1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3 * Broadcom GENET (Gigabit Ethernet) controller driver
4 *
5 * Copyright (c) 2014-2025 Broadcom
6 */
7
8 #define pr_fmt(fmt) "bcmgenet: " fmt
9
10 #include <linux/acpi.h>
11 #include <linux/kernel.h>
12 #include <linux/module.h>
13 #include <linux/sched.h>
14 #include <linux/types.h>
15 #include <linux/fcntl.h>
16 #include <linux/interrupt.h>
17 #include <linux/string.h>
18 #include <linux/if_ether.h>
19 #include <linux/init.h>
20 #include <linux/errno.h>
21 #include <linux/delay.h>
22 #include <linux/platform_device.h>
23 #include <linux/dma-mapping.h>
24 #include <linux/pm.h>
25 #include <linux/clk.h>
26 #include <net/arp.h>
27
28 #include <linux/mii.h>
29 #include <linux/ethtool.h>
30 #include <linux/netdevice.h>
31 #include <linux/inetdevice.h>
32 #include <linux/etherdevice.h>
33 #include <linux/skbuff.h>
34 #include <linux/in.h>
35 #include <linux/ip.h>
36 #include <linux/ipv6.h>
37 #include <linux/phy.h>
38
39 #include <linux/unaligned.h>
40
41 #include "bcmgenet.h"
42
43 #define GENET_Q0_WEIGHT 1
44 #define GENET_Q1_WEIGHT 4
45
46 #define GENET_Q0_RX_BD_CNT \
47 (TOTAL_DESC - priv->hw_params->rx_queues * priv->hw_params->rx_bds_per_q)
48 #define GENET_Q0_TX_BD_CNT \
49 (TOTAL_DESC - priv->hw_params->tx_queues * priv->hw_params->tx_bds_per_q)
50
51 #define RX_BUF_LENGTH 2048
52 #define SKB_ALIGNMENT 32
53
54 /* Page pool RX buffer layout:
55 * RSB(64) + pad(2) | frame data | skb_shared_info
56 * The HW writes the 64B RSB + 2B alignment padding before the frame.
57 */
58 #define GENET_RSB_PAD (sizeof(struct status_64) + 2)
59
60 /* Tx/Rx DMA register offset, skip 256 descriptors */
61 #define WORDS_PER_BD(p) (p->hw_params->words_per_bd)
62 #define DMA_DESC_SIZE (WORDS_PER_BD(priv) * sizeof(u32))
63
64 #define GENET_TDMA_REG_OFF (priv->hw_params->tdma_offset + \
65 TOTAL_DESC * DMA_DESC_SIZE)
66
67 #define GENET_RDMA_REG_OFF (priv->hw_params->rdma_offset + \
68 TOTAL_DESC * DMA_DESC_SIZE)
69
70 /* Forward declarations */
71 static void bcmgenet_set_rx_mode(struct net_device *dev);
72
bcmgenet_writel(u32 value,void __iomem * offset)73 static inline void bcmgenet_writel(u32 value, void __iomem *offset)
74 {
75 /* MIPS chips strapped for BE will automagically configure the
76 * peripheral registers for CPU-native byte order.
77 */
78 if (IS_ENABLED(CONFIG_MIPS) && IS_ENABLED(CONFIG_CPU_BIG_ENDIAN))
79 __raw_writel(value, offset);
80 else
81 writel_relaxed(value, offset);
82 }
83
bcmgenet_readl(void __iomem * offset)84 static inline u32 bcmgenet_readl(void __iomem *offset)
85 {
86 if (IS_ENABLED(CONFIG_MIPS) && IS_ENABLED(CONFIG_CPU_BIG_ENDIAN))
87 return __raw_readl(offset);
88 else
89 return readl_relaxed(offset);
90 }
91
dmadesc_set_length_status(struct bcmgenet_priv * priv,void __iomem * d,u32 value)92 static inline void dmadesc_set_length_status(struct bcmgenet_priv *priv,
93 void __iomem *d, u32 value)
94 {
95 bcmgenet_writel(value, d + DMA_DESC_LENGTH_STATUS);
96 }
97
dmadesc_set_addr(struct bcmgenet_priv * priv,void __iomem * d,dma_addr_t addr)98 static inline void dmadesc_set_addr(struct bcmgenet_priv *priv,
99 void __iomem *d,
100 dma_addr_t addr)
101 {
102 bcmgenet_writel(lower_32_bits(addr), d + DMA_DESC_ADDRESS_LO);
103
104 /* Register writes to GISB bus can take couple hundred nanoseconds
105 * and are done for each packet, save these expensive writes unless
106 * the platform is explicitly configured for 64-bits/LPAE.
107 */
108 #ifdef CONFIG_PHYS_ADDR_T_64BIT
109 if (bcmgenet_has_40bits(priv))
110 bcmgenet_writel(upper_32_bits(addr), d + DMA_DESC_ADDRESS_HI);
111 #endif
112 }
113
114 /* Combined address + length/status setter */
dmadesc_set(struct bcmgenet_priv * priv,void __iomem * d,dma_addr_t addr,u32 val)115 static inline void dmadesc_set(struct bcmgenet_priv *priv,
116 void __iomem *d, dma_addr_t addr, u32 val)
117 {
118 dmadesc_set_addr(priv, d, addr);
119 dmadesc_set_length_status(priv, d, val);
120 }
121
122 #define GENET_VER_FMT "%1d.%1d EPHY: 0x%04x"
123
124 #define GENET_MSG_DEFAULT (NETIF_MSG_DRV | NETIF_MSG_PROBE | \
125 NETIF_MSG_LINK)
126
bcmgenet_rbuf_ctrl_get(struct bcmgenet_priv * priv)127 static inline u32 bcmgenet_rbuf_ctrl_get(struct bcmgenet_priv *priv)
128 {
129 if (GENET_IS_V1(priv))
130 return bcmgenet_rbuf_readl(priv, RBUF_FLUSH_CTRL_V1);
131 else
132 return bcmgenet_sys_readl(priv, SYS_RBUF_FLUSH_CTRL);
133 }
134
bcmgenet_rbuf_ctrl_set(struct bcmgenet_priv * priv,u32 val)135 static inline void bcmgenet_rbuf_ctrl_set(struct bcmgenet_priv *priv, u32 val)
136 {
137 if (GENET_IS_V1(priv))
138 bcmgenet_rbuf_writel(priv, val, RBUF_FLUSH_CTRL_V1);
139 else
140 bcmgenet_sys_writel(priv, val, SYS_RBUF_FLUSH_CTRL);
141 }
142
143 /* These macros are defined to deal with register map change
144 * between GENET1.1 and GENET2. Only those currently being used
145 * by driver are defined.
146 */
bcmgenet_tbuf_ctrl_get(struct bcmgenet_priv * priv)147 static inline u32 bcmgenet_tbuf_ctrl_get(struct bcmgenet_priv *priv)
148 {
149 if (GENET_IS_V1(priv))
150 return bcmgenet_rbuf_readl(priv, TBUF_CTRL_V1);
151 else
152 return bcmgenet_readl(priv->base +
153 priv->hw_params->tbuf_offset + TBUF_CTRL);
154 }
155
bcmgenet_tbuf_ctrl_set(struct bcmgenet_priv * priv,u32 val)156 static inline void bcmgenet_tbuf_ctrl_set(struct bcmgenet_priv *priv, u32 val)
157 {
158 if (GENET_IS_V1(priv))
159 bcmgenet_rbuf_writel(priv, val, TBUF_CTRL_V1);
160 else
161 bcmgenet_writel(val, priv->base +
162 priv->hw_params->tbuf_offset + TBUF_CTRL);
163 }
164
bcmgenet_bp_mc_get(struct bcmgenet_priv * priv)165 static inline u32 bcmgenet_bp_mc_get(struct bcmgenet_priv *priv)
166 {
167 if (GENET_IS_V1(priv))
168 return bcmgenet_rbuf_readl(priv, TBUF_BP_MC_V1);
169 else
170 return bcmgenet_readl(priv->base +
171 priv->hw_params->tbuf_offset + TBUF_BP_MC);
172 }
173
bcmgenet_bp_mc_set(struct bcmgenet_priv * priv,u32 val)174 static inline void bcmgenet_bp_mc_set(struct bcmgenet_priv *priv, u32 val)
175 {
176 if (GENET_IS_V1(priv))
177 bcmgenet_rbuf_writel(priv, val, TBUF_BP_MC_V1);
178 else
179 bcmgenet_writel(val, priv->base +
180 priv->hw_params->tbuf_offset + TBUF_BP_MC);
181 }
182
183 /* RX/TX DMA register accessors */
184 enum dma_reg {
185 DMA_RING_CFG = 0,
186 DMA_CTRL,
187 DMA_STATUS,
188 DMA_SCB_BURST_SIZE,
189 DMA_ARB_CTRL,
190 DMA_PRIORITY_0,
191 DMA_PRIORITY_1,
192 DMA_PRIORITY_2,
193 DMA_INDEX2RING_0,
194 DMA_INDEX2RING_1,
195 DMA_INDEX2RING_2,
196 DMA_INDEX2RING_3,
197 DMA_INDEX2RING_4,
198 DMA_INDEX2RING_5,
199 DMA_INDEX2RING_6,
200 DMA_INDEX2RING_7,
201 DMA_RING0_TIMEOUT,
202 DMA_RING1_TIMEOUT,
203 DMA_RING2_TIMEOUT,
204 DMA_RING3_TIMEOUT,
205 DMA_RING4_TIMEOUT,
206 DMA_RING5_TIMEOUT,
207 DMA_RING6_TIMEOUT,
208 DMA_RING7_TIMEOUT,
209 DMA_RING8_TIMEOUT,
210 DMA_RING9_TIMEOUT,
211 DMA_RING10_TIMEOUT,
212 DMA_RING11_TIMEOUT,
213 DMA_RING12_TIMEOUT,
214 DMA_RING13_TIMEOUT,
215 DMA_RING14_TIMEOUT,
216 DMA_RING15_TIMEOUT,
217 DMA_RING16_TIMEOUT,
218 };
219
220 static const u8 bcmgenet_dma_regs_v3plus[] = {
221 [DMA_RING_CFG] = 0x00,
222 [DMA_CTRL] = 0x04,
223 [DMA_STATUS] = 0x08,
224 [DMA_SCB_BURST_SIZE] = 0x0C,
225 [DMA_ARB_CTRL] = 0x2C,
226 [DMA_PRIORITY_0] = 0x30,
227 [DMA_PRIORITY_1] = 0x34,
228 [DMA_PRIORITY_2] = 0x38,
229 [DMA_RING0_TIMEOUT] = 0x2C,
230 [DMA_RING1_TIMEOUT] = 0x30,
231 [DMA_RING2_TIMEOUT] = 0x34,
232 [DMA_RING3_TIMEOUT] = 0x38,
233 [DMA_RING4_TIMEOUT] = 0x3c,
234 [DMA_RING5_TIMEOUT] = 0x40,
235 [DMA_RING6_TIMEOUT] = 0x44,
236 [DMA_RING7_TIMEOUT] = 0x48,
237 [DMA_RING8_TIMEOUT] = 0x4c,
238 [DMA_RING9_TIMEOUT] = 0x50,
239 [DMA_RING10_TIMEOUT] = 0x54,
240 [DMA_RING11_TIMEOUT] = 0x58,
241 [DMA_RING12_TIMEOUT] = 0x5c,
242 [DMA_RING13_TIMEOUT] = 0x60,
243 [DMA_RING14_TIMEOUT] = 0x64,
244 [DMA_RING15_TIMEOUT] = 0x68,
245 [DMA_RING16_TIMEOUT] = 0x6C,
246 [DMA_INDEX2RING_0] = 0x70,
247 [DMA_INDEX2RING_1] = 0x74,
248 [DMA_INDEX2RING_2] = 0x78,
249 [DMA_INDEX2RING_3] = 0x7C,
250 [DMA_INDEX2RING_4] = 0x80,
251 [DMA_INDEX2RING_5] = 0x84,
252 [DMA_INDEX2RING_6] = 0x88,
253 [DMA_INDEX2RING_7] = 0x8C,
254 };
255
256 static const u8 bcmgenet_dma_regs_v2[] = {
257 [DMA_RING_CFG] = 0x00,
258 [DMA_CTRL] = 0x04,
259 [DMA_STATUS] = 0x08,
260 [DMA_SCB_BURST_SIZE] = 0x0C,
261 [DMA_ARB_CTRL] = 0x30,
262 [DMA_PRIORITY_0] = 0x34,
263 [DMA_PRIORITY_1] = 0x38,
264 [DMA_PRIORITY_2] = 0x3C,
265 [DMA_RING0_TIMEOUT] = 0x2C,
266 [DMA_RING1_TIMEOUT] = 0x30,
267 [DMA_RING2_TIMEOUT] = 0x34,
268 [DMA_RING3_TIMEOUT] = 0x38,
269 [DMA_RING4_TIMEOUT] = 0x3c,
270 [DMA_RING5_TIMEOUT] = 0x40,
271 [DMA_RING6_TIMEOUT] = 0x44,
272 [DMA_RING7_TIMEOUT] = 0x48,
273 [DMA_RING8_TIMEOUT] = 0x4c,
274 [DMA_RING9_TIMEOUT] = 0x50,
275 [DMA_RING10_TIMEOUT] = 0x54,
276 [DMA_RING11_TIMEOUT] = 0x58,
277 [DMA_RING12_TIMEOUT] = 0x5c,
278 [DMA_RING13_TIMEOUT] = 0x60,
279 [DMA_RING14_TIMEOUT] = 0x64,
280 [DMA_RING15_TIMEOUT] = 0x68,
281 [DMA_RING16_TIMEOUT] = 0x6C,
282 };
283
284 static const u8 bcmgenet_dma_regs_v1[] = {
285 [DMA_CTRL] = 0x00,
286 [DMA_STATUS] = 0x04,
287 [DMA_SCB_BURST_SIZE] = 0x0C,
288 [DMA_ARB_CTRL] = 0x30,
289 [DMA_PRIORITY_0] = 0x34,
290 [DMA_PRIORITY_1] = 0x38,
291 [DMA_PRIORITY_2] = 0x3C,
292 [DMA_RING0_TIMEOUT] = 0x2C,
293 [DMA_RING1_TIMEOUT] = 0x30,
294 [DMA_RING2_TIMEOUT] = 0x34,
295 [DMA_RING3_TIMEOUT] = 0x38,
296 [DMA_RING4_TIMEOUT] = 0x3c,
297 [DMA_RING5_TIMEOUT] = 0x40,
298 [DMA_RING6_TIMEOUT] = 0x44,
299 [DMA_RING7_TIMEOUT] = 0x48,
300 [DMA_RING8_TIMEOUT] = 0x4c,
301 [DMA_RING9_TIMEOUT] = 0x50,
302 [DMA_RING10_TIMEOUT] = 0x54,
303 [DMA_RING11_TIMEOUT] = 0x58,
304 [DMA_RING12_TIMEOUT] = 0x5c,
305 [DMA_RING13_TIMEOUT] = 0x60,
306 [DMA_RING14_TIMEOUT] = 0x64,
307 [DMA_RING15_TIMEOUT] = 0x68,
308 [DMA_RING16_TIMEOUT] = 0x6C,
309 };
310
311 /* Set at runtime once bcmgenet version is known */
312 static const u8 *bcmgenet_dma_regs;
313
dev_to_priv(struct device * dev)314 static inline struct bcmgenet_priv *dev_to_priv(struct device *dev)
315 {
316 return netdev_priv(dev_get_drvdata(dev));
317 }
318
bcmgenet_tdma_readl(struct bcmgenet_priv * priv,enum dma_reg r)319 static inline u32 bcmgenet_tdma_readl(struct bcmgenet_priv *priv,
320 enum dma_reg r)
321 {
322 return bcmgenet_readl(priv->base + GENET_TDMA_REG_OFF +
323 DMA_RINGS_SIZE + bcmgenet_dma_regs[r]);
324 }
325
bcmgenet_tdma_writel(struct bcmgenet_priv * priv,u32 val,enum dma_reg r)326 static inline void bcmgenet_tdma_writel(struct bcmgenet_priv *priv,
327 u32 val, enum dma_reg r)
328 {
329 bcmgenet_writel(val, priv->base + GENET_TDMA_REG_OFF +
330 DMA_RINGS_SIZE + bcmgenet_dma_regs[r]);
331 }
332
bcmgenet_rdma_readl(struct bcmgenet_priv * priv,enum dma_reg r)333 static inline u32 bcmgenet_rdma_readl(struct bcmgenet_priv *priv,
334 enum dma_reg r)
335 {
336 return bcmgenet_readl(priv->base + GENET_RDMA_REG_OFF +
337 DMA_RINGS_SIZE + bcmgenet_dma_regs[r]);
338 }
339
bcmgenet_rdma_writel(struct bcmgenet_priv * priv,u32 val,enum dma_reg r)340 static inline void bcmgenet_rdma_writel(struct bcmgenet_priv *priv,
341 u32 val, enum dma_reg r)
342 {
343 bcmgenet_writel(val, priv->base + GENET_RDMA_REG_OFF +
344 DMA_RINGS_SIZE + bcmgenet_dma_regs[r]);
345 }
346
347 /* RDMA/TDMA ring registers and accessors
348 * we merge the common fields and just prefix with T/D the registers
349 * having different meaning depending on the direction
350 */
351 enum dma_ring_reg {
352 TDMA_READ_PTR = 0,
353 RDMA_WRITE_PTR = TDMA_READ_PTR,
354 TDMA_READ_PTR_HI,
355 RDMA_WRITE_PTR_HI = TDMA_READ_PTR_HI,
356 TDMA_CONS_INDEX,
357 RDMA_PROD_INDEX = TDMA_CONS_INDEX,
358 TDMA_PROD_INDEX,
359 RDMA_CONS_INDEX = TDMA_PROD_INDEX,
360 DMA_RING_BUF_SIZE,
361 DMA_START_ADDR,
362 DMA_START_ADDR_HI,
363 DMA_END_ADDR,
364 DMA_END_ADDR_HI,
365 DMA_MBUF_DONE_THRESH,
366 TDMA_FLOW_PERIOD,
367 RDMA_XON_XOFF_THRESH = TDMA_FLOW_PERIOD,
368 TDMA_WRITE_PTR,
369 RDMA_READ_PTR = TDMA_WRITE_PTR,
370 TDMA_WRITE_PTR_HI,
371 RDMA_READ_PTR_HI = TDMA_WRITE_PTR_HI
372 };
373
374 /* GENET v4 supports 40-bits pointer addressing
375 * for obvious reasons the LO and HI word parts
376 * are contiguous, but this offsets the other
377 * registers.
378 */
379 static const u8 genet_dma_ring_regs_v4[] = {
380 [TDMA_READ_PTR] = 0x00,
381 [TDMA_READ_PTR_HI] = 0x04,
382 [TDMA_CONS_INDEX] = 0x08,
383 [TDMA_PROD_INDEX] = 0x0C,
384 [DMA_RING_BUF_SIZE] = 0x10,
385 [DMA_START_ADDR] = 0x14,
386 [DMA_START_ADDR_HI] = 0x18,
387 [DMA_END_ADDR] = 0x1C,
388 [DMA_END_ADDR_HI] = 0x20,
389 [DMA_MBUF_DONE_THRESH] = 0x24,
390 [TDMA_FLOW_PERIOD] = 0x28,
391 [TDMA_WRITE_PTR] = 0x2C,
392 [TDMA_WRITE_PTR_HI] = 0x30,
393 };
394
395 static const u8 genet_dma_ring_regs_v123[] = {
396 [TDMA_READ_PTR] = 0x00,
397 [TDMA_CONS_INDEX] = 0x04,
398 [TDMA_PROD_INDEX] = 0x08,
399 [DMA_RING_BUF_SIZE] = 0x0C,
400 [DMA_START_ADDR] = 0x10,
401 [DMA_END_ADDR] = 0x14,
402 [DMA_MBUF_DONE_THRESH] = 0x18,
403 [TDMA_FLOW_PERIOD] = 0x1C,
404 [TDMA_WRITE_PTR] = 0x20,
405 };
406
407 /* Set at runtime once GENET version is known */
408 static const u8 *genet_dma_ring_regs;
409
bcmgenet_tdma_ring_readl(struct bcmgenet_priv * priv,unsigned int ring,enum dma_ring_reg r)410 static inline u32 bcmgenet_tdma_ring_readl(struct bcmgenet_priv *priv,
411 unsigned int ring,
412 enum dma_ring_reg r)
413 {
414 return bcmgenet_readl(priv->base + GENET_TDMA_REG_OFF +
415 (DMA_RING_SIZE * ring) +
416 genet_dma_ring_regs[r]);
417 }
418
bcmgenet_tdma_ring_writel(struct bcmgenet_priv * priv,unsigned int ring,u32 val,enum dma_ring_reg r)419 static inline void bcmgenet_tdma_ring_writel(struct bcmgenet_priv *priv,
420 unsigned int ring, u32 val,
421 enum dma_ring_reg r)
422 {
423 bcmgenet_writel(val, priv->base + GENET_TDMA_REG_OFF +
424 (DMA_RING_SIZE * ring) +
425 genet_dma_ring_regs[r]);
426 }
427
bcmgenet_rdma_ring_readl(struct bcmgenet_priv * priv,unsigned int ring,enum dma_ring_reg r)428 static inline u32 bcmgenet_rdma_ring_readl(struct bcmgenet_priv *priv,
429 unsigned int ring,
430 enum dma_ring_reg r)
431 {
432 return bcmgenet_readl(priv->base + GENET_RDMA_REG_OFF +
433 (DMA_RING_SIZE * ring) +
434 genet_dma_ring_regs[r]);
435 }
436
bcmgenet_rdma_ring_writel(struct bcmgenet_priv * priv,unsigned int ring,u32 val,enum dma_ring_reg r)437 static inline void bcmgenet_rdma_ring_writel(struct bcmgenet_priv *priv,
438 unsigned int ring, u32 val,
439 enum dma_ring_reg r)
440 {
441 bcmgenet_writel(val, priv->base + GENET_RDMA_REG_OFF +
442 (DMA_RING_SIZE * ring) +
443 genet_dma_ring_regs[r]);
444 }
445
bcmgenet_hfb_enable_filter(struct bcmgenet_priv * priv,u32 f_index)446 static void bcmgenet_hfb_enable_filter(struct bcmgenet_priv *priv, u32 f_index)
447 {
448 u32 offset;
449 u32 reg;
450
451 if (GENET_IS_V1(priv) || GENET_IS_V2(priv)) {
452 reg = bcmgenet_hfb_reg_readl(priv, HFB_CTRL);
453 reg |= (1 << ((f_index % 32) + RBUF_HFB_FILTER_EN_SHIFT)) |
454 RBUF_HFB_EN;
455 bcmgenet_hfb_reg_writel(priv, reg, HFB_CTRL);
456 } else {
457 offset = HFB_FLT_ENABLE_V3PLUS + (f_index < 32) * sizeof(u32);
458 reg = bcmgenet_hfb_reg_readl(priv, offset);
459 reg |= (1 << (f_index % 32));
460 bcmgenet_hfb_reg_writel(priv, reg, offset);
461 reg = bcmgenet_hfb_reg_readl(priv, HFB_CTRL);
462 reg |= RBUF_HFB_EN;
463 bcmgenet_hfb_reg_writel(priv, reg, HFB_CTRL);
464 }
465 }
466
bcmgenet_hfb_disable_filter(struct bcmgenet_priv * priv,u32 f_index)467 static void bcmgenet_hfb_disable_filter(struct bcmgenet_priv *priv, u32 f_index)
468 {
469 u32 offset, reg, reg1;
470
471 if (GENET_IS_V1(priv) || GENET_IS_V2(priv)) {
472 reg = bcmgenet_hfb_reg_readl(priv, HFB_CTRL);
473 reg &= ~(1 << ((f_index % 32) + RBUF_HFB_FILTER_EN_SHIFT));
474 if (!(reg & RBUF_HFB_FILTER_EN_MASK))
475 reg &= ~RBUF_HFB_EN;
476 bcmgenet_hfb_reg_writel(priv, reg, HFB_CTRL);
477 } else {
478 offset = HFB_FLT_ENABLE_V3PLUS;
479 reg = bcmgenet_hfb_reg_readl(priv, offset);
480 reg1 = bcmgenet_hfb_reg_readl(priv, offset + sizeof(u32));
481 if (f_index < 32) {
482 reg1 &= ~(1 << (f_index % 32));
483 bcmgenet_hfb_reg_writel(priv, reg1, offset + sizeof(u32));
484 } else {
485 reg &= ~(1 << (f_index % 32));
486 bcmgenet_hfb_reg_writel(priv, reg, offset);
487 }
488 if (!reg && !reg1) {
489 reg = bcmgenet_hfb_reg_readl(priv, HFB_CTRL);
490 reg &= ~RBUF_HFB_EN;
491 bcmgenet_hfb_reg_writel(priv, reg, HFB_CTRL);
492 }
493 }
494 }
495
bcmgenet_hfb_set_filter_rx_queue_mapping(struct bcmgenet_priv * priv,u32 f_index,u32 rx_queue)496 static void bcmgenet_hfb_set_filter_rx_queue_mapping(struct bcmgenet_priv *priv,
497 u32 f_index, u32 rx_queue)
498 {
499 u32 offset;
500 u32 reg;
501
502 if (GENET_IS_V1(priv) || GENET_IS_V2(priv))
503 return;
504
505 offset = f_index / 8;
506 reg = bcmgenet_rdma_readl(priv, DMA_INDEX2RING_0 + offset);
507 reg &= ~(0xF << (4 * (f_index % 8)));
508 reg |= ((rx_queue & 0xF) << (4 * (f_index % 8)));
509 bcmgenet_rdma_writel(priv, reg, DMA_INDEX2RING_0 + offset);
510 }
511
bcmgenet_hfb_set_filter_length(struct bcmgenet_priv * priv,u32 f_index,u32 f_length)512 static void bcmgenet_hfb_set_filter_length(struct bcmgenet_priv *priv,
513 u32 f_index, u32 f_length)
514 {
515 u32 offset;
516 u32 reg;
517
518 if (GENET_IS_V1(priv) || GENET_IS_V2(priv))
519 offset = HFB_FLT_LEN_V2;
520 else
521 offset = HFB_FLT_LEN_V3PLUS;
522
523 offset += sizeof(u32) *
524 ((priv->hw_params->hfb_filter_cnt - 1 - f_index) / 4);
525 reg = bcmgenet_hfb_reg_readl(priv, offset);
526 reg &= ~(0xFF << (8 * (f_index % 4)));
527 reg |= ((f_length & 0xFF) << (8 * (f_index % 4)));
528 bcmgenet_hfb_reg_writel(priv, reg, offset);
529 }
530
bcmgenet_hfb_validate_mask(void * mask,size_t size)531 static int bcmgenet_hfb_validate_mask(void *mask, size_t size)
532 {
533 while (size) {
534 switch (*(unsigned char *)mask++) {
535 case 0x00:
536 case 0x0f:
537 case 0xf0:
538 case 0xff:
539 size--;
540 continue;
541 default:
542 return -EINVAL;
543 }
544 }
545
546 return 0;
547 }
548
549 #define VALIDATE_MASK(x) \
550 bcmgenet_hfb_validate_mask(&(x), sizeof(x))
551
bcmgenet_hfb_insert_data(struct bcmgenet_priv * priv,u32 f_index,u32 offset,void * val,void * mask,size_t size)552 static int bcmgenet_hfb_insert_data(struct bcmgenet_priv *priv, u32 f_index,
553 u32 offset, void *val, void *mask,
554 size_t size)
555 {
556 u32 index, tmp;
557
558 index = f_index * priv->hw_params->hfb_filter_size + offset / 2;
559 tmp = bcmgenet_hfb_readl(priv, index * sizeof(u32));
560
561 while (size--) {
562 if (offset++ & 1) {
563 tmp &= ~0x300FF;
564 tmp |= (*(unsigned char *)val++);
565 switch ((*(unsigned char *)mask++)) {
566 case 0xFF:
567 tmp |= 0x30000;
568 break;
569 case 0xF0:
570 tmp |= 0x20000;
571 break;
572 case 0x0F:
573 tmp |= 0x10000;
574 break;
575 }
576 bcmgenet_hfb_writel(priv, tmp, index++ * sizeof(u32));
577 if (size)
578 tmp = bcmgenet_hfb_readl(priv,
579 index * sizeof(u32));
580 } else {
581 tmp &= ~0xCFF00;
582 tmp |= (*(unsigned char *)val++) << 8;
583 switch ((*(unsigned char *)mask++)) {
584 case 0xFF:
585 tmp |= 0xC0000;
586 break;
587 case 0xF0:
588 tmp |= 0x80000;
589 break;
590 case 0x0F:
591 tmp |= 0x40000;
592 break;
593 }
594 if (!size)
595 bcmgenet_hfb_writel(priv, tmp, index * sizeof(u32));
596 }
597 }
598
599 return 0;
600 }
601
bcmgenet_hfb_create_rxnfc_filter(struct bcmgenet_priv * priv,struct bcmgenet_rxnfc_rule * rule)602 static void bcmgenet_hfb_create_rxnfc_filter(struct bcmgenet_priv *priv,
603 struct bcmgenet_rxnfc_rule *rule)
604 {
605 struct ethtool_rx_flow_spec *fs = &rule->fs;
606 u32 offset = 0, f_length = 0, f, q;
607 u8 val_8, mask_8;
608 __be16 val_16;
609 u16 mask_16;
610 size_t size;
611
612 f = fs->location + 1;
613 if (fs->flow_type & FLOW_MAC_EXT) {
614 bcmgenet_hfb_insert_data(priv, f, 0,
615 &fs->h_ext.h_dest, &fs->m_ext.h_dest,
616 sizeof(fs->h_ext.h_dest));
617 }
618
619 if (fs->flow_type & FLOW_EXT) {
620 if (fs->m_ext.vlan_etype ||
621 fs->m_ext.vlan_tci) {
622 bcmgenet_hfb_insert_data(priv, f, 12,
623 &fs->h_ext.vlan_etype,
624 &fs->m_ext.vlan_etype,
625 sizeof(fs->h_ext.vlan_etype));
626 bcmgenet_hfb_insert_data(priv, f, 14,
627 &fs->h_ext.vlan_tci,
628 &fs->m_ext.vlan_tci,
629 sizeof(fs->h_ext.vlan_tci));
630 offset += VLAN_HLEN;
631 f_length += DIV_ROUND_UP(VLAN_HLEN, 2);
632 }
633 }
634
635 switch (fs->flow_type & ~(FLOW_EXT | FLOW_MAC_EXT)) {
636 case ETHER_FLOW:
637 f_length += DIV_ROUND_UP(ETH_HLEN, 2);
638 bcmgenet_hfb_insert_data(priv, f, 0,
639 &fs->h_u.ether_spec.h_dest,
640 &fs->m_u.ether_spec.h_dest,
641 sizeof(fs->h_u.ether_spec.h_dest));
642 bcmgenet_hfb_insert_data(priv, f, ETH_ALEN,
643 &fs->h_u.ether_spec.h_source,
644 &fs->m_u.ether_spec.h_source,
645 sizeof(fs->h_u.ether_spec.h_source));
646 bcmgenet_hfb_insert_data(priv, f, (2 * ETH_ALEN) + offset,
647 &fs->h_u.ether_spec.h_proto,
648 &fs->m_u.ether_spec.h_proto,
649 sizeof(fs->h_u.ether_spec.h_proto));
650 break;
651 case IP_USER_FLOW:
652 f_length += DIV_ROUND_UP(ETH_HLEN + 20, 2);
653 /* Specify IP Ether Type */
654 val_16 = htons(ETH_P_IP);
655 mask_16 = 0xFFFF;
656 bcmgenet_hfb_insert_data(priv, f, (2 * ETH_ALEN) + offset,
657 &val_16, &mask_16, sizeof(val_16));
658 bcmgenet_hfb_insert_data(priv, f, 15 + offset,
659 &fs->h_u.usr_ip4_spec.tos,
660 &fs->m_u.usr_ip4_spec.tos,
661 sizeof(fs->h_u.usr_ip4_spec.tos));
662 bcmgenet_hfb_insert_data(priv, f, 23 + offset,
663 &fs->h_u.usr_ip4_spec.proto,
664 &fs->m_u.usr_ip4_spec.proto,
665 sizeof(fs->h_u.usr_ip4_spec.proto));
666 bcmgenet_hfb_insert_data(priv, f, 26 + offset,
667 &fs->h_u.usr_ip4_spec.ip4src,
668 &fs->m_u.usr_ip4_spec.ip4src,
669 sizeof(fs->h_u.usr_ip4_spec.ip4src));
670 bcmgenet_hfb_insert_data(priv, f, 30 + offset,
671 &fs->h_u.usr_ip4_spec.ip4dst,
672 &fs->m_u.usr_ip4_spec.ip4dst,
673 sizeof(fs->h_u.usr_ip4_spec.ip4dst));
674 if (!fs->m_u.usr_ip4_spec.l4_4_bytes)
675 break;
676
677 /* Only supports 20 byte IPv4 header */
678 val_8 = 0x45;
679 mask_8 = 0xFF;
680 bcmgenet_hfb_insert_data(priv, f, ETH_HLEN + offset,
681 &val_8, &mask_8,
682 sizeof(val_8));
683 size = sizeof(fs->h_u.usr_ip4_spec.l4_4_bytes);
684 bcmgenet_hfb_insert_data(priv, f,
685 ETH_HLEN + 20 + offset,
686 &fs->h_u.usr_ip4_spec.l4_4_bytes,
687 &fs->m_u.usr_ip4_spec.l4_4_bytes,
688 size);
689 f_length += DIV_ROUND_UP(size, 2);
690 break;
691 }
692
693 bcmgenet_hfb_set_filter_length(priv, f, 2 * f_length);
694 if (fs->ring_cookie == RX_CLS_FLOW_WAKE)
695 q = 0;
696 else if (fs->ring_cookie == RX_CLS_FLOW_DISC)
697 q = priv->hw_params->rx_queues + 1;
698 else
699 /* Other Rx rings are direct mapped here */
700 q = fs->ring_cookie;
701 bcmgenet_hfb_set_filter_rx_queue_mapping(priv, f, q);
702 bcmgenet_hfb_enable_filter(priv, f);
703 rule->state = BCMGENET_RXNFC_STATE_ENABLED;
704 }
705
706 /* bcmgenet_hfb_clear
707 *
708 * Clear Hardware Filter Block and disable all filtering.
709 */
bcmgenet_hfb_clear_filter(struct bcmgenet_priv * priv,u32 f_index)710 static void bcmgenet_hfb_clear_filter(struct bcmgenet_priv *priv, u32 f_index)
711 {
712 u32 base, i;
713
714 bcmgenet_hfb_set_filter_length(priv, f_index, 0);
715 base = f_index * priv->hw_params->hfb_filter_size;
716 for (i = 0; i < priv->hw_params->hfb_filter_size; i++)
717 bcmgenet_hfb_writel(priv, 0x0, (base + i) * sizeof(u32));
718 }
719
bcmgenet_hfb_clear(struct bcmgenet_priv * priv)720 static void bcmgenet_hfb_clear(struct bcmgenet_priv *priv)
721 {
722 u32 i;
723
724 bcmgenet_hfb_reg_writel(priv, 0, HFB_CTRL);
725
726 if (!GENET_IS_V1(priv) && !GENET_IS_V2(priv)) {
727 bcmgenet_hfb_reg_writel(priv, 0,
728 HFB_FLT_ENABLE_V3PLUS);
729 bcmgenet_hfb_reg_writel(priv, 0,
730 HFB_FLT_ENABLE_V3PLUS + 4);
731 for (i = DMA_INDEX2RING_0; i <= DMA_INDEX2RING_7; i++)
732 bcmgenet_rdma_writel(priv, 0, i);
733 }
734
735 for (i = 0; i < priv->hw_params->hfb_filter_cnt; i++)
736 bcmgenet_hfb_clear_filter(priv, i);
737
738 /* Enable filter 0 to send default flow to ring 0 */
739 bcmgenet_hfb_set_filter_length(priv, 0, 4);
740 bcmgenet_hfb_enable_filter(priv, 0);
741 }
742
bcmgenet_hfb_init(struct bcmgenet_priv * priv)743 static void bcmgenet_hfb_init(struct bcmgenet_priv *priv)
744 {
745 int i;
746
747 INIT_LIST_HEAD(&priv->rxnfc_list);
748 for (i = 0; i < MAX_NUM_OF_FS_RULES; i++) {
749 INIT_LIST_HEAD(&priv->rxnfc_rules[i].list);
750 priv->rxnfc_rules[i].state = BCMGENET_RXNFC_STATE_UNUSED;
751 }
752 }
753
bcmgenet_hfb_restore(struct bcmgenet_priv * priv)754 static void bcmgenet_hfb_restore(struct bcmgenet_priv *priv)
755 {
756 struct bcmgenet_rxnfc_rule *rule;
757
758 bcmgenet_hfb_clear(priv);
759
760 list_for_each_entry(rule, &priv->rxnfc_list, list)
761 if (rule->state != BCMGENET_RXNFC_STATE_UNUSED)
762 bcmgenet_hfb_create_rxnfc_filter(priv, rule);
763 }
764
bcmgenet_begin(struct net_device * dev)765 static int bcmgenet_begin(struct net_device *dev)
766 {
767 struct bcmgenet_priv *priv = netdev_priv(dev);
768
769 /* Turn on the clock */
770 return clk_prepare_enable(priv->clk);
771 }
772
bcmgenet_complete(struct net_device * dev)773 static void bcmgenet_complete(struct net_device *dev)
774 {
775 struct bcmgenet_priv *priv = netdev_priv(dev);
776
777 /* Turn off the clock */
778 clk_disable_unprepare(priv->clk);
779 }
780
bcmgenet_get_link_ksettings(struct net_device * dev,struct ethtool_link_ksettings * cmd)781 static int bcmgenet_get_link_ksettings(struct net_device *dev,
782 struct ethtool_link_ksettings *cmd)
783 {
784 if (!netif_running(dev))
785 return -EINVAL;
786
787 if (!dev->phydev)
788 return -ENODEV;
789
790 phy_ethtool_ksettings_get(dev->phydev, cmd);
791
792 return 0;
793 }
794
bcmgenet_set_link_ksettings(struct net_device * dev,const struct ethtool_link_ksettings * cmd)795 static int bcmgenet_set_link_ksettings(struct net_device *dev,
796 const struct ethtool_link_ksettings *cmd)
797 {
798 if (!netif_running(dev))
799 return -EINVAL;
800
801 if (!dev->phydev)
802 return -ENODEV;
803
804 return phy_ethtool_ksettings_set(dev->phydev, cmd);
805 }
806
bcmgenet_set_features(struct net_device * dev,netdev_features_t features)807 static int bcmgenet_set_features(struct net_device *dev,
808 netdev_features_t features)
809 {
810 struct bcmgenet_priv *priv = netdev_priv(dev);
811 u32 reg;
812 int ret;
813
814 ret = clk_prepare_enable(priv->clk);
815 if (ret)
816 return ret;
817
818 /* Make sure we reflect the value of CRC_CMD_FWD */
819 reg = bcmgenet_umac_readl(priv, UMAC_CMD);
820 priv->crc_fwd_en = !!(reg & CMD_CRC_FWD);
821
822 clk_disable_unprepare(priv->clk);
823
824 return ret;
825 }
826
bcmgenet_get_msglevel(struct net_device * dev)827 static u32 bcmgenet_get_msglevel(struct net_device *dev)
828 {
829 struct bcmgenet_priv *priv = netdev_priv(dev);
830
831 return priv->msg_enable;
832 }
833
bcmgenet_set_msglevel(struct net_device * dev,u32 level)834 static void bcmgenet_set_msglevel(struct net_device *dev, u32 level)
835 {
836 struct bcmgenet_priv *priv = netdev_priv(dev);
837
838 priv->msg_enable = level;
839 }
840
bcmgenet_get_coalesce(struct net_device * dev,struct ethtool_coalesce * ec,struct kernel_ethtool_coalesce * kernel_coal,struct netlink_ext_ack * extack)841 static int bcmgenet_get_coalesce(struct net_device *dev,
842 struct ethtool_coalesce *ec,
843 struct kernel_ethtool_coalesce *kernel_coal,
844 struct netlink_ext_ack *extack)
845 {
846 struct bcmgenet_priv *priv = netdev_priv(dev);
847 struct bcmgenet_rx_ring *ring;
848 unsigned int i;
849
850 ec->tx_max_coalesced_frames =
851 bcmgenet_tdma_ring_readl(priv, 0, DMA_MBUF_DONE_THRESH);
852 ec->rx_max_coalesced_frames =
853 bcmgenet_rdma_ring_readl(priv, 0, DMA_MBUF_DONE_THRESH);
854 ec->rx_coalesce_usecs =
855 bcmgenet_rdma_readl(priv, DMA_RING0_TIMEOUT) * 8192 / 1000;
856
857 for (i = 0; i <= priv->hw_params->rx_queues; i++) {
858 ring = &priv->rx_rings[i];
859 ec->use_adaptive_rx_coalesce |= ring->dim.use_dim;
860 }
861
862 return 0;
863 }
864
bcmgenet_set_rx_coalesce(struct bcmgenet_rx_ring * ring,u32 usecs,u32 pkts)865 static void bcmgenet_set_rx_coalesce(struct bcmgenet_rx_ring *ring,
866 u32 usecs, u32 pkts)
867 {
868 struct bcmgenet_priv *priv = ring->priv;
869 unsigned int i = ring->index;
870 u32 reg;
871
872 bcmgenet_rdma_ring_writel(priv, i, pkts, DMA_MBUF_DONE_THRESH);
873
874 reg = bcmgenet_rdma_readl(priv, DMA_RING0_TIMEOUT + i);
875 reg &= ~DMA_TIMEOUT_MASK;
876 reg |= DIV_ROUND_UP(usecs * 1000, 8192);
877 bcmgenet_rdma_writel(priv, reg, DMA_RING0_TIMEOUT + i);
878 }
879
bcmgenet_set_ring_rx_coalesce(struct bcmgenet_rx_ring * ring,struct ethtool_coalesce * ec)880 static void bcmgenet_set_ring_rx_coalesce(struct bcmgenet_rx_ring *ring,
881 struct ethtool_coalesce *ec)
882 {
883 struct dim_cq_moder moder;
884 u32 usecs, pkts;
885
886 ring->rx_coalesce_usecs = ec->rx_coalesce_usecs;
887 ring->rx_max_coalesced_frames = ec->rx_max_coalesced_frames;
888 usecs = ring->rx_coalesce_usecs;
889 pkts = ring->rx_max_coalesced_frames;
890
891 if (ec->use_adaptive_rx_coalesce && !ring->dim.use_dim) {
892 moder = net_dim_get_def_rx_moderation(ring->dim.dim.mode);
893 usecs = moder.usec;
894 pkts = moder.pkts;
895 }
896
897 ring->dim.use_dim = ec->use_adaptive_rx_coalesce;
898 bcmgenet_set_rx_coalesce(ring, usecs, pkts);
899 }
900
bcmgenet_set_coalesce(struct net_device * dev,struct ethtool_coalesce * ec,struct kernel_ethtool_coalesce * kernel_coal,struct netlink_ext_ack * extack)901 static int bcmgenet_set_coalesce(struct net_device *dev,
902 struct ethtool_coalesce *ec,
903 struct kernel_ethtool_coalesce *kernel_coal,
904 struct netlink_ext_ack *extack)
905 {
906 struct bcmgenet_priv *priv = netdev_priv(dev);
907 unsigned int i;
908
909 /* Base system clock is 125Mhz, DMA timeout is this reference clock
910 * divided by 1024, which yields roughly 8.192us, our maximum value
911 * has to fit in the DMA_TIMEOUT_MASK (16 bits)
912 */
913 if (ec->tx_max_coalesced_frames > DMA_INTR_THRESHOLD_MASK ||
914 ec->tx_max_coalesced_frames == 0 ||
915 ec->rx_max_coalesced_frames > DMA_INTR_THRESHOLD_MASK ||
916 ec->rx_coalesce_usecs > (DMA_TIMEOUT_MASK * 8) + 1)
917 return -EINVAL;
918
919 if (ec->rx_coalesce_usecs == 0 && ec->rx_max_coalesced_frames == 0)
920 return -EINVAL;
921
922 /* GENET TDMA hardware does not support a configurable timeout, but will
923 * always generate an interrupt either after MBDONE packets have been
924 * transmitted, or when the ring is empty.
925 */
926
927 /* Program all TX queues with the same values, as there is no
928 * ethtool knob to do coalescing on a per-queue basis
929 */
930 for (i = 0; i <= priv->hw_params->tx_queues; i++)
931 bcmgenet_tdma_ring_writel(priv, i,
932 ec->tx_max_coalesced_frames,
933 DMA_MBUF_DONE_THRESH);
934
935 for (i = 0; i <= priv->hw_params->rx_queues; i++)
936 bcmgenet_set_ring_rx_coalesce(&priv->rx_rings[i], ec);
937
938 return 0;
939 }
940
bcmgenet_get_pauseparam(struct net_device * dev,struct ethtool_pauseparam * epause)941 static void bcmgenet_get_pauseparam(struct net_device *dev,
942 struct ethtool_pauseparam *epause)
943 {
944 struct bcmgenet_priv *priv;
945 u32 umac_cmd;
946
947 priv = netdev_priv(dev);
948
949 epause->autoneg = priv->autoneg_pause;
950
951 if (netif_carrier_ok(dev)) {
952 /* report active state when link is up */
953 umac_cmd = bcmgenet_umac_readl(priv, UMAC_CMD);
954 epause->tx_pause = !(umac_cmd & CMD_TX_PAUSE_IGNORE);
955 epause->rx_pause = !(umac_cmd & CMD_RX_PAUSE_IGNORE);
956 } else {
957 /* otherwise report stored settings */
958 epause->tx_pause = priv->tx_pause;
959 epause->rx_pause = priv->rx_pause;
960 }
961 }
962
bcmgenet_set_pauseparam(struct net_device * dev,struct ethtool_pauseparam * epause)963 static int bcmgenet_set_pauseparam(struct net_device *dev,
964 struct ethtool_pauseparam *epause)
965 {
966 struct bcmgenet_priv *priv = netdev_priv(dev);
967
968 if (!dev->phydev)
969 return -ENODEV;
970
971 if (!phy_validate_pause(dev->phydev, epause))
972 return -EINVAL;
973
974 priv->autoneg_pause = !!epause->autoneg;
975 priv->tx_pause = !!epause->tx_pause;
976 priv->rx_pause = !!epause->rx_pause;
977
978 bcmgenet_phy_pause_set(dev, priv->rx_pause, priv->tx_pause);
979
980 return 0;
981 }
982
983 /* standard ethtool support functions. */
984 enum bcmgenet_stat_type {
985 BCMGENET_STAT_RTNL = -1,
986 BCMGENET_STAT_MIB_RX,
987 BCMGENET_STAT_MIB_TX,
988 BCMGENET_STAT_RUNT,
989 BCMGENET_STAT_MISC,
990 BCMGENET_STAT_SOFT,
991 BCMGENET_STAT_SOFT64,
992 };
993
994 struct bcmgenet_stats {
995 char stat_string[ETH_GSTRING_LEN];
996 int stat_sizeof;
997 int stat_offset;
998 enum bcmgenet_stat_type type;
999 /* reg offset from UMAC base for misc counters */
1000 u16 reg_offset;
1001 /* sync for u64 stats counters */
1002 int syncp_offset;
1003 };
1004
1005 #define STAT_RTNL(m) { \
1006 .stat_string = __stringify(m), \
1007 .stat_sizeof = sizeof(((struct rtnl_link_stats64 *)0)->m), \
1008 .stat_offset = offsetof(struct rtnl_link_stats64, m), \
1009 .type = BCMGENET_STAT_RTNL, \
1010 }
1011
1012 #define STAT_GENET_MIB(str, m, _type) { \
1013 .stat_string = str, \
1014 .stat_sizeof = sizeof(((struct bcmgenet_priv *)0)->m), \
1015 .stat_offset = offsetof(struct bcmgenet_priv, m), \
1016 .type = _type, \
1017 }
1018
1019 #define STAT_GENET_SOFT_MIB64(str, s, m) { \
1020 .stat_string = str, \
1021 .stat_sizeof = sizeof(((struct bcmgenet_priv *)0)->s.m), \
1022 .stat_offset = offsetof(struct bcmgenet_priv, s.m), \
1023 .type = BCMGENET_STAT_SOFT64, \
1024 .syncp_offset = offsetof(struct bcmgenet_priv, s.syncp), \
1025 }
1026
1027 #define STAT_GENET_MIB_RX(str, m) STAT_GENET_MIB(str, m, BCMGENET_STAT_MIB_RX)
1028 #define STAT_GENET_MIB_TX(str, m) STAT_GENET_MIB(str, m, BCMGENET_STAT_MIB_TX)
1029 #define STAT_GENET_RUNT(str, m) STAT_GENET_MIB(str, m, BCMGENET_STAT_RUNT)
1030 #define STAT_GENET_SOFT_MIB(str, m) STAT_GENET_MIB(str, m, BCMGENET_STAT_SOFT)
1031
1032 #define STAT_GENET_MISC(str, m, offset) { \
1033 .stat_string = str, \
1034 .stat_sizeof = sizeof(((struct bcmgenet_priv *)0)->m), \
1035 .stat_offset = offsetof(struct bcmgenet_priv, m), \
1036 .type = BCMGENET_STAT_MISC, \
1037 .reg_offset = offset, \
1038 }
1039
1040 #define STAT_GENET_Q(num) \
1041 STAT_GENET_SOFT_MIB64("txq" __stringify(num) "_packets", \
1042 tx_rings[num].stats64, packets), \
1043 STAT_GENET_SOFT_MIB64("txq" __stringify(num) "_bytes", \
1044 tx_rings[num].stats64, bytes), \
1045 STAT_GENET_SOFT_MIB64("txq" __stringify(num) "_errors", \
1046 tx_rings[num].stats64, errors), \
1047 STAT_GENET_SOFT_MIB64("txq" __stringify(num) "_dropped", \
1048 tx_rings[num].stats64, dropped), \
1049 STAT_GENET_SOFT_MIB64("rxq" __stringify(num) "_bytes", \
1050 rx_rings[num].stats64, bytes), \
1051 STAT_GENET_SOFT_MIB64("rxq" __stringify(num) "_packets", \
1052 rx_rings[num].stats64, packets), \
1053 STAT_GENET_SOFT_MIB64("rxq" __stringify(num) "_errors", \
1054 rx_rings[num].stats64, errors), \
1055 STAT_GENET_SOFT_MIB64("rxq" __stringify(num) "_dropped", \
1056 rx_rings[num].stats64, dropped), \
1057 STAT_GENET_SOFT_MIB64("rxq" __stringify(num) "_multicast", \
1058 rx_rings[num].stats64, multicast), \
1059 STAT_GENET_SOFT_MIB64("rxq" __stringify(num) "_missed", \
1060 rx_rings[num].stats64, missed), \
1061 STAT_GENET_SOFT_MIB64("rxq" __stringify(num) "_length_errors", \
1062 rx_rings[num].stats64, length_errors), \
1063 STAT_GENET_SOFT_MIB64("rxq" __stringify(num) "_over_errors", \
1064 rx_rings[num].stats64, over_errors), \
1065 STAT_GENET_SOFT_MIB64("rxq" __stringify(num) "_crc_errors", \
1066 rx_rings[num].stats64, crc_errors), \
1067 STAT_GENET_SOFT_MIB64("rxq" __stringify(num) "_frame_errors", \
1068 rx_rings[num].stats64, frame_errors), \
1069 STAT_GENET_SOFT_MIB64("rxq" __stringify(num) "_fragmented_errors", \
1070 rx_rings[num].stats64, fragmented_errors), \
1071 STAT_GENET_SOFT_MIB64("rxq" __stringify(num) "_broadcast", \
1072 rx_rings[num].stats64, broadcast)
1073
1074 /* There is a 0xC gap between the end of RX and beginning of TX stats and then
1075 * between the end of TX stats and the beginning of the RX RUNT
1076 */
1077 #define BCMGENET_STAT_OFFSET 0xc
1078
1079 /* Hardware counters must be kept in sync because the order/offset
1080 * is important here (order in structure declaration = order in hardware)
1081 */
1082 static const struct bcmgenet_stats bcmgenet_gstrings_stats[] = {
1083 /* general stats */
1084 STAT_RTNL(rx_packets),
1085 STAT_RTNL(tx_packets),
1086 STAT_RTNL(rx_bytes),
1087 STAT_RTNL(tx_bytes),
1088 STAT_RTNL(rx_errors),
1089 STAT_RTNL(tx_errors),
1090 STAT_RTNL(rx_dropped),
1091 STAT_RTNL(tx_dropped),
1092 STAT_RTNL(multicast),
1093 STAT_RTNL(rx_missed_errors),
1094 STAT_RTNL(rx_length_errors),
1095 STAT_RTNL(rx_over_errors),
1096 STAT_RTNL(rx_crc_errors),
1097 STAT_RTNL(rx_frame_errors),
1098 /* UniMAC RSV counters */
1099 STAT_GENET_MIB_RX("rx_64_octets", mib.rx.pkt_cnt.cnt_64),
1100 STAT_GENET_MIB_RX("rx_65_127_oct", mib.rx.pkt_cnt.cnt_127),
1101 STAT_GENET_MIB_RX("rx_128_255_oct", mib.rx.pkt_cnt.cnt_255),
1102 STAT_GENET_MIB_RX("rx_256_511_oct", mib.rx.pkt_cnt.cnt_511),
1103 STAT_GENET_MIB_RX("rx_512_1023_oct", mib.rx.pkt_cnt.cnt_1023),
1104 STAT_GENET_MIB_RX("rx_1024_1518_oct", mib.rx.pkt_cnt.cnt_1518),
1105 STAT_GENET_MIB_RX("rx_vlan_1519_1522_oct", mib.rx.pkt_cnt.cnt_mgv),
1106 STAT_GENET_MIB_RX("rx_1522_2047_oct", mib.rx.pkt_cnt.cnt_2047),
1107 STAT_GENET_MIB_RX("rx_2048_4095_oct", mib.rx.pkt_cnt.cnt_4095),
1108 STAT_GENET_MIB_RX("rx_4096_9216_oct", mib.rx.pkt_cnt.cnt_9216),
1109 STAT_GENET_MIB_RX("rx_pkts", mib.rx.pkt),
1110 STAT_GENET_MIB_RX("rx_bytes", mib.rx.bytes),
1111 STAT_GENET_MIB_RX("rx_multicast", mib.rx.mca),
1112 STAT_GENET_MIB_RX("rx_broadcast", mib.rx.bca),
1113 STAT_GENET_MIB_RX("rx_fcs", mib.rx.fcs),
1114 STAT_GENET_MIB_RX("rx_control", mib.rx.cf),
1115 STAT_GENET_MIB_RX("rx_pause", mib.rx.pf),
1116 STAT_GENET_MIB_RX("rx_unknown", mib.rx.uo),
1117 STAT_GENET_MIB_RX("rx_align", mib.rx.aln),
1118 STAT_GENET_MIB_RX("rx_outrange", mib.rx.flr),
1119 STAT_GENET_MIB_RX("rx_code", mib.rx.cde),
1120 STAT_GENET_MIB_RX("rx_carrier", mib.rx.fcr),
1121 STAT_GENET_MIB_RX("rx_oversize", mib.rx.ovr),
1122 STAT_GENET_MIB_RX("rx_jabber", mib.rx.jbr),
1123 STAT_GENET_MIB_RX("rx_mtu_err", mib.rx.mtue),
1124 STAT_GENET_MIB_RX("rx_good_pkts", mib.rx.pok),
1125 STAT_GENET_MIB_RX("rx_unicast", mib.rx.uc),
1126 STAT_GENET_MIB_RX("rx_ppp", mib.rx.ppp),
1127 STAT_GENET_MIB_RX("rx_crc", mib.rx.rcrc),
1128 /* UniMAC TSV counters */
1129 STAT_GENET_MIB_TX("tx_64_octets", mib.tx.pkt_cnt.cnt_64),
1130 STAT_GENET_MIB_TX("tx_65_127_oct", mib.tx.pkt_cnt.cnt_127),
1131 STAT_GENET_MIB_TX("tx_128_255_oct", mib.tx.pkt_cnt.cnt_255),
1132 STAT_GENET_MIB_TX("tx_256_511_oct", mib.tx.pkt_cnt.cnt_511),
1133 STAT_GENET_MIB_TX("tx_512_1023_oct", mib.tx.pkt_cnt.cnt_1023),
1134 STAT_GENET_MIB_TX("tx_1024_1518_oct", mib.tx.pkt_cnt.cnt_1518),
1135 STAT_GENET_MIB_TX("tx_vlan_1519_1522_oct", mib.tx.pkt_cnt.cnt_mgv),
1136 STAT_GENET_MIB_TX("tx_1522_2047_oct", mib.tx.pkt_cnt.cnt_2047),
1137 STAT_GENET_MIB_TX("tx_2048_4095_oct", mib.tx.pkt_cnt.cnt_4095),
1138 STAT_GENET_MIB_TX("tx_4096_9216_oct", mib.tx.pkt_cnt.cnt_9216),
1139 STAT_GENET_MIB_TX("tx_pkts", mib.tx.pkts),
1140 STAT_GENET_MIB_TX("tx_multicast", mib.tx.mca),
1141 STAT_GENET_MIB_TX("tx_broadcast", mib.tx.bca),
1142 STAT_GENET_MIB_TX("tx_pause", mib.tx.pf),
1143 STAT_GENET_MIB_TX("tx_control", mib.tx.cf),
1144 STAT_GENET_MIB_TX("tx_fcs_err", mib.tx.fcs),
1145 STAT_GENET_MIB_TX("tx_oversize", mib.tx.ovr),
1146 STAT_GENET_MIB_TX("tx_defer", mib.tx.drf),
1147 STAT_GENET_MIB_TX("tx_excess_defer", mib.tx.edf),
1148 STAT_GENET_MIB_TX("tx_single_col", mib.tx.scl),
1149 STAT_GENET_MIB_TX("tx_multi_col", mib.tx.mcl),
1150 STAT_GENET_MIB_TX("tx_late_col", mib.tx.lcl),
1151 STAT_GENET_MIB_TX("tx_excess_col", mib.tx.ecl),
1152 STAT_GENET_MIB_TX("tx_frags", mib.tx.frg),
1153 STAT_GENET_MIB_TX("tx_total_col", mib.tx.ncl),
1154 STAT_GENET_MIB_TX("tx_jabber", mib.tx.jbr),
1155 STAT_GENET_MIB_TX("tx_bytes", mib.tx.bytes),
1156 STAT_GENET_MIB_TX("tx_good_pkts", mib.tx.pok),
1157 STAT_GENET_MIB_TX("tx_unicast", mib.tx.uc),
1158 /* UniMAC RUNT counters */
1159 STAT_GENET_RUNT("rx_runt_pkts", mib.rx_runt_cnt),
1160 STAT_GENET_RUNT("rx_runt_valid_fcs", mib.rx_runt_fcs),
1161 STAT_GENET_RUNT("rx_runt_inval_fcs_align", mib.rx_runt_fcs_align),
1162 STAT_GENET_RUNT("rx_runt_bytes", mib.rx_runt_bytes),
1163 /* Misc UniMAC counters */
1164 STAT_GENET_MISC("rbuf_ovflow_cnt", mib.rbuf_ovflow_cnt,
1165 UMAC_RBUF_OVFL_CNT_V1),
1166 STAT_GENET_MISC("rbuf_err_cnt", mib.rbuf_err_cnt,
1167 UMAC_RBUF_ERR_CNT_V1),
1168 STAT_GENET_MISC("mdf_err_cnt", mib.mdf_err_cnt, UMAC_MDF_ERR_CNT),
1169 STAT_GENET_SOFT_MIB("alloc_rx_buff_failed", mib.alloc_rx_buff_failed),
1170 STAT_GENET_SOFT_MIB("tx_dma_failed", mib.tx_dma_failed),
1171 STAT_GENET_SOFT_MIB("tx_realloc_tsb", mib.tx_realloc_tsb),
1172 STAT_GENET_SOFT_MIB("tx_realloc_tsb_failed",
1173 mib.tx_realloc_tsb_failed),
1174 /* Per TX queues */
1175 STAT_GENET_Q(0),
1176 STAT_GENET_Q(1),
1177 STAT_GENET_Q(2),
1178 STAT_GENET_Q(3),
1179 STAT_GENET_Q(4),
1180 };
1181
1182 #define BCMGENET_STATS_LEN ARRAY_SIZE(bcmgenet_gstrings_stats)
1183
1184 #define BCMGENET_STATS64_ADD(stats, m, v) \
1185 do { \
1186 u64_stats_update_begin(&stats->syncp); \
1187 u64_stats_add(&stats->m, v); \
1188 u64_stats_update_end(&stats->syncp); \
1189 } while (0)
1190
1191 #define BCMGENET_STATS64_INC(stats, m) \
1192 do { \
1193 u64_stats_update_begin(&stats->syncp); \
1194 u64_stats_inc(&stats->m); \
1195 u64_stats_update_end(&stats->syncp); \
1196 } while (0)
1197
bcmgenet_get_drvinfo(struct net_device * dev,struct ethtool_drvinfo * info)1198 static void bcmgenet_get_drvinfo(struct net_device *dev,
1199 struct ethtool_drvinfo *info)
1200 {
1201 strscpy(info->driver, "bcmgenet", sizeof(info->driver));
1202 }
1203
bcmgenet_get_sset_count(struct net_device * dev,int string_set)1204 static int bcmgenet_get_sset_count(struct net_device *dev, int string_set)
1205 {
1206 switch (string_set) {
1207 case ETH_SS_STATS:
1208 return BCMGENET_STATS_LEN;
1209 default:
1210 return -EOPNOTSUPP;
1211 }
1212 }
1213
bcmgenet_get_strings(struct net_device * dev,u32 stringset,u8 * data)1214 static void bcmgenet_get_strings(struct net_device *dev, u32 stringset,
1215 u8 *data)
1216 {
1217 const char *str;
1218 int i;
1219
1220 switch (stringset) {
1221 case ETH_SS_STATS:
1222 for (i = 0; i < BCMGENET_STATS_LEN; i++) {
1223 str = bcmgenet_gstrings_stats[i].stat_string;
1224 ethtool_puts(&data, str);
1225 }
1226 break;
1227 }
1228 }
1229
bcmgenet_update_stat_misc(struct bcmgenet_priv * priv,u16 offset)1230 static u32 bcmgenet_update_stat_misc(struct bcmgenet_priv *priv, u16 offset)
1231 {
1232 u16 new_offset;
1233 u32 val;
1234
1235 switch (offset) {
1236 case UMAC_RBUF_OVFL_CNT_V1:
1237 if (GENET_IS_V2(priv))
1238 new_offset = RBUF_OVFL_CNT_V2;
1239 else
1240 new_offset = RBUF_OVFL_CNT_V3PLUS;
1241
1242 val = bcmgenet_rbuf_readl(priv, new_offset);
1243 /* clear if overflowed */
1244 if (val == ~0)
1245 bcmgenet_rbuf_writel(priv, 0, new_offset);
1246 break;
1247 case UMAC_RBUF_ERR_CNT_V1:
1248 if (GENET_IS_V2(priv))
1249 new_offset = RBUF_ERR_CNT_V2;
1250 else
1251 new_offset = RBUF_ERR_CNT_V3PLUS;
1252
1253 val = bcmgenet_rbuf_readl(priv, new_offset);
1254 /* clear if overflowed */
1255 if (val == ~0)
1256 bcmgenet_rbuf_writel(priv, 0, new_offset);
1257 break;
1258 default:
1259 val = bcmgenet_umac_readl(priv, offset);
1260 /* clear if overflowed */
1261 if (val == ~0)
1262 bcmgenet_umac_writel(priv, 0, offset);
1263 break;
1264 }
1265
1266 return val;
1267 }
1268
bcmgenet_update_mib_counters(struct bcmgenet_priv * priv)1269 static void bcmgenet_update_mib_counters(struct bcmgenet_priv *priv)
1270 {
1271 int i, j = 0;
1272
1273 for (i = 0; i < BCMGENET_STATS_LEN; i++) {
1274 const struct bcmgenet_stats *s;
1275 u8 offset = 0;
1276 u32 val = 0;
1277 char *p;
1278
1279 s = &bcmgenet_gstrings_stats[i];
1280 switch (s->type) {
1281 case BCMGENET_STAT_RTNL:
1282 case BCMGENET_STAT_SOFT:
1283 case BCMGENET_STAT_SOFT64:
1284 continue;
1285 case BCMGENET_STAT_RUNT:
1286 offset += BCMGENET_STAT_OFFSET;
1287 fallthrough;
1288 case BCMGENET_STAT_MIB_TX:
1289 offset += BCMGENET_STAT_OFFSET;
1290 fallthrough;
1291 case BCMGENET_STAT_MIB_RX:
1292 val = bcmgenet_umac_readl(priv,
1293 UMAC_MIB_START + j + offset);
1294 offset = 0; /* Reset Offset */
1295 break;
1296 case BCMGENET_STAT_MISC:
1297 if (GENET_IS_V1(priv)) {
1298 val = bcmgenet_umac_readl(priv, s->reg_offset);
1299 /* clear if overflowed */
1300 if (val == ~0)
1301 bcmgenet_umac_writel(priv, 0,
1302 s->reg_offset);
1303 } else {
1304 val = bcmgenet_update_stat_misc(priv,
1305 s->reg_offset);
1306 }
1307 break;
1308 }
1309
1310 j += s->stat_sizeof;
1311 p = (char *)priv + s->stat_offset;
1312 *(u32 *)p = val;
1313 }
1314 }
1315
bcmgenet_get_ethtool_stats(struct net_device * dev,struct ethtool_stats * stats,u64 * data)1316 static void bcmgenet_get_ethtool_stats(struct net_device *dev,
1317 struct ethtool_stats *stats,
1318 u64 *data)
1319 {
1320 struct bcmgenet_priv *priv = netdev_priv(dev);
1321 struct rtnl_link_stats64 stats64;
1322 struct u64_stats_sync *syncp;
1323 unsigned int start;
1324 int i;
1325
1326 if (netif_running(dev))
1327 bcmgenet_update_mib_counters(priv);
1328
1329 dev_get_stats(dev, &stats64);
1330
1331 for (i = 0; i < BCMGENET_STATS_LEN; i++) {
1332 const struct bcmgenet_stats *s;
1333 char *p;
1334
1335 s = &bcmgenet_gstrings_stats[i];
1336 p = (char *)priv;
1337
1338 if (s->type == BCMGENET_STAT_SOFT64) {
1339 syncp = (struct u64_stats_sync *)(p + s->syncp_offset);
1340 do {
1341 start = u64_stats_fetch_begin(syncp);
1342 data[i] = u64_stats_read((u64_stats_t *)(p + s->stat_offset));
1343 } while (u64_stats_fetch_retry(syncp, start));
1344 } else {
1345 if (s->type == BCMGENET_STAT_RTNL)
1346 p = (char *)&stats64;
1347
1348 p += s->stat_offset;
1349 if (sizeof(unsigned long) != sizeof(u32) &&
1350 s->stat_sizeof == sizeof(unsigned long))
1351 data[i] = *(unsigned long *)p;
1352 else
1353 data[i] = *(u32 *)p;
1354 }
1355 }
1356 }
1357
bcmgenet_eee_enable_set(struct net_device * dev,bool enable)1358 void bcmgenet_eee_enable_set(struct net_device *dev, bool enable)
1359 {
1360 struct bcmgenet_priv *priv = netdev_priv(dev);
1361 u32 off = priv->hw_params->tbuf_offset + TBUF_ENERGY_CTRL;
1362 u32 reg;
1363
1364 if (enable && !priv->clk_eee_enabled) {
1365 clk_prepare_enable(priv->clk_eee);
1366 priv->clk_eee_enabled = true;
1367 }
1368
1369 reg = bcmgenet_umac_readl(priv, UMAC_EEE_CTRL);
1370 if (enable)
1371 reg |= EEE_EN;
1372 else
1373 reg &= ~EEE_EN;
1374 bcmgenet_umac_writel(priv, reg, UMAC_EEE_CTRL);
1375
1376 /* Enable EEE and switch to a 27Mhz clock automatically */
1377 reg = bcmgenet_readl(priv->base + off);
1378 if (enable)
1379 reg |= TBUF_EEE_EN | TBUF_PM_EN;
1380 else
1381 reg &= ~(TBUF_EEE_EN | TBUF_PM_EN);
1382 bcmgenet_writel(reg, priv->base + off);
1383
1384 /* RBUF EEE/PM can break the RX path on GENET. Keep it disabled. */
1385 reg = bcmgenet_rbuf_readl(priv, RBUF_ENERGY_CTRL);
1386 if (reg & (RBUF_EEE_EN | RBUF_PM_EN)) {
1387 reg &= ~(RBUF_EEE_EN | RBUF_PM_EN);
1388 bcmgenet_rbuf_writel(priv, reg, RBUF_ENERGY_CTRL);
1389 }
1390
1391 if (!enable && priv->clk_eee_enabled) {
1392 clk_disable_unprepare(priv->clk_eee);
1393 priv->clk_eee_enabled = false;
1394 }
1395
1396 }
1397
bcmgenet_get_eee(struct net_device * dev,struct ethtool_keee * e)1398 static int bcmgenet_get_eee(struct net_device *dev, struct ethtool_keee *e)
1399 {
1400 struct bcmgenet_priv *priv = netdev_priv(dev);
1401 int ret;
1402
1403 if (GENET_IS_V1(priv))
1404 return -EOPNOTSUPP;
1405
1406 if (!dev->phydev)
1407 return -ENODEV;
1408
1409 ret = phy_ethtool_get_eee(dev->phydev, e);
1410 if (ret)
1411 return ret;
1412
1413 /* tx_lpi_timer is maintained by the MAC hardware register; the
1414 * PHY-level eee_cfg timer is not set for GENET.
1415 */
1416 e->tx_lpi_timer = bcmgenet_umac_readl(priv, UMAC_EEE_LPI_TIMER);
1417
1418 return 0;
1419 }
1420
bcmgenet_set_eee(struct net_device * dev,struct ethtool_keee * e)1421 static int bcmgenet_set_eee(struct net_device *dev, struct ethtool_keee *e)
1422 {
1423 struct bcmgenet_priv *priv = netdev_priv(dev);
1424
1425 if (GENET_IS_V1(priv))
1426 return -EOPNOTSUPP;
1427
1428 if (!dev->phydev)
1429 return -ENODEV;
1430
1431 bcmgenet_umac_writel(priv, e->tx_lpi_timer, UMAC_EEE_LPI_TIMER);
1432
1433 return phy_ethtool_set_eee(dev->phydev, e);
1434 }
1435
bcmgenet_validate_flow(struct net_device * dev,struct ethtool_rxnfc * cmd)1436 static int bcmgenet_validate_flow(struct net_device *dev,
1437 struct ethtool_rxnfc *cmd)
1438 {
1439 struct ethtool_usrip4_spec *l4_mask;
1440 struct ethhdr *eth_mask;
1441
1442 if (cmd->fs.location >= MAX_NUM_OF_FS_RULES &&
1443 cmd->fs.location != RX_CLS_LOC_ANY) {
1444 netdev_err(dev, "rxnfc: Invalid location (%d)\n",
1445 cmd->fs.location);
1446 return -EINVAL;
1447 }
1448
1449 switch (cmd->fs.flow_type & ~(FLOW_EXT | FLOW_MAC_EXT)) {
1450 case IP_USER_FLOW:
1451 l4_mask = &cmd->fs.m_u.usr_ip4_spec;
1452 /* don't allow mask which isn't valid */
1453 if (VALIDATE_MASK(l4_mask->ip4src) ||
1454 VALIDATE_MASK(l4_mask->ip4dst) ||
1455 VALIDATE_MASK(l4_mask->l4_4_bytes) ||
1456 VALIDATE_MASK(l4_mask->proto) ||
1457 VALIDATE_MASK(l4_mask->ip_ver) ||
1458 VALIDATE_MASK(l4_mask->tos)) {
1459 netdev_err(dev, "rxnfc: Unsupported mask\n");
1460 return -EINVAL;
1461 }
1462 break;
1463 case ETHER_FLOW:
1464 eth_mask = &cmd->fs.m_u.ether_spec;
1465 /* don't allow mask which isn't valid */
1466 if (VALIDATE_MASK(eth_mask->h_dest) ||
1467 VALIDATE_MASK(eth_mask->h_source) ||
1468 VALIDATE_MASK(eth_mask->h_proto)) {
1469 netdev_err(dev, "rxnfc: Unsupported mask\n");
1470 return -EINVAL;
1471 }
1472 break;
1473 default:
1474 netdev_err(dev, "rxnfc: Unsupported flow type (0x%x)\n",
1475 cmd->fs.flow_type);
1476 return -EINVAL;
1477 }
1478
1479 if ((cmd->fs.flow_type & FLOW_EXT)) {
1480 /* don't allow mask which isn't valid */
1481 if (VALIDATE_MASK(cmd->fs.m_ext.vlan_etype) ||
1482 VALIDATE_MASK(cmd->fs.m_ext.vlan_tci)) {
1483 netdev_err(dev, "rxnfc: Unsupported mask\n");
1484 return -EINVAL;
1485 }
1486 if (cmd->fs.m_ext.data[0] || cmd->fs.m_ext.data[1]) {
1487 netdev_err(dev, "rxnfc: user-def not supported\n");
1488 return -EINVAL;
1489 }
1490 }
1491
1492 if ((cmd->fs.flow_type & FLOW_MAC_EXT)) {
1493 /* don't allow mask which isn't valid */
1494 if (VALIDATE_MASK(cmd->fs.m_ext.h_dest)) {
1495 netdev_err(dev, "rxnfc: Unsupported mask\n");
1496 return -EINVAL;
1497 }
1498 }
1499
1500 return 0;
1501 }
1502
bcmgenet_insert_flow(struct net_device * dev,struct ethtool_rxnfc * cmd)1503 static int bcmgenet_insert_flow(struct net_device *dev,
1504 struct ethtool_rxnfc *cmd)
1505 {
1506 struct bcmgenet_priv *priv = netdev_priv(dev);
1507 struct bcmgenet_rxnfc_rule *loc_rule;
1508 int err, i;
1509
1510 if (priv->hw_params->hfb_filter_size < 128) {
1511 netdev_err(dev, "rxnfc: Not supported by this device\n");
1512 return -EINVAL;
1513 }
1514
1515 if (cmd->fs.ring_cookie > priv->hw_params->rx_queues &&
1516 cmd->fs.ring_cookie != RX_CLS_FLOW_WAKE &&
1517 cmd->fs.ring_cookie != RX_CLS_FLOW_DISC) {
1518 netdev_err(dev, "rxnfc: Unsupported action (%llu)\n",
1519 cmd->fs.ring_cookie);
1520 return -EINVAL;
1521 }
1522
1523 err = bcmgenet_validate_flow(dev, cmd);
1524 if (err)
1525 return err;
1526
1527 if (cmd->fs.location == RX_CLS_LOC_ANY) {
1528 list_for_each_entry(loc_rule, &priv->rxnfc_list, list) {
1529 cmd->fs.location = loc_rule->fs.location;
1530 err = memcmp(&loc_rule->fs, &cmd->fs,
1531 sizeof(struct ethtool_rx_flow_spec));
1532 if (!err)
1533 /* rule exists so return current location */
1534 return 0;
1535 }
1536 for (i = 0; i < MAX_NUM_OF_FS_RULES; i++) {
1537 loc_rule = &priv->rxnfc_rules[i];
1538 if (loc_rule->state == BCMGENET_RXNFC_STATE_UNUSED) {
1539 cmd->fs.location = i;
1540 break;
1541 }
1542 }
1543 if (i == MAX_NUM_OF_FS_RULES) {
1544 cmd->fs.location = RX_CLS_LOC_ANY;
1545 return -ENOSPC;
1546 }
1547 } else {
1548 loc_rule = &priv->rxnfc_rules[cmd->fs.location];
1549 }
1550 if (loc_rule->state == BCMGENET_RXNFC_STATE_ENABLED)
1551 bcmgenet_hfb_disable_filter(priv, cmd->fs.location + 1);
1552 if (loc_rule->state != BCMGENET_RXNFC_STATE_UNUSED) {
1553 list_del(&loc_rule->list);
1554 bcmgenet_hfb_clear_filter(priv, cmd->fs.location + 1);
1555 }
1556 loc_rule->state = BCMGENET_RXNFC_STATE_UNUSED;
1557 memcpy(&loc_rule->fs, &cmd->fs,
1558 sizeof(struct ethtool_rx_flow_spec));
1559
1560 bcmgenet_hfb_create_rxnfc_filter(priv, loc_rule);
1561
1562 list_add_tail(&loc_rule->list, &priv->rxnfc_list);
1563
1564 return 0;
1565 }
1566
bcmgenet_delete_flow(struct net_device * dev,struct ethtool_rxnfc * cmd)1567 static int bcmgenet_delete_flow(struct net_device *dev,
1568 struct ethtool_rxnfc *cmd)
1569 {
1570 struct bcmgenet_priv *priv = netdev_priv(dev);
1571 struct bcmgenet_rxnfc_rule *rule;
1572 int err = 0;
1573
1574 if (cmd->fs.location >= MAX_NUM_OF_FS_RULES)
1575 return -EINVAL;
1576
1577 rule = &priv->rxnfc_rules[cmd->fs.location];
1578 if (rule->state == BCMGENET_RXNFC_STATE_UNUSED) {
1579 err = -ENOENT;
1580 goto out;
1581 }
1582
1583 if (rule->state == BCMGENET_RXNFC_STATE_ENABLED)
1584 bcmgenet_hfb_disable_filter(priv, cmd->fs.location + 1);
1585 if (rule->state != BCMGENET_RXNFC_STATE_UNUSED) {
1586 list_del(&rule->list);
1587 bcmgenet_hfb_clear_filter(priv, cmd->fs.location + 1);
1588 }
1589 rule->state = BCMGENET_RXNFC_STATE_UNUSED;
1590 memset(&rule->fs, 0, sizeof(struct ethtool_rx_flow_spec));
1591
1592 out:
1593 return err;
1594 }
1595
bcmgenet_set_rxnfc(struct net_device * dev,struct ethtool_rxnfc * cmd)1596 static int bcmgenet_set_rxnfc(struct net_device *dev, struct ethtool_rxnfc *cmd)
1597 {
1598 struct bcmgenet_priv *priv = netdev_priv(dev);
1599 int err = 0;
1600
1601 switch (cmd->cmd) {
1602 case ETHTOOL_SRXCLSRLINS:
1603 err = bcmgenet_insert_flow(dev, cmd);
1604 break;
1605 case ETHTOOL_SRXCLSRLDEL:
1606 err = bcmgenet_delete_flow(dev, cmd);
1607 break;
1608 default:
1609 netdev_warn(priv->dev, "Unsupported ethtool command. (%d)\n",
1610 cmd->cmd);
1611 return -EINVAL;
1612 }
1613
1614 return err;
1615 }
1616
bcmgenet_get_flow(struct net_device * dev,struct ethtool_rxnfc * cmd,int loc)1617 static int bcmgenet_get_flow(struct net_device *dev, struct ethtool_rxnfc *cmd,
1618 int loc)
1619 {
1620 struct bcmgenet_priv *priv = netdev_priv(dev);
1621 struct bcmgenet_rxnfc_rule *rule;
1622 int err = 0;
1623
1624 if (loc < 0 || loc >= MAX_NUM_OF_FS_RULES)
1625 return -EINVAL;
1626
1627 rule = &priv->rxnfc_rules[loc];
1628 if (rule->state == BCMGENET_RXNFC_STATE_UNUSED)
1629 err = -ENOENT;
1630 else
1631 memcpy(&cmd->fs, &rule->fs,
1632 sizeof(struct ethtool_rx_flow_spec));
1633
1634 return err;
1635 }
1636
bcmgenet_get_num_flows(struct bcmgenet_priv * priv)1637 static int bcmgenet_get_num_flows(struct bcmgenet_priv *priv)
1638 {
1639 struct list_head *pos;
1640 int res = 0;
1641
1642 list_for_each(pos, &priv->rxnfc_list)
1643 res++;
1644
1645 return res;
1646 }
1647
bcmgenet_get_rx_ring_count(struct net_device * dev)1648 static u32 bcmgenet_get_rx_ring_count(struct net_device *dev)
1649 {
1650 struct bcmgenet_priv *priv = netdev_priv(dev);
1651
1652 return priv->hw_params->rx_queues ?: 1;
1653 }
1654
bcmgenet_get_rxnfc(struct net_device * dev,struct ethtool_rxnfc * cmd,u32 * rule_locs)1655 static int bcmgenet_get_rxnfc(struct net_device *dev, struct ethtool_rxnfc *cmd,
1656 u32 *rule_locs)
1657 {
1658 struct bcmgenet_priv *priv = netdev_priv(dev);
1659 struct bcmgenet_rxnfc_rule *rule;
1660 int err = 0;
1661 int i = 0;
1662
1663 switch (cmd->cmd) {
1664 case ETHTOOL_GRXCLSRLCNT:
1665 cmd->rule_cnt = bcmgenet_get_num_flows(priv);
1666 cmd->data = MAX_NUM_OF_FS_RULES | RX_CLS_LOC_SPECIAL;
1667 break;
1668 case ETHTOOL_GRXCLSRULE:
1669 err = bcmgenet_get_flow(dev, cmd, cmd->fs.location);
1670 break;
1671 case ETHTOOL_GRXCLSRLALL:
1672 list_for_each_entry(rule, &priv->rxnfc_list, list)
1673 if (i < cmd->rule_cnt)
1674 rule_locs[i++] = rule->fs.location;
1675 cmd->rule_cnt = i;
1676 cmd->data = MAX_NUM_OF_FS_RULES;
1677 break;
1678 default:
1679 err = -EOPNOTSUPP;
1680 break;
1681 }
1682
1683 return err;
1684 }
1685
1686 /* standard ethtool support functions. */
1687 static const struct ethtool_ops bcmgenet_ethtool_ops = {
1688 .supported_coalesce_params = ETHTOOL_COALESCE_RX_USECS |
1689 ETHTOOL_COALESCE_MAX_FRAMES |
1690 ETHTOOL_COALESCE_USE_ADAPTIVE_RX,
1691 .begin = bcmgenet_begin,
1692 .complete = bcmgenet_complete,
1693 .get_strings = bcmgenet_get_strings,
1694 .get_sset_count = bcmgenet_get_sset_count,
1695 .get_ethtool_stats = bcmgenet_get_ethtool_stats,
1696 .get_drvinfo = bcmgenet_get_drvinfo,
1697 .get_link = ethtool_op_get_link,
1698 .get_msglevel = bcmgenet_get_msglevel,
1699 .set_msglevel = bcmgenet_set_msglevel,
1700 .get_wol = bcmgenet_get_wol,
1701 .set_wol = bcmgenet_set_wol,
1702 .get_eee = bcmgenet_get_eee,
1703 .set_eee = bcmgenet_set_eee,
1704 .nway_reset = phy_ethtool_nway_reset,
1705 .get_coalesce = bcmgenet_get_coalesce,
1706 .set_coalesce = bcmgenet_set_coalesce,
1707 .get_link_ksettings = bcmgenet_get_link_ksettings,
1708 .set_link_ksettings = bcmgenet_set_link_ksettings,
1709 .get_ts_info = ethtool_op_get_ts_info,
1710 .get_rxnfc = bcmgenet_get_rxnfc,
1711 .set_rxnfc = bcmgenet_set_rxnfc,
1712 .get_rx_ring_count = bcmgenet_get_rx_ring_count,
1713 .get_pauseparam = bcmgenet_get_pauseparam,
1714 .set_pauseparam = bcmgenet_set_pauseparam,
1715 };
1716
1717 /* Power down the unimac, based on mode. */
bcmgenet_power_down(struct bcmgenet_priv * priv,enum bcmgenet_power_mode mode)1718 static int bcmgenet_power_down(struct bcmgenet_priv *priv,
1719 enum bcmgenet_power_mode mode)
1720 {
1721 int ret = 0;
1722 u32 reg;
1723
1724 switch (mode) {
1725 case GENET_POWER_CABLE_SENSE:
1726 phy_detach(priv->dev->phydev);
1727 break;
1728
1729 case GENET_POWER_WOL_MAGIC:
1730 ret = bcmgenet_wol_power_down_cfg(priv, mode);
1731 break;
1732
1733 case GENET_POWER_PASSIVE:
1734 /* Power down LED */
1735 if (bcmgenet_has_ext(priv)) {
1736 reg = bcmgenet_ext_readl(priv, EXT_EXT_PWR_MGMT);
1737 if (GENET_IS_V5(priv) && !bcmgenet_has_ephy_16nm(priv))
1738 reg |= EXT_PWR_DOWN_PHY_EN |
1739 EXT_PWR_DOWN_PHY_RD |
1740 EXT_PWR_DOWN_PHY_SD |
1741 EXT_PWR_DOWN_PHY_RX |
1742 EXT_PWR_DOWN_PHY_TX |
1743 EXT_IDDQ_GLBL_PWR;
1744 else
1745 reg |= EXT_PWR_DOWN_PHY;
1746
1747 reg |= (EXT_PWR_DOWN_DLL | EXT_PWR_DOWN_BIAS);
1748 bcmgenet_ext_writel(priv, reg, EXT_EXT_PWR_MGMT);
1749
1750 bcmgenet_phy_power_set(priv->dev, false);
1751 }
1752 break;
1753 default:
1754 break;
1755 }
1756
1757 return ret;
1758 }
1759
bcmgenet_power_up(struct bcmgenet_priv * priv,enum bcmgenet_power_mode mode)1760 static int bcmgenet_power_up(struct bcmgenet_priv *priv,
1761 enum bcmgenet_power_mode mode)
1762 {
1763 int ret = 0;
1764 u32 reg;
1765
1766 if (!bcmgenet_has_ext(priv))
1767 return ret;
1768
1769 reg = bcmgenet_ext_readl(priv, EXT_EXT_PWR_MGMT);
1770
1771 switch (mode) {
1772 case GENET_POWER_PASSIVE:
1773 reg &= ~(EXT_PWR_DOWN_DLL | EXT_PWR_DOWN_BIAS |
1774 EXT_ENERGY_DET_MASK);
1775 if (GENET_IS_V5(priv) && !bcmgenet_has_ephy_16nm(priv)) {
1776 reg &= ~(EXT_PWR_DOWN_PHY_EN |
1777 EXT_PWR_DOWN_PHY_RD |
1778 EXT_PWR_DOWN_PHY_SD |
1779 EXT_PWR_DOWN_PHY_RX |
1780 EXT_PWR_DOWN_PHY_TX |
1781 EXT_IDDQ_GLBL_PWR);
1782 reg |= EXT_PHY_RESET;
1783 bcmgenet_ext_writel(priv, reg, EXT_EXT_PWR_MGMT);
1784 mdelay(1);
1785
1786 reg &= ~EXT_PHY_RESET;
1787 } else {
1788 reg &= ~EXT_PWR_DOWN_PHY;
1789 reg |= EXT_PWR_DN_EN_LD;
1790 }
1791 bcmgenet_ext_writel(priv, reg, EXT_EXT_PWR_MGMT);
1792 bcmgenet_phy_power_set(priv->dev, true);
1793 break;
1794
1795 case GENET_POWER_CABLE_SENSE:
1796 /* enable APD */
1797 if (!GENET_IS_V5(priv)) {
1798 reg |= EXT_PWR_DN_EN_LD;
1799 bcmgenet_ext_writel(priv, reg, EXT_EXT_PWR_MGMT);
1800 }
1801 break;
1802 case GENET_POWER_WOL_MAGIC:
1803 ret = bcmgenet_wol_power_up_cfg(priv, mode);
1804 break;
1805 default:
1806 break;
1807 }
1808
1809 return ret;
1810 }
1811
bcmgenet_get_txcb(struct bcmgenet_priv * priv,struct bcmgenet_tx_ring * ring)1812 static struct enet_cb *bcmgenet_get_txcb(struct bcmgenet_priv *priv,
1813 struct bcmgenet_tx_ring *ring)
1814 {
1815 struct enet_cb *tx_cb_ptr;
1816
1817 tx_cb_ptr = ring->cbs;
1818 tx_cb_ptr += ring->write_ptr - ring->cb_ptr;
1819
1820 /* Advancing local write pointer */
1821 if (ring->write_ptr == ring->end_ptr)
1822 ring->write_ptr = ring->cb_ptr;
1823 else
1824 ring->write_ptr++;
1825
1826 return tx_cb_ptr;
1827 }
1828
bcmgenet_put_txcb(struct bcmgenet_priv * priv,struct bcmgenet_tx_ring * ring)1829 static struct enet_cb *bcmgenet_put_txcb(struct bcmgenet_priv *priv,
1830 struct bcmgenet_tx_ring *ring)
1831 {
1832 struct enet_cb *tx_cb_ptr;
1833
1834 /* Rewinding local write pointer */
1835 if (ring->write_ptr == ring->cb_ptr)
1836 ring->write_ptr = ring->end_ptr;
1837 else
1838 ring->write_ptr--;
1839
1840 tx_cb_ptr = ring->cbs;
1841 tx_cb_ptr += ring->write_ptr - ring->cb_ptr;
1842
1843 return tx_cb_ptr;
1844 }
1845
bcmgenet_rx_ring_int_disable(struct bcmgenet_rx_ring * ring)1846 static inline void bcmgenet_rx_ring_int_disable(struct bcmgenet_rx_ring *ring)
1847 {
1848 bcmgenet_intrl2_1_writel(ring->priv,
1849 1 << (UMAC_IRQ1_RX_INTR_SHIFT + ring->index),
1850 INTRL2_CPU_MASK_SET);
1851 }
1852
bcmgenet_rx_ring_int_enable(struct bcmgenet_rx_ring * ring)1853 static inline void bcmgenet_rx_ring_int_enable(struct bcmgenet_rx_ring *ring)
1854 {
1855 bcmgenet_intrl2_1_writel(ring->priv,
1856 1 << (UMAC_IRQ1_RX_INTR_SHIFT + ring->index),
1857 INTRL2_CPU_MASK_CLEAR);
1858 }
1859
bcmgenet_tx_ring_int_enable(struct bcmgenet_tx_ring * ring)1860 static inline void bcmgenet_tx_ring_int_enable(struct bcmgenet_tx_ring *ring)
1861 {
1862 bcmgenet_intrl2_1_writel(ring->priv, 1 << ring->index,
1863 INTRL2_CPU_MASK_CLEAR);
1864 }
1865
bcmgenet_tx_ring_int_disable(struct bcmgenet_tx_ring * ring)1866 static inline void bcmgenet_tx_ring_int_disable(struct bcmgenet_tx_ring *ring)
1867 {
1868 bcmgenet_intrl2_1_writel(ring->priv, 1 << ring->index,
1869 INTRL2_CPU_MASK_SET);
1870 }
1871
1872 /* Simple helper to free a transmit control block's resources
1873 * Returns an skb when the last transmit control block associated with the
1874 * skb is freed. The skb should be freed by the caller if necessary.
1875 */
bcmgenet_free_tx_cb(struct device * dev,struct enet_cb * cb)1876 static struct sk_buff *bcmgenet_free_tx_cb(struct device *dev,
1877 struct enet_cb *cb)
1878 {
1879 struct sk_buff *skb;
1880
1881 skb = cb->skb;
1882
1883 if (skb) {
1884 cb->skb = NULL;
1885 if (cb == GENET_CB(skb)->first_cb)
1886 dma_unmap_single(dev, dma_unmap_addr(cb, dma_addr),
1887 dma_unmap_len(cb, dma_len),
1888 DMA_TO_DEVICE);
1889 else
1890 dma_unmap_page(dev, dma_unmap_addr(cb, dma_addr),
1891 dma_unmap_len(cb, dma_len),
1892 DMA_TO_DEVICE);
1893 dma_unmap_addr_set(cb, dma_addr, 0);
1894
1895 if (cb == GENET_CB(skb)->last_cb)
1896 return skb;
1897
1898 } else if (dma_unmap_addr(cb, dma_addr)) {
1899 dma_unmap_page(dev,
1900 dma_unmap_addr(cb, dma_addr),
1901 dma_unmap_len(cb, dma_len),
1902 DMA_TO_DEVICE);
1903 dma_unmap_addr_set(cb, dma_addr, 0);
1904 }
1905
1906 return NULL;
1907 }
1908
1909 /* Simple helper to free a receive control block's resources */
bcmgenet_free_rx_cb(struct enet_cb * cb,struct page_pool * pool)1910 static void bcmgenet_free_rx_cb(struct enet_cb *cb,
1911 struct page_pool *pool)
1912 {
1913 if (cb->rx_page) {
1914 page_pool_put_full_page(pool, cb->rx_page, false);
1915 cb->rx_page = NULL;
1916 }
1917 }
1918
1919 /* Unlocked version of the reclaim routine */
__bcmgenet_tx_reclaim(struct net_device * dev,struct bcmgenet_tx_ring * ring)1920 static unsigned int __bcmgenet_tx_reclaim(struct net_device *dev,
1921 struct bcmgenet_tx_ring *ring)
1922 {
1923 struct bcmgenet_tx_stats64 *stats = &ring->stats64;
1924 struct bcmgenet_priv *priv = netdev_priv(dev);
1925 unsigned int txbds_processed = 0;
1926 unsigned int bytes_compl = 0;
1927 unsigned int pkts_compl = 0;
1928 unsigned int txbds_ready;
1929 unsigned int c_index;
1930 struct sk_buff *skb;
1931
1932 /* Clear status before servicing to reduce spurious interrupts */
1933 bcmgenet_intrl2_1_writel(priv, (1 << ring->index), INTRL2_CPU_CLEAR);
1934
1935 /* Compute how many buffers are transmitted since last xmit call */
1936 c_index = bcmgenet_tdma_ring_readl(priv, ring->index, TDMA_CONS_INDEX)
1937 & DMA_C_INDEX_MASK;
1938 txbds_ready = (c_index - ring->c_index) & DMA_C_INDEX_MASK;
1939
1940 netif_dbg(priv, tx_done, dev,
1941 "%s ring=%d old_c_index=%u c_index=%u txbds_ready=%u\n",
1942 __func__, ring->index, ring->c_index, c_index, txbds_ready);
1943
1944 /* Reclaim transmitted buffers */
1945 while (txbds_processed < txbds_ready) {
1946 skb = bcmgenet_free_tx_cb(&priv->pdev->dev,
1947 &priv->tx_cbs[ring->clean_ptr]);
1948 if (skb) {
1949 pkts_compl++;
1950 bytes_compl += GENET_CB(skb)->bytes_sent;
1951 dev_consume_skb_any(skb);
1952 }
1953
1954 txbds_processed++;
1955 if (likely(ring->clean_ptr < ring->end_ptr))
1956 ring->clean_ptr++;
1957 else
1958 ring->clean_ptr = ring->cb_ptr;
1959 }
1960
1961 ring->free_bds += txbds_processed;
1962 ring->c_index = c_index;
1963
1964 u64_stats_update_begin(&stats->syncp);
1965 u64_stats_add(&stats->packets, pkts_compl);
1966 u64_stats_add(&stats->bytes, bytes_compl);
1967 u64_stats_update_end(&stats->syncp);
1968
1969 netdev_tx_completed_queue(netdev_get_tx_queue(dev, ring->index),
1970 pkts_compl, bytes_compl);
1971
1972 return txbds_processed;
1973 }
1974
bcmgenet_tx_reclaim(struct net_device * dev,struct bcmgenet_tx_ring * ring,bool all)1975 static unsigned int bcmgenet_tx_reclaim(struct net_device *dev,
1976 struct bcmgenet_tx_ring *ring,
1977 bool all)
1978 {
1979 struct bcmgenet_priv *priv = netdev_priv(dev);
1980 struct device *kdev = &priv->pdev->dev;
1981 unsigned int released, drop, wr_ptr;
1982 struct enet_cb *cb_ptr;
1983 struct sk_buff *skb;
1984
1985 spin_lock_bh(&ring->lock);
1986 released = __bcmgenet_tx_reclaim(dev, ring);
1987 if (all) {
1988 skb = NULL;
1989 drop = (ring->prod_index - ring->c_index) & DMA_C_INDEX_MASK;
1990 released += drop;
1991 ring->prod_index = ring->c_index & DMA_C_INDEX_MASK;
1992 ring->free_bds += drop;
1993 while (drop--) {
1994 cb_ptr = bcmgenet_put_txcb(priv, ring);
1995 skb = cb_ptr->skb;
1996 bcmgenet_free_tx_cb(kdev, cb_ptr);
1997 if (skb && cb_ptr == GENET_CB(skb)->first_cb) {
1998 dev_consume_skb_any(skb);
1999 skb = NULL;
2000 }
2001 }
2002 if (skb)
2003 dev_consume_skb_any(skb);
2004 netdev_tx_reset_queue(netdev_get_tx_queue(dev, ring->index));
2005 bcmgenet_tdma_ring_writel(priv, ring->index,
2006 ring->prod_index, TDMA_PROD_INDEX);
2007 wr_ptr = ring->write_ptr * WORDS_PER_BD(priv);
2008 bcmgenet_tdma_ring_writel(priv, ring->index, wr_ptr,
2009 TDMA_WRITE_PTR);
2010 }
2011 spin_unlock_bh(&ring->lock);
2012
2013 return released;
2014 }
2015
bcmgenet_tx_poll(struct napi_struct * napi,int budget)2016 static int bcmgenet_tx_poll(struct napi_struct *napi, int budget)
2017 {
2018 struct bcmgenet_tx_ring *ring =
2019 container_of(napi, struct bcmgenet_tx_ring, napi);
2020 unsigned int work_done = 0;
2021 struct netdev_queue *txq;
2022
2023 spin_lock(&ring->lock);
2024 work_done = __bcmgenet_tx_reclaim(ring->priv->dev, ring);
2025 if (ring->free_bds > (MAX_SKB_FRAGS + 1)) {
2026 txq = netdev_get_tx_queue(ring->priv->dev, ring->index);
2027 netif_tx_wake_queue(txq);
2028 }
2029 spin_unlock(&ring->lock);
2030
2031 if (work_done == 0) {
2032 napi_complete(napi);
2033 bcmgenet_tx_ring_int_enable(ring);
2034
2035 return 0;
2036 }
2037
2038 return budget;
2039 }
2040
bcmgenet_tx_reclaim_all(struct net_device * dev)2041 static void bcmgenet_tx_reclaim_all(struct net_device *dev)
2042 {
2043 struct bcmgenet_priv *priv = netdev_priv(dev);
2044 int i = 0;
2045
2046 do {
2047 bcmgenet_tx_reclaim(dev, &priv->tx_rings[i++], true);
2048 } while (i <= priv->hw_params->tx_queues && netif_is_multiqueue(dev));
2049 }
2050
2051 /* Reallocate the SKB to put enough headroom in front of it and insert
2052 * the transmit checksum offsets in the descriptors
2053 */
bcmgenet_add_tsb(struct net_device * dev,struct sk_buff * skb,struct bcmgenet_tx_ring * ring)2054 static struct sk_buff *bcmgenet_add_tsb(struct net_device *dev,
2055 struct sk_buff *skb,
2056 struct bcmgenet_tx_ring *ring)
2057 {
2058 struct bcmgenet_tx_stats64 *stats = &ring->stats64;
2059 struct bcmgenet_priv *priv = netdev_priv(dev);
2060 struct status_64 *status = NULL;
2061 struct sk_buff *new_skb;
2062 u16 offset;
2063 u8 ip_proto;
2064 __be16 ip_ver;
2065 u32 tx_csum_info;
2066
2067 if (unlikely(skb_headroom(skb) < sizeof(*status))) {
2068 /* If 64 byte status block enabled, must make sure skb has
2069 * enough headroom for us to insert 64B status block.
2070 */
2071 new_skb = skb_realloc_headroom(skb, sizeof(*status));
2072 if (!new_skb) {
2073 dev_kfree_skb_any(skb);
2074 priv->mib.tx_realloc_tsb_failed++;
2075 BCMGENET_STATS64_INC(stats, dropped);
2076 return NULL;
2077 }
2078 dev_consume_skb_any(skb);
2079 skb = new_skb;
2080 priv->mib.tx_realloc_tsb++;
2081 }
2082
2083 skb_push(skb, sizeof(*status));
2084 status = (struct status_64 *)skb->data;
2085
2086 if (skb->ip_summed == CHECKSUM_PARTIAL) {
2087 ip_ver = skb->protocol;
2088 switch (ip_ver) {
2089 case htons(ETH_P_IP):
2090 ip_proto = ip_hdr(skb)->protocol;
2091 break;
2092 case htons(ETH_P_IPV6):
2093 ip_proto = ipv6_hdr(skb)->nexthdr;
2094 break;
2095 default:
2096 /* don't use UDP flag */
2097 ip_proto = 0;
2098 break;
2099 }
2100
2101 offset = skb_checksum_start_offset(skb) - sizeof(*status);
2102 tx_csum_info = (offset << STATUS_TX_CSUM_START_SHIFT) |
2103 (offset + skb->csum_offset) |
2104 STATUS_TX_CSUM_LV;
2105
2106 /* Set the special UDP flag for UDP */
2107 if (ip_proto == IPPROTO_UDP)
2108 tx_csum_info |= STATUS_TX_CSUM_PROTO_UDP;
2109
2110 status->tx_csum_info = tx_csum_info;
2111 }
2112
2113 return skb;
2114 }
2115
bcmgenet_hide_tsb(struct sk_buff * skb)2116 static void bcmgenet_hide_tsb(struct sk_buff *skb)
2117 {
2118 __skb_pull(skb, sizeof(struct status_64));
2119 }
2120
bcmgenet_xmit(struct sk_buff * skb,struct net_device * dev)2121 static netdev_tx_t bcmgenet_xmit(struct sk_buff *skb, struct net_device *dev)
2122 {
2123 struct bcmgenet_priv *priv = netdev_priv(dev);
2124 struct device *kdev = &priv->pdev->dev;
2125 struct bcmgenet_tx_ring *ring = NULL;
2126 struct enet_cb *tx_cb_ptr;
2127 struct netdev_queue *txq;
2128 int nr_frags, index;
2129 dma_addr_t mapping;
2130 unsigned int size;
2131 skb_frag_t *frag;
2132 u32 len_stat;
2133 int ret;
2134 int i;
2135
2136 index = skb_get_queue_mapping(skb);
2137 ring = &priv->tx_rings[index];
2138 txq = netdev_get_tx_queue(dev, index);
2139
2140 nr_frags = skb_shinfo(skb)->nr_frags;
2141
2142 spin_lock(&ring->lock);
2143 if (ring->free_bds <= (nr_frags + 1)) {
2144 if (!netif_tx_queue_stopped(txq))
2145 netif_tx_stop_queue(txq);
2146 ret = NETDEV_TX_BUSY;
2147 goto out;
2148 }
2149
2150 /* Retain how many bytes will be sent on the wire, without TSB inserted
2151 * by transmit checksum offload
2152 */
2153 GENET_CB(skb)->bytes_sent = skb->len;
2154
2155 /* add the Transmit Status Block */
2156 skb = bcmgenet_add_tsb(dev, skb, ring);
2157 if (!skb) {
2158 ret = NETDEV_TX_OK;
2159 goto out;
2160 }
2161
2162 for (i = 0; i <= nr_frags; i++) {
2163 tx_cb_ptr = bcmgenet_get_txcb(priv, ring);
2164
2165 BUG_ON(!tx_cb_ptr);
2166
2167 if (!i) {
2168 /* Transmit single SKB or head of fragment list */
2169 GENET_CB(skb)->first_cb = tx_cb_ptr;
2170 size = skb_headlen(skb);
2171 mapping = dma_map_single(kdev, skb->data, size,
2172 DMA_TO_DEVICE);
2173 } else {
2174 /* xmit fragment */
2175 frag = &skb_shinfo(skb)->frags[i - 1];
2176 size = skb_frag_size(frag);
2177 mapping = skb_frag_dma_map(kdev, frag, 0, size,
2178 DMA_TO_DEVICE);
2179 }
2180
2181 ret = dma_mapping_error(kdev, mapping);
2182 if (ret) {
2183 priv->mib.tx_dma_failed++;
2184 netif_err(priv, tx_err, dev, "Tx DMA map failed\n");
2185 ret = NETDEV_TX_OK;
2186 goto out_unmap_frags;
2187 }
2188 dma_unmap_addr_set(tx_cb_ptr, dma_addr, mapping);
2189 dma_unmap_len_set(tx_cb_ptr, dma_len, size);
2190
2191 tx_cb_ptr->skb = skb;
2192
2193 len_stat = (size << DMA_BUFLENGTH_SHIFT) |
2194 (priv->hw_params->qtag_mask << DMA_TX_QTAG_SHIFT);
2195
2196 /* Note: if we ever change from DMA_TX_APPEND_CRC below we
2197 * will need to restore software padding of "runt" packets
2198 */
2199 len_stat |= DMA_TX_APPEND_CRC;
2200
2201 if (!i) {
2202 len_stat |= DMA_SOP;
2203 if (skb->ip_summed == CHECKSUM_PARTIAL)
2204 len_stat |= DMA_TX_DO_CSUM;
2205 }
2206 if (i == nr_frags)
2207 len_stat |= DMA_EOP;
2208
2209 dmadesc_set(priv, tx_cb_ptr->bd_addr, mapping, len_stat);
2210 }
2211
2212 GENET_CB(skb)->last_cb = tx_cb_ptr;
2213
2214 bcmgenet_hide_tsb(skb);
2215 skb_tx_timestamp(skb);
2216
2217 /* Decrement total BD count and advance our write pointer */
2218 ring->free_bds -= nr_frags + 1;
2219 ring->prod_index += nr_frags + 1;
2220 ring->prod_index &= DMA_P_INDEX_MASK;
2221
2222 netdev_tx_sent_queue(txq, GENET_CB(skb)->bytes_sent);
2223
2224 if (ring->free_bds <= (MAX_SKB_FRAGS + 1))
2225 netif_tx_stop_queue(txq);
2226
2227 if (!netdev_xmit_more() || netif_xmit_stopped(txq))
2228 /* Packets are ready, update producer index */
2229 bcmgenet_tdma_ring_writel(priv, ring->index,
2230 ring->prod_index, TDMA_PROD_INDEX);
2231 out:
2232 spin_unlock(&ring->lock);
2233
2234 return ret;
2235
2236 out_unmap_frags:
2237 /* Back up for failed control block mapping */
2238 bcmgenet_put_txcb(priv, ring);
2239
2240 /* Unmap successfully mapped control blocks */
2241 while (i-- > 0) {
2242 tx_cb_ptr = bcmgenet_put_txcb(priv, ring);
2243 bcmgenet_free_tx_cb(kdev, tx_cb_ptr);
2244 }
2245
2246 dev_kfree_skb(skb);
2247 goto out;
2248 }
2249
bcmgenet_rx_refill(struct bcmgenet_rx_ring * ring,struct enet_cb * cb)2250 static int bcmgenet_rx_refill(struct bcmgenet_rx_ring *ring,
2251 struct enet_cb *cb)
2252 {
2253 struct bcmgenet_priv *priv = ring->priv;
2254 dma_addr_t mapping;
2255 struct page *page;
2256
2257 page = page_pool_alloc_pages(ring->page_pool,
2258 GFP_ATOMIC);
2259 if (!page) {
2260 priv->mib.alloc_rx_buff_failed++;
2261 netif_err(priv, rx_err, priv->dev,
2262 "%s: Rx page allocation failed\n", __func__);
2263 return -ENOMEM;
2264 }
2265
2266 /* page_pool handles DMA mapping via PP_FLAG_DMA_MAP */
2267 mapping = page_pool_get_dma_addr(page);
2268
2269 cb->rx_page = page;
2270 dmadesc_set_addr(priv, cb->bd_addr, mapping);
2271
2272 return 0;
2273 }
2274
2275 /* bcmgenet_desc_rx - descriptor based rx process.
2276 * this could be called from bottom half, or from NAPI polling method.
2277 */
bcmgenet_desc_rx(struct bcmgenet_rx_ring * ring,unsigned int budget)2278 static unsigned int bcmgenet_desc_rx(struct bcmgenet_rx_ring *ring,
2279 unsigned int budget)
2280 {
2281 struct bcmgenet_rx_stats64 *stats = &ring->stats64;
2282 struct bcmgenet_priv *priv = ring->priv;
2283 struct net_device *dev = priv->dev;
2284 struct enet_cb *cb;
2285 struct sk_buff *skb;
2286 u32 dma_length_status;
2287 unsigned long dma_flag;
2288 int len;
2289 unsigned int rxpktprocessed = 0, rxpkttoprocess;
2290 unsigned int bytes_processed = 0;
2291 unsigned int p_index, mask;
2292 unsigned int discards;
2293
2294 /* Clear status before servicing to reduce spurious interrupts */
2295 mask = 1 << (UMAC_IRQ1_RX_INTR_SHIFT + ring->index);
2296 bcmgenet_intrl2_1_writel(priv, mask, INTRL2_CPU_CLEAR);
2297
2298 p_index = bcmgenet_rdma_ring_readl(priv, ring->index, RDMA_PROD_INDEX);
2299
2300 discards = (p_index >> DMA_P_INDEX_DISCARD_CNT_SHIFT) &
2301 DMA_P_INDEX_DISCARD_CNT_MASK;
2302 if (discards > ring->old_discards) {
2303 discards = discards - ring->old_discards;
2304 BCMGENET_STATS64_ADD(stats, missed, discards);
2305 ring->old_discards += discards;
2306
2307 /* Clear HW register when we reach 75% of maximum 0xFFFF */
2308 if (ring->old_discards >= 0xC000) {
2309 ring->old_discards = 0;
2310 bcmgenet_rdma_ring_writel(priv, ring->index, 0,
2311 RDMA_PROD_INDEX);
2312 }
2313 }
2314
2315 p_index &= DMA_P_INDEX_MASK;
2316 rxpkttoprocess = (p_index - ring->c_index) & DMA_C_INDEX_MASK;
2317
2318 netif_dbg(priv, rx_status, dev,
2319 "RDMA: rxpkttoprocess=%d\n", rxpkttoprocess);
2320
2321 while ((rxpktprocessed < rxpkttoprocess) &&
2322 (rxpktprocessed < budget)) {
2323 struct status_64 *status;
2324 struct page *rx_page;
2325 void *hard_start;
2326 __be16 rx_csum;
2327
2328 cb = &priv->rx_cbs[ring->read_ptr];
2329
2330 /* Save the received page before refilling */
2331 rx_page = cb->rx_page;
2332
2333 if (bcmgenet_rx_refill(ring, cb)) {
2334 BCMGENET_STATS64_INC(stats, dropped);
2335 goto next;
2336 }
2337
2338 /* Sync the full buffer; the HW may have written anywhere
2339 * up to RX_BUF_LENGTH.
2340 */
2341 page_pool_dma_sync_for_cpu(ring->page_pool, rx_page, 0,
2342 RX_BUF_LENGTH);
2343
2344 hard_start = page_address(rx_page);
2345 status = (struct status_64 *)hard_start;
2346 dma_length_status = status->length_status;
2347
2348 /* DMA flags and length are still valid no matter how
2349 * we got the Receive Status Vector (64B RSB or register)
2350 */
2351 dma_flag = dma_length_status & 0xffff;
2352 len = dma_length_status >> DMA_BUFLENGTH_SHIFT;
2353
2354 netif_dbg(priv, rx_status, dev,
2355 "%s:p_ind=%d c_ind=%d read_ptr=%d len_stat=0x%08x\n",
2356 __func__, p_index, ring->c_index,
2357 ring->read_ptr, dma_length_status);
2358
2359 /* Reject lengths that would underflow the SKB build path. */
2360 if (unlikely(len > RX_BUF_LENGTH || len < GENET_RSB_PAD)) {
2361 netif_err(priv, rx_status, dev,
2362 "invalid packet length %d\n", len);
2363 BCMGENET_STATS64_INC(stats, length_errors);
2364 page_pool_put_full_page(ring->page_pool, rx_page,
2365 true);
2366 goto next;
2367 }
2368
2369 if (unlikely(!(dma_flag & DMA_EOP) || !(dma_flag & DMA_SOP))) {
2370 netif_err(priv, rx_status, dev,
2371 "dropping fragmented packet!\n");
2372 BCMGENET_STATS64_INC(stats, fragmented_errors);
2373 page_pool_put_full_page(ring->page_pool, rx_page,
2374 true);
2375 goto next;
2376 }
2377
2378 /* report errors */
2379 if (unlikely(dma_flag & (DMA_RX_CRC_ERROR |
2380 DMA_RX_OV |
2381 DMA_RX_NO |
2382 DMA_RX_LG |
2383 DMA_RX_RXER))) {
2384 netif_err(priv, rx_status, dev, "dma_flag=0x%x\n",
2385 (unsigned int)dma_flag);
2386 u64_stats_update_begin(&stats->syncp);
2387 if (dma_flag & DMA_RX_CRC_ERROR)
2388 u64_stats_inc(&stats->crc_errors);
2389 if (dma_flag & DMA_RX_OV)
2390 u64_stats_inc(&stats->over_errors);
2391 if (dma_flag & DMA_RX_NO)
2392 u64_stats_inc(&stats->frame_errors);
2393 if (dma_flag & DMA_RX_LG)
2394 u64_stats_inc(&stats->length_errors);
2395 if ((dma_flag & (DMA_RX_CRC_ERROR |
2396 DMA_RX_OV |
2397 DMA_RX_NO |
2398 DMA_RX_LG |
2399 DMA_RX_RXER)) == DMA_RX_RXER)
2400 u64_stats_inc(&stats->errors);
2401 u64_stats_update_end(&stats->syncp);
2402 page_pool_put_full_page(ring->page_pool, rx_page,
2403 true);
2404 goto next;
2405 } /* error packet */
2406
2407 /* Build SKB from the page - data starts at hard_start,
2408 * frame begins after RSB(64) + pad(2) = 66 bytes.
2409 */
2410 skb = napi_build_skb(hard_start, PAGE_SIZE);
2411 if (unlikely(!skb)) {
2412 BCMGENET_STATS64_INC(stats, dropped);
2413 page_pool_put_full_page(ring->page_pool, rx_page,
2414 true);
2415 goto next;
2416 }
2417
2418 skb_mark_for_recycle(skb);
2419
2420 /* Reserve the RSB + pad, then set the data length */
2421 skb_reserve(skb, GENET_RSB_PAD);
2422 __skb_put(skb, len - GENET_RSB_PAD);
2423
2424 if (priv->crc_fwd_en) {
2425 skb_trim(skb, skb->len - ETH_FCS_LEN);
2426 }
2427
2428 /* Set up checksum offload */
2429 if (dev->features & NETIF_F_RXCSUM) {
2430 rx_csum = (__force __be16)(status->rx_csum & 0xffff);
2431 if (rx_csum) {
2432 skb->csum = (__force __wsum)ntohs(rx_csum);
2433 skb->ip_summed = CHECKSUM_COMPLETE;
2434 }
2435 }
2436
2437 len = skb->len;
2438 bytes_processed += len;
2439
2440 /*Finish setting up the received SKB and send it to the kernel*/
2441 skb->protocol = eth_type_trans(skb, priv->dev);
2442
2443 u64_stats_update_begin(&stats->syncp);
2444 u64_stats_inc(&stats->packets);
2445 u64_stats_add(&stats->bytes, len);
2446 if (dma_flag & DMA_RX_MULT)
2447 u64_stats_inc(&stats->multicast);
2448 else if (dma_flag & DMA_RX_BRDCAST)
2449 u64_stats_inc(&stats->broadcast);
2450 u64_stats_update_end(&stats->syncp);
2451
2452 /* Notify kernel */
2453 napi_gro_receive(&ring->napi, skb);
2454 netif_dbg(priv, rx_status, dev, "pushed up to kernel\n");
2455
2456 next:
2457 rxpktprocessed++;
2458 if (likely(ring->read_ptr < ring->end_ptr))
2459 ring->read_ptr++;
2460 else
2461 ring->read_ptr = ring->cb_ptr;
2462
2463 ring->c_index = (ring->c_index + 1) & DMA_C_INDEX_MASK;
2464 bcmgenet_rdma_ring_writel(priv, ring->index, ring->c_index, RDMA_CONS_INDEX);
2465 }
2466
2467 ring->dim.bytes = bytes_processed;
2468 ring->dim.packets = rxpktprocessed;
2469
2470 return rxpktprocessed;
2471 }
2472
2473 /* Rx NAPI polling method */
bcmgenet_rx_poll(struct napi_struct * napi,int budget)2474 static int bcmgenet_rx_poll(struct napi_struct *napi, int budget)
2475 {
2476 struct bcmgenet_rx_ring *ring = container_of(napi,
2477 struct bcmgenet_rx_ring, napi);
2478 struct dim_sample dim_sample = {};
2479 unsigned int work_done;
2480
2481 work_done = bcmgenet_desc_rx(ring, budget);
2482
2483 if (work_done < budget && napi_complete_done(napi, work_done))
2484 bcmgenet_rx_ring_int_enable(ring);
2485
2486 if (ring->dim.use_dim) {
2487 dim_update_sample(ring->dim.event_ctr, ring->dim.packets,
2488 ring->dim.bytes, &dim_sample);
2489 net_dim(&ring->dim.dim, &dim_sample);
2490 }
2491
2492 return work_done;
2493 }
2494
bcmgenet_dim_work(struct work_struct * work)2495 static void bcmgenet_dim_work(struct work_struct *work)
2496 {
2497 struct dim *dim = container_of(work, struct dim, work);
2498 struct bcmgenet_net_dim *ndim =
2499 container_of(dim, struct bcmgenet_net_dim, dim);
2500 struct bcmgenet_rx_ring *ring =
2501 container_of(ndim, struct bcmgenet_rx_ring, dim);
2502 struct dim_cq_moder cur_profile =
2503 net_dim_get_rx_moderation(dim->mode, dim->profile_ix);
2504
2505 bcmgenet_set_rx_coalesce(ring, cur_profile.usec, cur_profile.pkts);
2506 dim->state = DIM_START_MEASURE;
2507 }
2508
2509 /* Assign page_pool pages to RX DMA descriptors. */
bcmgenet_alloc_rx_buffers(struct bcmgenet_priv * priv,struct bcmgenet_rx_ring * ring)2510 static int bcmgenet_alloc_rx_buffers(struct bcmgenet_priv *priv,
2511 struct bcmgenet_rx_ring *ring)
2512 {
2513 struct enet_cb *cb;
2514 int i;
2515
2516 netif_dbg(priv, hw, priv->dev, "%s\n", __func__);
2517
2518 /* loop here for each buffer needing assign */
2519 for (i = 0; i < ring->size; i++) {
2520 cb = ring->cbs + i;
2521 if (bcmgenet_rx_refill(ring, cb))
2522 return -ENOMEM;
2523 }
2524
2525 return 0;
2526 }
2527
bcmgenet_free_rx_buffers(struct bcmgenet_priv * priv)2528 static void bcmgenet_free_rx_buffers(struct bcmgenet_priv *priv)
2529 {
2530 struct bcmgenet_rx_ring *ring;
2531 struct enet_cb *cb;
2532 int q, i;
2533
2534 for (q = 0; q <= priv->hw_params->rx_queues; q++) {
2535 ring = &priv->rx_rings[q];
2536 if (!ring->page_pool)
2537 continue;
2538 for (i = 0; i < ring->size; i++) {
2539 cb = ring->cbs + i;
2540 bcmgenet_free_rx_cb(cb, ring->page_pool);
2541 }
2542 }
2543 }
2544
umac_enable_set(struct bcmgenet_priv * priv,u32 mask,bool enable)2545 static void umac_enable_set(struct bcmgenet_priv *priv, u32 mask, bool enable)
2546 {
2547 u32 reg;
2548
2549 spin_lock_bh(&priv->reg_lock);
2550 reg = bcmgenet_umac_readl(priv, UMAC_CMD);
2551 if (reg & CMD_SW_RESET) {
2552 spin_unlock_bh(&priv->reg_lock);
2553 return;
2554 }
2555 if (enable)
2556 reg |= mask;
2557 else
2558 reg &= ~mask;
2559 bcmgenet_umac_writel(priv, reg, UMAC_CMD);
2560 spin_unlock_bh(&priv->reg_lock);
2561
2562 /* UniMAC stops on a packet boundary, wait for a full-size packet
2563 * to be processed
2564 */
2565 if (enable == 0)
2566 usleep_range(1000, 2000);
2567 }
2568
reset_umac(struct bcmgenet_priv * priv)2569 static void reset_umac(struct bcmgenet_priv *priv)
2570 {
2571 /* 7358a0/7552a0: bad default in RBUF_FLUSH_CTRL.umac_sw_rst */
2572 bcmgenet_rbuf_ctrl_set(priv, 0);
2573 udelay(10);
2574
2575 /* issue soft reset and disable MAC while updating its registers */
2576 spin_lock_bh(&priv->reg_lock);
2577 bcmgenet_umac_writel(priv, CMD_SW_RESET, UMAC_CMD);
2578 udelay(2);
2579 spin_unlock_bh(&priv->reg_lock);
2580 }
2581
bcmgenet_intr_disable(struct bcmgenet_priv * priv)2582 static void bcmgenet_intr_disable(struct bcmgenet_priv *priv)
2583 {
2584 /* Mask all interrupts.*/
2585 bcmgenet_intrl2_0_writel(priv, 0xFFFFFFFF, INTRL2_CPU_MASK_SET);
2586 bcmgenet_intrl2_0_writel(priv, 0xFFFFFFFF, INTRL2_CPU_CLEAR);
2587 bcmgenet_intrl2_1_writel(priv, 0xFFFFFFFF, INTRL2_CPU_MASK_SET);
2588 bcmgenet_intrl2_1_writel(priv, 0xFFFFFFFF, INTRL2_CPU_CLEAR);
2589 }
2590
bcmgenet_link_intr_enable(struct bcmgenet_priv * priv)2591 static void bcmgenet_link_intr_enable(struct bcmgenet_priv *priv)
2592 {
2593 u32 int0_enable = 0;
2594
2595 /* Monitor cable plug/unplugged event for internal PHY, external PHY
2596 * and MoCA PHY
2597 */
2598 if (priv->internal_phy) {
2599 int0_enable |= UMAC_IRQ_LINK_EVENT;
2600 if (GENET_IS_V1(priv) || GENET_IS_V2(priv) || GENET_IS_V3(priv))
2601 int0_enable |= UMAC_IRQ_PHY_DET_R;
2602 } else if (priv->ext_phy) {
2603 int0_enable |= UMAC_IRQ_LINK_EVENT;
2604 } else if (priv->phy_interface == PHY_INTERFACE_MODE_MOCA) {
2605 if (bcmgenet_has_moca_link_det(priv))
2606 int0_enable |= UMAC_IRQ_LINK_EVENT;
2607 }
2608 bcmgenet_intrl2_0_writel(priv, int0_enable, INTRL2_CPU_MASK_CLEAR);
2609 }
2610
init_umac(struct bcmgenet_priv * priv)2611 static void init_umac(struct bcmgenet_priv *priv)
2612 {
2613 struct device *kdev = &priv->pdev->dev;
2614 u32 reg;
2615 u32 int0_enable = 0;
2616
2617 dev_dbg(&priv->pdev->dev, "bcmgenet: init_umac\n");
2618
2619 reset_umac(priv);
2620
2621 /* clear tx/rx counter */
2622 bcmgenet_umac_writel(priv,
2623 MIB_RESET_RX | MIB_RESET_TX | MIB_RESET_RUNT,
2624 UMAC_MIB_CTRL);
2625 bcmgenet_umac_writel(priv, 0, UMAC_MIB_CTRL);
2626
2627 bcmgenet_umac_writel(priv, ENET_MAX_MTU_SIZE, UMAC_MAX_FRAME_LEN);
2628
2629 /* init tx registers, enable TSB */
2630 reg = bcmgenet_tbuf_ctrl_get(priv);
2631 reg |= TBUF_64B_EN;
2632 bcmgenet_tbuf_ctrl_set(priv, reg);
2633
2634 /* init rx registers, enable ip header optimization and RSB */
2635 reg = bcmgenet_rbuf_readl(priv, RBUF_CTRL);
2636 reg |= RBUF_ALIGN_2B | RBUF_64B_EN;
2637 bcmgenet_rbuf_writel(priv, reg, RBUF_CTRL);
2638
2639 /* enable rx checksumming */
2640 reg = bcmgenet_rbuf_readl(priv, RBUF_CHK_CTRL);
2641 reg |= RBUF_RXCHK_EN | RBUF_L3_PARSE_DIS;
2642 /* If UniMAC forwards CRC, we need to skip over it to get
2643 * a valid CHK bit to be set in the per-packet status word
2644 */
2645 if (priv->crc_fwd_en)
2646 reg |= RBUF_SKIP_FCS;
2647 else
2648 reg &= ~RBUF_SKIP_FCS;
2649 bcmgenet_rbuf_writel(priv, reg, RBUF_CHK_CTRL);
2650
2651 if (!GENET_IS_V1(priv) && !GENET_IS_V2(priv))
2652 bcmgenet_rbuf_writel(priv, 1, RBUF_TBUF_SIZE_CTRL);
2653
2654 bcmgenet_intr_disable(priv);
2655
2656 /* Configure backpressure vectors for MoCA */
2657 if (priv->phy_interface == PHY_INTERFACE_MODE_MOCA) {
2658 reg = bcmgenet_bp_mc_get(priv);
2659 reg |= BIT(priv->hw_params->bp_in_en_shift);
2660
2661 /* bp_mask: back pressure mask */
2662 if (netif_is_multiqueue(priv->dev))
2663 reg |= priv->hw_params->bp_in_mask;
2664 else
2665 reg &= ~priv->hw_params->bp_in_mask;
2666 bcmgenet_bp_mc_set(priv, reg);
2667 }
2668
2669 /* Enable MDIO interrupts on GENET v3+ */
2670 if (bcmgenet_has_mdio_intr(priv))
2671 int0_enable |= UMAC_IRQ_MDIO_EVENT;
2672
2673 bcmgenet_intrl2_0_writel(priv, int0_enable, INTRL2_CPU_MASK_CLEAR);
2674
2675 dev_dbg(kdev, "done init umac\n");
2676 }
2677
bcmgenet_init_dim(struct bcmgenet_rx_ring * ring,void (* cb)(struct work_struct * work))2678 static void bcmgenet_init_dim(struct bcmgenet_rx_ring *ring,
2679 void (*cb)(struct work_struct *work))
2680 {
2681 struct bcmgenet_net_dim *dim = &ring->dim;
2682
2683 INIT_WORK(&dim->dim.work, cb);
2684 dim->dim.mode = DIM_CQ_PERIOD_MODE_START_FROM_EQE;
2685 dim->event_ctr = 0;
2686 dim->packets = 0;
2687 dim->bytes = 0;
2688 }
2689
bcmgenet_init_rx_coalesce(struct bcmgenet_rx_ring * ring)2690 static void bcmgenet_init_rx_coalesce(struct bcmgenet_rx_ring *ring)
2691 {
2692 struct bcmgenet_net_dim *dim = &ring->dim;
2693 struct dim_cq_moder moder;
2694 u32 usecs, pkts;
2695
2696 usecs = ring->rx_coalesce_usecs;
2697 pkts = ring->rx_max_coalesced_frames;
2698
2699 /* If DIM was enabled, re-apply default parameters */
2700 if (dim->use_dim) {
2701 moder = net_dim_get_def_rx_moderation(dim->dim.mode);
2702 usecs = moder.usec;
2703 pkts = moder.pkts;
2704 }
2705
2706 bcmgenet_set_rx_coalesce(ring, usecs, pkts);
2707 }
2708
2709 /* Initialize a Tx ring along with corresponding hardware registers */
bcmgenet_init_tx_ring(struct bcmgenet_priv * priv,unsigned int index,unsigned int size,unsigned int start_ptr,unsigned int end_ptr)2710 static void bcmgenet_init_tx_ring(struct bcmgenet_priv *priv,
2711 unsigned int index, unsigned int size,
2712 unsigned int start_ptr, unsigned int end_ptr)
2713 {
2714 struct bcmgenet_tx_ring *ring = &priv->tx_rings[index];
2715 u32 words_per_bd = WORDS_PER_BD(priv);
2716 u32 flow_period_val = 0;
2717
2718 spin_lock_init(&ring->lock);
2719 ring->priv = priv;
2720 ring->index = index;
2721 ring->cbs = priv->tx_cbs + start_ptr;
2722 ring->size = size;
2723 ring->clean_ptr = start_ptr;
2724 ring->c_index = 0;
2725 ring->free_bds = size;
2726 ring->write_ptr = start_ptr;
2727 ring->cb_ptr = start_ptr;
2728 ring->end_ptr = end_ptr - 1;
2729 ring->prod_index = 0;
2730
2731 /* Set flow period for ring != 0 */
2732 if (index)
2733 flow_period_val = ENET_MAX_MTU_SIZE << 16;
2734
2735 bcmgenet_tdma_ring_writel(priv, index, 0, TDMA_PROD_INDEX);
2736 bcmgenet_tdma_ring_writel(priv, index, 0, TDMA_CONS_INDEX);
2737 bcmgenet_tdma_ring_writel(priv, index, 1, DMA_MBUF_DONE_THRESH);
2738 /* Disable rate control for now */
2739 bcmgenet_tdma_ring_writel(priv, index, flow_period_val,
2740 TDMA_FLOW_PERIOD);
2741 bcmgenet_tdma_ring_writel(priv, index,
2742 ((size << DMA_RING_SIZE_SHIFT) |
2743 RX_BUF_LENGTH), DMA_RING_BUF_SIZE);
2744
2745 /* Set start and end address, read and write pointers */
2746 bcmgenet_tdma_ring_writel(priv, index, start_ptr * words_per_bd,
2747 DMA_START_ADDR);
2748 bcmgenet_tdma_ring_writel(priv, index, start_ptr * words_per_bd,
2749 TDMA_READ_PTR);
2750 bcmgenet_tdma_ring_writel(priv, index, start_ptr * words_per_bd,
2751 TDMA_WRITE_PTR);
2752 bcmgenet_tdma_ring_writel(priv, index, end_ptr * words_per_bd - 1,
2753 DMA_END_ADDR);
2754
2755 /* Initialize Tx NAPI */
2756 netif_napi_add_tx(priv->dev, &ring->napi, bcmgenet_tx_poll);
2757 }
2758
bcmgenet_rx_ring_create_pool(struct bcmgenet_priv * priv,struct bcmgenet_rx_ring * ring)2759 static int bcmgenet_rx_ring_create_pool(struct bcmgenet_priv *priv,
2760 struct bcmgenet_rx_ring *ring)
2761 {
2762 struct page_pool_params pp_params = {
2763 .order = 0,
2764 .flags = PP_FLAG_DMA_MAP | PP_FLAG_DMA_SYNC_DEV,
2765 .pool_size = ring->size,
2766 .nid = NUMA_NO_NODE,
2767 .dev = &priv->pdev->dev,
2768 .dma_dir = DMA_FROM_DEVICE,
2769 .max_len = RX_BUF_LENGTH,
2770 };
2771 int err;
2772
2773 ring->page_pool = page_pool_create(&pp_params);
2774 if (IS_ERR(ring->page_pool)) {
2775 err = PTR_ERR(ring->page_pool);
2776 ring->page_pool = NULL;
2777 return err;
2778 }
2779
2780 return 0;
2781 }
2782
2783 /* Initialize a RDMA ring */
bcmgenet_init_rx_ring(struct bcmgenet_priv * priv,unsigned int index,unsigned int size,unsigned int start_ptr,unsigned int end_ptr)2784 static int bcmgenet_init_rx_ring(struct bcmgenet_priv *priv,
2785 unsigned int index, unsigned int size,
2786 unsigned int start_ptr, unsigned int end_ptr)
2787 {
2788 struct bcmgenet_rx_ring *ring = &priv->rx_rings[index];
2789 u32 words_per_bd = WORDS_PER_BD(priv);
2790 int ret, i;
2791
2792 ring->priv = priv;
2793 ring->index = index;
2794 ring->cbs = priv->rx_cbs + start_ptr;
2795 ring->size = size;
2796 ring->c_index = 0;
2797 ring->read_ptr = start_ptr;
2798 ring->cb_ptr = start_ptr;
2799 ring->end_ptr = end_ptr - 1;
2800
2801 ret = bcmgenet_rx_ring_create_pool(priv, ring);
2802 if (ret)
2803 return ret;
2804
2805 ret = bcmgenet_alloc_rx_buffers(priv, ring);
2806 if (ret) {
2807 for (i = 0; i < ring->size; i++)
2808 bcmgenet_free_rx_cb(ring->cbs + i, ring->page_pool);
2809 page_pool_destroy(ring->page_pool);
2810 ring->page_pool = NULL;
2811 return ret;
2812 }
2813
2814 bcmgenet_init_dim(ring, bcmgenet_dim_work);
2815 bcmgenet_init_rx_coalesce(ring);
2816
2817 /* Initialize Rx NAPI */
2818 netif_napi_add(priv->dev, &ring->napi, bcmgenet_rx_poll);
2819
2820 bcmgenet_rdma_ring_writel(priv, index, 0, RDMA_PROD_INDEX);
2821 bcmgenet_rdma_ring_writel(priv, index, 0, RDMA_CONS_INDEX);
2822 bcmgenet_rdma_ring_writel(priv, index,
2823 ((size << DMA_RING_SIZE_SHIFT) |
2824 RX_BUF_LENGTH), DMA_RING_BUF_SIZE);
2825 bcmgenet_rdma_ring_writel(priv, index,
2826 (DMA_FC_THRESH_LO <<
2827 DMA_XOFF_THRESHOLD_SHIFT) |
2828 DMA_FC_THRESH_HI, RDMA_XON_XOFF_THRESH);
2829
2830 /* Set start and end address, read and write pointers */
2831 bcmgenet_rdma_ring_writel(priv, index, start_ptr * words_per_bd,
2832 DMA_START_ADDR);
2833 bcmgenet_rdma_ring_writel(priv, index, start_ptr * words_per_bd,
2834 RDMA_READ_PTR);
2835 bcmgenet_rdma_ring_writel(priv, index, start_ptr * words_per_bd,
2836 RDMA_WRITE_PTR);
2837 bcmgenet_rdma_ring_writel(priv, index, end_ptr * words_per_bd - 1,
2838 DMA_END_ADDR);
2839
2840 return ret;
2841 }
2842
bcmgenet_enable_tx_napi(struct bcmgenet_priv * priv)2843 static void bcmgenet_enable_tx_napi(struct bcmgenet_priv *priv)
2844 {
2845 unsigned int i;
2846 struct bcmgenet_tx_ring *ring;
2847
2848 for (i = 0; i <= priv->hw_params->tx_queues; ++i) {
2849 ring = &priv->tx_rings[i];
2850 napi_enable(&ring->napi);
2851 bcmgenet_tx_ring_int_enable(ring);
2852 }
2853 }
2854
bcmgenet_disable_tx_napi(struct bcmgenet_priv * priv)2855 static void bcmgenet_disable_tx_napi(struct bcmgenet_priv *priv)
2856 {
2857 unsigned int i;
2858 struct bcmgenet_tx_ring *ring;
2859
2860 for (i = 0; i <= priv->hw_params->tx_queues; ++i) {
2861 ring = &priv->tx_rings[i];
2862 napi_disable(&ring->napi);
2863 }
2864 }
2865
bcmgenet_fini_tx_napi(struct bcmgenet_priv * priv)2866 static void bcmgenet_fini_tx_napi(struct bcmgenet_priv *priv)
2867 {
2868 unsigned int i;
2869 struct bcmgenet_tx_ring *ring;
2870
2871 for (i = 0; i <= priv->hw_params->tx_queues; ++i) {
2872 ring = &priv->tx_rings[i];
2873 netif_napi_del(&ring->napi);
2874 }
2875 }
2876
bcmgenet_tdma_disable(struct bcmgenet_priv * priv)2877 static int bcmgenet_tdma_disable(struct bcmgenet_priv *priv)
2878 {
2879 int timeout = 0;
2880 u32 reg, mask;
2881
2882 reg = bcmgenet_tdma_readl(priv, DMA_CTRL);
2883 mask = (1 << (priv->hw_params->tx_queues + 1)) - 1;
2884 mask = (mask << DMA_RING_BUF_EN_SHIFT) | DMA_EN;
2885 reg &= ~mask;
2886 bcmgenet_tdma_writel(priv, reg, DMA_CTRL);
2887
2888 /* Check DMA status register to confirm DMA is disabled */
2889 while (timeout++ < DMA_TIMEOUT_VAL) {
2890 reg = bcmgenet_tdma_readl(priv, DMA_STATUS);
2891 if ((reg & mask) == mask)
2892 return 0;
2893
2894 udelay(1);
2895 }
2896
2897 return -ETIMEDOUT;
2898 }
2899
bcmgenet_rdma_disable(struct bcmgenet_priv * priv)2900 static int bcmgenet_rdma_disable(struct bcmgenet_priv *priv)
2901 {
2902 int timeout = 0;
2903 u32 reg, mask;
2904
2905 reg = bcmgenet_rdma_readl(priv, DMA_CTRL);
2906 mask = (1 << (priv->hw_params->rx_queues + 1)) - 1;
2907 mask = (mask << DMA_RING_BUF_EN_SHIFT) | DMA_EN;
2908 reg &= ~mask;
2909 bcmgenet_rdma_writel(priv, reg, DMA_CTRL);
2910
2911 /* Check DMA status register to confirm DMA is disabled */
2912 while (timeout++ < DMA_TIMEOUT_VAL) {
2913 reg = bcmgenet_rdma_readl(priv, DMA_STATUS);
2914 if ((reg & mask) == mask)
2915 return 0;
2916
2917 udelay(1);
2918 }
2919
2920 return -ETIMEDOUT;
2921 }
2922
2923 /* Initialize Tx queues
2924 *
2925 * Queues 1-4 are the priority queues, each one has 32 descriptors.
2926 * The weighted round-robin arbiter gives them a larger share of TX
2927 * bandwidth than the default queue 0.
2928 *
2929 * Queue 0 is the default Tx queue with
2930 * GENET_Q0_TX_BD_CNT = 256 - 4 * 32 = 128 descriptors.
2931 *
2932 * The transmit control block pool is then partitioned as follows:
2933 * - Tx queue 0 uses tx_cbs[0..127]
2934 * - Tx queue 1 uses tx_cbs[128..159]
2935 * - Tx queue 2 uses tx_cbs[160..191]
2936 * - Tx queue 3 uses tx_cbs[192..223]
2937 * - Tx queue 4 uses tx_cbs[224..255]
2938 */
bcmgenet_init_tx_queues(struct net_device * dev)2939 static void bcmgenet_init_tx_queues(struct net_device *dev)
2940 {
2941 struct bcmgenet_priv *priv = netdev_priv(dev);
2942 unsigned int start = 0, end = GENET_Q0_TX_BD_CNT;
2943 u32 i, ring_mask, dma_priority[3] = {0, 0, 0};
2944
2945 /* Enable Weighted Round-Robin arbiter mode */
2946 bcmgenet_tdma_writel(priv, DMA_ARBITER_WRR, DMA_ARB_CTRL);
2947
2948 /* Initialize Tx priority queues */
2949 for (i = 0; i <= priv->hw_params->tx_queues; i++) {
2950 bcmgenet_init_tx_ring(priv, i, end - start, start, end);
2951 start = end;
2952 end += priv->hw_params->tx_bds_per_q;
2953 dma_priority[DMA_PRIO_REG_INDEX(i)] |=
2954 (i ? GENET_Q1_WEIGHT : GENET_Q0_WEIGHT)
2955 << DMA_PRIO_REG_SHIFT(i);
2956 }
2957
2958 /* Set Tx queue priorities */
2959 bcmgenet_tdma_writel(priv, dma_priority[0], DMA_PRIORITY_0);
2960 bcmgenet_tdma_writel(priv, dma_priority[1], DMA_PRIORITY_1);
2961 bcmgenet_tdma_writel(priv, dma_priority[2], DMA_PRIORITY_2);
2962
2963 /* Configure Tx queues as descriptor rings */
2964 ring_mask = (1 << (priv->hw_params->tx_queues + 1)) - 1;
2965 bcmgenet_tdma_writel(priv, ring_mask, DMA_RING_CFG);
2966
2967 /* Enable Tx rings */
2968 ring_mask <<= DMA_RING_BUF_EN_SHIFT;
2969 bcmgenet_tdma_writel(priv, ring_mask, DMA_CTRL);
2970 }
2971
bcmgenet_enable_rx_napi(struct bcmgenet_priv * priv)2972 static void bcmgenet_enable_rx_napi(struct bcmgenet_priv *priv)
2973 {
2974 unsigned int i;
2975 struct bcmgenet_rx_ring *ring;
2976
2977 for (i = 0; i <= priv->hw_params->rx_queues; ++i) {
2978 ring = &priv->rx_rings[i];
2979 napi_enable(&ring->napi);
2980 bcmgenet_rx_ring_int_enable(ring);
2981 }
2982 }
2983
bcmgenet_disable_rx_napi(struct bcmgenet_priv * priv)2984 static void bcmgenet_disable_rx_napi(struct bcmgenet_priv *priv)
2985 {
2986 unsigned int i;
2987 struct bcmgenet_rx_ring *ring;
2988
2989 for (i = 0; i <= priv->hw_params->rx_queues; ++i) {
2990 ring = &priv->rx_rings[i];
2991 napi_disable(&ring->napi);
2992 cancel_work_sync(&ring->dim.dim.work);
2993 }
2994 }
2995
bcmgenet_fini_rx_napi(struct bcmgenet_priv * priv)2996 static void bcmgenet_fini_rx_napi(struct bcmgenet_priv *priv)
2997 {
2998 unsigned int i;
2999 struct bcmgenet_rx_ring *ring;
3000
3001 for (i = 0; i <= priv->hw_params->rx_queues; ++i) {
3002 ring = &priv->rx_rings[i];
3003 netif_napi_del(&ring->napi);
3004 }
3005 }
3006
bcmgenet_destroy_rx_page_pools(struct bcmgenet_priv * priv)3007 static void bcmgenet_destroy_rx_page_pools(struct bcmgenet_priv *priv)
3008 {
3009 struct bcmgenet_rx_ring *ring;
3010 unsigned int i;
3011
3012 for (i = 0; i <= priv->hw_params->rx_queues; ++i) {
3013 ring = &priv->rx_rings[i];
3014 if (ring->page_pool) {
3015 page_pool_destroy(ring->page_pool);
3016 ring->page_pool = NULL;
3017 }
3018 }
3019 }
3020
3021 /* Initialize Rx queues
3022 *
3023 * Queues 0-15 are priority queues. Hardware Filtering Block (HFB) can be
3024 * used to direct traffic to these queues.
3025 *
3026 * Queue 0 is also the default Rx queue with GENET_Q0_RX_BD_CNT descriptors.
3027 */
bcmgenet_init_rx_queues(struct net_device * dev)3028 static int bcmgenet_init_rx_queues(struct net_device *dev)
3029 {
3030 struct bcmgenet_priv *priv = netdev_priv(dev);
3031 unsigned int start = 0, end = GENET_Q0_RX_BD_CNT;
3032 u32 i, ring_mask;
3033 int ret;
3034
3035 /* Initialize Rx priority queues */
3036 for (i = 0; i <= priv->hw_params->rx_queues; i++) {
3037 ret = bcmgenet_init_rx_ring(priv, i, end - start, start, end);
3038 if (ret)
3039 return ret;
3040
3041 start = end;
3042 end += priv->hw_params->rx_bds_per_q;
3043 }
3044
3045 /* Configure Rx queues as descriptor rings */
3046 ring_mask = (1 << (priv->hw_params->rx_queues + 1)) - 1;
3047 bcmgenet_rdma_writel(priv, ring_mask, DMA_RING_CFG);
3048
3049 /* Enable Rx rings */
3050 ring_mask <<= DMA_RING_BUF_EN_SHIFT;
3051 bcmgenet_rdma_writel(priv, ring_mask, DMA_CTRL);
3052
3053 return 0;
3054 }
3055
bcmgenet_dma_teardown(struct bcmgenet_priv * priv)3056 static int bcmgenet_dma_teardown(struct bcmgenet_priv *priv)
3057 {
3058 int ret = 0;
3059
3060 /* Disable TDMA to stop add more frames in TX DMA */
3061 if (-ETIMEDOUT == bcmgenet_tdma_disable(priv)) {
3062 netdev_warn(priv->dev, "Timed out while disabling TX DMA\n");
3063 ret = -ETIMEDOUT;
3064 }
3065
3066 /* Wait 10ms for packet drain in both tx and rx dma */
3067 usleep_range(10000, 20000);
3068
3069 /* Disable RDMA */
3070 if (-ETIMEDOUT == bcmgenet_rdma_disable(priv)) {
3071 netdev_warn(priv->dev, "Timed out while disabling RX DMA\n");
3072 ret = -ETIMEDOUT;
3073 }
3074
3075 return ret;
3076 }
3077
bcmgenet_fini_dma(struct bcmgenet_priv * priv)3078 static void bcmgenet_fini_dma(struct bcmgenet_priv *priv)
3079 {
3080 struct netdev_queue *txq;
3081 int i;
3082
3083 bcmgenet_fini_rx_napi(priv);
3084 bcmgenet_fini_tx_napi(priv);
3085
3086 for (i = 0; i <= priv->hw_params->tx_queues; i++) {
3087 txq = netdev_get_tx_queue(priv->dev, i);
3088 netdev_tx_reset_queue(txq);
3089 }
3090
3091 bcmgenet_free_rx_buffers(priv);
3092 bcmgenet_destroy_rx_page_pools(priv);
3093 kfree(priv->rx_cbs);
3094 kfree(priv->tx_cbs);
3095 }
3096
3097 /* init_edma: Initialize DMA control register */
bcmgenet_init_dma(struct bcmgenet_priv * priv,bool flush_rx)3098 static int bcmgenet_init_dma(struct bcmgenet_priv *priv, bool flush_rx)
3099 {
3100 struct enet_cb *cb;
3101 unsigned int i;
3102 int ret;
3103 u32 reg;
3104
3105 netif_dbg(priv, hw, priv->dev, "%s\n", __func__);
3106
3107 /* Disable TX DMA */
3108 ret = bcmgenet_tdma_disable(priv);
3109 if (ret) {
3110 netdev_err(priv->dev, "failed to halt Tx DMA\n");
3111 return ret;
3112 }
3113
3114 /* Disable RX DMA */
3115 ret = bcmgenet_rdma_disable(priv);
3116 if (ret) {
3117 netdev_err(priv->dev, "failed to halt Rx DMA\n");
3118 return ret;
3119 }
3120
3121 /* Flush TX queues */
3122 bcmgenet_umac_writel(priv, 1, UMAC_TX_FLUSH);
3123 udelay(10);
3124 bcmgenet_umac_writel(priv, 0, UMAC_TX_FLUSH);
3125
3126 if (flush_rx) {
3127 reg = bcmgenet_rbuf_ctrl_get(priv);
3128 bcmgenet_rbuf_ctrl_set(priv, reg | BIT(0));
3129 udelay(10);
3130 bcmgenet_rbuf_ctrl_set(priv, reg);
3131 udelay(10);
3132 }
3133
3134 /* Initialize common Rx ring structures */
3135 priv->rx_bds = priv->base + priv->hw_params->rdma_offset;
3136 priv->num_rx_bds = TOTAL_DESC;
3137 priv->rx_cbs = kzalloc_objs(struct enet_cb, priv->num_rx_bds);
3138 if (!priv->rx_cbs)
3139 return -ENOMEM;
3140
3141 for (i = 0; i < priv->num_rx_bds; i++) {
3142 cb = priv->rx_cbs + i;
3143 cb->bd_addr = priv->rx_bds + i * DMA_DESC_SIZE;
3144 }
3145
3146 /* Initialize common TX ring structures */
3147 priv->tx_bds = priv->base + priv->hw_params->tdma_offset;
3148 priv->num_tx_bds = TOTAL_DESC;
3149 priv->tx_cbs = kzalloc_objs(struct enet_cb, priv->num_tx_bds);
3150 if (!priv->tx_cbs) {
3151 kfree(priv->rx_cbs);
3152 return -ENOMEM;
3153 }
3154
3155 for (i = 0; i < priv->num_tx_bds; i++) {
3156 cb = priv->tx_cbs + i;
3157 cb->bd_addr = priv->tx_bds + i * DMA_DESC_SIZE;
3158 }
3159
3160 /* Init rDma */
3161 bcmgenet_rdma_writel(priv, priv->dma_max_burst_length,
3162 DMA_SCB_BURST_SIZE);
3163
3164 /* Initialize Rx queues */
3165 ret = bcmgenet_init_rx_queues(priv->dev);
3166 if (ret) {
3167 netdev_err(priv->dev, "failed to initialize Rx queues\n");
3168 bcmgenet_free_rx_buffers(priv);
3169 bcmgenet_destroy_rx_page_pools(priv);
3170 kfree(priv->rx_cbs);
3171 kfree(priv->tx_cbs);
3172 return ret;
3173 }
3174
3175 /* Init tDma */
3176 bcmgenet_tdma_writel(priv, priv->dma_max_burst_length,
3177 DMA_SCB_BURST_SIZE);
3178
3179 /* Initialize Tx queues */
3180 bcmgenet_init_tx_queues(priv->dev);
3181
3182 /* Enable RX/TX DMA */
3183 reg = bcmgenet_rdma_readl(priv, DMA_CTRL);
3184 reg |= DMA_EN;
3185 bcmgenet_rdma_writel(priv, reg, DMA_CTRL);
3186
3187 reg = bcmgenet_tdma_readl(priv, DMA_CTRL);
3188 reg |= DMA_EN;
3189 bcmgenet_tdma_writel(priv, reg, DMA_CTRL);
3190
3191 return 0;
3192 }
3193
3194 /* Interrupt bottom half */
bcmgenet_irq_task(struct work_struct * work)3195 static void bcmgenet_irq_task(struct work_struct *work)
3196 {
3197 unsigned int status;
3198 struct bcmgenet_priv *priv = container_of(
3199 work, struct bcmgenet_priv, bcmgenet_irq_work);
3200
3201 netif_dbg(priv, intr, priv->dev, "%s\n", __func__);
3202
3203 spin_lock_irq(&priv->lock);
3204 status = priv->irq0_stat;
3205 priv->irq0_stat = 0;
3206 spin_unlock_irq(&priv->lock);
3207
3208 if (status & UMAC_IRQ_PHY_DET_R &&
3209 priv->dev->phydev->autoneg != AUTONEG_ENABLE) {
3210 phy_init_hw(priv->dev->phydev);
3211 genphy_config_aneg(priv->dev->phydev);
3212 }
3213
3214 /* Link UP/DOWN event */
3215 if (status & UMAC_IRQ_LINK_EVENT)
3216 phy_mac_interrupt(priv->dev->phydev);
3217
3218 }
3219
3220 /* bcmgenet_isr1: handle Rx and Tx queues */
bcmgenet_isr1(int irq,void * dev_id)3221 static irqreturn_t bcmgenet_isr1(int irq, void *dev_id)
3222 {
3223 struct bcmgenet_priv *priv = dev_id;
3224 struct bcmgenet_rx_ring *rx_ring;
3225 struct bcmgenet_tx_ring *tx_ring;
3226 unsigned int index, status;
3227
3228 /* Read irq status */
3229 status = bcmgenet_intrl2_1_readl(priv, INTRL2_CPU_STAT) &
3230 ~bcmgenet_intrl2_1_readl(priv, INTRL2_CPU_MASK_STATUS);
3231
3232 /* clear interrupts */
3233 bcmgenet_intrl2_1_writel(priv, status, INTRL2_CPU_CLEAR);
3234
3235 netif_dbg(priv, intr, priv->dev,
3236 "%s: IRQ=0x%x\n", __func__, status);
3237
3238 /* Check Rx priority queue interrupts */
3239 for (index = 0; index <= priv->hw_params->rx_queues; index++) {
3240 if (!(status & BIT(UMAC_IRQ1_RX_INTR_SHIFT + index)))
3241 continue;
3242
3243 rx_ring = &priv->rx_rings[index];
3244 rx_ring->dim.event_ctr++;
3245
3246 if (likely(napi_schedule_prep(&rx_ring->napi))) {
3247 bcmgenet_rx_ring_int_disable(rx_ring);
3248 __napi_schedule_irqoff(&rx_ring->napi);
3249 }
3250 }
3251
3252 /* Check Tx priority queue interrupts */
3253 for (index = 0; index <= priv->hw_params->tx_queues; index++) {
3254 if (!(status & BIT(index)))
3255 continue;
3256
3257 tx_ring = &priv->tx_rings[index];
3258
3259 if (likely(napi_schedule_prep(&tx_ring->napi))) {
3260 bcmgenet_tx_ring_int_disable(tx_ring);
3261 __napi_schedule_irqoff(&tx_ring->napi);
3262 }
3263 }
3264
3265 return IRQ_HANDLED;
3266 }
3267
3268 /* bcmgenet_isr0: handle other stuff */
bcmgenet_isr0(int irq,void * dev_id)3269 static irqreturn_t bcmgenet_isr0(int irq, void *dev_id)
3270 {
3271 struct bcmgenet_priv *priv = dev_id;
3272 unsigned int status;
3273 unsigned long flags;
3274
3275 /* Read irq status */
3276 status = bcmgenet_intrl2_0_readl(priv, INTRL2_CPU_STAT) &
3277 ~bcmgenet_intrl2_0_readl(priv, INTRL2_CPU_MASK_STATUS);
3278
3279 /* clear interrupts */
3280 bcmgenet_intrl2_0_writel(priv, status, INTRL2_CPU_CLEAR);
3281
3282 netif_dbg(priv, intr, priv->dev,
3283 "IRQ=0x%x\n", status);
3284
3285 if (bcmgenet_has_mdio_intr(priv) && status & UMAC_IRQ_MDIO_EVENT)
3286 wake_up(&priv->wq);
3287
3288 /* all other interested interrupts handled in bottom half */
3289 status &= (UMAC_IRQ_LINK_EVENT | UMAC_IRQ_PHY_DET_R);
3290 if (status) {
3291 /* Save irq status for bottom-half processing. */
3292 spin_lock_irqsave(&priv->lock, flags);
3293 priv->irq0_stat |= status;
3294 spin_unlock_irqrestore(&priv->lock, flags);
3295
3296 schedule_work(&priv->bcmgenet_irq_work);
3297 }
3298
3299 return IRQ_HANDLED;
3300 }
3301
bcmgenet_wol_isr(int irq,void * dev_id)3302 static irqreturn_t bcmgenet_wol_isr(int irq, void *dev_id)
3303 {
3304 /* Acknowledge the interrupt */
3305 return IRQ_HANDLED;
3306 }
3307
bcmgenet_umac_reset(struct bcmgenet_priv * priv)3308 static void bcmgenet_umac_reset(struct bcmgenet_priv *priv)
3309 {
3310 u32 reg;
3311
3312 reg = bcmgenet_rbuf_ctrl_get(priv);
3313 reg |= BIT(1);
3314 bcmgenet_rbuf_ctrl_set(priv, reg);
3315 udelay(10);
3316
3317 reg &= ~BIT(1);
3318 bcmgenet_rbuf_ctrl_set(priv, reg);
3319 udelay(10);
3320 }
3321
bcmgenet_set_hw_addr(struct bcmgenet_priv * priv,const unsigned char * addr)3322 static void bcmgenet_set_hw_addr(struct bcmgenet_priv *priv,
3323 const unsigned char *addr)
3324 {
3325 bcmgenet_umac_writel(priv, get_unaligned_be32(&addr[0]), UMAC_MAC0);
3326 bcmgenet_umac_writel(priv, get_unaligned_be16(&addr[4]), UMAC_MAC1);
3327 }
3328
bcmgenet_get_hw_addr(struct bcmgenet_priv * priv,unsigned char * addr)3329 static void bcmgenet_get_hw_addr(struct bcmgenet_priv *priv,
3330 unsigned char *addr)
3331 {
3332 u32 addr_tmp;
3333
3334 addr_tmp = bcmgenet_umac_readl(priv, UMAC_MAC0);
3335 put_unaligned_be32(addr_tmp, &addr[0]);
3336 addr_tmp = bcmgenet_umac_readl(priv, UMAC_MAC1);
3337 put_unaligned_be16(addr_tmp, &addr[4]);
3338 }
3339
bcmgenet_netif_start(struct net_device * dev)3340 static void bcmgenet_netif_start(struct net_device *dev)
3341 {
3342 struct bcmgenet_priv *priv = netdev_priv(dev);
3343
3344 /* Start the network engine */
3345 netif_addr_lock_bh(dev);
3346 bcmgenet_set_rx_mode(dev);
3347 netif_addr_unlock_bh(dev);
3348 bcmgenet_enable_rx_napi(priv);
3349
3350 umac_enable_set(priv, CMD_TX_EN | CMD_RX_EN, true);
3351
3352 bcmgenet_enable_tx_napi(priv);
3353
3354 /* Monitor link interrupts now */
3355 bcmgenet_link_intr_enable(priv);
3356
3357 phy_start(dev->phydev);
3358 }
3359
bcmgenet_open(struct net_device * dev)3360 static int bcmgenet_open(struct net_device *dev)
3361 {
3362 struct bcmgenet_priv *priv = netdev_priv(dev);
3363 int ret;
3364
3365 netif_dbg(priv, ifup, dev, "bcmgenet_open\n");
3366
3367 /* Turn on the clock */
3368 clk_prepare_enable(priv->clk);
3369
3370 /* If this is an internal GPHY, power it back on now, before UniMAC is
3371 * brought out of reset as absolutely no UniMAC activity is allowed
3372 */
3373 if (priv->internal_phy)
3374 bcmgenet_power_up(priv, GENET_POWER_PASSIVE);
3375
3376 /* take MAC out of reset */
3377 bcmgenet_umac_reset(priv);
3378
3379 init_umac(priv);
3380
3381 /* Apply features again in case we changed them while interface was
3382 * down
3383 */
3384 bcmgenet_set_features(dev, dev->features);
3385
3386 bcmgenet_set_hw_addr(priv, dev->dev_addr);
3387
3388 /* Restore the filters, the MAC was reset above */
3389 bcmgenet_hfb_restore(priv);
3390
3391 /* Reinitialize TDMA and RDMA and SW housekeeping */
3392 ret = bcmgenet_init_dma(priv, true);
3393 if (ret) {
3394 netdev_err(dev, "failed to initialize DMA\n");
3395 goto err_clk_disable;
3396 }
3397
3398 ret = request_irq(priv->irq0, bcmgenet_isr0, IRQF_SHARED,
3399 dev->name, priv);
3400 if (ret < 0) {
3401 netdev_err(dev, "can't request IRQ %d\n", priv->irq0);
3402 goto err_fini_dma;
3403 }
3404
3405 ret = request_irq(priv->irq1, bcmgenet_isr1, IRQF_SHARED,
3406 dev->name, priv);
3407 if (ret < 0) {
3408 netdev_err(dev, "can't request IRQ %d\n", priv->irq1);
3409 goto err_irq0;
3410 }
3411
3412 ret = bcmgenet_mii_probe(dev);
3413 if (ret) {
3414 netdev_err(dev, "failed to connect to PHY\n");
3415 goto err_irq1;
3416 }
3417
3418 bcmgenet_phy_pause_set(dev, priv->rx_pause, priv->tx_pause);
3419
3420 bcmgenet_netif_start(dev);
3421
3422 netif_tx_start_all_queues(dev);
3423
3424 return 0;
3425
3426 err_irq1:
3427 free_irq(priv->irq1, priv);
3428 err_irq0:
3429 free_irq(priv->irq0, priv);
3430 err_fini_dma:
3431 bcmgenet_dma_teardown(priv);
3432 bcmgenet_fini_dma(priv);
3433 err_clk_disable:
3434 if (priv->internal_phy)
3435 bcmgenet_power_down(priv, GENET_POWER_PASSIVE);
3436 clk_disable_unprepare(priv->clk);
3437 return ret;
3438 }
3439
bcmgenet_netif_stop(struct net_device * dev,bool stop_phy)3440 static void bcmgenet_netif_stop(struct net_device *dev, bool stop_phy)
3441 {
3442 struct bcmgenet_priv *priv = netdev_priv(dev);
3443
3444 netif_tx_disable(dev);
3445
3446 /* Disable MAC receive */
3447 bcmgenet_hfb_reg_writel(priv, 0, HFB_CTRL);
3448 umac_enable_set(priv, CMD_RX_EN, false);
3449
3450 if (stop_phy)
3451 phy_stop(dev->phydev);
3452
3453 bcmgenet_dma_teardown(priv);
3454
3455 /* Disable MAC transmit. TX DMA disabled must be done before this */
3456 umac_enable_set(priv, CMD_TX_EN, false);
3457
3458 bcmgenet_disable_tx_napi(priv);
3459 bcmgenet_disable_rx_napi(priv);
3460 bcmgenet_intr_disable(priv);
3461
3462 /* Wait for pending work items to complete. Since interrupts are
3463 * disabled no new work will be scheduled.
3464 */
3465 cancel_work_sync(&priv->bcmgenet_irq_work);
3466
3467 /* tx reclaim */
3468 bcmgenet_tx_reclaim_all(dev);
3469 bcmgenet_fini_dma(priv);
3470 }
3471
bcmgenet_close(struct net_device * dev)3472 static int bcmgenet_close(struct net_device *dev)
3473 {
3474 struct bcmgenet_priv *priv = netdev_priv(dev);
3475 int ret = 0;
3476
3477 netif_dbg(priv, ifdown, dev, "bcmgenet_close\n");
3478
3479 bcmgenet_netif_stop(dev, false);
3480
3481 /* Really kill the PHY state machine and disconnect from it */
3482 phy_disconnect(dev->phydev);
3483
3484 free_irq(priv->irq0, priv);
3485 free_irq(priv->irq1, priv);
3486
3487 if (priv->internal_phy)
3488 ret = bcmgenet_power_down(priv, GENET_POWER_PASSIVE);
3489
3490 clk_disable_unprepare(priv->clk);
3491
3492 return ret;
3493 }
3494
bcmgenet_dump_tx_queue(struct bcmgenet_tx_ring * ring)3495 static void bcmgenet_dump_tx_queue(struct bcmgenet_tx_ring *ring)
3496 {
3497 struct bcmgenet_priv *priv = ring->priv;
3498 u32 p_index, c_index, intsts, intmsk;
3499 struct netdev_queue *txq;
3500 unsigned int free_bds;
3501 bool txq_stopped;
3502
3503 if (!netif_msg_tx_err(priv))
3504 return;
3505
3506 txq = netdev_get_tx_queue(priv->dev, ring->index);
3507
3508 spin_lock(&ring->lock);
3509 intsts = ~bcmgenet_intrl2_1_readl(priv, INTRL2_CPU_MASK_STATUS);
3510 intmsk = 1 << ring->index;
3511 c_index = bcmgenet_tdma_ring_readl(priv, ring->index, TDMA_CONS_INDEX);
3512 p_index = bcmgenet_tdma_ring_readl(priv, ring->index, TDMA_PROD_INDEX);
3513 txq_stopped = netif_tx_queue_stopped(txq);
3514 free_bds = ring->free_bds;
3515 spin_unlock(&ring->lock);
3516
3517 netif_err(priv, tx_err, priv->dev, "Ring %d queue %d status summary\n"
3518 "TX queue status: %s, interrupts: %s\n"
3519 "(sw)free_bds: %d (sw)size: %d\n"
3520 "(sw)p_index: %d (hw)p_index: %d\n"
3521 "(sw)c_index: %d (hw)c_index: %d\n"
3522 "(sw)clean_p: %d (sw)write_p: %d\n"
3523 "(sw)cb_ptr: %d (sw)end_ptr: %d\n",
3524 ring->index, ring->index,
3525 txq_stopped ? "stopped" : "active",
3526 intsts & intmsk ? "enabled" : "disabled",
3527 free_bds, ring->size,
3528 ring->prod_index, p_index & DMA_P_INDEX_MASK,
3529 ring->c_index, c_index & DMA_C_INDEX_MASK,
3530 ring->clean_ptr, ring->write_ptr,
3531 ring->cb_ptr, ring->end_ptr);
3532 }
3533
bcmgenet_timeout(struct net_device * dev,unsigned int txqueue)3534 static void bcmgenet_timeout(struct net_device *dev, unsigned int txqueue)
3535 {
3536 struct bcmgenet_priv *priv = netdev_priv(dev);
3537 struct bcmgenet_tx_ring *ring = &priv->tx_rings[txqueue];
3538 struct netdev_queue *txq = netdev_get_tx_queue(dev, txqueue);
3539
3540 netif_dbg(priv, tx_err, dev, "bcmgenet_timeout\n");
3541
3542 bcmgenet_dump_tx_queue(ring);
3543
3544 bcmgenet_tx_reclaim(dev, ring, true);
3545
3546 /* Re-enable the TX interrupt for this ring */
3547 bcmgenet_intrl2_1_writel(priv, 1 << txqueue, INTRL2_CPU_MASK_CLEAR);
3548
3549 txq_trans_cond_update(txq);
3550
3551 BCMGENET_STATS64_INC((&ring->stats64), errors);
3552
3553 netif_tx_wake_queue(txq);
3554 }
3555
3556 #define MAX_MDF_FILTER 17
3557
bcmgenet_set_mdf_addr(struct bcmgenet_priv * priv,const unsigned char * addr,int * i)3558 static inline void bcmgenet_set_mdf_addr(struct bcmgenet_priv *priv,
3559 const unsigned char *addr,
3560 int *i)
3561 {
3562 bcmgenet_umac_writel(priv, addr[0] << 8 | addr[1],
3563 UMAC_MDF_ADDR + (*i * 4));
3564 bcmgenet_umac_writel(priv, addr[2] << 24 | addr[3] << 16 |
3565 addr[4] << 8 | addr[5],
3566 UMAC_MDF_ADDR + ((*i + 1) * 4));
3567 *i += 2;
3568 }
3569
bcmgenet_set_rx_mode(struct net_device * dev)3570 static void bcmgenet_set_rx_mode(struct net_device *dev)
3571 {
3572 struct bcmgenet_priv *priv = netdev_priv(dev);
3573 struct netdev_hw_addr *ha;
3574 int i, nfilter;
3575 u32 reg;
3576
3577 netif_dbg(priv, hw, dev, "%s: %08X\n", __func__, dev->flags);
3578
3579 /* Number of filters needed */
3580 nfilter = netdev_uc_count(dev) + netdev_mc_count(dev) + 2;
3581
3582 /*
3583 * Turn on promicuous mode for three scenarios
3584 * 1. IFF_PROMISC flag is set
3585 * 2. IFF_ALLMULTI flag is set
3586 * 3. The number of filters needed exceeds the number filters
3587 * supported by the hardware.
3588 */
3589 spin_lock(&priv->reg_lock);
3590 reg = bcmgenet_umac_readl(priv, UMAC_CMD);
3591 if ((dev->flags & (IFF_PROMISC | IFF_ALLMULTI)) ||
3592 (nfilter > MAX_MDF_FILTER)) {
3593 reg |= CMD_PROMISC;
3594 bcmgenet_umac_writel(priv, reg, UMAC_CMD);
3595 spin_unlock(&priv->reg_lock);
3596 bcmgenet_umac_writel(priv, 0, UMAC_MDF_CTRL);
3597 return;
3598 } else {
3599 reg &= ~CMD_PROMISC;
3600 bcmgenet_umac_writel(priv, reg, UMAC_CMD);
3601 spin_unlock(&priv->reg_lock);
3602 }
3603
3604 /* update MDF filter */
3605 i = 0;
3606 /* Broadcast */
3607 bcmgenet_set_mdf_addr(priv, dev->broadcast, &i);
3608 /* my own address.*/
3609 bcmgenet_set_mdf_addr(priv, dev->dev_addr, &i);
3610
3611 /* Unicast */
3612 netdev_for_each_uc_addr(ha, dev)
3613 bcmgenet_set_mdf_addr(priv, ha->addr, &i);
3614
3615 /* Multicast */
3616 netdev_for_each_mc_addr(ha, dev)
3617 bcmgenet_set_mdf_addr(priv, ha->addr, &i);
3618
3619 /* Enable filters */
3620 reg = GENMASK(MAX_MDF_FILTER - 1, MAX_MDF_FILTER - nfilter);
3621 bcmgenet_umac_writel(priv, reg, UMAC_MDF_CTRL);
3622 }
3623
3624 /* Set the hardware MAC address. */
bcmgenet_set_mac_addr(struct net_device * dev,void * p)3625 static int bcmgenet_set_mac_addr(struct net_device *dev, void *p)
3626 {
3627 struct sockaddr *addr = p;
3628
3629 /* Setting the MAC address at the hardware level is not possible
3630 * without disabling the UniMAC RX/TX enable bits.
3631 */
3632 if (netif_running(dev))
3633 return -EBUSY;
3634
3635 eth_hw_addr_set(dev, addr->sa_data);
3636
3637 return 0;
3638 }
3639
bcmgenet_get_stats64(struct net_device * dev,struct rtnl_link_stats64 * stats)3640 static void bcmgenet_get_stats64(struct net_device *dev,
3641 struct rtnl_link_stats64 *stats)
3642 {
3643 struct bcmgenet_priv *priv = netdev_priv(dev);
3644 struct bcmgenet_tx_stats64 *tx_stats;
3645 struct bcmgenet_rx_stats64 *rx_stats;
3646 u64 rx_length_errors, rx_over_errors;
3647 u64 rx_missed, rx_fragmented_errors;
3648 u64 rx_crc_errors, rx_frame_errors;
3649 u64 tx_errors, tx_dropped;
3650 u64 rx_errors, rx_dropped;
3651 u64 tx_bytes, tx_packets;
3652 u64 rx_bytes, rx_packets;
3653 unsigned int start;
3654 unsigned int q;
3655 u64 multicast;
3656
3657 for (q = 0; q <= priv->hw_params->tx_queues; q++) {
3658 tx_stats = &priv->tx_rings[q].stats64;
3659 do {
3660 start = u64_stats_fetch_begin(&tx_stats->syncp);
3661 tx_bytes = u64_stats_read(&tx_stats->bytes);
3662 tx_packets = u64_stats_read(&tx_stats->packets);
3663 tx_errors = u64_stats_read(&tx_stats->errors);
3664 tx_dropped = u64_stats_read(&tx_stats->dropped);
3665 } while (u64_stats_fetch_retry(&tx_stats->syncp, start));
3666
3667 stats->tx_bytes += tx_bytes;
3668 stats->tx_packets += tx_packets;
3669 stats->tx_errors += tx_errors;
3670 stats->tx_dropped += tx_dropped;
3671 }
3672
3673 for (q = 0; q <= priv->hw_params->rx_queues; q++) {
3674 rx_stats = &priv->rx_rings[q].stats64;
3675 do {
3676 start = u64_stats_fetch_begin(&rx_stats->syncp);
3677 rx_bytes = u64_stats_read(&rx_stats->bytes);
3678 rx_packets = u64_stats_read(&rx_stats->packets);
3679 rx_errors = u64_stats_read(&rx_stats->errors);
3680 rx_dropped = u64_stats_read(&rx_stats->dropped);
3681 rx_missed = u64_stats_read(&rx_stats->missed);
3682 rx_length_errors = u64_stats_read(&rx_stats->length_errors);
3683 rx_over_errors = u64_stats_read(&rx_stats->over_errors);
3684 rx_crc_errors = u64_stats_read(&rx_stats->crc_errors);
3685 rx_frame_errors = u64_stats_read(&rx_stats->frame_errors);
3686 rx_fragmented_errors = u64_stats_read(&rx_stats->fragmented_errors);
3687 multicast = u64_stats_read(&rx_stats->multicast);
3688 } while (u64_stats_fetch_retry(&rx_stats->syncp, start));
3689
3690 rx_errors += rx_length_errors;
3691 rx_errors += rx_crc_errors;
3692 rx_errors += rx_frame_errors;
3693 rx_errors += rx_fragmented_errors;
3694
3695 stats->rx_bytes += rx_bytes;
3696 stats->rx_packets += rx_packets;
3697 stats->rx_errors += rx_errors;
3698 stats->rx_dropped += rx_dropped;
3699 stats->rx_missed_errors += rx_missed;
3700 stats->rx_length_errors += rx_length_errors;
3701 stats->rx_over_errors += rx_over_errors;
3702 stats->rx_crc_errors += rx_crc_errors;
3703 stats->rx_frame_errors += rx_frame_errors;
3704 stats->multicast += multicast;
3705 }
3706 }
3707
bcmgenet_change_carrier(struct net_device * dev,bool new_carrier)3708 static int bcmgenet_change_carrier(struct net_device *dev, bool new_carrier)
3709 {
3710 struct bcmgenet_priv *priv = netdev_priv(dev);
3711
3712 if (!dev->phydev || !phy_is_pseudo_fixed_link(dev->phydev) ||
3713 priv->phy_interface != PHY_INTERFACE_MODE_MOCA)
3714 return -EOPNOTSUPP;
3715
3716 if (new_carrier)
3717 netif_carrier_on(dev);
3718 else
3719 netif_carrier_off(dev);
3720
3721 return 0;
3722 }
3723
3724 static const struct net_device_ops bcmgenet_netdev_ops = {
3725 .ndo_open = bcmgenet_open,
3726 .ndo_stop = bcmgenet_close,
3727 .ndo_start_xmit = bcmgenet_xmit,
3728 .ndo_tx_timeout = bcmgenet_timeout,
3729 .ndo_set_rx_mode = bcmgenet_set_rx_mode,
3730 .ndo_set_mac_address = bcmgenet_set_mac_addr,
3731 .ndo_eth_ioctl = phy_do_ioctl_running,
3732 .ndo_set_features = bcmgenet_set_features,
3733 .ndo_get_stats64 = bcmgenet_get_stats64,
3734 .ndo_change_carrier = bcmgenet_change_carrier,
3735 };
3736
3737 /* GENET hardware parameters/characteristics */
3738 static const struct bcmgenet_hw_params bcmgenet_hw_params_v1 = {
3739 .tx_queues = 0,
3740 .tx_bds_per_q = 0,
3741 .rx_queues = 0,
3742 .rx_bds_per_q = 0,
3743 .bp_in_en_shift = 16,
3744 .bp_in_mask = 0xffff,
3745 .hfb_filter_cnt = 16,
3746 .hfb_filter_size = 64,
3747 .qtag_mask = 0x1F,
3748 .hfb_offset = 0x1000,
3749 .hfb_reg_offset = GENET_RBUF_OFF + RBUF_HFB_CTRL_V1,
3750 .rdma_offset = 0x2000,
3751 .tdma_offset = 0x3000,
3752 .words_per_bd = 2,
3753 };
3754
3755 static const struct bcmgenet_hw_params bcmgenet_hw_params_v2 = {
3756 .tx_queues = 4,
3757 .tx_bds_per_q = 32,
3758 .rx_queues = 0,
3759 .rx_bds_per_q = 0,
3760 .bp_in_en_shift = 16,
3761 .bp_in_mask = 0xffff,
3762 .hfb_filter_cnt = 16,
3763 .hfb_filter_size = 64,
3764 .qtag_mask = 0x1F,
3765 .tbuf_offset = 0x0600,
3766 .hfb_offset = 0x1000,
3767 .hfb_reg_offset = 0x2000,
3768 .rdma_offset = 0x3000,
3769 .tdma_offset = 0x4000,
3770 .words_per_bd = 2,
3771 };
3772
3773 static const struct bcmgenet_hw_params bcmgenet_hw_params_v3 = {
3774 .tx_queues = 4,
3775 .tx_bds_per_q = 32,
3776 .rx_queues = 0,
3777 .rx_bds_per_q = 0,
3778 .bp_in_en_shift = 17,
3779 .bp_in_mask = 0x1ffff,
3780 .hfb_filter_cnt = 48,
3781 .hfb_filter_size = 128,
3782 .qtag_mask = 0x3F,
3783 .tbuf_offset = 0x0600,
3784 .hfb_offset = 0x8000,
3785 .hfb_reg_offset = 0xfc00,
3786 .rdma_offset = 0x10000,
3787 .tdma_offset = 0x11000,
3788 .words_per_bd = 2,
3789 };
3790
3791 static const struct bcmgenet_hw_params bcmgenet_hw_params_v4 = {
3792 .tx_queues = 4,
3793 .tx_bds_per_q = 32,
3794 .rx_queues = 0,
3795 .rx_bds_per_q = 0,
3796 .bp_in_en_shift = 17,
3797 .bp_in_mask = 0x1ffff,
3798 .hfb_filter_cnt = 48,
3799 .hfb_filter_size = 128,
3800 .qtag_mask = 0x3F,
3801 .tbuf_offset = 0x0600,
3802 .hfb_offset = 0x8000,
3803 .hfb_reg_offset = 0xfc00,
3804 .rdma_offset = 0x2000,
3805 .tdma_offset = 0x4000,
3806 .words_per_bd = 3,
3807 };
3808
3809 /* Infer hardware parameters from the detected GENET version */
bcmgenet_set_hw_params(struct bcmgenet_priv * priv)3810 static void bcmgenet_set_hw_params(struct bcmgenet_priv *priv)
3811 {
3812 const struct bcmgenet_hw_params *params;
3813 u32 reg;
3814 u8 major;
3815 u16 gphy_rev;
3816
3817 /* default to latest values */
3818 params = &bcmgenet_hw_params_v4;
3819 bcmgenet_dma_regs = bcmgenet_dma_regs_v3plus;
3820 genet_dma_ring_regs = genet_dma_ring_regs_v4;
3821 if (GENET_IS_V3(priv)) {
3822 params = &bcmgenet_hw_params_v3;
3823 bcmgenet_dma_regs = bcmgenet_dma_regs_v3plus;
3824 genet_dma_ring_regs = genet_dma_ring_regs_v123;
3825 } else if (GENET_IS_V2(priv)) {
3826 params = &bcmgenet_hw_params_v2;
3827 bcmgenet_dma_regs = bcmgenet_dma_regs_v2;
3828 genet_dma_ring_regs = genet_dma_ring_regs_v123;
3829 } else if (GENET_IS_V1(priv)) {
3830 params = &bcmgenet_hw_params_v1;
3831 bcmgenet_dma_regs = bcmgenet_dma_regs_v1;
3832 genet_dma_ring_regs = genet_dma_ring_regs_v123;
3833 }
3834 priv->hw_params = params;
3835
3836 /* Read GENET HW version */
3837 reg = bcmgenet_sys_readl(priv, SYS_REV_CTRL);
3838 major = (reg >> 24 & 0x0f);
3839 if (major == 6 || major == 7)
3840 major = 5;
3841 else if (major == 5)
3842 major = 4;
3843 else if (major == 0)
3844 major = 1;
3845 if (major != priv->version) {
3846 dev_err(&priv->pdev->dev,
3847 "GENET version mismatch, got: %d, configured for: %d\n",
3848 major, priv->version);
3849 }
3850
3851 /* Print the GENET core version */
3852 dev_info(&priv->pdev->dev, "GENET " GENET_VER_FMT,
3853 major, (reg >> 16) & 0x0f, reg & 0xffff);
3854
3855 /* Store the integrated PHY revision for the MDIO probing function
3856 * to pass this information to the PHY driver. The PHY driver expects
3857 * to find the PHY major revision in bits 15:8 while the GENET register
3858 * stores that information in bits 7:0, account for that.
3859 *
3860 * On newer chips, starting with PHY revision G0, a new scheme is
3861 * deployed similar to the Starfighter 2 switch with GPHY major
3862 * revision in bits 15:8 and patch level in bits 7:0. Major revision 0
3863 * is reserved as well as special value 0x01ff, we have a small
3864 * heuristic to check for the new GPHY revision and re-arrange things
3865 * so the GPHY driver is happy.
3866 */
3867 gphy_rev = reg & 0xffff;
3868
3869 if (GENET_IS_V5(priv)) {
3870 /* The EPHY revision should come from the MDIO registers of
3871 * the PHY not from GENET.
3872 */
3873 if (gphy_rev != 0) {
3874 pr_warn("GENET is reporting EPHY revision: 0x%04x\n",
3875 gphy_rev);
3876 }
3877 /* This is reserved so should require special treatment */
3878 } else if (gphy_rev == 0 || gphy_rev == 0x01ff) {
3879 pr_warn("Invalid GPHY revision detected: 0x%04x\n", gphy_rev);
3880 return;
3881 /* This is the good old scheme, just GPHY major, no minor nor patch */
3882 } else if ((gphy_rev & 0xf0) != 0) {
3883 priv->gphy_rev = gphy_rev << 8;
3884 /* This is the new scheme, GPHY major rolls over with 0x10 = rev G0 */
3885 } else if ((gphy_rev & 0xff00) != 0) {
3886 priv->gphy_rev = gphy_rev;
3887 }
3888
3889 #ifdef CONFIG_PHYS_ADDR_T_64BIT
3890 if (!bcmgenet_has_40bits(priv))
3891 pr_warn("GENET does not support 40-bits PA\n");
3892 #endif
3893
3894 pr_debug("Configuration for version: %d\n"
3895 "TXq: %1d, TXqBDs: %1d, RXq: %1d, RXqBDs: %1d\n"
3896 "BP << en: %2d, BP msk: 0x%05x\n"
3897 "HFB count: %2d, QTAQ msk: 0x%05x\n"
3898 "TBUF: 0x%04x, HFB: 0x%04x, HFBreg: 0x%04x\n"
3899 "RDMA: 0x%05x, TDMA: 0x%05x\n"
3900 "Words/BD: %d\n",
3901 priv->version,
3902 params->tx_queues, params->tx_bds_per_q,
3903 params->rx_queues, params->rx_bds_per_q,
3904 params->bp_in_en_shift, params->bp_in_mask,
3905 params->hfb_filter_cnt, params->qtag_mask,
3906 params->tbuf_offset, params->hfb_offset,
3907 params->hfb_reg_offset,
3908 params->rdma_offset, params->tdma_offset,
3909 params->words_per_bd);
3910 }
3911
3912 struct bcmgenet_plat_data {
3913 enum bcmgenet_version version;
3914 u32 dma_max_burst_length;
3915 u32 flags;
3916 };
3917
3918 static const struct bcmgenet_plat_data v1_plat_data = {
3919 .version = GENET_V1,
3920 .dma_max_burst_length = DMA_MAX_BURST_LENGTH,
3921 };
3922
3923 static const struct bcmgenet_plat_data v2_plat_data = {
3924 .version = GENET_V2,
3925 .dma_max_burst_length = DMA_MAX_BURST_LENGTH,
3926 .flags = GENET_HAS_EXT,
3927 };
3928
3929 static const struct bcmgenet_plat_data v3_plat_data = {
3930 .version = GENET_V3,
3931 .dma_max_burst_length = DMA_MAX_BURST_LENGTH,
3932 .flags = GENET_HAS_EXT | GENET_HAS_MDIO_INTR |
3933 GENET_HAS_MOCA_LINK_DET,
3934 };
3935
3936 static const struct bcmgenet_plat_data v4_plat_data = {
3937 .version = GENET_V4,
3938 .dma_max_burst_length = DMA_MAX_BURST_LENGTH,
3939 .flags = GENET_HAS_40BITS | GENET_HAS_EXT |
3940 GENET_HAS_MDIO_INTR | GENET_HAS_MOCA_LINK_DET,
3941 };
3942
3943 static const struct bcmgenet_plat_data v5_plat_data = {
3944 .version = GENET_V5,
3945 .dma_max_burst_length = DMA_MAX_BURST_LENGTH,
3946 .flags = GENET_HAS_40BITS | GENET_HAS_EXT |
3947 GENET_HAS_MDIO_INTR | GENET_HAS_MOCA_LINK_DET,
3948 };
3949
3950 static const struct bcmgenet_plat_data bcm2711_plat_data = {
3951 .version = GENET_V5,
3952 .dma_max_burst_length = 0x08,
3953 .flags = GENET_HAS_40BITS | GENET_HAS_EXT |
3954 GENET_HAS_MDIO_INTR | GENET_HAS_MOCA_LINK_DET,
3955 };
3956
3957 static const struct bcmgenet_plat_data bcm7712_plat_data = {
3958 .version = GENET_V5,
3959 .dma_max_burst_length = DMA_MAX_BURST_LENGTH,
3960 .flags = GENET_HAS_40BITS | GENET_HAS_EXT |
3961 GENET_HAS_MDIO_INTR | GENET_HAS_MOCA_LINK_DET |
3962 GENET_HAS_EPHY_16NM,
3963 };
3964
3965 static const struct of_device_id bcmgenet_match[] = {
3966 { .compatible = "brcm,genet-v1", .data = &v1_plat_data },
3967 { .compatible = "brcm,genet-v2", .data = &v2_plat_data },
3968 { .compatible = "brcm,genet-v3", .data = &v3_plat_data },
3969 { .compatible = "brcm,genet-v4", .data = &v4_plat_data },
3970 { .compatible = "brcm,genet-v5", .data = &v5_plat_data },
3971 { .compatible = "brcm,bcm2711-genet-v5", .data = &bcm2711_plat_data },
3972 { .compatible = "brcm,bcm7712-genet-v5", .data = &bcm7712_plat_data },
3973 { },
3974 };
3975 MODULE_DEVICE_TABLE(of, bcmgenet_match);
3976
bcmgenet_probe(struct platform_device * pdev)3977 static int bcmgenet_probe(struct platform_device *pdev)
3978 {
3979 const struct bcmgenet_plat_data *pdata;
3980 struct bcmgenet_priv *priv;
3981 struct net_device *dev;
3982 unsigned int i;
3983 int err = -EIO;
3984
3985 /* Up to GENET_MAX_MQ_CNT + 1 TX queues and RX queues */
3986 dev = alloc_etherdev_mqs(sizeof(*priv), GENET_MAX_MQ_CNT + 1,
3987 GENET_MAX_MQ_CNT + 1);
3988 if (!dev) {
3989 dev_err(&pdev->dev, "can't allocate net device\n");
3990 return -ENOMEM;
3991 }
3992
3993 priv = netdev_priv(dev);
3994 priv->irq0 = platform_get_irq(pdev, 0);
3995 if (priv->irq0 < 0) {
3996 err = priv->irq0;
3997 goto err;
3998 }
3999 priv->irq1 = platform_get_irq(pdev, 1);
4000 if (priv->irq1 < 0) {
4001 err = priv->irq1;
4002 goto err;
4003 }
4004 priv->wol_irq = platform_get_irq_optional(pdev, 2);
4005 if (priv->wol_irq == -EPROBE_DEFER) {
4006 err = priv->wol_irq;
4007 goto err;
4008 }
4009
4010 priv->base = devm_platform_ioremap_resource(pdev, 0);
4011 if (IS_ERR(priv->base)) {
4012 err = PTR_ERR(priv->base);
4013 goto err;
4014 }
4015
4016 spin_lock_init(&priv->reg_lock);
4017 spin_lock_init(&priv->lock);
4018
4019 /* Set default pause parameters */
4020 priv->autoneg_pause = 1;
4021 priv->tx_pause = 1;
4022 priv->rx_pause = 1;
4023
4024 SET_NETDEV_DEV(dev, &pdev->dev);
4025 dev_set_drvdata(&pdev->dev, dev);
4026 dev->watchdog_timeo = 2 * HZ;
4027 dev->ethtool_ops = &bcmgenet_ethtool_ops;
4028 dev->netdev_ops = &bcmgenet_netdev_ops;
4029
4030 priv->msg_enable = netif_msg_init(-1, GENET_MSG_DEFAULT);
4031
4032 /* Set default features */
4033 dev->features |= NETIF_F_SG | NETIF_F_HIGHDMA | NETIF_F_HW_CSUM |
4034 NETIF_F_RXCSUM;
4035 dev->hw_features |= dev->features;
4036 dev->vlan_features |= dev->features;
4037
4038 netdev_sw_irq_coalesce_default_on(dev);
4039
4040 /* Request the WOL interrupt and advertise suspend if available */
4041 priv->wol_irq_disabled = true;
4042 if (priv->wol_irq > 0) {
4043 err = devm_request_irq(&pdev->dev, priv->wol_irq,
4044 bcmgenet_wol_isr, 0, dev->name, priv);
4045 if (!err)
4046 device_set_wakeup_capable(&pdev->dev, 1);
4047 }
4048
4049 /* Set the needed headroom to account for any possible
4050 * features enabling/disabling at runtime
4051 */
4052 dev->needed_headroom += 64;
4053
4054 priv->dev = dev;
4055 priv->pdev = pdev;
4056
4057 pdata = device_get_match_data(&pdev->dev);
4058 if (pdata) {
4059 priv->version = pdata->version;
4060 priv->dma_max_burst_length = pdata->dma_max_burst_length;
4061 priv->flags = pdata->flags;
4062 }
4063
4064 priv->clk = devm_clk_get_optional(&priv->pdev->dev, "enet");
4065 if (IS_ERR(priv->clk)) {
4066 dev_dbg(&priv->pdev->dev, "failed to get enet clock\n");
4067 err = PTR_ERR(priv->clk);
4068 goto err;
4069 }
4070
4071 err = clk_prepare_enable(priv->clk);
4072 if (err)
4073 goto err;
4074
4075 bcmgenet_set_hw_params(priv);
4076
4077 err = -EIO;
4078 if (bcmgenet_has_40bits(priv))
4079 err = dma_set_mask_and_coherent(&pdev->dev, DMA_BIT_MASK(40));
4080 if (err)
4081 err = dma_set_mask_and_coherent(&pdev->dev, DMA_BIT_MASK(32));
4082 if (err)
4083 goto err_clk_disable;
4084
4085 /* Mii wait queue */
4086 init_waitqueue_head(&priv->wq);
4087 bcmgenet_hfb_init(priv);
4088 INIT_WORK(&priv->bcmgenet_irq_work, bcmgenet_irq_task);
4089
4090 priv->clk_wol = devm_clk_get_optional(&priv->pdev->dev, "enet-wol");
4091 if (IS_ERR(priv->clk_wol)) {
4092 dev_dbg(&priv->pdev->dev, "failed to get enet-wol clock\n");
4093 err = PTR_ERR(priv->clk_wol);
4094 goto err_clk_disable;
4095 }
4096
4097 priv->clk_eee = devm_clk_get_optional(&priv->pdev->dev, "enet-eee");
4098 if (IS_ERR(priv->clk_eee)) {
4099 dev_dbg(&priv->pdev->dev, "failed to get enet-eee clock\n");
4100 err = PTR_ERR(priv->clk_eee);
4101 goto err_clk_disable;
4102 }
4103
4104 /* If this is an internal GPHY, power it on now, before UniMAC is
4105 * brought out of reset as absolutely no UniMAC activity is allowed
4106 */
4107 if (device_get_phy_mode(&pdev->dev) == PHY_INTERFACE_MODE_INTERNAL)
4108 bcmgenet_power_up(priv, GENET_POWER_PASSIVE);
4109
4110 if (device_get_ethdev_address(&pdev->dev, dev))
4111 if (has_acpi_companion(&pdev->dev)) {
4112 u8 addr[ETH_ALEN];
4113
4114 bcmgenet_get_hw_addr(priv, addr);
4115 eth_hw_addr_set(dev, addr);
4116 }
4117
4118 if (!is_valid_ether_addr(dev->dev_addr)) {
4119 dev_warn(&pdev->dev, "using random Ethernet MAC\n");
4120 eth_hw_addr_random(dev);
4121 }
4122
4123 reset_umac(priv);
4124
4125 err = bcmgenet_mii_init(dev);
4126 if (err)
4127 goto err_clk_disable;
4128
4129 /* setup number of real queues + 1 */
4130 netif_set_real_num_tx_queues(priv->dev, priv->hw_params->tx_queues + 1);
4131 netif_set_real_num_rx_queues(priv->dev, priv->hw_params->rx_queues + 1);
4132
4133 /* Set default coalescing parameters */
4134 for (i = 0; i <= priv->hw_params->rx_queues; i++)
4135 priv->rx_rings[i].rx_max_coalesced_frames = 1;
4136
4137 /* Initialize u64 stats seq counter for 32bit machines */
4138 for (i = 0; i <= priv->hw_params->rx_queues; i++)
4139 u64_stats_init(&priv->rx_rings[i].stats64.syncp);
4140 for (i = 0; i <= priv->hw_params->tx_queues; i++)
4141 u64_stats_init(&priv->tx_rings[i].stats64.syncp);
4142
4143 /* libphy will determine the link state */
4144 netif_carrier_off(dev);
4145
4146 /* Turn off the main clock, WOL clock is handled separately */
4147 clk_disable_unprepare(priv->clk);
4148
4149 err = register_netdev(dev);
4150 if (err) {
4151 bcmgenet_mii_exit(dev);
4152 goto err;
4153 }
4154
4155 return err;
4156
4157 err_clk_disable:
4158 clk_disable_unprepare(priv->clk);
4159 err:
4160 free_netdev(dev);
4161 return err;
4162 }
4163
bcmgenet_remove(struct platform_device * pdev)4164 static void bcmgenet_remove(struct platform_device *pdev)
4165 {
4166 struct bcmgenet_priv *priv = dev_to_priv(&pdev->dev);
4167
4168 dev_set_drvdata(&pdev->dev, NULL);
4169 unregister_netdev(priv->dev);
4170 bcmgenet_mii_exit(priv->dev);
4171 free_netdev(priv->dev);
4172 }
4173
bcmgenet_shutdown(struct platform_device * pdev)4174 static void bcmgenet_shutdown(struct platform_device *pdev)
4175 {
4176 bcmgenet_remove(pdev);
4177 }
4178
4179 #ifdef CONFIG_PM_SLEEP
bcmgenet_resume_noirq(struct device * d)4180 static int bcmgenet_resume_noirq(struct device *d)
4181 {
4182 struct net_device *dev = dev_get_drvdata(d);
4183 struct bcmgenet_priv *priv = netdev_priv(dev);
4184 int ret;
4185 u32 reg;
4186
4187 if (!netif_running(dev))
4188 return 0;
4189
4190 /* Turn on the clock */
4191 ret = clk_prepare_enable(priv->clk);
4192 if (ret)
4193 return ret;
4194
4195 if (device_may_wakeup(d) && priv->wolopts) {
4196 /* Account for Wake-on-LAN events and clear those events
4197 * (Some devices need more time between enabling the clocks
4198 * and the interrupt register reflecting the wake event so
4199 * read the register twice)
4200 */
4201 reg = bcmgenet_intrl2_0_readl(priv, INTRL2_CPU_STAT);
4202 reg = bcmgenet_intrl2_0_readl(priv, INTRL2_CPU_STAT);
4203 if (reg & UMAC_IRQ_WAKE_EVENT)
4204 pm_wakeup_event(&priv->pdev->dev, 0);
4205
4206 /* From WOL-enabled suspend, switch to regular clock */
4207 if (!bcmgenet_power_up(priv, GENET_POWER_WOL_MAGIC))
4208 return 0;
4209
4210 /* Failed so fall through to reset MAC */
4211 }
4212
4213 /* If this is an internal GPHY, power it back on now, before UniMAC is
4214 * brought out of reset as absolutely no UniMAC activity is allowed
4215 */
4216 if (priv->internal_phy)
4217 bcmgenet_power_up(priv, GENET_POWER_PASSIVE);
4218
4219 /* take MAC out of reset */
4220 bcmgenet_umac_reset(priv);
4221
4222 return 0;
4223 }
4224
bcmgenet_resume(struct device * d)4225 static int bcmgenet_resume(struct device *d)
4226 {
4227 struct net_device *dev = dev_get_drvdata(d);
4228 struct bcmgenet_priv *priv = netdev_priv(dev);
4229 struct bcmgenet_rxnfc_rule *rule;
4230 int ret;
4231 u32 reg;
4232
4233 if (!netif_running(dev))
4234 return 0;
4235
4236 if (device_may_wakeup(d) && priv->wolopts) {
4237 reg = bcmgenet_umac_readl(priv, UMAC_CMD);
4238 if (reg & CMD_RX_EN) {
4239 /* Successfully exited WoL, just resume data flows */
4240 list_for_each_entry(rule, &priv->rxnfc_list, list)
4241 if (rule->state == BCMGENET_RXNFC_STATE_ENABLED)
4242 bcmgenet_hfb_enable_filter(priv,
4243 rule->fs.location + 1);
4244 bcmgenet_hfb_enable_filter(priv, 0);
4245 bcmgenet_set_rx_mode(dev);
4246 bcmgenet_enable_rx_napi(priv);
4247
4248 /* Reinitialize Tx flows */
4249 bcmgenet_tdma_disable(priv);
4250 bcmgenet_init_tx_queues(priv->dev);
4251 reg = bcmgenet_tdma_readl(priv, DMA_CTRL);
4252 reg |= DMA_EN;
4253 bcmgenet_tdma_writel(priv, reg, DMA_CTRL);
4254 bcmgenet_enable_tx_napi(priv);
4255
4256 bcmgenet_link_intr_enable(priv);
4257 phy_start_machine(dev->phydev);
4258
4259 netif_device_attach(dev);
4260 enable_irq(priv->irq1);
4261 return 0;
4262 }
4263 /* MAC was reset so complete bcmgenet_netif_stop() */
4264 umac_enable_set(priv, CMD_RX_EN | CMD_TX_EN, false);
4265 bcmgenet_rdma_disable(priv);
4266 bcmgenet_intr_disable(priv);
4267 bcmgenet_fini_dma(priv);
4268 enable_irq(priv->irq1);
4269 }
4270
4271 init_umac(priv);
4272
4273 phy_init_hw(dev->phydev);
4274
4275 /* Speed settings must be restored */
4276 genphy_config_aneg(dev->phydev);
4277 bcmgenet_mii_config(priv->dev, false);
4278
4279 /* Restore enabled features */
4280 bcmgenet_set_features(dev, dev->features);
4281
4282 bcmgenet_set_hw_addr(priv, dev->dev_addr);
4283
4284 /* Restore hardware filters */
4285 bcmgenet_hfb_restore(priv);
4286
4287 /* Reinitialize TDMA and RDMA and SW housekeeping */
4288 ret = bcmgenet_init_dma(priv, false);
4289 if (ret) {
4290 netdev_err(dev, "failed to initialize DMA\n");
4291 goto out_clk_disable;
4292 }
4293
4294 if (!device_may_wakeup(d))
4295 phy_resume(dev->phydev);
4296
4297 bcmgenet_netif_start(dev);
4298
4299 netif_device_attach(dev);
4300
4301 return 0;
4302
4303 out_clk_disable:
4304 if (priv->internal_phy)
4305 bcmgenet_power_down(priv, GENET_POWER_PASSIVE);
4306 clk_disable_unprepare(priv->clk);
4307 return ret;
4308 }
4309
bcmgenet_suspend(struct device * d)4310 static int bcmgenet_suspend(struct device *d)
4311 {
4312 struct net_device *dev = dev_get_drvdata(d);
4313 struct bcmgenet_priv *priv = netdev_priv(dev);
4314 struct bcmgenet_rxnfc_rule *rule;
4315 u32 reg, hfb_enable = 0;
4316
4317 if (!netif_running(dev))
4318 return 0;
4319
4320 netif_device_detach(dev);
4321
4322 if (device_may_wakeup(d) && priv->wolopts) {
4323 netif_tx_disable(dev);
4324
4325 /* Suspend non-wake Rx data flows */
4326 if (priv->wolopts & WAKE_FILTER)
4327 list_for_each_entry(rule, &priv->rxnfc_list, list)
4328 if (rule->fs.ring_cookie == RX_CLS_FLOW_WAKE &&
4329 rule->state == BCMGENET_RXNFC_STATE_ENABLED)
4330 hfb_enable |= 1 << rule->fs.location;
4331 reg = bcmgenet_hfb_reg_readl(priv, HFB_CTRL);
4332 if (GENET_IS_V1(priv) || GENET_IS_V2(priv)) {
4333 reg &= ~RBUF_HFB_FILTER_EN_MASK;
4334 reg |= hfb_enable << (RBUF_HFB_FILTER_EN_SHIFT + 1);
4335 } else {
4336 bcmgenet_hfb_reg_writel(priv, hfb_enable << 1,
4337 HFB_FLT_ENABLE_V3PLUS + 4);
4338 }
4339 if (!hfb_enable)
4340 reg &= ~RBUF_HFB_EN;
4341 bcmgenet_hfb_reg_writel(priv, reg, HFB_CTRL);
4342
4343 /* Clear any old filter matches so only new matches wake */
4344 bcmgenet_intrl2_0_writel(priv, 0xFFFFFFFF, INTRL2_CPU_MASK_SET);
4345 bcmgenet_intrl2_0_writel(priv, 0xFFFFFFFF, INTRL2_CPU_CLEAR);
4346
4347 if (-ETIMEDOUT == bcmgenet_tdma_disable(priv))
4348 netdev_warn(priv->dev,
4349 "Timed out while disabling TX DMA\n");
4350
4351 bcmgenet_disable_tx_napi(priv);
4352 bcmgenet_disable_rx_napi(priv);
4353 disable_irq(priv->irq1);
4354 bcmgenet_tx_reclaim_all(dev);
4355 bcmgenet_fini_tx_napi(priv);
4356 } else {
4357 /* Teardown the interface */
4358 bcmgenet_netif_stop(dev, true);
4359 }
4360
4361 return 0;
4362 }
4363
bcmgenet_suspend_noirq(struct device * d)4364 static int bcmgenet_suspend_noirq(struct device *d)
4365 {
4366 struct net_device *dev = dev_get_drvdata(d);
4367 struct bcmgenet_priv *priv = netdev_priv(dev);
4368 int ret = 0;
4369
4370 if (!netif_running(dev))
4371 return 0;
4372
4373 /* Prepare the device for Wake-on-LAN and switch to the slow clock */
4374 if (device_may_wakeup(d) && priv->wolopts)
4375 ret = bcmgenet_power_down(priv, GENET_POWER_WOL_MAGIC);
4376 else if (priv->internal_phy)
4377 ret = bcmgenet_power_down(priv, GENET_POWER_PASSIVE);
4378
4379 /* Let the framework handle resumption and leave the clocks on */
4380 if (ret)
4381 return ret;
4382
4383 /* Turn off the clocks */
4384 clk_disable_unprepare(priv->clk);
4385
4386 return 0;
4387 }
4388 #else
4389 #define bcmgenet_suspend NULL
4390 #define bcmgenet_suspend_noirq NULL
4391 #define bcmgenet_resume NULL
4392 #define bcmgenet_resume_noirq NULL
4393 #endif /* CONFIG_PM_SLEEP */
4394
4395 static const struct dev_pm_ops bcmgenet_pm_ops = {
4396 .suspend = bcmgenet_suspend,
4397 .suspend_noirq = bcmgenet_suspend_noirq,
4398 .resume = bcmgenet_resume,
4399 .resume_noirq = bcmgenet_resume_noirq,
4400 };
4401
4402 static const struct acpi_device_id genet_acpi_match[] = {
4403 { "BCM6E4E", (kernel_ulong_t)&bcm2711_plat_data },
4404 { },
4405 };
4406 MODULE_DEVICE_TABLE(acpi, genet_acpi_match);
4407
4408 static struct platform_driver bcmgenet_driver = {
4409 .probe = bcmgenet_probe,
4410 .remove = bcmgenet_remove,
4411 .shutdown = bcmgenet_shutdown,
4412 .driver = {
4413 .name = "bcmgenet",
4414 .of_match_table = bcmgenet_match,
4415 .pm = &bcmgenet_pm_ops,
4416 .acpi_match_table = genet_acpi_match,
4417 },
4418 };
4419 module_platform_driver(bcmgenet_driver);
4420
4421 MODULE_AUTHOR("Broadcom Corporation");
4422 MODULE_DESCRIPTION("Broadcom GENET Ethernet controller driver");
4423 MODULE_ALIAS("platform:bcmgenet");
4424 MODULE_LICENSE("GPL");
4425 MODULE_SOFTDEP("pre: mdio-bcm-unimac");
4426