xref: /linux/drivers/net/ethernet/intel/ice/ice_common.c (revision 53432c4c3e869076350aef319534431af8ba99c1)
1 // SPDX-License-Identifier: GPL-2.0
2 /* Copyright (c) 2018-2023, Intel Corporation. */
3 
4 #include "ice_common.h"
5 #include "ice_sched.h"
6 #include "ice_adminq_cmd.h"
7 #include "ice_flow.h"
8 #include "ice_ptp_hw.h"
9 #include <linux/packing.h>
10 
11 #define ICE_PF_RESET_WAIT_COUNT	300
12 #define ICE_MAX_NETLIST_SIZE	10
13 
14 static const char * const ice_link_mode_str_low[] = {
15 	[0] = "100BASE_TX",
16 	[1] = "100M_SGMII",
17 	[2] = "1000BASE_T",
18 	[3] = "1000BASE_SX",
19 	[4] = "1000BASE_LX",
20 	[5] = "1000BASE_KX",
21 	[6] = "1G_SGMII",
22 	[7] = "2500BASE_T",
23 	[8] = "2500BASE_X",
24 	[9] = "2500BASE_KX",
25 	[10] = "5GBASE_T",
26 	[11] = "5GBASE_KR",
27 	[12] = "10GBASE_T",
28 	[13] = "10G_SFI_DA",
29 	[14] = "10GBASE_SR",
30 	[15] = "10GBASE_LR",
31 	[16] = "10GBASE_KR_CR1",
32 	[17] = "10G_SFI_AOC_ACC",
33 	[18] = "10G_SFI_C2C",
34 	[19] = "25GBASE_T",
35 	[20] = "25GBASE_CR",
36 	[21] = "25GBASE_CR_S",
37 	[22] = "25GBASE_CR1",
38 	[23] = "25GBASE_SR",
39 	[24] = "25GBASE_LR",
40 	[25] = "25GBASE_KR",
41 	[26] = "25GBASE_KR_S",
42 	[27] = "25GBASE_KR1",
43 	[28] = "25G_AUI_AOC_ACC",
44 	[29] = "25G_AUI_C2C",
45 	[30] = "40GBASE_CR4",
46 	[31] = "40GBASE_SR4",
47 	[32] = "40GBASE_LR4",
48 	[33] = "40GBASE_KR4",
49 	[34] = "40G_XLAUI_AOC_ACC",
50 	[35] = "40G_XLAUI",
51 	[36] = "50GBASE_CR2",
52 	[37] = "50GBASE_SR2",
53 	[38] = "50GBASE_LR2",
54 	[39] = "50GBASE_KR2",
55 	[40] = "50G_LAUI2_AOC_ACC",
56 	[41] = "50G_LAUI2",
57 	[42] = "50G_AUI2_AOC_ACC",
58 	[43] = "50G_AUI2",
59 	[44] = "50GBASE_CP",
60 	[45] = "50GBASE_SR",
61 	[46] = "50GBASE_FR",
62 	[47] = "50GBASE_LR",
63 	[48] = "50GBASE_KR_PAM4",
64 	[49] = "50G_AUI1_AOC_ACC",
65 	[50] = "50G_AUI1",
66 	[51] = "100GBASE_CR4",
67 	[52] = "100GBASE_SR4",
68 	[53] = "100GBASE_LR4",
69 	[54] = "100GBASE_KR4",
70 	[55] = "100G_CAUI4_AOC_ACC",
71 	[56] = "100G_CAUI4",
72 	[57] = "100G_AUI4_AOC_ACC",
73 	[58] = "100G_AUI4",
74 	[59] = "100GBASE_CR_PAM4",
75 	[60] = "100GBASE_KR_PAM4",
76 	[61] = "100GBASE_CP2",
77 	[62] = "100GBASE_SR2",
78 	[63] = "100GBASE_DR",
79 };
80 
81 static const char * const ice_link_mode_str_high[] = {
82 	[0] = "100GBASE_KR2_PAM4",
83 	[1] = "100G_CAUI2_AOC_ACC",
84 	[2] = "100G_CAUI2",
85 	[3] = "100G_AUI2_AOC_ACC",
86 	[4] = "100G_AUI2",
87 };
88 
89 /**
90  * ice_dump_phy_type - helper function to dump phy_type
91  * @hw: pointer to the HW structure
92  * @low: 64 bit value for phy_type_low
93  * @high: 64 bit value for phy_type_high
94  * @prefix: prefix string to differentiate multiple dumps
95  */
96 static void
97 ice_dump_phy_type(struct ice_hw *hw, u64 low, u64 high, const char *prefix)
98 {
99 	ice_debug(hw, ICE_DBG_PHY, "%s: phy_type_low: 0x%016llx\n", prefix, low);
100 
101 	for (u32 i = 0; i < BITS_PER_TYPE(typeof(low)); i++) {
102 		if (low & BIT_ULL(i))
103 			ice_debug(hw, ICE_DBG_PHY, "%s:   bit(%d): %s\n",
104 				  prefix, i, ice_link_mode_str_low[i]);
105 	}
106 
107 	ice_debug(hw, ICE_DBG_PHY, "%s: phy_type_high: 0x%016llx\n", prefix, high);
108 
109 	for (u32 i = 0; i < BITS_PER_TYPE(typeof(high)); i++) {
110 		if (high & BIT_ULL(i))
111 			ice_debug(hw, ICE_DBG_PHY, "%s:   bit(%d): %s\n",
112 				  prefix, i, ice_link_mode_str_high[i]);
113 	}
114 }
115 
116 /**
117  * ice_set_mac_type - Sets MAC type
118  * @hw: pointer to the HW structure
119  *
120  * This function sets the MAC type of the adapter based on the
121  * vendor ID and device ID stored in the HW structure.
122  */
123 static int ice_set_mac_type(struct ice_hw *hw)
124 {
125 	if (hw->vendor_id != PCI_VENDOR_ID_INTEL)
126 		return -ENODEV;
127 
128 	switch (hw->device_id) {
129 	case ICE_DEV_ID_E810C_BACKPLANE:
130 	case ICE_DEV_ID_E810C_QSFP:
131 	case ICE_DEV_ID_E810C_SFP:
132 	case ICE_DEV_ID_E810_XXV_BACKPLANE:
133 	case ICE_DEV_ID_E810_XXV_QSFP:
134 	case ICE_DEV_ID_E810_XXV_SFP:
135 		hw->mac_type = ICE_MAC_E810;
136 		break;
137 	case ICE_DEV_ID_E823C_10G_BASE_T:
138 	case ICE_DEV_ID_E823C_BACKPLANE:
139 	case ICE_DEV_ID_E823C_QSFP:
140 	case ICE_DEV_ID_E823C_SFP:
141 	case ICE_DEV_ID_E823C_SGMII:
142 	case ICE_DEV_ID_E822C_10G_BASE_T:
143 	case ICE_DEV_ID_E822C_BACKPLANE:
144 	case ICE_DEV_ID_E822C_QSFP:
145 	case ICE_DEV_ID_E822C_SFP:
146 	case ICE_DEV_ID_E822C_SGMII:
147 	case ICE_DEV_ID_E822L_10G_BASE_T:
148 	case ICE_DEV_ID_E822L_BACKPLANE:
149 	case ICE_DEV_ID_E822L_SFP:
150 	case ICE_DEV_ID_E822L_SGMII:
151 	case ICE_DEV_ID_E823L_10G_BASE_T:
152 	case ICE_DEV_ID_E823L_1GBE:
153 	case ICE_DEV_ID_E823L_BACKPLANE:
154 	case ICE_DEV_ID_E823L_QSFP:
155 	case ICE_DEV_ID_E823L_SFP:
156 		hw->mac_type = ICE_MAC_GENERIC;
157 		break;
158 	case ICE_DEV_ID_E825C_BACKPLANE:
159 	case ICE_DEV_ID_E825C_QSFP:
160 	case ICE_DEV_ID_E825C_SFP:
161 	case ICE_DEV_ID_E825C_SGMII:
162 		hw->mac_type = ICE_MAC_GENERIC_3K_E825;
163 		break;
164 	case ICE_DEV_ID_E830CC_BACKPLANE:
165 	case ICE_DEV_ID_E830CC_QSFP56:
166 	case ICE_DEV_ID_E830CC_SFP:
167 	case ICE_DEV_ID_E830CC_SFP_DD:
168 	case ICE_DEV_ID_E830C_BACKPLANE:
169 	case ICE_DEV_ID_E830_XXV_BACKPLANE:
170 	case ICE_DEV_ID_E830C_QSFP:
171 	case ICE_DEV_ID_E830_XXV_QSFP:
172 	case ICE_DEV_ID_E830C_SFP:
173 	case ICE_DEV_ID_E830_XXV_SFP:
174 	case ICE_DEV_ID_E835CC_BACKPLANE:
175 	case ICE_DEV_ID_E835CC_QSFP56:
176 	case ICE_DEV_ID_E835CC_SFP:
177 	case ICE_DEV_ID_E835C_BACKPLANE:
178 	case ICE_DEV_ID_E835C_QSFP:
179 	case ICE_DEV_ID_E835C_SFP:
180 	case ICE_DEV_ID_E835_L_BACKPLANE:
181 	case ICE_DEV_ID_E835_L_QSFP:
182 	case ICE_DEV_ID_E835_L_SFP:
183 		hw->mac_type = ICE_MAC_E830;
184 		break;
185 	default:
186 		hw->mac_type = ICE_MAC_UNKNOWN;
187 		break;
188 	}
189 
190 	ice_debug(hw, ICE_DBG_INIT, "mac_type: %d\n", hw->mac_type);
191 	return 0;
192 }
193 
194 /**
195  * ice_is_generic_mac - check if device's mac_type is generic
196  * @hw: pointer to the hardware structure
197  *
198  * Return: true if mac_type is ICE_MAC_GENERIC*, false otherwise.
199  */
200 bool ice_is_generic_mac(struct ice_hw *hw)
201 {
202 	return (hw->mac_type == ICE_MAC_GENERIC ||
203 		hw->mac_type == ICE_MAC_GENERIC_3K_E825);
204 }
205 
206 /**
207  * ice_clear_pf_cfg - Clear PF configuration
208  * @hw: pointer to the hardware structure
209  *
210  * Clears any existing PF configuration (VSIs, VSI lists, switch rules, port
211  * configuration, flow director filters, etc.).
212  */
213 int ice_clear_pf_cfg(struct ice_hw *hw)
214 {
215 	struct libie_aq_desc desc;
216 
217 	ice_fill_dflt_direct_cmd_desc(&desc, ice_aqc_opc_clear_pf_cfg);
218 
219 	return ice_aq_send_cmd(hw, &desc, NULL, 0, NULL);
220 }
221 
222 /**
223  * ice_aq_manage_mac_read - manage MAC address read command
224  * @hw: pointer to the HW struct
225  * @buf: a virtual buffer to hold the manage MAC read response
226  * @buf_size: Size of the virtual buffer
227  * @cd: pointer to command details structure or NULL
228  *
229  * This function is used to return per PF station MAC address (0x0107).
230  * NOTE: Upon successful completion of this command, MAC address information
231  * is returned in user specified buffer. Please interpret user specified
232  * buffer as "manage_mac_read" response.
233  * Response such as various MAC addresses are stored in HW struct (port.mac)
234  * ice_discover_dev_caps is expected to be called before this function is
235  * called.
236  */
237 static int
238 ice_aq_manage_mac_read(struct ice_hw *hw, void *buf, u16 buf_size,
239 		       struct ice_sq_cd *cd)
240 {
241 	struct ice_aqc_manage_mac_read_resp *resp;
242 	struct ice_aqc_manage_mac_read *cmd;
243 	struct libie_aq_desc desc;
244 	int status;
245 	u16 flags;
246 	u8 i;
247 
248 	cmd = libie_aq_raw(&desc);
249 
250 	if (buf_size < sizeof(*resp))
251 		return -EINVAL;
252 
253 	ice_fill_dflt_direct_cmd_desc(&desc, ice_aqc_opc_manage_mac_read);
254 
255 	status = ice_aq_send_cmd(hw, &desc, buf, buf_size, cd);
256 	if (status)
257 		return status;
258 
259 	resp = buf;
260 	flags = le16_to_cpu(cmd->flags) & ICE_AQC_MAN_MAC_READ_M;
261 
262 	if (!(flags & ICE_AQC_MAN_MAC_LAN_ADDR_VALID)) {
263 		ice_debug(hw, ICE_DBG_LAN, "got invalid MAC address\n");
264 		return -EIO;
265 	}
266 
267 	/* A single port can report up to two (LAN and WoL) addresses */
268 	for (i = 0; i < cmd->num_addr; i++)
269 		if (resp[i].addr_type == ICE_AQC_MAN_MAC_ADDR_TYPE_LAN) {
270 			ether_addr_copy(hw->port_info->mac.lan_addr,
271 					resp[i].mac_addr);
272 			ether_addr_copy(hw->port_info->mac.perm_addr,
273 					resp[i].mac_addr);
274 			break;
275 		}
276 
277 	return 0;
278 }
279 
280 /**
281  * ice_aq_get_phy_caps - returns PHY capabilities
282  * @pi: port information structure
283  * @qual_mods: report qualified modules
284  * @report_mode: report mode capabilities
285  * @pcaps: structure for PHY capabilities to be filled
286  * @cd: pointer to command details structure or NULL
287  *
288  * Returns the various PHY capabilities supported on the Port (0x0600)
289  */
290 int
291 ice_aq_get_phy_caps(struct ice_port_info *pi, bool qual_mods, u8 report_mode,
292 		    struct ice_aqc_get_phy_caps_data *pcaps,
293 		    struct ice_sq_cd *cd)
294 {
295 	struct ice_aqc_get_phy_caps *cmd;
296 	u16 pcaps_size = sizeof(*pcaps);
297 	struct libie_aq_desc desc;
298 	const char *prefix;
299 	struct ice_hw *hw;
300 	int status;
301 
302 	cmd = libie_aq_raw(&desc);
303 
304 	if (!pcaps || (report_mode & ~ICE_AQC_REPORT_MODE_M) || !pi)
305 		return -EINVAL;
306 	hw = pi->hw;
307 
308 	if (report_mode == ICE_AQC_REPORT_DFLT_CFG &&
309 	    !ice_fw_supports_report_dflt_cfg(hw))
310 		return -EINVAL;
311 
312 	ice_fill_dflt_direct_cmd_desc(&desc, ice_aqc_opc_get_phy_caps);
313 
314 	if (qual_mods)
315 		cmd->param0 |= cpu_to_le16(ICE_AQC_GET_PHY_RQM);
316 
317 	cmd->param0 |= cpu_to_le16(report_mode);
318 	status = ice_aq_send_cmd(hw, &desc, pcaps, pcaps_size, cd);
319 
320 	ice_debug(hw, ICE_DBG_LINK, "get phy caps dump\n");
321 
322 	switch (report_mode) {
323 	case ICE_AQC_REPORT_TOPO_CAP_MEDIA:
324 		prefix = "phy_caps_media";
325 		break;
326 	case ICE_AQC_REPORT_TOPO_CAP_NO_MEDIA:
327 		prefix = "phy_caps_no_media";
328 		break;
329 	case ICE_AQC_REPORT_ACTIVE_CFG:
330 		prefix = "phy_caps_active";
331 		break;
332 	case ICE_AQC_REPORT_DFLT_CFG:
333 		prefix = "phy_caps_default";
334 		break;
335 	default:
336 		prefix = "phy_caps_invalid";
337 	}
338 
339 	ice_dump_phy_type(hw, le64_to_cpu(pcaps->phy_type_low),
340 			  le64_to_cpu(pcaps->phy_type_high), prefix);
341 
342 	ice_debug(hw, ICE_DBG_LINK, "%s: report_mode = 0x%x\n",
343 		  prefix, report_mode);
344 	ice_debug(hw, ICE_DBG_LINK, "%s: caps = 0x%x\n", prefix, pcaps->caps);
345 	ice_debug(hw, ICE_DBG_LINK, "%s: low_power_ctrl_an = 0x%x\n", prefix,
346 		  pcaps->low_power_ctrl_an);
347 	ice_debug(hw, ICE_DBG_LINK, "%s: eee_cap = 0x%x\n", prefix,
348 		  pcaps->eee_cap);
349 	ice_debug(hw, ICE_DBG_LINK, "%s: eeer_value = 0x%x\n", prefix,
350 		  pcaps->eeer_value);
351 	ice_debug(hw, ICE_DBG_LINK, "%s: link_fec_options = 0x%x\n", prefix,
352 		  pcaps->link_fec_options);
353 	ice_debug(hw, ICE_DBG_LINK, "%s: module_compliance_enforcement = 0x%x\n",
354 		  prefix, pcaps->module_compliance_enforcement);
355 	ice_debug(hw, ICE_DBG_LINK, "%s: extended_compliance_code = 0x%x\n",
356 		  prefix, pcaps->extended_compliance_code);
357 	ice_debug(hw, ICE_DBG_LINK, "%s: module_type[0] = 0x%x\n", prefix,
358 		  pcaps->module_type[0]);
359 	ice_debug(hw, ICE_DBG_LINK, "%s: module_type[1] = 0x%x\n", prefix,
360 		  pcaps->module_type[1]);
361 	ice_debug(hw, ICE_DBG_LINK, "%s: module_type[2] = 0x%x\n", prefix,
362 		  pcaps->module_type[2]);
363 
364 	if (!status && report_mode == ICE_AQC_REPORT_TOPO_CAP_MEDIA) {
365 		pi->phy.phy_type_low = le64_to_cpu(pcaps->phy_type_low);
366 		pi->phy.phy_type_high = le64_to_cpu(pcaps->phy_type_high);
367 		memcpy(pi->phy.link_info.module_type, &pcaps->module_type,
368 		       sizeof(pi->phy.link_info.module_type));
369 	}
370 
371 	return status;
372 }
373 
374 /**
375  * ice_aq_get_link_topo_handle - get link topology node return status
376  * @pi: port information structure
377  * @node_type: requested node type
378  * @cd: pointer to command details structure or NULL
379  *
380  * Get link topology node return status for specified node type (0x06E0)
381  *
382  * Node type cage can be used to determine if cage is present. If AQC
383  * returns error (ENOENT), then no cage present. If no cage present, then
384  * connection type is backplane or BASE-T.
385  */
386 static int
387 ice_aq_get_link_topo_handle(struct ice_port_info *pi, u8 node_type,
388 			    struct ice_sq_cd *cd)
389 {
390 	struct ice_aqc_get_link_topo *cmd;
391 	struct libie_aq_desc desc;
392 
393 	cmd = libie_aq_raw(&desc);
394 
395 	ice_fill_dflt_direct_cmd_desc(&desc, ice_aqc_opc_get_link_topo);
396 
397 	cmd->addr.topo_params.node_type_ctx =
398 		(ICE_AQC_LINK_TOPO_NODE_CTX_PORT <<
399 		 ICE_AQC_LINK_TOPO_NODE_CTX_S);
400 
401 	/* set node type */
402 	cmd->addr.topo_params.node_type_ctx |=
403 		(ICE_AQC_LINK_TOPO_NODE_TYPE_M & node_type);
404 
405 	return ice_aq_send_cmd(pi->hw, &desc, NULL, 0, cd);
406 }
407 
408 /**
409  * ice_aq_get_netlist_node
410  * @hw: pointer to the hw struct
411  * @cmd: get_link_topo AQ structure
412  * @node_part_number: output node part number if node found
413  * @node_handle: output node handle parameter if node found
414  *
415  * Get netlist node handle.
416  */
417 int
418 ice_aq_get_netlist_node(struct ice_hw *hw, struct ice_aqc_get_link_topo *cmd,
419 			u8 *node_part_number, u16 *node_handle)
420 {
421 	struct ice_aqc_get_link_topo *resp;
422 	struct libie_aq_desc desc;
423 
424 	ice_fill_dflt_direct_cmd_desc(&desc, ice_aqc_opc_get_link_topo);
425 	resp = libie_aq_raw(&desc);
426 	*resp = *cmd;
427 
428 	if (ice_aq_send_cmd(hw, &desc, NULL, 0, NULL))
429 		return -EINTR;
430 
431 	if (node_handle)
432 		*node_handle = le16_to_cpu(resp->addr.handle);
433 	if (node_part_number)
434 		*node_part_number = resp->node_part_num;
435 
436 	return 0;
437 }
438 
439 /**
440  * ice_find_netlist_node
441  * @hw: pointer to the hw struct
442  * @node_type: type of netlist node to look for
443  * @ctx: context of the search
444  * @node_part_number: node part number to look for
445  * @node_handle: output parameter if node found - optional
446  *
447  * Scan the netlist for a node handle of the given node type and part number.
448  *
449  * If node_handle is non-NULL it will be modified on function exit. It is only
450  * valid if the function returns zero, and should be ignored on any non-zero
451  * return value.
452  *
453  * Return:
454  * * 0 if the node is found,
455  * * -ENOENT if no handle was found,
456  * * negative error code on failure to access the AQ.
457  */
458 static int ice_find_netlist_node(struct ice_hw *hw, u8 node_type, u8 ctx,
459 				 u8 node_part_number, u16 *node_handle)
460 {
461 	u8 idx;
462 
463 	for (idx = 0; idx < ICE_MAX_NETLIST_SIZE; idx++) {
464 		struct ice_aqc_get_link_topo cmd = {};
465 		u8 rec_node_part_number;
466 		int status;
467 
468 		cmd.addr.topo_params.node_type_ctx =
469 			FIELD_PREP(ICE_AQC_LINK_TOPO_NODE_TYPE_M, node_type) |
470 			FIELD_PREP(ICE_AQC_LINK_TOPO_NODE_CTX_M, ctx);
471 		cmd.addr.topo_params.index = idx;
472 
473 		status = ice_aq_get_netlist_node(hw, &cmd,
474 						 &rec_node_part_number,
475 						 node_handle);
476 		if (status)
477 			return status;
478 
479 		if (rec_node_part_number == node_part_number)
480 			return 0;
481 	}
482 
483 	return -ENOENT;
484 }
485 
486 /**
487  * ice_is_media_cage_present
488  * @pi: port information structure
489  *
490  * Returns true if media cage is present, else false. If no cage, then
491  * media type is backplane or BASE-T.
492  */
493 static bool ice_is_media_cage_present(struct ice_port_info *pi)
494 {
495 	/* Node type cage can be used to determine if cage is present. If AQC
496 	 * returns error (ENOENT), then no cage present. If no cage present then
497 	 * connection type is backplane or BASE-T.
498 	 */
499 	return !ice_aq_get_link_topo_handle(pi,
500 					    ICE_AQC_LINK_TOPO_NODE_TYPE_CAGE,
501 					    NULL);
502 }
503 
504 /**
505  * ice_get_media_type - Gets media type
506  * @pi: port information structure
507  */
508 static enum ice_media_type ice_get_media_type(struct ice_port_info *pi)
509 {
510 	struct ice_link_status *hw_link_info;
511 
512 	if (!pi)
513 		return ICE_MEDIA_UNKNOWN;
514 
515 	hw_link_info = &pi->phy.link_info;
516 	if (hw_link_info->phy_type_low && hw_link_info->phy_type_high)
517 		/* If more than one media type is selected, report unknown */
518 		return ICE_MEDIA_UNKNOWN;
519 
520 	if (hw_link_info->phy_type_low) {
521 		/* 1G SGMII is a special case where some DA cable PHYs
522 		 * may show this as an option when it really shouldn't
523 		 * be since SGMII is meant to be between a MAC and a PHY
524 		 * in a backplane. Try to detect this case and handle it
525 		 */
526 		if (hw_link_info->phy_type_low == ICE_PHY_TYPE_LOW_1G_SGMII &&
527 		    (hw_link_info->module_type[ICE_AQC_MOD_TYPE_IDENT] ==
528 		    ICE_AQC_MOD_TYPE_BYTE1_SFP_PLUS_CU_ACTIVE ||
529 		    hw_link_info->module_type[ICE_AQC_MOD_TYPE_IDENT] ==
530 		    ICE_AQC_MOD_TYPE_BYTE1_SFP_PLUS_CU_PASSIVE))
531 			return ICE_MEDIA_DA;
532 
533 		switch (hw_link_info->phy_type_low) {
534 		case ICE_PHY_TYPE_LOW_1000BASE_SX:
535 		case ICE_PHY_TYPE_LOW_1000BASE_LX:
536 		case ICE_PHY_TYPE_LOW_10GBASE_SR:
537 		case ICE_PHY_TYPE_LOW_10GBASE_LR:
538 		case ICE_PHY_TYPE_LOW_10G_SFI_C2C:
539 		case ICE_PHY_TYPE_LOW_25GBASE_SR:
540 		case ICE_PHY_TYPE_LOW_25GBASE_LR:
541 		case ICE_PHY_TYPE_LOW_40GBASE_SR4:
542 		case ICE_PHY_TYPE_LOW_40GBASE_LR4:
543 		case ICE_PHY_TYPE_LOW_50GBASE_SR2:
544 		case ICE_PHY_TYPE_LOW_50GBASE_LR2:
545 		case ICE_PHY_TYPE_LOW_50GBASE_SR:
546 		case ICE_PHY_TYPE_LOW_50GBASE_FR:
547 		case ICE_PHY_TYPE_LOW_50GBASE_LR:
548 		case ICE_PHY_TYPE_LOW_100GBASE_SR4:
549 		case ICE_PHY_TYPE_LOW_100GBASE_LR4:
550 		case ICE_PHY_TYPE_LOW_100GBASE_SR2:
551 		case ICE_PHY_TYPE_LOW_100GBASE_DR:
552 		case ICE_PHY_TYPE_LOW_10G_SFI_AOC_ACC:
553 		case ICE_PHY_TYPE_LOW_25G_AUI_AOC_ACC:
554 		case ICE_PHY_TYPE_LOW_40G_XLAUI_AOC_ACC:
555 		case ICE_PHY_TYPE_LOW_50G_LAUI2_AOC_ACC:
556 		case ICE_PHY_TYPE_LOW_50G_AUI2_AOC_ACC:
557 		case ICE_PHY_TYPE_LOW_50G_AUI1_AOC_ACC:
558 		case ICE_PHY_TYPE_LOW_100G_CAUI4_AOC_ACC:
559 		case ICE_PHY_TYPE_LOW_100G_AUI4_AOC_ACC:
560 			return ICE_MEDIA_FIBER;
561 		case ICE_PHY_TYPE_LOW_100BASE_TX:
562 		case ICE_PHY_TYPE_LOW_1000BASE_T:
563 		case ICE_PHY_TYPE_LOW_2500BASE_T:
564 		case ICE_PHY_TYPE_LOW_5GBASE_T:
565 		case ICE_PHY_TYPE_LOW_10GBASE_T:
566 		case ICE_PHY_TYPE_LOW_25GBASE_T:
567 			return ICE_MEDIA_BASET;
568 		case ICE_PHY_TYPE_LOW_10G_SFI_DA:
569 		case ICE_PHY_TYPE_LOW_25GBASE_CR:
570 		case ICE_PHY_TYPE_LOW_25GBASE_CR_S:
571 		case ICE_PHY_TYPE_LOW_25GBASE_CR1:
572 		case ICE_PHY_TYPE_LOW_40GBASE_CR4:
573 		case ICE_PHY_TYPE_LOW_50GBASE_CR2:
574 		case ICE_PHY_TYPE_LOW_50GBASE_CP:
575 		case ICE_PHY_TYPE_LOW_100GBASE_CR4:
576 		case ICE_PHY_TYPE_LOW_100GBASE_CR_PAM4:
577 		case ICE_PHY_TYPE_LOW_100GBASE_CP2:
578 			return ICE_MEDIA_DA;
579 		case ICE_PHY_TYPE_LOW_25G_AUI_C2C:
580 		case ICE_PHY_TYPE_LOW_40G_XLAUI:
581 		case ICE_PHY_TYPE_LOW_50G_LAUI2:
582 		case ICE_PHY_TYPE_LOW_50G_AUI2:
583 		case ICE_PHY_TYPE_LOW_50G_AUI1:
584 		case ICE_PHY_TYPE_LOW_100G_AUI4:
585 		case ICE_PHY_TYPE_LOW_100G_CAUI4:
586 			if (ice_is_media_cage_present(pi))
587 				return ICE_MEDIA_DA;
588 			fallthrough;
589 		case ICE_PHY_TYPE_LOW_1000BASE_KX:
590 		case ICE_PHY_TYPE_LOW_2500BASE_KX:
591 		case ICE_PHY_TYPE_LOW_2500BASE_X:
592 		case ICE_PHY_TYPE_LOW_5GBASE_KR:
593 		case ICE_PHY_TYPE_LOW_10GBASE_KR_CR1:
594 		case ICE_PHY_TYPE_LOW_25GBASE_KR:
595 		case ICE_PHY_TYPE_LOW_25GBASE_KR1:
596 		case ICE_PHY_TYPE_LOW_25GBASE_KR_S:
597 		case ICE_PHY_TYPE_LOW_40GBASE_KR4:
598 		case ICE_PHY_TYPE_LOW_50GBASE_KR_PAM4:
599 		case ICE_PHY_TYPE_LOW_50GBASE_KR2:
600 		case ICE_PHY_TYPE_LOW_100GBASE_KR4:
601 		case ICE_PHY_TYPE_LOW_100GBASE_KR_PAM4:
602 			return ICE_MEDIA_BACKPLANE;
603 		}
604 	} else {
605 		switch (hw_link_info->phy_type_high) {
606 		case ICE_PHY_TYPE_HIGH_100G_AUI2:
607 		case ICE_PHY_TYPE_HIGH_100G_CAUI2:
608 			if (ice_is_media_cage_present(pi))
609 				return ICE_MEDIA_DA;
610 			fallthrough;
611 		case ICE_PHY_TYPE_HIGH_100GBASE_KR2_PAM4:
612 			return ICE_MEDIA_BACKPLANE;
613 		case ICE_PHY_TYPE_HIGH_100G_CAUI2_AOC_ACC:
614 		case ICE_PHY_TYPE_HIGH_100G_AUI2_AOC_ACC:
615 			return ICE_MEDIA_FIBER;
616 		}
617 	}
618 	return ICE_MEDIA_UNKNOWN;
619 }
620 
621 /**
622  * ice_get_link_status_datalen
623  * @hw: pointer to the HW struct
624  *
625  * Returns datalength for the Get Link Status AQ command, which is bigger for
626  * newer adapter families handled by ice driver.
627  */
628 static u16 ice_get_link_status_datalen(struct ice_hw *hw)
629 {
630 	switch (hw->mac_type) {
631 	case ICE_MAC_E830:
632 		return ICE_AQC_LS_DATA_SIZE_V2;
633 	case ICE_MAC_E810:
634 	default:
635 		return ICE_AQC_LS_DATA_SIZE_V1;
636 	}
637 }
638 
639 /**
640  * ice_aq_get_link_info
641  * @pi: port information structure
642  * @ena_lse: enable/disable LinkStatusEvent reporting
643  * @link: pointer to link status structure - optional
644  * @cd: pointer to command details structure or NULL
645  *
646  * Get Link Status (0x607). Returns the link status of the adapter.
647  */
648 int
649 ice_aq_get_link_info(struct ice_port_info *pi, bool ena_lse,
650 		     struct ice_link_status *link, struct ice_sq_cd *cd)
651 {
652 	struct ice_aqc_get_link_status_data link_data = { 0 };
653 	struct ice_aqc_get_link_status *resp;
654 	struct ice_link_status *li_old, *li;
655 	enum ice_media_type *hw_media_type;
656 	struct ice_fc_info *hw_fc_info;
657 	struct libie_aq_desc desc;
658 	bool tx_pause, rx_pause;
659 	struct ice_hw *hw;
660 	u16 cmd_flags;
661 	int status;
662 
663 	if (!pi)
664 		return -EINVAL;
665 	hw = pi->hw;
666 	li_old = &pi->phy.link_info_old;
667 	hw_media_type = &pi->phy.media_type;
668 	li = &pi->phy.link_info;
669 	hw_fc_info = &pi->fc;
670 
671 	ice_fill_dflt_direct_cmd_desc(&desc, ice_aqc_opc_get_link_status);
672 	cmd_flags = (ena_lse) ? ICE_AQ_LSE_ENA : ICE_AQ_LSE_DIS;
673 	resp = libie_aq_raw(&desc);
674 	resp->cmd_flags = cpu_to_le16(cmd_flags);
675 	resp->lport_num = pi->lport;
676 
677 	status = ice_aq_send_cmd(hw, &desc, &link_data,
678 				 ice_get_link_status_datalen(hw), cd);
679 	if (status)
680 		return status;
681 
682 	/* save off old link status information */
683 	*li_old = *li;
684 
685 	/* update current link status information */
686 	li->link_speed = le16_to_cpu(link_data.link_speed);
687 	li->phy_type_low = le64_to_cpu(link_data.phy_type_low);
688 	li->phy_type_high = le64_to_cpu(link_data.phy_type_high);
689 	*hw_media_type = ice_get_media_type(pi);
690 	li->link_info = link_data.link_info;
691 	li->link_cfg_err = link_data.link_cfg_err;
692 	li->an_info = link_data.an_info;
693 	li->ext_info = link_data.ext_info;
694 	li->max_frame_size = le16_to_cpu(link_data.max_frame_size);
695 	li->fec_info = link_data.cfg & ICE_AQ_FEC_MASK;
696 	li->topo_media_conflict = link_data.topo_media_conflict;
697 	li->pacing = link_data.cfg & (ICE_AQ_CFG_PACING_M |
698 				      ICE_AQ_CFG_PACING_TYPE_M);
699 
700 	/* update fc info */
701 	tx_pause = !!(link_data.an_info & ICE_AQ_LINK_PAUSE_TX);
702 	rx_pause = !!(link_data.an_info & ICE_AQ_LINK_PAUSE_RX);
703 	if (tx_pause && rx_pause)
704 		hw_fc_info->current_mode = ICE_FC_FULL;
705 	else if (tx_pause)
706 		hw_fc_info->current_mode = ICE_FC_TX_PAUSE;
707 	else if (rx_pause)
708 		hw_fc_info->current_mode = ICE_FC_RX_PAUSE;
709 	else
710 		hw_fc_info->current_mode = ICE_FC_NONE;
711 
712 	li->lse_ena = !!(resp->cmd_flags & cpu_to_le16(ICE_AQ_LSE_IS_ENABLED));
713 
714 	ice_debug(hw, ICE_DBG_LINK, "get link info\n");
715 	ice_debug(hw, ICE_DBG_LINK, "	link_speed = 0x%x\n", li->link_speed);
716 	ice_debug(hw, ICE_DBG_LINK, "	phy_type_low = 0x%llx\n",
717 		  (unsigned long long)li->phy_type_low);
718 	ice_debug(hw, ICE_DBG_LINK, "	phy_type_high = 0x%llx\n",
719 		  (unsigned long long)li->phy_type_high);
720 	ice_debug(hw, ICE_DBG_LINK, "	media_type = 0x%x\n", *hw_media_type);
721 	ice_debug(hw, ICE_DBG_LINK, "	link_info = 0x%x\n", li->link_info);
722 	ice_debug(hw, ICE_DBG_LINK, "	link_cfg_err = 0x%x\n", li->link_cfg_err);
723 	ice_debug(hw, ICE_DBG_LINK, "	an_info = 0x%x\n", li->an_info);
724 	ice_debug(hw, ICE_DBG_LINK, "	ext_info = 0x%x\n", li->ext_info);
725 	ice_debug(hw, ICE_DBG_LINK, "	fec_info = 0x%x\n", li->fec_info);
726 	ice_debug(hw, ICE_DBG_LINK, "	lse_ena = 0x%x\n", li->lse_ena);
727 	ice_debug(hw, ICE_DBG_LINK, "	max_frame = 0x%x\n",
728 		  li->max_frame_size);
729 	ice_debug(hw, ICE_DBG_LINK, "	pacing = 0x%x\n", li->pacing);
730 
731 	/* save link status information */
732 	if (link)
733 		*link = *li;
734 
735 	/* flag cleared so calling functions don't call AQ again */
736 	pi->phy.get_link_info = false;
737 
738 	return 0;
739 }
740 
741 /**
742  * ice_fill_tx_timer_and_fc_thresh
743  * @hw: pointer to the HW struct
744  * @cmd: pointer to MAC cfg structure
745  *
746  * Add Tx timer and FC refresh threshold info to Set MAC Config AQ command
747  * descriptor
748  */
749 static void
750 ice_fill_tx_timer_and_fc_thresh(struct ice_hw *hw,
751 				struct ice_aqc_set_mac_cfg *cmd)
752 {
753 	u32 val, fc_thres_m;
754 
755 	/* We read back the transmit timer and FC threshold value of
756 	 * LFC. Thus, we will use index =
757 	 * PRTMAC_HSEC_CTL_TX_PAUSE_QUANTA_MAX_INDEX.
758 	 *
759 	 * Also, because we are operating on transmit timer and FC
760 	 * threshold of LFC, we don't turn on any bit in tx_tmr_priority
761 	 */
762 #define E800_IDX_OF_LFC E800_PRTMAC_HSEC_CTL_TX_PS_QNT_MAX
763 #define E800_REFRESH_TMR E800_PRTMAC_HSEC_CTL_TX_PS_RFSH_TMR
764 
765 	if (hw->mac_type == ICE_MAC_E830) {
766 		/* Retrieve the transmit timer */
767 		val = rd32(hw, E830_PRTMAC_CL01_PS_QNT);
768 		cmd->tx_tmr_value =
769 			le16_encode_bits(val, E830_PRTMAC_CL01_PS_QNT_CL0_M);
770 
771 		/* Retrieve the fc threshold */
772 		val = rd32(hw, E830_PRTMAC_CL01_QNT_THR);
773 		fc_thres_m = E830_PRTMAC_CL01_QNT_THR_CL0_M;
774 	} else {
775 		/* Retrieve the transmit timer */
776 		val = rd32(hw,
777 			   E800_PRTMAC_HSEC_CTL_TX_PS_QNT(E800_IDX_OF_LFC));
778 		cmd->tx_tmr_value =
779 			le16_encode_bits(val,
780 					 E800_PRTMAC_HSEC_CTL_TX_PS_QNT_M);
781 
782 		/* Retrieve the fc threshold */
783 		val = rd32(hw,
784 			   E800_REFRESH_TMR(E800_IDX_OF_LFC));
785 		fc_thres_m = E800_PRTMAC_HSEC_CTL_TX_PS_RFSH_TMR_M;
786 	}
787 	cmd->fc_refresh_threshold = le16_encode_bits(val, fc_thres_m);
788 }
789 
790 /**
791  * ice_aq_set_mac_cfg
792  * @hw: pointer to the HW struct
793  * @max_frame_size: Maximum Frame Size to be supported
794  * @cd: pointer to command details structure or NULL
795  *
796  * Set MAC configuration (0x0603)
797  */
798 int
799 ice_aq_set_mac_cfg(struct ice_hw *hw, u16 max_frame_size, struct ice_sq_cd *cd)
800 {
801 	struct ice_aqc_set_mac_cfg *cmd;
802 	struct libie_aq_desc desc;
803 
804 	cmd = libie_aq_raw(&desc);
805 
806 	if (max_frame_size == 0)
807 		return -EINVAL;
808 
809 	ice_fill_dflt_direct_cmd_desc(&desc, ice_aqc_opc_set_mac_cfg);
810 
811 	cmd->max_frame_size = cpu_to_le16(max_frame_size);
812 
813 	ice_fill_tx_timer_and_fc_thresh(hw, cmd);
814 
815 	return ice_aq_send_cmd(hw, &desc, NULL, 0, cd);
816 }
817 
818 /**
819  * ice_init_fltr_mgmt_struct - initializes filter management list and locks
820  * @hw: pointer to the HW struct
821  */
822 static int ice_init_fltr_mgmt_struct(struct ice_hw *hw)
823 {
824 	struct ice_switch_info *sw;
825 	int status;
826 
827 	hw->switch_info = devm_kzalloc(ice_hw_to_dev(hw),
828 				       sizeof(*hw->switch_info), GFP_KERNEL);
829 	sw = hw->switch_info;
830 
831 	if (!sw)
832 		return -ENOMEM;
833 
834 	INIT_LIST_HEAD(&sw->vsi_list_map_head);
835 	sw->prof_res_bm_init = 0;
836 
837 	/* Initialize recipe count with default recipes read from NVM */
838 	sw->recp_cnt = ICE_SW_LKUP_LAST;
839 
840 	status = ice_init_def_sw_recp(hw);
841 	if (status) {
842 		devm_kfree(ice_hw_to_dev(hw), hw->switch_info);
843 		return status;
844 	}
845 	return 0;
846 }
847 
848 /**
849  * ice_cleanup_fltr_mgmt_struct - cleanup filter management list and locks
850  * @hw: pointer to the HW struct
851  */
852 static void ice_cleanup_fltr_mgmt_struct(struct ice_hw *hw)
853 {
854 	struct ice_switch_info *sw = hw->switch_info;
855 	struct ice_vsi_list_map_info *v_pos_map;
856 	struct ice_vsi_list_map_info *v_tmp_map;
857 	struct ice_sw_recipe *recps;
858 	u8 i;
859 
860 	list_for_each_entry_safe(v_pos_map, v_tmp_map, &sw->vsi_list_map_head,
861 				 list_entry) {
862 		list_del(&v_pos_map->list_entry);
863 		devm_kfree(ice_hw_to_dev(hw), v_pos_map);
864 	}
865 	recps = sw->recp_list;
866 	for (i = 0; i < ICE_MAX_NUM_RECIPES; i++) {
867 		recps[i].root_rid = i;
868 
869 		if (recps[i].adv_rule) {
870 			struct ice_adv_fltr_mgmt_list_entry *tmp_entry;
871 			struct ice_adv_fltr_mgmt_list_entry *lst_itr;
872 
873 			mutex_destroy(&recps[i].filt_rule_lock);
874 			list_for_each_entry_safe(lst_itr, tmp_entry,
875 						 &recps[i].filt_rules,
876 						 list_entry) {
877 				list_del(&lst_itr->list_entry);
878 				devm_kfree(ice_hw_to_dev(hw), lst_itr->lkups);
879 				devm_kfree(ice_hw_to_dev(hw), lst_itr);
880 			}
881 		} else {
882 			struct ice_fltr_mgmt_list_entry *lst_itr, *tmp_entry;
883 
884 			mutex_destroy(&recps[i].filt_rule_lock);
885 			list_for_each_entry_safe(lst_itr, tmp_entry,
886 						 &recps[i].filt_rules,
887 						 list_entry) {
888 				list_del(&lst_itr->list_entry);
889 				devm_kfree(ice_hw_to_dev(hw), lst_itr);
890 			}
891 		}
892 	}
893 	ice_rm_all_sw_replay_rule_info(hw);
894 	devm_kfree(ice_hw_to_dev(hw), sw->recp_list);
895 	devm_kfree(ice_hw_to_dev(hw), sw);
896 }
897 
898 /**
899  * ice_get_itr_intrl_gran
900  * @hw: pointer to the HW struct
901  *
902  * Determines the ITR/INTRL granularities based on the maximum aggregate
903  * bandwidth according to the device's configuration during power-on.
904  */
905 static void ice_get_itr_intrl_gran(struct ice_hw *hw)
906 {
907 	u8 max_agg_bw = FIELD_GET(GL_PWR_MODE_CTL_CAR_MAX_BW_M,
908 				  rd32(hw, GL_PWR_MODE_CTL));
909 
910 	switch (max_agg_bw) {
911 	case ICE_MAX_AGG_BW_200G:
912 	case ICE_MAX_AGG_BW_100G:
913 	case ICE_MAX_AGG_BW_50G:
914 		hw->itr_gran = ICE_ITR_GRAN_ABOVE_25;
915 		hw->intrl_gran = ICE_INTRL_GRAN_ABOVE_25;
916 		break;
917 	case ICE_MAX_AGG_BW_25G:
918 		hw->itr_gran = ICE_ITR_GRAN_MAX_25;
919 		hw->intrl_gran = ICE_INTRL_GRAN_MAX_25;
920 		break;
921 	}
922 }
923 
924 /**
925  * ice_wait_fw_load - wait for PHY firmware loading to complete
926  * @hw: pointer to the hardware structure
927  * @timeout: milliseconds that can elapse before timing out, 0 to bypass waiting
928  *
929  * Return:
930  * * 0 on success
931  * * negative on timeout
932  */
933 static int ice_wait_fw_load(struct ice_hw *hw, u32 timeout)
934 {
935 	int fw_loading_reg;
936 
937 	if (!timeout)
938 		return 0;
939 
940 	fw_loading_reg = rd32(hw, GL_MNG_FWSM) & GL_MNG_FWSM_FW_LOADING_M;
941 	/* notify the user only once if PHY FW is still loading */
942 	if (fw_loading_reg)
943 		dev_info(ice_hw_to_dev(hw), "Link initialization is blocked by PHY FW initialization. Link initialization will continue after PHY FW initialization completes.\n");
944 	else
945 		return 0;
946 
947 	return rd32_poll_timeout(hw, GL_MNG_FWSM, fw_loading_reg,
948 				 !(fw_loading_reg & GL_MNG_FWSM_FW_LOADING_M),
949 				 10000, timeout * 1000);
950 }
951 
952 static int __fwlog_send_cmd(void *priv, struct libie_aq_desc *desc, void *buf,
953 			    u16 size)
954 {
955 	struct ice_hw *hw = priv;
956 
957 	return ice_aq_send_cmd(hw, desc, buf, size, NULL);
958 }
959 
960 static int __fwlog_init(struct ice_hw *hw)
961 {
962 	struct ice_pf *pf = hw->back;
963 	struct libie_fwlog_api api = {
964 		.pdev = pf->pdev,
965 		.send_cmd = __fwlog_send_cmd,
966 		.priv = hw,
967 	};
968 	int err;
969 
970 	/* only support fw log commands on PF 0 */
971 	if (hw->bus.func)
972 		return -EINVAL;
973 
974 	err = ice_debugfs_pf_init(pf);
975 	if (err)
976 		return err;
977 
978 	api.debugfs_root = pf->ice_debugfs_pf;
979 
980 	return libie_fwlog_init(&hw->fwlog, &api);
981 }
982 
983 /**
984  * ice_init_hw - main hardware initialization routine
985  * @hw: pointer to the hardware structure
986  */
987 int ice_init_hw(struct ice_hw *hw)
988 {
989 	struct ice_aqc_get_phy_caps_data *pcaps __free(kfree) = NULL;
990 	void *mac_buf __free(kfree) = NULL;
991 	u16 mac_buf_len;
992 	int status;
993 
994 	/* Set MAC type based on DeviceID */
995 	status = ice_set_mac_type(hw);
996 	if (status)
997 		return status;
998 
999 	hw->pf_id = FIELD_GET(PF_FUNC_RID_FUNC_NUM_M, rd32(hw, PF_FUNC_RID));
1000 
1001 	status = ice_reset(hw, ICE_RESET_PFR);
1002 	if (status)
1003 		return status;
1004 
1005 	ice_get_itr_intrl_gran(hw);
1006 
1007 	status = ice_create_all_ctrlq(hw);
1008 	if (status)
1009 		goto err_unroll_cqinit;
1010 
1011 	status = __fwlog_init(hw);
1012 	if (status)
1013 		ice_debug(hw, ICE_DBG_FW_LOG, "Error initializing FW logging: %d\n",
1014 			  status);
1015 
1016 	status = ice_clear_pf_cfg(hw);
1017 	if (status)
1018 		goto err_unroll_cqinit;
1019 
1020 	/* Set bit to enable Flow Director filters */
1021 	wr32(hw, PFQF_FD_ENA, PFQF_FD_ENA_FD_ENA_M);
1022 	INIT_LIST_HEAD(&hw->fdir_list_head);
1023 
1024 	ice_clear_pxe_mode(hw);
1025 
1026 	status = ice_init_nvm(hw);
1027 	if (status)
1028 		goto err_unroll_cqinit;
1029 
1030 	status = ice_get_caps(hw);
1031 	if (status)
1032 		goto err_unroll_cqinit;
1033 
1034 	if (!hw->port_info)
1035 		hw->port_info = devm_kzalloc(ice_hw_to_dev(hw),
1036 					     sizeof(*hw->port_info),
1037 					     GFP_KERNEL);
1038 	if (!hw->port_info) {
1039 		status = -ENOMEM;
1040 		goto err_unroll_cqinit;
1041 	}
1042 
1043 	hw->port_info->local_fwd_mode = ICE_LOCAL_FWD_MODE_ENABLED;
1044 	/* set the back pointer to HW */
1045 	hw->port_info->hw = hw;
1046 
1047 	/* Initialize port_info struct with switch configuration data */
1048 	status = ice_get_initial_sw_cfg(hw);
1049 	if (status)
1050 		goto err_unroll_alloc;
1051 
1052 	hw->evb_veb = true;
1053 
1054 	xa_init_flags(&hw->sched_node_ids, XA_FLAGS_ALLOC);
1055 
1056 	/* Query the allocated resources for Tx scheduler */
1057 	status = ice_sched_query_res_alloc(hw);
1058 	if (status) {
1059 		ice_debug(hw, ICE_DBG_SCHED, "Failed to get scheduler allocated resources\n");
1060 		goto err_unroll_xarray;
1061 	}
1062 	ice_sched_get_psm_clk_freq(hw);
1063 
1064 	/* Initialize port_info struct with scheduler data */
1065 	status = ice_sched_init_port(hw->port_info);
1066 	if (status)
1067 		goto err_unroll_sched;
1068 
1069 	pcaps = kzalloc_obj(*pcaps);
1070 	if (!pcaps) {
1071 		status = -ENOMEM;
1072 		goto err_unroll_sched;
1073 	}
1074 
1075 	/* Initialize port_info struct with PHY capabilities */
1076 	status = ice_aq_get_phy_caps(hw->port_info, false,
1077 				     ICE_AQC_REPORT_TOPO_CAP_MEDIA, pcaps,
1078 				     NULL);
1079 	if (status)
1080 		dev_warn(ice_hw_to_dev(hw), "Get PHY capabilities failed status = %d, continuing anyway\n",
1081 			 status);
1082 
1083 	/* Initialize port_info struct with link information */
1084 	status = ice_aq_get_link_info(hw->port_info, false, NULL, NULL);
1085 	if (status)
1086 		goto err_unroll_sched;
1087 
1088 	/* need a valid SW entry point to build a Tx tree */
1089 	if (!hw->sw_entry_point_layer) {
1090 		ice_debug(hw, ICE_DBG_SCHED, "invalid sw entry point\n");
1091 		status = -EIO;
1092 		goto err_unroll_sched;
1093 	}
1094 	INIT_LIST_HEAD(&hw->agg_list);
1095 	/* Initialize max burst size */
1096 	if (!hw->max_burst_size)
1097 		ice_cfg_rl_burst_size(hw, ICE_SCHED_DFLT_BURST_SIZE);
1098 
1099 	status = ice_init_fltr_mgmt_struct(hw);
1100 	if (status)
1101 		goto err_unroll_sched;
1102 
1103 	/* Get MAC information */
1104 	/* A single port can report up to two (LAN and WoL) addresses */
1105 	mac_buf = kzalloc_objs(struct ice_aqc_manage_mac_read_resp, 2);
1106 	if (!mac_buf) {
1107 		status = -ENOMEM;
1108 		goto err_unroll_fltr_mgmt_struct;
1109 	}
1110 
1111 	mac_buf_len = 2 * sizeof(struct ice_aqc_manage_mac_read_resp);
1112 	status = ice_aq_manage_mac_read(hw, mac_buf, mac_buf_len, NULL);
1113 
1114 	if (status)
1115 		goto err_unroll_fltr_mgmt_struct;
1116 	/* enable jumbo frame support at MAC level */
1117 	status = ice_aq_set_mac_cfg(hw, ICE_AQ_SET_MAC_FRAME_SIZE_MAX, NULL);
1118 	if (status)
1119 		goto err_unroll_fltr_mgmt_struct;
1120 	/* Obtain counter base index which would be used by flow director */
1121 	status = ice_alloc_fd_res_cntr(hw, &hw->fd_ctr_base);
1122 	if (status)
1123 		goto err_unroll_fltr_mgmt_struct;
1124 	status = ice_init_hw_tbls(hw);
1125 	if (status)
1126 		goto err_unroll_fltr_mgmt_struct;
1127 
1128 	mutex_init(&hw->tnl_lock);
1129 	ice_init_chk_recipe_reuse_support(hw);
1130 
1131 	/* Some cards require longer initialization times
1132 	 * due to necessity of loading FW from an external source.
1133 	 * This can take even half a minute.
1134 	 */
1135 	status = ice_wait_fw_load(hw, 30000);
1136 	if (status) {
1137 		dev_err(ice_hw_to_dev(hw), "ice_wait_fw_load timed out");
1138 		goto err_unroll_fltr_mgmt_struct;
1139 	}
1140 
1141 	hw->lane_num = ice_get_phy_lane_number(hw);
1142 
1143 	return 0;
1144 err_unroll_fltr_mgmt_struct:
1145 	ice_cleanup_fltr_mgmt_struct(hw);
1146 err_unroll_sched:
1147 	ice_sched_cleanup_all(hw);
1148 err_unroll_xarray:
1149 	xa_destroy(&hw->sched_node_ids);
1150 err_unroll_alloc:
1151 	devm_kfree(ice_hw_to_dev(hw), hw->port_info);
1152 err_unroll_cqinit:
1153 	ice_destroy_all_ctrlq(hw);
1154 	return status;
1155 }
1156 
1157 static void __fwlog_deinit(struct ice_hw *hw)
1158 {
1159 	/* only support fw log commands on PF 0 */
1160 	if (hw->bus.func)
1161 		return;
1162 
1163 	ice_debugfs_pf_deinit(hw->back);
1164 	libie_fwlog_deinit(&hw->fwlog);
1165 }
1166 
1167 /**
1168  * ice_deinit_hw - unroll initialization operations done by ice_init_hw
1169  * @hw: pointer to the hardware structure
1170  *
1171  * This should be called only during nominal operation, not as a result of
1172  * ice_init_hw() failing since ice_init_hw() will take care of unrolling
1173  * applicable initializations if it fails for any reason.
1174  */
1175 void ice_deinit_hw(struct ice_hw *hw)
1176 {
1177 	ice_free_fd_res_cntr(hw, hw->fd_ctr_base);
1178 	ice_cleanup_fltr_mgmt_struct(hw);
1179 
1180 	ice_sched_cleanup_all(hw);
1181 	ice_sched_clear_agg(hw);
1182 	ice_free_seg(hw);
1183 	ice_free_hw_tbls(hw);
1184 	mutex_destroy(&hw->tnl_lock);
1185 	__fwlog_deinit(hw);
1186 	ice_destroy_all_ctrlq(hw);
1187 
1188 	/* Clear VSI contexts if not already cleared */
1189 	ice_clear_all_vsi_ctx(hw);
1190 
1191 	xa_destroy(&hw->sched_node_ids);
1192 }
1193 
1194 /**
1195  * ice_check_reset - Check to see if a global reset is complete
1196  * @hw: pointer to the hardware structure
1197  */
1198 int ice_check_reset(struct ice_hw *hw)
1199 {
1200 	u32 cnt, reg = 0, grst_timeout, uld_mask;
1201 
1202 	/* Poll for Device Active state in case a recent CORER, GLOBR,
1203 	 * or EMPR has occurred. The grst delay value is in 100ms units.
1204 	 * Add 1sec for outstanding AQ commands that can take a long time.
1205 	 */
1206 	grst_timeout = FIELD_GET(GLGEN_RSTCTL_GRSTDEL_M,
1207 				 rd32(hw, GLGEN_RSTCTL)) + 10;
1208 
1209 	for (cnt = 0; cnt < grst_timeout; cnt++) {
1210 		mdelay(100);
1211 		reg = rd32(hw, GLGEN_RSTAT);
1212 		if (!(reg & GLGEN_RSTAT_DEVSTATE_M))
1213 			break;
1214 	}
1215 
1216 	if (cnt == grst_timeout) {
1217 		ice_debug(hw, ICE_DBG_INIT, "Global reset polling failed to complete.\n");
1218 		return -EIO;
1219 	}
1220 
1221 #define ICE_RESET_DONE_MASK	(GLNVM_ULD_PCIER_DONE_M |\
1222 				 GLNVM_ULD_PCIER_DONE_1_M |\
1223 				 GLNVM_ULD_CORER_DONE_M |\
1224 				 GLNVM_ULD_GLOBR_DONE_M |\
1225 				 GLNVM_ULD_POR_DONE_M |\
1226 				 GLNVM_ULD_POR_DONE_1_M |\
1227 				 GLNVM_ULD_PCIER_DONE_2_M)
1228 
1229 	uld_mask = ICE_RESET_DONE_MASK | (hw->func_caps.common_cap.rdma ?
1230 					  GLNVM_ULD_PE_DONE_M : 0);
1231 
1232 	/* Device is Active; check Global Reset processes are done */
1233 	for (cnt = 0; cnt < ICE_PF_RESET_WAIT_COUNT; cnt++) {
1234 		reg = rd32(hw, GLNVM_ULD) & uld_mask;
1235 		if (reg == uld_mask) {
1236 			ice_debug(hw, ICE_DBG_INIT, "Global reset processes done. %d\n", cnt);
1237 			break;
1238 		}
1239 		mdelay(10);
1240 	}
1241 
1242 	if (cnt == ICE_PF_RESET_WAIT_COUNT) {
1243 		ice_debug(hw, ICE_DBG_INIT, "Wait for Reset Done timed out. GLNVM_ULD = 0x%x\n",
1244 			  reg);
1245 		return -EIO;
1246 	}
1247 
1248 	return 0;
1249 }
1250 
1251 /**
1252  * ice_pf_reset - Reset the PF
1253  * @hw: pointer to the hardware structure
1254  *
1255  * If a global reset has been triggered, this function checks
1256  * for its completion and then issues the PF reset
1257  */
1258 static int ice_pf_reset(struct ice_hw *hw)
1259 {
1260 	u32 cnt, reg;
1261 
1262 	/* If at function entry a global reset was already in progress, i.e.
1263 	 * state is not 'device active' or any of the reset done bits are not
1264 	 * set in GLNVM_ULD, there is no need for a PF Reset; poll until the
1265 	 * global reset is done.
1266 	 */
1267 	if ((rd32(hw, GLGEN_RSTAT) & GLGEN_RSTAT_DEVSTATE_M) ||
1268 	    (rd32(hw, GLNVM_ULD) & ICE_RESET_DONE_MASK) ^ ICE_RESET_DONE_MASK) {
1269 		/* poll on global reset currently in progress until done */
1270 		if (ice_check_reset(hw))
1271 			return -EIO;
1272 
1273 		return 0;
1274 	}
1275 
1276 	/* Reset the PF */
1277 	reg = rd32(hw, PFGEN_CTRL);
1278 
1279 	wr32(hw, PFGEN_CTRL, (reg | PFGEN_CTRL_PFSWR_M));
1280 
1281 	/* Wait for the PFR to complete. The wait time is the global config lock
1282 	 * timeout plus the PFR timeout which will account for a possible reset
1283 	 * that is occurring during a download package operation.
1284 	 */
1285 	for (cnt = 0; cnt < ICE_GLOBAL_CFG_LOCK_TIMEOUT +
1286 	     ICE_PF_RESET_WAIT_COUNT; cnt++) {
1287 		reg = rd32(hw, PFGEN_CTRL);
1288 		if (!(reg & PFGEN_CTRL_PFSWR_M))
1289 			break;
1290 
1291 		mdelay(1);
1292 	}
1293 
1294 	if (cnt == ICE_PF_RESET_WAIT_COUNT) {
1295 		ice_debug(hw, ICE_DBG_INIT, "PF reset polling failed to complete.\n");
1296 		return -EIO;
1297 	}
1298 
1299 	return 0;
1300 }
1301 
1302 /**
1303  * ice_reset - Perform different types of reset
1304  * @hw: pointer to the hardware structure
1305  * @req: reset request
1306  *
1307  * This function triggers a reset as specified by the req parameter.
1308  *
1309  * Note:
1310  * If anything other than a PF reset is triggered, PXE mode is restored.
1311  * This has to be cleared using ice_clear_pxe_mode again, once the AQ
1312  * interface has been restored in the rebuild flow.
1313  */
1314 int ice_reset(struct ice_hw *hw, enum ice_reset_req req)
1315 {
1316 	u32 val = 0;
1317 
1318 	switch (req) {
1319 	case ICE_RESET_PFR:
1320 		return ice_pf_reset(hw);
1321 	case ICE_RESET_CORER:
1322 		ice_debug(hw, ICE_DBG_INIT, "CoreR requested\n");
1323 		val = GLGEN_RTRIG_CORER_M;
1324 		break;
1325 	case ICE_RESET_GLOBR:
1326 		ice_debug(hw, ICE_DBG_INIT, "GlobalR requested\n");
1327 		val = GLGEN_RTRIG_GLOBR_M;
1328 		break;
1329 	default:
1330 		return -EINVAL;
1331 	}
1332 
1333 	val |= rd32(hw, GLGEN_RTRIG);
1334 	wr32(hw, GLGEN_RTRIG, val);
1335 	ice_flush(hw);
1336 
1337 	/* wait for the FW to be ready */
1338 	return ice_check_reset(hw);
1339 }
1340 
1341 /**
1342  * ice_copy_rxq_ctx_to_hw - Copy packed Rx queue context to HW registers
1343  * @hw: pointer to the hardware structure
1344  * @rxq_ctx: pointer to the packed Rx queue context
1345  * @rxq_index: the index of the Rx queue
1346  */
1347 static void ice_copy_rxq_ctx_to_hw(struct ice_hw *hw,
1348 				   const ice_rxq_ctx_buf_t *rxq_ctx,
1349 				   u32 rxq_index)
1350 {
1351 	/* Copy each dword separately to HW */
1352 	for (int i = 0; i < ICE_RXQ_CTX_SIZE_DWORDS; i++) {
1353 		u32 ctx = ((const u32 *)rxq_ctx)[i];
1354 
1355 		wr32(hw, QRX_CONTEXT(i, rxq_index), ctx);
1356 
1357 		ice_debug(hw, ICE_DBG_QCTX, "qrxdata[%d]: %08X\n", i, ctx);
1358 	}
1359 }
1360 
1361 /**
1362  * ice_copy_rxq_ctx_from_hw - Copy packed Rx Queue context from HW registers
1363  * @hw: pointer to the hardware structure
1364  * @rxq_ctx: pointer to the packed Rx queue context
1365  * @rxq_index: the index of the Rx queue
1366  */
1367 static void ice_copy_rxq_ctx_from_hw(struct ice_hw *hw,
1368 				     ice_rxq_ctx_buf_t *rxq_ctx,
1369 				     u32 rxq_index)
1370 {
1371 	u32 *ctx = (u32 *)rxq_ctx;
1372 
1373 	/* Copy each dword separately from HW */
1374 	for (int i = 0; i < ICE_RXQ_CTX_SIZE_DWORDS; i++, ctx++) {
1375 		*ctx = rd32(hw, QRX_CONTEXT(i, rxq_index));
1376 
1377 		ice_debug(hw, ICE_DBG_QCTX, "qrxdata[%d]: %08X\n", i, *ctx);
1378 	}
1379 }
1380 
1381 #define ICE_CTX_STORE(struct_name, struct_field, width, lsb) \
1382 	PACKED_FIELD((lsb) + (width) - 1, (lsb), struct struct_name, struct_field)
1383 
1384 /* LAN Rx Queue Context */
1385 static const struct packed_field_u8 ice_rlan_ctx_fields[] = {
1386 				 /* Field		Width	LSB */
1387 	ICE_CTX_STORE(ice_rlan_ctx, head,		13,	0),
1388 	ICE_CTX_STORE(ice_rlan_ctx, cpuid,		8,	13),
1389 	ICE_CTX_STORE(ice_rlan_ctx, base,		57,	32),
1390 	ICE_CTX_STORE(ice_rlan_ctx, qlen,		13,	89),
1391 	ICE_CTX_STORE(ice_rlan_ctx, dbuf,		7,	102),
1392 	ICE_CTX_STORE(ice_rlan_ctx, hbuf,		5,	109),
1393 	ICE_CTX_STORE(ice_rlan_ctx, dtype,		2,	114),
1394 	ICE_CTX_STORE(ice_rlan_ctx, dsize,		1,	116),
1395 	ICE_CTX_STORE(ice_rlan_ctx, crcstrip,		1,	117),
1396 	ICE_CTX_STORE(ice_rlan_ctx, l2tsel,		1,	119),
1397 	ICE_CTX_STORE(ice_rlan_ctx, hsplit_0,		4,	120),
1398 	ICE_CTX_STORE(ice_rlan_ctx, hsplit_1,		2,	124),
1399 	ICE_CTX_STORE(ice_rlan_ctx, showiv,		1,	127),
1400 	ICE_CTX_STORE(ice_rlan_ctx, rxmax,		14,	174),
1401 	ICE_CTX_STORE(ice_rlan_ctx, tphrdesc_ena,	1,	193),
1402 	ICE_CTX_STORE(ice_rlan_ctx, tphwdesc_ena,	1,	194),
1403 	ICE_CTX_STORE(ice_rlan_ctx, tphdata_ena,	1,	195),
1404 	ICE_CTX_STORE(ice_rlan_ctx, tphhead_ena,	1,	196),
1405 	ICE_CTX_STORE(ice_rlan_ctx, lrxqthresh,		3,	198),
1406 	ICE_CTX_STORE(ice_rlan_ctx, prefena,		1,	201),
1407 };
1408 
1409 /**
1410  * ice_pack_rxq_ctx - Pack Rx queue context into a HW buffer
1411  * @ctx: the Rx queue context to pack
1412  * @buf: the HW buffer to pack into
1413  *
1414  * Pack the Rx queue context from the CPU-friendly unpacked buffer into its
1415  * bit-packed HW layout.
1416  */
1417 static void ice_pack_rxq_ctx(const struct ice_rlan_ctx *ctx,
1418 			     ice_rxq_ctx_buf_t *buf)
1419 {
1420 	pack_fields(buf, sizeof(*buf), ctx, ice_rlan_ctx_fields,
1421 		    QUIRK_LITTLE_ENDIAN | QUIRK_LSW32_IS_FIRST);
1422 }
1423 
1424 /**
1425  * ice_unpack_rxq_ctx - Unpack Rx queue context from a HW buffer
1426  * @buf: the HW buffer to unpack from
1427  * @ctx: the Rx queue context to unpack
1428  *
1429  * Unpack the Rx queue context from the HW buffer into the CPU-friendly
1430  * structure.
1431  */
1432 static void ice_unpack_rxq_ctx(const ice_rxq_ctx_buf_t *buf,
1433 			       struct ice_rlan_ctx *ctx)
1434 {
1435 	unpack_fields(buf, sizeof(*buf), ctx, ice_rlan_ctx_fields,
1436 		      QUIRK_LITTLE_ENDIAN | QUIRK_LSW32_IS_FIRST);
1437 }
1438 
1439 /**
1440  * ice_write_rxq_ctx - Write Rx Queue context to hardware
1441  * @hw: pointer to the hardware structure
1442  * @rlan_ctx: pointer to the unpacked Rx queue context
1443  * @rxq_index: the index of the Rx queue
1444  *
1445  * Pack the sparse Rx Queue context into dense hardware format and write it
1446  * into the HW register space.
1447  *
1448  * Return: 0 on success, or -EINVAL if the Rx queue index is invalid.
1449  */
1450 int ice_write_rxq_ctx(struct ice_hw *hw, struct ice_rlan_ctx *rlan_ctx,
1451 		      u32 rxq_index)
1452 {
1453 	ice_rxq_ctx_buf_t buf = {};
1454 
1455 	if (rxq_index > QRX_CTRL_MAX_INDEX)
1456 		return -EINVAL;
1457 
1458 	ice_pack_rxq_ctx(rlan_ctx, &buf);
1459 	ice_copy_rxq_ctx_to_hw(hw, &buf, rxq_index);
1460 
1461 	return 0;
1462 }
1463 
1464 /**
1465  * ice_read_rxq_ctx - Read Rx queue context from HW
1466  * @hw: pointer to the hardware structure
1467  * @rlan_ctx: pointer to the Rx queue context
1468  * @rxq_index: the index of the Rx queue
1469  *
1470  * Read the Rx queue context from the hardware registers, and unpack it into
1471  * the sparse Rx queue context structure.
1472  *
1473  * Returns: 0 on success, or -EINVAL if the Rx queue index is invalid.
1474  */
1475 int ice_read_rxq_ctx(struct ice_hw *hw, struct ice_rlan_ctx *rlan_ctx,
1476 		     u32 rxq_index)
1477 {
1478 	ice_rxq_ctx_buf_t buf = {};
1479 
1480 	if (rxq_index > QRX_CTRL_MAX_INDEX)
1481 		return -EINVAL;
1482 
1483 	ice_copy_rxq_ctx_from_hw(hw, &buf, rxq_index);
1484 	ice_unpack_rxq_ctx(&buf, rlan_ctx);
1485 
1486 	return 0;
1487 }
1488 
1489 /* LAN Tx Queue Context */
1490 static const struct packed_field_u8 ice_tlan_ctx_fields[] = {
1491 				    /* Field			Width	LSB */
1492 	ICE_CTX_STORE(ice_tlan_ctx, base,			57,	0),
1493 	ICE_CTX_STORE(ice_tlan_ctx, port_num,			3,	57),
1494 	ICE_CTX_STORE(ice_tlan_ctx, cgd_num,			5,	60),
1495 	ICE_CTX_STORE(ice_tlan_ctx, pf_num,			3,	65),
1496 	ICE_CTX_STORE(ice_tlan_ctx, vmvf_num,			10,	68),
1497 	ICE_CTX_STORE(ice_tlan_ctx, vmvf_type,			2,	78),
1498 	ICE_CTX_STORE(ice_tlan_ctx, src_vsi,			10,	80),
1499 	ICE_CTX_STORE(ice_tlan_ctx, tsyn_ena,			1,	90),
1500 	ICE_CTX_STORE(ice_tlan_ctx, internal_usage_flag,	1,	91),
1501 	ICE_CTX_STORE(ice_tlan_ctx, alt_vlan,			1,	92),
1502 	ICE_CTX_STORE(ice_tlan_ctx, cpuid,			8,	93),
1503 	ICE_CTX_STORE(ice_tlan_ctx, wb_mode,			1,	101),
1504 	ICE_CTX_STORE(ice_tlan_ctx, tphrd_desc,			1,	102),
1505 	ICE_CTX_STORE(ice_tlan_ctx, tphrd,			1,	103),
1506 	ICE_CTX_STORE(ice_tlan_ctx, tphwr_desc,			1,	104),
1507 	ICE_CTX_STORE(ice_tlan_ctx, cmpq_id,			9,	105),
1508 	ICE_CTX_STORE(ice_tlan_ctx, qnum_in_func,		14,	114),
1509 	ICE_CTX_STORE(ice_tlan_ctx, itr_notification_mode,	1,	128),
1510 	ICE_CTX_STORE(ice_tlan_ctx, adjust_prof_id,		6,	129),
1511 	ICE_CTX_STORE(ice_tlan_ctx, qlen,			13,	135),
1512 	ICE_CTX_STORE(ice_tlan_ctx, quanta_prof_idx,		4,	148),
1513 	ICE_CTX_STORE(ice_tlan_ctx, tso_ena,			1,	152),
1514 	ICE_CTX_STORE(ice_tlan_ctx, tso_qnum,			11,	153),
1515 	ICE_CTX_STORE(ice_tlan_ctx, legacy_int,			1,	164),
1516 	ICE_CTX_STORE(ice_tlan_ctx, drop_ena,			1,	165),
1517 	ICE_CTX_STORE(ice_tlan_ctx, cache_prof_idx,		2,	166),
1518 	ICE_CTX_STORE(ice_tlan_ctx, pkt_shaper_prof_idx,	3,	168),
1519 };
1520 
1521 /**
1522  * ice_pack_txq_ctx - Pack Tx queue context into Admin Queue buffer
1523  * @ctx: the Tx queue context to pack
1524  * @buf: the Admin Queue HW buffer to pack into
1525  *
1526  * Pack the Tx queue context from the CPU-friendly unpacked buffer into its
1527  * bit-packed Admin Queue layout.
1528  */
1529 void ice_pack_txq_ctx(const struct ice_tlan_ctx *ctx, ice_txq_ctx_buf_t *buf)
1530 {
1531 	pack_fields(buf, sizeof(*buf), ctx, ice_tlan_ctx_fields,
1532 		    QUIRK_LITTLE_ENDIAN | QUIRK_LSW32_IS_FIRST);
1533 }
1534 
1535 /**
1536  * ice_pack_txq_ctx_full - Pack Tx queue context into a HW buffer
1537  * @ctx: the Tx queue context to pack
1538  * @buf: the HW buffer to pack into
1539  *
1540  * Pack the Tx queue context from the CPU-friendly unpacked buffer into its
1541  * bit-packed HW layout, including the internal data portion.
1542  */
1543 static void ice_pack_txq_ctx_full(const struct ice_tlan_ctx *ctx,
1544 				  ice_txq_ctx_buf_full_t *buf)
1545 {
1546 	pack_fields(buf, sizeof(*buf), ctx, ice_tlan_ctx_fields,
1547 		    QUIRK_LITTLE_ENDIAN | QUIRK_LSW32_IS_FIRST);
1548 }
1549 
1550 /**
1551  * ice_unpack_txq_ctx_full - Unpack Tx queue context from a HW buffer
1552  * @buf: the HW buffer to unpack from
1553  * @ctx: the Tx queue context to unpack
1554  *
1555  * Unpack the Tx queue context from the HW buffer (including the full internal
1556  * state) into the CPU-friendly structure.
1557  */
1558 static void ice_unpack_txq_ctx_full(const ice_txq_ctx_buf_full_t *buf,
1559 				    struct ice_tlan_ctx *ctx)
1560 {
1561 	unpack_fields(buf, sizeof(*buf), ctx, ice_tlan_ctx_fields,
1562 		      QUIRK_LITTLE_ENDIAN | QUIRK_LSW32_IS_FIRST);
1563 }
1564 
1565 /**
1566  * ice_copy_txq_ctx_from_hw - Copy Tx Queue context from HW registers
1567  * @hw: pointer to the hardware structure
1568  * @txq_ctx: pointer to the packed Tx queue context, including internal state
1569  * @txq_index: the index of the Tx queue
1570  *
1571  * Copy Tx Queue context from HW register space to dense structure
1572  */
1573 static void ice_copy_txq_ctx_from_hw(struct ice_hw *hw,
1574 				     ice_txq_ctx_buf_full_t *txq_ctx,
1575 				     u32 txq_index)
1576 {
1577 	struct ice_pf *pf = container_of(hw, struct ice_pf, hw);
1578 	u32 *ctx = (u32 *)txq_ctx;
1579 	u32 txq_base, reg;
1580 
1581 	/* Get Tx queue base within card space */
1582 	txq_base = rd32(hw, PFLAN_TX_QALLOC(hw->pf_id));
1583 	txq_base = FIELD_GET(PFLAN_TX_QALLOC_FIRSTQ_M, txq_base);
1584 
1585 	reg = FIELD_PREP(GLCOMM_QTX_CNTX_CTL_CMD_M,
1586 			 GLCOMM_QTX_CNTX_CTL_CMD_READ) |
1587 	      FIELD_PREP(GLCOMM_QTX_CNTX_CTL_QUEUE_ID_M,
1588 			 txq_base + txq_index) |
1589 	      GLCOMM_QTX_CNTX_CTL_CMD_EXEC_M;
1590 
1591 	/* Prevent other PFs on the same adapter from accessing the Tx queue
1592 	 * context interface concurrently.
1593 	 */
1594 	spin_lock(&pf->adapter->txq_ctx_lock);
1595 
1596 	wr32(hw, GLCOMM_QTX_CNTX_CTL, reg);
1597 	ice_flush(hw);
1598 
1599 	/* Copy each dword separately from HW */
1600 	for (int i = 0; i < ICE_TXQ_CTX_FULL_SIZE_DWORDS; i++, ctx++) {
1601 		*ctx = rd32(hw, GLCOMM_QTX_CNTX_DATA(i));
1602 
1603 		ice_debug(hw, ICE_DBG_QCTX, "qtxdata[%d]: %08X\n", i, *ctx);
1604 	}
1605 
1606 	spin_unlock(&pf->adapter->txq_ctx_lock);
1607 }
1608 
1609 /**
1610  * ice_copy_txq_ctx_to_hw - Copy Tx Queue context into HW registers
1611  * @hw: pointer to the hardware structure
1612  * @txq_ctx: pointer to the packed Tx queue context, including internal state
1613  * @txq_index: the index of the Tx queue
1614  */
1615 static void ice_copy_txq_ctx_to_hw(struct ice_hw *hw,
1616 				   const ice_txq_ctx_buf_full_t *txq_ctx,
1617 				   u32 txq_index)
1618 {
1619 	struct ice_pf *pf = container_of(hw, struct ice_pf, hw);
1620 	u32 txq_base, reg;
1621 
1622 	/* Get Tx queue base within card space */
1623 	txq_base = rd32(hw, PFLAN_TX_QALLOC(hw->pf_id));
1624 	txq_base = FIELD_GET(PFLAN_TX_QALLOC_FIRSTQ_M, txq_base);
1625 
1626 	reg = FIELD_PREP(GLCOMM_QTX_CNTX_CTL_CMD_M,
1627 			 GLCOMM_QTX_CNTX_CTL_CMD_WRITE_NO_DYN) |
1628 	      FIELD_PREP(GLCOMM_QTX_CNTX_CTL_QUEUE_ID_M,
1629 			 txq_base + txq_index) |
1630 	      GLCOMM_QTX_CNTX_CTL_CMD_EXEC_M;
1631 
1632 	/* Prevent other PFs on the same adapter from accessing the Tx queue
1633 	 * context interface concurrently.
1634 	 */
1635 	spin_lock(&pf->adapter->txq_ctx_lock);
1636 
1637 	/* Copy each dword separately to HW */
1638 	for (int i = 0; i < ICE_TXQ_CTX_FULL_SIZE_DWORDS; i++) {
1639 		u32 ctx = ((const u32 *)txq_ctx)[i];
1640 
1641 		wr32(hw, GLCOMM_QTX_CNTX_DATA(i), ctx);
1642 
1643 		ice_debug(hw, ICE_DBG_QCTX, "qtxdata[%d]: %08X\n", i, ctx);
1644 	}
1645 
1646 	wr32(hw, GLCOMM_QTX_CNTX_CTL, reg);
1647 	ice_flush(hw);
1648 
1649 	spin_unlock(&pf->adapter->txq_ctx_lock);
1650 }
1651 
1652 /**
1653  * ice_read_txq_ctx - Read Tx queue context from HW
1654  * @hw: pointer to the hardware structure
1655  * @tlan_ctx: pointer to the Tx queue context
1656  * @txq_index: the index of the Tx queue
1657  *
1658  * Read the Tx queue context from the HW registers, then unpack it into the
1659  * ice_tlan_ctx structure for use.
1660  *
1661  * Returns: 0 on success, or -EINVAL on an invalid Tx queue index.
1662  */
1663 int ice_read_txq_ctx(struct ice_hw *hw, struct ice_tlan_ctx *tlan_ctx,
1664 		     u32 txq_index)
1665 {
1666 	ice_txq_ctx_buf_full_t buf = {};
1667 
1668 	if (txq_index > QTX_COMM_HEAD_MAX_INDEX)
1669 		return -EINVAL;
1670 
1671 	ice_copy_txq_ctx_from_hw(hw, &buf, txq_index);
1672 	ice_unpack_txq_ctx_full(&buf, tlan_ctx);
1673 
1674 	return 0;
1675 }
1676 
1677 /**
1678  * ice_write_txq_ctx - Write Tx queue context to HW
1679  * @hw: pointer to the hardware structure
1680  * @tlan_ctx: pointer to the Tx queue context
1681  * @txq_index: the index of the Tx queue
1682  *
1683  * Pack the Tx queue context into the dense HW layout, then write it into the
1684  * HW registers.
1685  *
1686  * Returns: 0 on success, or -EINVAL on an invalid Tx queue index.
1687  */
1688 int ice_write_txq_ctx(struct ice_hw *hw, struct ice_tlan_ctx *tlan_ctx,
1689 		      u32 txq_index)
1690 {
1691 	ice_txq_ctx_buf_full_t buf = {};
1692 
1693 	if (txq_index > QTX_COMM_HEAD_MAX_INDEX)
1694 		return -EINVAL;
1695 
1696 	ice_pack_txq_ctx_full(tlan_ctx, &buf);
1697 	ice_copy_txq_ctx_to_hw(hw, &buf, txq_index);
1698 
1699 	return 0;
1700 }
1701 
1702 /* Tx time Queue Context */
1703 static const struct packed_field_u8 ice_txtime_ctx_fields[] = {
1704 				    /* Field			Width	LSB */
1705 	ICE_CTX_STORE(ice_txtime_ctx, base,			57,	0),
1706 	ICE_CTX_STORE(ice_txtime_ctx, pf_num,			3,	57),
1707 	ICE_CTX_STORE(ice_txtime_ctx, vmvf_num,			10,	60),
1708 	ICE_CTX_STORE(ice_txtime_ctx, vmvf_type,		2,	70),
1709 	ICE_CTX_STORE(ice_txtime_ctx, src_vsi,			10,	72),
1710 	ICE_CTX_STORE(ice_txtime_ctx, cpuid,			8,	82),
1711 	ICE_CTX_STORE(ice_txtime_ctx, tphrd_desc,		1,	90),
1712 	ICE_CTX_STORE(ice_txtime_ctx, qlen,			13,	91),
1713 	ICE_CTX_STORE(ice_txtime_ctx, timer_num,		1,	104),
1714 	ICE_CTX_STORE(ice_txtime_ctx, txtime_ena_q,		1,	105),
1715 	ICE_CTX_STORE(ice_txtime_ctx, drbell_mode_32,		1,	106),
1716 	ICE_CTX_STORE(ice_txtime_ctx, ts_res,			4,	107),
1717 	ICE_CTX_STORE(ice_txtime_ctx, ts_round_type,		2,	111),
1718 	ICE_CTX_STORE(ice_txtime_ctx, ts_pacing_slot,		3,	113),
1719 	ICE_CTX_STORE(ice_txtime_ctx, merging_ena,		1,	116),
1720 	ICE_CTX_STORE(ice_txtime_ctx, ts_fetch_prof_id,		4,	117),
1721 	ICE_CTX_STORE(ice_txtime_ctx, ts_fetch_cache_line_aln_thld, 4,	121),
1722 	ICE_CTX_STORE(ice_txtime_ctx, tx_pipe_delay_mode,	1,	125),
1723 };
1724 
1725 /**
1726  * ice_pack_txtime_ctx - pack Tx time queue context into a HW buffer
1727  * @ctx: the Tx time queue context to pack
1728  * @buf: the HW buffer to pack into
1729  *
1730  * Pack the Tx time queue context from the CPU-friendly unpacked buffer into
1731  * its bit-packed HW layout.
1732  */
1733 void ice_pack_txtime_ctx(const struct ice_txtime_ctx *ctx,
1734 			 ice_txtime_ctx_buf_t *buf)
1735 {
1736 	pack_fields(buf, sizeof(*buf), ctx, ice_txtime_ctx_fields,
1737 		    QUIRK_LITTLE_ENDIAN | QUIRK_LSW32_IS_FIRST);
1738 }
1739 
1740 /* Sideband Queue command wrappers */
1741 
1742 /**
1743  * ice_sbq_send_cmd - send Sideband Queue command to Sideband Queue
1744  * @hw: pointer to the HW struct
1745  * @desc: descriptor describing the command
1746  * @buf: buffer to use for indirect commands (NULL for direct commands)
1747  * @buf_size: size of buffer for indirect commands (0 for direct commands)
1748  * @cd: pointer to command details structure
1749  */
1750 static int
1751 ice_sbq_send_cmd(struct ice_hw *hw, struct ice_sbq_cmd_desc *desc,
1752 		 void *buf, u16 buf_size, struct ice_sq_cd *cd)
1753 {
1754 	return ice_sq_send_cmd(hw, ice_get_sbq(hw),
1755 			       (struct libie_aq_desc *)desc, buf, buf_size, cd);
1756 }
1757 
1758 /**
1759  * ice_sbq_rw_reg - Fill Sideband Queue command
1760  * @hw: pointer to the HW struct
1761  * @in: message info to be filled in descriptor
1762  * @flags: control queue descriptor flags
1763  */
1764 int ice_sbq_rw_reg(struct ice_hw *hw, struct ice_sbq_msg_input *in, u16 flags)
1765 {
1766 	struct ice_sbq_cmd_desc desc = {0};
1767 	struct ice_sbq_msg_req msg = {0};
1768 	u16 msg_len;
1769 	int status;
1770 
1771 	msg_len = sizeof(msg);
1772 
1773 	msg.dest_dev = in->dest_dev;
1774 	msg.opcode = in->opcode;
1775 	msg.flags = ICE_SBQ_MSG_FLAGS;
1776 	msg.sbe_fbe = ICE_SBQ_MSG_SBE_FBE;
1777 	msg.msg_addr_low = cpu_to_le16(in->msg_addr_low);
1778 	msg.msg_addr_high = cpu_to_le32(in->msg_addr_high);
1779 
1780 	if (in->opcode)
1781 		msg.data = cpu_to_le32(in->data);
1782 	else
1783 		/* data read comes back in completion, so shorten the struct by
1784 		 * sizeof(msg.data)
1785 		 */
1786 		msg_len -= sizeof(msg.data);
1787 
1788 	desc.flags = cpu_to_le16(flags);
1789 	desc.opcode = cpu_to_le16(ice_sbq_opc_neigh_dev_req);
1790 	desc.param0.cmd_len = cpu_to_le16(msg_len);
1791 	status = ice_sbq_send_cmd(hw, &desc, &msg, msg_len, NULL);
1792 	if (!status && !in->opcode)
1793 		in->data = le32_to_cpu
1794 			(((struct ice_sbq_msg_cmpl *)&msg)->data);
1795 	return status;
1796 }
1797 
1798 /* FW Admin Queue command wrappers */
1799 
1800 /* Software lock/mutex that is meant to be held while the Global Config Lock
1801  * in firmware is acquired by the software to prevent most (but not all) types
1802  * of AQ commands from being sent to FW
1803  */
1804 DEFINE_MUTEX(ice_global_cfg_lock_sw);
1805 
1806 /**
1807  * ice_should_retry_sq_send_cmd
1808  * @opcode: AQ opcode
1809  *
1810  * Decide if we should retry the send command routine for the ATQ, depending
1811  * on the opcode.
1812  */
1813 static bool ice_should_retry_sq_send_cmd(u16 opcode)
1814 {
1815 	switch (opcode) {
1816 	case ice_aqc_opc_get_link_topo:
1817 	case ice_aqc_opc_lldp_stop:
1818 	case ice_aqc_opc_lldp_start:
1819 	case ice_aqc_opc_lldp_filter_ctrl:
1820 	case ice_aqc_opc_sff_eeprom:
1821 		return true;
1822 	}
1823 
1824 	return false;
1825 }
1826 
1827 /**
1828  * ice_sq_send_cmd_retry - send command to Control Queue (ATQ)
1829  * @hw: pointer to the HW struct
1830  * @cq: pointer to the specific Control queue
1831  * @desc: prefilled descriptor describing the command
1832  * @buf: buffer to use for indirect commands (or NULL for direct commands)
1833  * @buf_size: size of buffer for indirect commands (or 0 for direct commands)
1834  * @cd: pointer to command details structure
1835  *
1836  * Retry sending the FW Admin Queue command, multiple times, to the FW Admin
1837  * Queue if the EBUSY AQ error is returned.
1838  */
1839 static int
1840 ice_sq_send_cmd_retry(struct ice_hw *hw, struct ice_ctl_q_info *cq,
1841 		      struct libie_aq_desc *desc, void *buf, u16 buf_size,
1842 		      struct ice_sq_cd *cd)
1843 {
1844 	struct libie_aq_desc desc_cpy;
1845 	bool is_cmd_for_retry;
1846 	u8 *buf_cpy = NULL;
1847 	u8 idx = 0;
1848 	u16 opcode;
1849 	int status;
1850 
1851 	opcode = le16_to_cpu(desc->opcode);
1852 	is_cmd_for_retry = ice_should_retry_sq_send_cmd(opcode);
1853 	memset(&desc_cpy, 0, sizeof(desc_cpy));
1854 
1855 	if (is_cmd_for_retry) {
1856 		if (buf) {
1857 			buf_cpy = kmemdup(buf, buf_size, GFP_KERNEL);
1858 			if (!buf_cpy)
1859 				return -ENOMEM;
1860 		}
1861 
1862 		memcpy(&desc_cpy, desc, sizeof(desc_cpy));
1863 	}
1864 
1865 	do {
1866 		status = ice_sq_send_cmd(hw, cq, desc, buf, buf_size, cd);
1867 
1868 		if (!is_cmd_for_retry || !status ||
1869 		    hw->adminq.sq_last_status != LIBIE_AQ_RC_EBUSY)
1870 			break;
1871 
1872 		if (buf_cpy)
1873 			memcpy(buf, buf_cpy, buf_size);
1874 		memcpy(desc, &desc_cpy, sizeof(desc_cpy));
1875 		msleep(ICE_SQ_SEND_DELAY_TIME_MS);
1876 
1877 	} while (++idx < ICE_SQ_SEND_MAX_EXECUTE);
1878 
1879 	kfree(buf_cpy);
1880 	return status;
1881 }
1882 
1883 /**
1884  * ice_aq_send_cmd - send FW Admin Queue command to FW Admin Queue
1885  * @hw: pointer to the HW struct
1886  * @desc: descriptor describing the command
1887  * @buf: buffer to use for indirect commands (NULL for direct commands)
1888  * @buf_size: size of buffer for indirect commands (0 for direct commands)
1889  * @cd: pointer to command details structure
1890  *
1891  * Helper function to send FW Admin Queue commands to the FW Admin Queue.
1892  */
1893 int
1894 ice_aq_send_cmd(struct ice_hw *hw, struct libie_aq_desc *desc, void *buf,
1895 		u16 buf_size, struct ice_sq_cd *cd)
1896 {
1897 	struct libie_aqc_req_res *cmd = libie_aq_raw(desc);
1898 	bool lock_acquired = false;
1899 	int status;
1900 
1901 	/* When a package download is in process (i.e. when the firmware's
1902 	 * Global Configuration Lock resource is held), only the Download
1903 	 * Package, Get Version, Get Package Info List, Upload Section,
1904 	 * Update Package, Set Port Parameters, Get/Set VLAN Mode Parameters,
1905 	 * Add Recipe, Set Recipes to Profile Association, Get Recipe, and Get
1906 	 * Recipes to Profile Association, and Release Resource (with resource
1907 	 * ID set to Global Config Lock) AdminQ commands are allowed; all others
1908 	 * must block until the package download completes and the Global Config
1909 	 * Lock is released.  See also ice_acquire_global_cfg_lock().
1910 	 */
1911 	switch (le16_to_cpu(desc->opcode)) {
1912 	case ice_aqc_opc_download_pkg:
1913 	case ice_aqc_opc_get_pkg_info_list:
1914 	case ice_aqc_opc_get_ver:
1915 	case ice_aqc_opc_upload_section:
1916 	case ice_aqc_opc_update_pkg:
1917 	case ice_aqc_opc_set_port_params:
1918 	case ice_aqc_opc_get_vlan_mode_parameters:
1919 	case ice_aqc_opc_set_vlan_mode_parameters:
1920 	case ice_aqc_opc_set_tx_topo:
1921 	case ice_aqc_opc_get_tx_topo:
1922 	case ice_aqc_opc_add_recipe:
1923 	case ice_aqc_opc_recipe_to_profile:
1924 	case ice_aqc_opc_get_recipe:
1925 	case ice_aqc_opc_get_recipe_to_profile:
1926 		break;
1927 	case ice_aqc_opc_release_res:
1928 		if (le16_to_cpu(cmd->res_id) == LIBIE_AQC_RES_ID_GLBL_LOCK)
1929 			break;
1930 		fallthrough;
1931 	default:
1932 		mutex_lock(&ice_global_cfg_lock_sw);
1933 		lock_acquired = true;
1934 		break;
1935 	}
1936 
1937 	status = ice_sq_send_cmd_retry(hw, &hw->adminq, desc, buf, buf_size, cd);
1938 	if (lock_acquired)
1939 		mutex_unlock(&ice_global_cfg_lock_sw);
1940 
1941 	return status;
1942 }
1943 
1944 /**
1945  * ice_aq_get_fw_ver
1946  * @hw: pointer to the HW struct
1947  * @cd: pointer to command details structure or NULL
1948  *
1949  * Get the firmware version (0x0001) from the admin queue commands
1950  */
1951 int ice_aq_get_fw_ver(struct ice_hw *hw, struct ice_sq_cd *cd)
1952 {
1953 	struct libie_aqc_get_ver *resp;
1954 	struct libie_aq_desc desc;
1955 	int status;
1956 
1957 	resp = &desc.params.get_ver;
1958 
1959 	ice_fill_dflt_direct_cmd_desc(&desc, ice_aqc_opc_get_ver);
1960 
1961 	status = ice_aq_send_cmd(hw, &desc, NULL, 0, cd);
1962 
1963 	if (!status) {
1964 		hw->fw_branch = resp->fw_branch;
1965 		hw->fw_maj_ver = resp->fw_major;
1966 		hw->fw_min_ver = resp->fw_minor;
1967 		hw->fw_patch = resp->fw_patch;
1968 		hw->fw_build = le32_to_cpu(resp->fw_build);
1969 		hw->api_branch = resp->api_branch;
1970 		hw->api_maj_ver = resp->api_major;
1971 		hw->api_min_ver = resp->api_minor;
1972 		hw->api_patch = resp->api_patch;
1973 	}
1974 
1975 	return status;
1976 }
1977 
1978 /**
1979  * ice_aq_send_driver_ver
1980  * @hw: pointer to the HW struct
1981  * @dv: driver's major, minor version
1982  * @cd: pointer to command details structure or NULL
1983  *
1984  * Send the driver version (0x0002) to the firmware
1985  */
1986 int
1987 ice_aq_send_driver_ver(struct ice_hw *hw, struct ice_driver_ver *dv,
1988 		       struct ice_sq_cd *cd)
1989 {
1990 	struct libie_aqc_driver_ver *cmd;
1991 	struct libie_aq_desc desc;
1992 	u16 len;
1993 
1994 	cmd = &desc.params.driver_ver;
1995 
1996 	if (!dv)
1997 		return -EINVAL;
1998 
1999 	ice_fill_dflt_direct_cmd_desc(&desc, ice_aqc_opc_driver_ver);
2000 
2001 	desc.flags |= cpu_to_le16(LIBIE_AQ_FLAG_RD);
2002 	cmd->major_ver = dv->major_ver;
2003 	cmd->minor_ver = dv->minor_ver;
2004 	cmd->build_ver = dv->build_ver;
2005 	cmd->subbuild_ver = dv->subbuild_ver;
2006 
2007 	len = 0;
2008 	while (len < sizeof(dv->driver_string) &&
2009 	       isascii(dv->driver_string[len]) && dv->driver_string[len])
2010 		len++;
2011 
2012 	return ice_aq_send_cmd(hw, &desc, dv->driver_string, len, cd);
2013 }
2014 
2015 /**
2016  * ice_aq_q_shutdown
2017  * @hw: pointer to the HW struct
2018  * @unloading: is the driver unloading itself
2019  *
2020  * Tell the Firmware that we're shutting down the AdminQ and whether
2021  * or not the driver is unloading as well (0x0003).
2022  */
2023 int ice_aq_q_shutdown(struct ice_hw *hw, bool unloading)
2024 {
2025 	struct ice_aqc_q_shutdown *cmd;
2026 	struct libie_aq_desc desc;
2027 
2028 	cmd = libie_aq_raw(&desc);
2029 
2030 	ice_fill_dflt_direct_cmd_desc(&desc, ice_aqc_opc_q_shutdown);
2031 
2032 	if (unloading)
2033 		cmd->driver_unloading = ICE_AQC_DRIVER_UNLOADING;
2034 
2035 	return ice_aq_send_cmd(hw, &desc, NULL, 0, NULL);
2036 }
2037 
2038 /**
2039  * ice_aq_req_res
2040  * @hw: pointer to the HW struct
2041  * @res: resource ID
2042  * @access: access type
2043  * @sdp_number: resource number
2044  * @timeout: the maximum time in ms that the driver may hold the resource
2045  * @cd: pointer to command details structure or NULL
2046  *
2047  * Requests common resource using the admin queue commands (0x0008).
2048  * When attempting to acquire the Global Config Lock, the driver can
2049  * learn of three states:
2050  *  1) 0 -         acquired lock, and can perform download package
2051  *  2) -EIO -      did not get lock, driver should fail to load
2052  *  3) -EALREADY - did not get lock, but another driver has
2053  *                 successfully downloaded the package; the driver does
2054  *                 not have to download the package and can continue
2055  *                 loading
2056  *
2057  * Note that if the caller is in an acquire lock, perform action, release lock
2058  * phase of operation, it is possible that the FW may detect a timeout and issue
2059  * a CORER. In this case, the driver will receive a CORER interrupt and will
2060  * have to determine its cause. The calling thread that is handling this flow
2061  * will likely get an error propagated back to it indicating the Download
2062  * Package, Update Package or the Release Resource AQ commands timed out.
2063  */
2064 static int
2065 ice_aq_req_res(struct ice_hw *hw, enum ice_aq_res_ids res,
2066 	       enum ice_aq_res_access_type access, u8 sdp_number, u32 *timeout,
2067 	       struct ice_sq_cd *cd)
2068 {
2069 	struct libie_aqc_req_res *cmd_resp;
2070 	struct libie_aq_desc desc;
2071 	int status;
2072 
2073 	cmd_resp = &desc.params.res_owner;
2074 
2075 	ice_fill_dflt_direct_cmd_desc(&desc, ice_aqc_opc_req_res);
2076 
2077 	cmd_resp->res_id = cpu_to_le16(res);
2078 	cmd_resp->access_type = cpu_to_le16(access);
2079 	cmd_resp->res_number = cpu_to_le32(sdp_number);
2080 	cmd_resp->timeout = cpu_to_le32(*timeout);
2081 	*timeout = 0;
2082 
2083 	status = ice_aq_send_cmd(hw, &desc, NULL, 0, cd);
2084 
2085 	/* The completion specifies the maximum time in ms that the driver
2086 	 * may hold the resource in the Timeout field.
2087 	 */
2088 
2089 	/* Global config lock response utilizes an additional status field.
2090 	 *
2091 	 * If the Global config lock resource is held by some other driver, the
2092 	 * command completes with LIBIE_AQ_RES_GLBL_IN_PROG in the status field
2093 	 * and the timeout field indicates the maximum time the current owner
2094 	 * of the resource has to free it.
2095 	 */
2096 	if (res == ICE_GLOBAL_CFG_LOCK_RES_ID) {
2097 		if (le16_to_cpu(cmd_resp->status) == LIBIE_AQ_RES_GLBL_SUCCESS) {
2098 			*timeout = le32_to_cpu(cmd_resp->timeout);
2099 			return 0;
2100 		} else if (le16_to_cpu(cmd_resp->status) ==
2101 			   LIBIE_AQ_RES_GLBL_IN_PROG) {
2102 			*timeout = le32_to_cpu(cmd_resp->timeout);
2103 			return -EIO;
2104 		} else if (le16_to_cpu(cmd_resp->status) ==
2105 			   LIBIE_AQ_RES_GLBL_DONE) {
2106 			return -EALREADY;
2107 		}
2108 
2109 		/* invalid FW response, force a timeout immediately */
2110 		*timeout = 0;
2111 		return -EIO;
2112 	}
2113 
2114 	/* If the resource is held by some other driver, the command completes
2115 	 * with a busy return value and the timeout field indicates the maximum
2116 	 * time the current owner of the resource has to free it.
2117 	 */
2118 	if (!status || hw->adminq.sq_last_status == LIBIE_AQ_RC_EBUSY)
2119 		*timeout = le32_to_cpu(cmd_resp->timeout);
2120 
2121 	return status;
2122 }
2123 
2124 /**
2125  * ice_aq_release_res
2126  * @hw: pointer to the HW struct
2127  * @res: resource ID
2128  * @sdp_number: resource number
2129  * @cd: pointer to command details structure or NULL
2130  *
2131  * release common resource using the admin queue commands (0x0009)
2132  */
2133 static int
2134 ice_aq_release_res(struct ice_hw *hw, enum ice_aq_res_ids res, u8 sdp_number,
2135 		   struct ice_sq_cd *cd)
2136 {
2137 	struct libie_aqc_req_res *cmd;
2138 	struct libie_aq_desc desc;
2139 
2140 	cmd = &desc.params.res_owner;
2141 
2142 	ice_fill_dflt_direct_cmd_desc(&desc, ice_aqc_opc_release_res);
2143 
2144 	cmd->res_id = cpu_to_le16(res);
2145 	cmd->res_number = cpu_to_le32(sdp_number);
2146 
2147 	return ice_aq_send_cmd(hw, &desc, NULL, 0, cd);
2148 }
2149 
2150 /**
2151  * ice_acquire_res
2152  * @hw: pointer to the HW structure
2153  * @res: resource ID
2154  * @access: access type (read or write)
2155  * @timeout: timeout in milliseconds
2156  *
2157  * This function will attempt to acquire the ownership of a resource.
2158  */
2159 int
2160 ice_acquire_res(struct ice_hw *hw, enum ice_aq_res_ids res,
2161 		enum ice_aq_res_access_type access, u32 timeout)
2162 {
2163 #define ICE_RES_POLLING_DELAY_MS	10
2164 	u32 delay = ICE_RES_POLLING_DELAY_MS;
2165 	u32 time_left = timeout;
2166 	int status;
2167 
2168 	status = ice_aq_req_res(hw, res, access, 0, &time_left, NULL);
2169 
2170 	/* A return code of -EALREADY means that another driver has
2171 	 * previously acquired the resource and performed any necessary updates;
2172 	 * in this case the caller does not obtain the resource and has no
2173 	 * further work to do.
2174 	 */
2175 	if (status == -EALREADY)
2176 		goto ice_acquire_res_exit;
2177 
2178 	if (status)
2179 		ice_debug(hw, ICE_DBG_RES, "resource %d acquire type %d failed.\n", res, access);
2180 
2181 	/* If necessary, poll until the current lock owner timeouts */
2182 	timeout = time_left;
2183 	while (status && timeout && time_left) {
2184 		mdelay(delay);
2185 		timeout = (timeout > delay) ? timeout - delay : 0;
2186 		status = ice_aq_req_res(hw, res, access, 0, &time_left, NULL);
2187 
2188 		if (status == -EALREADY)
2189 			/* lock free, but no work to do */
2190 			break;
2191 
2192 		if (!status)
2193 			/* lock acquired */
2194 			break;
2195 	}
2196 	if (status && status != -EALREADY)
2197 		ice_debug(hw, ICE_DBG_RES, "resource acquire timed out.\n");
2198 
2199 ice_acquire_res_exit:
2200 	if (status == -EALREADY) {
2201 		if (access == ICE_RES_WRITE)
2202 			ice_debug(hw, ICE_DBG_RES, "resource indicates no work to do.\n");
2203 		else
2204 			ice_debug(hw, ICE_DBG_RES, "Warning: -EALREADY not expected\n");
2205 	}
2206 	return status;
2207 }
2208 
2209 /**
2210  * ice_release_res
2211  * @hw: pointer to the HW structure
2212  * @res: resource ID
2213  *
2214  * This function will release a resource using the proper Admin Command.
2215  */
2216 void ice_release_res(struct ice_hw *hw, enum ice_aq_res_ids res)
2217 {
2218 	unsigned long timeout;
2219 	int status;
2220 
2221 	/* there are some rare cases when trying to release the resource
2222 	 * results in an admin queue timeout, so handle them correctly
2223 	 */
2224 	timeout = jiffies + 10 * usecs_to_jiffies(ICE_CTL_Q_SQ_CMD_TIMEOUT);
2225 	do {
2226 		status = ice_aq_release_res(hw, res, 0, NULL);
2227 		if (status != -EIO)
2228 			break;
2229 		usleep_range(1000, 2000);
2230 	} while (time_before(jiffies, timeout));
2231 }
2232 
2233 /**
2234  * ice_aq_alloc_free_res - command to allocate/free resources
2235  * @hw: pointer to the HW struct
2236  * @buf: Indirect buffer to hold data parameters and response
2237  * @buf_size: size of buffer for indirect commands
2238  * @opc: pass in the command opcode
2239  *
2240  * Helper function to allocate/free resources using the admin queue commands
2241  */
2242 int ice_aq_alloc_free_res(struct ice_hw *hw,
2243 			  struct ice_aqc_alloc_free_res_elem *buf, u16 buf_size,
2244 			  enum ice_adminq_opc opc)
2245 {
2246 	struct ice_aqc_alloc_free_res_cmd *cmd;
2247 	struct libie_aq_desc desc;
2248 
2249 	cmd = libie_aq_raw(&desc);
2250 
2251 	if (!buf || buf_size < flex_array_size(buf, elem, 1))
2252 		return -EINVAL;
2253 
2254 	ice_fill_dflt_direct_cmd_desc(&desc, opc);
2255 
2256 	desc.flags |= cpu_to_le16(LIBIE_AQ_FLAG_RD);
2257 
2258 	cmd->num_entries = cpu_to_le16(1);
2259 
2260 	return ice_aq_send_cmd(hw, &desc, buf, buf_size, NULL);
2261 }
2262 
2263 /**
2264  * ice_alloc_hw_res - allocate resource
2265  * @hw: pointer to the HW struct
2266  * @type: type of resource
2267  * @num: number of resources to allocate
2268  * @btm: allocate from bottom
2269  * @res: pointer to array that will receive the resources
2270  */
2271 int
2272 ice_alloc_hw_res(struct ice_hw *hw, u16 type, u16 num, bool btm, u16 *res)
2273 {
2274 	struct ice_aqc_alloc_free_res_elem *buf;
2275 	u16 buf_len;
2276 	int status;
2277 
2278 	buf_len = struct_size(buf, elem, num);
2279 	buf = kzalloc(buf_len, GFP_KERNEL);
2280 	if (!buf)
2281 		return -ENOMEM;
2282 
2283 	/* Prepare buffer to allocate resource. */
2284 	buf->num_elems = cpu_to_le16(num);
2285 	buf->res_type = cpu_to_le16(type | ICE_AQC_RES_TYPE_FLAG_DEDICATED |
2286 				    ICE_AQC_RES_TYPE_FLAG_IGNORE_INDEX);
2287 	if (btm)
2288 		buf->res_type |= cpu_to_le16(ICE_AQC_RES_TYPE_FLAG_SCAN_BOTTOM);
2289 
2290 	status = ice_aq_alloc_free_res(hw, buf, buf_len, ice_aqc_opc_alloc_res);
2291 	if (status)
2292 		goto ice_alloc_res_exit;
2293 
2294 	memcpy(res, buf->elem, sizeof(*buf->elem) * num);
2295 
2296 ice_alloc_res_exit:
2297 	kfree(buf);
2298 	return status;
2299 }
2300 
2301 /**
2302  * ice_free_hw_res - free allocated HW resource
2303  * @hw: pointer to the HW struct
2304  * @type: type of resource to free
2305  * @num: number of resources
2306  * @res: pointer to array that contains the resources to free
2307  */
2308 int ice_free_hw_res(struct ice_hw *hw, u16 type, u16 num, u16 *res)
2309 {
2310 	struct ice_aqc_alloc_free_res_elem *buf;
2311 	u16 buf_len;
2312 	int status;
2313 
2314 	buf_len = struct_size(buf, elem, num);
2315 	buf = kzalloc(buf_len, GFP_KERNEL);
2316 	if (!buf)
2317 		return -ENOMEM;
2318 
2319 	/* Prepare buffer to free resource. */
2320 	buf->num_elems = cpu_to_le16(num);
2321 	buf->res_type = cpu_to_le16(type);
2322 	memcpy(buf->elem, res, sizeof(*buf->elem) * num);
2323 
2324 	status = ice_aq_alloc_free_res(hw, buf, buf_len, ice_aqc_opc_free_res);
2325 	if (status)
2326 		ice_debug(hw, ICE_DBG_SW, "CQ CMD Buffer:\n");
2327 
2328 	kfree(buf);
2329 	return status;
2330 }
2331 
2332 /**
2333  * ice_get_num_per_func - determine number of resources per PF
2334  * @hw: pointer to the HW structure
2335  * @max: value to be evenly split between each PF
2336  *
2337  * Determine the number of valid functions by going through the bitmap returned
2338  * from parsing capabilities and use this to calculate the number of resources
2339  * per PF based on the max value passed in.
2340  */
2341 static u32 ice_get_num_per_func(struct ice_hw *hw, u32 max)
2342 {
2343 	u8 funcs;
2344 
2345 #define ICE_CAPS_VALID_FUNCS_M	0xFF
2346 	funcs = hweight8(hw->dev_caps.common_cap.valid_functions &
2347 			 ICE_CAPS_VALID_FUNCS_M);
2348 
2349 	if (!funcs)
2350 		return 0;
2351 
2352 	return max / funcs;
2353 }
2354 
2355 /**
2356  * ice_parse_common_caps - parse common device/function capabilities
2357  * @hw: pointer to the HW struct
2358  * @caps: pointer to common capabilities structure
2359  * @elem: the capability element to parse
2360  * @prefix: message prefix for tracing capabilities
2361  *
2362  * Given a capability element, extract relevant details into the common
2363  * capability structure.
2364  *
2365  * Returns: true if the capability matches one of the common capability ids,
2366  * false otherwise.
2367  */
2368 static bool
2369 ice_parse_common_caps(struct ice_hw *hw, struct ice_hw_common_caps *caps,
2370 		      struct libie_aqc_list_caps_elem *elem, const char *prefix)
2371 {
2372 	u32 logical_id = le32_to_cpu(elem->logical_id);
2373 	u32 phys_id = le32_to_cpu(elem->phys_id);
2374 	u32 number = le32_to_cpu(elem->number);
2375 	u16 cap = le16_to_cpu(elem->cap);
2376 	bool found = true;
2377 
2378 	switch (cap) {
2379 	case LIBIE_AQC_CAPS_VALID_FUNCTIONS:
2380 		caps->valid_functions = number;
2381 		ice_debug(hw, ICE_DBG_INIT, "%s: valid_functions (bitmap) = %d\n", prefix,
2382 			  caps->valid_functions);
2383 		break;
2384 	case LIBIE_AQC_CAPS_SRIOV:
2385 		caps->sr_iov_1_1 = (number == 1);
2386 		ice_debug(hw, ICE_DBG_INIT, "%s: sr_iov_1_1 = %d\n", prefix,
2387 			  caps->sr_iov_1_1);
2388 		break;
2389 	case LIBIE_AQC_CAPS_DCB:
2390 		caps->dcb = (number == 1);
2391 		caps->active_tc_bitmap = logical_id;
2392 		caps->maxtc = phys_id;
2393 		ice_debug(hw, ICE_DBG_INIT, "%s: dcb = %d\n", prefix, caps->dcb);
2394 		ice_debug(hw, ICE_DBG_INIT, "%s: active_tc_bitmap = %d\n", prefix,
2395 			  caps->active_tc_bitmap);
2396 		ice_debug(hw, ICE_DBG_INIT, "%s: maxtc = %d\n", prefix, caps->maxtc);
2397 		break;
2398 	case LIBIE_AQC_CAPS_RSS:
2399 		caps->rss_table_size = number;
2400 		caps->rss_table_entry_width = logical_id;
2401 		ice_debug(hw, ICE_DBG_INIT, "%s: rss_table_size = %d\n", prefix,
2402 			  caps->rss_table_size);
2403 		ice_debug(hw, ICE_DBG_INIT, "%s: rss_table_entry_width = %d\n", prefix,
2404 			  caps->rss_table_entry_width);
2405 		break;
2406 	case LIBIE_AQC_CAPS_RXQS:
2407 		caps->num_rxq = number;
2408 		caps->rxq_first_id = phys_id;
2409 		ice_debug(hw, ICE_DBG_INIT, "%s: num_rxq = %d\n", prefix,
2410 			  caps->num_rxq);
2411 		ice_debug(hw, ICE_DBG_INIT, "%s: rxq_first_id = %d\n", prefix,
2412 			  caps->rxq_first_id);
2413 		break;
2414 	case LIBIE_AQC_CAPS_TXQS:
2415 		caps->num_txq = number;
2416 		caps->txq_first_id = phys_id;
2417 		ice_debug(hw, ICE_DBG_INIT, "%s: num_txq = %d\n", prefix,
2418 			  caps->num_txq);
2419 		ice_debug(hw, ICE_DBG_INIT, "%s: txq_first_id = %d\n", prefix,
2420 			  caps->txq_first_id);
2421 		break;
2422 	case LIBIE_AQC_CAPS_MSIX:
2423 		caps->num_msix_vectors = number;
2424 		caps->msix_vector_first_id = phys_id;
2425 		ice_debug(hw, ICE_DBG_INIT, "%s: num_msix_vectors = %d\n", prefix,
2426 			  caps->num_msix_vectors);
2427 		ice_debug(hw, ICE_DBG_INIT, "%s: msix_vector_first_id = %d\n", prefix,
2428 			  caps->msix_vector_first_id);
2429 		break;
2430 	case LIBIE_AQC_CAPS_PENDING_NVM_VER:
2431 		caps->nvm_update_pending_nvm = true;
2432 		ice_debug(hw, ICE_DBG_INIT, "%s: update_pending_nvm\n", prefix);
2433 		break;
2434 	case LIBIE_AQC_CAPS_PENDING_OROM_VER:
2435 		caps->nvm_update_pending_orom = true;
2436 		ice_debug(hw, ICE_DBG_INIT, "%s: update_pending_orom\n", prefix);
2437 		break;
2438 	case LIBIE_AQC_CAPS_PENDING_NET_VER:
2439 		caps->nvm_update_pending_netlist = true;
2440 		ice_debug(hw, ICE_DBG_INIT, "%s: update_pending_netlist\n", prefix);
2441 		break;
2442 	case LIBIE_AQC_CAPS_NVM_MGMT:
2443 		caps->nvm_unified_update =
2444 			(number & ICE_NVM_MGMT_UNIFIED_UPD_SUPPORT) ?
2445 			true : false;
2446 		ice_debug(hw, ICE_DBG_INIT, "%s: nvm_unified_update = %d\n", prefix,
2447 			  caps->nvm_unified_update);
2448 		break;
2449 	case LIBIE_AQC_CAPS_RDMA:
2450 		if (IS_ENABLED(CONFIG_INFINIBAND_IRDMA))
2451 			caps->rdma = (number == 1);
2452 		ice_debug(hw, ICE_DBG_INIT, "%s: rdma = %d\n", prefix, caps->rdma);
2453 		break;
2454 	case LIBIE_AQC_CAPS_MAX_MTU:
2455 		caps->max_mtu = number;
2456 		ice_debug(hw, ICE_DBG_INIT, "%s: max_mtu = %d\n",
2457 			  prefix, caps->max_mtu);
2458 		break;
2459 	case LIBIE_AQC_CAPS_PCIE_RESET_AVOIDANCE:
2460 		caps->pcie_reset_avoidance = (number > 0);
2461 		ice_debug(hw, ICE_DBG_INIT,
2462 			  "%s: pcie_reset_avoidance = %d\n", prefix,
2463 			  caps->pcie_reset_avoidance);
2464 		break;
2465 	case LIBIE_AQC_CAPS_POST_UPDATE_RESET_RESTRICT:
2466 		caps->reset_restrict_support = (number == 1);
2467 		ice_debug(hw, ICE_DBG_INIT,
2468 			  "%s: reset_restrict_support = %d\n", prefix,
2469 			  caps->reset_restrict_support);
2470 		break;
2471 	case LIBIE_AQC_CAPS_FW_LAG_SUPPORT:
2472 		caps->roce_lag = number & LIBIE_AQC_BIT_ROCEV2_LAG;
2473 		ice_debug(hw, ICE_DBG_INIT, "%s: roce_lag = %u\n",
2474 			  prefix, caps->roce_lag);
2475 		caps->sriov_lag = number & LIBIE_AQC_BIT_SRIOV_LAG;
2476 		ice_debug(hw, ICE_DBG_INIT, "%s: sriov_lag = %u\n",
2477 			  prefix, caps->sriov_lag);
2478 		caps->sriov_aa_lag = number & LIBIE_AQC_BIT_SRIOV_AA_LAG;
2479 		ice_debug(hw, ICE_DBG_INIT, "%s: sriov_aa_lag = %u\n",
2480 			  prefix, caps->sriov_aa_lag);
2481 		break;
2482 	case LIBIE_AQC_CAPS_TX_SCHED_TOPO_COMP_MODE:
2483 		caps->tx_sched_topo_comp_mode_en = (number == 1);
2484 		break;
2485 	default:
2486 		/* Not one of the recognized common capabilities */
2487 		found = false;
2488 	}
2489 
2490 	return found;
2491 }
2492 
2493 /**
2494  * ice_recalc_port_limited_caps - Recalculate port limited capabilities
2495  * @hw: pointer to the HW structure
2496  * @caps: pointer to capabilities structure to fix
2497  *
2498  * Re-calculate the capabilities that are dependent on the number of physical
2499  * ports; i.e. some features are not supported or function differently on
2500  * devices with more than 4 ports.
2501  */
2502 static void
2503 ice_recalc_port_limited_caps(struct ice_hw *hw, struct ice_hw_common_caps *caps)
2504 {
2505 	/* This assumes device capabilities are always scanned before function
2506 	 * capabilities during the initialization flow.
2507 	 */
2508 	if (hw->dev_caps.num_funcs > 4) {
2509 		/* Max 4 TCs per port */
2510 		caps->maxtc = 4;
2511 		ice_debug(hw, ICE_DBG_INIT, "reducing maxtc to %d (based on #ports)\n",
2512 			  caps->maxtc);
2513 		if (caps->rdma) {
2514 			ice_debug(hw, ICE_DBG_INIT, "forcing RDMA off\n");
2515 			caps->rdma = 0;
2516 		}
2517 
2518 		/* print message only when processing device capabilities
2519 		 * during initialization.
2520 		 */
2521 		if (caps == &hw->dev_caps.common_cap)
2522 			dev_info(ice_hw_to_dev(hw), "RDMA functionality is not available with the current device configuration.\n");
2523 	}
2524 }
2525 
2526 /**
2527  * ice_parse_vf_func_caps - Parse ICE_AQC_CAPS_VF function caps
2528  * @hw: pointer to the HW struct
2529  * @func_p: pointer to function capabilities structure
2530  * @cap: pointer to the capability element to parse
2531  *
2532  * Extract function capabilities for ICE_AQC_CAPS_VF.
2533  */
2534 static void
2535 ice_parse_vf_func_caps(struct ice_hw *hw, struct ice_hw_func_caps *func_p,
2536 		       struct libie_aqc_list_caps_elem *cap)
2537 {
2538 	u32 logical_id = le32_to_cpu(cap->logical_id);
2539 	u32 number = le32_to_cpu(cap->number);
2540 
2541 	func_p->num_allocd_vfs = number;
2542 	func_p->vf_base_id = logical_id;
2543 	ice_debug(hw, ICE_DBG_INIT, "func caps: num_allocd_vfs = %d\n",
2544 		  func_p->num_allocd_vfs);
2545 	ice_debug(hw, ICE_DBG_INIT, "func caps: vf_base_id = %d\n",
2546 		  func_p->vf_base_id);
2547 }
2548 
2549 /**
2550  * ice_parse_vsi_func_caps - Parse ICE_AQC_CAPS_VSI function caps
2551  * @hw: pointer to the HW struct
2552  * @func_p: pointer to function capabilities structure
2553  * @cap: pointer to the capability element to parse
2554  *
2555  * Extract function capabilities for ICE_AQC_CAPS_VSI.
2556  */
2557 static void
2558 ice_parse_vsi_func_caps(struct ice_hw *hw, struct ice_hw_func_caps *func_p,
2559 			struct libie_aqc_list_caps_elem *cap)
2560 {
2561 	func_p->guar_num_vsi = ice_get_num_per_func(hw, ICE_MAX_VSI);
2562 	ice_debug(hw, ICE_DBG_INIT, "func caps: guar_num_vsi (fw) = %d\n",
2563 		  le32_to_cpu(cap->number));
2564 	ice_debug(hw, ICE_DBG_INIT, "func caps: guar_num_vsi = %d\n",
2565 		  func_p->guar_num_vsi);
2566 }
2567 
2568 /**
2569  * ice_parse_1588_func_caps - Parse ICE_AQC_CAPS_1588 function caps
2570  * @hw: pointer to the HW struct
2571  * @func_p: pointer to function capabilities structure
2572  * @cap: pointer to the capability element to parse
2573  *
2574  * Extract function capabilities for ICE_AQC_CAPS_1588.
2575  */
2576 static void
2577 ice_parse_1588_func_caps(struct ice_hw *hw, struct ice_hw_func_caps *func_p,
2578 			 struct libie_aqc_list_caps_elem *cap)
2579 {
2580 	struct ice_ts_func_info *info = &func_p->ts_func_info;
2581 	u32 number = le32_to_cpu(cap->number);
2582 
2583 	info->ena = ((number & ICE_TS_FUNC_ENA_M) != 0);
2584 	func_p->common_cap.ieee_1588 = info->ena;
2585 
2586 	info->src_tmr_owned = ((number & ICE_TS_SRC_TMR_OWND_M) != 0);
2587 	info->tmr_ena = ((number & ICE_TS_TMR_ENA_M) != 0);
2588 	info->tmr_index_owned = ((number & ICE_TS_TMR_IDX_OWND_M) != 0);
2589 	info->tmr_index_assoc = ((number & ICE_TS_TMR_IDX_ASSOC_M) != 0);
2590 
2591 	if (hw->mac_type != ICE_MAC_GENERIC_3K_E825) {
2592 		info->clk_freq = FIELD_GET(ICE_TS_CLK_FREQ_M, number);
2593 		info->clk_src = ((number & ICE_TS_CLK_SRC_M) != 0);
2594 	} else {
2595 		info->clk_freq = ICE_TSPLL_FREQ_156_250;
2596 		info->clk_src = ICE_CLK_SRC_TIME_REF;
2597 	}
2598 
2599 	if (info->clk_freq < NUM_ICE_TSPLL_FREQ) {
2600 		info->time_ref = (enum ice_tspll_freq)info->clk_freq;
2601 	} else {
2602 		/* Unknown clock frequency, so assume a (probably incorrect)
2603 		 * default to avoid out-of-bounds look ups of frequency
2604 		 * related information.
2605 		 */
2606 		ice_debug(hw, ICE_DBG_INIT, "1588 func caps: unknown clock frequency %u\n",
2607 			  info->clk_freq);
2608 		info->time_ref = ICE_TSPLL_FREQ_25_000;
2609 	}
2610 
2611 	ice_debug(hw, ICE_DBG_INIT, "func caps: ieee_1588 = %u\n",
2612 		  func_p->common_cap.ieee_1588);
2613 	ice_debug(hw, ICE_DBG_INIT, "func caps: src_tmr_owned = %u\n",
2614 		  info->src_tmr_owned);
2615 	ice_debug(hw, ICE_DBG_INIT, "func caps: tmr_ena = %u\n",
2616 		  info->tmr_ena);
2617 	ice_debug(hw, ICE_DBG_INIT, "func caps: tmr_index_owned = %u\n",
2618 		  info->tmr_index_owned);
2619 	ice_debug(hw, ICE_DBG_INIT, "func caps: tmr_index_assoc = %u\n",
2620 		  info->tmr_index_assoc);
2621 	ice_debug(hw, ICE_DBG_INIT, "func caps: clk_freq = %u\n",
2622 		  info->clk_freq);
2623 	ice_debug(hw, ICE_DBG_INIT, "func caps: clk_src = %u\n",
2624 		  info->clk_src);
2625 }
2626 
2627 /**
2628  * ice_parse_fdir_func_caps - Parse ICE_AQC_CAPS_FD function caps
2629  * @hw: pointer to the HW struct
2630  * @func_p: pointer to function capabilities structure
2631  *
2632  * Extract function capabilities for ICE_AQC_CAPS_FD.
2633  */
2634 static void
2635 ice_parse_fdir_func_caps(struct ice_hw *hw, struct ice_hw_func_caps *func_p)
2636 {
2637 	u32 reg_val, gsize, bsize;
2638 
2639 	reg_val = rd32(hw, GLQF_FD_SIZE);
2640 	switch (hw->mac_type) {
2641 	case ICE_MAC_E830:
2642 		gsize = FIELD_GET(E830_GLQF_FD_SIZE_FD_GSIZE_M, reg_val);
2643 		bsize = FIELD_GET(E830_GLQF_FD_SIZE_FD_BSIZE_M, reg_val);
2644 		break;
2645 	case ICE_MAC_E810:
2646 	default:
2647 		gsize = FIELD_GET(E800_GLQF_FD_SIZE_FD_GSIZE_M, reg_val);
2648 		bsize = FIELD_GET(E800_GLQF_FD_SIZE_FD_BSIZE_M, reg_val);
2649 	}
2650 	func_p->fd_fltr_guar = ice_get_num_per_func(hw, gsize);
2651 	func_p->fd_fltr_best_effort = bsize;
2652 
2653 	ice_debug(hw, ICE_DBG_INIT, "func caps: fd_fltr_guar = %d\n",
2654 		  func_p->fd_fltr_guar);
2655 	ice_debug(hw, ICE_DBG_INIT, "func caps: fd_fltr_best_effort = %d\n",
2656 		  func_p->fd_fltr_best_effort);
2657 }
2658 
2659 /**
2660  * ice_parse_func_caps - Parse function capabilities
2661  * @hw: pointer to the HW struct
2662  * @func_p: pointer to function capabilities structure
2663  * @buf: buffer containing the function capability records
2664  * @cap_count: the number of capabilities
2665  *
2666  * Helper function to parse function (0x000A) capabilities list. For
2667  * capabilities shared between device and function, this relies on
2668  * ice_parse_common_caps.
2669  *
2670  * Loop through the list of provided capabilities and extract the relevant
2671  * data into the function capabilities structured.
2672  */
2673 static void
2674 ice_parse_func_caps(struct ice_hw *hw, struct ice_hw_func_caps *func_p,
2675 		    void *buf, u32 cap_count)
2676 {
2677 	struct libie_aqc_list_caps_elem *cap_resp;
2678 	u32 i;
2679 
2680 	cap_resp = buf;
2681 
2682 	memset(func_p, 0, sizeof(*func_p));
2683 
2684 	for (i = 0; i < cap_count; i++) {
2685 		u16 cap = le16_to_cpu(cap_resp[i].cap);
2686 		bool found;
2687 
2688 		found = ice_parse_common_caps(hw, &func_p->common_cap,
2689 					      &cap_resp[i], "func caps");
2690 
2691 		switch (cap) {
2692 		case LIBIE_AQC_CAPS_VF:
2693 			ice_parse_vf_func_caps(hw, func_p, &cap_resp[i]);
2694 			break;
2695 		case LIBIE_AQC_CAPS_VSI:
2696 			ice_parse_vsi_func_caps(hw, func_p, &cap_resp[i]);
2697 			break;
2698 		case LIBIE_AQC_CAPS_1588:
2699 			ice_parse_1588_func_caps(hw, func_p, &cap_resp[i]);
2700 			break;
2701 		case LIBIE_AQC_CAPS_FD:
2702 			ice_parse_fdir_func_caps(hw, func_p);
2703 			break;
2704 		default:
2705 			/* Don't list common capabilities as unknown */
2706 			if (!found)
2707 				ice_debug(hw, ICE_DBG_INIT, "func caps: unknown capability[%d]: 0x%x\n",
2708 					  i, cap);
2709 			break;
2710 		}
2711 	}
2712 
2713 	ice_recalc_port_limited_caps(hw, &func_p->common_cap);
2714 }
2715 
2716 /**
2717  * ice_func_id_to_logical_id - map from function id to logical pf id
2718  * @active_function_bitmap: active function bitmap
2719  * @pf_id: function number of device
2720  *
2721  * Return: logical PF ID.
2722  */
2723 static int ice_func_id_to_logical_id(u32 active_function_bitmap, u8 pf_id)
2724 {
2725 	u8 logical_id = 0;
2726 	u8 i;
2727 
2728 	for (i = 0; i < pf_id; i++)
2729 		if (active_function_bitmap & BIT(i))
2730 			logical_id++;
2731 
2732 	return logical_id;
2733 }
2734 
2735 /**
2736  * ice_parse_valid_functions_cap - Parse ICE_AQC_CAPS_VALID_FUNCTIONS caps
2737  * @hw: pointer to the HW struct
2738  * @dev_p: pointer to device capabilities structure
2739  * @cap: capability element to parse
2740  *
2741  * Parse ICE_AQC_CAPS_VALID_FUNCTIONS for device capabilities.
2742  */
2743 static void
2744 ice_parse_valid_functions_cap(struct ice_hw *hw, struct ice_hw_dev_caps *dev_p,
2745 			      struct libie_aqc_list_caps_elem *cap)
2746 {
2747 	u32 number = le32_to_cpu(cap->number);
2748 
2749 	dev_p->num_funcs = hweight32(number);
2750 	ice_debug(hw, ICE_DBG_INIT, "dev caps: num_funcs = %d\n",
2751 		  dev_p->num_funcs);
2752 
2753 	hw->logical_pf_id = ice_func_id_to_logical_id(number, hw->pf_id);
2754 }
2755 
2756 /**
2757  * ice_parse_vf_dev_caps - Parse ICE_AQC_CAPS_VF device caps
2758  * @hw: pointer to the HW struct
2759  * @dev_p: pointer to device capabilities structure
2760  * @cap: capability element to parse
2761  *
2762  * Parse ICE_AQC_CAPS_VF for device capabilities.
2763  */
2764 static void
2765 ice_parse_vf_dev_caps(struct ice_hw *hw, struct ice_hw_dev_caps *dev_p,
2766 		      struct libie_aqc_list_caps_elem *cap)
2767 {
2768 	u32 number = le32_to_cpu(cap->number);
2769 
2770 	dev_p->num_vfs_exposed = number;
2771 	ice_debug(hw, ICE_DBG_INIT, "dev_caps: num_vfs_exposed = %d\n",
2772 		  dev_p->num_vfs_exposed);
2773 }
2774 
2775 /**
2776  * ice_parse_vsi_dev_caps - Parse ICE_AQC_CAPS_VSI device caps
2777  * @hw: pointer to the HW struct
2778  * @dev_p: pointer to device capabilities structure
2779  * @cap: capability element to parse
2780  *
2781  * Parse ICE_AQC_CAPS_VSI for device capabilities.
2782  */
2783 static void
2784 ice_parse_vsi_dev_caps(struct ice_hw *hw, struct ice_hw_dev_caps *dev_p,
2785 		       struct libie_aqc_list_caps_elem *cap)
2786 {
2787 	u32 number = le32_to_cpu(cap->number);
2788 
2789 	dev_p->num_vsi_allocd_to_host = number;
2790 	ice_debug(hw, ICE_DBG_INIT, "dev caps: num_vsi_allocd_to_host = %d\n",
2791 		  dev_p->num_vsi_allocd_to_host);
2792 }
2793 
2794 /**
2795  * ice_parse_1588_dev_caps - Parse ICE_AQC_CAPS_1588 device caps
2796  * @hw: pointer to the HW struct
2797  * @dev_p: pointer to device capabilities structure
2798  * @cap: capability element to parse
2799  *
2800  * Parse ICE_AQC_CAPS_1588 for device capabilities.
2801  */
2802 static void
2803 ice_parse_1588_dev_caps(struct ice_hw *hw, struct ice_hw_dev_caps *dev_p,
2804 			struct libie_aqc_list_caps_elem *cap)
2805 {
2806 	struct ice_ts_dev_info *info = &dev_p->ts_dev_info;
2807 	u32 logical_id = le32_to_cpu(cap->logical_id);
2808 	u32 phys_id = le32_to_cpu(cap->phys_id);
2809 	u32 number = le32_to_cpu(cap->number);
2810 
2811 	info->ena = ((number & ICE_TS_DEV_ENA_M) != 0);
2812 	dev_p->common_cap.ieee_1588 = info->ena;
2813 
2814 	info->tmr0_owner = number & ICE_TS_TMR0_OWNR_M;
2815 	info->tmr0_owned = ((number & ICE_TS_TMR0_OWND_M) != 0);
2816 	info->tmr0_ena = ((number & ICE_TS_TMR0_ENA_M) != 0);
2817 
2818 	info->tmr1_owner = FIELD_GET(ICE_TS_TMR1_OWNR_M, number);
2819 	info->tmr1_owned = ((number & ICE_TS_TMR1_OWND_M) != 0);
2820 	info->tmr1_ena = ((number & ICE_TS_TMR1_ENA_M) != 0);
2821 
2822 	info->ts_ll_read = ((number & ICE_TS_LL_TX_TS_READ_M) != 0);
2823 	info->ts_ll_int_read = ((number & ICE_TS_LL_TX_TS_INT_READ_M) != 0);
2824 	info->ll_phy_tmr_update = ((number & ICE_TS_LL_PHY_TMR_UPDATE_M) != 0);
2825 
2826 	info->ena_ports = logical_id;
2827 	info->tmr_own_map = phys_id;
2828 
2829 	ice_debug(hw, ICE_DBG_INIT, "dev caps: ieee_1588 = %u\n",
2830 		  dev_p->common_cap.ieee_1588);
2831 	ice_debug(hw, ICE_DBG_INIT, "dev caps: tmr0_owner = %u\n",
2832 		  info->tmr0_owner);
2833 	ice_debug(hw, ICE_DBG_INIT, "dev caps: tmr0_owned = %u\n",
2834 		  info->tmr0_owned);
2835 	ice_debug(hw, ICE_DBG_INIT, "dev caps: tmr0_ena = %u\n",
2836 		  info->tmr0_ena);
2837 	ice_debug(hw, ICE_DBG_INIT, "dev caps: tmr1_owner = %u\n",
2838 		  info->tmr1_owner);
2839 	ice_debug(hw, ICE_DBG_INIT, "dev caps: tmr1_owned = %u\n",
2840 		  info->tmr1_owned);
2841 	ice_debug(hw, ICE_DBG_INIT, "dev caps: tmr1_ena = %u\n",
2842 		  info->tmr1_ena);
2843 	ice_debug(hw, ICE_DBG_INIT, "dev caps: ts_ll_read = %u\n",
2844 		  info->ts_ll_read);
2845 	ice_debug(hw, ICE_DBG_INIT, "dev caps: ts_ll_int_read = %u\n",
2846 		  info->ts_ll_int_read);
2847 	ice_debug(hw, ICE_DBG_INIT, "dev caps: ll_phy_tmr_update = %u\n",
2848 		  info->ll_phy_tmr_update);
2849 	ice_debug(hw, ICE_DBG_INIT, "dev caps: ieee_1588 ena_ports = %u\n",
2850 		  info->ena_ports);
2851 	ice_debug(hw, ICE_DBG_INIT, "dev caps: tmr_own_map = %u\n",
2852 		  info->tmr_own_map);
2853 }
2854 
2855 /**
2856  * ice_parse_fdir_dev_caps - Parse ICE_AQC_CAPS_FD device caps
2857  * @hw: pointer to the HW struct
2858  * @dev_p: pointer to device capabilities structure
2859  * @cap: capability element to parse
2860  *
2861  * Parse ICE_AQC_CAPS_FD for device capabilities.
2862  */
2863 static void
2864 ice_parse_fdir_dev_caps(struct ice_hw *hw, struct ice_hw_dev_caps *dev_p,
2865 			struct libie_aqc_list_caps_elem *cap)
2866 {
2867 	u32 number = le32_to_cpu(cap->number);
2868 
2869 	dev_p->num_flow_director_fltr = number;
2870 	ice_debug(hw, ICE_DBG_INIT, "dev caps: num_flow_director_fltr = %d\n",
2871 		  dev_p->num_flow_director_fltr);
2872 }
2873 
2874 /**
2875  * ice_parse_sensor_reading_cap - Parse ICE_AQC_CAPS_SENSOR_READING cap
2876  * @hw: pointer to the HW struct
2877  * @dev_p: pointer to device capabilities structure
2878  * @cap: capability element to parse
2879  *
2880  * Parse ICE_AQC_CAPS_SENSOR_READING for device capability for reading
2881  * enabled sensors.
2882  */
2883 static void
2884 ice_parse_sensor_reading_cap(struct ice_hw *hw, struct ice_hw_dev_caps *dev_p,
2885 			     struct libie_aqc_list_caps_elem *cap)
2886 {
2887 	dev_p->supported_sensors = le32_to_cpu(cap->number);
2888 
2889 	ice_debug(hw, ICE_DBG_INIT,
2890 		  "dev caps: supported sensors (bitmap) = 0x%x\n",
2891 		  dev_p->supported_sensors);
2892 }
2893 
2894 /**
2895  * ice_parse_nac_topo_dev_caps - Parse ICE_AQC_CAPS_NAC_TOPOLOGY cap
2896  * @hw: pointer to the HW struct
2897  * @dev_p: pointer to device capabilities structure
2898  * @cap: capability element to parse
2899  *
2900  * Parse ICE_AQC_CAPS_NAC_TOPOLOGY for device capabilities.
2901  */
2902 static void ice_parse_nac_topo_dev_caps(struct ice_hw *hw,
2903 					struct ice_hw_dev_caps *dev_p,
2904 					struct libie_aqc_list_caps_elem *cap)
2905 {
2906 	dev_p->nac_topo.mode = le32_to_cpu(cap->number);
2907 	dev_p->nac_topo.id = le32_to_cpu(cap->phys_id) & ICE_NAC_TOPO_ID_M;
2908 
2909 	dev_info(ice_hw_to_dev(hw),
2910 		 "PF is configured in %s mode with IP instance ID %d\n",
2911 		 (dev_p->nac_topo.mode & ICE_NAC_TOPO_PRIMARY_M) ?
2912 		 "primary" : "secondary", dev_p->nac_topo.id);
2913 
2914 	ice_debug(hw, ICE_DBG_INIT, "dev caps: nac topology is_primary = %d\n",
2915 		  !!(dev_p->nac_topo.mode & ICE_NAC_TOPO_PRIMARY_M));
2916 	ice_debug(hw, ICE_DBG_INIT, "dev caps: nac topology is_dual = %d\n",
2917 		  !!(dev_p->nac_topo.mode & ICE_NAC_TOPO_DUAL_M));
2918 	ice_debug(hw, ICE_DBG_INIT, "dev caps: nac topology id = %d\n",
2919 		  dev_p->nac_topo.id);
2920 }
2921 
2922 /**
2923  * ice_parse_dev_caps - Parse device capabilities
2924  * @hw: pointer to the HW struct
2925  * @dev_p: pointer to device capabilities structure
2926  * @buf: buffer containing the device capability records
2927  * @cap_count: the number of capabilities
2928  *
2929  * Helper device to parse device (0x000B) capabilities list. For
2930  * capabilities shared between device and function, this relies on
2931  * ice_parse_common_caps.
2932  *
2933  * Loop through the list of provided capabilities and extract the relevant
2934  * data into the device capabilities structured.
2935  */
2936 static void
2937 ice_parse_dev_caps(struct ice_hw *hw, struct ice_hw_dev_caps *dev_p,
2938 		   void *buf, u32 cap_count)
2939 {
2940 	struct libie_aqc_list_caps_elem *cap_resp;
2941 	u32 i;
2942 
2943 	cap_resp = buf;
2944 
2945 	memset(dev_p, 0, sizeof(*dev_p));
2946 
2947 	for (i = 0; i < cap_count; i++) {
2948 		u16 cap = le16_to_cpu(cap_resp[i].cap);
2949 		bool found;
2950 
2951 		found = ice_parse_common_caps(hw, &dev_p->common_cap,
2952 					      &cap_resp[i], "dev caps");
2953 
2954 		switch (cap) {
2955 		case LIBIE_AQC_CAPS_VALID_FUNCTIONS:
2956 			ice_parse_valid_functions_cap(hw, dev_p, &cap_resp[i]);
2957 			break;
2958 		case LIBIE_AQC_CAPS_VF:
2959 			ice_parse_vf_dev_caps(hw, dev_p, &cap_resp[i]);
2960 			break;
2961 		case LIBIE_AQC_CAPS_VSI:
2962 			ice_parse_vsi_dev_caps(hw, dev_p, &cap_resp[i]);
2963 			break;
2964 		case LIBIE_AQC_CAPS_1588:
2965 			ice_parse_1588_dev_caps(hw, dev_p, &cap_resp[i]);
2966 			break;
2967 		case LIBIE_AQC_CAPS_FD:
2968 			ice_parse_fdir_dev_caps(hw, dev_p, &cap_resp[i]);
2969 			break;
2970 		case LIBIE_AQC_CAPS_SENSOR_READING:
2971 			ice_parse_sensor_reading_cap(hw, dev_p, &cap_resp[i]);
2972 			break;
2973 		case LIBIE_AQC_CAPS_NAC_TOPOLOGY:
2974 			ice_parse_nac_topo_dev_caps(hw, dev_p, &cap_resp[i]);
2975 			break;
2976 		default:
2977 			/* Don't list common capabilities as unknown */
2978 			if (!found)
2979 				ice_debug(hw, ICE_DBG_INIT, "dev caps: unknown capability[%d]: 0x%x\n",
2980 					  i, cap);
2981 			break;
2982 		}
2983 	}
2984 
2985 	ice_recalc_port_limited_caps(hw, &dev_p->common_cap);
2986 }
2987 
2988 /**
2989  * ice_is_phy_rclk_in_netlist
2990  * @hw: pointer to the hw struct
2991  *
2992  * Check if the PHY Recovered Clock device is present in the netlist
2993  */
2994 bool ice_is_phy_rclk_in_netlist(struct ice_hw *hw)
2995 {
2996 	if (ice_find_netlist_node(hw, ICE_AQC_LINK_TOPO_NODE_TYPE_PHY,
2997 				  ICE_AQC_LINK_TOPO_NODE_CTX_PORT,
2998 				  ICE_AQC_GET_LINK_TOPO_NODE_NR_C827, NULL) &&
2999 	    ice_find_netlist_node(hw, ICE_AQC_LINK_TOPO_NODE_TYPE_PHY,
3000 				  ICE_AQC_LINK_TOPO_NODE_CTX_PORT,
3001 				  ICE_AQC_GET_LINK_TOPO_NODE_NR_E822_PHY, NULL))
3002 		return false;
3003 
3004 	return true;
3005 }
3006 
3007 /**
3008  * ice_is_clock_mux_in_netlist
3009  * @hw: pointer to the hw struct
3010  *
3011  * Check if the Clock Multiplexer device is present in the netlist
3012  */
3013 bool ice_is_clock_mux_in_netlist(struct ice_hw *hw)
3014 {
3015 	if (ice_find_netlist_node(hw, ICE_AQC_LINK_TOPO_NODE_TYPE_CLK_MUX,
3016 				  ICE_AQC_LINK_TOPO_NODE_CTX_GLOBAL,
3017 				  ICE_AQC_GET_LINK_TOPO_NODE_NR_GEN_CLK_MUX,
3018 				  NULL))
3019 		return false;
3020 
3021 	return true;
3022 }
3023 
3024 /**
3025  * ice_is_cgu_in_netlist - check for CGU presence
3026  * @hw: pointer to the hw struct
3027  *
3028  * Check if the Clock Generation Unit (CGU) device is present in the netlist.
3029  * Save the CGU part number in the hw structure for later use.
3030  * Return:
3031  * * true - cgu is present
3032  * * false - cgu is not present
3033  */
3034 bool ice_is_cgu_in_netlist(struct ice_hw *hw)
3035 {
3036 	if (!ice_find_netlist_node(hw, ICE_AQC_LINK_TOPO_NODE_TYPE_CLK_CTRL,
3037 				   ICE_AQC_LINK_TOPO_NODE_CTX_GLOBAL,
3038 				   ICE_AQC_GET_LINK_TOPO_NODE_NR_ZL30632_80032,
3039 				   NULL)) {
3040 		hw->cgu_part_number = ICE_AQC_GET_LINK_TOPO_NODE_NR_ZL30632_80032;
3041 		return true;
3042 	} else if (!ice_find_netlist_node(hw,
3043 					  ICE_AQC_LINK_TOPO_NODE_TYPE_CLK_CTRL,
3044 					  ICE_AQC_LINK_TOPO_NODE_CTX_GLOBAL,
3045 					  ICE_AQC_GET_LINK_TOPO_NODE_NR_SI5383_5384,
3046 					  NULL)) {
3047 		hw->cgu_part_number = ICE_AQC_GET_LINK_TOPO_NODE_NR_SI5383_5384;
3048 		return true;
3049 	}
3050 
3051 	return false;
3052 }
3053 
3054 /**
3055  * ice_is_gps_in_netlist
3056  * @hw: pointer to the hw struct
3057  *
3058  * Check if the GPS generic device is present in the netlist
3059  */
3060 bool ice_is_gps_in_netlist(struct ice_hw *hw)
3061 {
3062 	if (ice_find_netlist_node(hw, ICE_AQC_LINK_TOPO_NODE_TYPE_GPS,
3063 				  ICE_AQC_LINK_TOPO_NODE_CTX_GLOBAL,
3064 				  ICE_AQC_GET_LINK_TOPO_NODE_NR_GEN_GPS, NULL))
3065 		return false;
3066 
3067 	return true;
3068 }
3069 
3070 /**
3071  * ice_aq_list_caps - query function/device capabilities
3072  * @hw: pointer to the HW struct
3073  * @buf: a buffer to hold the capabilities
3074  * @buf_size: size of the buffer
3075  * @cap_count: if not NULL, set to the number of capabilities reported
3076  * @opc: capabilities type to discover, device or function
3077  * @cd: pointer to command details structure or NULL
3078  *
3079  * Get the function (0x000A) or device (0x000B) capabilities description from
3080  * firmware and store it in the buffer.
3081  *
3082  * If the cap_count pointer is not NULL, then it is set to the number of
3083  * capabilities firmware will report. Note that if the buffer size is too
3084  * small, it is possible the command will return ICE_AQ_ERR_ENOMEM. The
3085  * cap_count will still be updated in this case. It is recommended that the
3086  * buffer size be set to ICE_AQ_MAX_BUF_LEN (the largest possible buffer that
3087  * firmware could return) to avoid this.
3088  */
3089 int
3090 ice_aq_list_caps(struct ice_hw *hw, void *buf, u16 buf_size, u32 *cap_count,
3091 		 enum ice_adminq_opc opc, struct ice_sq_cd *cd)
3092 {
3093 	struct libie_aqc_list_caps *cmd;
3094 	struct libie_aq_desc desc;
3095 	int status;
3096 
3097 	cmd = &desc.params.get_cap;
3098 
3099 	if (opc != ice_aqc_opc_list_func_caps &&
3100 	    opc != ice_aqc_opc_list_dev_caps)
3101 		return -EINVAL;
3102 
3103 	ice_fill_dflt_direct_cmd_desc(&desc, opc);
3104 	status = ice_aq_send_cmd(hw, &desc, buf, buf_size, cd);
3105 
3106 	if (cap_count)
3107 		*cap_count = le32_to_cpu(cmd->count);
3108 
3109 	return status;
3110 }
3111 
3112 /**
3113  * ice_discover_dev_caps - Read and extract device capabilities
3114  * @hw: pointer to the hardware structure
3115  * @dev_caps: pointer to device capabilities structure
3116  *
3117  * Read the device capabilities and extract them into the dev_caps structure
3118  * for later use.
3119  */
3120 int
3121 ice_discover_dev_caps(struct ice_hw *hw, struct ice_hw_dev_caps *dev_caps)
3122 {
3123 	u32 cap_count = 0;
3124 	void *cbuf;
3125 	int status;
3126 
3127 	cbuf = kzalloc(ICE_AQ_MAX_BUF_LEN, GFP_KERNEL);
3128 	if (!cbuf)
3129 		return -ENOMEM;
3130 
3131 	/* Although the driver doesn't know the number of capabilities the
3132 	 * device will return, we can simply send a 4KB buffer, the maximum
3133 	 * possible size that firmware can return.
3134 	 */
3135 	cap_count = ICE_AQ_MAX_BUF_LEN / sizeof(struct libie_aqc_list_caps_elem);
3136 
3137 	status = ice_aq_list_caps(hw, cbuf, ICE_AQ_MAX_BUF_LEN, &cap_count,
3138 				  ice_aqc_opc_list_dev_caps, NULL);
3139 	if (!status)
3140 		ice_parse_dev_caps(hw, dev_caps, cbuf, cap_count);
3141 	kfree(cbuf);
3142 
3143 	return status;
3144 }
3145 
3146 /**
3147  * ice_discover_func_caps - Read and extract function capabilities
3148  * @hw: pointer to the hardware structure
3149  * @func_caps: pointer to function capabilities structure
3150  *
3151  * Read the function capabilities and extract them into the func_caps structure
3152  * for later use.
3153  */
3154 static int
3155 ice_discover_func_caps(struct ice_hw *hw, struct ice_hw_func_caps *func_caps)
3156 {
3157 	u32 cap_count = 0;
3158 	void *cbuf;
3159 	int status;
3160 
3161 	cbuf = kzalloc(ICE_AQ_MAX_BUF_LEN, GFP_KERNEL);
3162 	if (!cbuf)
3163 		return -ENOMEM;
3164 
3165 	/* Although the driver doesn't know the number of capabilities the
3166 	 * device will return, we can simply send a 4KB buffer, the maximum
3167 	 * possible size that firmware can return.
3168 	 */
3169 	cap_count = ICE_AQ_MAX_BUF_LEN / sizeof(struct libie_aqc_list_caps_elem);
3170 
3171 	status = ice_aq_list_caps(hw, cbuf, ICE_AQ_MAX_BUF_LEN, &cap_count,
3172 				  ice_aqc_opc_list_func_caps, NULL);
3173 	if (!status)
3174 		ice_parse_func_caps(hw, func_caps, cbuf, cap_count);
3175 	kfree(cbuf);
3176 
3177 	return status;
3178 }
3179 
3180 /**
3181  * ice_set_safe_mode_caps - Override dev/func capabilities when in safe mode
3182  * @hw: pointer to the hardware structure
3183  */
3184 void ice_set_safe_mode_caps(struct ice_hw *hw)
3185 {
3186 	struct ice_hw_func_caps *func_caps = &hw->func_caps;
3187 	struct ice_hw_dev_caps *dev_caps = &hw->dev_caps;
3188 	struct ice_hw_common_caps cached_caps;
3189 	u32 num_funcs;
3190 
3191 	/* cache some func_caps values that should be restored after memset */
3192 	cached_caps = func_caps->common_cap;
3193 
3194 	/* unset func capabilities */
3195 	memset(func_caps, 0, sizeof(*func_caps));
3196 
3197 #define ICE_RESTORE_FUNC_CAP(name) \
3198 	func_caps->common_cap.name = cached_caps.name
3199 
3200 	/* restore cached values */
3201 	ICE_RESTORE_FUNC_CAP(valid_functions);
3202 	ICE_RESTORE_FUNC_CAP(txq_first_id);
3203 	ICE_RESTORE_FUNC_CAP(rxq_first_id);
3204 	ICE_RESTORE_FUNC_CAP(msix_vector_first_id);
3205 	ICE_RESTORE_FUNC_CAP(max_mtu);
3206 	ICE_RESTORE_FUNC_CAP(nvm_unified_update);
3207 	ICE_RESTORE_FUNC_CAP(nvm_update_pending_nvm);
3208 	ICE_RESTORE_FUNC_CAP(nvm_update_pending_orom);
3209 	ICE_RESTORE_FUNC_CAP(nvm_update_pending_netlist);
3210 
3211 	/* one Tx and one Rx queue in safe mode */
3212 	func_caps->common_cap.num_rxq = 1;
3213 	func_caps->common_cap.num_txq = 1;
3214 
3215 	/* two MSIX vectors, one for traffic and one for misc causes */
3216 	func_caps->common_cap.num_msix_vectors = 2;
3217 	func_caps->guar_num_vsi = 1;
3218 
3219 	/* cache some dev_caps values that should be restored after memset */
3220 	cached_caps = dev_caps->common_cap;
3221 	num_funcs = dev_caps->num_funcs;
3222 
3223 	/* unset dev capabilities */
3224 	memset(dev_caps, 0, sizeof(*dev_caps));
3225 
3226 #define ICE_RESTORE_DEV_CAP(name) \
3227 	dev_caps->common_cap.name = cached_caps.name
3228 
3229 	/* restore cached values */
3230 	ICE_RESTORE_DEV_CAP(valid_functions);
3231 	ICE_RESTORE_DEV_CAP(txq_first_id);
3232 	ICE_RESTORE_DEV_CAP(rxq_first_id);
3233 	ICE_RESTORE_DEV_CAP(msix_vector_first_id);
3234 	ICE_RESTORE_DEV_CAP(max_mtu);
3235 	ICE_RESTORE_DEV_CAP(nvm_unified_update);
3236 	ICE_RESTORE_DEV_CAP(nvm_update_pending_nvm);
3237 	ICE_RESTORE_DEV_CAP(nvm_update_pending_orom);
3238 	ICE_RESTORE_DEV_CAP(nvm_update_pending_netlist);
3239 	dev_caps->num_funcs = num_funcs;
3240 
3241 	/* one Tx and one Rx queue per function in safe mode */
3242 	dev_caps->common_cap.num_rxq = num_funcs;
3243 	dev_caps->common_cap.num_txq = num_funcs;
3244 
3245 	/* two MSIX vectors per function */
3246 	dev_caps->common_cap.num_msix_vectors = 2 * num_funcs;
3247 }
3248 
3249 /**
3250  * ice_get_caps - get info about the HW
3251  * @hw: pointer to the hardware structure
3252  */
3253 int ice_get_caps(struct ice_hw *hw)
3254 {
3255 	int status;
3256 
3257 	status = ice_discover_dev_caps(hw, &hw->dev_caps);
3258 	if (status)
3259 		return status;
3260 
3261 	return ice_discover_func_caps(hw, &hw->func_caps);
3262 }
3263 
3264 /**
3265  * ice_aq_manage_mac_write - manage MAC address write command
3266  * @hw: pointer to the HW struct
3267  * @mac_addr: MAC address to be written as LAA/LAA+WoL/Port address
3268  * @flags: flags to control write behavior
3269  * @cd: pointer to command details structure or NULL
3270  *
3271  * This function is used to write MAC address to the NVM (0x0108).
3272  */
3273 int
3274 ice_aq_manage_mac_write(struct ice_hw *hw, const u8 *mac_addr, u8 flags,
3275 			struct ice_sq_cd *cd)
3276 {
3277 	struct ice_aqc_manage_mac_write *cmd;
3278 	struct libie_aq_desc desc;
3279 
3280 	cmd = libie_aq_raw(&desc);
3281 	ice_fill_dflt_direct_cmd_desc(&desc, ice_aqc_opc_manage_mac_write);
3282 
3283 	cmd->flags = flags;
3284 	ether_addr_copy(cmd->mac_addr, mac_addr);
3285 
3286 	return ice_aq_send_cmd(hw, &desc, NULL, 0, cd);
3287 }
3288 
3289 /**
3290  * ice_aq_clear_pxe_mode
3291  * @hw: pointer to the HW struct
3292  *
3293  * Tell the firmware that the driver is taking over from PXE (0x0110).
3294  */
3295 static int ice_aq_clear_pxe_mode(struct ice_hw *hw)
3296 {
3297 	struct ice_aqc_clear_pxe *cmd;
3298 	struct libie_aq_desc desc;
3299 
3300 	cmd = libie_aq_raw(&desc);
3301 	ice_fill_dflt_direct_cmd_desc(&desc, ice_aqc_opc_clear_pxe_mode);
3302 	cmd->rx_cnt = ICE_AQC_CLEAR_PXE_RX_CNT;
3303 
3304 	return ice_aq_send_cmd(hw, &desc, NULL, 0, NULL);
3305 }
3306 
3307 /**
3308  * ice_clear_pxe_mode - clear pxe operations mode
3309  * @hw: pointer to the HW struct
3310  *
3311  * Make sure all PXE mode settings are cleared, including things
3312  * like descriptor fetch/write-back mode.
3313  */
3314 void ice_clear_pxe_mode(struct ice_hw *hw)
3315 {
3316 	if (ice_check_sq_alive(hw, &hw->adminq))
3317 		ice_aq_clear_pxe_mode(hw);
3318 }
3319 
3320 /**
3321  * ice_aq_set_port_params - set physical port parameters.
3322  * @pi: pointer to the port info struct
3323  * @double_vlan: if set double VLAN is enabled
3324  * @cd: pointer to command details structure or NULL
3325  *
3326  * Set Physical port parameters (0x0203)
3327  */
3328 int
3329 ice_aq_set_port_params(struct ice_port_info *pi, bool double_vlan,
3330 		       struct ice_sq_cd *cd)
3331 
3332 {
3333 	struct ice_aqc_set_port_params *cmd;
3334 	struct ice_hw *hw = pi->hw;
3335 	struct libie_aq_desc desc;
3336 	u16 cmd_flags = 0;
3337 
3338 	cmd = libie_aq_raw(&desc);
3339 
3340 	ice_fill_dflt_direct_cmd_desc(&desc, ice_aqc_opc_set_port_params);
3341 	if (double_vlan)
3342 		cmd_flags |= ICE_AQC_SET_P_PARAMS_DOUBLE_VLAN_ENA;
3343 	cmd->cmd_flags = cpu_to_le16(cmd_flags);
3344 
3345 	cmd->local_fwd_mode = pi->local_fwd_mode |
3346 				ICE_AQC_SET_P_PARAMS_LOCAL_FWD_MODE_VALID;
3347 
3348 	return ice_aq_send_cmd(hw, &desc, NULL, 0, cd);
3349 }
3350 
3351 /**
3352  * ice_is_100m_speed_supported
3353  * @hw: pointer to the HW struct
3354  *
3355  * returns true if 100M speeds are supported by the device,
3356  * false otherwise.
3357  */
3358 bool ice_is_100m_speed_supported(struct ice_hw *hw)
3359 {
3360 	switch (hw->device_id) {
3361 	case ICE_DEV_ID_E822C_SGMII:
3362 	case ICE_DEV_ID_E822L_SGMII:
3363 	case ICE_DEV_ID_E823L_1GBE:
3364 	case ICE_DEV_ID_E823C_SGMII:
3365 	case ICE_DEV_ID_E825C_SGMII:
3366 		return true;
3367 	default:
3368 		return false;
3369 	}
3370 }
3371 
3372 /**
3373  * ice_get_link_speed_based_on_phy_type - returns link speed
3374  * @phy_type_low: lower part of phy_type
3375  * @phy_type_high: higher part of phy_type
3376  *
3377  * This helper function will convert an entry in PHY type structure
3378  * [phy_type_low, phy_type_high] to its corresponding link speed.
3379  * Note: In the structure of [phy_type_low, phy_type_high], there should
3380  * be one bit set, as this function will convert one PHY type to its
3381  * speed.
3382  *
3383  * Return:
3384  * * PHY speed for recognized PHY type
3385  * * If no bit gets set, ICE_AQ_LINK_SPEED_UNKNOWN will be returned
3386  * * If more than one bit gets set, ICE_AQ_LINK_SPEED_UNKNOWN will be returned
3387  */
3388 u16 ice_get_link_speed_based_on_phy_type(u64 phy_type_low, u64 phy_type_high)
3389 {
3390 	u16 speed_phy_type_high = ICE_AQ_LINK_SPEED_UNKNOWN;
3391 	u16 speed_phy_type_low = ICE_AQ_LINK_SPEED_UNKNOWN;
3392 
3393 	switch (phy_type_low) {
3394 	case ICE_PHY_TYPE_LOW_100BASE_TX:
3395 	case ICE_PHY_TYPE_LOW_100M_SGMII:
3396 		speed_phy_type_low = ICE_AQ_LINK_SPEED_100MB;
3397 		break;
3398 	case ICE_PHY_TYPE_LOW_1000BASE_T:
3399 	case ICE_PHY_TYPE_LOW_1000BASE_SX:
3400 	case ICE_PHY_TYPE_LOW_1000BASE_LX:
3401 	case ICE_PHY_TYPE_LOW_1000BASE_KX:
3402 	case ICE_PHY_TYPE_LOW_1G_SGMII:
3403 		speed_phy_type_low = ICE_AQ_LINK_SPEED_1000MB;
3404 		break;
3405 	case ICE_PHY_TYPE_LOW_2500BASE_T:
3406 	case ICE_PHY_TYPE_LOW_2500BASE_X:
3407 	case ICE_PHY_TYPE_LOW_2500BASE_KX:
3408 		speed_phy_type_low = ICE_AQ_LINK_SPEED_2500MB;
3409 		break;
3410 	case ICE_PHY_TYPE_LOW_5GBASE_T:
3411 	case ICE_PHY_TYPE_LOW_5GBASE_KR:
3412 		speed_phy_type_low = ICE_AQ_LINK_SPEED_5GB;
3413 		break;
3414 	case ICE_PHY_TYPE_LOW_10GBASE_T:
3415 	case ICE_PHY_TYPE_LOW_10G_SFI_DA:
3416 	case ICE_PHY_TYPE_LOW_10GBASE_SR:
3417 	case ICE_PHY_TYPE_LOW_10GBASE_LR:
3418 	case ICE_PHY_TYPE_LOW_10GBASE_KR_CR1:
3419 	case ICE_PHY_TYPE_LOW_10G_SFI_AOC_ACC:
3420 	case ICE_PHY_TYPE_LOW_10G_SFI_C2C:
3421 		speed_phy_type_low = ICE_AQ_LINK_SPEED_10GB;
3422 		break;
3423 	case ICE_PHY_TYPE_LOW_25GBASE_T:
3424 	case ICE_PHY_TYPE_LOW_25GBASE_CR:
3425 	case ICE_PHY_TYPE_LOW_25GBASE_CR_S:
3426 	case ICE_PHY_TYPE_LOW_25GBASE_CR1:
3427 	case ICE_PHY_TYPE_LOW_25GBASE_SR:
3428 	case ICE_PHY_TYPE_LOW_25GBASE_LR:
3429 	case ICE_PHY_TYPE_LOW_25GBASE_KR:
3430 	case ICE_PHY_TYPE_LOW_25GBASE_KR_S:
3431 	case ICE_PHY_TYPE_LOW_25GBASE_KR1:
3432 	case ICE_PHY_TYPE_LOW_25G_AUI_AOC_ACC:
3433 	case ICE_PHY_TYPE_LOW_25G_AUI_C2C:
3434 		speed_phy_type_low = ICE_AQ_LINK_SPEED_25GB;
3435 		break;
3436 	case ICE_PHY_TYPE_LOW_40GBASE_CR4:
3437 	case ICE_PHY_TYPE_LOW_40GBASE_SR4:
3438 	case ICE_PHY_TYPE_LOW_40GBASE_LR4:
3439 	case ICE_PHY_TYPE_LOW_40GBASE_KR4:
3440 	case ICE_PHY_TYPE_LOW_40G_XLAUI_AOC_ACC:
3441 	case ICE_PHY_TYPE_LOW_40G_XLAUI:
3442 		speed_phy_type_low = ICE_AQ_LINK_SPEED_40GB;
3443 		break;
3444 	case ICE_PHY_TYPE_LOW_50GBASE_CR2:
3445 	case ICE_PHY_TYPE_LOW_50GBASE_SR2:
3446 	case ICE_PHY_TYPE_LOW_50GBASE_LR2:
3447 	case ICE_PHY_TYPE_LOW_50GBASE_KR2:
3448 	case ICE_PHY_TYPE_LOW_50G_LAUI2_AOC_ACC:
3449 	case ICE_PHY_TYPE_LOW_50G_LAUI2:
3450 	case ICE_PHY_TYPE_LOW_50G_AUI2_AOC_ACC:
3451 	case ICE_PHY_TYPE_LOW_50G_AUI2:
3452 	case ICE_PHY_TYPE_LOW_50GBASE_CP:
3453 	case ICE_PHY_TYPE_LOW_50GBASE_SR:
3454 	case ICE_PHY_TYPE_LOW_50GBASE_FR:
3455 	case ICE_PHY_TYPE_LOW_50GBASE_LR:
3456 	case ICE_PHY_TYPE_LOW_50GBASE_KR_PAM4:
3457 	case ICE_PHY_TYPE_LOW_50G_AUI1_AOC_ACC:
3458 	case ICE_PHY_TYPE_LOW_50G_AUI1:
3459 		speed_phy_type_low = ICE_AQ_LINK_SPEED_50GB;
3460 		break;
3461 	case ICE_PHY_TYPE_LOW_100GBASE_CR4:
3462 	case ICE_PHY_TYPE_LOW_100GBASE_SR4:
3463 	case ICE_PHY_TYPE_LOW_100GBASE_LR4:
3464 	case ICE_PHY_TYPE_LOW_100GBASE_KR4:
3465 	case ICE_PHY_TYPE_LOW_100G_CAUI4_AOC_ACC:
3466 	case ICE_PHY_TYPE_LOW_100G_CAUI4:
3467 	case ICE_PHY_TYPE_LOW_100G_AUI4_AOC_ACC:
3468 	case ICE_PHY_TYPE_LOW_100G_AUI4:
3469 	case ICE_PHY_TYPE_LOW_100GBASE_CR_PAM4:
3470 	case ICE_PHY_TYPE_LOW_100GBASE_KR_PAM4:
3471 	case ICE_PHY_TYPE_LOW_100GBASE_CP2:
3472 	case ICE_PHY_TYPE_LOW_100GBASE_SR2:
3473 	case ICE_PHY_TYPE_LOW_100GBASE_DR:
3474 		speed_phy_type_low = ICE_AQ_LINK_SPEED_100GB;
3475 		break;
3476 	default:
3477 		speed_phy_type_low = ICE_AQ_LINK_SPEED_UNKNOWN;
3478 		break;
3479 	}
3480 
3481 	switch (phy_type_high) {
3482 	case ICE_PHY_TYPE_HIGH_100GBASE_KR2_PAM4:
3483 	case ICE_PHY_TYPE_HIGH_100G_CAUI2_AOC_ACC:
3484 	case ICE_PHY_TYPE_HIGH_100G_CAUI2:
3485 	case ICE_PHY_TYPE_HIGH_100G_AUI2_AOC_ACC:
3486 	case ICE_PHY_TYPE_HIGH_100G_AUI2:
3487 		speed_phy_type_high = ICE_AQ_LINK_SPEED_100GB;
3488 		break;
3489 	case ICE_PHY_TYPE_HIGH_200G_CR4_PAM4:
3490 	case ICE_PHY_TYPE_HIGH_200G_SR4:
3491 	case ICE_PHY_TYPE_HIGH_200G_FR4:
3492 	case ICE_PHY_TYPE_HIGH_200G_LR4:
3493 	case ICE_PHY_TYPE_HIGH_200G_DR4:
3494 	case ICE_PHY_TYPE_HIGH_200G_KR4_PAM4:
3495 	case ICE_PHY_TYPE_HIGH_200G_AUI4_AOC_ACC:
3496 	case ICE_PHY_TYPE_HIGH_200G_AUI4:
3497 		speed_phy_type_high = ICE_AQ_LINK_SPEED_200GB;
3498 		break;
3499 	default:
3500 		speed_phy_type_high = ICE_AQ_LINK_SPEED_UNKNOWN;
3501 		break;
3502 	}
3503 
3504 	if (speed_phy_type_low == ICE_AQ_LINK_SPEED_UNKNOWN &&
3505 	    speed_phy_type_high == ICE_AQ_LINK_SPEED_UNKNOWN)
3506 		return ICE_AQ_LINK_SPEED_UNKNOWN;
3507 	else if (speed_phy_type_low != ICE_AQ_LINK_SPEED_UNKNOWN &&
3508 		 speed_phy_type_high != ICE_AQ_LINK_SPEED_UNKNOWN)
3509 		return ICE_AQ_LINK_SPEED_UNKNOWN;
3510 	else if (speed_phy_type_low != ICE_AQ_LINK_SPEED_UNKNOWN &&
3511 		 speed_phy_type_high == ICE_AQ_LINK_SPEED_UNKNOWN)
3512 		return speed_phy_type_low;
3513 	else
3514 		return speed_phy_type_high;
3515 }
3516 
3517 /**
3518  * ice_update_phy_type
3519  * @phy_type_low: pointer to the lower part of phy_type
3520  * @phy_type_high: pointer to the higher part of phy_type
3521  * @link_speeds_bitmap: targeted link speeds bitmap
3522  *
3523  * Note: For the link_speeds_bitmap structure, you can check it at
3524  * [ice_aqc_get_link_status->link_speed]. Caller can pass in
3525  * link_speeds_bitmap include multiple speeds.
3526  *
3527  * Each entry in this [phy_type_low, phy_type_high] structure will
3528  * present a certain link speed. This helper function will turn on bits
3529  * in [phy_type_low, phy_type_high] structure based on the value of
3530  * link_speeds_bitmap input parameter.
3531  */
3532 void
3533 ice_update_phy_type(u64 *phy_type_low, u64 *phy_type_high,
3534 		    u16 link_speeds_bitmap)
3535 {
3536 	u64 pt_high;
3537 	u64 pt_low;
3538 	int index;
3539 	u16 speed;
3540 
3541 	/* We first check with low part of phy_type */
3542 	for (index = 0; index <= ICE_PHY_TYPE_LOW_MAX_INDEX; index++) {
3543 		pt_low = BIT_ULL(index);
3544 		speed = ice_get_link_speed_based_on_phy_type(pt_low, 0);
3545 
3546 		if (link_speeds_bitmap & speed)
3547 			*phy_type_low |= BIT_ULL(index);
3548 	}
3549 
3550 	/* We then check with high part of phy_type */
3551 	for (index = 0; index <= ICE_PHY_TYPE_HIGH_MAX_INDEX; index++) {
3552 		pt_high = BIT_ULL(index);
3553 		speed = ice_get_link_speed_based_on_phy_type(0, pt_high);
3554 
3555 		if (link_speeds_bitmap & speed)
3556 			*phy_type_high |= BIT_ULL(index);
3557 	}
3558 }
3559 
3560 /**
3561  * ice_aq_set_phy_cfg
3562  * @hw: pointer to the HW struct
3563  * @pi: port info structure of the interested logical port
3564  * @cfg: structure with PHY configuration data to be set
3565  * @cd: pointer to command details structure or NULL
3566  *
3567  * Set the various PHY configuration parameters supported on the Port.
3568  * One or more of the Set PHY config parameters may be ignored in an MFP
3569  * mode as the PF may not have the privilege to set some of the PHY Config
3570  * parameters. This status will be indicated by the command response (0x0601).
3571  */
3572 int
3573 ice_aq_set_phy_cfg(struct ice_hw *hw, struct ice_port_info *pi,
3574 		   struct ice_aqc_set_phy_cfg_data *cfg, struct ice_sq_cd *cd)
3575 {
3576 	struct ice_aqc_set_phy_cfg *cmd;
3577 	struct libie_aq_desc desc;
3578 	int status;
3579 
3580 	if (!cfg)
3581 		return -EINVAL;
3582 
3583 	/* Ensure that only valid bits of cfg->caps can be turned on. */
3584 	if (cfg->caps & ~ICE_AQ_PHY_ENA_VALID_MASK) {
3585 		ice_debug(hw, ICE_DBG_PHY, "Invalid bit is set in ice_aqc_set_phy_cfg_data->caps : 0x%x\n",
3586 			  cfg->caps);
3587 
3588 		cfg->caps &= ICE_AQ_PHY_ENA_VALID_MASK;
3589 	}
3590 
3591 	ice_fill_dflt_direct_cmd_desc(&desc, ice_aqc_opc_set_phy_cfg);
3592 	cmd = libie_aq_raw(&desc);
3593 	cmd->lport_num = pi->lport;
3594 	desc.flags |= cpu_to_le16(LIBIE_AQ_FLAG_RD);
3595 
3596 	ice_debug(hw, ICE_DBG_LINK, "set phy cfg\n");
3597 	ice_debug(hw, ICE_DBG_LINK, "	phy_type_low = 0x%llx\n",
3598 		  (unsigned long long)le64_to_cpu(cfg->phy_type_low));
3599 	ice_debug(hw, ICE_DBG_LINK, "	phy_type_high = 0x%llx\n",
3600 		  (unsigned long long)le64_to_cpu(cfg->phy_type_high));
3601 	ice_debug(hw, ICE_DBG_LINK, "	caps = 0x%x\n", cfg->caps);
3602 	ice_debug(hw, ICE_DBG_LINK, "	low_power_ctrl_an = 0x%x\n",
3603 		  cfg->low_power_ctrl_an);
3604 	ice_debug(hw, ICE_DBG_LINK, "	eee_cap = 0x%x\n", cfg->eee_cap);
3605 	ice_debug(hw, ICE_DBG_LINK, "	eeer_value = 0x%x\n", cfg->eeer_value);
3606 	ice_debug(hw, ICE_DBG_LINK, "	link_fec_opt = 0x%x\n",
3607 		  cfg->link_fec_opt);
3608 
3609 	status = ice_aq_send_cmd(hw, &desc, cfg, sizeof(*cfg), cd);
3610 	if (hw->adminq.sq_last_status == LIBIE_AQ_RC_EMODE)
3611 		status = 0;
3612 
3613 	if (!status)
3614 		pi->phy.curr_user_phy_cfg = *cfg;
3615 
3616 	return status;
3617 }
3618 
3619 /**
3620  * ice_update_link_info - update status of the HW network link
3621  * @pi: port info structure of the interested logical port
3622  */
3623 int ice_update_link_info(struct ice_port_info *pi)
3624 {
3625 	struct ice_link_status *li;
3626 	int status;
3627 
3628 	if (!pi)
3629 		return -EINVAL;
3630 
3631 	li = &pi->phy.link_info;
3632 
3633 	status = ice_aq_get_link_info(pi, true, NULL, NULL);
3634 	if (status)
3635 		return status;
3636 
3637 	if (li->link_info & ICE_AQ_MEDIA_AVAILABLE) {
3638 		struct ice_aqc_get_phy_caps_data *pcaps __free(kfree) = NULL;
3639 
3640 		pcaps = kzalloc_obj(*pcaps);
3641 		if (!pcaps)
3642 			return -ENOMEM;
3643 
3644 		status = ice_aq_get_phy_caps(pi, false, ICE_AQC_REPORT_TOPO_CAP_MEDIA,
3645 					     pcaps, NULL);
3646 	}
3647 
3648 	return status;
3649 }
3650 
3651 /**
3652  * ice_aq_get_phy_equalization - function to read serdes equaliser
3653  * value from firmware using admin queue command.
3654  * @hw: pointer to the HW struct
3655  * @data_in: represents the serdes equalization parameter requested
3656  * @op_code: represents the serdes number and flag to represent tx or rx
3657  * @serdes_num: represents the serdes number
3658  * @output: pointer to the caller-supplied buffer to return serdes equaliser
3659  *
3660  * Return: non-zero status on error and 0 on success.
3661  */
3662 int ice_aq_get_phy_equalization(struct ice_hw *hw, u16 data_in, u16 op_code,
3663 				u8 serdes_num, int *output)
3664 {
3665 	struct ice_aqc_dnl_call_command *cmd;
3666 	struct ice_aqc_dnl_call buf = {};
3667 	struct libie_aq_desc desc;
3668 	int err;
3669 
3670 	buf.sto.txrx_equa_reqs.data_in = cpu_to_le16(data_in);
3671 	buf.sto.txrx_equa_reqs.op_code_serdes_sel =
3672 		cpu_to_le16(op_code | (serdes_num & 0xF));
3673 	cmd = libie_aq_raw(&desc);
3674 	ice_fill_dflt_direct_cmd_desc(&desc, ice_aqc_opc_dnl_call);
3675 	desc.flags |= cpu_to_le16(LIBIE_AQ_FLAG_BUF |
3676 				  LIBIE_AQ_FLAG_RD |
3677 				  LIBIE_AQ_FLAG_SI);
3678 	desc.datalen = cpu_to_le16(sizeof(struct ice_aqc_dnl_call));
3679 	cmd->activity_id = cpu_to_le16(ICE_AQC_ACT_ID_DNL);
3680 
3681 	err = ice_aq_send_cmd(hw, &desc, &buf, sizeof(struct ice_aqc_dnl_call),
3682 			      NULL);
3683 	*output = err ? 0 : buf.sto.txrx_equa_resp.val;
3684 
3685 	return err;
3686 }
3687 
3688 #define FEC_REG_PORT(port) {	\
3689 	FEC_CORR_LOW_REG_PORT##port,		\
3690 	FEC_CORR_HIGH_REG_PORT##port,	\
3691 	FEC_UNCORR_LOW_REG_PORT##port,	\
3692 	FEC_UNCORR_HIGH_REG_PORT##port,	\
3693 }
3694 
3695 static const u32 fec_reg[][ICE_FEC_MAX] = {
3696 	FEC_REG_PORT(0),
3697 	FEC_REG_PORT(1),
3698 	FEC_REG_PORT(2),
3699 	FEC_REG_PORT(3)
3700 };
3701 
3702 /**
3703  * ice_aq_get_fec_stats - reads fec stats from phy
3704  * @hw: pointer to the HW struct
3705  * @pcs_quad: represents pcsquad of user input serdes
3706  * @pcs_port: represents the pcs port number part of above pcs quad
3707  * @fec_type: represents FEC stats type
3708  * @output: pointer to the caller-supplied buffer to return requested fec stats
3709  *
3710  * Return: non-zero status on error and 0 on success.
3711  */
3712 int ice_aq_get_fec_stats(struct ice_hw *hw, u16 pcs_quad, u16 pcs_port,
3713 			 enum ice_fec_stats_types fec_type, u32 *output)
3714 {
3715 	u16 flag = (LIBIE_AQ_FLAG_RD | LIBIE_AQ_FLAG_BUF | LIBIE_AQ_FLAG_SI);
3716 	struct ice_sbq_msg_input msg = {};
3717 	u32 receiver_id, reg_offset;
3718 	int err;
3719 
3720 	if (pcs_port > 3)
3721 		return -EINVAL;
3722 
3723 	reg_offset = fec_reg[pcs_port][fec_type];
3724 
3725 	if (pcs_quad == 0)
3726 		receiver_id = FEC_RECEIVER_ID_PCS0;
3727 	else if (pcs_quad == 1)
3728 		receiver_id = FEC_RECEIVER_ID_PCS1;
3729 	else
3730 		return -EINVAL;
3731 
3732 	msg.msg_addr_low = lower_16_bits(reg_offset);
3733 	msg.msg_addr_high = receiver_id;
3734 	msg.opcode = ice_sbq_msg_rd;
3735 	msg.dest_dev = ice_sbq_dev_phy_0;
3736 
3737 	err = ice_sbq_rw_reg(hw, &msg, flag);
3738 	if (err)
3739 		return err;
3740 
3741 	*output = msg.data;
3742 	return 0;
3743 }
3744 
3745 /**
3746  * ice_cache_phy_user_req
3747  * @pi: port information structure
3748  * @cache_data: PHY logging data
3749  * @cache_mode: PHY logging mode
3750  *
3751  * Log the user request on (FC, FEC, SPEED) for later use.
3752  */
3753 static void
3754 ice_cache_phy_user_req(struct ice_port_info *pi,
3755 		       struct ice_phy_cache_mode_data cache_data,
3756 		       enum ice_phy_cache_mode cache_mode)
3757 {
3758 	if (!pi)
3759 		return;
3760 
3761 	switch (cache_mode) {
3762 	case ICE_FC_MODE:
3763 		pi->phy.curr_user_fc_req = cache_data.data.curr_user_fc_req;
3764 		break;
3765 	case ICE_SPEED_MODE:
3766 		pi->phy.curr_user_speed_req =
3767 			cache_data.data.curr_user_speed_req;
3768 		break;
3769 	case ICE_FEC_MODE:
3770 		pi->phy.curr_user_fec_req = cache_data.data.curr_user_fec_req;
3771 		break;
3772 	default:
3773 		break;
3774 	}
3775 }
3776 
3777 /**
3778  * ice_caps_to_fc_mode
3779  * @caps: PHY capabilities
3780  *
3781  * Convert PHY FC capabilities to ice FC mode
3782  */
3783 enum ice_fc_mode ice_caps_to_fc_mode(u8 caps)
3784 {
3785 	if (caps & ICE_AQC_PHY_EN_TX_LINK_PAUSE &&
3786 	    caps & ICE_AQC_PHY_EN_RX_LINK_PAUSE)
3787 		return ICE_FC_FULL;
3788 
3789 	if (caps & ICE_AQC_PHY_EN_TX_LINK_PAUSE)
3790 		return ICE_FC_TX_PAUSE;
3791 
3792 	if (caps & ICE_AQC_PHY_EN_RX_LINK_PAUSE)
3793 		return ICE_FC_RX_PAUSE;
3794 
3795 	return ICE_FC_NONE;
3796 }
3797 
3798 /**
3799  * ice_caps_to_fec_mode
3800  * @caps: PHY capabilities
3801  * @fec_options: Link FEC options
3802  *
3803  * Convert PHY FEC capabilities to ice FEC mode
3804  */
3805 enum ice_fec_mode ice_caps_to_fec_mode(u8 caps, u8 fec_options)
3806 {
3807 	if (caps & ICE_AQC_PHY_EN_AUTO_FEC)
3808 		return ICE_FEC_AUTO;
3809 
3810 	if (fec_options & (ICE_AQC_PHY_FEC_10G_KR_40G_KR4_EN |
3811 			   ICE_AQC_PHY_FEC_10G_KR_40G_KR4_REQ |
3812 			   ICE_AQC_PHY_FEC_25G_KR_CLAUSE74_EN |
3813 			   ICE_AQC_PHY_FEC_25G_KR_REQ))
3814 		return ICE_FEC_BASER;
3815 
3816 	if (fec_options & (ICE_AQC_PHY_FEC_25G_RS_528_REQ |
3817 			   ICE_AQC_PHY_FEC_25G_RS_544_REQ |
3818 			   ICE_AQC_PHY_FEC_25G_RS_CLAUSE91_EN))
3819 		return ICE_FEC_RS;
3820 
3821 	return ICE_FEC_NONE;
3822 }
3823 
3824 /**
3825  * ice_cfg_phy_fc - Configure PHY FC data based on FC mode
3826  * @pi: port information structure
3827  * @cfg: PHY configuration data to set FC mode
3828  * @req_mode: FC mode to configure
3829  */
3830 int
3831 ice_cfg_phy_fc(struct ice_port_info *pi, struct ice_aqc_set_phy_cfg_data *cfg,
3832 	       enum ice_fc_mode req_mode)
3833 {
3834 	struct ice_phy_cache_mode_data cache_data;
3835 	u8 pause_mask = 0x0;
3836 
3837 	if (!pi || !cfg)
3838 		return -EINVAL;
3839 
3840 	switch (req_mode) {
3841 	case ICE_FC_FULL:
3842 		pause_mask |= ICE_AQC_PHY_EN_TX_LINK_PAUSE;
3843 		pause_mask |= ICE_AQC_PHY_EN_RX_LINK_PAUSE;
3844 		break;
3845 	case ICE_FC_RX_PAUSE:
3846 		pause_mask |= ICE_AQC_PHY_EN_RX_LINK_PAUSE;
3847 		break;
3848 	case ICE_FC_TX_PAUSE:
3849 		pause_mask |= ICE_AQC_PHY_EN_TX_LINK_PAUSE;
3850 		break;
3851 	default:
3852 		break;
3853 	}
3854 
3855 	/* clear the old pause settings */
3856 	cfg->caps &= ~(ICE_AQC_PHY_EN_TX_LINK_PAUSE |
3857 		ICE_AQC_PHY_EN_RX_LINK_PAUSE);
3858 
3859 	/* set the new capabilities */
3860 	cfg->caps |= pause_mask;
3861 
3862 	/* Cache user FC request */
3863 	cache_data.data.curr_user_fc_req = req_mode;
3864 	ice_cache_phy_user_req(pi, cache_data, ICE_FC_MODE);
3865 
3866 	return 0;
3867 }
3868 
3869 /**
3870  * ice_set_fc
3871  * @pi: port information structure
3872  * @aq_failures: pointer to status code, specific to ice_set_fc routine
3873  * @ena_auto_link_update: enable automatic link update
3874  *
3875  * Set the requested flow control mode.
3876  */
3877 int
3878 ice_set_fc(struct ice_port_info *pi, u8 *aq_failures, bool ena_auto_link_update)
3879 {
3880 	struct ice_aqc_get_phy_caps_data *pcaps __free(kfree) = NULL;
3881 	struct ice_aqc_set_phy_cfg_data cfg = { 0 };
3882 	struct ice_hw *hw;
3883 	int status;
3884 
3885 	if (!pi || !aq_failures)
3886 		return -EINVAL;
3887 
3888 	hw = pi->hw;
3889 
3890 	pcaps = kzalloc_obj(*pcaps);
3891 	if (!pcaps)
3892 		return -ENOMEM;
3893 
3894 	/* Get the current PHY config */
3895 	status = ice_aq_get_phy_caps(pi, false, ICE_AQC_REPORT_ACTIVE_CFG,
3896 				     pcaps, NULL);
3897 	if (status) {
3898 		*aq_failures = ICE_SET_FC_AQ_FAIL_GET;
3899 		goto out;
3900 	}
3901 
3902 	ice_copy_phy_caps_to_cfg(pi, pcaps, &cfg);
3903 
3904 	/* Configure the set PHY data */
3905 	status = ice_cfg_phy_fc(pi, &cfg, pi->fc.req_mode);
3906 	if (status)
3907 		goto out;
3908 
3909 	/* If the capabilities have changed, then set the new config */
3910 	if (cfg.caps != pcaps->caps) {
3911 		int retry_count, retry_max = 10;
3912 
3913 		/* Auto restart link so settings take effect */
3914 		if (ena_auto_link_update)
3915 			cfg.caps |= ICE_AQ_PHY_ENA_AUTO_LINK_UPDT;
3916 
3917 		status = ice_aq_set_phy_cfg(hw, pi, &cfg, NULL);
3918 		if (status) {
3919 			*aq_failures = ICE_SET_FC_AQ_FAIL_SET;
3920 			goto out;
3921 		}
3922 
3923 		/* Update the link info
3924 		 * It sometimes takes a really long time for link to
3925 		 * come back from the atomic reset. Thus, we wait a
3926 		 * little bit.
3927 		 */
3928 		for (retry_count = 0; retry_count < retry_max; retry_count++) {
3929 			status = ice_update_link_info(pi);
3930 
3931 			if (!status)
3932 				break;
3933 
3934 			mdelay(100);
3935 		}
3936 
3937 		if (status)
3938 			*aq_failures = ICE_SET_FC_AQ_FAIL_UPDATE;
3939 	}
3940 
3941 out:
3942 	return status;
3943 }
3944 
3945 /**
3946  * ice_phy_caps_equals_cfg
3947  * @phy_caps: PHY capabilities
3948  * @phy_cfg: PHY configuration
3949  *
3950  * Helper function to determine if PHY capabilities matches PHY
3951  * configuration
3952  */
3953 bool
3954 ice_phy_caps_equals_cfg(struct ice_aqc_get_phy_caps_data *phy_caps,
3955 			struct ice_aqc_set_phy_cfg_data *phy_cfg)
3956 {
3957 	u8 caps_mask, cfg_mask;
3958 
3959 	if (!phy_caps || !phy_cfg)
3960 		return false;
3961 
3962 	/* These bits are not common between capabilities and configuration.
3963 	 * Do not use them to determine equality.
3964 	 */
3965 	caps_mask = ICE_AQC_PHY_CAPS_MASK & ~(ICE_AQC_PHY_AN_MODE |
3966 					      ICE_AQC_GET_PHY_EN_MOD_QUAL);
3967 	cfg_mask = ICE_AQ_PHY_ENA_VALID_MASK & ~ICE_AQ_PHY_ENA_AUTO_LINK_UPDT;
3968 
3969 	if (phy_caps->phy_type_low != phy_cfg->phy_type_low ||
3970 	    phy_caps->phy_type_high != phy_cfg->phy_type_high ||
3971 	    ((phy_caps->caps & caps_mask) != (phy_cfg->caps & cfg_mask)) ||
3972 	    phy_caps->low_power_ctrl_an != phy_cfg->low_power_ctrl_an ||
3973 	    phy_caps->eee_cap != phy_cfg->eee_cap ||
3974 	    phy_caps->eeer_value != phy_cfg->eeer_value ||
3975 	    phy_caps->link_fec_options != phy_cfg->link_fec_opt)
3976 		return false;
3977 
3978 	return true;
3979 }
3980 
3981 /**
3982  * ice_copy_phy_caps_to_cfg - Copy PHY ability data to configuration data
3983  * @pi: port information structure
3984  * @caps: PHY ability structure to copy date from
3985  * @cfg: PHY configuration structure to copy data to
3986  *
3987  * Helper function to copy AQC PHY get ability data to PHY set configuration
3988  * data structure
3989  */
3990 void
3991 ice_copy_phy_caps_to_cfg(struct ice_port_info *pi,
3992 			 struct ice_aqc_get_phy_caps_data *caps,
3993 			 struct ice_aqc_set_phy_cfg_data *cfg)
3994 {
3995 	if (!pi || !caps || !cfg)
3996 		return;
3997 
3998 	memset(cfg, 0, sizeof(*cfg));
3999 	cfg->phy_type_low = caps->phy_type_low;
4000 	cfg->phy_type_high = caps->phy_type_high;
4001 	cfg->caps = caps->caps;
4002 	cfg->low_power_ctrl_an = caps->low_power_ctrl_an;
4003 	cfg->eee_cap = caps->eee_cap;
4004 	cfg->eeer_value = caps->eeer_value;
4005 	cfg->link_fec_opt = caps->link_fec_options;
4006 	cfg->module_compliance_enforcement =
4007 		caps->module_compliance_enforcement;
4008 }
4009 
4010 /**
4011  * ice_cfg_phy_fec - Configure PHY FEC data based on FEC mode
4012  * @pi: port information structure
4013  * @cfg: PHY configuration data to set FEC mode
4014  * @fec: FEC mode to configure
4015  */
4016 int
4017 ice_cfg_phy_fec(struct ice_port_info *pi, struct ice_aqc_set_phy_cfg_data *cfg,
4018 		enum ice_fec_mode fec)
4019 {
4020 	struct ice_aqc_get_phy_caps_data *pcaps __free(kfree) = NULL;
4021 	struct ice_hw *hw;
4022 	int status;
4023 
4024 	if (!pi || !cfg)
4025 		return -EINVAL;
4026 
4027 	hw = pi->hw;
4028 
4029 	pcaps = kzalloc_obj(*pcaps);
4030 	if (!pcaps)
4031 		return -ENOMEM;
4032 
4033 	status = ice_aq_get_phy_caps(pi, false,
4034 				     (ice_fw_supports_report_dflt_cfg(hw) ?
4035 				      ICE_AQC_REPORT_DFLT_CFG :
4036 				      ICE_AQC_REPORT_TOPO_CAP_MEDIA), pcaps, NULL);
4037 	if (status)
4038 		goto out;
4039 
4040 	cfg->caps |= pcaps->caps & ICE_AQC_PHY_EN_AUTO_FEC;
4041 	cfg->link_fec_opt = pcaps->link_fec_options;
4042 
4043 	switch (fec) {
4044 	case ICE_FEC_BASER:
4045 		/* Clear RS bits, and AND BASE-R ability
4046 		 * bits and OR request bits.
4047 		 */
4048 		cfg->link_fec_opt &= ICE_AQC_PHY_FEC_10G_KR_40G_KR4_EN |
4049 			ICE_AQC_PHY_FEC_25G_KR_CLAUSE74_EN;
4050 		cfg->link_fec_opt |= ICE_AQC_PHY_FEC_10G_KR_40G_KR4_REQ |
4051 			ICE_AQC_PHY_FEC_25G_KR_REQ;
4052 		break;
4053 	case ICE_FEC_RS:
4054 		/* Clear BASE-R bits, and AND RS ability
4055 		 * bits and OR request bits.
4056 		 */
4057 		cfg->link_fec_opt &= ICE_AQC_PHY_FEC_25G_RS_CLAUSE91_EN;
4058 		cfg->link_fec_opt |= ICE_AQC_PHY_FEC_25G_RS_528_REQ |
4059 			ICE_AQC_PHY_FEC_25G_RS_544_REQ;
4060 		break;
4061 	case ICE_FEC_NONE:
4062 		/* Clear all FEC option bits. */
4063 		cfg->link_fec_opt &= ~ICE_AQC_PHY_FEC_MASK;
4064 		break;
4065 	case ICE_FEC_AUTO:
4066 		/* AND auto FEC bit, and all caps bits. */
4067 		cfg->caps &= ICE_AQC_PHY_CAPS_MASK;
4068 		cfg->link_fec_opt |= pcaps->link_fec_options;
4069 		break;
4070 	default:
4071 		status = -EINVAL;
4072 		break;
4073 	}
4074 
4075 	if (fec == ICE_FEC_AUTO && ice_fw_supports_link_override(hw) &&
4076 	    !ice_fw_supports_report_dflt_cfg(hw)) {
4077 		struct ice_link_default_override_tlv tlv = { 0 };
4078 
4079 		status = ice_get_link_default_override(&tlv, pi);
4080 		if (status)
4081 			goto out;
4082 
4083 		if (!(tlv.options & ICE_LINK_OVERRIDE_STRICT_MODE) &&
4084 		    (tlv.options & ICE_LINK_OVERRIDE_EN))
4085 			cfg->link_fec_opt = tlv.fec_options;
4086 	}
4087 
4088 out:
4089 	return status;
4090 }
4091 
4092 /**
4093  * ice_get_link_status - get status of the HW network link
4094  * @pi: port information structure
4095  * @link_up: pointer to bool (true/false = linkup/linkdown)
4096  *
4097  * Variable link_up is true if link is up, false if link is down.
4098  * The variable link_up is invalid if status is non zero. As a
4099  * result of this call, link status reporting becomes enabled
4100  */
4101 int ice_get_link_status(struct ice_port_info *pi, bool *link_up)
4102 {
4103 	struct ice_phy_info *phy_info;
4104 	int status = 0;
4105 
4106 	if (!pi || !link_up)
4107 		return -EINVAL;
4108 
4109 	phy_info = &pi->phy;
4110 
4111 	if (phy_info->get_link_info) {
4112 		status = ice_update_link_info(pi);
4113 
4114 		if (status)
4115 			ice_debug(pi->hw, ICE_DBG_LINK, "get link status error, status = %d\n",
4116 				  status);
4117 	}
4118 
4119 	*link_up = phy_info->link_info.link_info & ICE_AQ_LINK_UP;
4120 
4121 	return status;
4122 }
4123 
4124 /**
4125  * ice_aq_set_link_restart_an
4126  * @pi: pointer to the port information structure
4127  * @ena_link: if true: enable link, if false: disable link
4128  * @cd: pointer to command details structure or NULL
4129  * @refclk: the new TX reference clock, 0 if no change
4130  *
4131  * Sets up the link and restarts the Auto-Negotiation over the link.
4132  */
4133 int
4134 ice_aq_set_link_restart_an(struct ice_port_info *pi, bool ena_link,
4135 			   struct ice_sq_cd *cd, u8 refclk)
4136 {
4137 	struct ice_aqc_restart_an *cmd;
4138 	struct libie_aq_desc desc;
4139 
4140 	cmd = libie_aq_raw(&desc);
4141 
4142 	ice_fill_dflt_direct_cmd_desc(&desc, ice_aqc_opc_restart_an);
4143 
4144 	cmd->cmd_flags = ICE_AQC_RESTART_AN_LINK_RESTART;
4145 	cmd->lport_num = pi->lport;
4146 	if (ena_link)
4147 		cmd->cmd_flags |= ICE_AQC_RESTART_AN_LINK_ENABLE;
4148 	else
4149 		cmd->cmd_flags &= ~ICE_AQC_RESTART_AN_LINK_ENABLE;
4150 
4151 	cmd->cmd_flags |= FIELD_PREP(ICE_AQC_RESTART_AN_REFCLK_M, refclk);
4152 
4153 	return ice_aq_send_cmd(pi->hw, &desc, NULL, 0, cd);
4154 }
4155 
4156 /**
4157  * ice_aq_set_event_mask
4158  * @hw: pointer to the HW struct
4159  * @port_num: port number of the physical function
4160  * @mask: event mask to be set
4161  * @cd: pointer to command details structure or NULL
4162  *
4163  * Set event mask (0x0613)
4164  */
4165 int
4166 ice_aq_set_event_mask(struct ice_hw *hw, u8 port_num, u16 mask,
4167 		      struct ice_sq_cd *cd)
4168 {
4169 	struct ice_aqc_set_event_mask *cmd;
4170 	struct libie_aq_desc desc;
4171 
4172 	cmd = libie_aq_raw(&desc);
4173 
4174 	ice_fill_dflt_direct_cmd_desc(&desc, ice_aqc_opc_set_event_mask);
4175 
4176 	cmd->lport_num = port_num;
4177 
4178 	cmd->event_mask = cpu_to_le16(mask);
4179 	return ice_aq_send_cmd(hw, &desc, NULL, 0, cd);
4180 }
4181 
4182 /**
4183  * ice_aq_set_mac_loopback
4184  * @hw: pointer to the HW struct
4185  * @ena_lpbk: Enable or Disable loopback
4186  * @cd: pointer to command details structure or NULL
4187  *
4188  * Enable/disable loopback on a given port
4189  */
4190 int
4191 ice_aq_set_mac_loopback(struct ice_hw *hw, bool ena_lpbk, struct ice_sq_cd *cd)
4192 {
4193 	struct ice_aqc_set_mac_lb *cmd;
4194 	struct libie_aq_desc desc;
4195 
4196 	cmd = libie_aq_raw(&desc);
4197 
4198 	ice_fill_dflt_direct_cmd_desc(&desc, ice_aqc_opc_set_mac_lb);
4199 	if (ena_lpbk)
4200 		cmd->lb_mode = ICE_AQ_MAC_LB_EN;
4201 
4202 	return ice_aq_send_cmd(hw, &desc, NULL, 0, cd);
4203 }
4204 
4205 /**
4206  * ice_aq_set_port_id_led
4207  * @pi: pointer to the port information
4208  * @is_orig_mode: is this LED set to original mode (by the net-list)
4209  * @cd: pointer to command details structure or NULL
4210  *
4211  * Set LED value for the given port (0x06e9)
4212  */
4213 int
4214 ice_aq_set_port_id_led(struct ice_port_info *pi, bool is_orig_mode,
4215 		       struct ice_sq_cd *cd)
4216 {
4217 	struct ice_aqc_set_port_id_led *cmd;
4218 	struct ice_hw *hw = pi->hw;
4219 	struct libie_aq_desc desc;
4220 
4221 	cmd = libie_aq_raw(&desc);
4222 
4223 	ice_fill_dflt_direct_cmd_desc(&desc, ice_aqc_opc_set_port_id_led);
4224 
4225 	if (is_orig_mode)
4226 		cmd->ident_mode = ICE_AQC_PORT_IDENT_LED_ORIG;
4227 	else
4228 		cmd->ident_mode = ICE_AQC_PORT_IDENT_LED_BLINK;
4229 
4230 	return ice_aq_send_cmd(hw, &desc, NULL, 0, cd);
4231 }
4232 
4233 /**
4234  * ice_aq_get_port_options
4235  * @hw: pointer to the HW struct
4236  * @options: buffer for the resultant port options
4237  * @option_count: input - size of the buffer in port options structures,
4238  *                output - number of returned port options
4239  * @lport: logical port to call the command with (optional)
4240  * @lport_valid: when false, FW uses port owned by the PF instead of lport,
4241  *               when PF owns more than 1 port it must be true
4242  * @active_option_idx: index of active port option in returned buffer
4243  * @active_option_valid: active option in returned buffer is valid
4244  * @pending_option_idx: index of pending port option in returned buffer
4245  * @pending_option_valid: pending option in returned buffer is valid
4246  *
4247  * Calls Get Port Options AQC (0x06ea) and verifies result.
4248  */
4249 int
4250 ice_aq_get_port_options(struct ice_hw *hw,
4251 			struct ice_aqc_get_port_options_elem *options,
4252 			u8 *option_count, u8 lport, bool lport_valid,
4253 			u8 *active_option_idx, bool *active_option_valid,
4254 			u8 *pending_option_idx, bool *pending_option_valid)
4255 {
4256 	struct ice_aqc_get_port_options *cmd;
4257 	struct libie_aq_desc desc;
4258 	int status;
4259 	u8 i;
4260 
4261 	/* options buffer shall be able to hold max returned options */
4262 	if (*option_count < ICE_AQC_PORT_OPT_COUNT_M)
4263 		return -EINVAL;
4264 
4265 	cmd = libie_aq_raw(&desc);
4266 	ice_fill_dflt_direct_cmd_desc(&desc, ice_aqc_opc_get_port_options);
4267 
4268 	if (lport_valid)
4269 		cmd->lport_num = lport;
4270 	cmd->lport_num_valid = lport_valid;
4271 
4272 	status = ice_aq_send_cmd(hw, &desc, options,
4273 				 *option_count * sizeof(*options), NULL);
4274 	if (status)
4275 		return status;
4276 
4277 	/* verify direct FW response & set output parameters */
4278 	*option_count = FIELD_GET(ICE_AQC_PORT_OPT_COUNT_M,
4279 				  cmd->port_options_count);
4280 	ice_debug(hw, ICE_DBG_PHY, "options: %x\n", *option_count);
4281 	*active_option_valid = FIELD_GET(ICE_AQC_PORT_OPT_VALID,
4282 					 cmd->port_options);
4283 	if (*active_option_valid) {
4284 		*active_option_idx = FIELD_GET(ICE_AQC_PORT_OPT_ACTIVE_M,
4285 					       cmd->port_options);
4286 		if (*active_option_idx > (*option_count - 1))
4287 			return -EIO;
4288 		ice_debug(hw, ICE_DBG_PHY, "active idx: %x\n",
4289 			  *active_option_idx);
4290 	}
4291 
4292 	*pending_option_valid = FIELD_GET(ICE_AQC_PENDING_PORT_OPT_VALID,
4293 					  cmd->pending_port_option_status);
4294 	if (*pending_option_valid) {
4295 		*pending_option_idx = FIELD_GET(ICE_AQC_PENDING_PORT_OPT_IDX_M,
4296 						cmd->pending_port_option_status);
4297 		if (*pending_option_idx > (*option_count - 1))
4298 			return -EIO;
4299 		ice_debug(hw, ICE_DBG_PHY, "pending idx: %x\n",
4300 			  *pending_option_idx);
4301 	}
4302 
4303 	/* mask output options fields */
4304 	for (i = 0; i < *option_count; i++) {
4305 		options[i].pmd = FIELD_GET(ICE_AQC_PORT_OPT_PMD_COUNT_M,
4306 					   options[i].pmd);
4307 		options[i].max_lane_speed = FIELD_GET(ICE_AQC_PORT_OPT_MAX_LANE_M,
4308 						      options[i].max_lane_speed);
4309 		ice_debug(hw, ICE_DBG_PHY, "pmds: %x max speed: %x\n",
4310 			  options[i].pmd, options[i].max_lane_speed);
4311 	}
4312 
4313 	return 0;
4314 }
4315 
4316 /**
4317  * ice_aq_set_port_option
4318  * @hw: pointer to the HW struct
4319  * @lport: logical port to call the command with
4320  * @lport_valid: when false, FW uses port owned by the PF instead of lport,
4321  *               when PF owns more than 1 port it must be true
4322  * @new_option: new port option to be written
4323  *
4324  * Calls Set Port Options AQC (0x06eb).
4325  */
4326 int
4327 ice_aq_set_port_option(struct ice_hw *hw, u8 lport, u8 lport_valid,
4328 		       u8 new_option)
4329 {
4330 	struct ice_aqc_set_port_option *cmd;
4331 	struct libie_aq_desc desc;
4332 
4333 	if (new_option > ICE_AQC_PORT_OPT_COUNT_M)
4334 		return -EINVAL;
4335 
4336 	cmd = libie_aq_raw(&desc);
4337 	ice_fill_dflt_direct_cmd_desc(&desc, ice_aqc_opc_set_port_option);
4338 
4339 	if (lport_valid)
4340 		cmd->lport_num = lport;
4341 
4342 	cmd->lport_num_valid = lport_valid;
4343 	cmd->selected_port_option = new_option;
4344 
4345 	return ice_aq_send_cmd(hw, &desc, NULL, 0, NULL);
4346 }
4347 
4348 /**
4349  * ice_get_phy_lane_number - Get PHY lane number for current adapter
4350  * @hw: pointer to the hw struct
4351  *
4352  * Return: PHY lane number on success, negative error code otherwise.
4353  */
4354 int ice_get_phy_lane_number(struct ice_hw *hw)
4355 {
4356 	struct ice_aqc_get_port_options_elem *options;
4357 	unsigned int lport = 0;
4358 	unsigned int lane;
4359 	int err;
4360 
4361 	/* E82X does not have sequential IDs, lane number is PF ID.
4362 	 * For E825 device, the exception is the variant with external
4363 	 * PHY (0x579F), in which there is also 1:1 pf_id -> lane_number
4364 	 * mapping.
4365 	 */
4366 	if (hw->mac_type == ICE_MAC_GENERIC ||
4367 	    hw->device_id == ICE_DEV_ID_E825C_SGMII)
4368 		return hw->pf_id;
4369 
4370 	options = kzalloc_objs(*options, ICE_AQC_PORT_OPT_MAX);
4371 	if (!options)
4372 		return -ENOMEM;
4373 
4374 	for (lane = 0; lane < ICE_MAX_PORT_PER_PCI_DEV; lane++) {
4375 		u8 options_count = ICE_AQC_PORT_OPT_MAX;
4376 		u8 speed, active_idx, pending_idx;
4377 		bool active_valid, pending_valid;
4378 
4379 		err = ice_aq_get_port_options(hw, options, &options_count, lane,
4380 					      true, &active_idx, &active_valid,
4381 					      &pending_idx, &pending_valid);
4382 		if (err)
4383 			goto err;
4384 
4385 		if (!active_valid)
4386 			continue;
4387 
4388 		speed = options[active_idx].max_lane_speed;
4389 		/* If we don't get speed for this lane, it's unoccupied */
4390 		if (speed > ICE_AQC_PORT_OPT_MAX_LANE_40G)
4391 			continue;
4392 
4393 		if (hw->pf_id == lport) {
4394 			if (hw->mac_type == ICE_MAC_GENERIC_3K_E825 &&
4395 			    ice_is_dual(hw) && !ice_is_primary(hw))
4396 				lane += ICE_PORTS_PER_QUAD;
4397 			kfree(options);
4398 			return lane;
4399 		}
4400 		lport++;
4401 	}
4402 
4403 	/* PHY lane not found */
4404 	err = -ENXIO;
4405 err:
4406 	kfree(options);
4407 	return err;
4408 }
4409 
4410 /**
4411  * ice_aq_sff_eeprom
4412  * @hw: pointer to the HW struct
4413  * @lport: bits [7:0] = logical port, bit [8] = logical port valid
4414  * @bus_addr: I2C bus address of the eeprom (typically 0xA0, 0=topo default)
4415  * @mem_addr: I2C offset. lower 8 bits for address, 8 upper bits zero padding.
4416  * @page: QSFP page
4417  * @set_page: set or ignore the page
4418  * @data: pointer to data buffer to be read/written to the I2C device.
4419  * @length: 1-16 for read, 1 for write.
4420  * @write: 0 read, 1 for write.
4421  * @cd: pointer to command details structure or NULL
4422  *
4423  * Read/Write SFF EEPROM (0x06EE)
4424  */
4425 int
4426 ice_aq_sff_eeprom(struct ice_hw *hw, u16 lport, u8 bus_addr,
4427 		  u16 mem_addr, u8 page, u8 set_page, u8 *data, u8 length,
4428 		  bool write, struct ice_sq_cd *cd)
4429 {
4430 	struct ice_aqc_sff_eeprom *cmd;
4431 	struct libie_aq_desc desc;
4432 	u16 i2c_bus_addr;
4433 	int status;
4434 
4435 	if (!data || (mem_addr & 0xff00))
4436 		return -EINVAL;
4437 
4438 	ice_fill_dflt_direct_cmd_desc(&desc, ice_aqc_opc_sff_eeprom);
4439 	cmd = libie_aq_raw(&desc);
4440 	desc.flags = cpu_to_le16(LIBIE_AQ_FLAG_RD);
4441 	cmd->lport_num = (u8)(lport & 0xff);
4442 	cmd->lport_num_valid = (u8)((lport >> 8) & 0x01);
4443 	i2c_bus_addr = FIELD_PREP(ICE_AQC_SFF_I2CBUS_7BIT_M, bus_addr >> 1) |
4444 		       FIELD_PREP(ICE_AQC_SFF_SET_EEPROM_PAGE_M, set_page);
4445 	if (write)
4446 		i2c_bus_addr |= ICE_AQC_SFF_IS_WRITE;
4447 	cmd->i2c_bus_addr = cpu_to_le16(i2c_bus_addr);
4448 	cmd->i2c_mem_addr = cpu_to_le16(mem_addr & 0xff);
4449 	cmd->eeprom_page = le16_encode_bits(page, ICE_AQC_SFF_EEPROM_PAGE_M);
4450 
4451 	status = ice_aq_send_cmd(hw, &desc, data, length, cd);
4452 	return status;
4453 }
4454 
4455 static enum ice_lut_size ice_lut_type_to_size(enum ice_lut_type type)
4456 {
4457 	switch (type) {
4458 	case ICE_LUT_VSI:
4459 		return ICE_LUT_VSI_SIZE;
4460 	case ICE_LUT_GLOBAL:
4461 		return ICE_LUT_GLOBAL_SIZE;
4462 	case ICE_LUT_PF:
4463 		return ICE_LUT_PF_SIZE;
4464 	}
4465 	WARN_ONCE(1, "incorrect type passed");
4466 	return ICE_LUT_VSI_SIZE;
4467 }
4468 
4469 static enum ice_aqc_lut_flags ice_lut_size_to_flag(enum ice_lut_size size)
4470 {
4471 	switch (size) {
4472 	case ICE_LUT_VSI_SIZE:
4473 		return ICE_AQC_LUT_SIZE_SMALL;
4474 	case ICE_LUT_GLOBAL_SIZE:
4475 		return ICE_AQC_LUT_SIZE_512;
4476 	case ICE_LUT_PF_SIZE:
4477 		return ICE_AQC_LUT_SIZE_2K;
4478 	}
4479 	WARN_ONCE(1, "incorrect size passed");
4480 	return 0;
4481 }
4482 
4483 /**
4484  * __ice_aq_get_set_rss_lut
4485  * @hw: pointer to the hardware structure
4486  * @params: RSS LUT parameters
4487  * @set: set true to set the table, false to get the table
4488  *
4489  * Internal function to get (0x0B05) or set (0x0B03) RSS look up table
4490  */
4491 static int
4492 __ice_aq_get_set_rss_lut(struct ice_hw *hw,
4493 			 struct ice_aq_get_set_rss_lut_params *params, bool set)
4494 {
4495 	u16 opcode, vsi_id, vsi_handle = params->vsi_handle, glob_lut_idx = 0;
4496 	enum ice_lut_type lut_type = params->lut_type;
4497 	struct ice_aqc_get_set_rss_lut *desc_params;
4498 	enum ice_aqc_lut_flags flags;
4499 	enum ice_lut_size lut_size;
4500 	struct libie_aq_desc desc;
4501 	u8 *lut = params->lut;
4502 
4503 
4504 	if (!lut || !ice_is_vsi_valid(hw, vsi_handle))
4505 		return -EINVAL;
4506 
4507 	lut_size = ice_lut_type_to_size(lut_type);
4508 	if (lut_size > params->lut_size)
4509 		return -EINVAL;
4510 	else if (set && lut_size != params->lut_size)
4511 		return -EINVAL;
4512 
4513 	opcode = set ? ice_aqc_opc_set_rss_lut : ice_aqc_opc_get_rss_lut;
4514 	ice_fill_dflt_direct_cmd_desc(&desc, opcode);
4515 	if (set)
4516 		desc.flags |= cpu_to_le16(LIBIE_AQ_FLAG_RD);
4517 
4518 	desc_params = libie_aq_raw(&desc);
4519 	vsi_id = ice_get_hw_vsi_num(hw, vsi_handle);
4520 	desc_params->vsi_id = cpu_to_le16(vsi_id | ICE_AQC_RSS_VSI_VALID);
4521 
4522 	if (lut_type == ICE_LUT_GLOBAL)
4523 		glob_lut_idx = FIELD_PREP(ICE_AQC_LUT_GLOBAL_IDX,
4524 					  params->global_lut_id);
4525 
4526 	flags = lut_type | glob_lut_idx | ice_lut_size_to_flag(lut_size);
4527 	desc_params->flags = cpu_to_le16(flags);
4528 
4529 	return ice_aq_send_cmd(hw, &desc, lut, lut_size, NULL);
4530 }
4531 
4532 /**
4533  * ice_aq_get_rss_lut
4534  * @hw: pointer to the hardware structure
4535  * @get_params: RSS LUT parameters used to specify which RSS LUT to get
4536  *
4537  * get the RSS lookup table, PF or VSI type
4538  */
4539 int
4540 ice_aq_get_rss_lut(struct ice_hw *hw, struct ice_aq_get_set_rss_lut_params *get_params)
4541 {
4542 	return __ice_aq_get_set_rss_lut(hw, get_params, false);
4543 }
4544 
4545 /**
4546  * ice_aq_set_rss_lut
4547  * @hw: pointer to the hardware structure
4548  * @set_params: RSS LUT parameters used to specify how to set the RSS LUT
4549  *
4550  * set the RSS lookup table, PF or VSI type
4551  */
4552 int
4553 ice_aq_set_rss_lut(struct ice_hw *hw, struct ice_aq_get_set_rss_lut_params *set_params)
4554 {
4555 	return __ice_aq_get_set_rss_lut(hw, set_params, true);
4556 }
4557 
4558 /**
4559  * __ice_aq_get_set_rss_key
4560  * @hw: pointer to the HW struct
4561  * @vsi_id: VSI FW index
4562  * @key: pointer to key info struct
4563  * @set: set true to set the key, false to get the key
4564  *
4565  * get (0x0B04) or set (0x0B02) the RSS key per VSI
4566  */
4567 static int
4568 __ice_aq_get_set_rss_key(struct ice_hw *hw, u16 vsi_id,
4569 			 struct ice_aqc_get_set_rss_keys *key, bool set)
4570 {
4571 	struct ice_aqc_get_set_rss_key *desc_params;
4572 	u16 key_size = sizeof(*key);
4573 	struct libie_aq_desc desc;
4574 
4575 	if (set) {
4576 		ice_fill_dflt_direct_cmd_desc(&desc, ice_aqc_opc_set_rss_key);
4577 		desc.flags |= cpu_to_le16(LIBIE_AQ_FLAG_RD);
4578 	} else {
4579 		ice_fill_dflt_direct_cmd_desc(&desc, ice_aqc_opc_get_rss_key);
4580 	}
4581 
4582 	desc_params = libie_aq_raw(&desc);
4583 	desc_params->vsi_id = cpu_to_le16(vsi_id | ICE_AQC_RSS_VSI_VALID);
4584 
4585 	return ice_aq_send_cmd(hw, &desc, key, key_size, NULL);
4586 }
4587 
4588 /**
4589  * ice_aq_get_rss_key
4590  * @hw: pointer to the HW struct
4591  * @vsi_handle: software VSI handle
4592  * @key: pointer to key info struct
4593  *
4594  * get the RSS key per VSI
4595  */
4596 int
4597 ice_aq_get_rss_key(struct ice_hw *hw, u16 vsi_handle,
4598 		   struct ice_aqc_get_set_rss_keys *key)
4599 {
4600 	if (!ice_is_vsi_valid(hw, vsi_handle) || !key)
4601 		return -EINVAL;
4602 
4603 	return __ice_aq_get_set_rss_key(hw, ice_get_hw_vsi_num(hw, vsi_handle),
4604 					key, false);
4605 }
4606 
4607 /**
4608  * ice_aq_set_rss_key
4609  * @hw: pointer to the HW struct
4610  * @vsi_handle: software VSI handle
4611  * @keys: pointer to key info struct
4612  *
4613  * set the RSS key per VSI
4614  */
4615 int
4616 ice_aq_set_rss_key(struct ice_hw *hw, u16 vsi_handle,
4617 		   struct ice_aqc_get_set_rss_keys *keys)
4618 {
4619 	if (!ice_is_vsi_valid(hw, vsi_handle) || !keys)
4620 		return -EINVAL;
4621 
4622 	return __ice_aq_get_set_rss_key(hw, ice_get_hw_vsi_num(hw, vsi_handle),
4623 					keys, true);
4624 }
4625 
4626 /**
4627  * ice_aq_add_lan_txq
4628  * @hw: pointer to the hardware structure
4629  * @num_qgrps: Number of added queue groups
4630  * @qg_list: list of queue groups to be added
4631  * @buf_size: size of buffer for indirect command
4632  * @cd: pointer to command details structure or NULL
4633  *
4634  * Add Tx LAN queue (0x0C30)
4635  *
4636  * NOTE:
4637  * Prior to calling add Tx LAN queue:
4638  * Initialize the following as part of the Tx queue context:
4639  * Completion queue ID if the queue uses Completion queue, Quanta profile,
4640  * Cache profile and Packet shaper profile.
4641  *
4642  * After add Tx LAN queue AQ command is completed:
4643  * Interrupts should be associated with specific queues,
4644  * Association of Tx queue to Doorbell queue is not part of Add LAN Tx queue
4645  * flow.
4646  */
4647 static int
4648 ice_aq_add_lan_txq(struct ice_hw *hw, u8 num_qgrps,
4649 		   struct ice_aqc_add_tx_qgrp *qg_list, u16 buf_size,
4650 		   struct ice_sq_cd *cd)
4651 {
4652 	struct ice_aqc_add_tx_qgrp *list;
4653 	struct ice_aqc_add_txqs *cmd;
4654 	struct libie_aq_desc desc;
4655 	u16 i, sum_size = 0;
4656 
4657 	cmd = libie_aq_raw(&desc);
4658 
4659 	ice_fill_dflt_direct_cmd_desc(&desc, ice_aqc_opc_add_txqs);
4660 
4661 	if (!qg_list)
4662 		return -EINVAL;
4663 
4664 	if (num_qgrps > ICE_LAN_TXQ_MAX_QGRPS)
4665 		return -EINVAL;
4666 
4667 	for (i = 0, list = qg_list; i < num_qgrps; i++) {
4668 		sum_size += struct_size(list, txqs, list->num_txqs);
4669 		list = (struct ice_aqc_add_tx_qgrp *)(list->txqs +
4670 						      list->num_txqs);
4671 	}
4672 
4673 	if (buf_size != sum_size)
4674 		return -EINVAL;
4675 
4676 	desc.flags |= cpu_to_le16(LIBIE_AQ_FLAG_RD);
4677 
4678 	cmd->num_qgrps = num_qgrps;
4679 
4680 	return ice_aq_send_cmd(hw, &desc, qg_list, buf_size, cd);
4681 }
4682 
4683 /**
4684  * ice_aq_dis_lan_txq
4685  * @hw: pointer to the hardware structure
4686  * @num_qgrps: number of groups in the list
4687  * @qg_list: the list of groups to disable
4688  * @buf_size: the total size of the qg_list buffer in bytes
4689  * @rst_src: if called due to reset, specifies the reset source
4690  * @vmvf_num: the relative VM or VF number that is undergoing the reset
4691  * @cd: pointer to command details structure or NULL
4692  *
4693  * Disable LAN Tx queue (0x0C31)
4694  */
4695 static int
4696 ice_aq_dis_lan_txq(struct ice_hw *hw, u8 num_qgrps,
4697 		   struct ice_aqc_dis_txq_item *qg_list, u16 buf_size,
4698 		   enum ice_disq_rst_src rst_src, u16 vmvf_num,
4699 		   struct ice_sq_cd *cd)
4700 {
4701 	struct ice_aqc_dis_txq_item *item;
4702 	struct ice_aqc_dis_txqs *cmd;
4703 	struct libie_aq_desc desc;
4704 	u16 vmvf_and_timeout;
4705 	u16 i, sz = 0;
4706 	int status;
4707 
4708 	cmd = libie_aq_raw(&desc);
4709 	ice_fill_dflt_direct_cmd_desc(&desc, ice_aqc_opc_dis_txqs);
4710 
4711 	/* qg_list can be NULL only in VM/VF reset flow */
4712 	if (!qg_list && !rst_src)
4713 		return -EINVAL;
4714 
4715 	if (num_qgrps > ICE_LAN_TXQ_MAX_QGRPS)
4716 		return -EINVAL;
4717 
4718 	cmd->num_entries = num_qgrps;
4719 
4720 	vmvf_and_timeout = FIELD_PREP(ICE_AQC_Q_DIS_TIMEOUT_M, 5);
4721 
4722 	switch (rst_src) {
4723 	case ICE_VM_RESET:
4724 		cmd->cmd_type = ICE_AQC_Q_DIS_CMD_VM_RESET;
4725 		vmvf_and_timeout |= vmvf_num & ICE_AQC_Q_DIS_VMVF_NUM_M;
4726 		break;
4727 	case ICE_VF_RESET:
4728 		cmd->cmd_type = ICE_AQC_Q_DIS_CMD_VF_RESET;
4729 		/* In this case, FW expects vmvf_num to be absolute VF ID */
4730 		vmvf_and_timeout |= (vmvf_num + hw->func_caps.vf_base_id) &
4731 				    ICE_AQC_Q_DIS_VMVF_NUM_M;
4732 		break;
4733 	case ICE_NO_RESET:
4734 	default:
4735 		break;
4736 	}
4737 
4738 	cmd->vmvf_and_timeout = cpu_to_le16(vmvf_and_timeout);
4739 
4740 	/* flush pipe on time out */
4741 	cmd->cmd_type |= ICE_AQC_Q_DIS_CMD_FLUSH_PIPE;
4742 	/* If no queue group info, we are in a reset flow. Issue the AQ */
4743 	if (!qg_list)
4744 		goto do_aq;
4745 
4746 	/* set RD bit to indicate that command buffer is provided by the driver
4747 	 * and it needs to be read by the firmware
4748 	 */
4749 	desc.flags |= cpu_to_le16(LIBIE_AQ_FLAG_RD);
4750 
4751 	for (i = 0, item = qg_list; i < num_qgrps; i++) {
4752 		u16 item_size = struct_size(item, q_id, item->num_qs);
4753 
4754 		/* If the num of queues is even, add 2 bytes of padding */
4755 		if ((item->num_qs % 2) == 0)
4756 			item_size += 2;
4757 
4758 		sz += item_size;
4759 
4760 		item = (struct ice_aqc_dis_txq_item *)((u8 *)item + item_size);
4761 	}
4762 
4763 	if (buf_size != sz)
4764 		return -EINVAL;
4765 
4766 do_aq:
4767 	status = ice_aq_send_cmd(hw, &desc, qg_list, buf_size, cd);
4768 	if (status) {
4769 		if (!qg_list)
4770 			ice_debug(hw, ICE_DBG_SCHED, "VM%d disable failed %d\n",
4771 				  vmvf_num, hw->adminq.sq_last_status);
4772 		else
4773 			ice_debug(hw, ICE_DBG_SCHED, "disable queue %d failed %d\n",
4774 				  le16_to_cpu(qg_list[0].q_id[0]),
4775 				  hw->adminq.sq_last_status);
4776 	}
4777 	return status;
4778 }
4779 
4780 /**
4781  * ice_aq_cfg_lan_txq - send AQ command 0x0C32 to FW
4782  * @hw: pointer to the hardware structure
4783  * @buf: buffer for command
4784  * @buf_size: size of buffer in bytes
4785  * @num_qs: number of queues being configured
4786  * @oldport: origination lport
4787  * @newport: destination lport
4788  * @mode: cmd_type for move to use
4789  * @cd: pointer to command details structure or NULL
4790  *
4791  * Move/Configure LAN Tx queue (0x0C32)
4792  *
4793  * Return: Zero on success, associated error code on failure.
4794  */
4795 int
4796 ice_aq_cfg_lan_txq(struct ice_hw *hw, struct ice_aqc_cfg_txqs_buf *buf,
4797 		   u16 buf_size, u16 num_qs, u8 oldport, u8 newport,
4798 		   u8 mode, struct ice_sq_cd *cd)
4799 {
4800 	struct ice_aqc_cfg_txqs *cmd;
4801 	struct libie_aq_desc desc;
4802 	int status;
4803 
4804 	cmd = libie_aq_raw(&desc);
4805 	ice_fill_dflt_direct_cmd_desc(&desc, ice_aqc_opc_cfg_txqs);
4806 	desc.flags |= cpu_to_le16(LIBIE_AQ_FLAG_RD);
4807 
4808 	if (!buf)
4809 		return -EINVAL;
4810 
4811 	cmd->cmd_type = mode;
4812 	cmd->num_qs = num_qs;
4813 	cmd->port_num_chng = (oldport & ICE_AQC_Q_CFG_SRC_PRT_M);
4814 	cmd->port_num_chng |= FIELD_PREP(ICE_AQC_Q_CFG_DST_PRT_M, newport);
4815 	cmd->port_num_chng |= FIELD_PREP(ICE_AQC_Q_CFG_MODE_M,
4816 					 ICE_AQC_Q_CFG_MODE_KEEP_OWN);
4817 	cmd->time_out = FIELD_PREP(ICE_AQC_Q_CFG_TIMEOUT_M, 5);
4818 	cmd->blocked_cgds = 0;
4819 
4820 	status = ice_aq_send_cmd(hw, &desc, buf, buf_size, cd);
4821 	if (status)
4822 		ice_debug(hw, ICE_DBG_SCHED, "Failed to reconfigure nodes %d\n",
4823 			  hw->adminq.sq_last_status);
4824 	return status;
4825 }
4826 
4827 /**
4828  * ice_aq_add_rdma_qsets
4829  * @hw: pointer to the hardware structure
4830  * @num_qset_grps: Number of RDMA Qset groups
4831  * @qset_list: list of Qset groups to be added
4832  * @buf_size: size of buffer for indirect command
4833  * @cd: pointer to command details structure or NULL
4834  *
4835  * Add Tx RDMA Qsets (0x0C33)
4836  */
4837 static int
4838 ice_aq_add_rdma_qsets(struct ice_hw *hw, u8 num_qset_grps,
4839 		      struct ice_aqc_add_rdma_qset_data *qset_list,
4840 		      u16 buf_size, struct ice_sq_cd *cd)
4841 {
4842 	struct ice_aqc_add_rdma_qset_data *list;
4843 	struct ice_aqc_add_rdma_qset *cmd;
4844 	struct libie_aq_desc desc;
4845 	u16 i, sum_size = 0;
4846 
4847 	cmd = libie_aq_raw(&desc);
4848 
4849 	ice_fill_dflt_direct_cmd_desc(&desc, ice_aqc_opc_add_rdma_qset);
4850 
4851 	if (num_qset_grps > ICE_LAN_TXQ_MAX_QGRPS)
4852 		return -EINVAL;
4853 
4854 	for (i = 0, list = qset_list; i < num_qset_grps; i++) {
4855 		u16 num_qsets = le16_to_cpu(list->num_qsets);
4856 
4857 		sum_size += struct_size(list, rdma_qsets, num_qsets);
4858 		list = (struct ice_aqc_add_rdma_qset_data *)(list->rdma_qsets +
4859 							     num_qsets);
4860 	}
4861 
4862 	if (buf_size != sum_size)
4863 		return -EINVAL;
4864 
4865 	desc.flags |= cpu_to_le16(LIBIE_AQ_FLAG_RD);
4866 
4867 	cmd->num_qset_grps = num_qset_grps;
4868 
4869 	return ice_aq_send_cmd(hw, &desc, qset_list, buf_size, cd);
4870 }
4871 
4872 /**
4873  * ice_aq_set_txtimeq - set Tx time queues
4874  * @hw: pointer to the hardware structure
4875  * @txtimeq: first Tx time queue id to configure
4876  * @q_count: number of queues to configure
4877  * @txtime_qg: queue group to be set
4878  * @buf_size: size of buffer for indirect command
4879  * @cd: pointer to command details structure or NULL
4880  *
4881  * Set Tx Time queue (0x0C35)
4882  * Return: 0 on success or negative value on failure.
4883  */
4884 int
4885 ice_aq_set_txtimeq(struct ice_hw *hw, u16 txtimeq, u8 q_count,
4886 		   struct ice_aqc_set_txtime_qgrp *txtime_qg, u16 buf_size,
4887 		   struct ice_sq_cd *cd)
4888 {
4889 	struct ice_aqc_set_txtimeqs *cmd;
4890 	struct libie_aq_desc desc;
4891 	u16 size;
4892 
4893 	if (!txtime_qg || txtimeq > ICE_TXTIME_MAX_QUEUE ||
4894 	    q_count < 1 || q_count > ICE_SET_TXTIME_MAX_Q_AMOUNT)
4895 		return -EINVAL;
4896 
4897 	size = struct_size(txtime_qg, txtimeqs, q_count);
4898 	if (buf_size != size)
4899 		return -EINVAL;
4900 
4901 	cmd = libie_aq_raw(&desc);
4902 
4903 	ice_fill_dflt_direct_cmd_desc(&desc, ice_aqc_opc_set_txtimeqs);
4904 
4905 	desc.flags |= cpu_to_le16(LIBIE_AQ_FLAG_RD);
4906 
4907 	cmd->q_id = cpu_to_le16(txtimeq);
4908 	cmd->q_amount = cpu_to_le16(q_count);
4909 	return ice_aq_send_cmd(hw, &desc, txtime_qg, buf_size, cd);
4910 }
4911 
4912 /* End of FW Admin Queue command wrappers */
4913 
4914 /**
4915  * ice_get_lan_q_ctx - get the LAN queue context for the given VSI and TC
4916  * @hw: pointer to the HW struct
4917  * @vsi_handle: software VSI handle
4918  * @tc: TC number
4919  * @q_handle: software queue handle
4920  */
4921 struct ice_q_ctx *
4922 ice_get_lan_q_ctx(struct ice_hw *hw, u16 vsi_handle, u8 tc, u16 q_handle)
4923 {
4924 	struct ice_vsi_ctx *vsi;
4925 	struct ice_q_ctx *q_ctx;
4926 
4927 	vsi = ice_get_vsi_ctx(hw, vsi_handle);
4928 	if (!vsi)
4929 		return NULL;
4930 	if (q_handle >= vsi->num_lan_q_entries[tc])
4931 		return NULL;
4932 	if (!vsi->lan_q_ctx[tc])
4933 		return NULL;
4934 	q_ctx = vsi->lan_q_ctx[tc];
4935 	return &q_ctx[q_handle];
4936 }
4937 
4938 /**
4939  * ice_ena_vsi_txq
4940  * @pi: port information structure
4941  * @vsi_handle: software VSI handle
4942  * @tc: TC number
4943  * @q_handle: software queue handle
4944  * @num_qgrps: Number of added queue groups
4945  * @buf: list of queue groups to be added
4946  * @buf_size: size of buffer for indirect command
4947  * @cd: pointer to command details structure or NULL
4948  *
4949  * This function adds one LAN queue
4950  */
4951 int
4952 ice_ena_vsi_txq(struct ice_port_info *pi, u16 vsi_handle, u8 tc, u16 q_handle,
4953 		u8 num_qgrps, struct ice_aqc_add_tx_qgrp *buf, u16 buf_size,
4954 		struct ice_sq_cd *cd)
4955 {
4956 	struct ice_aqc_txsched_elem_data node = { 0 };
4957 	struct ice_sched_node *parent;
4958 	struct ice_q_ctx *q_ctx;
4959 	struct ice_hw *hw;
4960 	int status;
4961 
4962 	if (!pi || pi->port_state != ICE_SCHED_PORT_STATE_READY)
4963 		return -EIO;
4964 
4965 	if (num_qgrps > 1 || buf->num_txqs > 1)
4966 		return -ENOSPC;
4967 
4968 	hw = pi->hw;
4969 
4970 	if (!ice_is_vsi_valid(hw, vsi_handle))
4971 		return -EINVAL;
4972 
4973 	mutex_lock(&pi->sched_lock);
4974 
4975 	q_ctx = ice_get_lan_q_ctx(hw, vsi_handle, tc, q_handle);
4976 	if (!q_ctx) {
4977 		ice_debug(hw, ICE_DBG_SCHED, "Enaq: invalid queue handle %d\n",
4978 			  q_handle);
4979 		status = -EINVAL;
4980 		goto ena_txq_exit;
4981 	}
4982 
4983 	/* find a parent node */
4984 	parent = ice_sched_get_free_qparent(pi, vsi_handle, tc,
4985 					    ICE_SCHED_NODE_OWNER_LAN);
4986 	if (!parent) {
4987 		status = -EINVAL;
4988 		goto ena_txq_exit;
4989 	}
4990 
4991 	buf->parent_teid = parent->info.node_teid;
4992 	node.parent_teid = parent->info.node_teid;
4993 	/* Mark that the values in the "generic" section as valid. The default
4994 	 * value in the "generic" section is zero. This means that :
4995 	 * - Scheduling mode is Bytes Per Second (BPS), indicated by Bit 0.
4996 	 * - 0 priority among siblings, indicated by Bit 1-3.
4997 	 * - WFQ, indicated by Bit 4.
4998 	 * - 0 Adjustment value is used in PSM credit update flow, indicated by
4999 	 * Bit 5-6.
5000 	 * - Bit 7 is reserved.
5001 	 * Without setting the generic section as valid in valid_sections, the
5002 	 * Admin queue command will fail with error code ICE_AQ_RC_EINVAL.
5003 	 */
5004 	buf->txqs[0].info.valid_sections =
5005 		ICE_AQC_ELEM_VALID_GENERIC | ICE_AQC_ELEM_VALID_CIR |
5006 		ICE_AQC_ELEM_VALID_EIR;
5007 	buf->txqs[0].info.generic = 0;
5008 	buf->txqs[0].info.cir_bw.bw_profile_idx =
5009 		cpu_to_le16(ICE_SCHED_DFLT_RL_PROF_ID);
5010 	buf->txqs[0].info.cir_bw.bw_alloc =
5011 		cpu_to_le16(ICE_SCHED_DFLT_BW_WT);
5012 	buf->txqs[0].info.eir_bw.bw_profile_idx =
5013 		cpu_to_le16(ICE_SCHED_DFLT_RL_PROF_ID);
5014 	buf->txqs[0].info.eir_bw.bw_alloc =
5015 		cpu_to_le16(ICE_SCHED_DFLT_BW_WT);
5016 
5017 	/* add the LAN queue */
5018 	status = ice_aq_add_lan_txq(hw, num_qgrps, buf, buf_size, cd);
5019 	if (status) {
5020 		ice_debug(hw, ICE_DBG_SCHED, "enable queue %d failed %d\n",
5021 			  le16_to_cpu(buf->txqs[0].txq_id),
5022 			  hw->adminq.sq_last_status);
5023 		goto ena_txq_exit;
5024 	}
5025 
5026 	node.node_teid = buf->txqs[0].q_teid;
5027 	node.data.elem_type = ICE_AQC_ELEM_TYPE_LEAF;
5028 	q_ctx->q_handle = q_handle;
5029 	q_ctx->q_teid = le32_to_cpu(node.node_teid);
5030 
5031 	/* add a leaf node into scheduler tree queue layer */
5032 	status = ice_sched_add_node(pi, hw->num_tx_sched_layers - 1, &node, NULL);
5033 	if (!status)
5034 		status = ice_sched_replay_q_bw(pi, q_ctx);
5035 
5036 ena_txq_exit:
5037 	mutex_unlock(&pi->sched_lock);
5038 	return status;
5039 }
5040 
5041 /**
5042  * ice_dis_vsi_txq
5043  * @pi: port information structure
5044  * @vsi_handle: software VSI handle
5045  * @tc: TC number
5046  * @num_queues: number of queues
5047  * @q_handles: pointer to software queue handle array
5048  * @q_ids: pointer to the q_id array
5049  * @q_teids: pointer to queue node teids
5050  * @rst_src: if called due to reset, specifies the reset source
5051  * @vmvf_num: the relative VM or VF number that is undergoing the reset
5052  * @cd: pointer to command details structure or NULL
5053  *
5054  * This function removes queues and their corresponding nodes in SW DB
5055  */
5056 int
5057 ice_dis_vsi_txq(struct ice_port_info *pi, u16 vsi_handle, u8 tc, u8 num_queues,
5058 		u16 *q_handles, u16 *q_ids, u32 *q_teids,
5059 		enum ice_disq_rst_src rst_src, u16 vmvf_num,
5060 		struct ice_sq_cd *cd)
5061 {
5062 	DEFINE_RAW_FLEX(struct ice_aqc_dis_txq_item, qg_list, q_id, 1);
5063 	u16 i, buf_size = __struct_size(qg_list);
5064 	struct ice_q_ctx *q_ctx;
5065 	int status = -ENOENT;
5066 	struct ice_hw *hw;
5067 
5068 	if (!pi || pi->port_state != ICE_SCHED_PORT_STATE_READY)
5069 		return -EIO;
5070 
5071 	hw = pi->hw;
5072 
5073 	if (!num_queues) {
5074 		/* if queue is disabled already yet the disable queue command
5075 		 * has to be sent to complete the VF reset, then call
5076 		 * ice_aq_dis_lan_txq without any queue information
5077 		 */
5078 		if (rst_src)
5079 			return ice_aq_dis_lan_txq(hw, 0, NULL, 0, rst_src,
5080 						  vmvf_num, NULL);
5081 		return -EIO;
5082 	}
5083 
5084 	mutex_lock(&pi->sched_lock);
5085 
5086 	for (i = 0; i < num_queues; i++) {
5087 		struct ice_sched_node *node;
5088 
5089 		node = ice_sched_find_node_by_teid(pi->root, q_teids[i]);
5090 		if (!node)
5091 			continue;
5092 		q_ctx = ice_get_lan_q_ctx(hw, vsi_handle, tc, q_handles[i]);
5093 		if (!q_ctx) {
5094 			ice_debug(hw, ICE_DBG_SCHED, "invalid queue handle%d\n",
5095 				  q_handles[i]);
5096 			continue;
5097 		}
5098 		if (q_ctx->q_handle != q_handles[i]) {
5099 			ice_debug(hw, ICE_DBG_SCHED, "Err:handles %d %d\n",
5100 				  q_ctx->q_handle, q_handles[i]);
5101 			continue;
5102 		}
5103 		qg_list->parent_teid = node->info.parent_teid;
5104 		qg_list->num_qs = 1;
5105 		qg_list->q_id[0] = cpu_to_le16(q_ids[i]);
5106 		status = ice_aq_dis_lan_txq(hw, 1, qg_list, buf_size, rst_src,
5107 					    vmvf_num, cd);
5108 
5109 		if (status)
5110 			break;
5111 		ice_free_sched_node(pi, node);
5112 		q_ctx->q_handle = ICE_INVAL_Q_HANDLE;
5113 		q_ctx->q_teid = ICE_INVAL_TEID;
5114 	}
5115 	mutex_unlock(&pi->sched_lock);
5116 	return status;
5117 }
5118 
5119 /**
5120  * ice_cfg_vsi_qs - configure the new/existing VSI queues
5121  * @pi: port information structure
5122  * @vsi_handle: software VSI handle
5123  * @tc_bitmap: TC bitmap
5124  * @maxqs: max queues array per TC
5125  * @owner: LAN or RDMA
5126  *
5127  * This function adds/updates the VSI queues per TC.
5128  */
5129 static int
5130 ice_cfg_vsi_qs(struct ice_port_info *pi, u16 vsi_handle, u8 tc_bitmap,
5131 	       u16 *maxqs, u8 owner)
5132 {
5133 	int status = 0;
5134 	u8 i;
5135 
5136 	if (!pi || pi->port_state != ICE_SCHED_PORT_STATE_READY)
5137 		return -EIO;
5138 
5139 	if (!ice_is_vsi_valid(pi->hw, vsi_handle))
5140 		return -EINVAL;
5141 
5142 	mutex_lock(&pi->sched_lock);
5143 
5144 	ice_for_each_traffic_class(i) {
5145 		/* configuration is possible only if TC node is present */
5146 		if (!ice_sched_get_tc_node(pi, i))
5147 			continue;
5148 
5149 		status = ice_sched_cfg_vsi(pi, vsi_handle, i, maxqs[i], owner,
5150 					   ice_is_tc_ena(tc_bitmap, i));
5151 		if (status)
5152 			break;
5153 	}
5154 
5155 	mutex_unlock(&pi->sched_lock);
5156 	return status;
5157 }
5158 
5159 /**
5160  * ice_cfg_vsi_lan - configure VSI LAN queues
5161  * @pi: port information structure
5162  * @vsi_handle: software VSI handle
5163  * @tc_bitmap: TC bitmap
5164  * @max_lanqs: max LAN queues array per TC
5165  *
5166  * This function adds/updates the VSI LAN queues per TC.
5167  */
5168 int
5169 ice_cfg_vsi_lan(struct ice_port_info *pi, u16 vsi_handle, u8 tc_bitmap,
5170 		u16 *max_lanqs)
5171 {
5172 	return ice_cfg_vsi_qs(pi, vsi_handle, tc_bitmap, max_lanqs,
5173 			      ICE_SCHED_NODE_OWNER_LAN);
5174 }
5175 
5176 /**
5177  * ice_cfg_vsi_rdma - configure the VSI RDMA queues
5178  * @pi: port information structure
5179  * @vsi_handle: software VSI handle
5180  * @tc_bitmap: TC bitmap
5181  * @max_rdmaqs: max RDMA queues array per TC
5182  *
5183  * This function adds/updates the VSI RDMA queues per TC.
5184  */
5185 int
5186 ice_cfg_vsi_rdma(struct ice_port_info *pi, u16 vsi_handle, u16 tc_bitmap,
5187 		 u16 *max_rdmaqs)
5188 {
5189 	return ice_cfg_vsi_qs(pi, vsi_handle, tc_bitmap, max_rdmaqs,
5190 			      ICE_SCHED_NODE_OWNER_RDMA);
5191 }
5192 
5193 /**
5194  * ice_ena_vsi_rdma_qset
5195  * @pi: port information structure
5196  * @vsi_handle: software VSI handle
5197  * @tc: TC number
5198  * @rdma_qset: pointer to RDMA Qset
5199  * @num_qsets: number of RDMA Qsets
5200  * @qset_teid: pointer to Qset node TEIDs
5201  *
5202  * This function adds RDMA Qset
5203  */
5204 int
5205 ice_ena_vsi_rdma_qset(struct ice_port_info *pi, u16 vsi_handle, u8 tc,
5206 		      u16 *rdma_qset, u16 num_qsets, u32 *qset_teid)
5207 {
5208 	struct ice_aqc_txsched_elem_data node = { 0 };
5209 	struct ice_aqc_add_rdma_qset_data *buf;
5210 	struct ice_sched_node *parent;
5211 	struct ice_hw *hw;
5212 	u16 i, buf_size;
5213 	int ret;
5214 
5215 	if (!pi || pi->port_state != ICE_SCHED_PORT_STATE_READY)
5216 		return -EIO;
5217 	hw = pi->hw;
5218 
5219 	if (!ice_is_vsi_valid(hw, vsi_handle))
5220 		return -EINVAL;
5221 
5222 	buf_size = struct_size(buf, rdma_qsets, num_qsets);
5223 	buf = kzalloc(buf_size, GFP_KERNEL);
5224 	if (!buf)
5225 		return -ENOMEM;
5226 	mutex_lock(&pi->sched_lock);
5227 
5228 	parent = ice_sched_get_free_qparent(pi, vsi_handle, tc,
5229 					    ICE_SCHED_NODE_OWNER_RDMA);
5230 	if (!parent) {
5231 		ret = -EINVAL;
5232 		goto rdma_error_exit;
5233 	}
5234 	buf->parent_teid = parent->info.node_teid;
5235 	node.parent_teid = parent->info.node_teid;
5236 
5237 	buf->num_qsets = cpu_to_le16(num_qsets);
5238 	for (i = 0; i < num_qsets; i++) {
5239 		buf->rdma_qsets[i].tx_qset_id = cpu_to_le16(rdma_qset[i]);
5240 		buf->rdma_qsets[i].info.valid_sections =
5241 			ICE_AQC_ELEM_VALID_GENERIC | ICE_AQC_ELEM_VALID_CIR |
5242 			ICE_AQC_ELEM_VALID_EIR;
5243 		buf->rdma_qsets[i].info.generic = 0;
5244 		buf->rdma_qsets[i].info.cir_bw.bw_profile_idx =
5245 			cpu_to_le16(ICE_SCHED_DFLT_RL_PROF_ID);
5246 		buf->rdma_qsets[i].info.cir_bw.bw_alloc =
5247 			cpu_to_le16(ICE_SCHED_DFLT_BW_WT);
5248 		buf->rdma_qsets[i].info.eir_bw.bw_profile_idx =
5249 			cpu_to_le16(ICE_SCHED_DFLT_RL_PROF_ID);
5250 		buf->rdma_qsets[i].info.eir_bw.bw_alloc =
5251 			cpu_to_le16(ICE_SCHED_DFLT_BW_WT);
5252 	}
5253 	ret = ice_aq_add_rdma_qsets(hw, 1, buf, buf_size, NULL);
5254 	if (ret) {
5255 		ice_debug(hw, ICE_DBG_RDMA, "add RDMA qset failed\n");
5256 		goto rdma_error_exit;
5257 	}
5258 	node.data.elem_type = ICE_AQC_ELEM_TYPE_LEAF;
5259 	for (i = 0; i < num_qsets; i++) {
5260 		node.node_teid = buf->rdma_qsets[i].qset_teid;
5261 		ret = ice_sched_add_node(pi, hw->num_tx_sched_layers - 1,
5262 					 &node, NULL);
5263 		if (ret)
5264 			break;
5265 		qset_teid[i] = le32_to_cpu(node.node_teid);
5266 	}
5267 rdma_error_exit:
5268 	mutex_unlock(&pi->sched_lock);
5269 	kfree(buf);
5270 	return ret;
5271 }
5272 
5273 /**
5274  * ice_dis_vsi_rdma_qset - free RDMA resources
5275  * @pi: port_info struct
5276  * @count: number of RDMA Qsets to free
5277  * @qset_teid: TEID of Qset node
5278  * @q_id: list of queue IDs being disabled
5279  */
5280 int
5281 ice_dis_vsi_rdma_qset(struct ice_port_info *pi, u16 count, u32 *qset_teid,
5282 		      u16 *q_id)
5283 {
5284 	DEFINE_RAW_FLEX(struct ice_aqc_dis_txq_item, qg_list, q_id, 1);
5285 	u16 qg_size = __struct_size(qg_list);
5286 	struct ice_hw *hw;
5287 	int status = 0;
5288 	int i;
5289 
5290 	if (!pi || pi->port_state != ICE_SCHED_PORT_STATE_READY)
5291 		return -EIO;
5292 
5293 	hw = pi->hw;
5294 
5295 	mutex_lock(&pi->sched_lock);
5296 
5297 	for (i = 0; i < count; i++) {
5298 		struct ice_sched_node *node;
5299 
5300 		node = ice_sched_find_node_by_teid(pi->root, qset_teid[i]);
5301 		if (!node)
5302 			continue;
5303 
5304 		qg_list->parent_teid = node->info.parent_teid;
5305 		qg_list->num_qs = 1;
5306 		qg_list->q_id[0] =
5307 			cpu_to_le16(q_id[i] |
5308 				    ICE_AQC_Q_DIS_BUF_ELEM_TYPE_RDMA_QSET);
5309 
5310 		status = ice_aq_dis_lan_txq(hw, 1, qg_list, qg_size,
5311 					    ICE_NO_RESET, 0, NULL);
5312 		if (status)
5313 			break;
5314 
5315 		ice_free_sched_node(pi, node);
5316 	}
5317 
5318 	mutex_unlock(&pi->sched_lock);
5319 	return status;
5320 }
5321 
5322 /**
5323  * ice_aq_get_cgu_input_pin_measure - get input pin signal measurements
5324  * @hw: pointer to the HW struct
5325  * @dpll_idx: index of dpll to be measured
5326  * @meas: array to be filled with results
5327  * @meas_num: max number of results array can hold
5328  *
5329  * Get CGU measurements (0x0C59) of phase and frequency offsets for input
5330  * pins on given dpll.
5331  *
5332  * Return: 0 on success or negative value on failure.
5333  */
5334 int ice_aq_get_cgu_input_pin_measure(struct ice_hw *hw, u8 dpll_idx,
5335 				     struct ice_cgu_input_measure *meas,
5336 				     u16 meas_num)
5337 {
5338 	struct ice_aqc_get_cgu_input_measure *cmd;
5339 	struct libie_aq_desc desc;
5340 
5341 	ice_fill_dflt_direct_cmd_desc(&desc, ice_aqc_opc_get_cgu_input_measure);
5342 	cmd = libie_aq_raw(&desc);
5343 	cmd->dpll_idx_opt = dpll_idx & ICE_AQC_GET_CGU_IN_MEAS_DPLL_IDX_M;
5344 
5345 	return ice_aq_send_cmd(hw, &desc, meas, meas_num * sizeof(*meas), NULL);
5346 }
5347 
5348 /**
5349  * ice_aq_get_cgu_abilities - get cgu abilities
5350  * @hw: pointer to the HW struct
5351  * @abilities: CGU abilities
5352  *
5353  * Get CGU abilities (0x0C61)
5354  * Return: 0 on success or negative value on failure.
5355  */
5356 int
5357 ice_aq_get_cgu_abilities(struct ice_hw *hw,
5358 			 struct ice_aqc_get_cgu_abilities *abilities)
5359 {
5360 	struct libie_aq_desc desc;
5361 
5362 	ice_fill_dflt_direct_cmd_desc(&desc, ice_aqc_opc_get_cgu_abilities);
5363 	return ice_aq_send_cmd(hw, &desc, abilities, sizeof(*abilities), NULL);
5364 }
5365 
5366 /**
5367  * ice_aq_set_input_pin_cfg - set input pin config
5368  * @hw: pointer to the HW struct
5369  * @input_idx: Input index
5370  * @flags1: Input flags
5371  * @flags2: Input flags
5372  * @freq: Frequency in Hz
5373  * @phase_delay: Delay in ps
5374  *
5375  * Set CGU input config (0x0C62)
5376  * Return: 0 on success or negative value on failure.
5377  */
5378 int
5379 ice_aq_set_input_pin_cfg(struct ice_hw *hw, u8 input_idx, u8 flags1, u8 flags2,
5380 			 u32 freq, s32 phase_delay)
5381 {
5382 	struct ice_aqc_set_cgu_input_config *cmd;
5383 	struct libie_aq_desc desc;
5384 
5385 	ice_fill_dflt_direct_cmd_desc(&desc, ice_aqc_opc_set_cgu_input_config);
5386 	cmd = libie_aq_raw(&desc);
5387 	cmd->input_idx = input_idx;
5388 	cmd->flags1 = flags1;
5389 	cmd->flags2 = flags2;
5390 	cmd->freq = cpu_to_le32(freq);
5391 	cmd->phase_delay = cpu_to_le32(phase_delay);
5392 
5393 	return ice_aq_send_cmd(hw, &desc, NULL, 0, NULL);
5394 }
5395 
5396 /**
5397  * ice_aq_get_input_pin_cfg - get input pin config
5398  * @hw: pointer to the HW struct
5399  * @input_idx: Input index
5400  * @status: Pin status
5401  * @type: Pin type
5402  * @flags1: Input flags
5403  * @flags2: Input flags
5404  * @freq: Frequency in Hz
5405  * @phase_delay: Delay in ps
5406  *
5407  * Get CGU input config (0x0C63)
5408  * Return: 0 on success or negative value on failure.
5409  */
5410 int
5411 ice_aq_get_input_pin_cfg(struct ice_hw *hw, u8 input_idx, u8 *status, u8 *type,
5412 			 u8 *flags1, u8 *flags2, u32 *freq, s32 *phase_delay)
5413 {
5414 	struct ice_aqc_get_cgu_input_config *cmd;
5415 	struct libie_aq_desc desc;
5416 	int ret;
5417 
5418 	ice_fill_dflt_direct_cmd_desc(&desc, ice_aqc_opc_get_cgu_input_config);
5419 	cmd = libie_aq_raw(&desc);
5420 	cmd->input_idx = input_idx;
5421 
5422 	ret = ice_aq_send_cmd(hw, &desc, NULL, 0, NULL);
5423 	if (!ret) {
5424 		if (status)
5425 			*status = cmd->status;
5426 		if (type)
5427 			*type = cmd->type;
5428 		if (flags1)
5429 			*flags1 = cmd->flags1;
5430 		if (flags2)
5431 			*flags2 = cmd->flags2;
5432 		if (freq)
5433 			*freq = le32_to_cpu(cmd->freq);
5434 		if (phase_delay)
5435 			*phase_delay = le32_to_cpu(cmd->phase_delay);
5436 	}
5437 
5438 	return ret;
5439 }
5440 
5441 /**
5442  * ice_aq_set_output_pin_cfg - set output pin config
5443  * @hw: pointer to the HW struct
5444  * @output_idx: Output index
5445  * @flags: Output flags
5446  * @src_sel: Index of DPLL block
5447  * @freq: Output frequency
5448  * @phase_delay: Output phase compensation
5449  *
5450  * Set CGU output config (0x0C64)
5451  * Return: 0 on success or negative value on failure.
5452  */
5453 int
5454 ice_aq_set_output_pin_cfg(struct ice_hw *hw, u8 output_idx, u8 flags,
5455 			  u8 src_sel, u32 freq, s32 phase_delay)
5456 {
5457 	struct ice_aqc_set_cgu_output_config *cmd;
5458 	struct libie_aq_desc desc;
5459 
5460 	ice_fill_dflt_direct_cmd_desc(&desc, ice_aqc_opc_set_cgu_output_config);
5461 	cmd = libie_aq_raw(&desc);
5462 	cmd->output_idx = output_idx;
5463 	cmd->flags = flags;
5464 	cmd->src_sel = src_sel;
5465 	cmd->freq = cpu_to_le32(freq);
5466 	cmd->phase_delay = cpu_to_le32(phase_delay);
5467 
5468 	return ice_aq_send_cmd(hw, &desc, NULL, 0, NULL);
5469 }
5470 
5471 /**
5472  * ice_aq_get_output_pin_cfg - get output pin config
5473  * @hw: pointer to the HW struct
5474  * @output_idx: Output index
5475  * @flags: Output flags
5476  * @src_sel: Internal DPLL source
5477  * @freq: Output frequency
5478  * @src_freq: Source frequency
5479  *
5480  * Get CGU output config (0x0C65)
5481  * Return: 0 on success or negative value on failure.
5482  */
5483 int
5484 ice_aq_get_output_pin_cfg(struct ice_hw *hw, u8 output_idx, u8 *flags,
5485 			  u8 *src_sel, u32 *freq, u32 *src_freq)
5486 {
5487 	struct ice_aqc_get_cgu_output_config *cmd;
5488 	struct libie_aq_desc desc;
5489 	int ret;
5490 
5491 	ice_fill_dflt_direct_cmd_desc(&desc, ice_aqc_opc_get_cgu_output_config);
5492 	cmd = libie_aq_raw(&desc);
5493 	cmd->output_idx = output_idx;
5494 
5495 	ret = ice_aq_send_cmd(hw, &desc, NULL, 0, NULL);
5496 	if (!ret) {
5497 		if (flags)
5498 			*flags = cmd->flags;
5499 		if (src_sel)
5500 			*src_sel = cmd->src_sel;
5501 		if (freq)
5502 			*freq = le32_to_cpu(cmd->freq);
5503 		if (src_freq)
5504 			*src_freq = le32_to_cpu(cmd->src_freq);
5505 	}
5506 
5507 	return ret;
5508 }
5509 
5510 /**
5511  * ice_aq_get_cgu_dpll_status - get dpll status
5512  * @hw: pointer to the HW struct
5513  * @dpll_num: DPLL index
5514  * @ref_state: Reference clock state
5515  * @config: current DPLL config
5516  * @dpll_state: current DPLL state
5517  * @phase_offset: Phase offset in ns
5518  * @eec_mode: EEC_mode
5519  *
5520  * Get CGU DPLL status (0x0C66)
5521  * Return: 0 on success or negative value on failure.
5522  */
5523 int
5524 ice_aq_get_cgu_dpll_status(struct ice_hw *hw, u8 dpll_num, u8 *ref_state,
5525 			   u8 *dpll_state, u8 *config, s64 *phase_offset,
5526 			   u8 *eec_mode)
5527 {
5528 	struct ice_aqc_get_cgu_dpll_status *cmd;
5529 	struct libie_aq_desc desc;
5530 	int status;
5531 
5532 	ice_fill_dflt_direct_cmd_desc(&desc, ice_aqc_opc_get_cgu_dpll_status);
5533 	cmd = libie_aq_raw(&desc);
5534 	cmd->dpll_num = dpll_num;
5535 
5536 	status = ice_aq_send_cmd(hw, &desc, NULL, 0, NULL);
5537 	if (!status) {
5538 		*ref_state = cmd->ref_state;
5539 		*dpll_state = cmd->dpll_state;
5540 		*config = cmd->config;
5541 		*phase_offset = le32_to_cpu(cmd->phase_offset_h);
5542 		*phase_offset <<= 32;
5543 		*phase_offset += le32_to_cpu(cmd->phase_offset_l);
5544 		*phase_offset = sign_extend64(*phase_offset, 47);
5545 		*eec_mode = cmd->eec_mode;
5546 	}
5547 
5548 	return status;
5549 }
5550 
5551 /**
5552  * ice_aq_set_cgu_dpll_config - set dpll config
5553  * @hw: pointer to the HW struct
5554  * @dpll_num: DPLL index
5555  * @ref_state: Reference clock state
5556  * @config: DPLL config
5557  * @eec_mode: EEC mode
5558  *
5559  * Set CGU DPLL config (0x0C67)
5560  * Return: 0 on success or negative value on failure.
5561  */
5562 int
5563 ice_aq_set_cgu_dpll_config(struct ice_hw *hw, u8 dpll_num, u8 ref_state,
5564 			   u8 config, u8 eec_mode)
5565 {
5566 	struct ice_aqc_set_cgu_dpll_config *cmd;
5567 	struct libie_aq_desc desc;
5568 
5569 	ice_fill_dflt_direct_cmd_desc(&desc, ice_aqc_opc_set_cgu_dpll_config);
5570 	cmd = libie_aq_raw(&desc);
5571 	cmd->dpll_num = dpll_num;
5572 	cmd->ref_state = ref_state;
5573 	cmd->config = config;
5574 	cmd->eec_mode = eec_mode;
5575 
5576 	return ice_aq_send_cmd(hw, &desc, NULL, 0, NULL);
5577 }
5578 
5579 /**
5580  * ice_aq_set_cgu_ref_prio - set input reference priority
5581  * @hw: pointer to the HW struct
5582  * @dpll_num: DPLL index
5583  * @ref_idx: Reference pin index
5584  * @ref_priority: Reference input priority
5585  *
5586  * Set CGU reference priority (0x0C68)
5587  * Return: 0 on success or negative value on failure.
5588  */
5589 int
5590 ice_aq_set_cgu_ref_prio(struct ice_hw *hw, u8 dpll_num, u8 ref_idx,
5591 			u8 ref_priority)
5592 {
5593 	struct ice_aqc_set_cgu_ref_prio *cmd;
5594 	struct libie_aq_desc desc;
5595 
5596 	ice_fill_dflt_direct_cmd_desc(&desc, ice_aqc_opc_set_cgu_ref_prio);
5597 	cmd = libie_aq_raw(&desc);
5598 	cmd->dpll_num = dpll_num;
5599 	cmd->ref_idx = ref_idx;
5600 	cmd->ref_priority = ref_priority;
5601 
5602 	return ice_aq_send_cmd(hw, &desc, NULL, 0, NULL);
5603 }
5604 
5605 /**
5606  * ice_aq_get_cgu_ref_prio - get input reference priority
5607  * @hw: pointer to the HW struct
5608  * @dpll_num: DPLL index
5609  * @ref_idx: Reference pin index
5610  * @ref_prio: Reference input priority
5611  *
5612  * Get CGU reference priority (0x0C69)
5613  * Return: 0 on success or negative value on failure.
5614  */
5615 int
5616 ice_aq_get_cgu_ref_prio(struct ice_hw *hw, u8 dpll_num, u8 ref_idx,
5617 			u8 *ref_prio)
5618 {
5619 	struct ice_aqc_get_cgu_ref_prio *cmd;
5620 	struct libie_aq_desc desc;
5621 	int status;
5622 
5623 	ice_fill_dflt_direct_cmd_desc(&desc, ice_aqc_opc_get_cgu_ref_prio);
5624 	cmd = libie_aq_raw(&desc);
5625 	cmd->dpll_num = dpll_num;
5626 	cmd->ref_idx = ref_idx;
5627 
5628 	status = ice_aq_send_cmd(hw, &desc, NULL, 0, NULL);
5629 	if (!status)
5630 		*ref_prio = cmd->ref_priority;
5631 
5632 	return status;
5633 }
5634 
5635 /**
5636  * ice_aq_get_cgu_info - get cgu info
5637  * @hw: pointer to the HW struct
5638  * @cgu_id: CGU ID
5639  * @cgu_cfg_ver: CGU config version
5640  * @cgu_fw_ver: CGU firmware version
5641  *
5642  * Get CGU info (0x0C6A)
5643  * Return: 0 on success or negative value on failure.
5644  */
5645 int
5646 ice_aq_get_cgu_info(struct ice_hw *hw, u32 *cgu_id, u32 *cgu_cfg_ver,
5647 		    u32 *cgu_fw_ver)
5648 {
5649 	struct ice_aqc_get_cgu_info *cmd;
5650 	struct libie_aq_desc desc;
5651 	int status;
5652 
5653 	ice_fill_dflt_direct_cmd_desc(&desc, ice_aqc_opc_get_cgu_info);
5654 	cmd = libie_aq_raw(&desc);
5655 
5656 	status = ice_aq_send_cmd(hw, &desc, NULL, 0, NULL);
5657 	if (!status) {
5658 		*cgu_id = le32_to_cpu(cmd->cgu_id);
5659 		*cgu_cfg_ver = le32_to_cpu(cmd->cgu_cfg_ver);
5660 		*cgu_fw_ver = le32_to_cpu(cmd->cgu_fw_ver);
5661 	}
5662 
5663 	return status;
5664 }
5665 
5666 /**
5667  * ice_aq_set_phy_rec_clk_out - set RCLK phy out
5668  * @hw: pointer to the HW struct
5669  * @phy_output: PHY reference clock output pin
5670  * @enable: GPIO state to be applied
5671  * @freq: PHY output frequency
5672  *
5673  * Set phy recovered clock as reference (0x0630)
5674  * Return: 0 on success or negative value on failure.
5675  */
5676 int
5677 ice_aq_set_phy_rec_clk_out(struct ice_hw *hw, u8 phy_output, bool enable,
5678 			   u32 *freq)
5679 {
5680 	struct ice_aqc_set_phy_rec_clk_out *cmd;
5681 	struct libie_aq_desc desc;
5682 	int status;
5683 
5684 	ice_fill_dflt_direct_cmd_desc(&desc, ice_aqc_opc_set_phy_rec_clk_out);
5685 	cmd = libie_aq_raw(&desc);
5686 	cmd->phy_output = phy_output;
5687 	cmd->port_num = ICE_AQC_SET_PHY_REC_CLK_OUT_CURR_PORT;
5688 	cmd->flags = enable & ICE_AQC_SET_PHY_REC_CLK_OUT_OUT_EN;
5689 	cmd->freq = cpu_to_le32(*freq);
5690 
5691 	status = ice_aq_send_cmd(hw, &desc, NULL, 0, NULL);
5692 	if (!status)
5693 		*freq = le32_to_cpu(cmd->freq);
5694 
5695 	return status;
5696 }
5697 
5698 /**
5699  * ice_aq_get_phy_rec_clk_out - get phy recovered signal info
5700  * @hw: pointer to the HW struct
5701  * @phy_output: PHY reference clock output pin
5702  * @port_num: Port number
5703  * @flags: PHY flags
5704  * @node_handle: PHY output frequency
5705  *
5706  * Get PHY recovered clock output info (0x0631)
5707  * Return: 0 on success or negative value on failure.
5708  */
5709 int
5710 ice_aq_get_phy_rec_clk_out(struct ice_hw *hw, u8 *phy_output, u8 *port_num,
5711 			   u8 *flags, u16 *node_handle)
5712 {
5713 	struct ice_aqc_get_phy_rec_clk_out *cmd;
5714 	struct libie_aq_desc desc;
5715 	int status;
5716 
5717 	ice_fill_dflt_direct_cmd_desc(&desc, ice_aqc_opc_get_phy_rec_clk_out);
5718 	cmd = libie_aq_raw(&desc);
5719 	cmd->phy_output = *phy_output;
5720 
5721 	status = ice_aq_send_cmd(hw, &desc, NULL, 0, NULL);
5722 	if (!status) {
5723 		*phy_output = cmd->phy_output;
5724 		if (port_num)
5725 			*port_num = cmd->port_num;
5726 		if (flags)
5727 			*flags = cmd->flags;
5728 		if (node_handle)
5729 			*node_handle = le16_to_cpu(cmd->node_handle);
5730 	}
5731 
5732 	return status;
5733 }
5734 
5735 /**
5736  * ice_aq_get_sensor_reading
5737  * @hw: pointer to the HW struct
5738  * @data: pointer to data to be read from the sensor
5739  *
5740  * Get sensor reading (0x0632)
5741  */
5742 int ice_aq_get_sensor_reading(struct ice_hw *hw,
5743 			      struct ice_aqc_get_sensor_reading_resp *data)
5744 {
5745 	struct ice_aqc_get_sensor_reading *cmd;
5746 	struct libie_aq_desc desc;
5747 	int status;
5748 
5749 	ice_fill_dflt_direct_cmd_desc(&desc, ice_aqc_opc_get_sensor_reading);
5750 	cmd = libie_aq_raw(&desc);
5751 #define ICE_INTERNAL_TEMP_SENSOR_FORMAT	0
5752 #define ICE_INTERNAL_TEMP_SENSOR	0
5753 	cmd->sensor = ICE_INTERNAL_TEMP_SENSOR;
5754 	cmd->format = ICE_INTERNAL_TEMP_SENSOR_FORMAT;
5755 
5756 	status = ice_aq_send_cmd(hw, &desc, NULL, 0, NULL);
5757 	if (!status)
5758 		memcpy(data, &desc.params.raw,
5759 		       sizeof(*data));
5760 
5761 	return status;
5762 }
5763 
5764 /**
5765  * ice_replay_pre_init - replay pre initialization
5766  * @hw: pointer to the HW struct
5767  *
5768  * Initializes required config data for VSI, FD, ACL, and RSS before replay.
5769  */
5770 static int ice_replay_pre_init(struct ice_hw *hw)
5771 {
5772 	struct ice_switch_info *sw = hw->switch_info;
5773 	u8 i;
5774 
5775 	/* Delete old entries from replay filter list head if there is any */
5776 	ice_rm_all_sw_replay_rule_info(hw);
5777 	/* In start of replay, move entries into replay_rules list, it
5778 	 * will allow adding rules entries back to filt_rules list,
5779 	 * which is operational list.
5780 	 */
5781 	for (i = 0; i < ICE_MAX_NUM_RECIPES; i++)
5782 		list_replace_init(&sw->recp_list[i].filt_rules,
5783 				  &sw->recp_list[i].filt_replay_rules);
5784 	ice_sched_replay_agg_vsi_preinit(hw);
5785 
5786 	return 0;
5787 }
5788 
5789 /**
5790  * ice_replay_vsi - replay VSI configuration
5791  * @hw: pointer to the HW struct
5792  * @vsi_handle: driver VSI handle
5793  *
5794  * Restore all VSI configuration after reset. It is required to call this
5795  * function with main VSI first.
5796  */
5797 int ice_replay_vsi(struct ice_hw *hw, u16 vsi_handle)
5798 {
5799 	int status;
5800 
5801 	if (!ice_is_vsi_valid(hw, vsi_handle))
5802 		return -EINVAL;
5803 
5804 	/* Replay pre-initialization if there is any */
5805 	if (vsi_handle == ICE_MAIN_VSI_HANDLE) {
5806 		status = ice_replay_pre_init(hw);
5807 		if (status)
5808 			return status;
5809 	}
5810 	/* Replay per VSI all RSS configurations */
5811 	status = ice_replay_rss_cfg(hw, vsi_handle);
5812 	if (status)
5813 		return status;
5814 	/* Replay per VSI all filters */
5815 	status = ice_replay_vsi_all_fltr(hw, vsi_handle);
5816 	if (!status)
5817 		status = ice_replay_vsi_agg(hw, vsi_handle);
5818 	return status;
5819 }
5820 
5821 /**
5822  * ice_replay_post - post replay configuration cleanup
5823  * @hw: pointer to the HW struct
5824  *
5825  * Post replay cleanup.
5826  */
5827 void ice_replay_post(struct ice_hw *hw)
5828 {
5829 	/* Delete old entries from replay filter list head */
5830 	ice_rm_all_sw_replay_rule_info(hw);
5831 	ice_sched_replay_agg(hw);
5832 }
5833 
5834 /**
5835  * ice_stat_update40 - read 40 bit stat from the chip and update stat values
5836  * @hw: ptr to the hardware info
5837  * @reg: offset of 64 bit HW register to read from
5838  * @prev_stat_loaded: bool to specify if previous stats are loaded
5839  * @prev_stat: ptr to previous loaded stat value
5840  * @cur_stat: ptr to current stat value
5841  */
5842 void
5843 ice_stat_update40(struct ice_hw *hw, u32 reg, bool prev_stat_loaded,
5844 		  u64 *prev_stat, u64 *cur_stat)
5845 {
5846 	u64 new_data = rd64(hw, reg) & (BIT_ULL(40) - 1);
5847 
5848 	/* device stats are not reset at PFR, they likely will not be zeroed
5849 	 * when the driver starts. Thus, save the value from the first read
5850 	 * without adding to the statistic value so that we report stats which
5851 	 * count up from zero.
5852 	 */
5853 	if (!prev_stat_loaded) {
5854 		*prev_stat = new_data;
5855 		return;
5856 	}
5857 
5858 	/* Calculate the difference between the new and old values, and then
5859 	 * add it to the software stat value.
5860 	 */
5861 	if (new_data >= *prev_stat)
5862 		*cur_stat += new_data - *prev_stat;
5863 	else
5864 		/* to manage the potential roll-over */
5865 		*cur_stat += (new_data + BIT_ULL(40)) - *prev_stat;
5866 
5867 	/* Update the previously stored value to prepare for next read */
5868 	*prev_stat = new_data;
5869 }
5870 
5871 /**
5872  * ice_stat_update32 - read 32 bit stat from the chip and update stat values
5873  * @hw: ptr to the hardware info
5874  * @reg: offset of HW register to read from
5875  * @prev_stat_loaded: bool to specify if previous stats are loaded
5876  * @prev_stat: ptr to previous loaded stat value
5877  * @cur_stat: ptr to current stat value
5878  */
5879 void
5880 ice_stat_update32(struct ice_hw *hw, u32 reg, bool prev_stat_loaded,
5881 		  u64 *prev_stat, u64 *cur_stat)
5882 {
5883 	u32 new_data;
5884 
5885 	new_data = rd32(hw, reg);
5886 
5887 	/* device stats are not reset at PFR, they likely will not be zeroed
5888 	 * when the driver starts. Thus, save the value from the first read
5889 	 * without adding to the statistic value so that we report stats which
5890 	 * count up from zero.
5891 	 */
5892 	if (!prev_stat_loaded) {
5893 		*prev_stat = new_data;
5894 		return;
5895 	}
5896 
5897 	/* Calculate the difference between the new and old values, and then
5898 	 * add it to the software stat value.
5899 	 */
5900 	if (new_data >= *prev_stat)
5901 		*cur_stat += new_data - *prev_stat;
5902 	else
5903 		/* to manage the potential roll-over */
5904 		*cur_stat += (new_data + BIT_ULL(32)) - *prev_stat;
5905 
5906 	/* Update the previously stored value to prepare for next read */
5907 	*prev_stat = new_data;
5908 }
5909 
5910 /**
5911  * ice_sched_query_elem - query element information from HW
5912  * @hw: pointer to the HW struct
5913  * @node_teid: node TEID to be queried
5914  * @buf: buffer to element information
5915  *
5916  * This function queries HW element information
5917  */
5918 int
5919 ice_sched_query_elem(struct ice_hw *hw, u32 node_teid,
5920 		     struct ice_aqc_txsched_elem_data *buf)
5921 {
5922 	u16 buf_size, num_elem_ret = 0;
5923 	int status;
5924 
5925 	buf_size = sizeof(*buf);
5926 	memset(buf, 0, buf_size);
5927 	buf->node_teid = cpu_to_le32(node_teid);
5928 	status = ice_aq_query_sched_elems(hw, 1, buf, buf_size, &num_elem_ret,
5929 					  NULL);
5930 	if (status || num_elem_ret != 1)
5931 		ice_debug(hw, ICE_DBG_SCHED, "query element failed\n");
5932 	return status;
5933 }
5934 
5935 /**
5936  * ice_aq_read_i2c
5937  * @hw: pointer to the hw struct
5938  * @topo_addr: topology address for a device to communicate with
5939  * @bus_addr: 7-bit I2C bus address
5940  * @addr: I2C memory address (I2C offset) with up to 16 bits
5941  * @params: I2C parameters: bit [7] - Repeated start,
5942  *			    bits [6:5] data offset size,
5943  *			    bit [4] - I2C address type,
5944  *			    bits [3:0] - data size to read (0-16 bytes)
5945  * @data: pointer to data (0 to 16 bytes) to be read from the I2C device
5946  * @cd: pointer to command details structure or NULL
5947  *
5948  * Read I2C (0x06E2)
5949  */
5950 int
5951 ice_aq_read_i2c(struct ice_hw *hw, struct ice_aqc_link_topo_addr topo_addr,
5952 		u16 bus_addr, __le16 addr, u8 params, u8 *data,
5953 		struct ice_sq_cd *cd)
5954 {
5955 	struct libie_aq_desc desc = { 0 };
5956 	struct ice_aqc_i2c *cmd;
5957 	u8 data_size;
5958 	int status;
5959 
5960 	ice_fill_dflt_direct_cmd_desc(&desc, ice_aqc_opc_read_i2c);
5961 	cmd = libie_aq_raw(&desc);
5962 
5963 	if (!data)
5964 		return -EINVAL;
5965 
5966 	data_size = FIELD_GET(ICE_AQC_I2C_DATA_SIZE_M, params);
5967 
5968 	cmd->i2c_bus_addr = cpu_to_le16(bus_addr);
5969 	cmd->topo_addr = topo_addr;
5970 	cmd->i2c_params = params;
5971 	cmd->i2c_addr = addr;
5972 
5973 	status = ice_aq_send_cmd(hw, &desc, NULL, 0, cd);
5974 	if (!status) {
5975 		struct ice_aqc_read_i2c_resp *resp;
5976 		u8 i;
5977 
5978 		resp = libie_aq_raw(&desc);
5979 		for (i = 0; i < data_size; i++) {
5980 			*data = resp->i2c_data[i];
5981 			data++;
5982 		}
5983 	}
5984 
5985 	return status;
5986 }
5987 
5988 /**
5989  * ice_aq_write_i2c
5990  * @hw: pointer to the hw struct
5991  * @topo_addr: topology address for a device to communicate with
5992  * @bus_addr: 7-bit I2C bus address
5993  * @addr: I2C memory address (I2C offset) with up to 16 bits
5994  * @params: I2C parameters: bit [4] - I2C address type, bits [3:0] - data size to write (0-7 bytes)
5995  * @data: pointer to data (0 to 4 bytes) to be written to the I2C device
5996  * @cd: pointer to command details structure or NULL
5997  *
5998  * Write I2C (0x06E3)
5999  *
6000  * * Return:
6001  * * 0             - Successful write to the i2c device
6002  * * -EINVAL       - Data size greater than 4 bytes
6003  * * -EIO          - FW error
6004  */
6005 int
6006 ice_aq_write_i2c(struct ice_hw *hw, struct ice_aqc_link_topo_addr topo_addr,
6007 		 u16 bus_addr, __le16 addr, u8 params, const u8 *data,
6008 		 struct ice_sq_cd *cd)
6009 {
6010 	struct libie_aq_desc desc = { 0 };
6011 	struct ice_aqc_i2c *cmd;
6012 	u8 data_size;
6013 
6014 	ice_fill_dflt_direct_cmd_desc(&desc, ice_aqc_opc_write_i2c);
6015 	cmd = libie_aq_raw(&desc);
6016 
6017 	data_size = FIELD_GET(ICE_AQC_I2C_DATA_SIZE_M, params);
6018 
6019 	/* data_size limited to 4 */
6020 	if (data_size > 4)
6021 		return -EINVAL;
6022 
6023 	cmd->i2c_bus_addr = cpu_to_le16(bus_addr);
6024 	cmd->topo_addr = topo_addr;
6025 	cmd->i2c_params = params;
6026 	cmd->i2c_addr = addr;
6027 
6028 	memcpy(cmd->i2c_data, data, data_size);
6029 
6030 	return ice_aq_send_cmd(hw, &desc, NULL, 0, cd);
6031 }
6032 
6033 /**
6034  * ice_get_pca9575_handle - find and return the PCA9575 controller
6035  * @hw: pointer to the hw struct
6036  * @pca9575_handle: GPIO controller's handle
6037  *
6038  * Find and return the GPIO controller's handle in the netlist.
6039  * When found - the value will be cached in the hw structure and following calls
6040  * will return cached value.
6041  *
6042  * Return: 0 on success, -ENXIO when there's no PCA9575 present.
6043  */
6044 int ice_get_pca9575_handle(struct ice_hw *hw, u16 *pca9575_handle)
6045 {
6046 	struct ice_aqc_get_link_topo *cmd;
6047 	struct libie_aq_desc desc;
6048 	int err;
6049 	u8 idx;
6050 
6051 	/* If handle was read previously return cached value */
6052 	if (hw->io_expander_handle) {
6053 		*pca9575_handle = hw->io_expander_handle;
6054 		return 0;
6055 	}
6056 
6057 #define SW_PCA9575_SFP_TOPO_IDX		2
6058 #define SW_PCA9575_QSFP_TOPO_IDX	1
6059 
6060 	/* Check if the SW IO expander controlling SMA exists in the netlist. */
6061 	if (hw->device_id == ICE_DEV_ID_E810C_SFP)
6062 		idx = SW_PCA9575_SFP_TOPO_IDX;
6063 	else if (hw->device_id == ICE_DEV_ID_E810C_QSFP)
6064 		idx = SW_PCA9575_QSFP_TOPO_IDX;
6065 	else
6066 		return -ENXIO;
6067 
6068 	/* If handle was not detected read it from the netlist */
6069 	ice_fill_dflt_direct_cmd_desc(&desc, ice_aqc_opc_get_link_topo);
6070 	cmd = libie_aq_raw(&desc);
6071 	cmd->addr.topo_params.node_type_ctx =
6072 		ICE_AQC_LINK_TOPO_NODE_TYPE_GPIO_CTRL;
6073 	cmd->addr.topo_params.index = idx;
6074 
6075 	err = ice_aq_send_cmd(hw, &desc, NULL, 0, NULL);
6076 	if (err)
6077 		return -ENXIO;
6078 
6079 	/* Verify if we found the right IO expander type */
6080 	if (cmd->node_part_num != ICE_AQC_GET_LINK_TOPO_NODE_NR_PCA9575)
6081 		return -ENXIO;
6082 
6083 	/* If present save the handle and return it */
6084 	hw->io_expander_handle =
6085 		le16_to_cpu(cmd->addr.handle);
6086 	*pca9575_handle = hw->io_expander_handle;
6087 
6088 	return 0;
6089 }
6090 
6091 /**
6092  * ice_read_pca9575_reg - read the register from the PCA9575 controller
6093  * @hw: pointer to the hw struct
6094  * @offset: GPIO controller register offset
6095  * @data: pointer to data to be read from the GPIO controller
6096  *
6097  * Return: 0 on success, negative error code otherwise.
6098  */
6099 int ice_read_pca9575_reg(struct ice_hw *hw, u8 offset, u8 *data)
6100 {
6101 	struct ice_aqc_link_topo_addr link_topo;
6102 	__le16 addr;
6103 	u16 handle;
6104 	int err;
6105 
6106 	memset(&link_topo, 0, sizeof(link_topo));
6107 
6108 	err = ice_get_pca9575_handle(hw, &handle);
6109 	if (err)
6110 		return err;
6111 
6112 	link_topo.handle = cpu_to_le16(handle);
6113 	link_topo.topo_params.node_type_ctx =
6114 		FIELD_PREP(ICE_AQC_LINK_TOPO_NODE_CTX_M,
6115 			   ICE_AQC_LINK_TOPO_NODE_CTX_PROVIDED);
6116 
6117 	addr = cpu_to_le16((u16)offset);
6118 
6119 	return ice_aq_read_i2c(hw, link_topo, 0, addr, 1, data, NULL);
6120 }
6121 
6122 /**
6123  * ice_aq_set_gpio
6124  * @hw: pointer to the hw struct
6125  * @gpio_ctrl_handle: GPIO controller node handle
6126  * @pin_idx: IO Number of the GPIO that needs to be set
6127  * @value: SW provide IO value to set in the LSB
6128  * @cd: pointer to command details structure or NULL
6129  *
6130  * Sends 0x06EC AQ command to set the GPIO pin state that's part of the topology
6131  */
6132 int
6133 ice_aq_set_gpio(struct ice_hw *hw, u16 gpio_ctrl_handle, u8 pin_idx, bool value,
6134 		struct ice_sq_cd *cd)
6135 {
6136 	struct libie_aq_desc desc;
6137 	struct ice_aqc_gpio *cmd;
6138 
6139 	ice_fill_dflt_direct_cmd_desc(&desc, ice_aqc_opc_set_gpio);
6140 	cmd = libie_aq_raw(&desc);
6141 	cmd->gpio_ctrl_handle = cpu_to_le16(gpio_ctrl_handle);
6142 	cmd->gpio_num = pin_idx;
6143 	cmd->gpio_val = value ? 1 : 0;
6144 
6145 	return ice_aq_send_cmd(hw, &desc, NULL, 0, cd);
6146 }
6147 
6148 /**
6149  * ice_aq_get_gpio
6150  * @hw: pointer to the hw struct
6151  * @gpio_ctrl_handle: GPIO controller node handle
6152  * @pin_idx: IO Number of the GPIO that needs to be set
6153  * @value: IO value read
6154  * @cd: pointer to command details structure or NULL
6155  *
6156  * Sends 0x06ED AQ command to get the value of a GPIO signal which is part of
6157  * the topology
6158  */
6159 int
6160 ice_aq_get_gpio(struct ice_hw *hw, u16 gpio_ctrl_handle, u8 pin_idx,
6161 		bool *value, struct ice_sq_cd *cd)
6162 {
6163 	struct libie_aq_desc desc;
6164 	struct ice_aqc_gpio *cmd;
6165 	int status;
6166 
6167 	ice_fill_dflt_direct_cmd_desc(&desc, ice_aqc_opc_get_gpio);
6168 	cmd = libie_aq_raw(&desc);
6169 	cmd->gpio_ctrl_handle = cpu_to_le16(gpio_ctrl_handle);
6170 	cmd->gpio_num = pin_idx;
6171 
6172 	status = ice_aq_send_cmd(hw, &desc, NULL, 0, cd);
6173 	if (status)
6174 		return status;
6175 
6176 	*value = !!cmd->gpio_val;
6177 	return 0;
6178 }
6179 
6180 /**
6181  * ice_is_fw_api_min_ver
6182  * @hw: pointer to the hardware structure
6183  * @maj: major version
6184  * @min: minor version
6185  * @patch: patch version
6186  *
6187  * Checks if the firmware API is minimum version
6188  */
6189 static bool ice_is_fw_api_min_ver(struct ice_hw *hw, u8 maj, u8 min, u8 patch)
6190 {
6191 	if (hw->api_maj_ver == maj) {
6192 		if (hw->api_min_ver > min)
6193 			return true;
6194 		if (hw->api_min_ver == min && hw->api_patch >= patch)
6195 			return true;
6196 	} else if (hw->api_maj_ver > maj) {
6197 		return true;
6198 	}
6199 
6200 	return false;
6201 }
6202 
6203 /**
6204  * ice_fw_supports_link_override
6205  * @hw: pointer to the hardware structure
6206  *
6207  * Checks if the firmware supports link override
6208  */
6209 bool ice_fw_supports_link_override(struct ice_hw *hw)
6210 {
6211 	return ice_is_fw_api_min_ver(hw, ICE_FW_API_LINK_OVERRIDE_MAJ,
6212 				     ICE_FW_API_LINK_OVERRIDE_MIN,
6213 				     ICE_FW_API_LINK_OVERRIDE_PATCH);
6214 }
6215 
6216 /**
6217  * ice_get_link_default_override
6218  * @ldo: pointer to the link default override struct
6219  * @pi: pointer to the port info struct
6220  *
6221  * Gets the link default override for a port
6222  */
6223 int
6224 ice_get_link_default_override(struct ice_link_default_override_tlv *ldo,
6225 			      struct ice_port_info *pi)
6226 {
6227 	u16 i, tlv, tlv_len, tlv_start, buf, offset;
6228 	struct ice_hw *hw = pi->hw;
6229 	int status;
6230 
6231 	status = ice_get_pfa_module_tlv(hw, &tlv, &tlv_len,
6232 					ICE_SR_LINK_DEFAULT_OVERRIDE_PTR);
6233 	if (status) {
6234 		ice_debug(hw, ICE_DBG_INIT, "Failed to read link override TLV.\n");
6235 		return status;
6236 	}
6237 
6238 	/* Each port has its own config; calculate for our port */
6239 	tlv_start = tlv + pi->lport * ICE_SR_PFA_LINK_OVERRIDE_WORDS +
6240 		ICE_SR_PFA_LINK_OVERRIDE_OFFSET;
6241 
6242 	/* link options first */
6243 	status = ice_read_sr_word(hw, tlv_start, &buf);
6244 	if (status) {
6245 		ice_debug(hw, ICE_DBG_INIT, "Failed to read override link options.\n");
6246 		return status;
6247 	}
6248 	ldo->options = FIELD_GET(ICE_LINK_OVERRIDE_OPT_M, buf);
6249 	ldo->phy_config = (buf & ICE_LINK_OVERRIDE_PHY_CFG_M) >>
6250 		ICE_LINK_OVERRIDE_PHY_CFG_S;
6251 
6252 	/* link PHY config */
6253 	offset = tlv_start + ICE_SR_PFA_LINK_OVERRIDE_FEC_OFFSET;
6254 	status = ice_read_sr_word(hw, offset, &buf);
6255 	if (status) {
6256 		ice_debug(hw, ICE_DBG_INIT, "Failed to read override phy config.\n");
6257 		return status;
6258 	}
6259 	ldo->fec_options = buf & ICE_LINK_OVERRIDE_FEC_OPT_M;
6260 
6261 	/* PHY types low */
6262 	offset = tlv_start + ICE_SR_PFA_LINK_OVERRIDE_PHY_OFFSET;
6263 	for (i = 0; i < ICE_SR_PFA_LINK_OVERRIDE_PHY_WORDS; i++) {
6264 		status = ice_read_sr_word(hw, (offset + i), &buf);
6265 		if (status) {
6266 			ice_debug(hw, ICE_DBG_INIT, "Failed to read override link options.\n");
6267 			return status;
6268 		}
6269 		/* shift 16 bits at a time to fill 64 bits */
6270 		ldo->phy_type_low |= ((u64)buf << (i * 16));
6271 	}
6272 
6273 	/* PHY types high */
6274 	offset = tlv_start + ICE_SR_PFA_LINK_OVERRIDE_PHY_OFFSET +
6275 		ICE_SR_PFA_LINK_OVERRIDE_PHY_WORDS;
6276 	for (i = 0; i < ICE_SR_PFA_LINK_OVERRIDE_PHY_WORDS; i++) {
6277 		status = ice_read_sr_word(hw, (offset + i), &buf);
6278 		if (status) {
6279 			ice_debug(hw, ICE_DBG_INIT, "Failed to read override link options.\n");
6280 			return status;
6281 		}
6282 		/* shift 16 bits at a time to fill 64 bits */
6283 		ldo->phy_type_high |= ((u64)buf << (i * 16));
6284 	}
6285 
6286 	return status;
6287 }
6288 
6289 /**
6290  * ice_is_phy_caps_an_enabled - check if PHY capabilities autoneg is enabled
6291  * @caps: get PHY capability data
6292  */
6293 bool ice_is_phy_caps_an_enabled(struct ice_aqc_get_phy_caps_data *caps)
6294 {
6295 	if (caps->caps & ICE_AQC_PHY_AN_MODE ||
6296 	    caps->low_power_ctrl_an & (ICE_AQC_PHY_AN_EN_CLAUSE28 |
6297 				       ICE_AQC_PHY_AN_EN_CLAUSE73 |
6298 				       ICE_AQC_PHY_AN_EN_CLAUSE37))
6299 		return true;
6300 
6301 	return false;
6302 }
6303 
6304 /**
6305  * ice_is_fw_health_report_supported - checks if firmware supports health events
6306  * @hw: pointer to the hardware structure
6307  *
6308  * Return: true if firmware supports health status reports,
6309  * false otherwise
6310  */
6311 bool ice_is_fw_health_report_supported(struct ice_hw *hw)
6312 {
6313 	return ice_is_fw_api_min_ver(hw, ICE_FW_API_HEALTH_REPORT_MAJ,
6314 				     ICE_FW_API_HEALTH_REPORT_MIN,
6315 				     ICE_FW_API_HEALTH_REPORT_PATCH);
6316 }
6317 
6318 /**
6319  * ice_aq_set_health_status_cfg - Configure FW health events
6320  * @hw: pointer to the HW struct
6321  * @event_source: type of diagnostic events to enable
6322  *
6323  * Configure the health status event types that the firmware will send to this
6324  * PF. The supported event types are: PF-specific, all PFs, and global.
6325  *
6326  * Return: 0 on success, negative error code otherwise.
6327  */
6328 int ice_aq_set_health_status_cfg(struct ice_hw *hw, u8 event_source)
6329 {
6330 	struct ice_aqc_set_health_status_cfg *cmd;
6331 	struct libie_aq_desc desc;
6332 
6333 	cmd = libie_aq_raw(&desc);
6334 
6335 	ice_fill_dflt_direct_cmd_desc(&desc, ice_aqc_opc_set_health_status_cfg);
6336 
6337 	cmd->event_source = event_source;
6338 
6339 	return ice_aq_send_cmd(hw, &desc, NULL, 0, NULL);
6340 }
6341 
6342 /**
6343  * ice_aq_set_lldp_mib - Set the LLDP MIB
6344  * @hw: pointer to the HW struct
6345  * @mib_type: Local, Remote or both Local and Remote MIBs
6346  * @buf: pointer to the caller-supplied buffer to store the MIB block
6347  * @buf_size: size of the buffer (in bytes)
6348  * @cd: pointer to command details structure or NULL
6349  *
6350  * Set the LLDP MIB. (0x0A08)
6351  */
6352 int
6353 ice_aq_set_lldp_mib(struct ice_hw *hw, u8 mib_type, void *buf, u16 buf_size,
6354 		    struct ice_sq_cd *cd)
6355 {
6356 	struct ice_aqc_lldp_set_local_mib *cmd;
6357 	struct libie_aq_desc desc;
6358 
6359 	cmd = libie_aq_raw(&desc);
6360 
6361 	if (buf_size == 0 || !buf)
6362 		return -EINVAL;
6363 
6364 	ice_fill_dflt_direct_cmd_desc(&desc, ice_aqc_opc_lldp_set_local_mib);
6365 
6366 	desc.flags |= cpu_to_le16((u16)LIBIE_AQ_FLAG_RD);
6367 	desc.datalen = cpu_to_le16(buf_size);
6368 
6369 	cmd->type = mib_type;
6370 	cmd->length = cpu_to_le16(buf_size);
6371 
6372 	return ice_aq_send_cmd(hw, &desc, buf, buf_size, cd);
6373 }
6374 
6375 /**
6376  * ice_fw_supports_lldp_fltr_ctrl - check NVM version supports lldp_fltr_ctrl
6377  * @hw: pointer to HW struct
6378  */
6379 bool ice_fw_supports_lldp_fltr_ctrl(struct ice_hw *hw)
6380 {
6381 	if (hw->mac_type != ICE_MAC_E810)
6382 		return false;
6383 
6384 	return ice_is_fw_api_min_ver(hw, ICE_FW_API_LLDP_FLTR_MAJ,
6385 				     ICE_FW_API_LLDP_FLTR_MIN,
6386 				     ICE_FW_API_LLDP_FLTR_PATCH);
6387 }
6388 
6389 /**
6390  * ice_lldp_fltr_add_remove - add or remove a LLDP Rx switch filter
6391  * @hw: pointer to HW struct
6392  * @vsi: VSI to add the filter to
6393  * @add: boolean for if adding or removing a filter
6394  *
6395  * Return: 0 on success, -EOPNOTSUPP if the operation cannot be performed
6396  *	   with this HW or VSI, otherwise an error corresponding to
6397  *	   the AQ transaction result.
6398  */
6399 int ice_lldp_fltr_add_remove(struct ice_hw *hw, struct ice_vsi *vsi, bool add)
6400 {
6401 	struct ice_aqc_lldp_filter_ctrl *cmd;
6402 	struct libie_aq_desc desc;
6403 
6404 	if (!ice_fw_supports_lldp_fltr_ctrl(hw))
6405 		return -EOPNOTSUPP;
6406 
6407 	cmd = libie_aq_raw(&desc);
6408 
6409 	ice_fill_dflt_direct_cmd_desc(&desc, ice_aqc_opc_lldp_filter_ctrl);
6410 
6411 	if (add)
6412 		cmd->cmd_flags = ICE_AQC_LLDP_FILTER_ACTION_ADD;
6413 	else
6414 		cmd->cmd_flags = ICE_AQC_LLDP_FILTER_ACTION_DELETE;
6415 
6416 	cmd->vsi_num = cpu_to_le16(vsi->vsi_num);
6417 
6418 	return ice_aq_send_cmd(hw, &desc, NULL, 0, NULL);
6419 }
6420 
6421 /**
6422  * ice_lldp_execute_pending_mib - execute LLDP pending MIB request
6423  * @hw: pointer to HW struct
6424  */
6425 int ice_lldp_execute_pending_mib(struct ice_hw *hw)
6426 {
6427 	struct libie_aq_desc desc;
6428 
6429 	ice_fill_dflt_direct_cmd_desc(&desc, ice_aqc_opc_lldp_execute_pending_mib);
6430 
6431 	return ice_aq_send_cmd(hw, &desc, NULL, 0, NULL);
6432 }
6433 
6434 /**
6435  * ice_fw_supports_report_dflt_cfg
6436  * @hw: pointer to the hardware structure
6437  *
6438  * Checks if the firmware supports report default configuration
6439  */
6440 bool ice_fw_supports_report_dflt_cfg(struct ice_hw *hw)
6441 {
6442 	return ice_is_fw_api_min_ver(hw, ICE_FW_API_REPORT_DFLT_CFG_MAJ,
6443 				     ICE_FW_API_REPORT_DFLT_CFG_MIN,
6444 				     ICE_FW_API_REPORT_DFLT_CFG_PATCH);
6445 }
6446 
6447 /* each of the indexes into the following array match the speed of a return
6448  * value from the list of AQ returned speeds like the range:
6449  * ICE_AQ_LINK_SPEED_10MB .. ICE_AQ_LINK_SPEED_100GB excluding
6450  * ICE_AQ_LINK_SPEED_UNKNOWN which is BIT(15) and maps to BIT(14) in this
6451  * array. The array is defined as 15 elements long because the link_speed
6452  * returned by the firmware is a 16 bit * value, but is indexed
6453  * by [fls(speed) - 1]
6454  */
6455 static const u32 ice_aq_to_link_speed[] = {
6456 	SPEED_10,	/* BIT(0) */
6457 	SPEED_100,
6458 	SPEED_1000,
6459 	SPEED_2500,
6460 	SPEED_5000,
6461 	SPEED_10000,
6462 	SPEED_20000,
6463 	SPEED_25000,
6464 	SPEED_40000,
6465 	SPEED_50000,
6466 	SPEED_100000,	/* BIT(10) */
6467 	SPEED_200000,
6468 };
6469 
6470 /**
6471  * ice_get_link_speed - get integer speed from table
6472  * @index: array index from fls(aq speed) - 1
6473  *
6474  * Returns: u32 value containing integer speed
6475  */
6476 u32 ice_get_link_speed(u16 index)
6477 {
6478 	if (index >= ARRAY_SIZE(ice_aq_to_link_speed))
6479 		return 0;
6480 
6481 	return ice_aq_to_link_speed[index];
6482 }
6483 
6484 /**
6485  * ice_get_dest_cgu - get destination CGU dev for given HW
6486  * @hw: pointer to the HW struct
6487  *
6488  * Get CGU client id for CGU register read/write operations.
6489  *
6490  * Return: CGU device id to use in SBQ transactions.
6491  */
6492 static enum ice_sbq_dev_id ice_get_dest_cgu(struct ice_hw *hw)
6493 {
6494 	/* On dual complex E825 only complex 0 has functional CGU powering all
6495 	 * the PHYs.
6496 	 * SBQ destination device cgu points to CGU on a current complex and to
6497 	 * access primary CGU from the secondary complex, the driver should use
6498 	 * cgu_peer as a destination device.
6499 	 */
6500 	if (hw->mac_type == ICE_MAC_GENERIC_3K_E825 && ice_is_dual(hw) &&
6501 	    !ice_is_primary(hw))
6502 		return ice_sbq_dev_cgu_peer;
6503 	return ice_sbq_dev_cgu;
6504 }
6505 
6506 /**
6507  * ice_read_cgu_reg - Read a CGU register
6508  * @hw: Pointer to the HW struct
6509  * @addr: Register address to read
6510  * @val: Storage for register value read
6511  *
6512  * Read the contents of a register of the Clock Generation Unit. Only
6513  * applicable to E82X devices.
6514  *
6515  * Return: 0 on success, other error codes when failed to read from CGU.
6516  */
6517 int ice_read_cgu_reg(struct ice_hw *hw, u32 addr, u32 *val)
6518 {
6519 	struct ice_sbq_msg_input cgu_msg = {
6520 		.dest_dev = ice_get_dest_cgu(hw),
6521 		.opcode = ice_sbq_msg_rd,
6522 		.msg_addr_low = addr
6523 	};
6524 	int err;
6525 
6526 	err = ice_sbq_rw_reg(hw, &cgu_msg, LIBIE_AQ_FLAG_RD);
6527 	if (err) {
6528 		ice_debug(hw, ICE_DBG_PTP, "Failed to read CGU register 0x%04x, err %d\n",
6529 			  addr, err);
6530 		return err;
6531 	}
6532 
6533 	*val = cgu_msg.data;
6534 
6535 	return 0;
6536 }
6537 
6538 /**
6539  * ice_write_cgu_reg - Write a CGU register
6540  * @hw: Pointer to the HW struct
6541  * @addr: Register address to write
6542  * @val: Value to write into the register
6543  *
6544  * Write the specified value to a register of the Clock Generation Unit. Only
6545  * applicable to E82X devices.
6546  *
6547  * Return: 0 on success, other error codes when failed to write to CGU.
6548  */
6549 int ice_write_cgu_reg(struct ice_hw *hw, u32 addr, u32 val)
6550 {
6551 	struct ice_sbq_msg_input cgu_msg = {
6552 		.dest_dev = ice_get_dest_cgu(hw),
6553 		.opcode = ice_sbq_msg_wr,
6554 		.msg_addr_low = addr,
6555 		.data = val
6556 	};
6557 	int err;
6558 
6559 	err = ice_sbq_rw_reg(hw, &cgu_msg, LIBIE_AQ_FLAG_RD);
6560 	if (err)
6561 		ice_debug(hw, ICE_DBG_PTP, "Failed to write CGU register 0x%04x, err %d\n",
6562 			  addr, err);
6563 
6564 	return err;
6565 }
6566