1 // SPDX-License-Identifier: GPL-2.0 2 /* Copyright (C) 2019-2021, Intel Corporation. */ 3 4 #include "ice.h" 5 #include "ice_tc_lib.h" 6 #include "ice_fltr.h" 7 #include "ice_lib.h" 8 #include "ice_protocol_type.h" 9 10 #define ICE_TC_METADATA_LKUP_IDX 0 11 12 /** 13 * ice_tc_count_lkups - determine lookup count for switch filter 14 * @flags: TC-flower flags 15 * @headers: Pointer to TC flower filter header structure 16 * @fltr: Pointer to outer TC filter structure 17 * 18 * Determine lookup count based on TC flower input for switch filter. 19 */ 20 static int 21 ice_tc_count_lkups(u32 flags, struct ice_tc_flower_lyr_2_4_hdrs *headers, 22 struct ice_tc_flower_fltr *fltr) 23 { 24 int lkups_cnt = 1; /* 0th lookup is metadata */ 25 26 /* Always add metadata as the 0th lookup. Included elements: 27 * - Direction flag (always present) 28 * - ICE_TC_FLWR_FIELD_VLAN_TPID (present if specified) 29 * - Tunnel flag (present if tunnel) 30 */ 31 if (fltr->direction == ICE_ESWITCH_FLTR_EGRESS) 32 lkups_cnt++; 33 34 if (flags & ICE_TC_FLWR_FIELD_TENANT_ID) 35 lkups_cnt++; 36 37 if (flags & ICE_TC_FLWR_FIELD_ENC_DST_MAC) 38 lkups_cnt++; 39 40 if (flags & ICE_TC_FLWR_FIELD_ENC_OPTS) 41 lkups_cnt++; 42 43 if (flags & (ICE_TC_FLWR_FIELD_ENC_SRC_IPV4 | 44 ICE_TC_FLWR_FIELD_ENC_DEST_IPV4 | 45 ICE_TC_FLWR_FIELD_ENC_SRC_IPV6 | 46 ICE_TC_FLWR_FIELD_ENC_DEST_IPV6)) 47 lkups_cnt++; 48 49 if (flags & (ICE_TC_FLWR_FIELD_ENC_IP_TOS | 50 ICE_TC_FLWR_FIELD_ENC_IP_TTL)) 51 lkups_cnt++; 52 53 if (flags & ICE_TC_FLWR_FIELD_ENC_DEST_L4_PORT) 54 lkups_cnt++; 55 56 if (flags & ICE_TC_FLWR_FIELD_ETH_TYPE_ID) 57 lkups_cnt++; 58 59 /* are MAC fields specified? */ 60 if (flags & (ICE_TC_FLWR_FIELD_DST_MAC | ICE_TC_FLWR_FIELD_SRC_MAC)) 61 lkups_cnt++; 62 63 /* is VLAN specified? */ 64 if (flags & (ICE_TC_FLWR_FIELD_VLAN | ICE_TC_FLWR_FIELD_VLAN_PRIO)) 65 lkups_cnt++; 66 67 /* is CVLAN specified? */ 68 if (flags & (ICE_TC_FLWR_FIELD_CVLAN | ICE_TC_FLWR_FIELD_CVLAN_PRIO)) 69 lkups_cnt++; 70 71 /* are PPPoE options specified? */ 72 if (flags & (ICE_TC_FLWR_FIELD_PPPOE_SESSID | 73 ICE_TC_FLWR_FIELD_PPP_PROTO)) 74 lkups_cnt++; 75 76 /* are IPv[4|6] fields specified? */ 77 if (flags & (ICE_TC_FLWR_FIELD_DEST_IPV4 | ICE_TC_FLWR_FIELD_SRC_IPV4 | 78 ICE_TC_FLWR_FIELD_DEST_IPV6 | ICE_TC_FLWR_FIELD_SRC_IPV6)) 79 lkups_cnt++; 80 81 if (flags & (ICE_TC_FLWR_FIELD_IP_TOS | ICE_TC_FLWR_FIELD_IP_TTL)) 82 lkups_cnt++; 83 84 /* are L2TPv3 options specified? */ 85 if (flags & ICE_TC_FLWR_FIELD_L2TPV3_SESSID) 86 lkups_cnt++; 87 88 /* is L4 (TCP/UDP/any other L4 protocol fields) specified? */ 89 if (flags & (ICE_TC_FLWR_FIELD_DEST_L4_PORT | 90 ICE_TC_FLWR_FIELD_SRC_L4_PORT)) 91 lkups_cnt++; 92 93 return lkups_cnt; 94 } 95 96 static enum ice_protocol_type ice_proto_type_from_mac(bool inner) 97 { 98 return inner ? ICE_MAC_IL : ICE_MAC_OFOS; 99 } 100 101 static enum ice_protocol_type ice_proto_type_from_etype(bool inner) 102 { 103 return inner ? ICE_ETYPE_IL : ICE_ETYPE_OL; 104 } 105 106 static enum ice_protocol_type ice_proto_type_from_ipv4(bool inner) 107 { 108 return inner ? ICE_IPV4_IL : ICE_IPV4_OFOS; 109 } 110 111 static enum ice_protocol_type ice_proto_type_from_ipv6(bool inner) 112 { 113 return inner ? ICE_IPV6_IL : ICE_IPV6_OFOS; 114 } 115 116 static enum ice_protocol_type ice_proto_type_from_l4_port(u16 ip_proto) 117 { 118 switch (ip_proto) { 119 case IPPROTO_TCP: 120 return ICE_TCP_IL; 121 case IPPROTO_UDP: 122 return ICE_UDP_ILOS; 123 } 124 125 return 0; 126 } 127 128 static enum ice_protocol_type 129 ice_proto_type_from_tunnel(enum ice_tunnel_type type) 130 { 131 switch (type) { 132 case TNL_VXLAN: 133 return ICE_VXLAN; 134 case TNL_GENEVE: 135 return ICE_GENEVE; 136 case TNL_GRETAP: 137 return ICE_NVGRE; 138 case TNL_GTPU: 139 /* NO_PAY profiles will not work with GTP-U */ 140 return ICE_GTP; 141 case TNL_GTPC: 142 return ICE_GTP_NO_PAY; 143 default: 144 return 0; 145 } 146 } 147 148 static enum ice_sw_tunnel_type 149 ice_sw_type_from_tunnel(enum ice_tunnel_type type) 150 { 151 switch (type) { 152 case TNL_VXLAN: 153 return ICE_SW_TUN_VXLAN; 154 case TNL_GENEVE: 155 return ICE_SW_TUN_GENEVE; 156 case TNL_GRETAP: 157 return ICE_SW_TUN_NVGRE; 158 case TNL_GTPU: 159 return ICE_SW_TUN_GTPU; 160 case TNL_GTPC: 161 return ICE_SW_TUN_GTPC; 162 default: 163 return ICE_NON_TUN; 164 } 165 } 166 167 static u16 ice_check_supported_vlan_tpid(u16 vlan_tpid) 168 { 169 switch (vlan_tpid) { 170 case ETH_P_8021Q: 171 case ETH_P_8021AD: 172 case ETH_P_QINQ1: 173 return vlan_tpid; 174 default: 175 return 0; 176 } 177 } 178 179 static int 180 ice_tc_fill_tunnel_outer(u32 flags, struct ice_tc_flower_fltr *fltr, 181 struct ice_adv_lkup_elem *list, int i) 182 { 183 struct ice_tc_flower_lyr_2_4_hdrs *hdr = &fltr->outer_headers; 184 185 if (flags & ICE_TC_FLWR_FIELD_TENANT_ID) { 186 u32 tenant_id; 187 188 list[i].type = ice_proto_type_from_tunnel(fltr->tunnel_type); 189 switch (fltr->tunnel_type) { 190 case TNL_VXLAN: 191 case TNL_GENEVE: 192 tenant_id = be32_to_cpu(fltr->tenant_id) << 8; 193 list[i].h_u.tnl_hdr.vni = cpu_to_be32(tenant_id); 194 memcpy(&list[i].m_u.tnl_hdr.vni, "\xff\xff\xff\x00", 4); 195 i++; 196 break; 197 case TNL_GRETAP: 198 list[i].h_u.nvgre_hdr.tni_flow = fltr->tenant_id; 199 memcpy(&list[i].m_u.nvgre_hdr.tni_flow, 200 "\xff\xff\xff\xff", 4); 201 i++; 202 break; 203 case TNL_GTPC: 204 case TNL_GTPU: 205 list[i].h_u.gtp_hdr.teid = fltr->tenant_id; 206 memcpy(&list[i].m_u.gtp_hdr.teid, 207 "\xff\xff\xff\xff", 4); 208 i++; 209 break; 210 default: 211 break; 212 } 213 } 214 215 if (flags & ICE_TC_FLWR_FIELD_ENC_DST_MAC) { 216 list[i].type = ice_proto_type_from_mac(false); 217 ether_addr_copy(list[i].h_u.eth_hdr.dst_addr, 218 hdr->l2_key.dst_mac); 219 ether_addr_copy(list[i].m_u.eth_hdr.dst_addr, 220 hdr->l2_mask.dst_mac); 221 i++; 222 } 223 224 if (flags & ICE_TC_FLWR_FIELD_ENC_OPTS && 225 (fltr->tunnel_type == TNL_GTPU || fltr->tunnel_type == TNL_GTPC)) { 226 list[i].type = ice_proto_type_from_tunnel(fltr->tunnel_type); 227 228 if (fltr->gtp_pdu_info_masks.pdu_type) { 229 list[i].h_u.gtp_hdr.pdu_type = 230 fltr->gtp_pdu_info_keys.pdu_type << 4; 231 memcpy(&list[i].m_u.gtp_hdr.pdu_type, "\xf0", 1); 232 } 233 234 if (fltr->gtp_pdu_info_masks.qfi) { 235 list[i].h_u.gtp_hdr.qfi = fltr->gtp_pdu_info_keys.qfi; 236 memcpy(&list[i].m_u.gtp_hdr.qfi, "\x3f", 1); 237 } 238 239 i++; 240 } 241 242 if (flags & (ICE_TC_FLWR_FIELD_ENC_SRC_IPV4 | 243 ICE_TC_FLWR_FIELD_ENC_DEST_IPV4)) { 244 list[i].type = ice_proto_type_from_ipv4(false); 245 246 if (flags & ICE_TC_FLWR_FIELD_ENC_SRC_IPV4) { 247 list[i].h_u.ipv4_hdr.src_addr = hdr->l3_key.src_ipv4; 248 list[i].m_u.ipv4_hdr.src_addr = hdr->l3_mask.src_ipv4; 249 } 250 if (flags & ICE_TC_FLWR_FIELD_ENC_DEST_IPV4) { 251 list[i].h_u.ipv4_hdr.dst_addr = hdr->l3_key.dst_ipv4; 252 list[i].m_u.ipv4_hdr.dst_addr = hdr->l3_mask.dst_ipv4; 253 } 254 i++; 255 } 256 257 if (flags & (ICE_TC_FLWR_FIELD_ENC_SRC_IPV6 | 258 ICE_TC_FLWR_FIELD_ENC_DEST_IPV6)) { 259 list[i].type = ice_proto_type_from_ipv6(false); 260 261 if (flags & ICE_TC_FLWR_FIELD_ENC_SRC_IPV6) { 262 memcpy(&list[i].h_u.ipv6_hdr.src_addr, 263 &hdr->l3_key.src_ipv6_addr, 264 sizeof(hdr->l3_key.src_ipv6_addr)); 265 memcpy(&list[i].m_u.ipv6_hdr.src_addr, 266 &hdr->l3_mask.src_ipv6_addr, 267 sizeof(hdr->l3_mask.src_ipv6_addr)); 268 } 269 if (flags & ICE_TC_FLWR_FIELD_ENC_DEST_IPV6) { 270 memcpy(&list[i].h_u.ipv6_hdr.dst_addr, 271 &hdr->l3_key.dst_ipv6_addr, 272 sizeof(hdr->l3_key.dst_ipv6_addr)); 273 memcpy(&list[i].m_u.ipv6_hdr.dst_addr, 274 &hdr->l3_mask.dst_ipv6_addr, 275 sizeof(hdr->l3_mask.dst_ipv6_addr)); 276 } 277 i++; 278 } 279 280 if (fltr->inner_headers.l2_key.n_proto == htons(ETH_P_IP) && 281 (flags & (ICE_TC_FLWR_FIELD_ENC_IP_TOS | 282 ICE_TC_FLWR_FIELD_ENC_IP_TTL))) { 283 list[i].type = ice_proto_type_from_ipv4(false); 284 285 if (flags & ICE_TC_FLWR_FIELD_ENC_IP_TOS) { 286 list[i].h_u.ipv4_hdr.tos = hdr->l3_key.tos; 287 list[i].m_u.ipv4_hdr.tos = hdr->l3_mask.tos; 288 } 289 290 if (flags & ICE_TC_FLWR_FIELD_ENC_IP_TTL) { 291 list[i].h_u.ipv4_hdr.time_to_live = hdr->l3_key.ttl; 292 list[i].m_u.ipv4_hdr.time_to_live = hdr->l3_mask.ttl; 293 } 294 295 i++; 296 } 297 298 if (fltr->inner_headers.l2_key.n_proto == htons(ETH_P_IPV6) && 299 (flags & (ICE_TC_FLWR_FIELD_ENC_IP_TOS | 300 ICE_TC_FLWR_FIELD_ENC_IP_TTL))) { 301 struct ice_ipv6_hdr *hdr_h, *hdr_m; 302 303 hdr_h = &list[i].h_u.ipv6_hdr; 304 hdr_m = &list[i].m_u.ipv6_hdr; 305 list[i].type = ice_proto_type_from_ipv6(false); 306 307 if (flags & ICE_TC_FLWR_FIELD_ENC_IP_TOS) { 308 be32p_replace_bits(&hdr_h->be_ver_tc_flow, 309 hdr->l3_key.tos, 310 ICE_IPV6_HDR_TC_MASK); 311 be32p_replace_bits(&hdr_m->be_ver_tc_flow, 312 hdr->l3_mask.tos, 313 ICE_IPV6_HDR_TC_MASK); 314 } 315 316 if (flags & ICE_TC_FLWR_FIELD_ENC_IP_TTL) { 317 hdr_h->hop_limit = hdr->l3_key.ttl; 318 hdr_m->hop_limit = hdr->l3_mask.ttl; 319 } 320 321 i++; 322 } 323 324 if ((flags & ICE_TC_FLWR_FIELD_ENC_DEST_L4_PORT) && 325 hdr->l3_key.ip_proto == IPPROTO_UDP) { 326 list[i].type = ICE_UDP_OF; 327 list[i].h_u.l4_hdr.dst_port = hdr->l4_key.dst_port; 328 list[i].m_u.l4_hdr.dst_port = hdr->l4_mask.dst_port; 329 i++; 330 } 331 332 /* always fill matching on tunneled packets in metadata */ 333 ice_rule_add_tunnel_metadata(&list[ICE_TC_METADATA_LKUP_IDX]); 334 335 return i; 336 } 337 338 /** 339 * ice_tc_fill_rules - fill filter rules based on TC fltr 340 * @hw: pointer to HW structure 341 * @flags: tc flower field flags 342 * @tc_fltr: pointer to TC flower filter 343 * @list: list of advance rule elements 344 * @rule_info: pointer to information about rule 345 * @l4_proto: pointer to information such as L4 proto type 346 * 347 * Fill ice_adv_lkup_elem list based on TC flower flags and 348 * TC flower headers. This list should be used to add 349 * advance filter in hardware. 350 */ 351 static int 352 ice_tc_fill_rules(struct ice_hw *hw, u32 flags, 353 struct ice_tc_flower_fltr *tc_fltr, 354 struct ice_adv_lkup_elem *list, 355 struct ice_adv_rule_info *rule_info, 356 u16 *l4_proto) 357 { 358 struct ice_tc_flower_lyr_2_4_hdrs *headers = &tc_fltr->outer_headers; 359 bool inner = false; 360 u16 vlan_tpid = 0; 361 int i = 1; /* 0th lookup is metadata */ 362 363 rule_info->vlan_type = vlan_tpid; 364 365 /* Always add direction metadata */ 366 ice_rule_add_direction_metadata(&list[ICE_TC_METADATA_LKUP_IDX]); 367 368 if (tc_fltr->direction == ICE_ESWITCH_FLTR_EGRESS) { 369 ice_rule_add_src_vsi_metadata(&list[i]); 370 i++; 371 } 372 373 rule_info->tun_type = ice_sw_type_from_tunnel(tc_fltr->tunnel_type); 374 if (tc_fltr->tunnel_type != TNL_LAST) { 375 i = ice_tc_fill_tunnel_outer(flags, tc_fltr, list, i); 376 377 headers = &tc_fltr->inner_headers; 378 inner = true; 379 } 380 381 if (flags & ICE_TC_FLWR_FIELD_ETH_TYPE_ID) { 382 list[i].type = ice_proto_type_from_etype(inner); 383 list[i].h_u.ethertype.ethtype_id = headers->l2_key.n_proto; 384 list[i].m_u.ethertype.ethtype_id = headers->l2_mask.n_proto; 385 i++; 386 } 387 388 if (flags & (ICE_TC_FLWR_FIELD_DST_MAC | 389 ICE_TC_FLWR_FIELD_SRC_MAC)) { 390 struct ice_tc_l2_hdr *l2_key, *l2_mask; 391 392 l2_key = &headers->l2_key; 393 l2_mask = &headers->l2_mask; 394 395 list[i].type = ice_proto_type_from_mac(inner); 396 if (flags & ICE_TC_FLWR_FIELD_DST_MAC) { 397 ether_addr_copy(list[i].h_u.eth_hdr.dst_addr, 398 l2_key->dst_mac); 399 ether_addr_copy(list[i].m_u.eth_hdr.dst_addr, 400 l2_mask->dst_mac); 401 } 402 if (flags & ICE_TC_FLWR_FIELD_SRC_MAC) { 403 ether_addr_copy(list[i].h_u.eth_hdr.src_addr, 404 l2_key->src_mac); 405 ether_addr_copy(list[i].m_u.eth_hdr.src_addr, 406 l2_mask->src_mac); 407 } 408 i++; 409 } 410 411 /* copy VLAN info */ 412 if (flags & (ICE_TC_FLWR_FIELD_VLAN | ICE_TC_FLWR_FIELD_VLAN_PRIO)) { 413 if (flags & ICE_TC_FLWR_FIELD_CVLAN) 414 list[i].type = ICE_VLAN_EX; 415 else 416 list[i].type = ICE_VLAN_OFOS; 417 418 if (flags & ICE_TC_FLWR_FIELD_VLAN) { 419 list[i].h_u.vlan_hdr.vlan = headers->vlan_hdr.vlan_id; 420 list[i].m_u.vlan_hdr.vlan = cpu_to_be16(0x0FFF); 421 } 422 423 if (flags & ICE_TC_FLWR_FIELD_VLAN_PRIO) { 424 if (flags & ICE_TC_FLWR_FIELD_VLAN) { 425 list[i].m_u.vlan_hdr.vlan = cpu_to_be16(0xEFFF); 426 } else { 427 list[i].m_u.vlan_hdr.vlan = cpu_to_be16(0xE000); 428 list[i].h_u.vlan_hdr.vlan = 0; 429 } 430 list[i].h_u.vlan_hdr.vlan |= 431 headers->vlan_hdr.vlan_prio; 432 } 433 434 i++; 435 } 436 437 if (flags & ICE_TC_FLWR_FIELD_VLAN_TPID) { 438 vlan_tpid = be16_to_cpu(headers->vlan_hdr.vlan_tpid); 439 rule_info->vlan_type = 440 ice_check_supported_vlan_tpid(vlan_tpid); 441 442 ice_rule_add_vlan_metadata(&list[ICE_TC_METADATA_LKUP_IDX]); 443 } 444 445 if (flags & (ICE_TC_FLWR_FIELD_CVLAN | ICE_TC_FLWR_FIELD_CVLAN_PRIO)) { 446 list[i].type = ICE_VLAN_IN; 447 448 if (flags & ICE_TC_FLWR_FIELD_CVLAN) { 449 list[i].h_u.vlan_hdr.vlan = headers->cvlan_hdr.vlan_id; 450 list[i].m_u.vlan_hdr.vlan = cpu_to_be16(0x0FFF); 451 } 452 453 if (flags & ICE_TC_FLWR_FIELD_CVLAN_PRIO) { 454 if (flags & ICE_TC_FLWR_FIELD_CVLAN) { 455 list[i].m_u.vlan_hdr.vlan = cpu_to_be16(0xEFFF); 456 } else { 457 list[i].m_u.vlan_hdr.vlan = cpu_to_be16(0xE000); 458 list[i].h_u.vlan_hdr.vlan = 0; 459 } 460 list[i].h_u.vlan_hdr.vlan |= 461 headers->cvlan_hdr.vlan_prio; 462 } 463 464 i++; 465 } 466 467 if (flags & (ICE_TC_FLWR_FIELD_PPPOE_SESSID | 468 ICE_TC_FLWR_FIELD_PPP_PROTO)) { 469 struct ice_pppoe_hdr *vals, *masks; 470 471 vals = &list[i].h_u.pppoe_hdr; 472 masks = &list[i].m_u.pppoe_hdr; 473 474 list[i].type = ICE_PPPOE; 475 476 if (flags & ICE_TC_FLWR_FIELD_PPPOE_SESSID) { 477 vals->session_id = headers->pppoe_hdr.session_id; 478 masks->session_id = cpu_to_be16(0xFFFF); 479 } 480 481 if (flags & ICE_TC_FLWR_FIELD_PPP_PROTO) { 482 vals->ppp_prot_id = headers->pppoe_hdr.ppp_proto; 483 masks->ppp_prot_id = cpu_to_be16(0xFFFF); 484 } 485 486 i++; 487 } 488 489 /* copy L3 (IPv[4|6]: src, dest) address */ 490 if (flags & (ICE_TC_FLWR_FIELD_DEST_IPV4 | 491 ICE_TC_FLWR_FIELD_SRC_IPV4)) { 492 struct ice_tc_l3_hdr *l3_key, *l3_mask; 493 494 list[i].type = ice_proto_type_from_ipv4(inner); 495 l3_key = &headers->l3_key; 496 l3_mask = &headers->l3_mask; 497 if (flags & ICE_TC_FLWR_FIELD_DEST_IPV4) { 498 list[i].h_u.ipv4_hdr.dst_addr = l3_key->dst_ipv4; 499 list[i].m_u.ipv4_hdr.dst_addr = l3_mask->dst_ipv4; 500 } 501 if (flags & ICE_TC_FLWR_FIELD_SRC_IPV4) { 502 list[i].h_u.ipv4_hdr.src_addr = l3_key->src_ipv4; 503 list[i].m_u.ipv4_hdr.src_addr = l3_mask->src_ipv4; 504 } 505 i++; 506 } else if (flags & (ICE_TC_FLWR_FIELD_DEST_IPV6 | 507 ICE_TC_FLWR_FIELD_SRC_IPV6)) { 508 struct ice_ipv6_hdr *ipv6_hdr, *ipv6_mask; 509 struct ice_tc_l3_hdr *l3_key, *l3_mask; 510 511 list[i].type = ice_proto_type_from_ipv6(inner); 512 ipv6_hdr = &list[i].h_u.ipv6_hdr; 513 ipv6_mask = &list[i].m_u.ipv6_hdr; 514 l3_key = &headers->l3_key; 515 l3_mask = &headers->l3_mask; 516 517 if (flags & ICE_TC_FLWR_FIELD_DEST_IPV6) { 518 memcpy(&ipv6_hdr->dst_addr, &l3_key->dst_ipv6_addr, 519 sizeof(l3_key->dst_ipv6_addr)); 520 memcpy(&ipv6_mask->dst_addr, &l3_mask->dst_ipv6_addr, 521 sizeof(l3_mask->dst_ipv6_addr)); 522 } 523 if (flags & ICE_TC_FLWR_FIELD_SRC_IPV6) { 524 memcpy(&ipv6_hdr->src_addr, &l3_key->src_ipv6_addr, 525 sizeof(l3_key->src_ipv6_addr)); 526 memcpy(&ipv6_mask->src_addr, &l3_mask->src_ipv6_addr, 527 sizeof(l3_mask->src_ipv6_addr)); 528 } 529 i++; 530 } 531 532 if (headers->l2_key.n_proto == htons(ETH_P_IP) && 533 (flags & (ICE_TC_FLWR_FIELD_IP_TOS | ICE_TC_FLWR_FIELD_IP_TTL))) { 534 list[i].type = ice_proto_type_from_ipv4(inner); 535 536 if (flags & ICE_TC_FLWR_FIELD_IP_TOS) { 537 list[i].h_u.ipv4_hdr.tos = headers->l3_key.tos; 538 list[i].m_u.ipv4_hdr.tos = headers->l3_mask.tos; 539 } 540 541 if (flags & ICE_TC_FLWR_FIELD_IP_TTL) { 542 list[i].h_u.ipv4_hdr.time_to_live = 543 headers->l3_key.ttl; 544 list[i].m_u.ipv4_hdr.time_to_live = 545 headers->l3_mask.ttl; 546 } 547 548 i++; 549 } 550 551 if (headers->l2_key.n_proto == htons(ETH_P_IPV6) && 552 (flags & (ICE_TC_FLWR_FIELD_IP_TOS | ICE_TC_FLWR_FIELD_IP_TTL))) { 553 struct ice_ipv6_hdr *hdr_h, *hdr_m; 554 555 hdr_h = &list[i].h_u.ipv6_hdr; 556 hdr_m = &list[i].m_u.ipv6_hdr; 557 list[i].type = ice_proto_type_from_ipv6(inner); 558 559 if (flags & ICE_TC_FLWR_FIELD_IP_TOS) { 560 be32p_replace_bits(&hdr_h->be_ver_tc_flow, 561 headers->l3_key.tos, 562 ICE_IPV6_HDR_TC_MASK); 563 be32p_replace_bits(&hdr_m->be_ver_tc_flow, 564 headers->l3_mask.tos, 565 ICE_IPV6_HDR_TC_MASK); 566 } 567 568 if (flags & ICE_TC_FLWR_FIELD_IP_TTL) { 569 hdr_h->hop_limit = headers->l3_key.ttl; 570 hdr_m->hop_limit = headers->l3_mask.ttl; 571 } 572 573 i++; 574 } 575 576 if (flags & ICE_TC_FLWR_FIELD_L2TPV3_SESSID) { 577 list[i].type = ICE_L2TPV3; 578 579 list[i].h_u.l2tpv3_sess_hdr.session_id = 580 headers->l2tpv3_hdr.session_id; 581 list[i].m_u.l2tpv3_sess_hdr.session_id = 582 cpu_to_be32(0xFFFFFFFF); 583 584 i++; 585 } 586 587 /* copy L4 (src, dest) port */ 588 if (flags & (ICE_TC_FLWR_FIELD_DEST_L4_PORT | 589 ICE_TC_FLWR_FIELD_SRC_L4_PORT)) { 590 struct ice_tc_l4_hdr *l4_key, *l4_mask; 591 592 list[i].type = ice_proto_type_from_l4_port(headers->l3_key.ip_proto); 593 l4_key = &headers->l4_key; 594 l4_mask = &headers->l4_mask; 595 596 if (flags & ICE_TC_FLWR_FIELD_DEST_L4_PORT) { 597 list[i].h_u.l4_hdr.dst_port = l4_key->dst_port; 598 list[i].m_u.l4_hdr.dst_port = l4_mask->dst_port; 599 } 600 if (flags & ICE_TC_FLWR_FIELD_SRC_L4_PORT) { 601 list[i].h_u.l4_hdr.src_port = l4_key->src_port; 602 list[i].m_u.l4_hdr.src_port = l4_mask->src_port; 603 } 604 i++; 605 } 606 607 return i; 608 } 609 610 /** 611 * ice_tc_tun_get_type - get the tunnel type 612 * @tunnel_dev: ptr to tunnel device 613 * 614 * This function detects appropriate tunnel_type if specified device is 615 * tunnel device such as VXLAN/Geneve 616 */ 617 static int ice_tc_tun_get_type(struct net_device *tunnel_dev) 618 { 619 if (netif_is_vxlan(tunnel_dev)) 620 return TNL_VXLAN; 621 if (netif_is_geneve(tunnel_dev)) 622 return TNL_GENEVE; 623 if (netif_is_gretap(tunnel_dev) || 624 netif_is_ip6gretap(tunnel_dev)) 625 return TNL_GRETAP; 626 627 /* Assume GTP-U by default in case of GTP netdev. 628 * GTP-C may be selected later, based on enc_dst_port. 629 */ 630 if (netif_is_gtp(tunnel_dev)) 631 return TNL_GTPU; 632 return TNL_LAST; 633 } 634 635 bool ice_is_tunnel_supported(struct net_device *dev) 636 { 637 return ice_tc_tun_get_type(dev) != TNL_LAST; 638 } 639 640 static bool ice_tc_is_dev_uplink(struct net_device *dev) 641 { 642 return netif_is_ice(dev) || ice_is_tunnel_supported(dev); 643 } 644 645 static int ice_tc_setup_redirect_action(struct net_device *filter_dev, 646 struct ice_tc_flower_fltr *fltr, 647 struct net_device *target_dev) 648 { 649 struct ice_repr *repr; 650 651 fltr->action.fltr_act = ICE_FWD_TO_VSI; 652 653 if (ice_is_port_repr_netdev(filter_dev) && 654 ice_is_port_repr_netdev(target_dev)) { 655 repr = ice_netdev_to_repr(target_dev); 656 657 fltr->dest_vsi = repr->src_vsi; 658 fltr->direction = ICE_ESWITCH_FLTR_EGRESS; 659 } else if (ice_is_port_repr_netdev(filter_dev) && 660 ice_tc_is_dev_uplink(target_dev)) { 661 repr = ice_netdev_to_repr(filter_dev); 662 663 fltr->dest_vsi = repr->src_vsi->back->eswitch.uplink_vsi; 664 fltr->direction = ICE_ESWITCH_FLTR_EGRESS; 665 } else if (ice_tc_is_dev_uplink(filter_dev) && 666 ice_is_port_repr_netdev(target_dev)) { 667 repr = ice_netdev_to_repr(target_dev); 668 669 fltr->dest_vsi = repr->src_vsi; 670 fltr->direction = ICE_ESWITCH_FLTR_INGRESS; 671 } else { 672 NL_SET_ERR_MSG_MOD(fltr->extack, 673 "Unsupported netdevice in switchdev mode"); 674 return -EINVAL; 675 } 676 677 return 0; 678 } 679 680 static int 681 ice_tc_setup_drop_action(struct net_device *filter_dev, 682 struct ice_tc_flower_fltr *fltr) 683 { 684 fltr->action.fltr_act = ICE_DROP_PACKET; 685 686 if (ice_is_port_repr_netdev(filter_dev)) { 687 fltr->direction = ICE_ESWITCH_FLTR_EGRESS; 688 } else if (ice_tc_is_dev_uplink(filter_dev)) { 689 fltr->direction = ICE_ESWITCH_FLTR_INGRESS; 690 } else { 691 NL_SET_ERR_MSG_MOD(fltr->extack, 692 "Unsupported netdevice in switchdev mode"); 693 return -EINVAL; 694 } 695 696 return 0; 697 } 698 699 static int ice_eswitch_tc_parse_action(struct net_device *filter_dev, 700 struct ice_tc_flower_fltr *fltr, 701 struct flow_action_entry *act) 702 { 703 int err; 704 705 switch (act->id) { 706 case FLOW_ACTION_DROP: 707 err = ice_tc_setup_drop_action(filter_dev, fltr); 708 if (err) 709 return err; 710 711 break; 712 713 case FLOW_ACTION_REDIRECT: 714 err = ice_tc_setup_redirect_action(filter_dev, fltr, act->dev); 715 if (err) 716 return err; 717 718 break; 719 720 default: 721 NL_SET_ERR_MSG_MOD(fltr->extack, "Unsupported action in switchdev mode"); 722 return -EINVAL; 723 } 724 725 return 0; 726 } 727 728 static int 729 ice_eswitch_add_tc_fltr(struct ice_vsi *vsi, struct ice_tc_flower_fltr *fltr) 730 { 731 struct ice_tc_flower_lyr_2_4_hdrs *headers = &fltr->outer_headers; 732 struct ice_adv_rule_info rule_info = { 0 }; 733 struct ice_rule_query_data rule_added; 734 struct ice_hw *hw = &vsi->back->hw; 735 struct ice_adv_lkup_elem *list; 736 u32 flags = fltr->flags; 737 int lkups_cnt; 738 int ret; 739 int i; 740 741 if (flags & ICE_TC_FLWR_FIELD_ENC_SRC_L4_PORT) { 742 NL_SET_ERR_MSG_MOD(fltr->extack, "Unsupported encap field(s)"); 743 return -EOPNOTSUPP; 744 } 745 746 lkups_cnt = ice_tc_count_lkups(flags, headers, fltr); 747 list = kcalloc(lkups_cnt, sizeof(*list), GFP_ATOMIC); 748 if (!list) 749 return -ENOMEM; 750 751 i = ice_tc_fill_rules(hw, flags, fltr, list, &rule_info, NULL); 752 if (i != lkups_cnt) { 753 ret = -EINVAL; 754 goto exit; 755 } 756 757 rule_info.sw_act.fltr_act = fltr->action.fltr_act; 758 if (fltr->action.fltr_act != ICE_DROP_PACKET) 759 rule_info.sw_act.vsi_handle = fltr->dest_vsi->idx; 760 /* For now, making priority to be highest, and it also becomes 761 * the priority for recipe which will get created as a result of 762 * new extraction sequence based on input set. 763 * Priority '7' is max val for switch recipe, higher the number 764 * results into order of switch rule evaluation. 765 */ 766 rule_info.priority = 7; 767 rule_info.flags_info.act_valid = true; 768 769 if (fltr->direction == ICE_ESWITCH_FLTR_INGRESS) { 770 /* Uplink to VF */ 771 rule_info.sw_act.flag |= ICE_FLTR_RX; 772 rule_info.sw_act.src = hw->pf_id; 773 rule_info.flags_info.act = ICE_SINGLE_ACT_LB_ENABLE; 774 } else if (fltr->direction == ICE_ESWITCH_FLTR_EGRESS && 775 fltr->dest_vsi == vsi->back->eswitch.uplink_vsi) { 776 /* VF to Uplink */ 777 rule_info.sw_act.flag |= ICE_FLTR_TX; 778 rule_info.sw_act.src = vsi->idx; 779 rule_info.flags_info.act = ICE_SINGLE_ACT_LAN_ENABLE; 780 /* This is a specific case. The destination VSI index is 781 * overwritten by the source VSI index. This type of filter 782 * should allow the packet to go to the LAN, not to the 783 * VSI passed here. It should set LAN_EN bit only. However, 784 * the VSI must be a valid one. Setting source VSI index 785 * here is safe. Even if the result from switch is set LAN_EN 786 * and LB_EN (which normally will pass the packet to this VSI) 787 * packet won't be seen on the VSI, because local loopback is 788 * turned off. 789 */ 790 rule_info.sw_act.vsi_handle = vsi->idx; 791 } else { 792 /* VF to VF */ 793 rule_info.sw_act.flag |= ICE_FLTR_TX; 794 rule_info.sw_act.src = vsi->idx; 795 rule_info.flags_info.act = ICE_SINGLE_ACT_LB_ENABLE; 796 } 797 798 /* specify the cookie as filter_rule_id */ 799 rule_info.fltr_rule_id = fltr->cookie; 800 rule_info.src_vsi = vsi->idx; 801 802 ret = ice_add_adv_rule(hw, list, lkups_cnt, &rule_info, &rule_added); 803 if (ret == -EEXIST) { 804 NL_SET_ERR_MSG_MOD(fltr->extack, "Unable to add filter because it already exist"); 805 ret = -EINVAL; 806 goto exit; 807 } else if (ret) { 808 NL_SET_ERR_MSG_MOD(fltr->extack, "Unable to add filter due to error"); 809 goto exit; 810 } 811 812 /* store the output params, which are needed later for removing 813 * advanced switch filter 814 */ 815 fltr->rid = rule_added.rid; 816 fltr->rule_id = rule_added.rule_id; 817 fltr->dest_vsi_handle = rule_added.vsi_handle; 818 819 exit: 820 kfree(list); 821 return ret; 822 } 823 824 /** 825 * ice_locate_vsi_using_queue - locate VSI using queue (forward to queue action) 826 * @vsi: Pointer to VSI 827 * @queue: Queue index 828 * 829 * Locate the VSI using specified "queue". When ADQ is not enabled, 830 * always return input VSI, otherwise locate corresponding 831 * VSI based on per channel "offset" and "qcount" 832 */ 833 struct ice_vsi * 834 ice_locate_vsi_using_queue(struct ice_vsi *vsi, int queue) 835 { 836 int num_tc, tc; 837 838 /* if ADQ is not active, passed VSI is the candidate VSI */ 839 if (!ice_is_adq_active(vsi->back)) 840 return vsi; 841 842 /* Locate the VSI (it could still be main PF VSI or CHNL_VSI depending 843 * upon queue number) 844 */ 845 num_tc = vsi->mqprio_qopt.qopt.num_tc; 846 847 for (tc = 0; tc < num_tc; tc++) { 848 int qcount = vsi->mqprio_qopt.qopt.count[tc]; 849 int offset = vsi->mqprio_qopt.qopt.offset[tc]; 850 851 if (queue >= offset && queue < offset + qcount) { 852 /* for non-ADQ TCs, passed VSI is the candidate VSI */ 853 if (tc < ICE_CHNL_START_TC) 854 return vsi; 855 else 856 return vsi->tc_map_vsi[tc]; 857 } 858 } 859 return NULL; 860 } 861 862 static struct ice_rx_ring * 863 ice_locate_rx_ring_using_queue(struct ice_vsi *vsi, 864 struct ice_tc_flower_fltr *tc_fltr) 865 { 866 u16 queue = tc_fltr->action.fwd.q.queue; 867 868 return queue < vsi->num_rxq ? vsi->rx_rings[queue] : NULL; 869 } 870 871 /** 872 * ice_tc_forward_action - Determine destination VSI and queue for the action 873 * @vsi: Pointer to VSI 874 * @tc_fltr: Pointer to TC flower filter structure 875 * 876 * Validates the tc forward action and determines the destination VSI and queue 877 * for the forward action. 878 */ 879 static struct ice_vsi * 880 ice_tc_forward_action(struct ice_vsi *vsi, struct ice_tc_flower_fltr *tc_fltr) 881 { 882 struct ice_rx_ring *ring = NULL; 883 struct ice_vsi *dest_vsi = NULL; 884 struct ice_pf *pf = vsi->back; 885 struct device *dev; 886 u32 tc_class; 887 int q; 888 889 dev = ice_pf_to_dev(pf); 890 891 /* Get the destination VSI and/or destination queue and validate them */ 892 switch (tc_fltr->action.fltr_act) { 893 case ICE_FWD_TO_VSI: 894 tc_class = tc_fltr->action.fwd.tc.tc_class; 895 /* Select the destination VSI */ 896 if (tc_class < ICE_CHNL_START_TC) { 897 NL_SET_ERR_MSG_MOD(tc_fltr->extack, 898 "Unable to add filter because of unsupported destination"); 899 return ERR_PTR(-EOPNOTSUPP); 900 } 901 /* Locate ADQ VSI depending on hw_tc number */ 902 dest_vsi = vsi->tc_map_vsi[tc_class]; 903 break; 904 case ICE_FWD_TO_Q: 905 /* Locate the Rx queue */ 906 ring = ice_locate_rx_ring_using_queue(vsi, tc_fltr); 907 if (!ring) { 908 dev_err(dev, 909 "Unable to locate Rx queue for action fwd_to_queue: %u\n", 910 tc_fltr->action.fwd.q.queue); 911 return ERR_PTR(-EINVAL); 912 } 913 /* Determine destination VSI even though the action is 914 * FWD_TO_QUEUE, because QUEUE is associated with VSI 915 */ 916 q = tc_fltr->action.fwd.q.queue; 917 dest_vsi = ice_locate_vsi_using_queue(vsi, q); 918 break; 919 default: 920 dev_err(dev, 921 "Unable to add filter because of unsupported action %u (supported actions: fwd to tc, fwd to queue)\n", 922 tc_fltr->action.fltr_act); 923 return ERR_PTR(-EINVAL); 924 } 925 /* Must have valid dest_vsi (it could be main VSI or ADQ VSI) */ 926 if (!dest_vsi) { 927 dev_err(dev, 928 "Unable to add filter because specified destination VSI doesn't exist\n"); 929 return ERR_PTR(-EINVAL); 930 } 931 return dest_vsi; 932 } 933 934 /** 935 * ice_add_tc_flower_adv_fltr - add appropriate filter rules 936 * @vsi: Pointer to VSI 937 * @tc_fltr: Pointer to TC flower filter structure 938 * 939 * based on filter parameters using Advance recipes supported 940 * by OS package. 941 */ 942 static int 943 ice_add_tc_flower_adv_fltr(struct ice_vsi *vsi, 944 struct ice_tc_flower_fltr *tc_fltr) 945 { 946 struct ice_tc_flower_lyr_2_4_hdrs *headers = &tc_fltr->outer_headers; 947 struct ice_adv_rule_info rule_info = {0}; 948 struct ice_rule_query_data rule_added; 949 struct ice_adv_lkup_elem *list; 950 struct ice_pf *pf = vsi->back; 951 struct ice_hw *hw = &pf->hw; 952 u32 flags = tc_fltr->flags; 953 struct ice_vsi *dest_vsi; 954 struct device *dev; 955 u16 lkups_cnt = 0; 956 u16 l4_proto = 0; 957 int ret = 0; 958 u16 i = 0; 959 960 dev = ice_pf_to_dev(pf); 961 if (ice_is_safe_mode(pf)) { 962 NL_SET_ERR_MSG_MOD(tc_fltr->extack, "Unable to add filter because driver is in safe mode"); 963 return -EOPNOTSUPP; 964 } 965 966 if (!flags || (flags & (ICE_TC_FLWR_FIELD_ENC_DEST_IPV4 | 967 ICE_TC_FLWR_FIELD_ENC_SRC_IPV4 | 968 ICE_TC_FLWR_FIELD_ENC_DEST_IPV6 | 969 ICE_TC_FLWR_FIELD_ENC_SRC_IPV6 | 970 ICE_TC_FLWR_FIELD_ENC_SRC_L4_PORT))) { 971 NL_SET_ERR_MSG_MOD(tc_fltr->extack, "Unsupported encap field(s)"); 972 return -EOPNOTSUPP; 973 } 974 975 /* validate forwarding action VSI and queue */ 976 if (ice_is_forward_action(tc_fltr->action.fltr_act)) { 977 dest_vsi = ice_tc_forward_action(vsi, tc_fltr); 978 if (IS_ERR(dest_vsi)) 979 return PTR_ERR(dest_vsi); 980 } 981 982 lkups_cnt = ice_tc_count_lkups(flags, headers, tc_fltr); 983 list = kcalloc(lkups_cnt, sizeof(*list), GFP_ATOMIC); 984 if (!list) 985 return -ENOMEM; 986 987 i = ice_tc_fill_rules(hw, flags, tc_fltr, list, &rule_info, &l4_proto); 988 if (i != lkups_cnt) { 989 ret = -EINVAL; 990 goto exit; 991 } 992 993 rule_info.sw_act.fltr_act = tc_fltr->action.fltr_act; 994 /* specify the cookie as filter_rule_id */ 995 rule_info.fltr_rule_id = tc_fltr->cookie; 996 997 switch (tc_fltr->action.fltr_act) { 998 case ICE_FWD_TO_VSI: 999 rule_info.sw_act.vsi_handle = dest_vsi->idx; 1000 rule_info.priority = ICE_SWITCH_FLTR_PRIO_VSI; 1001 rule_info.sw_act.src = hw->pf_id; 1002 dev_dbg(dev, "add switch rule for TC:%u vsi_idx:%u, lkups_cnt:%u\n", 1003 tc_fltr->action.fwd.tc.tc_class, 1004 rule_info.sw_act.vsi_handle, lkups_cnt); 1005 break; 1006 case ICE_FWD_TO_Q: 1007 /* HW queue number in global space */ 1008 rule_info.sw_act.fwd_id.q_id = tc_fltr->action.fwd.q.hw_queue; 1009 rule_info.sw_act.vsi_handle = dest_vsi->idx; 1010 rule_info.priority = ICE_SWITCH_FLTR_PRIO_QUEUE; 1011 rule_info.sw_act.src = hw->pf_id; 1012 dev_dbg(dev, "add switch rule action to forward to queue:%u (HW queue %u), lkups_cnt:%u\n", 1013 tc_fltr->action.fwd.q.queue, 1014 tc_fltr->action.fwd.q.hw_queue, lkups_cnt); 1015 break; 1016 case ICE_DROP_PACKET: 1017 rule_info.sw_act.flag |= ICE_FLTR_RX; 1018 rule_info.sw_act.src = hw->pf_id; 1019 rule_info.priority = ICE_SWITCH_FLTR_PRIO_VSI; 1020 break; 1021 default: 1022 ret = -EOPNOTSUPP; 1023 goto exit; 1024 } 1025 1026 ret = ice_add_adv_rule(hw, list, lkups_cnt, &rule_info, &rule_added); 1027 if (ret == -EEXIST) { 1028 NL_SET_ERR_MSG_MOD(tc_fltr->extack, 1029 "Unable to add filter because it already exist"); 1030 ret = -EINVAL; 1031 goto exit; 1032 } else if (ret) { 1033 NL_SET_ERR_MSG_MOD(tc_fltr->extack, 1034 "Unable to add filter due to error"); 1035 goto exit; 1036 } 1037 1038 /* store the output params, which are needed later for removing 1039 * advanced switch filter 1040 */ 1041 tc_fltr->rid = rule_added.rid; 1042 tc_fltr->rule_id = rule_added.rule_id; 1043 tc_fltr->dest_vsi_handle = rule_added.vsi_handle; 1044 if (tc_fltr->action.fltr_act == ICE_FWD_TO_VSI || 1045 tc_fltr->action.fltr_act == ICE_FWD_TO_Q) { 1046 tc_fltr->dest_vsi = dest_vsi; 1047 /* keep track of advanced switch filter for 1048 * destination VSI 1049 */ 1050 dest_vsi->num_chnl_fltr++; 1051 1052 /* keeps track of channel filters for PF VSI */ 1053 if (vsi->type == ICE_VSI_PF && 1054 (flags & (ICE_TC_FLWR_FIELD_DST_MAC | 1055 ICE_TC_FLWR_FIELD_ENC_DST_MAC))) 1056 pf->num_dmac_chnl_fltrs++; 1057 } 1058 switch (tc_fltr->action.fltr_act) { 1059 case ICE_FWD_TO_VSI: 1060 dev_dbg(dev, "added switch rule (lkups_cnt %u, flags 0x%x), action is forward to TC %u, rid %u, rule_id %u, vsi_idx %u\n", 1061 lkups_cnt, flags, 1062 tc_fltr->action.fwd.tc.tc_class, rule_added.rid, 1063 rule_added.rule_id, rule_added.vsi_handle); 1064 break; 1065 case ICE_FWD_TO_Q: 1066 dev_dbg(dev, "added switch rule (lkups_cnt %u, flags 0x%x), action is forward to queue: %u (HW queue %u) , rid %u, rule_id %u\n", 1067 lkups_cnt, flags, tc_fltr->action.fwd.q.queue, 1068 tc_fltr->action.fwd.q.hw_queue, rule_added.rid, 1069 rule_added.rule_id); 1070 break; 1071 case ICE_DROP_PACKET: 1072 dev_dbg(dev, "added switch rule (lkups_cnt %u, flags 0x%x), action is drop, rid %u, rule_id %u\n", 1073 lkups_cnt, flags, rule_added.rid, rule_added.rule_id); 1074 break; 1075 default: 1076 break; 1077 } 1078 exit: 1079 kfree(list); 1080 return ret; 1081 } 1082 1083 /** 1084 * ice_tc_set_pppoe - Parse PPPoE fields from TC flower filter 1085 * @match: Pointer to flow match structure 1086 * @fltr: Pointer to filter structure 1087 * @headers: Pointer to outer header fields 1088 * @returns PPP protocol used in filter (ppp_ses or ppp_disc) 1089 */ 1090 static u16 1091 ice_tc_set_pppoe(struct flow_match_pppoe *match, 1092 struct ice_tc_flower_fltr *fltr, 1093 struct ice_tc_flower_lyr_2_4_hdrs *headers) 1094 { 1095 if (match->mask->session_id) { 1096 fltr->flags |= ICE_TC_FLWR_FIELD_PPPOE_SESSID; 1097 headers->pppoe_hdr.session_id = match->key->session_id; 1098 } 1099 1100 if (match->mask->ppp_proto) { 1101 fltr->flags |= ICE_TC_FLWR_FIELD_PPP_PROTO; 1102 headers->pppoe_hdr.ppp_proto = match->key->ppp_proto; 1103 } 1104 1105 return be16_to_cpu(match->key->type); 1106 } 1107 1108 /** 1109 * ice_tc_set_ipv4 - Parse IPv4 addresses from TC flower filter 1110 * @match: Pointer to flow match structure 1111 * @fltr: Pointer to filter structure 1112 * @headers: inner or outer header fields 1113 * @is_encap: set true for tunnel IPv4 address 1114 */ 1115 static int 1116 ice_tc_set_ipv4(struct flow_match_ipv4_addrs *match, 1117 struct ice_tc_flower_fltr *fltr, 1118 struct ice_tc_flower_lyr_2_4_hdrs *headers, bool is_encap) 1119 { 1120 if (match->key->dst) { 1121 if (is_encap) 1122 fltr->flags |= ICE_TC_FLWR_FIELD_ENC_DEST_IPV4; 1123 else 1124 fltr->flags |= ICE_TC_FLWR_FIELD_DEST_IPV4; 1125 headers->l3_key.dst_ipv4 = match->key->dst; 1126 headers->l3_mask.dst_ipv4 = match->mask->dst; 1127 } 1128 if (match->key->src) { 1129 if (is_encap) 1130 fltr->flags |= ICE_TC_FLWR_FIELD_ENC_SRC_IPV4; 1131 else 1132 fltr->flags |= ICE_TC_FLWR_FIELD_SRC_IPV4; 1133 headers->l3_key.src_ipv4 = match->key->src; 1134 headers->l3_mask.src_ipv4 = match->mask->src; 1135 } 1136 return 0; 1137 } 1138 1139 /** 1140 * ice_tc_set_ipv6 - Parse IPv6 addresses from TC flower filter 1141 * @match: Pointer to flow match structure 1142 * @fltr: Pointer to filter structure 1143 * @headers: inner or outer header fields 1144 * @is_encap: set true for tunnel IPv6 address 1145 */ 1146 static int 1147 ice_tc_set_ipv6(struct flow_match_ipv6_addrs *match, 1148 struct ice_tc_flower_fltr *fltr, 1149 struct ice_tc_flower_lyr_2_4_hdrs *headers, bool is_encap) 1150 { 1151 struct ice_tc_l3_hdr *l3_key, *l3_mask; 1152 1153 /* src and dest IPV6 address should not be LOOPBACK 1154 * (0:0:0:0:0:0:0:1), which can be represented as ::1 1155 */ 1156 if (ipv6_addr_loopback(&match->key->dst) || 1157 ipv6_addr_loopback(&match->key->src)) { 1158 NL_SET_ERR_MSG_MOD(fltr->extack, "Bad IPv6, addr is LOOPBACK"); 1159 return -EINVAL; 1160 } 1161 /* if src/dest IPv6 address is *,* error */ 1162 if (ipv6_addr_any(&match->mask->dst) && 1163 ipv6_addr_any(&match->mask->src)) { 1164 NL_SET_ERR_MSG_MOD(fltr->extack, "Bad src/dest IPv6, addr is any"); 1165 return -EINVAL; 1166 } 1167 if (!ipv6_addr_any(&match->mask->dst)) { 1168 if (is_encap) 1169 fltr->flags |= ICE_TC_FLWR_FIELD_ENC_DEST_IPV6; 1170 else 1171 fltr->flags |= ICE_TC_FLWR_FIELD_DEST_IPV6; 1172 } 1173 if (!ipv6_addr_any(&match->mask->src)) { 1174 if (is_encap) 1175 fltr->flags |= ICE_TC_FLWR_FIELD_ENC_SRC_IPV6; 1176 else 1177 fltr->flags |= ICE_TC_FLWR_FIELD_SRC_IPV6; 1178 } 1179 1180 l3_key = &headers->l3_key; 1181 l3_mask = &headers->l3_mask; 1182 1183 if (fltr->flags & (ICE_TC_FLWR_FIELD_ENC_SRC_IPV6 | 1184 ICE_TC_FLWR_FIELD_SRC_IPV6)) { 1185 memcpy(&l3_key->src_ipv6_addr, &match->key->src.s6_addr, 1186 sizeof(match->key->src.s6_addr)); 1187 memcpy(&l3_mask->src_ipv6_addr, &match->mask->src.s6_addr, 1188 sizeof(match->mask->src.s6_addr)); 1189 } 1190 if (fltr->flags & (ICE_TC_FLWR_FIELD_ENC_DEST_IPV6 | 1191 ICE_TC_FLWR_FIELD_DEST_IPV6)) { 1192 memcpy(&l3_key->dst_ipv6_addr, &match->key->dst.s6_addr, 1193 sizeof(match->key->dst.s6_addr)); 1194 memcpy(&l3_mask->dst_ipv6_addr, &match->mask->dst.s6_addr, 1195 sizeof(match->mask->dst.s6_addr)); 1196 } 1197 1198 return 0; 1199 } 1200 1201 /** 1202 * ice_tc_set_tos_ttl - Parse IP ToS/TTL from TC flower filter 1203 * @match: Pointer to flow match structure 1204 * @fltr: Pointer to filter structure 1205 * @headers: inner or outer header fields 1206 * @is_encap: set true for tunnel 1207 */ 1208 static void 1209 ice_tc_set_tos_ttl(struct flow_match_ip *match, 1210 struct ice_tc_flower_fltr *fltr, 1211 struct ice_tc_flower_lyr_2_4_hdrs *headers, 1212 bool is_encap) 1213 { 1214 if (match->mask->tos) { 1215 if (is_encap) 1216 fltr->flags |= ICE_TC_FLWR_FIELD_ENC_IP_TOS; 1217 else 1218 fltr->flags |= ICE_TC_FLWR_FIELD_IP_TOS; 1219 1220 headers->l3_key.tos = match->key->tos; 1221 headers->l3_mask.tos = match->mask->tos; 1222 } 1223 1224 if (match->mask->ttl) { 1225 if (is_encap) 1226 fltr->flags |= ICE_TC_FLWR_FIELD_ENC_IP_TTL; 1227 else 1228 fltr->flags |= ICE_TC_FLWR_FIELD_IP_TTL; 1229 1230 headers->l3_key.ttl = match->key->ttl; 1231 headers->l3_mask.ttl = match->mask->ttl; 1232 } 1233 } 1234 1235 /** 1236 * ice_tc_set_port - Parse ports from TC flower filter 1237 * @match: Flow match structure 1238 * @fltr: Pointer to filter structure 1239 * @headers: inner or outer header fields 1240 * @is_encap: set true for tunnel port 1241 */ 1242 static int 1243 ice_tc_set_port(struct flow_match_ports match, 1244 struct ice_tc_flower_fltr *fltr, 1245 struct ice_tc_flower_lyr_2_4_hdrs *headers, bool is_encap) 1246 { 1247 if (match.key->dst) { 1248 if (is_encap) 1249 fltr->flags |= ICE_TC_FLWR_FIELD_ENC_DEST_L4_PORT; 1250 else 1251 fltr->flags |= ICE_TC_FLWR_FIELD_DEST_L4_PORT; 1252 1253 headers->l4_key.dst_port = match.key->dst; 1254 headers->l4_mask.dst_port = match.mask->dst; 1255 } 1256 if (match.key->src) { 1257 if (is_encap) 1258 fltr->flags |= ICE_TC_FLWR_FIELD_ENC_SRC_L4_PORT; 1259 else 1260 fltr->flags |= ICE_TC_FLWR_FIELD_SRC_L4_PORT; 1261 1262 headers->l4_key.src_port = match.key->src; 1263 headers->l4_mask.src_port = match.mask->src; 1264 } 1265 return 0; 1266 } 1267 1268 static struct net_device * 1269 ice_get_tunnel_device(struct net_device *dev, struct flow_rule *rule) 1270 { 1271 struct flow_action_entry *act; 1272 int i; 1273 1274 if (ice_is_tunnel_supported(dev)) 1275 return dev; 1276 1277 flow_action_for_each(i, act, &rule->action) { 1278 if (act->id == FLOW_ACTION_REDIRECT && 1279 ice_is_tunnel_supported(act->dev)) 1280 return act->dev; 1281 } 1282 1283 return NULL; 1284 } 1285 1286 /** 1287 * ice_parse_gtp_type - Sets GTP tunnel type to GTP-U or GTP-C 1288 * @match: Flow match structure 1289 * @fltr: Pointer to filter structure 1290 * 1291 * GTP-C/GTP-U is selected based on destination port number (enc_dst_port). 1292 * Before calling this funtcion, fltr->tunnel_type should be set to TNL_GTPU, 1293 * therefore making GTP-U the default choice (when destination port number is 1294 * not specified). 1295 */ 1296 static int 1297 ice_parse_gtp_type(struct flow_match_ports match, 1298 struct ice_tc_flower_fltr *fltr) 1299 { 1300 u16 dst_port; 1301 1302 if (match.key->dst) { 1303 dst_port = be16_to_cpu(match.key->dst); 1304 1305 switch (dst_port) { 1306 case 2152: 1307 break; 1308 case 2123: 1309 fltr->tunnel_type = TNL_GTPC; 1310 break; 1311 default: 1312 NL_SET_ERR_MSG_MOD(fltr->extack, "Unsupported GTP port number"); 1313 return -EINVAL; 1314 } 1315 } 1316 1317 return 0; 1318 } 1319 1320 static int 1321 ice_parse_tunnel_attr(struct net_device *dev, struct flow_rule *rule, 1322 struct ice_tc_flower_fltr *fltr) 1323 { 1324 struct ice_tc_flower_lyr_2_4_hdrs *headers = &fltr->outer_headers; 1325 struct flow_match_control enc_control; 1326 1327 fltr->tunnel_type = ice_tc_tun_get_type(dev); 1328 headers->l3_key.ip_proto = IPPROTO_UDP; 1329 1330 if (flow_rule_match_key(rule, FLOW_DISSECTOR_KEY_ENC_KEYID)) { 1331 struct flow_match_enc_keyid enc_keyid; 1332 1333 flow_rule_match_enc_keyid(rule, &enc_keyid); 1334 1335 if (!enc_keyid.mask->keyid || 1336 enc_keyid.mask->keyid != cpu_to_be32(ICE_TC_FLOWER_MASK_32)) 1337 return -EINVAL; 1338 1339 fltr->flags |= ICE_TC_FLWR_FIELD_TENANT_ID; 1340 fltr->tenant_id = enc_keyid.key->keyid; 1341 } 1342 1343 flow_rule_match_enc_control(rule, &enc_control); 1344 1345 if (enc_control.key->addr_type == FLOW_DISSECTOR_KEY_IPV4_ADDRS) { 1346 struct flow_match_ipv4_addrs match; 1347 1348 flow_rule_match_enc_ipv4_addrs(rule, &match); 1349 if (ice_tc_set_ipv4(&match, fltr, headers, true)) 1350 return -EINVAL; 1351 } else if (enc_control.key->addr_type == 1352 FLOW_DISSECTOR_KEY_IPV6_ADDRS) { 1353 struct flow_match_ipv6_addrs match; 1354 1355 flow_rule_match_enc_ipv6_addrs(rule, &match); 1356 if (ice_tc_set_ipv6(&match, fltr, headers, true)) 1357 return -EINVAL; 1358 } 1359 1360 if (flow_rule_match_key(rule, FLOW_DISSECTOR_KEY_ENC_IP)) { 1361 struct flow_match_ip match; 1362 1363 flow_rule_match_enc_ip(rule, &match); 1364 ice_tc_set_tos_ttl(&match, fltr, headers, true); 1365 } 1366 1367 if (flow_rule_match_key(rule, FLOW_DISSECTOR_KEY_ENC_PORTS) && 1368 fltr->tunnel_type != TNL_VXLAN && fltr->tunnel_type != TNL_GENEVE) { 1369 struct flow_match_ports match; 1370 1371 flow_rule_match_enc_ports(rule, &match); 1372 1373 if (fltr->tunnel_type != TNL_GTPU) { 1374 if (ice_tc_set_port(match, fltr, headers, true)) 1375 return -EINVAL; 1376 } else { 1377 if (ice_parse_gtp_type(match, fltr)) 1378 return -EINVAL; 1379 } 1380 } 1381 1382 if (flow_rule_match_key(rule, FLOW_DISSECTOR_KEY_ENC_OPTS)) { 1383 struct flow_match_enc_opts match; 1384 1385 flow_rule_match_enc_opts(rule, &match); 1386 1387 memcpy(&fltr->gtp_pdu_info_keys, &match.key->data[0], 1388 sizeof(struct gtp_pdu_session_info)); 1389 1390 memcpy(&fltr->gtp_pdu_info_masks, &match.mask->data[0], 1391 sizeof(struct gtp_pdu_session_info)); 1392 1393 fltr->flags |= ICE_TC_FLWR_FIELD_ENC_OPTS; 1394 } 1395 1396 return 0; 1397 } 1398 1399 /** 1400 * ice_parse_cls_flower - Parse TC flower filters provided by kernel 1401 * @vsi: Pointer to the VSI 1402 * @filter_dev: Pointer to device on which filter is being added 1403 * @f: Pointer to struct flow_cls_offload 1404 * @fltr: Pointer to filter structure 1405 */ 1406 static int 1407 ice_parse_cls_flower(struct net_device *filter_dev, struct ice_vsi *vsi, 1408 struct flow_cls_offload *f, 1409 struct ice_tc_flower_fltr *fltr) 1410 { 1411 struct ice_tc_flower_lyr_2_4_hdrs *headers = &fltr->outer_headers; 1412 struct flow_rule *rule = flow_cls_offload_flow_rule(f); 1413 u16 n_proto_mask = 0, n_proto_key = 0, addr_type = 0; 1414 struct flow_dissector *dissector; 1415 struct net_device *tunnel_dev; 1416 1417 dissector = rule->match.dissector; 1418 1419 if (dissector->used_keys & 1420 ~(BIT_ULL(FLOW_DISSECTOR_KEY_CONTROL) | 1421 BIT_ULL(FLOW_DISSECTOR_KEY_BASIC) | 1422 BIT_ULL(FLOW_DISSECTOR_KEY_ETH_ADDRS) | 1423 BIT_ULL(FLOW_DISSECTOR_KEY_VLAN) | 1424 BIT_ULL(FLOW_DISSECTOR_KEY_CVLAN) | 1425 BIT_ULL(FLOW_DISSECTOR_KEY_IPV4_ADDRS) | 1426 BIT_ULL(FLOW_DISSECTOR_KEY_IPV6_ADDRS) | 1427 BIT_ULL(FLOW_DISSECTOR_KEY_ENC_CONTROL) | 1428 BIT_ULL(FLOW_DISSECTOR_KEY_ENC_KEYID) | 1429 BIT_ULL(FLOW_DISSECTOR_KEY_ENC_IPV4_ADDRS) | 1430 BIT_ULL(FLOW_DISSECTOR_KEY_ENC_IPV6_ADDRS) | 1431 BIT_ULL(FLOW_DISSECTOR_KEY_ENC_PORTS) | 1432 BIT_ULL(FLOW_DISSECTOR_KEY_ENC_OPTS) | 1433 BIT_ULL(FLOW_DISSECTOR_KEY_IP) | 1434 BIT_ULL(FLOW_DISSECTOR_KEY_ENC_IP) | 1435 BIT_ULL(FLOW_DISSECTOR_KEY_PORTS) | 1436 BIT_ULL(FLOW_DISSECTOR_KEY_PPPOE) | 1437 BIT_ULL(FLOW_DISSECTOR_KEY_L2TPV3))) { 1438 NL_SET_ERR_MSG_MOD(fltr->extack, "Unsupported key used"); 1439 return -EOPNOTSUPP; 1440 } 1441 1442 tunnel_dev = ice_get_tunnel_device(filter_dev, rule); 1443 if (tunnel_dev) { 1444 int err; 1445 1446 filter_dev = tunnel_dev; 1447 1448 err = ice_parse_tunnel_attr(filter_dev, rule, fltr); 1449 if (err) { 1450 NL_SET_ERR_MSG_MOD(fltr->extack, "Failed to parse TC flower tunnel attributes"); 1451 return err; 1452 } 1453 1454 /* header pointers should point to the inner headers, outer 1455 * header were already set by ice_parse_tunnel_attr 1456 */ 1457 headers = &fltr->inner_headers; 1458 } else if (dissector->used_keys & 1459 (BIT_ULL(FLOW_DISSECTOR_KEY_ENC_IPV4_ADDRS) | 1460 BIT_ULL(FLOW_DISSECTOR_KEY_ENC_IPV6_ADDRS) | 1461 BIT_ULL(FLOW_DISSECTOR_KEY_ENC_KEYID) | 1462 BIT_ULL(FLOW_DISSECTOR_KEY_ENC_PORTS) | 1463 BIT_ULL(FLOW_DISSECTOR_KEY_ENC_IP) | 1464 BIT_ULL(FLOW_DISSECTOR_KEY_ENC_OPTS) | 1465 BIT_ULL(FLOW_DISSECTOR_KEY_ENC_CONTROL))) { 1466 NL_SET_ERR_MSG_MOD(fltr->extack, "Tunnel key used, but device isn't a tunnel"); 1467 return -EOPNOTSUPP; 1468 } else { 1469 fltr->tunnel_type = TNL_LAST; 1470 } 1471 1472 if (flow_rule_match_key(rule, FLOW_DISSECTOR_KEY_BASIC)) { 1473 struct flow_match_basic match; 1474 1475 flow_rule_match_basic(rule, &match); 1476 1477 n_proto_key = ntohs(match.key->n_proto); 1478 n_proto_mask = ntohs(match.mask->n_proto); 1479 1480 if (n_proto_key == ETH_P_ALL || n_proto_key == 0 || 1481 fltr->tunnel_type == TNL_GTPU || 1482 fltr->tunnel_type == TNL_GTPC) { 1483 n_proto_key = 0; 1484 n_proto_mask = 0; 1485 } else { 1486 fltr->flags |= ICE_TC_FLWR_FIELD_ETH_TYPE_ID; 1487 } 1488 1489 headers->l2_key.n_proto = cpu_to_be16(n_proto_key); 1490 headers->l2_mask.n_proto = cpu_to_be16(n_proto_mask); 1491 headers->l3_key.ip_proto = match.key->ip_proto; 1492 } 1493 1494 if (flow_rule_match_key(rule, FLOW_DISSECTOR_KEY_ETH_ADDRS)) { 1495 struct flow_match_eth_addrs match; 1496 1497 flow_rule_match_eth_addrs(rule, &match); 1498 1499 if (!is_zero_ether_addr(match.key->dst)) { 1500 ether_addr_copy(headers->l2_key.dst_mac, 1501 match.key->dst); 1502 ether_addr_copy(headers->l2_mask.dst_mac, 1503 match.mask->dst); 1504 fltr->flags |= ICE_TC_FLWR_FIELD_DST_MAC; 1505 } 1506 1507 if (!is_zero_ether_addr(match.key->src)) { 1508 ether_addr_copy(headers->l2_key.src_mac, 1509 match.key->src); 1510 ether_addr_copy(headers->l2_mask.src_mac, 1511 match.mask->src); 1512 fltr->flags |= ICE_TC_FLWR_FIELD_SRC_MAC; 1513 } 1514 } 1515 1516 if (flow_rule_match_key(rule, FLOW_DISSECTOR_KEY_VLAN) || 1517 is_vlan_dev(filter_dev)) { 1518 struct flow_dissector_key_vlan mask; 1519 struct flow_dissector_key_vlan key; 1520 struct flow_match_vlan match; 1521 1522 if (is_vlan_dev(filter_dev)) { 1523 match.key = &key; 1524 match.key->vlan_id = vlan_dev_vlan_id(filter_dev); 1525 match.key->vlan_priority = 0; 1526 match.mask = &mask; 1527 memset(match.mask, 0xff, sizeof(*match.mask)); 1528 match.mask->vlan_priority = 0; 1529 } else { 1530 flow_rule_match_vlan(rule, &match); 1531 } 1532 1533 if (match.mask->vlan_id) { 1534 if (match.mask->vlan_id == VLAN_VID_MASK) { 1535 fltr->flags |= ICE_TC_FLWR_FIELD_VLAN; 1536 headers->vlan_hdr.vlan_id = 1537 cpu_to_be16(match.key->vlan_id & 1538 VLAN_VID_MASK); 1539 } else { 1540 NL_SET_ERR_MSG_MOD(fltr->extack, "Bad VLAN mask"); 1541 return -EINVAL; 1542 } 1543 } 1544 1545 if (match.mask->vlan_priority) { 1546 fltr->flags |= ICE_TC_FLWR_FIELD_VLAN_PRIO; 1547 headers->vlan_hdr.vlan_prio = 1548 be16_encode_bits(match.key->vlan_priority, 1549 VLAN_PRIO_MASK); 1550 } 1551 1552 if (match.mask->vlan_tpid) { 1553 headers->vlan_hdr.vlan_tpid = match.key->vlan_tpid; 1554 fltr->flags |= ICE_TC_FLWR_FIELD_VLAN_TPID; 1555 } 1556 } 1557 1558 if (flow_rule_match_key(rule, FLOW_DISSECTOR_KEY_CVLAN)) { 1559 struct flow_match_vlan match; 1560 1561 if (!ice_is_dvm_ena(&vsi->back->hw)) { 1562 NL_SET_ERR_MSG_MOD(fltr->extack, "Double VLAN mode is not enabled"); 1563 return -EINVAL; 1564 } 1565 1566 flow_rule_match_cvlan(rule, &match); 1567 1568 if (match.mask->vlan_id) { 1569 if (match.mask->vlan_id == VLAN_VID_MASK) { 1570 fltr->flags |= ICE_TC_FLWR_FIELD_CVLAN; 1571 headers->cvlan_hdr.vlan_id = 1572 cpu_to_be16(match.key->vlan_id & 1573 VLAN_VID_MASK); 1574 } else { 1575 NL_SET_ERR_MSG_MOD(fltr->extack, 1576 "Bad CVLAN mask"); 1577 return -EINVAL; 1578 } 1579 } 1580 1581 if (match.mask->vlan_priority) { 1582 fltr->flags |= ICE_TC_FLWR_FIELD_CVLAN_PRIO; 1583 headers->cvlan_hdr.vlan_prio = 1584 be16_encode_bits(match.key->vlan_priority, 1585 VLAN_PRIO_MASK); 1586 } 1587 } 1588 1589 if (flow_rule_match_key(rule, FLOW_DISSECTOR_KEY_PPPOE)) { 1590 struct flow_match_pppoe match; 1591 1592 flow_rule_match_pppoe(rule, &match); 1593 n_proto_key = ice_tc_set_pppoe(&match, fltr, headers); 1594 1595 /* If ethertype equals ETH_P_PPP_SES, n_proto might be 1596 * overwritten by encapsulated protocol (ppp_proto field) or set 1597 * to 0. To correct this, flow_match_pppoe provides the type 1598 * field, which contains the actual ethertype (ETH_P_PPP_SES). 1599 */ 1600 headers->l2_key.n_proto = cpu_to_be16(n_proto_key); 1601 headers->l2_mask.n_proto = cpu_to_be16(0xFFFF); 1602 fltr->flags |= ICE_TC_FLWR_FIELD_ETH_TYPE_ID; 1603 } 1604 1605 if (flow_rule_match_key(rule, FLOW_DISSECTOR_KEY_CONTROL)) { 1606 struct flow_match_control match; 1607 1608 flow_rule_match_control(rule, &match); 1609 1610 addr_type = match.key->addr_type; 1611 } 1612 1613 if (addr_type == FLOW_DISSECTOR_KEY_IPV4_ADDRS) { 1614 struct flow_match_ipv4_addrs match; 1615 1616 flow_rule_match_ipv4_addrs(rule, &match); 1617 if (ice_tc_set_ipv4(&match, fltr, headers, false)) 1618 return -EINVAL; 1619 } 1620 1621 if (addr_type == FLOW_DISSECTOR_KEY_IPV6_ADDRS) { 1622 struct flow_match_ipv6_addrs match; 1623 1624 flow_rule_match_ipv6_addrs(rule, &match); 1625 if (ice_tc_set_ipv6(&match, fltr, headers, false)) 1626 return -EINVAL; 1627 } 1628 1629 if (flow_rule_match_key(rule, FLOW_DISSECTOR_KEY_IP)) { 1630 struct flow_match_ip match; 1631 1632 flow_rule_match_ip(rule, &match); 1633 ice_tc_set_tos_ttl(&match, fltr, headers, false); 1634 } 1635 1636 if (flow_rule_match_key(rule, FLOW_DISSECTOR_KEY_L2TPV3)) { 1637 struct flow_match_l2tpv3 match; 1638 1639 flow_rule_match_l2tpv3(rule, &match); 1640 1641 fltr->flags |= ICE_TC_FLWR_FIELD_L2TPV3_SESSID; 1642 headers->l2tpv3_hdr.session_id = match.key->session_id; 1643 } 1644 1645 if (flow_rule_match_key(rule, FLOW_DISSECTOR_KEY_PORTS)) { 1646 struct flow_match_ports match; 1647 1648 flow_rule_match_ports(rule, &match); 1649 if (ice_tc_set_port(match, fltr, headers, false)) 1650 return -EINVAL; 1651 switch (headers->l3_key.ip_proto) { 1652 case IPPROTO_TCP: 1653 case IPPROTO_UDP: 1654 break; 1655 default: 1656 NL_SET_ERR_MSG_MOD(fltr->extack, "Only UDP and TCP transport are supported"); 1657 return -EINVAL; 1658 } 1659 } 1660 return 0; 1661 } 1662 1663 /** 1664 * ice_add_switch_fltr - Add TC flower filters 1665 * @vsi: Pointer to VSI 1666 * @fltr: Pointer to struct ice_tc_flower_fltr 1667 * 1668 * Add filter in HW switch block 1669 */ 1670 static int 1671 ice_add_switch_fltr(struct ice_vsi *vsi, struct ice_tc_flower_fltr *fltr) 1672 { 1673 if (fltr->action.fltr_act == ICE_FWD_TO_QGRP) 1674 return -EOPNOTSUPP; 1675 1676 if (ice_is_eswitch_mode_switchdev(vsi->back)) 1677 return ice_eswitch_add_tc_fltr(vsi, fltr); 1678 1679 return ice_add_tc_flower_adv_fltr(vsi, fltr); 1680 } 1681 1682 /** 1683 * ice_prep_adq_filter - Prepare ADQ filter with the required additional headers 1684 * @vsi: Pointer to VSI 1685 * @fltr: Pointer to TC flower filter structure 1686 * 1687 * Prepare ADQ filter with the required additional header fields 1688 */ 1689 static int 1690 ice_prep_adq_filter(struct ice_vsi *vsi, struct ice_tc_flower_fltr *fltr) 1691 { 1692 if ((fltr->flags & ICE_TC_FLWR_FIELD_TENANT_ID) && 1693 (fltr->flags & (ICE_TC_FLWR_FIELD_DST_MAC | 1694 ICE_TC_FLWR_FIELD_SRC_MAC))) { 1695 NL_SET_ERR_MSG_MOD(fltr->extack, 1696 "Unable to add filter because filter using tunnel key and inner MAC is unsupported combination"); 1697 return -EOPNOTSUPP; 1698 } 1699 1700 /* For ADQ, filter must include dest MAC address, otherwise unwanted 1701 * packets with unrelated MAC address get delivered to ADQ VSIs as long 1702 * as remaining filter criteria is satisfied such as dest IP address 1703 * and dest/src L4 port. Below code handles the following cases: 1704 * 1. For non-tunnel, if user specify MAC addresses, use them. 1705 * 2. For non-tunnel, if user didn't specify MAC address, add implicit 1706 * dest MAC to be lower netdev's active unicast MAC address 1707 * 3. For tunnel, as of now TC-filter through flower classifier doesn't 1708 * have provision for user to specify outer DMAC, hence driver to 1709 * implicitly add outer dest MAC to be lower netdev's active unicast 1710 * MAC address. 1711 */ 1712 if (fltr->tunnel_type != TNL_LAST && 1713 !(fltr->flags & ICE_TC_FLWR_FIELD_ENC_DST_MAC)) 1714 fltr->flags |= ICE_TC_FLWR_FIELD_ENC_DST_MAC; 1715 1716 if (fltr->tunnel_type == TNL_LAST && 1717 !(fltr->flags & ICE_TC_FLWR_FIELD_DST_MAC)) 1718 fltr->flags |= ICE_TC_FLWR_FIELD_DST_MAC; 1719 1720 if (fltr->flags & (ICE_TC_FLWR_FIELD_DST_MAC | 1721 ICE_TC_FLWR_FIELD_ENC_DST_MAC)) { 1722 ether_addr_copy(fltr->outer_headers.l2_key.dst_mac, 1723 vsi->netdev->dev_addr); 1724 eth_broadcast_addr(fltr->outer_headers.l2_mask.dst_mac); 1725 } 1726 1727 /* Make sure VLAN is already added to main VSI, before allowing ADQ to 1728 * add a VLAN based filter such as MAC + VLAN + L4 port. 1729 */ 1730 if (fltr->flags & ICE_TC_FLWR_FIELD_VLAN) { 1731 u16 vlan_id = be16_to_cpu(fltr->outer_headers.vlan_hdr.vlan_id); 1732 1733 if (!ice_vlan_fltr_exist(&vsi->back->hw, vlan_id, vsi->idx)) { 1734 NL_SET_ERR_MSG_MOD(fltr->extack, 1735 "Unable to add filter because legacy VLAN filter for specified destination doesn't exist"); 1736 return -EINVAL; 1737 } 1738 } 1739 return 0; 1740 } 1741 1742 /** 1743 * ice_handle_tclass_action - Support directing to a traffic class 1744 * @vsi: Pointer to VSI 1745 * @cls_flower: Pointer to TC flower offload structure 1746 * @fltr: Pointer to TC flower filter structure 1747 * 1748 * Support directing traffic to a traffic class/queue-set 1749 */ 1750 static int 1751 ice_handle_tclass_action(struct ice_vsi *vsi, 1752 struct flow_cls_offload *cls_flower, 1753 struct ice_tc_flower_fltr *fltr) 1754 { 1755 int tc = tc_classid_to_hwtc(vsi->netdev, cls_flower->classid); 1756 1757 /* user specified hw_tc (must be non-zero for ADQ TC), action is forward 1758 * to hw_tc (i.e. ADQ channel number) 1759 */ 1760 if (tc < ICE_CHNL_START_TC) { 1761 NL_SET_ERR_MSG_MOD(fltr->extack, 1762 "Unable to add filter because of unsupported destination"); 1763 return -EOPNOTSUPP; 1764 } 1765 if (!(vsi->all_enatc & BIT(tc))) { 1766 NL_SET_ERR_MSG_MOD(fltr->extack, 1767 "Unable to add filter because of non-existence destination"); 1768 return -EINVAL; 1769 } 1770 fltr->action.fltr_act = ICE_FWD_TO_VSI; 1771 fltr->action.fwd.tc.tc_class = tc; 1772 1773 return ice_prep_adq_filter(vsi, fltr); 1774 } 1775 1776 static int 1777 ice_tc_forward_to_queue(struct ice_vsi *vsi, struct ice_tc_flower_fltr *fltr, 1778 struct flow_action_entry *act) 1779 { 1780 struct ice_vsi *ch_vsi = NULL; 1781 u16 queue = act->rx_queue; 1782 1783 if (queue >= vsi->num_rxq) { 1784 NL_SET_ERR_MSG_MOD(fltr->extack, 1785 "Unable to add filter because specified queue is invalid"); 1786 return -EINVAL; 1787 } 1788 fltr->action.fltr_act = ICE_FWD_TO_Q; 1789 fltr->action.fwd.q.queue = queue; 1790 /* determine corresponding HW queue */ 1791 fltr->action.fwd.q.hw_queue = vsi->rxq_map[queue]; 1792 1793 /* If ADQ is configured, and the queue belongs to ADQ VSI, then prepare 1794 * ADQ switch filter 1795 */ 1796 ch_vsi = ice_locate_vsi_using_queue(vsi, fltr->action.fwd.q.queue); 1797 if (!ch_vsi) 1798 return -EINVAL; 1799 fltr->dest_vsi = ch_vsi; 1800 if (!ice_is_chnl_fltr(fltr)) 1801 return 0; 1802 1803 return ice_prep_adq_filter(vsi, fltr); 1804 } 1805 1806 static int 1807 ice_tc_parse_action(struct ice_vsi *vsi, struct ice_tc_flower_fltr *fltr, 1808 struct flow_action_entry *act) 1809 { 1810 switch (act->id) { 1811 case FLOW_ACTION_RX_QUEUE_MAPPING: 1812 /* forward to queue */ 1813 return ice_tc_forward_to_queue(vsi, fltr, act); 1814 case FLOW_ACTION_DROP: 1815 fltr->action.fltr_act = ICE_DROP_PACKET; 1816 return 0; 1817 default: 1818 NL_SET_ERR_MSG_MOD(fltr->extack, "Unsupported TC action"); 1819 return -EOPNOTSUPP; 1820 } 1821 } 1822 1823 /** 1824 * ice_parse_tc_flower_actions - Parse the actions for a TC filter 1825 * @filter_dev: Pointer to device on which filter is being added 1826 * @vsi: Pointer to VSI 1827 * @cls_flower: Pointer to TC flower offload structure 1828 * @fltr: Pointer to TC flower filter structure 1829 * 1830 * Parse the actions for a TC filter 1831 */ 1832 static int ice_parse_tc_flower_actions(struct net_device *filter_dev, 1833 struct ice_vsi *vsi, 1834 struct flow_cls_offload *cls_flower, 1835 struct ice_tc_flower_fltr *fltr) 1836 { 1837 struct flow_rule *rule = flow_cls_offload_flow_rule(cls_flower); 1838 struct flow_action *flow_action = &rule->action; 1839 struct flow_action_entry *act; 1840 int i, err; 1841 1842 if (cls_flower->classid) 1843 return ice_handle_tclass_action(vsi, cls_flower, fltr); 1844 1845 if (!flow_action_has_entries(flow_action)) 1846 return -EINVAL; 1847 1848 flow_action_for_each(i, act, flow_action) { 1849 if (ice_is_eswitch_mode_switchdev(vsi->back)) 1850 err = ice_eswitch_tc_parse_action(filter_dev, fltr, act); 1851 else 1852 err = ice_tc_parse_action(vsi, fltr, act); 1853 if (err) 1854 return err; 1855 continue; 1856 } 1857 return 0; 1858 } 1859 1860 /** 1861 * ice_del_tc_fltr - deletes a filter from HW table 1862 * @vsi: Pointer to VSI 1863 * @fltr: Pointer to struct ice_tc_flower_fltr 1864 * 1865 * This function deletes a filter from HW table and manages book-keeping 1866 */ 1867 static int ice_del_tc_fltr(struct ice_vsi *vsi, struct ice_tc_flower_fltr *fltr) 1868 { 1869 struct ice_rule_query_data rule_rem; 1870 struct ice_pf *pf = vsi->back; 1871 int err; 1872 1873 rule_rem.rid = fltr->rid; 1874 rule_rem.rule_id = fltr->rule_id; 1875 rule_rem.vsi_handle = fltr->dest_vsi_handle; 1876 err = ice_rem_adv_rule_by_id(&pf->hw, &rule_rem); 1877 if (err) { 1878 if (err == -ENOENT) { 1879 NL_SET_ERR_MSG_MOD(fltr->extack, "Filter does not exist"); 1880 return -ENOENT; 1881 } 1882 NL_SET_ERR_MSG_MOD(fltr->extack, "Failed to delete TC flower filter"); 1883 return -EIO; 1884 } 1885 1886 /* update advanced switch filter count for destination 1887 * VSI if filter destination was VSI 1888 */ 1889 if (fltr->dest_vsi) { 1890 if (fltr->dest_vsi->type == ICE_VSI_CHNL) { 1891 fltr->dest_vsi->num_chnl_fltr--; 1892 1893 /* keeps track of channel filters for PF VSI */ 1894 if (vsi->type == ICE_VSI_PF && 1895 (fltr->flags & (ICE_TC_FLWR_FIELD_DST_MAC | 1896 ICE_TC_FLWR_FIELD_ENC_DST_MAC))) 1897 pf->num_dmac_chnl_fltrs--; 1898 } 1899 } 1900 return 0; 1901 } 1902 1903 /** 1904 * ice_add_tc_fltr - adds a TC flower filter 1905 * @netdev: Pointer to netdev 1906 * @vsi: Pointer to VSI 1907 * @f: Pointer to flower offload structure 1908 * @__fltr: Pointer to struct ice_tc_flower_fltr 1909 * 1910 * This function parses TC-flower input fields, parses action, 1911 * and adds a filter. 1912 */ 1913 static int 1914 ice_add_tc_fltr(struct net_device *netdev, struct ice_vsi *vsi, 1915 struct flow_cls_offload *f, 1916 struct ice_tc_flower_fltr **__fltr) 1917 { 1918 struct ice_tc_flower_fltr *fltr; 1919 int err; 1920 1921 /* by default, set output to be INVALID */ 1922 *__fltr = NULL; 1923 1924 fltr = kzalloc(sizeof(*fltr), GFP_KERNEL); 1925 if (!fltr) 1926 return -ENOMEM; 1927 1928 fltr->cookie = f->cookie; 1929 fltr->extack = f->common.extack; 1930 fltr->src_vsi = vsi; 1931 INIT_HLIST_NODE(&fltr->tc_flower_node); 1932 1933 err = ice_parse_cls_flower(netdev, vsi, f, fltr); 1934 if (err < 0) 1935 goto err; 1936 1937 err = ice_parse_tc_flower_actions(netdev, vsi, f, fltr); 1938 if (err < 0) 1939 goto err; 1940 1941 err = ice_add_switch_fltr(vsi, fltr); 1942 if (err < 0) 1943 goto err; 1944 1945 /* return the newly created filter */ 1946 *__fltr = fltr; 1947 1948 return 0; 1949 err: 1950 kfree(fltr); 1951 return err; 1952 } 1953 1954 /** 1955 * ice_find_tc_flower_fltr - Find the TC flower filter in the list 1956 * @pf: Pointer to PF 1957 * @cookie: filter specific cookie 1958 */ 1959 static struct ice_tc_flower_fltr * 1960 ice_find_tc_flower_fltr(struct ice_pf *pf, unsigned long cookie) 1961 { 1962 struct ice_tc_flower_fltr *fltr; 1963 1964 hlist_for_each_entry(fltr, &pf->tc_flower_fltr_list, tc_flower_node) 1965 if (cookie == fltr->cookie) 1966 return fltr; 1967 1968 return NULL; 1969 } 1970 1971 /** 1972 * ice_add_cls_flower - add TC flower filters 1973 * @netdev: Pointer to filter device 1974 * @vsi: Pointer to VSI 1975 * @cls_flower: Pointer to flower offload structure 1976 */ 1977 int 1978 ice_add_cls_flower(struct net_device *netdev, struct ice_vsi *vsi, 1979 struct flow_cls_offload *cls_flower) 1980 { 1981 struct netlink_ext_ack *extack = cls_flower->common.extack; 1982 struct net_device *vsi_netdev = vsi->netdev; 1983 struct ice_tc_flower_fltr *fltr; 1984 struct ice_pf *pf = vsi->back; 1985 int err; 1986 1987 if (ice_is_reset_in_progress(pf->state)) 1988 return -EBUSY; 1989 if (test_bit(ICE_FLAG_FW_LLDP_AGENT, pf->flags)) 1990 return -EINVAL; 1991 1992 if (ice_is_port_repr_netdev(netdev)) 1993 vsi_netdev = netdev; 1994 1995 if (!(vsi_netdev->features & NETIF_F_HW_TC) && 1996 !test_bit(ICE_FLAG_CLS_FLOWER, pf->flags)) { 1997 /* Based on TC indirect notifications from kernel, all ice 1998 * devices get an instance of rule from higher level device. 1999 * Avoid triggering explicit error in this case. 2000 */ 2001 if (netdev == vsi_netdev) 2002 NL_SET_ERR_MSG_MOD(extack, "can't apply TC flower filters, turn ON hw-tc-offload and try again"); 2003 return -EINVAL; 2004 } 2005 2006 /* avoid duplicate entries, if exists - return error */ 2007 fltr = ice_find_tc_flower_fltr(pf, cls_flower->cookie); 2008 if (fltr) { 2009 NL_SET_ERR_MSG_MOD(extack, "filter cookie already exists, ignoring"); 2010 return -EEXIST; 2011 } 2012 2013 /* prep and add TC-flower filter in HW */ 2014 err = ice_add_tc_fltr(netdev, vsi, cls_flower, &fltr); 2015 if (err) 2016 return err; 2017 2018 /* add filter into an ordered list */ 2019 hlist_add_head(&fltr->tc_flower_node, &pf->tc_flower_fltr_list); 2020 return 0; 2021 } 2022 2023 /** 2024 * ice_del_cls_flower - delete TC flower filters 2025 * @vsi: Pointer to VSI 2026 * @cls_flower: Pointer to struct flow_cls_offload 2027 */ 2028 int 2029 ice_del_cls_flower(struct ice_vsi *vsi, struct flow_cls_offload *cls_flower) 2030 { 2031 struct ice_tc_flower_fltr *fltr; 2032 struct ice_pf *pf = vsi->back; 2033 int err; 2034 2035 /* find filter */ 2036 fltr = ice_find_tc_flower_fltr(pf, cls_flower->cookie); 2037 if (!fltr) { 2038 if (!test_bit(ICE_FLAG_TC_MQPRIO, pf->flags) && 2039 hlist_empty(&pf->tc_flower_fltr_list)) 2040 return 0; 2041 2042 NL_SET_ERR_MSG_MOD(cls_flower->common.extack, "failed to delete TC flower filter because unable to find it"); 2043 return -EINVAL; 2044 } 2045 2046 fltr->extack = cls_flower->common.extack; 2047 /* delete filter from HW */ 2048 err = ice_del_tc_fltr(vsi, fltr); 2049 if (err) 2050 return err; 2051 2052 /* delete filter from an ordered list */ 2053 hlist_del(&fltr->tc_flower_node); 2054 2055 /* free the filter node */ 2056 kfree(fltr); 2057 2058 return 0; 2059 } 2060 2061 /** 2062 * ice_replay_tc_fltrs - replay TC filters 2063 * @pf: pointer to PF struct 2064 */ 2065 void ice_replay_tc_fltrs(struct ice_pf *pf) 2066 { 2067 struct ice_tc_flower_fltr *fltr; 2068 struct hlist_node *node; 2069 2070 hlist_for_each_entry_safe(fltr, node, 2071 &pf->tc_flower_fltr_list, 2072 tc_flower_node) { 2073 fltr->extack = NULL; 2074 ice_add_switch_fltr(fltr->src_vsi, fltr); 2075 } 2076 } 2077