1 // SPDX-License-Identifier: MIT 2 /* 3 * Copyright © 2022 Intel Corporation 4 */ 5 6 #include "xe_rtp.h" 7 8 #include <kunit/visibility.h> 9 10 #include <uapi/drm/xe_drm.h> 11 12 #include "xe_configfs.h" 13 #include "xe_device.h" 14 #include "xe_gt.h" 15 #include "xe_gt_topology.h" 16 #include "xe_reg_sr.h" 17 #include "xe_sriov.h" 18 19 /** 20 * DOC: Register Table Processing 21 * 22 * Internal infrastructure to define how registers should be updated based on 23 * rules and actions. This can be used to define tables with multiple entries 24 * (one per register) that will be walked over at some point in time to apply 25 * the values to the registers that have matching rules. 26 */ 27 28 static bool has_samedia(const struct xe_device *xe) 29 { 30 return xe->info.media_verx100 >= 1300; 31 } 32 33 struct rule_match_ctx { 34 const struct xe_device *xe; 35 struct xe_gt *gt; 36 struct xe_hw_engine *hwe; 37 const struct xe_rtp_rule *rules; 38 const unsigned int n_rules; 39 unsigned int head; 40 int err; 41 }; 42 43 static bool rule_is_item(const struct xe_rtp_rule *r) 44 { 45 return r->match_type != XE_RTP_MATCH_OR; 46 } 47 48 static bool rule_match_item(struct rule_match_ctx *match_ctx) 49 { 50 const struct xe_device *xe = match_ctx->xe; 51 struct xe_gt *gt = match_ctx->gt; 52 struct xe_hw_engine *hwe = match_ctx->hwe; 53 const struct xe_rtp_rule *r = &match_ctx->rules[match_ctx->head]; 54 55 switch (r->match_type) { 56 case XE_RTP_MATCH_PLATFORM: 57 return xe->info.platform == r->platform; 58 case XE_RTP_MATCH_SUBPLATFORM: 59 return xe->info.platform == r->platform && 60 xe->info.subplatform == r->subplatform; 61 case XE_RTP_MATCH_PLATFORM_STEP: 62 if (drm_WARN_ON(&xe->drm, xe->info.step.platform == STEP_NONE)) 63 return false; 64 65 return xe->info.step.platform >= r->step_start && 66 xe->info.step.platform < r->step_end; 67 case XE_RTP_MATCH_GRAPHICS_VERSION: 68 if (drm_WARN_ON(&xe->drm, !gt)) 69 return false; 70 71 return xe->info.graphics_verx100 == r->ver_start && 72 (!has_samedia(xe) || !xe_gt_is_media_type(gt)); 73 case XE_RTP_MATCH_GRAPHICS_VERSION_RANGE: 74 if (drm_WARN_ON(&xe->drm, !gt)) 75 return false; 76 77 return xe->info.graphics_verx100 >= r->ver_start && 78 xe->info.graphics_verx100 <= r->ver_end && 79 (!has_samedia(xe) || !xe_gt_is_media_type(gt)); 80 case XE_RTP_MATCH_GRAPHICS_VERSION_ANY_GT: 81 if (drm_WARN_ON(&xe->drm, !gt)) 82 return false; 83 84 return xe->info.graphics_verx100 == r->ver_start; 85 case XE_RTP_MATCH_GRAPHICS_STEP: 86 if (drm_WARN_ON(&xe->drm, !gt)) 87 return false; 88 89 return xe->info.step.graphics >= r->step_start && 90 xe->info.step.graphics < r->step_end && 91 (!has_samedia(xe) || !xe_gt_is_media_type(gt)); 92 case XE_RTP_MATCH_MEDIA_VERSION: 93 if (drm_WARN_ON(&xe->drm, !gt)) 94 return false; 95 96 return xe->info.media_verx100 == r->ver_start && 97 (!has_samedia(xe) || xe_gt_is_media_type(gt)); 98 case XE_RTP_MATCH_MEDIA_VERSION_RANGE: 99 if (drm_WARN_ON(&xe->drm, !gt)) 100 return false; 101 102 return xe->info.media_verx100 >= r->ver_start && 103 xe->info.media_verx100 <= r->ver_end && 104 (!has_samedia(xe) || xe_gt_is_media_type(gt)); 105 case XE_RTP_MATCH_MEDIA_STEP: 106 if (drm_WARN_ON(&xe->drm, !gt)) 107 return false; 108 109 return xe->info.step.media >= r->step_start && 110 xe->info.step.media < r->step_end && 111 (!has_samedia(xe) || xe_gt_is_media_type(gt)); 112 case XE_RTP_MATCH_MEDIA_VERSION_ANY_GT: 113 if (drm_WARN_ON(&xe->drm, !gt)) 114 return false; 115 116 return xe->info.media_verx100 == r->ver_start; 117 case XE_RTP_MATCH_INTEGRATED: 118 return !xe->info.is_dgfx; 119 case XE_RTP_MATCH_DISCRETE: 120 return xe->info.is_dgfx; 121 case XE_RTP_MATCH_ENGINE_CLASS: 122 if (drm_WARN_ON(&xe->drm, !hwe)) 123 return false; 124 125 return hwe->class == r->engine_class; 126 case XE_RTP_MATCH_NOT_ENGINE_CLASS: 127 if (drm_WARN_ON(&xe->drm, !hwe)) 128 return false; 129 130 return hwe->class != r->engine_class; 131 case XE_RTP_MATCH_FUNC: 132 return r->match_func(xe, gt, hwe); 133 default: 134 drm_warn(&xe->drm, "Invalid RTP match %u\n", 135 r->match_type); 136 return false; 137 } 138 } 139 140 /* 141 * Match a conjunctive set of rules (rules joined by an implicit "AND"). 142 * 143 * Once one item evaluates to false, the remaining items are not evaluated 144 * anymore. Nevetheless, all rules are consumed to allow detecting syntax 145 * errors. 146 */ 147 static bool rule_match_and(struct rule_match_ctx *match_ctx, bool parse_only) 148 { 149 bool match = true; 150 unsigned int count = 0; 151 152 while (match_ctx->head < match_ctx->n_rules && 153 rule_is_item(&match_ctx->rules[match_ctx->head])) { 154 if (!parse_only) 155 match = rule_match_item(match_ctx); 156 157 if (!match) 158 parse_only = true; 159 160 match_ctx->head++; 161 count++; 162 } 163 164 if (drm_WARN_ON(&match_ctx->xe->drm, !count)) { 165 match_ctx->err = -EINVAL; 166 167 if (!parse_only) 168 match = false; 169 } 170 171 return match; 172 } 173 174 /* 175 * Match a disjunctive set of rules (subset of rules joined by 176 * "XE_RTP_MATCH_OR"). 177 * 178 * Once one subset evaluates to true, the remaining items are not evaluated 179 * anymore. Nevetheless, all rules are consumed to allow detecting syntax 180 * errors. 181 */ 182 static bool rule_match_or(struct rule_match_ctx *match_ctx) 183 { 184 bool match = rule_match_and(match_ctx, false); 185 186 while (match_ctx->head < match_ctx->n_rules && 187 match_ctx->rules[match_ctx->head].match_type == XE_RTP_MATCH_OR) { 188 /* Consume XE_RTP_MATCH_OR. */ 189 match_ctx->head++; 190 191 match = rule_match_and(match_ctx, match); 192 } 193 194 return match; 195 } 196 197 static bool rule_matches_with_err(const struct xe_device *xe, 198 struct xe_gt *gt, 199 struct xe_hw_engine *hwe, 200 const struct xe_rtp_rule *rules, 201 unsigned int n_rules, 202 int *err) 203 { 204 struct rule_match_ctx match_ctx = { 205 .xe = xe, 206 .gt = gt, 207 .hwe = hwe, 208 .rules = rules, 209 .n_rules = n_rules, 210 }; 211 bool match = rule_match_or(&match_ctx); 212 213 if (err) 214 *err = match_ctx.err; 215 216 return match; 217 } 218 219 static bool rule_matches(const struct xe_device *xe, 220 struct xe_gt *gt, 221 struct xe_hw_engine *hwe, 222 const struct xe_rtp_rule *rules, 223 unsigned int n_rules) 224 { 225 return rule_matches_with_err(xe, gt, hwe, rules, n_rules, NULL); 226 } 227 228 static void rtp_add_sr_entry(const struct xe_rtp_action *action, 229 struct xe_gt *gt, 230 struct xe_hw_engine *hwe, 231 u32 mmio_base, 232 struct xe_reg_sr *sr) 233 { 234 struct xe_reg_sr_entry sr_entry = { 235 .reg = action->reg, 236 .clr_bits = action->clr_bits, 237 .read_mask = action->read_mask, 238 }; 239 240 if (action->use_func) 241 sr_entry.set_bits = action->set_func(gt, hwe); 242 else 243 sr_entry.set_bits = action->set_bits; 244 245 sr_entry.reg.addr += mmio_base; 246 247 xe_reg_sr_add(sr, &sr_entry, gt); 248 } 249 250 static bool rtp_process_one_sr(const struct xe_rtp_entry_sr *entry, 251 struct xe_device *xe, struct xe_gt *gt, 252 struct xe_hw_engine *hwe, struct xe_reg_sr *sr) 253 { 254 const struct xe_rtp_action *action; 255 u32 mmio_base; 256 unsigned int i; 257 258 if (!rule_matches(xe, gt, hwe, entry->rules, entry->n_rules)) 259 return false; 260 261 for (i = 0, action = &entry->actions[0]; i < entry->n_actions; action++, i++) { 262 if ((entry->flags & XE_RTP_ENTRY_FLAG_FOREACH_ENGINE) || 263 (action->flags & XE_RTP_ACTION_FLAG_ENGINE_BASE)) 264 mmio_base = hwe->mmio_base; 265 else 266 mmio_base = 0; 267 268 rtp_add_sr_entry(action, gt, hwe, mmio_base, sr); 269 } 270 271 return true; 272 } 273 274 static void rtp_get_context(struct xe_rtp_process_ctx *ctx, 275 struct xe_hw_engine **hwe, 276 struct xe_gt **gt, 277 struct xe_device **xe) 278 { 279 switch (ctx->type) { 280 case XE_RTP_PROCESS_TYPE_DEVICE: 281 *hwe = NULL; 282 *gt = NULL; 283 *xe = ctx->xe; 284 break; 285 case XE_RTP_PROCESS_TYPE_GT: 286 *hwe = NULL; 287 *gt = ctx->gt; 288 *xe = gt_to_xe(*gt); 289 break; 290 case XE_RTP_PROCESS_TYPE_ENGINE: 291 *hwe = ctx->hwe; 292 *gt = (*hwe)->gt; 293 *xe = gt_to_xe(*gt); 294 break; 295 } 296 } 297 298 /** 299 * xe_rtp_process_ctx_enable_active_tracking - Enable tracking of active entries 300 * 301 * Set additional metadata to track what entries are considered "active", i.e. 302 * their rules match the condition. Bits are never cleared: entries with 303 * matching rules set the corresponding bit in the bitmap. 304 * 305 * @ctx: The context for processing the table 306 * @active_entries: bitmap to store the active entries 307 * @n_entries: number of entries to be processed 308 */ 309 void xe_rtp_process_ctx_enable_active_tracking(struct xe_rtp_process_ctx *ctx, 310 unsigned long *active_entries, 311 size_t n_entries) 312 { 313 ctx->active_entries = active_entries; 314 ctx->n_entries = n_entries; 315 } 316 EXPORT_SYMBOL_IF_KUNIT(xe_rtp_process_ctx_enable_active_tracking); 317 318 static void rtp_mark_active(struct xe_device *xe, 319 struct xe_rtp_process_ctx *ctx, 320 unsigned int idx) 321 { 322 if (!ctx->active_entries) 323 return; 324 325 if (drm_WARN_ON(&xe->drm, idx >= ctx->n_entries)) 326 return; 327 328 bitmap_set(ctx->active_entries, idx, 1); 329 } 330 331 /** 332 * xe_rtp_process_to_sr - Process all rtp @entries, adding the matching ones to 333 * the save-restore argument. 334 * @ctx: The context for processing the table, with one of device, gt or hwe 335 * @table: Table with RTP definitions 336 * @sr: Save-restore struct where matching rules execute the action. This can be 337 * viewed as the "coalesced view" of multiple the tables. The bits for each 338 * register set are expected not to collide with previously added entries 339 * @process_in_vf: Whether this RTP table should get processed for SR-IOV VF 340 * devices. Should generally only be 'true' for LRC tables. 341 * 342 * Walk the table pointed by @entries (with an empty sentinel) and add all 343 * entries with matching rules to @sr. If @hwe is not NULL, its mmio_base is 344 * used to calculate the right register offset 345 */ 346 void xe_rtp_process_to_sr(struct xe_rtp_process_ctx *ctx, 347 const struct xe_rtp_table_sr *table, 348 struct xe_reg_sr *sr, 349 bool process_in_vf) 350 { 351 struct xe_hw_engine *hwe = NULL; 352 struct xe_gt *gt = NULL; 353 struct xe_device *xe = NULL; 354 355 rtp_get_context(ctx, &hwe, >, &xe); 356 357 if (!process_in_vf && IS_SRIOV_VF(xe)) 358 return; 359 360 xe_assert(xe, table->entries); 361 362 for (size_t i = 0; i < table->n_entries; i++) { 363 const struct xe_rtp_entry_sr *entry = &table->entries[i]; 364 bool match = false; 365 366 if (entry->flags & XE_RTP_ENTRY_FLAG_FOREACH_ENGINE) { 367 struct xe_hw_engine *each_hwe; 368 enum xe_hw_engine_id id; 369 370 for_each_hw_engine(each_hwe, gt, id) 371 match |= rtp_process_one_sr(entry, xe, gt, 372 each_hwe, sr); 373 } else { 374 match = rtp_process_one_sr(entry, xe, gt, hwe, sr); 375 } 376 377 if (match) 378 rtp_mark_active(xe, ctx, i); 379 } 380 } 381 EXPORT_SYMBOL_IF_KUNIT(xe_rtp_process_to_sr); 382 383 /** 384 * xe_rtp_process - Process all entries in rtp @table, without running any action 385 * @ctx: The context for processing the table, with one of device, gt or hwe 386 * @table: Table with RTP definitions 387 * 388 * Walk the table pointed by @table, executing the 389 * rules. One difference from xe_rtp_process_to_sr(): there is no action 390 * associated with each entry since this uses struct xe_rtp_entry. Its main use 391 * is for marking active workarounds via 392 * xe_rtp_process_ctx_enable_active_tracking(). 393 */ 394 void xe_rtp_process(struct xe_rtp_process_ctx *ctx, 395 const struct xe_rtp_table *table) 396 { 397 struct xe_hw_engine *hwe; 398 struct xe_gt *gt; 399 struct xe_device *xe; 400 401 rtp_get_context(ctx, &hwe, >, &xe); 402 403 xe_assert(xe, table->entries); 404 405 for (size_t i = 0; i < table->n_entries; i++) { 406 const struct xe_rtp_entry *entry = &table->entries[i]; 407 408 if (!rule_matches(xe, gt, hwe, entry->rules, entry->n_rules)) 409 continue; 410 411 rtp_mark_active(xe, ctx, i); 412 } 413 } 414 EXPORT_SYMBOL_IF_KUNIT(xe_rtp_process); 415 416 bool xe_rtp_match_always(const struct xe_device *xe, 417 const struct xe_gt *gt, 418 const struct xe_hw_engine *hwe) 419 { 420 return true; 421 } 422 423 bool xe_rtp_match_even_instance(const struct xe_device *xe, 424 const struct xe_gt *gt, 425 const struct xe_hw_engine *hwe) 426 { 427 return hwe->instance % 2 == 0; 428 } 429 430 bool xe_rtp_match_first_render_or_compute(const struct xe_device *xe, 431 const struct xe_gt *gt, 432 const struct xe_hw_engine *hwe) 433 { 434 u64 render_compute_mask = gt->info.engine_mask & 435 (XE_HW_ENGINE_CCS_MASK | XE_HW_ENGINE_RCS_MASK); 436 437 return render_compute_mask && 438 hwe->engine_id == __ffs(render_compute_mask); 439 } 440 441 bool xe_rtp_match_not_sriov_vf(const struct xe_device *xe, 442 const struct xe_gt *gt, 443 const struct xe_hw_engine *hwe) 444 { 445 return !IS_SRIOV_VF(xe); 446 } 447 448 bool xe_rtp_match_psmi_enabled(const struct xe_device *xe, 449 const struct xe_gt *gt, 450 const struct xe_hw_engine *hwe) 451 { 452 return xe_configfs_get_psmi_enabled(to_pci_dev(xe->drm.dev)); 453 } 454 455 bool xe_rtp_match_gt_has_discontiguous_dss_groups(const struct xe_device *xe, 456 const struct xe_gt *gt, 457 const struct xe_hw_engine *hwe) 458 { 459 return xe_gt_has_discontiguous_dss_groups(gt); 460 } 461 462 bool xe_rtp_match_has_flat_ccs(const struct xe_device *xe, 463 const struct xe_gt *gt, 464 const struct xe_hw_engine *hwe) 465 { 466 return xe->info.has_flat_ccs; 467 } 468 469 bool xe_rtp_match_has_msix(const struct xe_device *xe, 470 const struct xe_gt *gt, 471 const struct xe_hw_engine *hwe) 472 { 473 return xe_device_has_msix(xe); 474 } 475 476 #if IS_ENABLED(CONFIG_DRM_XE_KUNIT_TEST) 477 #include "tests/xe_rtp.c" 478 #endif 479