCI_SUBSYSTEM_ID, &val);
15535 			if (val == 0xffff) {
15536 				if (bnxt_fw_reset_timeout(bp)) {
15537 					netdev_err(bp->dev, "Firmware reset aborted, PCI config space invalid\n");
15538 					rc = -ETIMEDOUT;
15539 					goto fw_reset_abort;
15540 				}
15541 				bnxt_queue_fw_reset_work(bp, HZ / 1000);
15542 				return;
15543 			}
15544 		}
15545 		clear_bit(BNXT_STATE_FW_FATAL_COND, &bp->state);
15546 		clear_bit(BNXT_STATE_FW_NON_FATAL_COND, &bp->state);
15547 		if (test_and_clear_bit(BNXT_STATE_FW_ACTIVATE_RESET, &bp->state) &&
15548 		    !test_bit(BNXT_STATE_FW_ACTIVATE, &bp->state))
15549 			bnxt_dl_remote_reload(bp);
15550 		if (pci_enable_device(bp->pdev)) {
15551 			netdev_err(bp->dev, "Cannot re-enable PCI device\n");
15552 			rc = -ENODEV;
15553 			goto fw_reset_abort;
15554 		}
15555 		pci_set_master(bp->pdev);
15556 		bp->fw_reset_state = BNXT_FW_RESET_STATE_POLL_FW;
15557 		fallthrough;
15558 	case BNXT_FW_RESET_STATE_POLL_FW:
15559 		bp->hwrm_cmd_timeout = SHORT_HWRM_CMD_TIMEOUT;
15560 		rc = bnxt_hwrm_poll(bp);
15561 		if (rc) {
15562 			if (bnxt_fw_reset_timeout(bp)) {
15563 				netdev_err(bp->dev, "Firmware reset aborted\n");
15564 				goto fw_reset_abort_status;
15565 			}
15566 			bnxt_queue_fw_reset_work(bp, HZ / 5);
15567 			return;
15568 		}
15569 		bp->hwrm_cmd_timeout = DFLT_HWRM_CMD_TIMEOUT;
15570 		bp->fw_reset_state = BNXT_FW_RESET_STATE_OPENING;
15571 		fallthrough;
15572 	case BNXT_FW_RESET_STATE_OPENING:
15573 		while (!rtnl_trylock()) {
15574 			bnxt_queue_fw_reset_work(bp, HZ / 10);
15575 			return;
15576 		}
15577 		netdev_lock(bp->dev);
15578 		rc = bnxt_open(bp->dev);
15579 		if (rc) {
15580 			netdev_err(bp->dev, "bnxt_open() failed during FW reset\n");
15581 			bnxt_fw_reset_abort(bp, rc);
15582 			netdev_unlock(bp->dev);
15583 			rtnl_unlock();
15584 			goto ulp_start;
15585 		}
15586 
15587 		if ((bp->fw_cap & BNXT_FW_CAP_ERROR_RECOVERY) &&
15588 		    bp->fw_health->enabled) {
15589 			bp->fw_health->last_fw_reset_cnt =
15590 				bnxt_fw_health_readl(bp, BNXT_FW_RESET_CNT_REG);
15591 		}
15592 		bp->fw_reset_state = 0;
15593 		/* Make sure fw_reset_state is 0 before clearing the flag */
15594 		smp_mb__before_atomic();
15595 		clear_bit(BNXT_STATE_IN_FW_RESET, &bp->state);
15596 		bnxt_ptp_reapply_pps(bp);
15597 		clear_bit(BNXT_STATE_FW_ACTIVATE, &bp->state);
15598 		if (test_and_clear_bit(BNXT_STATE_RECOVER, &bp->state)) {
15599 			bnxt_dl_health_fw_recovery_done(bp);
15600 			bnxt_dl_health_fw_status_update(bp, true);
15601 		}
15602 		netdev_unlock(bp->dev);
15603 		rtnl_unlock();
15604 		bnxt_ulp_start(bp);
15605 		bnxt_reenable_sriov(bp);
15606 		netdev_lock(bp->dev);
15607 		bnxt_vf_reps_alloc(bp);
15608 		bnxt_vf_reps_open(bp);
15609 		netdev_unlock(bp->dev);
15610 		break;
15611 	}
15612 	return;
15613 
15614 fw_reset_abort_status:
15615 	if (bp->fw_health->status_reliable ||
15616 	    (bp->fw_cap & BNXT_FW_CAP_ERROR_RECOVERY)) {
15617 		u32 sts = bnxt_fw_health_readl(bp, BNXT_FW_HEALTH_REG);
15618 
15619 		netdev_err(bp->dev, "fw_health_status 0x%x\n", sts);
15620 	}
15621 fw_reset_abort:
15622 	netdev_lock(bp->dev);
15623 	bnxt_fw_reset_abort(bp, rc);
15624 	netdev_unlock(bp->dev);
15625 ulp_start:
15626 	if (!rc)
15627 		bnxt_ulp_start(bp);
15628 }
15629 
bnxt_init_board(struct pci_dev * pdev,struct net_device * dev)15630 static int bnxt_init_board(struct pci_dev *pdev, struct net_device *dev)
15631 {
15632 	int rc;
15633 	struct bnxt *bp = netdev_priv(dev);
15634 
15635 	SET_NETDEV_DEV(dev, &pdev->dev);
15636 
15637 	/* enable device (incl. PCI PM wakeup), and bus-mastering */
15638 	rc = pci_enable_device(pdev);
15639 	if (rc) {
15640 		dev_err(&pdev->dev, "Cannot enable PCI device, aborting\n");
15641 		goto init_err;
15642 	}
15643 
15644 	if (!(pci_resource_flags(pdev, 0) & IORESOURCE_MEM)) {
15645 		dev_err(&pdev->dev,
15646 			"Cannot find PCI device base address, aborting\n");
15647 		rc = -ENODEV;
15648 		goto init_err_disable;
15649 	}
15650 
15651 	rc = pci_request_regions(pdev, DRV_MODULE_NAME);
15652 	if (rc) {
15653 		dev_err(&pdev->dev, "Cannot obtain PCI resources, aborting\n");
15654 		goto init_err_disable;
15655 	}
15656 
15657 	if (dma_set_mask_and_coherent(&pdev->dev, DMA_BIT_MASK(64)) != 0 &&
15658 	    dma_set_mask_and_coherent(&pdev->dev, DMA_BIT_MASK(32)) != 0) {
15659 		dev_err(&pdev->dev, "System does not support DMA, aborting\n");
15660 		rc = -EIO;
15661 		goto init_err_release;
15662 	}
15663 
15664 	pci_set_master(pdev);
15665 
15666 	bp->dev = dev;
15667 	bp->pdev = pdev;
15668 
15669 	/* Doorbell BAR bp->bar1 is mapped after bnxt_fw_init_one_p2()
15670 	 * determines the BAR size.
15671 	 */
15672 	bp->bar0 = pci_ioremap_bar(pdev, 0);
15673 	if (!bp->bar0) {
15674 		dev_err(&pdev->dev, "Cannot map device registers, aborting\n");
15675 		rc = -ENOMEM;
15676 		goto init_err_release;
15677 	}
15678 
15679 	bp->bar2 = pci_ioremap_bar(pdev, 4);
15680 	if (!bp->bar2) {
15681 		dev_err(&pdev->dev, "Cannot map bar4 registers, aborting\n");
15682 		rc = -ENOMEM;
15683 		goto init_err_release;
15684 	}
15685 
15686 	pci_enable_ptm(pdev);
15687 
15688 	INIT_WORK(&bp->sp_task, bnxt_sp_task);
15689 	INIT_DELAYED_WORK(&bp->fw_reset_task, bnxt_fw_reset_task);
15690 
15691 	spin_lock_init(&bp->ntp_fltr_lock);
15692 	spin_lock_init(&bp->stats_lock);
15693 #if BITS_PER_LONG == 32
15694 	spin_lock_init(&bp->db_lock);
15695 #endif
15696 
15697 	bp->rx_ring_size = BNXT_DEFAULT_RX_RING_SIZE;
15698 	bp->tx_ring_size = BNXT_DEFAULT_TX_RING_SIZE;
15699 
15700 	timer_setup(&bp->timer, bnxt_timer, 0);
15701 	bp->current_interval = BNXT_TIMER_INTERVAL;
15702 
15703 	bp->vxlan_fw_dst_port_id = INVALID_HW_RING_ID;
15704 	bp->nge_fw_dst_port_id = INVALID_HW_RING_ID;
15705 
15706 	clear_bit(BNXT_STATE_OPEN, &bp->state);
15707 	return 0;
15708 
15709 init_err_release:
15710 	bnxt_unmap_bars(bp, pdev);
15711 	pci_release_regions(pdev);
15712 
15713 init_err_disable:
15714 	pci_disable_device(pdev);
15715 
15716 init_err:
15717 	return rc;
15718 }
15719 
bnxt_change_mac_addr(struct net_device * dev,void * p)15720 static int bnxt_change_mac_addr(struct net_device *dev, void *p)
15721 {
15722 	struct sockaddr *addr = p;
15723 	struct bnxt *bp = netdev_priv(dev);
15724 	int rc = 0;
15725 
15726 	netdev_assert_locked(dev);
15727 
15728 	if (!is_valid_ether_addr(addr->sa_data))
15729 		return -EADDRNOTAVAIL;
15730 
15731 	if (ether_addr_equal(addr->sa_data, dev->dev_addr))
15732 		return 0;
15733 
15734 	rc = bnxt_approve_mac(bp, addr->sa_data, true);
15735 	if (rc)
15736 		return rc;
15737 
15738 	eth_hw_addr_set(dev, addr->sa_data);
15739 	bnxt_clear_usr_fltrs(bp, true);
15740 	if (netif_running(dev)) {
15741 		bnxt_close_nic(bp, false, false);
15742 		rc = bnxt_open_nic(bp, false, false);
15743 	}
15744 
15745 	return rc;
15746 }
15747 
bnxt_change_mtu(struct net_device * dev,int new_mtu)15748 static int bnxt_change_mtu(struct net_device *dev, int new_mtu)
15749 {
15750 	struct bnxt *bp = netdev_priv(dev);
15751 
15752 	netdev_assert_locked(dev);
15753 
15754 	if (netif_running(dev))
15755 		bnxt_close_nic(bp, true, false);
15756 
15757 	WRITE_ONCE(dev->mtu, new_mtu);
15758 
15759 	/* MTU change may change the AGG ring settings if an XDP multi-buffer
15760 	 * program is attached.  We need to set the AGG rings settings and
15761 	 * rx_skb_func accordingly.
15762 	 */
15763 	if (READ_ONCE(bp->xdp_prog))
15764 		bnxt_set_rx_skb_mode(bp, true);
15765 
15766 	bnxt_set_ring_params(bp);
15767 
15768 	if (netif_running(dev))
15769 		return bnxt_open_nic(bp, true, false);
15770 
15771 	return 0;
15772 }
15773 
bnxt_set_cp_rings(struct bnxt * bp,bool sh)15774 void bnxt_set_cp_rings(struct bnxt *bp, bool sh)
15775 {
15776 	int tx_cp = bnxt_num_tx_to_cp(bp, bp->tx_nr_rings);
15777 
15778 	bp->cp_nr_rings = sh ? max_t(int, tx_cp, bp->rx_nr_rings) :
15779 			       tx_cp + bp->rx_nr_rings;
15780 }
15781 
bnxt_setup_mq_tc(struct net_device * dev,u8 tc)15782 int bnxt_setup_mq_tc(struct net_device *dev, u8 tc)
15783 {
15784 	struct bnxt *bp = netdev_priv(dev);
15785 	bool sh = false;
15786 	int rc;
15787 
15788 	if (tc > bp->max_tc) {
15789 		netdev_err(dev, "Too many traffic classes requested: %d. Max supported is %d.\n",
15790 			   tc, bp->max_tc);
15791 		return -EINVAL;
15792 	}
15793 
15794 	if (bp->num_tc == tc)
15795 		return 0;
15796 
15797 	if (bp->flags & BNXT_FLAG_SHARED_RINGS)
15798 		sh = true;
15799 
15800 	rc = bnxt_check_rings(bp, bp->tx_nr_rings_per_tc, bp->rx_nr_rings,
15801 			      sh, tc, bp->tx_nr_rings_xdp);
15802 	if (rc)
15803 		return rc;
15804 
15805 	/* Needs to close the device and do hw resource re-allocations */
15806 	if (netif_running(bp->dev))
15807 		bnxt_close_nic(bp, true, false);
15808 
15809 	if (tc) {
15810 		bp->tx_nr_rings = bp->tx_nr_rings_per_tc * tc;
15811 		netdev_set_num_tc(dev, tc);
15812 		bp->num_tc = tc;
15813 	} else {
15814 		bp->tx_nr_rings = bp->tx_nr_rings_per_tc;
15815 		netdev_reset_tc(dev);
15816 		bp->num_tc = 0;
15817 	}
15818 	bp->tx_nr_rings += bp->tx_nr_rings_xdp;
15819 	bnxt_set_cp_rings(bp, sh);
15820 
15821 	if (netif_running(bp->dev))
15822 		return bnxt_open_nic(bp, true, false);
15823 
15824 	return 0;
15825 }
15826 
bnxt_setup_tc_block_cb(enum tc_setup_type type,void * type_data,void * cb_priv)15827 static int bnxt_setup_tc_block_cb(enum tc_setup_type type, void *type_data,
15828 				  void *cb_priv)
15829 {
15830 	struct bnxt *bp = cb_priv;
15831 
15832 	if (!bnxt_tc_flower_enabled(bp) ||
15833 	    !tc_cls_can_offload_and_chain0(bp->dev, type_data))
15834 		return -EOPNOTSUPP;
15835 
15836 	switch (type) {
15837 	case TC_SETUP_CLSFLOWER:
15838 		return bnxt_tc_setup_flower(bp, bp->pf.fw_fid, type_data);
15839 	default:
15840 		return -EOPNOTSUPP;
15841 	}
15842 }
15843 
15844 LIST_HEAD(bnxt_block_cb_list);
15845 
bnxt_setup_tc(struct net_device * dev,enum tc_setup_type type,void * type_data)15846 static int bnxt_setup_tc(struct net_device *dev, enum tc_setup_type type,
15847 			 void *type_data)
15848 {
15849 	struct bnxt *bp = netdev_priv(dev);
15850 
15851 	switch (type) {
15852 	case TC_SETUP_BLOCK:
15853 		return flow_block_cb_setup_simple(type_data,
15854 						  &bnxt_block_cb_list,
15855 						  bnxt_setup_tc_block_cb,
15856 						  bp, bp, true);
15857 	case TC_SETUP_QDISC_MQPRIO: {
15858 		struct tc_mqprio_qopt *mqprio = type_data;
15859 
15860 		mqprio->hw = TC_MQPRIO_HW_OFFLOAD_TCS;
15861 
15862 		return bnxt_setup_mq_tc(dev, mqprio->num_tc);
15863 	}
15864 	default:
15865 		return -EOPNOTSUPP;
15866 	}
15867 }
15868 
bnxt_get_ntp_filter_idx(struct bnxt * bp,struct flow_keys * fkeys,const struct sk_buff * skb)15869 u32 bnxt_get_ntp_filter_idx(struct bnxt *bp, struct flow_keys *fkeys,
15870 			    const struct sk_buff *skb)
15871 {
15872 	struct bnxt_vnic_info *vnic;
15873 
15874 	if (skb)
15875 		return skb_get_hash_raw(skb) & BNXT_NTP_FLTR_HASH_MASK;
15876 
15877 	vnic = &bp->vnic_info[BNXT_VNIC_DEFAULT];
15878 	return bnxt_toeplitz(bp, fkeys, (void *)vnic->rss_hash_key);
15879 }
15880 
bnxt_insert_ntp_filter(struct bnxt * bp,struct bnxt_ntuple_filter * fltr,u32 idx)15881 int bnxt_insert_ntp_filter(struct bnxt *bp, struct bnxt_ntuple_filter *fltr,
15882 			   u32 idx)
15883 {
15884 	struct hlist_head *head;
15885 	int bit_id;
15886 
15887 	spin_lock_bh(&bp->ntp_fltr_lock);
15888 	bit_id = bitmap_find_free_region(bp->ntp_fltr_bmap, bp->max_fltr, 0);
15889 	if (bit_id < 0) {
15890 		spin_unlock_bh(&bp->ntp_fltr_lock);
15891 		return -ENOMEM;
15892 	}
15893 
15894 	fltr->base.sw_id = (u16)bit_id;
15895 	fltr->base.type = BNXT_FLTR_TYPE_NTUPLE;
15896 	fltr->base.flags |= BNXT_ACT_RING_DST;
15897 	head = &bp->ntp_fltr_hash_tbl[idx];
15898 	hlist_add_head_rcu(&fltr->base.hash, head);
15899 	set_bit(BNXT_FLTR_INSERTED, &fltr->base.state);
15900 	bnxt_insert_usr_fltr(bp, &fltr->base);
15901 	bp->ntp_fltr_count++;
15902 	spin_unlock_bh(&bp->ntp_fltr_lock);
15903 	return 0;
15904 }
15905 
bnxt_fltr_match(struct bnxt_ntuple_filter * f1,struct bnxt_ntuple_filter * f2)15906 static bool bnxt_fltr_match(struct bnxt_ntuple_filter *f1,
15907 			    struct bnxt_ntuple_filter *f2)
15908 {
15909 	struct bnxt_flow_masks *masks1 = &f1->fmasks;
15910 	struct bnxt_flow_masks *masks2 = &f2->fmasks;
15911 	struct flow_keys *keys1 = &f1->fkeys;
15912 	struct flow_keys *keys2 = &f2->fkeys;
15913 
15914 	if (keys1->basic.n_proto != keys2->basic.n_proto ||
15915 	    keys1->basic.ip_proto != keys2->basic.ip_proto)
15916 		return false;
15917 
15918 	if (keys1->basic.n_proto == htons(ETH_P_IP)) {
15919 		if (keys1->addrs.v4addrs.src != keys2->addrs.v4addrs.src ||
15920 		    masks1->addrs.v4addrs.src != masks2->addrs.v4addrs.src ||
15921 		    keys1->addrs.v4addrs.dst != keys2->addrs.v4addrs.dst ||
15922 		    masks1->addrs.v4addrs.dst != masks2->addrs.v4addrs.dst)
15923 			return false;
15924 	} else {
15925 		if (!ipv6_addr_equal(&keys1->addrs.v6addrs.src,
15926 				     &keys2->addrs.v6addrs.src) ||
15927 		    !ipv6_addr_equal(&masks1->addrs.v6addrs.src,
15928 				     &masks2->addrs.v6addrs.src) ||
15929 		    !ipv6_addr_equal(&keys1->addrs.v6addrs.dst,
15930 				     &keys2->addrs.v6addrs.dst) ||
15931 		    !ipv6_addr_equal(&masks1->addrs.v6addrs.dst,
15932 				     &masks2->addrs.v6addrs.dst))
15933 			return false;
15934 	}
15935 
15936 	return keys1->ports.src == keys2->ports.src &&
15937 	       masks1->ports.src == masks2->ports.src &&
15938 	       keys1->ports.dst == keys2->ports.dst &&
15939 	       masks1->ports.dst == masks2->ports.dst &&
15940 	       keys1->control.flags == keys2->control.flags &&
15941 	       f1->l2_fltr == f2->l2_fltr;
15942 }
15943 
15944 struct bnxt_ntuple_filter *
bnxt_lookup_ntp_filter_from_idx(struct bnxt * bp,struct bnxt_ntuple_filter * fltr,u32 idx)15945 bnxt_lookup_ntp_filter_from_idx(struct bnxt *bp,
15946 				struct bnxt_ntuple_filter *fltr, u32 idx)
15947 {
15948 	struct bnxt_ntuple_filter *f;
15949 	struct hlist_head *head;
15950 
15951 	head = &bp->ntp_fltr_hash_tbl[idx];
15952 	hlist_for_each_entry_rcu(f, head, base.hash) {
15953 		if (bnxt_fltr_match(f, fltr))
15954 			return f;
15955 	}
15956 	return NULL;
15957 }
15958 
15959 #ifdef CONFIG_RFS_ACCEL
bnxt_rx_flow_steer(struct net_device * dev,const struct sk_buff * skb,u16 rxq_index,u32 flow_id)15960 static int bnxt_rx_flow_steer(struct net_device *dev, const struct sk_buff *skb,
15961 			      u16 rxq_index, u32 flow_id)
15962 {
15963 	struct bnxt *bp = netdev_priv(dev);
15964 	struct bnxt_ntuple_filter *fltr, *new_fltr;
15965 	struct flow_keys *fkeys;
15966 	struct ethhdr *eth = (struct ethhdr *)skb_mac_header(skb);
15967 	struct bnxt_l2_filter *l2_fltr;
15968 	int rc = 0, idx;
15969 	u32 flags;
15970 
15971 	if (ether_addr_equal(dev->dev_addr, eth->h_dest)) {
15972 		l2_fltr = bp->vnic_info[BNXT_VNIC_DEFAULT].l2_filters[0];
15973 		atomic_inc(&l2_fltr->refcnt);
15974 	} else {
15975 		struct bnxt_l2_key key;
15976 
15977 		ether_addr_copy(key.dst_mac_addr, eth->h_dest);
15978 		key.vlan = 0;
15979 		l2_fltr = bnxt_lookup_l2_filter_from_key(bp, &key);
15980 		if (!l2_fltr)
15981 			return -EINVAL;
15982 		if (l2_fltr->base.flags & BNXT_ACT_FUNC_DST) {
15983 			bnxt_del_l2_filter(bp, l2_fltr);
15984 			return -EINVAL;
15985 		}
15986 	}
15987 	new_fltr = kzalloc_obj(*new_fltr, GFP_ATOMIC);
15988 	if (!new_fltr) {
15989 		bnxt_del_l2_filter(bp, l2_fltr);
15990 		return -ENOMEM;
15991 	}
15992 
15993 	fkeys = &new_fltr->fkeys;
15994 	if (!skb_flow_dissect_flow_keys(skb, fkeys, 0)) {
15995 		rc = -EPROTONOSUPPORT;
15996 		goto err_free;
15997 	}
15998 
15999 	if ((fkeys->basic.n_proto != htons(ETH_P_IP) &&
16000 	     fkeys->basic.n_proto != htons(ETH_P_IPV6)) ||
16001 	    ((fkeys->basic.ip_proto != IPPROTO_TCP) &&
16002 	     (fkeys->basic.ip_proto != IPPROTO_UDP))) {
16003 		rc = -EPROTONOSUPPORT;
16004 		goto err_free;
16005 	}
16006 	new_fltr->fmasks = BNXT_FLOW_IPV4_MASK_ALL;
16007 	if (fkeys->basic.n_proto == htons(ETH_P_IPV6)) {
16008 		if (bp->hwrm_spec_code < 0x10601) {
16009 			rc = -EPROTONOSUPPORT;
16010 			goto err_free;
16011 		}
16012 		new_fltr->fmasks = BNXT_FLOW_IPV6_MASK_ALL;
16013 	}
16014 	flags = fkeys->control.flags;
16015 	if (((flags & FLOW_DIS_ENCAPSULATION) &&
16016 	     bp->hwrm_spec_code < 0x10601) || (flags & FLOW_DIS_IS_FRAGMENT)) {
16017 		rc = -EPROTONOSUPPORT;
16018 		goto err_free;
16019 	}
16020 	new_fltr->l2_fltr = l2_fltr;
16021 
16022 	idx = bnxt_get_ntp_filter_idx(bp, fkeys, skb);
16023 	rcu_read_lock();
16024 	fltr = bnxt_lookup_ntp_filter_from_idx(bp, new_fltr, idx);
16025 	if (fltr) {
16026 		rc = fltr->base.sw_id;
16027 		rcu_read_unlock();
16028 		goto err_free;
16029 	}
16030 	rcu_read_unlock();
16031 
16032 	new_fltr->flow_id = flow_id;
16033 	new_fltr->base.rxq = rxq_index;
16034 	rc = bnxt_insert_ntp_filter(bp, new_fltr, idx);
16035 	if (!rc) {
16036 		bnxt_queue_sp_work(bp, BNXT_RX_NTP_FLTR_SP_EVENT);
16037 		return new_fltr->base.sw_id;
16038 	}
16039 
16040 err_free:
16041 	bnxt_del_l2_filter(bp, l2_fltr);
16042 	kfree(new_fltr);
16043 	return rc;
16044 }
16045 #endif
16046 
bnxt_del_ntp_filter(struct bnxt * bp,struct bnxt_ntuple_filter * fltr)16047 void bnxt_del_ntp_filter(struct bnxt *bp, struct bnxt_ntuple_filter *fltr)
16048 {
16049 	spin_lock_bh(&bp->ntp_fltr_lock);
16050 	if (!test_and_clear_bit(BNXT_FLTR_INSERTED, &fltr->base.state)) {
16051 		spin_unlock_bh(&bp->ntp_fltr_lock);
16052 		return;
16053 	}
16054 	hlist_del_rcu(&fltr->base.hash);
16055 	bnxt_del_one_usr_fltr(bp, &fltr->base);
16056 	bp->ntp_fltr_count--;
16057 	spin_unlock_bh(&bp->ntp_fltr_lock);
16058 	bnxt_del_l2_filter(bp, fltr->l2_fltr);
16059 	clear_bit(fltr->base.sw_id, bp->ntp_fltr_bmap);
16060 	kfree_rcu(fltr, base.rcu);
16061 }
16062 
bnxt_cfg_ntp_filters(struct bnxt * bp)16063 static void bnxt_cfg_ntp_filters(struct bnxt *bp)
16064 {
16065 #ifdef CONFIG_RFS_ACCEL
16066 	int i;
16067 
16068 	for (i = 0; i < BNXT_NTP_FLTR_HASH_SIZE; i++) {
16069 		struct hlist_head *head;
16070 		struct hlist_node *tmp;
16071 		struct bnxt_ntuple_filter *fltr;
16072 		int rc;
16073 
16074 		head = &bp->ntp_fltr_hash_tbl[i];
16075 		hlist_for_each_entry_safe(fltr, tmp, head, base.hash) {
16076 			bool del = false;
16077 
16078 			if (test_bit(BNXT_FLTR_VALID, &fltr->base.state)) {
16079 				if (fltr->base.flags & BNXT_ACT_NO_AGING)
16080 					continue;
16081 				if (rps_may_expire_flow(bp->dev, fltr->base.rxq,
16082 							fltr->flow_id,
16083 							fltr->base.sw_id)) {
16084 					bnxt_hwrm_cfa_ntuple_filter_free(bp,
16085 									 fltr);
16086 					del = true;
16087 				}
16088 			} else {
16089 				rc = bnxt_hwrm_cfa_ntuple_filter_alloc(bp,
16090 								       fltr);
16091 				if (rc)
16092 					del = true;
16093 				else
16094 					set_bit(BNXT_FLTR_VALID, &fltr->base.state);
16095 			}
16096 
16097 			if (del)
16098 				bnxt_del_ntp_filter(bp, fltr);
16099 		}
16100 	}
16101 #endif
16102 }
16103 
bnxt_udp_tunnel_set_port(struct net_device * netdev,unsigned int table,unsigned int entry,struct udp_tunnel_info * ti)16104 static int bnxt_udp_tunnel_set_port(struct net_device *netdev, unsigned int table,
16105 				    unsigned int entry, struct udp_tunnel_info *ti)
16106 {
16107 	struct bnxt *bp = netdev_priv(netdev);
16108 	unsigned int cmd;
16109 
16110 	if (ti->type == UDP_TUNNEL_TYPE_VXLAN)
16111 		cmd = TUNNEL_DST_PORT_ALLOC_REQ_TUNNEL_TYPE_VXLAN;
16112 	else if (ti->type == UDP_TUNNEL_TYPE_GENEVE)
16113 		cmd = TUNNEL_DST_PORT_ALLOC_REQ_TUNNEL_TYPE_GENEVE;
16114 	else
16115 		cmd = TUNNEL_DST_PORT_ALLOC_REQ_TUNNEL_TYPE_VXLAN_GPE;
16116 
16117 	return bnxt_hwrm_tunnel_dst_port_alloc(bp, ti->port, cmd);
16118 }
16119 
bnxt_udp_tunnel_unset_port(struct net_device * netdev,unsigned int table,unsigned int entry,struct udp_tunnel_info * ti)16120 static int bnxt_udp_tunnel_unset_port(struct net_device *netdev, unsigned int table,
16121 				      unsigned int entry, struct udp_tunnel_info *ti)
16122 {
16123 	struct bnxt *bp = netdev_priv(netdev);
16124 	unsigned int cmd;
16125 
16126 	if (ti->type == UDP_TUNNEL_TYPE_VXLAN)
16127 		cmd = TUNNEL_DST_PORT_FREE_REQ_TUNNEL_TYPE_VXLAN;
16128 	else if (ti->type == UDP_TUNNEL_TYPE_GENEVE)
16129 		cmd = TUNNEL_DST_PORT_FREE_REQ_TUNNEL_TYPE_GENEVE;
16130 	else
16131 		cmd = TUNNEL_DST_PORT_FREE_REQ_TUNNEL_TYPE_VXLAN_GPE;
16132 
16133 	return bnxt_hwrm_tunnel_dst_port_free(bp, cmd);
16134 }
16135 
16136 static const struct udp_tunnel_nic_info bnxt_udp_tunnels = {
16137 	.set_port	= bnxt_udp_tunnel_set_port,
16138 	.unset_port	= bnxt_udp_tunnel_unset_port,
16139 	.flags		= UDP_TUNNEL_NIC_INFO_OPEN_ONLY,
16140 	.tables		= {
16141 		{ .n_entries = 1, .tunnel_types = UDP_TUNNEL_TYPE_VXLAN,  },
16142 		{ .n_entries = 1, .tunnel_types = UDP_TUNNEL_TYPE_GENEVE, },
16143 	},
16144 }, bnxt_udp_tunnels_p7 = {
16145 	.set_port	= bnxt_udp_tunnel_set_port,
16146 	.unset_port	= bnxt_udp_tunnel_unset_port,
16147 	.flags		= UDP_TUNNEL_NIC_INFO_OPEN_ONLY,
16148 	.tables		= {
16149 		{ .n_entries = 1, .tunnel_types = UDP_TUNNEL_TYPE_VXLAN,  },
16150 		{ .n_entries = 1, .tunnel_types = UDP_TUNNEL_TYPE_GENEVE, },
16151 		{ .n_entries = 1, .tunnel_types = UDP_TUNNEL_TYPE_VXLAN_GPE, },
16152 	},
16153 };
16154 
bnxt_bridge_getlink(struct sk_buff * skb,u32 pid,u32 seq,struct net_device * dev,u32 filter_mask,int nlflags)16155 static int bnxt_bridge_getlink(struct sk_buff *skb, u32 pid, u32 seq,
16156 			       struct net_device *dev, u32 filter_mask,
16157 			       int nlflags)
16158 {
16159 	struct bnxt *bp = netdev_priv(dev);
16160 
16161 	return ndo_dflt_bridge_getlink(skb, pid, seq, dev, bp->br_mode, 0, 0,
16162 				       nlflags, filter_mask, NULL);
16163 }
16164 
bnxt_bridge_setlink(struct net_device * dev,struct nlmsghdr * nlh,u16 flags,struct netlink_ext_ack * extack)16165 static int bnxt_bridge_setlink(struct net_device *dev, struct nlmsghdr *nlh,
16166 			       u16 flags, struct netlink_ext_ack *extack)
16167 {
16168 	struct bnxt *bp = netdev_priv(dev);
16169 	struct nlattr *attr, *br_spec;
16170 	int rem, rc = 0;
16171 
16172 	if (bp->hwrm_spec_code < 0x10708 || !BNXT_SINGLE_PF(bp))
16173 		return -EOPNOTSUPP;
16174 
16175 	br_spec = nlmsg_find_attr(nlh, sizeof(struct ifinfomsg), IFLA_AF_SPEC);
16176 	if (!br_spec)
16177 		return -EINVAL;
16178 
16179 	nla_for_each_nested_type(attr, IFLA_BRIDGE_MODE, br_spec, rem) {
16180 		u16 mode;
16181 
16182 		mode = nla_get_u16(attr);
16183 		if (mode == bp->br_mode)
16184 			break;
16185 
16186 		rc = bnxt_hwrm_set_br_mode(bp, mode);
16187 		if (!rc)
16188 			bp->br_mode = mode;
16189 		break;
16190 	}
16191 	return rc;
16192 }
16193 
bnxt_get_port_parent_id(struct net_device * dev,struct netdev_phys_item_id * ppid)16194 int bnxt_get_port_parent_id(struct net_device *dev,
16195 			    struct netdev_phys_item_id *ppid)
16196 {
16197 	struct bnxt *bp = netdev_priv(dev);
16198 
16199 	if (bp->eswitch_mode != DEVLINK_ESWITCH_MODE_SWITCHDEV)
16200 		return -EOPNOTSUPP;
16201 
16202 	/* The PF and it's VF-reps only support the switchdev framework */
16203 	if (!BNXT_PF(bp) || !(bp->flags & BNXT_FLAG_DSN_VALID))
16204 		return -EOPNOTSUPP;
16205 
16206 	ppid->id_len = sizeof(bp->dsn);
16207 	memcpy(ppid->id, bp->dsn, ppid->id_len);
16208 
16209 	return 0;
16210 }
16211 
16212 static const struct net_device_ops bnxt_netdev_ops = {
16213 	.ndo_open		= bnxt_open,
16214 	.ndo_start_xmit		= bnxt_start_xmit,
16215 	.ndo_stop		= bnxt_close,
16216 	.ndo_get_stats64	= bnxt_get_stats64,
16217 	.ndo_set_rx_mode_async	= bnxt_set_rx_mode,
16218 	.ndo_eth_ioctl		= bnxt_ioctl,
16219 	.ndo_validate_addr	= eth_validate_addr,
16220 	.ndo_set_mac_address	= bnxt_change_mac_addr,
16221 	.ndo_change_mtu		= bnxt_change_mtu,
16222 	.ndo_fix_features	= bnxt_fix_features,
16223 	.ndo_set_features	= bnxt_set_features,
16224 	.ndo_features_check	= bnxt_features_check,
16225 	.ndo_tx_timeout		= bnxt_tx_timeout,
16226 #ifdef CONFIG_BNXT_SRIOV
16227 	.ndo_get_vf_config	= bnxt_get_vf_config,
16228 	.ndo_set_vf_mac		= bnxt_set_vf_mac,
16229 	.ndo_set_vf_vlan	= bnxt_set_vf_vlan,
16230 	.ndo_set_vf_rate	= bnxt_set_vf_bw,
16231 	.ndo_set_vf_link_state	= bnxt_set_vf_link_state,
16232 	.ndo_set_vf_spoofchk	= bnxt_set_vf_spoofchk,
16233 	.ndo_set_vf_trust	= bnxt_set_vf_trust,
16234 #endif
16235 	.ndo_setup_tc           = bnxt_setup_tc,
16236 #ifdef CONFIG_RFS_ACCEL
16237 	.ndo_rx_flow_steer	= bnxt_rx_flow_steer,
16238 #endif
16239 	.ndo_bpf		= bnxt_xdp,
16240 	.ndo_xdp_xmit		= bnxt_xdp_xmit,
16241 	.ndo_bridge_getlink	= bnxt_bridge_getlink,
16242 	.ndo_bridge_setlink	= bnxt_bridge_setlink,
16243 	.ndo_hwtstamp_get	= bnxt_hwtstamp_get,
16244 	.ndo_hwtstamp_set	= bnxt_hwtstamp_set,
16245 };
16246 
16247 static const struct xdp_metadata_ops bnxt_xdp_metadata_ops = {
16248 	.xmo_rx_hash		= bnxt_xdp_rx_hash,
16249 };
16250 
bnxt_get_queue_stats_rx(struct net_device * dev,int i,struct netdev_queue_stats_rx * stats)16251 static void bnxt_get_queue_stats_rx(struct net_device *dev, int i,
16252 				    struct netdev_queue_stats_rx *stats)
16253 {
16254 	struct bnxt *bp = netdev_priv(dev);
16255 	struct bnxt_cp_ring_info *cpr;
16256 	u64 *sw;
16257 
16258 	if (!bp->bnapi)
16259 		return;
16260 
16261 	bnxt_sync_ring_stats(bp);
16262 	cpr = &bp->bnapi[i]->cp_ring;
16263 	sw = cpr->stats.sw_stats;
16264 
16265 	stats->packets = 0;
16266 	stats->packets += BNXT_GET_RING_STATS64(sw, rx_ucast_pkts);
16267 	stats->packets += BNXT_GET_RING_STATS64(sw, rx_mcast_pkts);
16268 	stats->packets += BNXT_GET_RING_STATS64(sw, rx_bcast_pkts);
16269 
16270 	stats->bytes = 0;
16271 	stats->bytes += BNXT_GET_RING_STATS64(sw, rx_ucast_bytes);
16272 	stats->bytes += BNXT_GET_RING_STATS64(sw, rx_mcast_bytes);
16273 	stats->bytes += BNXT_GET_RING_STATS64(sw, rx_bcast_bytes);
16274 
16275 	stats->alloc_fail = cpr->sw_stats->rx.rx_oom_discards;
16276 	stats->hw_gro_packets = cpr->sw_stats->rx.rx_hw_gro_packets;
16277 	stats->hw_gro_wire_packets = cpr->sw_stats->rx.rx_hw_gro_wire_packets;
16278 }
16279 
bnxt_get_queue_stats_tx(struct net_device * dev,int i,struct netdev_queue_stats_tx * stats)16280 static void bnxt_get_queue_stats_tx(struct net_device *dev, int i,
16281 				    struct netdev_queue_stats_tx *stats)
16282 {
16283 	struct bnxt *bp = netdev_priv(dev);
16284 	struct bnxt_napi *bnapi;
16285 	u64 *sw;
16286 
16287 	if (!bp->tx_ring)
16288 		return;
16289 
16290 	bnxt_sync_ring_stats(bp);
16291 	bnapi = bp->tx_ring[bp->tx_ring_map[i]].bnapi;
16292 	sw = bnapi->cp_ring.stats.sw_stats;
16293 
16294 	stats->packets = 0;
16295 	stats->packets += BNXT_GET_RING_STATS64(sw, tx_ucast_pkts);
16296 	stats->packets += BNXT_GET_RING_STATS64(sw, tx_mcast_pkts);
16297 	stats->packets += BNXT_GET_RING_STATS64(sw, tx_bcast_pkts);
16298 
16299 	stats->bytes = 0;
16300 	stats->bytes += BNXT_GET_RING_STATS64(sw, tx_ucast_bytes);
16301 	stats->bytes += BNXT_GET_RING_STATS64(sw, tx_mcast_bytes);
16302 	stats->bytes += BNXT_GET_RING_STATS64(sw, tx_bcast_bytes);
16303 }
16304 
bnxt_get_base_stats(struct net_device * dev,struct netdev_queue_stats_rx * rx,struct netdev_queue_stats_tx * tx)16305 static void bnxt_get_base_stats(struct net_device *dev,
16306 				struct netdev_queue_stats_rx *rx,
16307 				struct netdev_queue_stats_tx *tx)
16308 {
16309 	struct bnxt *bp = netdev_priv(dev);
16310 
16311 	rx->packets = bp->net_stats_prev.rx_packets;
16312 	rx->bytes = bp->net_stats_prev.rx_bytes;
16313 	rx->alloc_fail = bp->ring_drv_stats_prev.rx_total_oom_discards;
16314 	rx->hw_gro_packets = bp->ring_drv_stats_prev.rx_total_hw_gro_packets;
16315 	rx->hw_gro_wire_packets = bp->ring_drv_stats_prev.rx_total_hw_gro_wire_packets;
16316 
16317 	tx->packets = bp->net_stats_prev.tx_packets;
16318 	tx->bytes = bp->net_stats_prev.tx_bytes;
16319 }
16320 
16321 static const struct netdev_stat_ops bnxt_stat_ops = {
16322 	.get_queue_stats_rx	= bnxt_get_queue_stats_rx,
16323 	.get_queue_stats_tx	= bnxt_get_queue_stats_tx,
16324 	.get_base_stats		= bnxt_get_base_stats,
16325 };
16326 
bnxt_queue_default_qcfg(struct net_device * dev,struct netdev_queue_config * qcfg)16327 static void bnxt_queue_default_qcfg(struct net_device *dev,
16328 				    struct netdev_queue_config *qcfg)
16329 {
16330 	qcfg->rx_page_size = BNXT_RX_PAGE_SIZE;
16331 }
16332 
bnxt_validate_qcfg(struct net_device * dev,struct netdev_queue_config * qcfg,struct netlink_ext_ack * extack)16333 static int bnxt_validate_qcfg(struct net_device *dev,
16334 			      struct netdev_queue_config *qcfg,
16335 			      struct netlink_ext_ack *extack)
16336 {
16337 	struct bnxt *bp = netdev_priv(dev);
16338 
16339 	/* Older chips need MSS calc so rx_page_size is not supported */
16340 	if (!(bp->flags & BNXT_FLAG_CHIP_P5_PLUS) &&
16341 	    qcfg->rx_page_size != BNXT_RX_PAGE_SIZE)
16342 		return -EINVAL;
16343 
16344 	if (!is_power_of_2(qcfg->rx_page_size))
16345 		return -ERANGE;
16346 
16347 	if (qcfg->rx_page_size < BNXT_RX_PAGE_SIZE ||
16348 	    qcfg->rx_page_size > BNXT_MAX_RX_PAGE_SIZE)
16349 		return -ERANGE;
16350 
16351 	return 0;
16352 }
16353 
bnxt_queue_mem_alloc(struct net_device * dev,struct netdev_queue_config * qcfg,void * qmem,int idx)16354 static int bnxt_queue_mem_alloc(struct net_device *dev,
16355 				struct netdev_queue_config *qcfg,
16356 				void *qmem, int idx)
16357 {
16358 	struct bnxt_rx_ring_info *rxr, *clone;
16359 	struct bnxt *bp = netdev_priv(dev);
16360 	struct bnxt_ring_struct *ring;
16361 	int rc;
16362 
16363 	if (!bp->rx_ring)
16364 		return -ENETDOWN;
16365 
16366 	rxr = &bp->rx_ring[idx];
16367 	clone = qmem;
16368 	memcpy(clone, rxr, sizeof(*rxr));
16369 	bnxt_init_rx_ring_struct(bp, clone);
16370 	bnxt_reset_rx_ring_struct(bp, clone);
16371 
16372 	clone->rx_prod = 0;
16373 	clone->rx_agg_prod = 0;
16374 	clone->rx_sw_agg_prod = 0;
16375 	clone->rx_next_cons = 0;
16376 	clone->need_head_pool = false;
16377 	clone->rx_page_size = qcfg->rx_page_size;
16378 	clone->rx_agg_bmap = NULL;
16379 	clone->rx_tpa = NULL;
16380 	clone->rx_tpa_idx_map = NULL;
16381 
16382 	rc = bnxt_alloc_rx_page_pool(bp, clone, rxr->page_pool->p.nid);
16383 	if (rc)
16384 		return rc;
16385 
16386 	rc = xdp_rxq_info_reg(&clone->xdp_rxq, bp->dev, idx, 0);
16387 	if (rc < 0)
16388 		goto err_page_pool_destroy;
16389 
16390 	rc = xdp_rxq_info_reg_mem_model(&clone->xdp_rxq,
16391 					MEM_TYPE_PAGE_POOL,
16392 					clone->page_pool);
16393 	if (rc)
16394 		goto err_rxq_info_unreg;
16395 
16396 	ring = &clone->rx_ring_struct;
16397 	rc = bnxt_alloc_ring(bp, &ring->ring_mem);
16398 	if (rc)
16399 		goto err_free_rx_ring;
16400 
16401 	if (bp->flags & BNXT_FLAG_AGG_RINGS) {
16402 		ring = &clone->rx_agg_ring_struct;
16403 		rc = bnxt_alloc_ring(bp, &ring->ring_mem);
16404 		if (rc)
16405 			goto err_free_rx_agg_ring;
16406 
16407 		rc = bnxt_alloc_rx_agg_bmap(bp, clone);
16408 		if (rc)
16409 			goto err_free_rx_agg_ring;
16410 	}
16411 
16412 	if (bp->flags & BNXT_FLAG_TPA) {
16413 		rc = bnxt_alloc_one_tpa_info(bp, clone);
16414 		if (rc)
16415 			goto err_free_tpa_info;
16416 	}
16417 
16418 	bnxt_init_one_rx_ring_rxbd(bp, clone);
16419 	bnxt_init_one_rx_agg_ring_rxbd(bp, clone);
16420 
16421 	bnxt_alloc_one_rx_ring_skb(bp, clone, idx);
16422 	if (bp->flags & BNXT_FLAG_AGG_RINGS)
16423 		bnxt_alloc_one_rx_ring_netmem(bp, clone, idx);
16424 	if (bp->flags & BNXT_FLAG_TPA) {
16425 		rc = bnxt_alloc_one_tpa_info_data(bp, clone);
16426 		if (rc)
16427 			goto err_free_rx_ring_skbs;
16428 	}
16429 
16430 	return 0;
16431 
16432 err_free_rx_ring_skbs:
16433 	bnxt_free_one_rx_ring_skbs(bp, clone);
16434 err_free_tpa_info:
16435 	bnxt_free_one_tpa_info(bp, clone);
16436 err_free_rx_agg_ring:
16437 	bnxt_free_ring(bp, &clone->rx_agg_ring_struct.ring_mem);
16438 	kfree(clone->rx_agg_bmap);
16439 	clone->rx_agg_bmap = NULL;
16440 err_free_rx_ring:
16441 	bnxt_free_ring(bp, &clone->rx_ring_struct.ring_mem);
16442 err_rxq_info_unreg:
16443 	xdp_rxq_info_unreg(&clone->xdp_rxq);
16444 err_page_pool_destroy:
16445 	page_pool_destroy(clone->page_pool);
16446 	page_pool_destroy(clone->head_pool);
16447 	clone->page_pool = NULL;
16448 	clone->head_pool = NULL;
16449 	return rc;
16450 }
16451 
bnxt_queue_mem_free(struct net_device * dev,void * qmem)16452 static void bnxt_queue_mem_free(struct net_device *dev, void *qmem)
16453 {
16454 	struct bnxt_rx_ring_info *rxr = qmem;
16455 	struct bnxt *bp = netdev_priv(dev);
16456 	struct bnxt_ring_struct *ring;
16457 
16458 	bnxt_free_one_rx_ring_skbs(bp, rxr);
16459 	bnxt_free_one_tpa_info(bp, rxr);
16460 
16461 	xdp_rxq_info_unreg(&rxr->xdp_rxq);
16462 
16463 	page_pool_destroy(rxr->page_pool);
16464 	page_pool_destroy(rxr->head_pool);
16465 	rxr->page_pool = NULL;
16466 	rxr->head_pool = NULL;
16467 
16468 	ring = &rxr->rx_ring_struct;
16469 	bnxt_free_ring(bp, &ring->ring_mem);
16470 
16471 	ring = &rxr->rx_agg_ring_struct;
16472 	bnxt_free_ring(bp, &ring->ring_mem);
16473 
16474 	kfree(rxr->rx_agg_bmap);
16475 	rxr->rx_agg_bmap = NULL;
16476 }
16477 
bnxt_copy_rx_ring(struct bnxt * bp,struct bnxt_rx_ring_info * dst,struct bnxt_rx_ring_info * src)16478 static void bnxt_copy_rx_ring(struct bnxt *bp,
16479 			      struct bnxt_rx_ring_info *dst,
16480 			      struct bnxt_rx_ring_info *src)
16481 {
16482 	struct bnxt_ring_mem_info *dst_rmem, *src_rmem;
16483 	struct bnxt_ring_struct *dst_ring, *src_ring;
16484 	int i;
16485 
16486 	dst_ring = &dst->rx_ring_struct;
16487 	dst_rmem = &dst_ring->ring_mem;
16488 	src_ring = &src->rx_ring_struct;
16489 	src_rmem = &src_ring->ring_mem;
16490 
16491 	WARN_ON(dst_rmem->nr_pages != src_rmem->nr_pages);
16492 	WARN_ON(dst_rmem->page_size != src_rmem->page_size);
16493 	WARN_ON(dst_rmem->flags != src_rmem->flags);
16494 	WARN_ON(dst_rmem->depth != src_rmem->depth);
16495 	WARN_ON(dst_rmem->vmem_size != src_rmem->vmem_size);
16496 	WARN_ON(dst_rmem->ctx_mem != src_rmem->ctx_mem);
16497 
16498 	dst_rmem->pg_tbl = src_rmem->pg_tbl;
16499 	dst_rmem->pg_tbl_map = src_rmem->pg_tbl_map;
16500 	*dst_rmem->vmem = *src_rmem->vmem;
16501 	for (i = 0; i < dst_rmem->nr_pages; i++) {
16502 		dst_rmem->pg_arr[i] = src_rmem->pg_arr[i];
16503 		dst_rmem->dma_arr[i] = src_rmem->dma_arr[i];
16504 	}
16505 
16506 	if (!(bp->flags & BNXT_FLAG_AGG_RINGS))
16507 		return;
16508 
16509 	dst_ring = &dst->rx_agg_ring_struct;
16510 	dst_rmem = &dst_ring->ring_mem;
16511 	src_ring = &src->rx_agg_ring_struct;
16512 	src_rmem = &src_ring->ring_mem;
16513 
16514 	dst->rx_page_size = src->rx_page_size;
16515 
16516 	WARN_ON(dst_rmem->nr_pages != src_rmem->nr_pages);
16517 	WARN_ON(dst_rmem->page_size != src_rmem->page_size);
16518 	WARN_ON(dst_rmem->flags != src_rmem->flags);
16519 	WARN_ON(dst_rmem->depth != src_rmem->depth);
16520 	WARN_ON(dst_rmem->vmem_size != src_rmem->vmem_size);
16521 	WARN_ON(dst_rmem->ctx_mem != src_rmem->ctx_mem);
16522 	WARN_ON(dst->rx_agg_bmap_size != src->rx_agg_bmap_size);
16523 
16524 	dst_rmem->pg_tbl = src_rmem->pg_tbl;
16525 	dst_rmem->pg_tbl_map = src_rmem->pg_tbl_map;
16526 	*dst_rmem->vmem = *src_rmem->vmem;
16527 	for (i = 0; i < dst_rmem->nr_pages; i++) {
16528 		dst_rmem->pg_arr[i] = src_rmem->pg_arr[i];
16529 		dst_rmem->dma_arr[i] = src_rmem->dma_arr[i];
16530 	}
16531 
16532 	dst->rx_agg_bmap = src->rx_agg_bmap;
16533 }
16534 
bnxt_queue_start(struct net_device * dev,struct netdev_queue_config * qcfg,void * qmem,int idx)16535 static int bnxt_queue_start(struct net_device *dev,
16536 			    struct netdev_queue_config *qcfg,
16537 			    void *qmem, int idx)
16538 {
16539 	struct bnxt *bp = netdev_priv(dev);
16540 	struct bnxt_rx_ring_info *rxr, *clone;
16541 	struct bnxt_cp_ring_info *cpr;
16542 	struct bnxt_vnic_info *vnic;
16543 	struct bnxt_napi *bnapi;
16544 	int i, rc;
16545 	u16 mru;
16546 
16547 	rxr = &bp->rx_ring[idx];
16548 	clone = qmem;
16549 
16550 	rxr->rx_prod = clone->rx_prod;
16551 	rxr->rx_agg_prod = clone->rx_agg_prod;
16552 	rxr->rx_sw_agg_prod = clone->rx_sw_agg_prod;
16553 	rxr->rx_next_cons = clone->rx_next_cons;
16554 	rxr->rx_tpa = clone->rx_tpa;
16555 	rxr->rx_tpa_idx_map = clone->rx_tpa_idx_map;
16556 	rxr->page_pool = clone->page_pool;
16557 	rxr->head_pool = clone->head_pool;
16558 	rxr->xdp_rxq = clone->xdp_rxq;
16559 	rxr->need_head_pool = clone->need_head_pool;
16560 
16561 	bnxt_copy_rx_ring(bp, rxr, clone);
16562 
16563 	bnapi = rxr->bnapi;
16564 	cpr = &bnapi->cp_ring;
16565 
16566 	/* All rings have been reserved and previously allocated.
16567 	 * Reallocating with the same parameters should never fail.
16568 	 */
16569 	rc = bnxt_hwrm_rx_ring_alloc(bp, rxr);
16570 	if (rc)
16571 		goto err_reset;
16572 
16573 	if (bp->tph_mode) {
16574 		rc = bnxt_hwrm_cp_ring_alloc_p5(bp, rxr->rx_cpr);
16575 		if (rc)
16576 			goto err_reset;
16577 	}
16578 
16579 	rc = bnxt_hwrm_rx_agg_ring_alloc(bp, rxr);
16580 	if (rc)
16581 		goto err_reset;
16582 
16583 	bnxt_db_write(bp, &rxr->rx_db, rxr->rx_prod);
16584 	if (bp->flags & BNXT_FLAG_AGG_RINGS)
16585 		bnxt_db_write(bp, &rxr->rx_agg_db, rxr->rx_agg_prod);
16586 
16587 	if (bp->flags & BNXT_FLAG_SHARED_RINGS) {
16588 		rc = bnxt_tx_queue_start(bp, idx);
16589 		if (rc)
16590 			goto err_reset;
16591 	}
16592 
16593 	bnxt_enable_rx_page_pool(rxr);
16594 	napi_enable_locked(&bnapi->napi);
16595 	bnxt_db_nq_arm(bp, &cpr->cp_db, cpr->cp_raw_cons);
16596 
16597 	mru = bp->dev->mtu + VLAN_ETH_HLEN;
16598 	for (i = 0; i < bp->nr_vnics; i++) {
16599 		vnic = &bp->vnic_info[i];
16600 
16601 		rc = bnxt_set_vnic_mru_p5(bp, vnic, mru, idx);
16602 		if (rc)
16603 			return rc;
16604 	}
16605 	return bnxt_set_rss_ctx_vnic_mru(bp, mru, idx);
16606 
16607 err_reset:
16608 	netdev_err(bp->dev, "Unexpected HWRM error during queue start rc: %d\n",
16609 		   rc);
16610 	napi_enable_locked(&bnapi->napi);
16611 	bnxt_db_nq_arm(bp, &cpr->cp_db, cpr->cp_raw_cons);
16612 	netif_close(dev);
16613 	return rc;
16614 }
16615 
bnxt_queue_stop(struct net_device * dev,void * qmem,int idx)16616 static int bnxt_queue_stop(struct net_device *dev, void *qmem, int idx)
16617 {
16618 	struct bnxt *bp = netdev_priv(dev);
16619 	struct bnxt_rx_ring_info *rxr;
16620 	struct bnxt_cp_ring_info *cpr;
16621 	struct bnxt_vnic_info *vnic;
16622 	struct bnxt_napi *bnapi;
16623 	int i;
16624 
16625 	for (i = 0; i < bp->nr_vnics; i++) {
16626 		vnic = &bp->vnic_info[i];
16627 
16628 		bnxt_set_vnic_mru_p5(bp, vnic, 0, idx);
16629 	}
16630 	bnxt_set_rss_ctx_vnic_mru(bp, 0, idx);
16631 	/* Make sure NAPI sees that the VNIC is disabled */
16632 	synchronize_net();
16633 	rxr = &bp->rx_ring[idx];
16634 	bnapi = rxr->bnapi;
16635 	cpr = &bnapi->cp_ring;
16636 	cancel_work_sync(&cpr->dim.work);
16637 	bnxt_hwrm_rx_ring_free(bp, rxr, false);
16638 	bnxt_hwrm_rx_agg_ring_free(bp, rxr, false);
16639 	page_pool_disable_direct_recycling(rxr->page_pool);
16640 	if (bnxt_separate_head_pool(rxr))
16641 		page_pool_disable_direct_recycling(rxr->head_pool);
16642 
16643 	if (bp->flags & BNXT_FLAG_SHARED_RINGS)
16644 		bnxt_tx_queue_stop(bp, idx);
16645 
16646 	/* Disable NAPI now after freeing the rings because HWRM_RING_FREE
16647 	 * completion is handled in NAPI to guarantee no more DMA on that ring
16648 	 * after seeing the completion.
16649 	 */
16650 	napi_disable_locked(&bnapi->napi);
16651 
16652 	if (bp->tph_mode) {
16653 		bnxt_hwrm_cp_ring_free(bp, rxr->rx_cpr);
16654 		bnxt_clear_one_cp_ring(bp, rxr->rx_cpr);
16655 	}
16656 	bnxt_db_nq(bp, &cpr->cp_db, cpr->cp_raw_cons);
16657 
16658 	memcpy(qmem, rxr, sizeof(*rxr));
16659 	bnxt_init_rx_ring_struct(bp, qmem);
16660 
16661 	return 0;
16662 }
16663 
16664 static const struct netdev_queue_mgmt_ops bnxt_queue_mgmt_ops = {
16665 	.ndo_queue_mem_size	= sizeof(struct bnxt_rx_ring_info),
16666 	.ndo_queue_mem_alloc	= bnxt_queue_mem_alloc,
16667 	.ndo_queue_mem_free	= bnxt_queue_mem_free,
16668 	.ndo_queue_start	= bnxt_queue_start,
16669 	.ndo_queue_stop		= bnxt_queue_stop,
16670 	.ndo_default_qcfg	= bnxt_queue_default_qcfg,
16671 	.ndo_validate_qcfg	= bnxt_validate_qcfg,
16672 	.supported_params	= QCFG_RX_PAGE_SIZE,
16673 };
16674 
16675 static const struct netdev_queue_mgmt_ops bnxt_queue_mgmt_ops_unsupp = {
16676 	.ndo_default_qcfg	= bnxt_queue_default_qcfg,
16677 };
16678 
bnxt_remove_one(struct pci_dev * pdev)16679 static void bnxt_remove_one(struct pci_dev *pdev)
16680 {
16681 	struct net_device *dev = pci_get_drvdata(pdev);
16682 	struct bnxt *bp = netdev_priv(dev);
16683 
16684 	if (BNXT_PF(bp))
16685 		__bnxt_sriov_disable(bp);
16686 
16687 	bnxt_aux_devices_del(bp);
16688 
16689 	unregister_netdev(dev);
16690 	bnxt_ptp_clear(bp);
16691 
16692 	bnxt_aux_devices_uninit(bp);
16693 	bnxt_auxdev_id_free(bp, bp->auxdev_id);
16694 
16695 	bnxt_free_l2_filters(bp, true);
16696 	bnxt_free_ntp_fltrs(bp, true);
16697 	WARN_ON(bp->num_rss_ctx);
16698 	clear_bit(BNXT_STATE_IN_FW_RESET, &bp->state);
16699 	/* Flush any pending tasks */
16700 	cancel_work_sync(&bp->sp_task);
16701 	cancel_delayed_work_sync(&bp->fw_reset_task);
16702 	bp->sp_event = 0;
16703 
16704 	bnxt_dl_fw_reporters_destroy(bp);
16705 	bnxt_dl_unregister(bp);
16706 	bnxt_shutdown_tc(bp);
16707 
16708 	bnxt_clear_int_mode(bp);
16709 	bnxt_free_ring_cpu_masks(bp);
16710 	bnxt_hwrm_func_drv_unrgtr(bp);
16711 	bnxt_free_hwrm_resources(bp);
16712 	bnxt_hwmon_uninit(bp);
16713 	bnxt_ethtool_free(bp);
16714 	bnxt_dcb_free(bp);
16715 	kfree(bp->ptp_cfg);
16716 	bp->ptp_cfg = NULL;
16717 	kfree(bp->fw_health);
16718 	bp->fw_health = NULL;
16719 	bnxt_cleanup_pci(bp);
16720 	bnxt_free_ctx_mem(bp, true);
16721 	bnxt_free_crash_dump_mem(bp);
16722 	kfree(bp->rss_indir_tbl);
16723 	bp->rss_indir_tbl = NULL;
16724 	bnxt_free_port_stats(bp);
16725 	free_netdev(dev);
16726 }
16727 
bnxt_probe_phy(struct bnxt * bp,bool fw_dflt)16728 static int bnxt_probe_phy(struct bnxt *bp, bool fw_dflt)
16729 {
16730 	int rc = 0;
16731 	struct bnxt_link_info *link_info = &bp->link_info;
16732 
16733 	bp->phy_flags = 0;
16734 	rc = bnxt_hwrm_phy_qcaps(bp);
16735 	if (rc) {
16736 		netdev_err(bp->dev, "Probe phy can't get phy capabilities (rc: %x)\n",
16737 			   rc);
16738 		return rc;
16739 	}
16740 	if (bp->phy_flags & BNXT_PHY_FL_NO_FCS)
16741 		bp->dev->priv_flags |= IFF_SUPP_NOFCS;
16742 	else
16743 		bp->dev->priv_flags &= ~IFF_SUPP_NOFCS;
16744 
16745 	bp->mac_flags = 0;
16746 	bnxt_hwrm_mac_qcaps(bp);
16747 
16748 	if (!fw_dflt)
16749 		return 0;
16750 
16751 	mutex_lock(&bp->link_lock);
16752 	rc = bnxt_update_link(bp, false);
16753 	if (rc) {
16754 		mutex_unlock(&bp->link_lock);
16755 		netdev_err(bp->dev, "Probe phy can't update link (rc: %x)\n",
16756 			   rc);
16757 		return rc;
16758 	}
16759 
16760 	/* Older firmware does not have supported_auto_speeds, so assume
16761 	 * that all supported speeds can be autonegotiated.
16762 	 */
16763 	if (link_info->auto_link_speeds && !link_info->support_auto_speeds)
16764 		link_info->support_auto_speeds = link_info->support_speeds;
16765 
16766 	bnxt_init_ethtool_link_settings(bp);
16767 	mutex_unlock(&bp->link_lock);
16768 	return 0;
16769 }
16770 
bnxt_get_max_irq(struct pci_dev * pdev)16771 static int bnxt_get_max_irq(struct pci_dev *pdev)
16772 {
16773 	u16 ctrl;
16774 
16775 	if (!pdev->msix_cap)
16776 		return 1;
16777 
16778 	pci_read_config_word(pdev, pdev->msix_cap + PCI_MSIX_FLAGS, &ctrl);
16779 	return (ctrl & PCI_MSIX_FLAGS_QSIZE) + 1;
16780 }
16781 
_bnxt_get_max_rings(struct bnxt * bp,int * max_rx,int * max_tx,int * max_cp)16782 static void _bnxt_get_max_rings(struct bnxt *bp, int *max_rx, int *max_tx,
16783 				int *max_cp)
16784 {
16785 	struct bnxt_hw_resc *hw_resc = &bp->hw_resc;
16786 	int max_ring_grps = 0, max_irq;
16787 
16788 	*max_tx = hw_resc->max_tx_rings;
16789 	*max_rx = hw_resc->max_rx_rings;
16790 	*max_cp = bnxt_get_max_func_cp_rings_for_en(bp);
16791 	max_irq = min_t(int, bnxt_get_max_func_irqs(bp) -
16792 			bnxt_get_ulp_msix_num_in_use(bp),
16793 			hw_resc->max_stat_ctxs -
16794 			bnxt_get_ulp_stat_ctxs_in_use(bp));
16795 	if (!(bp->flags & BNXT_FLAG_CHIP_P5_PLUS))
16796 		*max_cp = min_t(int, *max_cp, max_irq);
16797 	max_ring_grps = hw_resc->max_hw_ring_grps;
16798 	if (BNXT_CHIP_TYPE_NITRO_A0(bp) && BNXT_PF(bp)) {
16799 		*max_cp -= 1;
16800 		*max_rx -= 2;
16801 	}
16802 	if (bp->flags & BNXT_FLAG_AGG_RINGS)
16803 		*max_rx >>= 1;
16804 	if (bp->flags & BNXT_FLAG_CHIP_P5_PLUS) {
16805 		int rc;
16806 
16807 		rc = __bnxt_trim_rings(bp, max_rx, max_tx, *max_cp, false);
16808 		if (rc) {
16809 			*max_rx = 0;
16810 			*max_tx = 0;
16811 		}
16812 		/* On P5 chips, max_cp output param should be available NQs */
16813 		*max_cp = max_irq;
16814 	}
16815 	*max_rx = min_t(int, *max_rx, max_ring_grps);
16816 }
16817 
bnxt_get_max_rings(struct bnxt * bp,int * max_rx,int * max_tx,bool shared)16818 int bnxt_get_max_rings(struct bnxt *bp, int *max_rx, int *max_tx, bool shared)
16819 {
16820 	int rx, tx, cp;
16821 
16822 	_bnxt_get_max_rings(bp, &rx, &tx, &cp);
16823 	*max_rx = rx;
16824 	*max_tx = tx;
16825 	if (!rx || !tx || !cp)
16826 		return -ENOMEM;
16827 
16828 	return bnxt_trim_rings(bp, max_rx, max_tx, cp, shared);
16829 }
16830 
bnxt_get_dflt_rings(struct bnxt * bp,int * max_rx,int * max_tx,bool shared)16831 static int bnxt_get_dflt_rings(struct bnxt *bp, int *max_rx, int *max_tx,
16832 			       bool shared)
16833 {
16834 	int rc;
16835 
16836 	rc = bnxt_get_max_rings(bp, max_rx, max_tx, shared);
16837 	if (rc && (bp->flags & BNXT_FLAG_AGG_RINGS)) {
16838 		/* Not enough rings, try disabling agg rings. */
16839 		bp->flags &= ~BNXT_FLAG_AGG_RINGS;
16840 		rc = bnxt_get_max_rings(bp, max_rx, max_tx, shared);
16841 		if (rc) {
16842 			/* set BNXT_FLAG_AGG_RINGS back for consistency */
16843 			bp->flags |= BNXT_FLAG_AGG_RINGS;
16844 			return rc;
16845 		}
16846 		bp->flags |= BNXT_FLAG_NO_AGG_RINGS;
16847 		bp->dev->hw_features &= ~(NETIF_F_LRO | NETIF_F_GRO_HW);
16848 		bp->dev->features &= ~(NETIF_F_LRO | NETIF_F_GRO_HW);
16849 		bnxt_set_ring_params(bp);
16850 	}
16851 
16852 	if (bp->flags & BNXT_FLAG_ROCE_CAP) {
16853 		int max_cp, max_stat, max_irq;
16854 
16855 		/* Reserve minimum resources for RoCE */
16856 		max_cp = bnxt_get_max_func_cp_rings(bp);
16857 		max_stat = bnxt_get_max_func_stat_ctxs(bp);
16858 		max_irq = bnxt_get_max_func_irqs(bp);
16859 		if (max_cp <= BNXT_MIN_ROCE_CP_RINGS ||
16860 		    max_irq <= BNXT_MIN_ROCE_CP_RINGS ||
16861 		    max_stat <= BNXT_MIN_ROCE_STAT_CTXS)
16862 			return 0;
16863 
16864 		max_cp -= BNXT_MIN_ROCE_CP_RINGS;
16865 		max_irq -= BNXT_MIN_ROCE_CP_RINGS;
16866 		max_stat -= BNXT_MIN_ROCE_STAT_CTXS;
16867 		max_cp = min_t(int, max_cp, max_irq);
16868 		max_cp = min_t(int, max_cp, max_stat);
16869 		rc = bnxt_trim_rings(bp, max_rx, max_tx, max_cp, shared);
16870 		if (rc)
16871 			rc = 0;
16872 	}
16873 	return rc;
16874 }
16875 
16876 /* In initial default shared ring setting, each shared ring must have a
16877  * RX/TX ring pair.
16878  */
bnxt_trim_dflt_sh_rings(struct bnxt * bp)16879 static void bnxt_trim_dflt_sh_rings(struct bnxt *bp)
16880 {
16881 	bp->cp_nr_rings = min_t(int, bp->tx_nr_rings_per_tc, bp->rx_nr_rings);
16882 	bp->rx_nr_rings = bp->cp_nr_rings;
16883 	bp->tx_nr_rings_per_tc = bp->cp_nr_rings;
16884 	bp->tx_nr_rings = bnxt_tx_nr_rings(bp);
16885 }
16886 
bnxt_adj_dflt_rings(struct bnxt * bp,bool sh)16887 static void bnxt_adj_dflt_rings(struct bnxt *bp, bool sh)
16888 {
16889 	if (sh)
16890 		bnxt_trim_dflt_sh_rings(bp);
16891 	else
16892 		bp->cp_nr_rings = bp->tx_nr_rings_per_tc + bp->rx_nr_rings;
16893 	bp->tx_nr_rings = bnxt_tx_nr_rings(bp);
16894 	if (sh && READ_ONCE(bp->xdp_prog)) {
16895 		bnxt_set_xdp_tx_rings(bp);
16896 		bnxt_set_cp_rings(bp, true);
16897 	}
16898 }
16899 
bnxt_set_dflt_rings(struct bnxt * bp,bool sh)16900 static int bnxt_set_dflt_rings(struct bnxt *bp, bool sh)
16901 {
16902 	int dflt_rings, max_rx_rings, max_tx_rings, rc;
16903 	int avail_msix;
16904 
16905 	if (!bnxt_can_reserve_rings(bp))
16906 		return 0;
16907 
16908 	if (sh)
16909 		bp->flags |= BNXT_FLAG_SHARED_RINGS;
16910 	dflt_rings = is_kdump_kernel() ? 1 : netif_get_num_default_rss_queues();
16911 	/* Reduce default rings on multi-port cards so that total default
16912 	 * rings do not exceed CPU count.
16913 	 */
16914 	if (bp->port_count > 1) {
16915 		int max_rings =
16916 			max_t(int, num_online_cpus() / bp->port_count, 1);
16917 
16918 		dflt_rings = min_t(int, dflt_rings, max_rings);
16919 	}
16920 	rc = bnxt_get_dflt_rings(bp, &max_rx_rings, &max_tx_rings, sh);
16921 	if (rc)
16922 		return rc;
16923 	bp->rx_nr_rings = min_t(int, dflt_rings, max_rx_rings);
16924 	bp->tx_nr_rings_per_tc = min_t(int, dflt_rings, max_tx_rings);
16925 
16926 	bnxt_adj_dflt_rings(bp, sh);
16927 
16928 	avail_msix = bnxt_get_max_func_irqs(bp) - bp->cp_nr_rings;
16929 	if (avail_msix >= BNXT_MIN_ROCE_CP_RINGS) {
16930 		int ulp_num_msix = min(avail_msix, bp->ulp_num_msix_want);
16931 
16932 		bnxt_set_ulp_msix_num(bp, ulp_num_msix);
16933 		bnxt_set_dflt_ulp_stat_ctxs(bp);
16934 	}
16935 
16936 	rc = __bnxt_reserve_rings(bp);
16937 	if (rc && rc != -ENODEV)
16938 		netdev_warn(bp->dev, "Unable to reserve tx rings\n");
16939 
16940 	bnxt_adj_tx_rings(bp);
16941 	if (sh)
16942 		bnxt_adj_dflt_rings(bp, true);
16943 
16944 	/* Rings may have been trimmed, re-reserve the trimmed rings. */
16945 	if (bnxt_need_reserve_rings(bp)) {
16946 		rc = __bnxt_reserve_rings(bp);
16947 		if (rc && rc != -ENODEV)
16948 			netdev_warn(bp->dev, "2nd rings reservation failed.\n");
16949 		bnxt_adj_tx_rings(bp);
16950 	}
16951 	if (BNXT_CHIP_TYPE_NITRO_A0(bp)) {
16952 		bp->rx_nr_rings++;
16953 		bp->cp_nr_rings++;
16954 	}
16955 	if (rc) {
16956 		bp->tx_nr_rings = 0;
16957 		bp->rx_nr_rings = 0;
16958 	}
16959 	return rc;
16960 }
16961 
bnxt_init_dflt_ring_mode(struct bnxt * bp)16962 static int bnxt_init_dflt_ring_mode(struct bnxt *bp)
16963 {
16964 	int rc;
16965 
16966 	if (bp->tx_nr_rings)
16967 		return 0;
16968 
16969 	bnxt_ulp_irq_stop(bp);
16970 	bnxt_clear_int_mode(bp);
16971 	rc = bnxt_set_dflt_rings(bp, true);
16972 	if (rc) {
16973 		if (BNXT_VF(bp) && rc == -ENODEV)
16974 			netdev_err(bp->dev, "Cannot configure VF rings while PF is unavailable.\n");
16975 		else
16976 			netdev_err(bp->dev, "Not enough rings available.\n");
16977 		goto init_dflt_ring_err;
16978 	}
16979 	rc = bnxt_init_int_mode(bp);
16980 	if (rc)
16981 		goto init_dflt_ring_err;
16982 
16983 	bnxt_adj_tx_rings(bp);
16984 
16985 	bnxt_set_dflt_rfs(bp);
16986 
16987 init_dflt_ring_err:
16988 	bnxt_ulp_irq_restart(bp, rc);
16989 	return rc;
16990 }
16991 
bnxt_restore_pf_fw_resources(struct bnxt * bp)16992 int bnxt_restore_pf_fw_resources(struct bnxt *bp)
16993 {
16994 	int rc;
16995 
16996 	netdev_assert_locked_ops_compat(bp->dev);
16997 	bnxt_hwrm_func_qcaps(bp);
16998 
16999 	if (netif_running(bp->dev))
17000 		__bnxt_close_nic(bp, true, false);
17001 
17002 	bnxt_ulp_irq_stop(bp);
17003 	bnxt_clear_int_mode(bp);
17004 	rc = bnxt_init_int_mode(bp);
17005 	bnxt_ulp_irq_restart(bp, rc);
17006 
17007 	if (netif_running(bp->dev)) {
17008 		if (rc)
17009 			netif_close(bp->dev);
17010 		else
17011 			rc = bnxt_open_nic(bp, true, false);
17012 	}
17013 
17014 	return rc;
17015 }
17016 
bnxt_init_mac_addr(struct bnxt * bp)17017 static int bnxt_init_mac_addr(struct bnxt *bp)
17018 {
17019 	int rc = 0;
17020 
17021 	if (BNXT_PF(bp)) {
17022 		eth_hw_addr_set(bp->dev, bp->pf.mac_addr);
17023 	} else {
17024 #ifdef CONFIG_BNXT_SRIOV
17025 		struct bnxt_vf_info *vf = &bp->vf;
17026 		bool strict_approval = true;
17027 
17028 		if (is_valid_ether_addr(vf->mac_addr)) {
17029 			/* overwrite netdev dev_addr with admin VF MAC */
17030 			eth_hw_addr_set(bp->dev, vf->mac_addr);
17031 			/* Older PF driver or firmware may not approve this
17032 			 * correctly.
17033 			 */
17034 			strict_approval = false;
17035 		} else {
17036 			eth_hw_addr_random(bp->dev);
17037 		}
17038 		rc = bnxt_approve_mac(bp, bp->dev->dev_addr, strict_approval);
17039 #endif
17040 	}
17041 	return rc;
17042 }
17043 
bnxt_vpd_read_info(struct bnxt * bp)17044 static void bnxt_vpd_read_info(struct bnxt *bp)
17045 {
17046 	struct pci_dev *pdev = bp->pdev;
17047 	unsigned int vpd_size, kw_len;
17048 	int pos, size;
17049 	u8 *vpd_data;
17050 
17051 	vpd_data = pci_vpd_alloc(pdev, &vpd_size);
17052 	if (IS_ERR(vpd_data)) {
17053 		pci_warn(pdev, "Unable to read VPD\n");
17054 		return;
17055 	}
17056 
17057 	pos = pci_vpd_find_ro_info_keyword(vpd_data, vpd_size,
17058 					   PCI_VPD_RO_KEYWORD_PARTNO, &kw_len);
17059 	if (pos < 0)
17060 		goto read_sn;
17061 
17062 	size = min_t(int, kw_len, BNXT_VPD_FLD_LEN - 1);
17063 	memcpy(bp->board_partno, &vpd_data[pos], size);
17064 
17065 read_sn:
17066 	pos = pci_vpd_find_ro_info_keyword(vpd_data, vpd_size,
17067 					   PCI_VPD_RO_KEYWORD_SERIALNO,
17068 					   &kw_len);
17069 	if (pos < 0)
17070 		goto exit;
17071 
17072 	size = min_t(int, kw_len, BNXT_VPD_FLD_LEN - 1);
17073 	memcpy(bp->board_serialno, &vpd_data[pos], size);
17074 exit:
17075 	kfree(vpd_data);
17076 }
17077 
bnxt_pcie_dsn_get(struct bnxt * bp,u8 dsn[])17078 static int bnxt_pcie_dsn_get(struct bnxt *bp, u8 dsn[])
17079 {
17080 	struct pci_dev *pdev = bp->pdev;
17081 	u64 qword;
17082 
17083 	qword = pci_get_dsn(pdev);
17084 	if (!qword) {
17085 		netdev_info(bp->dev, "Unable to read adapter's DSN\n");
17086 		return -EOPNOTSUPP;
17087 	}
17088 
17089 	put_unaligned_le64(qword, dsn);
17090 
17091 	bp->flags |= BNXT_FLAG_DSN_VALID;
17092 	return 0;
17093 }
17094 
bnxt_map_db_bar(struct bnxt * bp)17095 static int bnxt_map_db_bar(struct bnxt *bp)
17096 {
17097 	if (!bp->db_size)
17098 		return -ENODEV;
17099 	bp->bar1 = pci_iomap(bp->pdev, 2, bp->db_size);
17100 	if (!bp->bar1)
17101 		return -ENOMEM;
17102 	return 0;
17103 }
17104 
bnxt_print_device_info(struct bnxt * bp)17105 void bnxt_print_device_info(struct bnxt *bp)
17106 {
17107 	netdev_info(bp->dev, "%s found at mem %lx, node addr %pM\n",
17108 		    board_info[bp->board_idx].name,
17109 		    (long)pci_resource_start(bp->pdev, 0), bp->dev->dev_addr);
17110 
17111 	pcie_print_link_status(bp->pdev);
17112 }
17113 
bnxt_init_one(struct pci_dev * pdev,const struct pci_device_id * ent)17114 static int bnxt_init_one(struct pci_dev *pdev, const struct pci_device_id *ent)
17115 {
17116 	struct bnxt_hw_resc *hw_resc;
17117 	struct net_device *dev;
17118 	struct bnxt *bp;
17119 	int rc, max_irqs;
17120 
17121 	if (pci_is_bridge(pdev))
17122 		return -ENODEV;
17123 
17124 	if (!pdev->msix_cap) {
17125 		dev_err(&pdev->dev, "MSIX capability not found, aborting\n");
17126 		return -ENODEV;
17127 	}
17128 
17129 	/* Clear any pending DMA transactions from crash kernel
17130 	 * while loading driver in capture kernel.
17131 	 */
17132 	if (is_kdump_kernel()) {
17133 		pci_clear_master(pdev);
17134 		pcie_flr(pdev);
17135 	}
17136 
17137 	max_irqs = bnxt_get_max_irq(pdev);
17138 	dev = alloc_etherdev_mqs(sizeof(*bp), max_irqs * BNXT_MAX_QUEUE,
17139 				 max_irqs);
17140 	if (!dev)
17141 		return -ENOMEM;
17142 
17143 	bp = netdev_priv(dev);
17144 	bp->board_idx = ent->driver_data;
17145 	bp->msg_enable = BNXT_DEF_MSG_ENABLE;
17146 	bnxt_set_max_func_irqs(bp, max_irqs);
17147 
17148 	bp->max_irqs = max_irqs;
17149 	rc = bnxt_alloc_ring_cpu_masks(bp);
17150 	if (rc)
17151 		goto init_err_free;
17152 
17153 	if (bnxt_vf_pciid(bp->board_idx))
17154 		bp->flags |= BNXT_FLAG_VF;
17155 
17156 	/* No devlink port registration in case of a VF */
17157 	if (BNXT_PF(bp))
17158 		SET_NETDEV_DEVLINK_PORT(dev, &bp->dl_port);
17159 
17160 	rc = bnxt_init_board(pdev, dev);
17161 	if (rc < 0)
17162 		goto init_err_free;
17163 
17164 	dev->netdev_ops = &bnxt_netdev_ops;
17165 	dev->xdp_metadata_ops = &bnxt_xdp_metadata_ops;
17166 	dev->stat_ops = &bnxt_stat_ops;
17167 	dev->watchdog_timeo = BNXT_TX_TIMEOUT;
17168 	dev->ethtool_ops = &bnxt_ethtool_ops;
17169 	pci_set_drvdata(pdev, dev);
17170 
17171 	rc = bnxt_alloc_hwrm_resources(bp);
17172 	if (rc)
17173 		goto init_err_pci_clean;
17174 
17175 	mutex_init(&bp->hwrm_cmd_lock);
17176 	mutex_init(&bp->link_lock);
17177 
17178 	rc = bnxt_fw_init_one_p1(bp);
17179 	if (rc)
17180 		goto init_err_pci_clean;
17181 
17182 	if (BNXT_PF(bp))
17183 		bnxt_vpd_read_info(bp);
17184 
17185 	if (BNXT_CHIP_P5_PLUS(bp)) {
17186 		bp->flags |= BNXT_FLAG_CHIP_P5_PLUS;
17187 		if (BNXT_CHIP_P7(bp))
17188 			bp->flags |= BNXT_FLAG_CHIP_P7;
17189 	}
17190 
17191 	rc = bnxt_alloc_rss_indir_tbl(bp);
17192 	if (rc)
17193 		goto init_err_pci_clean;
17194 
17195 	rc = bnxt_fw_init_one_p2(bp);
17196 	if (rc)
17197 		goto init_err_pci_clean;
17198 
17199 	rc = bnxt_map_db_bar(bp);
17200 	if (rc) {
17201 		dev_err(&pdev->dev, "Cannot map doorbell BAR rc = %d, aborting\n",
17202 			rc);
17203 		goto init_err_pci_clean;
17204 	}
17205 
17206 	dev->hw_features = NETIF_F_IP_CSUM | NETIF_F_IPV6_CSUM | NETIF_F_SG |
17207 			   NETIF_F_TSO | NETIF_F_TSO6 | NETIF_F_TSO_ECN |
17208 			   NETIF_F_GSO_UDP_TUNNEL | NETIF_F_GSO_GRE |
17209 			   NETIF_F_GSO_IPXIP4 |
17210 			   NETIF_F_GSO_UDP_TUNNEL_CSUM | NETIF_F_GSO_GRE_CSUM |
17211 			   NETIF_F_GSO_PARTIAL | NETIF_F_RXHASH |
17212 			   NETIF_F_RXCSUM | NETIF_F_GRO;
17213 	dev->hw_features |= NETIF_F_GSO_UDP_L4;
17214 
17215 	if (BNXT_SUPPORTS_TPA(bp))
17216 		dev->hw_features |= NETIF_F_LRO;
17217 
17218 	dev->hw_enc_features =
17219 			NETIF_F_IP_CSUM | NETIF_F_IPV6_CSUM | NETIF_F_SG |
17220 			NETIF_F_TSO | NETIF_F_TSO6 | NETIF_F_TSO_ECN |
17221 			NETIF_F_GSO_UDP_TUNNEL | NETIF_F_GSO_GRE |
17222 			NETIF_F_GSO_UDP_TUNNEL_CSUM | NETIF_F_GSO_GRE_CSUM |
17223 			NETIF_F_GSO_IPXIP4 | NETIF_F_GSO_PARTIAL;
17224 	if (bp->flags & BNXT_FLAG_UDP_GSO_CAP)
17225 		dev->hw_enc_features |= NETIF_F_GSO_UDP_L4;
17226 	if (bp->flags & BNXT_FLAG_CHIP_P7)
17227 		dev->udp_tunnel_nic_info = &bnxt_udp_tunnels_p7;
17228 	else
17229 		dev->udp_tunnel_nic_info = &bnxt_udp_tunnels;
17230 
17231 	dev->gso_partial_features = NETIF_F_GSO_UDP_TUNNEL_CSUM |
17232 				    NETIF_F_GSO_GRE_CSUM;
17233 	dev->vlan_features = dev->hw_features | NETIF_F_HIGHDMA;
17234 	if (bp->fw_cap & BNXT_FW_CAP_VLAN_RX_STRIP)
17235 		dev->hw_features |= BNXT_HW_FEATURE_VLAN_ALL_RX;
17236 	if (bp->fw_cap & BNXT_FW_CAP_VLAN_TX_INSERT)
17237 		dev->hw_features |= BNXT_HW_FEATURE_VLAN_ALL_TX;
17238 	if (BNXT_SUPPORTS_TPA(bp))
17239 		dev->hw_features |= NETIF_F_GRO_HW;
17240 	dev->features |= dev->hw_features | NETIF_F_HIGHDMA;
17241 	if (dev->features & NETIF_F_GRO_HW)
17242 		dev->features &= ~NETIF_F_LRO;
17243 	dev->priv_flags |= IFF_UNICAST_FLT;
17244 
17245 	netif_set_tso_max_size(dev, GSO_MAX_SIZE);
17246 	if (!(bp->flags & BNXT_FLAG_UDP_GSO_CAP)) {
17247 		u16 max_segs = BNXT_SW_USO_MAX_SEGS;
17248 
17249 		if (bp->tso_max_segs)
17250 			max_segs = min_t(u16, max_segs, bp->tso_max_segs);
17251 		netif_set_tso_max_segs(dev, max_segs);
17252 	} else if (bp->tso_max_segs) {
17253 		netif_set_tso_max_segs(dev, bp->tso_max_segs);
17254 	}
17255 
17256 	dev->xdp_features = NETDEV_XDP_ACT_BASIC | NETDEV_XDP_ACT_REDIRECT |
17257 			    NETDEV_XDP_ACT_RX_SG;
17258 
17259 #ifdef CONFIG_BNXT_SRIOV
17260 	init_waitqueue_head(&bp->sriov_cfg_wait);
17261 #endif
17262 	if (BNXT_SUPPORTS_TPA(bp)) {
17263 		bp->gro_func = bnxt_gro_func_5730x;
17264 		if (BNXT_CHIP_P4(bp))
17265 			bp->gro_func = bnxt_gro_func_5731x;
17266 		else if (BNXT_CHIP_P5_PLUS(bp))
17267 			bp->gro_func = bnxt_gro_func_5750x;
17268 	}
17269 	if (!BNXT_CHIP_P4_PLUS(bp))
17270 		bp->flags |= BNXT_FLAG_DOUBLE_DB;
17271 
17272 	rc = bnxt_init_mac_addr(bp);
17273 	if (rc) {
17274 		dev_err(&pdev->dev, "Unable to initialize mac address.\n");
17275 		rc = -EADDRNOTAVAIL;
17276 		goto init_err_pci_clean;
17277 	}
17278 
17279 	if (BNXT_PF(bp)) {
17280 		/* Read the adapter's DSN to use as the eswitch switch_id */
17281 		rc = bnxt_pcie_dsn_get(bp, bp->dsn);
17282 	}
17283 
17284 	/* MTU range: 60 - FW defined max */
17285 	dev->min_mtu = ETH_ZLEN;
17286 	dev->max_mtu = bp->max_mtu;
17287 
17288 	rc = bnxt_probe_phy(bp, true);
17289 	if (rc)
17290 		goto init_err_pci_clean;
17291 
17292 	hw_resc = &bp->hw_resc;
17293 	bp->max_fltr = hw_resc->max_rx_em_flows + hw_resc->max_rx_wm_flows +
17294 		       BNXT_L2_FLTR_MAX_FLTR;
17295 	/* Older firmware may not report these filters properly */
17296 	if (bp->max_fltr < BNXT_MAX_FLTR)
17297 		bp->max_fltr = BNXT_MAX_FLTR;
17298 	bnxt_init_l2_fltr_tbl(bp);
17299 	__bnxt_set_rx_skb_mode(bp, false);
17300 	bnxt_set_tpa_flags(bp);
17301 	bnxt_init_ring_params(bp);
17302 	bnxt_set_ring_params(bp);
17303 	mutex_init(&bp->auxdev_lock);
17304 	if (!bnxt_auxdev_id_alloc(bp))
17305 		bnxt_aux_devices_init(bp);
17306 	rc = bnxt_set_dflt_rings(bp, true);
17307 	if (rc) {
17308 		if (BNXT_VF(bp) && rc == -ENODEV) {
17309 			netdev_err(bp->dev, "Cannot configure VF rings while PF is unavailable.\n");
17310 		} else {
17311 			netdev_err(bp->dev, "Not enough rings available.\n");
17312 			rc = -ENOMEM;
17313 		}
17314 		goto init_err_pci_clean;
17315 	}
17316 
17317 	bnxt_fw_init_one_p3(bp);
17318 
17319 	bnxt_init_dflt_coal(bp);
17320 
17321 	if (dev->hw_features & BNXT_HW_FEATURE_VLAN_ALL_RX)
17322 		bp->flags |= BNXT_FLAG_STRIP_VLAN;
17323 
17324 	rc = bnxt_init_int_mode(bp);
17325 	if (rc)
17326 		goto init_err_pci_clean;
17327 
17328 	/* No TC has been set yet and rings may have been trimmed due to
17329 	 * limited MSIX, so we re-initialize the TX rings per TC.
17330 	 */
17331 	bp->tx_nr_rings_per_tc = bp->tx_nr_rings;
17332 
17333 	if (BNXT_PF(bp)) {
17334 		if (!bnxt_pf_wq) {
17335 			bnxt_pf_wq =
17336 				create_singlethread_workqueue("bnxt_pf_wq");
17337 			if (!bnxt_pf_wq) {
17338 				dev_err(&pdev->dev, "Unable to create workqueue.\n");
17339 				rc = -ENOMEM;
17340 				goto init_err_pci_clean;
17341 			}
17342 		}
17343 		rc = bnxt_init_tc(bp);
17344 		if (rc)
17345 			netdev_err(dev, "Failed to initialize TC flower offload, err = %d.\n",
17346 				   rc);
17347 	}
17348 
17349 	bnxt_inv_fw_health_reg(bp);
17350 	rc = bnxt_dl_register(bp);
17351 	if (rc)
17352 		goto init_err_dl;
17353 
17354 	INIT_LIST_HEAD(&bp->usr_fltr_list);
17355 
17356 	if (BNXT_SUPPORTS_NTUPLE_VNIC(bp))
17357 		bp->rss_cap |= BNXT_RSS_CAP_MULTI_RSS_CTX;
17358 
17359 	dev->queue_mgmt_ops = &bnxt_queue_mgmt_ops_unsupp;
17360 	if (BNXT_SUPPORTS_QUEUE_API(bp))
17361 		dev->queue_mgmt_ops = &bnxt_queue_mgmt_ops;
17362 	dev->netmem_tx = NETMEM_TX_DMA;
17363 
17364 	rc = register_netdev(dev);
17365 	if (rc)
17366 		goto init_err_cleanup;
17367 
17368 	bnxt_dl_fw_reporters_create(bp);
17369 
17370 	bnxt_aux_devices_add(bp);
17371 
17372 	bnxt_print_device_info(bp);
17373 
17374 	pci_save_state(pdev);
17375 
17376 	return 0;
17377 init_err_cleanup:
17378 	bnxt_aux_devices_uninit(bp);
17379 	bnxt_auxdev_id_free(bp, bp->auxdev_id);
17380 	bnxt_dl_unregister(bp);
17381 init_err_dl:
17382 	bnxt_shutdown_tc(bp);
17383 	bnxt_clear_int_mode(bp);
17384 
17385 init_err_pci_clean:
17386 	bnxt_hwrm_func_drv_unrgtr(bp);
17387 	bnxt_ptp_clear(bp);
17388 	kfree(bp->ptp_cfg);
17389 	bp->ptp_cfg = NULL;
17390 	bnxt_free_hwrm_resources(bp);
17391 	bnxt_hwmon_uninit(bp);
17392 	bnxt_ethtool_free(bp);
17393 	kfree(bp->fw_health);
17394 	bp->fw_health = NULL;
17395 	bnxt_cleanup_pci(bp);
17396 	bnxt_free_ctx_mem(bp, true);
17397 	bnxt_free_crash_dump_mem(bp);
17398 	kfree(bp->rss_indir_tbl);
17399 	bp->rss_indir_tbl = NULL;
17400 
17401 init_err_free:
17402 	bnxt_free_ring_cpu_masks(bp);
17403 	free_netdev(dev);
17404 	return rc;
17405 }
17406 
bnxt_shutdown(struct pci_dev * pdev)17407 static void bnxt_shutdown(struct pci_dev *pdev)
17408 {
17409 	struct net_device *dev = pci_get_drvdata(pdev);
17410 	struct bnxt *bp;
17411 
17412 	if (!dev)
17413 		return;
17414 
17415 	rtnl_lock();
17416 	netdev_lock(dev);
17417 	bp = netdev_priv(dev);
17418 	if (!bp)
17419 		goto shutdown_exit;
17420 
17421 	if (netif_running(dev))
17422 		netif_close(dev);
17423 
17424 	if (bnxt_hwrm_func_drv_unrgtr(bp)) {
17425 		pcie_flr(pdev);
17426 		goto shutdown_exit;
17427 	}
17428 	bnxt_ptp_clear(bp);
17429 	bnxt_clear_int_mode(bp);
17430 	pci_disable_device(pdev);
17431 
17432 	if (system_state == SYSTEM_POWER_OFF) {
17433 		pci_wake_from_d3(pdev, bp->wol);
17434 		pci_set_power_state(pdev, PCI_D3hot);
17435 	}
17436 
17437 shutdown_exit:
17438 	netdev_unlock(dev);
17439 	rtnl_unlock();
17440 }
17441 
17442 #ifdef CONFIG_PM_SLEEP
bnxt_suspend(struct device * device)17443 static int bnxt_suspend(struct device *device)
17444 {
17445 	struct net_device *dev = dev_get_drvdata(device);
17446 	struct bnxt *bp = netdev_priv(dev);
17447 	int rc = 0;
17448 
17449 	bnxt_ulp_stop(bp);
17450 
17451 	netdev_lock(dev);
17452 	if (netif_running(dev)) {
17453 		netif_device_detach(dev);
17454 		rc = bnxt_close(dev);
17455 	}
17456 	bnxt_hwrm_func_drv_unrgtr(bp);
17457 	bnxt_ptp_clear(bp);
17458 	pci_disable_device(bp->pdev);
17459 	bnxt_free_ctx_mem(bp, false);
17460 	netdev_unlock(dev);
17461 	return rc;
17462 }
17463 
bnxt_resume(struct device * device)17464 static int bnxt_resume(struct device *device)
17465 {
17466 	struct net_device *dev = dev_get_drvdata(device);
17467 	struct bnxt *bp = netdev_priv(dev);
17468 	int rc = 0;
17469 
17470 	rtnl_lock();
17471 	netdev_lock(dev);
17472 	rc = pci_enable_device(bp->pdev);
17473 	if (rc) {
17474 		netdev_err(dev, "Cannot re-enable PCI device during resume, err = %d\n",
17475 			   rc);
17476 		goto resume_exit;
17477 	}
17478 	pci_set_master(bp->pdev);
17479 	if (bnxt_hwrm_ver_get(bp)) {
17480 		rc = -ENODEV;
17481 		goto resume_exit;
17482 	}
17483 	rc = bnxt_hwrm_func_reset(bp);
17484 	if (rc) {
17485 		rc = -EBUSY;
17486 		goto resume_exit;
17487 	}
17488 
17489 	rc = bnxt_hwrm_func_qcaps(bp);
17490 	if (rc)
17491 		goto resume_exit;
17492 
17493 	bnxt_clear_reservations(bp, true);
17494 
17495 	if (bnxt_hwrm_func_drv_rgtr(bp, NULL, 0, false)) {
17496 		rc = -ENODEV;
17497 		goto resume_exit;
17498 	}
17499 	if (bp->fw_crash_mem)
17500 		bnxt_hwrm_crash_dump_mem_cfg(bp);
17501 
17502 	if (bnxt_ptp_init(bp)) {
17503 		kfree(bp->ptp_cfg);
17504 		bp->ptp_cfg = NULL;
17505 	}
17506 	bnxt_get_wol_settings(bp);
17507 	if (netif_running(dev)) {
17508 		rc = bnxt_open(dev);
17509 		if (!rc)
17510 			netif_device_attach(dev);
17511 	}
17512 
17513 resume_exit:
17514 	netdev_unlock(bp->dev);
17515 	rtnl_unlock();
17516 	if (!rc) {
17517 		bnxt_ulp_start(bp);
17518 		bnxt_reenable_sriov(bp);
17519 	}
17520 	return rc;
17521 }
17522 
17523 static SIMPLE_DEV_PM_OPS(bnxt_pm_ops, bnxt_suspend, bnxt_resume);
17524 #define BNXT_PM_OPS (&bnxt_pm_ops)
17525 
17526 #else
17527 
17528 #define BNXT_PM_OPS NULL
17529 
17530 #endif /* CONFIG_PM_SLEEP */
17531 
17532 /**
17533  * bnxt_io_error_detected - called when PCI error is detected
17534  * @pdev: Pointer to PCI device
17535  * @state: The current pci connection state
17536  *
17537  * This function is called after a PCI bus error affecting
17538  * this device has been detected.
17539  */
bnxt_io_error_detected(struct pci_dev * pdev,pci_channel_state_t state)17540 static pci_ers_result_t bnxt_io_error_detected(struct pci_dev *pdev,
17541 					       pci_channel_state_t state)
17542 {
17543 	struct net_device *netdev = pci_get_drvdata(pdev);
17544 	struct bnxt *bp = netdev_priv(netdev);
17545 	bool abort = false;
17546 
17547 	netdev_info(netdev, "PCI I/O error detected\n");
17548 
17549 	bnxt_ulp_stop(bp);
17550 
17551 	netdev_lock(netdev);
17552 	netif_device_detach(netdev);
17553 
17554 	if (test_and_set_bit(BNXT_STATE_IN_FW_RESET, &bp->state)) {
17555 		netdev_err(bp->dev, "Firmware reset already in progress\n");
17556 		abort = true;
17557 	}
17558 
17559 	if (abort || state == pci_channel_io_perm_failure) {
17560 		netdev_unlock(netdev);
17561 		return PCI_ERS_RESULT_DISCONNECT;
17562 	}
17563 
17564 	/* Link is not reliable anymore if state is pci_channel_io_frozen
17565 	 * so we disable bus master to prevent any potential bad DMAs before
17566 	 * freeing kernel memory.
17567 	 */
17568 	if (state == pci_channel_io_frozen) {
17569 		set_bit(BNXT_STATE_PCI_CHANNEL_IO_FROZEN, &bp->state);
17570 		bnxt_fw_fatal_close(bp);
17571 	}
17572 
17573 	if (netif_running(netdev))
17574 		__bnxt_close_nic(bp, true, true);
17575 
17576 	if (pci_is_enabled(pdev))
17577 		pci_disable_device(pdev);
17578 	bnxt_free_ctx_mem(bp, false);
17579 	netdev_unlock(netdev);
17580 
17581 	/* Request a slot reset. */
17582 	return PCI_ERS_RESULT_NEED_RESET;
17583 }
17584 
17585 /**
17586  * bnxt_io_slot_reset - called after the pci bus has been reset.
17587  * @pdev: Pointer to PCI device
17588  *
17589  * Restart the card from scratch, as if from a cold-boot.
17590  * At this point, the card has experienced a hard reset,
17591  * followed by fixups by BIOS, and has its config space
17592  * set up identically to what it was at cold boot.
17593  */
bnxt_io_slot_reset(struct pci_dev * pdev)17594 static pci_ers_result_t bnxt_io_slot_reset(struct pci_dev *pdev)
17595 {
17596 	pci_ers_result_t result = PCI_ERS_RESULT_DISCONNECT;
17597 	struct net_device *netdev = pci_get_drvdata(pdev);
17598 	struct bnxt *bp = netdev_priv(netdev);
17599 	int retry = 0;
17600 	int err = 0;
17601 	int off;
17602 
17603 	netdev_info(bp->dev, "PCI Slot Reset\n");
17604 
17605 	if (test_bit(BNXT_STATE_PCI_CHANNEL_IO_FROZEN, &bp->state)) {
17606 		/* After DPC, the chip should return CRS when the vendor ID
17607 		 * config register is read until it is ready.  On all chips,
17608 		 * this is not happening reliably so add a 5-second delay as a
17609 		 * workaround.
17610 		 */
17611 		msleep(5000);
17612 	}
17613 
17614 	netdev_lock(netdev);
17615 
17616 	if (pci_enable_device(pdev)) {
17617 		dev_err(&pdev->dev,
17618 			"Cannot re-enable PCI device after reset.\n");
17619 	} else {
17620 		pci_set_master(pdev);
17621 		/* Upon fatal error, our device internal logic that latches to
17622 		 * BAR value is getting reset and will restore only upon
17623 		 * rewriting the BARs.
17624 		 *
17625 		 * As pci_restore_state() does not re-write the BARs if the
17626 		 * value is same as saved value earlier, driver needs to
17627 		 * write the BARs to 0 to force restore, in case of fatal error.
17628 		 */
17629 		if (test_and_clear_bit(BNXT_STATE_PCI_CHANNEL_IO_FROZEN,
17630 				       &bp->state)) {
17631 			for (off = PCI_BASE_ADDRESS_0;
17632 			     off <= PCI_BASE_ADDRESS_5; off += 4)
17633 				pci_write_config_dword(bp->pdev, off, 0);
17634 		}
17635 		pci_restore_state(pdev);
17636 
17637 		bnxt_inv_fw_health_reg(bp);
17638 		bnxt_try_map_fw_health_reg(bp);
17639 
17640 		/* In some PCIe AER scenarios, firmware may take up to
17641 		 * 10 seconds to become ready in the worst case.
17642 		 */
17643 		do {
17644 			err = bnxt_try_recover_fw(bp);
17645 			if (!err)
17646 				break;
17647 			retry++;
17648 		} while (retry < BNXT_FW_SLOT_RESET_RETRY);
17649 
17650 		if (err) {
17651 			dev_err(&pdev->dev, "Firmware not ready\n");
17652 			goto reset_exit;
17653 		}
17654 
17655 		err = bnxt_hwrm_func_reset(bp);
17656 		if (!err)
17657 			result = PCI_ERS_RESULT_RECOVERED;
17658 
17659 		/* IRQ will be initialized later in bnxt_io_resume */
17660 		bnxt_ulp_irq_stop(bp);
17661 		bnxt_clear_int_mode(bp);
17662 	}
17663 
17664 reset_exit:
17665 	clear_bit(BNXT_STATE_IN_FW_RESET, &bp->state);
17666 	bnxt_clear_reservations(bp, true);
17667 	netdev_unlock(netdev);
17668 
17669 	return result;
17670 }
17671 
17672 /**
17673  * bnxt_io_resume - called when traffic can start flowing again.
17674  * @pdev: Pointer to PCI device
17675  *
17676  * This callback is called when the error recovery driver tells
17677  * us that its OK to resume normal operation.
17678  */
bnxt_io_resume(struct pci_dev * pdev)17679 static void bnxt_io_resume(struct pci_dev *pdev)
17680 {
17681 	struct net_device *netdev = pci_get_drvdata(pdev);
17682 	struct bnxt *bp = netdev_priv(netdev);
17683 	int err;
17684 
17685 	netdev_info(bp->dev, "PCI Slot Resume\n");
17686 	rtnl_lock();
17687 	netdev_lock(netdev);
17688 
17689 	err = bnxt_hwrm_func_qcaps(bp);
17690 	if (!err) {
17691 		if (netif_running(netdev)) {
17692 			err = bnxt_open(netdev);
17693 		} else {
17694 			err = bnxt_reserve_rings(bp, true);
17695 			if (!err)
17696 				err = bnxt_init_int_mode(bp);
17697 		}
17698 	}
17699 
17700 	if (!err)
17701 		netif_device_attach(netdev);
17702 
17703 	netdev_unlock(netdev);
17704 	rtnl_unlock();
17705 	if (!err) {
17706 		bnxt_ulp_start(bp);
17707 		bnxt_reenable_sriov(bp);
17708 	}
17709 }
17710 
17711 static const struct pci_error_handlers bnxt_err_handler = {
17712 	.error_detected	= bnxt_io_error_detected,
17713 	.slot_reset	= bnxt_io_slot_reset,
17714 	.resume		= bnxt_io_resume
17715 };
17716 
17717 static struct pci_driver bnxt_pci_driver = {
17718 	.name		= DRV_MODULE_NAME,
17719 	.id_table	= bnxt_pci_tbl,
17720 	.probe		= bnxt_init_one,
17721 	.remove		= bnxt_remove_one,
17722 	.shutdown	= bnxt_shutdown,
17723 	.driver.pm	= BNXT_PM_OPS,
17724 	.err_handler	= &bnxt_err_handler,
17725 #if defined(CONFIG_BNXT_SRIOV)
17726 	.sriov_configure = bnxt_sriov_configure,
17727 #endif
17728 };
17729 
bnxt_init(void)17730 static int __init bnxt_init(void)
17731 {
17732 	int err;
17733 
17734 	bnxt_debug_init();
17735 	err = pci_register_driver(&bnxt_pci_driver);
17736 	if (err) {
17737 		bnxt_debug_exit();
17738 		return err;
17739 	}
17740 
17741 	return 0;
17742 }
17743 
bnxt_exit(void)17744 static void __exit bnxt_exit(void)
17745 {
17746 	pci_unregister_driver(&bnxt_pci_driver);
17747 	if (bnxt_pf_wq)
17748 		destroy_workqueue(bnxt_pf_wq);
17749 	bnxt_debug_exit();
17750 }
17751 
17752 module_init(bnxt_init);
17753 module_exit(bnxt_exit);
17754