xref: /linux/drivers/gpu/drm/xe/xe_hw_engine.c (revision 570f7e331f5febb30f1384817463c7e42b65ca7d)
1 // SPDX-License-Identifier: MIT
2 /*
3  * Copyright © 2021 Intel Corporation
4  */
5 
6 #include "xe_hw_engine.h"
7 
8 #include <linux/nospec.h>
9 
10 #include <drm/drm_managed.h>
11 #include <drm/drm_print.h>
12 #include <uapi/drm/xe_drm.h>
13 #include <generated/xe_wa_oob.h>
14 
15 #include "regs/xe_engine_regs.h"
16 #include "regs/xe_gt_regs.h"
17 #include "regs/xe_irq_regs.h"
18 #include "xe_assert.h"
19 #include "xe_bo.h"
20 #include "xe_configfs.h"
21 #include "xe_device.h"
22 #include "xe_execlist.h"
23 #include "xe_force_wake.h"
24 #include "xe_gsc.h"
25 #include "xe_gt.h"
26 #include "xe_gt_ccs_mode.h"
27 #include "xe_gt_clock.h"
28 #include "xe_gt_printk.h"
29 #include "xe_gt_mcr.h"
30 #include "xe_gt_topology.h"
31 #include "xe_guc_capture.h"
32 #include "xe_hw_engine_group.h"
33 #include "xe_hw_fence.h"
34 #include "xe_irq.h"
35 #include "xe_lrc.h"
36 #include "xe_mmio.h"
37 #include "xe_reg_sr.h"
38 #include "xe_reg_whitelist.h"
39 #include "xe_rtp.h"
40 #include "xe_sched_job.h"
41 #include "xe_sriov.h"
42 #include "xe_tuning.h"
43 #include "xe_uc_fw.h"
44 #include "xe_wa.h"
45 
46 #define MAX_MMIO_BASES 3
47 struct engine_info {
48 	const char *name;
49 	unsigned int class : 8;
50 	unsigned int instance : 8;
51 	unsigned int irq_offset : 8;
52 	enum xe_force_wake_domains domain;
53 	u32 mmio_base;
54 };
55 
56 static const struct engine_info engine_infos[] = {
57 	[XE_HW_ENGINE_RCS0] = {
58 		.name = "rcs0",
59 		.class = XE_ENGINE_CLASS_RENDER,
60 		.instance = 0,
61 		.irq_offset = ilog2(INTR_RCS0),
62 		.domain = XE_FW_RENDER,
63 		.mmio_base = RENDER_RING_BASE,
64 	},
65 	[XE_HW_ENGINE_BCS0] = {
66 		.name = "bcs0",
67 		.class = XE_ENGINE_CLASS_COPY,
68 		.instance = 0,
69 		.irq_offset = ilog2(INTR_BCS(0)),
70 		.domain = XE_FW_GT,
71 		.mmio_base = BLT_RING_BASE,
72 	},
73 	[XE_HW_ENGINE_BCS1] = {
74 		.name = "bcs1",
75 		.class = XE_ENGINE_CLASS_COPY,
76 		.instance = 1,
77 		.irq_offset = ilog2(INTR_BCS(1)),
78 		.domain = XE_FW_GT,
79 		.mmio_base = XEHPC_BCS1_RING_BASE,
80 	},
81 	[XE_HW_ENGINE_BCS2] = {
82 		.name = "bcs2",
83 		.class = XE_ENGINE_CLASS_COPY,
84 		.instance = 2,
85 		.irq_offset = ilog2(INTR_BCS(2)),
86 		.domain = XE_FW_GT,
87 		.mmio_base = XEHPC_BCS2_RING_BASE,
88 	},
89 	[XE_HW_ENGINE_BCS3] = {
90 		.name = "bcs3",
91 		.class = XE_ENGINE_CLASS_COPY,
92 		.instance = 3,
93 		.irq_offset = ilog2(INTR_BCS(3)),
94 		.domain = XE_FW_GT,
95 		.mmio_base = XEHPC_BCS3_RING_BASE,
96 	},
97 	[XE_HW_ENGINE_BCS4] = {
98 		.name = "bcs4",
99 		.class = XE_ENGINE_CLASS_COPY,
100 		.instance = 4,
101 		.irq_offset = ilog2(INTR_BCS(4)),
102 		.domain = XE_FW_GT,
103 		.mmio_base = XEHPC_BCS4_RING_BASE,
104 	},
105 	[XE_HW_ENGINE_BCS5] = {
106 		.name = "bcs5",
107 		.class = XE_ENGINE_CLASS_COPY,
108 		.instance = 5,
109 		.irq_offset = ilog2(INTR_BCS(5)),
110 		.domain = XE_FW_GT,
111 		.mmio_base = XEHPC_BCS5_RING_BASE,
112 	},
113 	[XE_HW_ENGINE_BCS6] = {
114 		.name = "bcs6",
115 		.class = XE_ENGINE_CLASS_COPY,
116 		.instance = 6,
117 		.irq_offset = ilog2(INTR_BCS(6)),
118 		.domain = XE_FW_GT,
119 		.mmio_base = XEHPC_BCS6_RING_BASE,
120 	},
121 	[XE_HW_ENGINE_BCS7] = {
122 		.name = "bcs7",
123 		.class = XE_ENGINE_CLASS_COPY,
124 		.irq_offset = ilog2(INTR_BCS(7)),
125 		.instance = 7,
126 		.domain = XE_FW_GT,
127 		.mmio_base = XEHPC_BCS7_RING_BASE,
128 	},
129 	[XE_HW_ENGINE_BCS8] = {
130 		.name = "bcs8",
131 		.class = XE_ENGINE_CLASS_COPY,
132 		.instance = 8,
133 		.irq_offset = ilog2(INTR_BCS8),
134 		.domain = XE_FW_GT,
135 		.mmio_base = XEHPC_BCS8_RING_BASE,
136 	},
137 
138 	[XE_HW_ENGINE_VCS0] = {
139 		.name = "vcs0",
140 		.class = XE_ENGINE_CLASS_VIDEO_DECODE,
141 		.instance = 0,
142 		.irq_offset = 32 + ilog2(INTR_VCS(0)),
143 		.domain = XE_FW_MEDIA_VDBOX0,
144 		.mmio_base = BSD_RING_BASE,
145 	},
146 	[XE_HW_ENGINE_VCS1] = {
147 		.name = "vcs1",
148 		.class = XE_ENGINE_CLASS_VIDEO_DECODE,
149 		.instance = 1,
150 		.irq_offset = 32 + ilog2(INTR_VCS(1)),
151 		.domain = XE_FW_MEDIA_VDBOX1,
152 		.mmio_base = BSD2_RING_BASE,
153 	},
154 	[XE_HW_ENGINE_VCS2] = {
155 		.name = "vcs2",
156 		.class = XE_ENGINE_CLASS_VIDEO_DECODE,
157 		.instance = 2,
158 		.irq_offset = 32 + ilog2(INTR_VCS(2)),
159 		.domain = XE_FW_MEDIA_VDBOX2,
160 		.mmio_base = BSD3_RING_BASE,
161 	},
162 	[XE_HW_ENGINE_VCS3] = {
163 		.name = "vcs3",
164 		.class = XE_ENGINE_CLASS_VIDEO_DECODE,
165 		.instance = 3,
166 		.irq_offset = 32 + ilog2(INTR_VCS(3)),
167 		.domain = XE_FW_MEDIA_VDBOX3,
168 		.mmio_base = BSD4_RING_BASE,
169 	},
170 	[XE_HW_ENGINE_VCS4] = {
171 		.name = "vcs4",
172 		.class = XE_ENGINE_CLASS_VIDEO_DECODE,
173 		.instance = 4,
174 		.irq_offset = 32 + ilog2(INTR_VCS(4)),
175 		.domain = XE_FW_MEDIA_VDBOX4,
176 		.mmio_base = XEHP_BSD5_RING_BASE,
177 	},
178 	[XE_HW_ENGINE_VCS5] = {
179 		.name = "vcs5",
180 		.class = XE_ENGINE_CLASS_VIDEO_DECODE,
181 		.instance = 5,
182 		.irq_offset = 32 + ilog2(INTR_VCS(5)),
183 		.domain = XE_FW_MEDIA_VDBOX5,
184 		.mmio_base = XEHP_BSD6_RING_BASE,
185 	},
186 	[XE_HW_ENGINE_VCS6] = {
187 		.name = "vcs6",
188 		.class = XE_ENGINE_CLASS_VIDEO_DECODE,
189 		.instance = 6,
190 		.irq_offset = 32 + ilog2(INTR_VCS(6)),
191 		.domain = XE_FW_MEDIA_VDBOX6,
192 		.mmio_base = XEHP_BSD7_RING_BASE,
193 	},
194 	[XE_HW_ENGINE_VCS7] = {
195 		.name = "vcs7",
196 		.class = XE_ENGINE_CLASS_VIDEO_DECODE,
197 		.instance = 7,
198 		.irq_offset = 32 + ilog2(INTR_VCS(7)),
199 		.domain = XE_FW_MEDIA_VDBOX7,
200 		.mmio_base = XEHP_BSD8_RING_BASE,
201 	},
202 	[XE_HW_ENGINE_VECS0] = {
203 		.name = "vecs0",
204 		.class = XE_ENGINE_CLASS_VIDEO_ENHANCE,
205 		.instance = 0,
206 		.irq_offset = 32 + ilog2(INTR_VECS(0)),
207 		.domain = XE_FW_MEDIA_VEBOX0,
208 		.mmio_base = VEBOX_RING_BASE,
209 	},
210 	[XE_HW_ENGINE_VECS1] = {
211 		.name = "vecs1",
212 		.class = XE_ENGINE_CLASS_VIDEO_ENHANCE,
213 		.instance = 1,
214 		.irq_offset = 32 + ilog2(INTR_VECS(1)),
215 		.domain = XE_FW_MEDIA_VEBOX1,
216 		.mmio_base = VEBOX2_RING_BASE,
217 	},
218 	[XE_HW_ENGINE_VECS2] = {
219 		.name = "vecs2",
220 		.class = XE_ENGINE_CLASS_VIDEO_ENHANCE,
221 		.instance = 2,
222 		.irq_offset = 32 + ilog2(INTR_VECS(2)),
223 		.domain = XE_FW_MEDIA_VEBOX2,
224 		.mmio_base = XEHP_VEBOX3_RING_BASE,
225 	},
226 	[XE_HW_ENGINE_VECS3] = {
227 		.name = "vecs3",
228 		.class = XE_ENGINE_CLASS_VIDEO_ENHANCE,
229 		.instance = 3,
230 		.irq_offset = 32 + ilog2(INTR_VECS(3)),
231 		.domain = XE_FW_MEDIA_VEBOX3,
232 		.mmio_base = XEHP_VEBOX4_RING_BASE,
233 	},
234 	[XE_HW_ENGINE_CCS0] = {
235 		.name = "ccs0",
236 		.class = XE_ENGINE_CLASS_COMPUTE,
237 		.instance = 0,
238 		.irq_offset = ilog2(INTR_CCS(0)),
239 		.domain = XE_FW_RENDER,
240 		.mmio_base = COMPUTE0_RING_BASE,
241 	},
242 	[XE_HW_ENGINE_CCS1] = {
243 		.name = "ccs1",
244 		.class = XE_ENGINE_CLASS_COMPUTE,
245 		.instance = 1,
246 		.irq_offset = ilog2(INTR_CCS(1)),
247 		.domain = XE_FW_RENDER,
248 		.mmio_base = COMPUTE1_RING_BASE,
249 	},
250 	[XE_HW_ENGINE_CCS2] = {
251 		.name = "ccs2",
252 		.class = XE_ENGINE_CLASS_COMPUTE,
253 		.instance = 2,
254 		.irq_offset = ilog2(INTR_CCS(2)),
255 		.domain = XE_FW_RENDER,
256 		.mmio_base = COMPUTE2_RING_BASE,
257 	},
258 	[XE_HW_ENGINE_CCS3] = {
259 		.name = "ccs3",
260 		.class = XE_ENGINE_CLASS_COMPUTE,
261 		.instance = 3,
262 		.irq_offset = ilog2(INTR_CCS(3)),
263 		.domain = XE_FW_RENDER,
264 		.mmio_base = COMPUTE3_RING_BASE,
265 	},
266 	[XE_HW_ENGINE_GSCCS0] = {
267 		.name = "gsccs0",
268 		.class = XE_ENGINE_CLASS_OTHER,
269 		.instance = OTHER_GSC_INSTANCE,
270 		.domain = XE_FW_GSC,
271 		.mmio_base = GSCCS_RING_BASE,
272 	},
273 };
274 
275 static void hw_engine_fini(void *arg)
276 {
277 	struct xe_hw_engine *hwe = arg;
278 
279 	if (hwe->exl_port)
280 		xe_execlist_port_destroy(hwe->exl_port);
281 
282 	hwe->gt = NULL;
283 }
284 
285 /**
286  * xe_hw_engine_mmio_read32() - Read engine register
287  * @hwe: engine
288  * @reg: register to read from
289  *
290  * This function will read from an engine specific register.
291  * Forcewake must be held by the caller.
292  *
293  * Return: value of the 32-bit register.
294  */
295 u32 xe_hw_engine_mmio_read32(struct xe_hw_engine *hwe, struct xe_reg reg)
296 {
297 	xe_gt_assert(hwe->gt, !(reg.addr & hwe->mmio_base));
298 	xe_force_wake_assert_held(gt_to_fw(hwe->gt), hwe->domain);
299 
300 	reg.addr += hwe->mmio_base;
301 
302 	return xe_mmio_read32(&hwe->gt->mmio, reg);
303 }
304 
305 void xe_hw_engine_enable_ring(struct xe_hw_engine *hwe)
306 {
307 	xe_mmio_write32(&hwe->gt->mmio, RING_HWS_PGA(hwe->mmio_base),
308 			xe_bo_ggtt_addr(hwe->hwsp));
309 }
310 
311 static bool xe_hw_engine_match_fixed_cslice_mode(const struct xe_device *xe,
312 						 const struct xe_gt *gt,
313 						 const struct xe_hw_engine *hwe)
314 {
315 	/*
316 	 * Xe3p no longer supports load balance mode, so "fixed cslice" mode
317 	 * is automatic and no RCU_MODE programming is required.
318 	 */
319 	if (GRAPHICS_VER(gt_to_xe(gt)) >= 35)
320 		return false;
321 
322 	return xe_gt_ccs_mode_enabled(gt) &&
323 	       xe_rtp_match_first_render_or_compute(xe, gt, hwe);
324 }
325 
326 static bool xe_rtp_cfeg_wmtp_disabled(const struct xe_device *xe,
327 				      const struct xe_gt *gt,
328 				      const struct xe_hw_engine *hwe)
329 {
330 	if (GRAPHICS_VER(xe) < 20)
331 		return false;
332 
333 	if (hwe->class != XE_ENGINE_CLASS_COMPUTE &&
334 	    hwe->class != XE_ENGINE_CLASS_RENDER)
335 		return false;
336 
337 	return xe_mmio_read32(&hwe->gt->mmio, XEHP_FUSE4) & CFEG_WMTP_DISABLE;
338 }
339 
340 static u32 blit_cctl_val(struct xe_gt *gt, struct xe_hw_engine *hwe)
341 {
342 	return REG_FIELD_PREP(BLIT_CCTL_DST_MOCS_MASK, gt->mocs.uc_index) |
343 		REG_FIELD_PREP(BLIT_CCTL_SRC_MOCS_MASK, gt->mocs.uc_index);
344 }
345 
346 static const struct xe_rtp_table_sr lrc_setup = XE_RTP_TABLE_SR(
347 	/*
348 	 * Some blitter commands do not have a field for MOCS, those
349 	 * commands will use MOCS index pointed by BLIT_CCTL.
350 	 * BLIT_CCTL registers are needed to be programmed to un-cached.
351 	 */
352 	{ XE_RTP_NAME("BLIT_CCTL_default_MOCS"),
353 	  XE_RTP_RULES(GRAPHICS_VERSION_RANGE(1200, 1274),
354 		       ENGINE_CLASS(COPY)),
355 	  XE_RTP_ACTIONS(FIELD_SET_FUNC(BLIT_CCTL(0),
356 					BLIT_CCTL_DST_MOCS_MASK |
357 					BLIT_CCTL_SRC_MOCS_MASK,
358 					blit_cctl_val,
359 					XE_RTP_ACTION_FLAG(ENGINE_BASE)))
360 	},
361 	/* Disable WMTP if HW doesn't support it */
362 	{ XE_RTP_NAME("DISABLE_WMTP_ON_UNSUPPORTED_HW"),
363 	  XE_RTP_RULES(FUNC(xe_rtp_cfeg_wmtp_disabled)),
364 	  XE_RTP_ACTIONS(FIELD_SET(CS_CHICKEN1(0),
365 				   PREEMPT_GPGPU_LEVEL_MASK,
366 				   PREEMPT_GPGPU_THREAD_GROUP_LEVEL)),
367 	  XE_RTP_ENTRY_FLAG(FOREACH_ENGINE)
368 	},
369 );
370 
371 static void
372 hw_engine_setup_default_lrc_state(struct xe_hw_engine *hwe)
373 {
374 	struct xe_rtp_process_ctx ctx = XE_RTP_PROCESS_CTX_INITIALIZER(hwe);
375 
376 	xe_rtp_process_to_sr(&ctx, &lrc_setup, &hwe->reg_lrc, true);
377 }
378 
379 void xe_hw_engine_setup_reg_lrc(struct xe_hw_engine *hwe)
380 {
381 	struct xe_gt *gt = hwe->gt;
382 	struct xe_device *xe = gt_to_xe(gt);
383 
384 	xe_reg_sr_init(&hwe->reg_lrc, hwe->name, xe);
385 	xe_wa_process_lrc(hwe);
386 	hw_engine_setup_default_lrc_state(hwe);
387 	xe_tuning_process_lrc(hwe);
388 }
389 
390 /*
391  * RING_CMD_CCTL specifies the default MOCS entry that will be
392  * used by the command streamer when executing commands that
393  * don't have a way to explicitly specify a MOCS setting.
394  * The default should usually reference whichever MOCS entry
395  * corresponds to uncached behavior, although use of a WB cached
396  * entry is recommended by the spec in certain circumstances on
397  * specific platforms.
398  * Bspec: 72161
399  */
400 static u32 ring_cmd_cctl_val(struct xe_gt *gt, struct xe_hw_engine *hwe)
401 {
402 	struct xe_device *xe = gt_to_xe(gt);
403 	u8 mocs_read_idx = gt->mocs.uc_index;
404 
405 	if (hwe->class == XE_ENGINE_CLASS_COMPUTE && IS_DGFX(xe) &&
406 	    (GRAPHICS_VER(xe) >= 20 || xe->info.platform == XE_PVC))
407 		mocs_read_idx = gt->mocs.wb_index;
408 
409 	return REG_FIELD_PREP(CMD_CCTL_WRITE_OVERRIDE_MASK, gt->mocs.uc_index) |
410 		REG_FIELD_PREP(CMD_CCTL_READ_OVERRIDE_MASK, mocs_read_idx);
411 }
412 
413 static const struct xe_rtp_table_sr engine_sr = XE_RTP_TABLE_SR(
414 	{ XE_RTP_NAME("RING_CMD_CCTL_default_MOCS"),
415 	  XE_RTP_RULES(FUNC(xe_rtp_match_always)),
416 	  XE_RTP_ACTIONS(FIELD_SET_FUNC(RING_CMD_CCTL(0),
417 					CMD_CCTL_WRITE_OVERRIDE_MASK |
418 					CMD_CCTL_READ_OVERRIDE_MASK,
419 					ring_cmd_cctl_val,
420 					XE_RTP_ACTION_FLAG(ENGINE_BASE)))
421 	},
422 	{ XE_RTP_NAME("Disable HW status page updates for interrupts"),
423 	  XE_RTP_RULES(FUNC(xe_rtp_match_always)),
424 	  XE_RTP_ACTIONS(SET(RING_HWSTAM(0), ~0x0,
425 			     XE_RTP_ACTION_FLAG(ENGINE_BASE)))
426 	},
427 	{ XE_RTP_NAME("Disable engine 'legacy' mode"),
428 	  XE_RTP_RULES(FUNC(xe_rtp_match_always)),
429 	  XE_RTP_ACTIONS(SET(GFX_MODE(0), GFX_DISABLE_LEGACY_MODE,
430 			     XE_RTP_ACTION_FLAG(ENGINE_BASE)))
431 	},
432 	/*
433 	 * To allow the GSC engine to go idle on MTL we need to enable
434 	 * idle messaging and set the hysteresis value (we use 0xA=5us
435 	 * as recommended in spec). On platforms after MTL this is
436 	 * enabled by default.
437 	 */
438 	{ XE_RTP_NAME("MTL GSCCS IDLE MSG enable"),
439 	  XE_RTP_RULES(MEDIA_VERSION(1300), ENGINE_CLASS(OTHER)),
440 	  XE_RTP_ACTIONS(CLR(RING_PSMI_CTL(0),
441 			     IDLE_MSG_DISABLE,
442 			     XE_RTP_ACTION_FLAG(ENGINE_BASE)),
443 			 FIELD_SET(RING_PWRCTX_MAXCNT(0),
444 				   IDLE_WAIT_TIME,
445 				   0xA,
446 				   XE_RTP_ACTION_FLAG(ENGINE_BASE)))
447 	},
448 	/* Enable Priority Mem Read */
449 	{ XE_RTP_NAME("Priority_Mem_Read"),
450 	  XE_RTP_RULES(GRAPHICS_VERSION_RANGE(2001, XE_RTP_END_VERSION_UNDEFINED)),
451 	  XE_RTP_ACTIONS(SET(CSFE_CHICKEN1(0), CS_PRIORITY_MEM_READ,
452 			     XE_RTP_ACTION_FLAG(ENGINE_BASE)))
453 	},
454 	{ XE_RTP_NAME("Enable CCS Engine(s)"),
455 	  XE_RTP_RULES(GRAPHICS_VERSION_RANGE(1255, XE_RTP_END_VERSION_UNDEFINED),
456 		       FUNC(xe_rtp_match_first_render_or_compute)),
457 	  XE_RTP_ACTIONS(SET(RCU_MODE, RCU_MODE_CCS_ENABLE))
458 	},
459 	/* Use Fixed slice CCS mode */
460 	{ XE_RTP_NAME("RCU_MODE_FIXED_SLICE_CCS_MODE"),
461 	  XE_RTP_RULES(FUNC(xe_hw_engine_match_fixed_cslice_mode)),
462 	  XE_RTP_ACTIONS(FIELD_SET(RCU_MODE, RCU_MODE_FIXED_SLICE_CCS_MODE,
463 				   RCU_MODE_FIXED_SLICE_CCS_MODE))
464 	},
465 	{ XE_RTP_NAME("Enable MSI-X interrupt support"),
466 	  XE_RTP_RULES(FUNC(xe_rtp_match_has_msix)),
467 	  XE_RTP_ACTIONS(SET(GFX_MODE(0), GFX_MSIX_INTERRUPT_ENABLE,
468 			     XE_RTP_ACTION_FLAG(ENGINE_BASE)))
469 	},
470 );
471 
472 static void
473 hw_engine_setup_default_state(struct xe_hw_engine *hwe)
474 {
475 	struct xe_rtp_process_ctx ctx = XE_RTP_PROCESS_CTX_INITIALIZER(hwe);
476 
477 	xe_rtp_process_to_sr(&ctx, &engine_sr, &hwe->reg_sr, false);
478 }
479 
480 static const struct engine_info *find_engine_info(enum xe_engine_class class, int instance)
481 {
482 	const struct engine_info *info;
483 	enum xe_hw_engine_id id;
484 
485 	for (id = 0; id < XE_NUM_HW_ENGINES; ++id) {
486 		info = &engine_infos[id];
487 		if (info->class == class && info->instance == instance)
488 			return info;
489 	}
490 
491 	return NULL;
492 }
493 
494 static u16 get_msix_irq_offset(struct xe_gt *gt, enum xe_engine_class class)
495 {
496 	/* For MSI-X, hw engines report to offset of engine instance zero */
497 	const struct engine_info *info = find_engine_info(class, 0);
498 
499 	xe_gt_assert(gt, info);
500 
501 	return info ? info->irq_offset : 0;
502 }
503 
504 static void hw_engine_init_early(struct xe_gt *gt, struct xe_hw_engine *hwe,
505 				 enum xe_hw_engine_id id)
506 {
507 	const struct engine_info *info;
508 
509 	if (WARN_ON(id >= ARRAY_SIZE(engine_infos) || !engine_infos[id].name))
510 		return;
511 
512 	if (!(gt->info.engine_mask & BIT(id)))
513 		return;
514 
515 	info = &engine_infos[id];
516 
517 	xe_gt_assert(gt, !hwe->gt);
518 
519 	hwe->gt = gt;
520 	hwe->class = info->class;
521 	hwe->instance = info->instance;
522 	hwe->mmio_base = info->mmio_base;
523 	if (xe_device_has_msix(gt_to_xe(gt))) {
524 		hwe->irq_offset = get_msix_irq_offset(gt, info->class);
525 		hwe->irq_page = info->instance;
526 
527 	} else {
528 		hwe->irq_offset = info->irq_offset;
529 		hwe->irq_page = 0;
530 	}
531 	hwe->domain = info->domain;
532 	hwe->name = info->name;
533 	hwe->fence_irq = &gt->fence_irq[info->class];
534 	hwe->engine_id = id;
535 
536 	hwe->eclass = &gt->eclass[hwe->class];
537 	if (!hwe->eclass->sched_props.job_timeout_ms) {
538 		hwe->eclass->sched_props.job_timeout_ms = 5 * 1000;
539 		hwe->eclass->sched_props.job_timeout_min = XE_HW_ENGINE_JOB_TIMEOUT_MIN;
540 		hwe->eclass->sched_props.job_timeout_max = XE_HW_ENGINE_JOB_TIMEOUT_MAX;
541 		hwe->eclass->sched_props.timeslice_us = 1 * 1000;
542 		hwe->eclass->sched_props.timeslice_min = XE_HW_ENGINE_TIMESLICE_MIN;
543 		hwe->eclass->sched_props.timeslice_max = XE_HW_ENGINE_TIMESLICE_MAX;
544 		hwe->eclass->sched_props.preempt_timeout_us = XE_HW_ENGINE_PREEMPT_TIMEOUT;
545 		hwe->eclass->sched_props.preempt_timeout_min = XE_HW_ENGINE_PREEMPT_TIMEOUT_MIN;
546 		hwe->eclass->sched_props.preempt_timeout_max = XE_HW_ENGINE_PREEMPT_TIMEOUT_MAX;
547 
548 		/*
549 		 * The GSC engine can accept submissions while the GSC shim is
550 		 * being reset, during which time the submission is stalled. In
551 		 * the worst case, the shim reset can take up to the maximum GSC
552 		 * command execution time (250ms), so the request start can be
553 		 * delayed by that much; the request itself can take that long
554 		 * without being preemptible, which means worst case it can
555 		 * theoretically take up to 500ms for a preemption to go through
556 		 * on the GSC engine. Adding to that an extra 100ms as a safety
557 		 * margin, we get a minimum recommended timeout of 600ms.
558 		 * The preempt_timeout value can't be tuned for OTHER_CLASS
559 		 * because the class is reserved for kernel usage, so we just
560 		 * need to make sure that the starting value is above that
561 		 * threshold; since our default value (640ms) is greater than
562 		 * 600ms, the only way we can go below is via a kconfig setting.
563 		 * If that happens, log it in dmesg and update the value.
564 		 */
565 		if (hwe->class == XE_ENGINE_CLASS_OTHER) {
566 			const u32 min_preempt_timeout = 600 * 1000;
567 			if (hwe->eclass->sched_props.preempt_timeout_us < min_preempt_timeout) {
568 				hwe->eclass->sched_props.preempt_timeout_us = min_preempt_timeout;
569 				xe_gt_notice(gt, "Increasing preempt_timeout for GSC to 600ms\n");
570 			}
571 		}
572 
573 		/* Record default props */
574 		hwe->eclass->defaults = hwe->eclass->sched_props;
575 	}
576 
577 	xe_reg_sr_init(&hwe->reg_sr, hwe->name, gt_to_xe(gt));
578 	xe_tuning_process_engine(hwe);
579 	xe_wa_process_engine(hwe);
580 	hw_engine_setup_default_state(hwe);
581 
582 	xe_reg_sr_init(&hwe->reg_whitelist, hwe->name, gt_to_xe(gt));
583 	xe_reg_sr_init(&hwe->oa_whitelist, hwe->name, gt_to_xe(gt));
584 	xe_reg_sr_init(&hwe->oa_sr, hwe->name, gt_to_xe(gt));
585 	xe_reg_whitelist_process_engine(hwe);
586 }
587 
588 static void adjust_idledly(struct xe_hw_engine *hwe)
589 {
590 	struct xe_gt *gt = hwe->gt;
591 	u32 idledly, maxcnt;
592 	u32 idledly_units_ps = 8 * gt->info.timestamp_base;
593 	u32 maxcnt_units_ns = 640;
594 	bool inhibit_switch = 0;
595 
596 	if (!IS_SRIOV_VF(gt_to_xe(hwe->gt)) && XE_GT_WA(gt, 16023105232)) {
597 		idledly = xe_mmio_read32(&gt->mmio, RING_IDLEDLY(hwe->mmio_base));
598 		maxcnt = xe_mmio_read32(&gt->mmio, RING_PWRCTX_MAXCNT(hwe->mmio_base));
599 
600 		inhibit_switch = idledly & INHIBIT_SWITCH_UNTIL_PREEMPTED;
601 		idledly = REG_FIELD_GET(IDLE_DELAY, idledly);
602 		idledly = DIV_ROUND_CLOSEST(idledly * idledly_units_ps, 1000);
603 		maxcnt = REG_FIELD_GET(IDLE_WAIT_TIME, maxcnt);
604 		maxcnt *= maxcnt_units_ns;
605 
606 		if (xe_gt_WARN_ON(gt, idledly >= maxcnt || inhibit_switch)) {
607 			idledly = DIV_ROUND_CLOSEST(((maxcnt - 1) * 1000),
608 						    idledly_units_ps);
609 			xe_mmio_write32(&gt->mmio, RING_IDLEDLY(hwe->mmio_base), idledly);
610 		}
611 	}
612 }
613 
614 static int hw_engine_init(struct xe_gt *gt, struct xe_hw_engine *hwe,
615 			  enum xe_hw_engine_id id)
616 {
617 	struct xe_device *xe = gt_to_xe(gt);
618 	struct xe_tile *tile = gt_to_tile(gt);
619 	int err;
620 
621 	xe_gt_assert(gt, id < ARRAY_SIZE(engine_infos) && engine_infos[id].name);
622 	xe_gt_assert(gt, gt->info.engine_mask & BIT(id));
623 
624 	xe_reg_sr_apply_mmio(&hwe->reg_sr, gt);
625 
626 	hwe->hwsp = xe_managed_bo_create_pin_map(xe, tile, SZ_4K,
627 						 XE_BO_FLAG_VRAM_IF_DGFX(tile) |
628 						 XE_BO_FLAG_GGTT |
629 						 XE_BO_FLAG_GGTT_INVALIDATE);
630 	if (IS_ERR(hwe->hwsp)) {
631 		err = PTR_ERR(hwe->hwsp);
632 		goto err_name;
633 	}
634 
635 	if (!xe_device_uc_enabled(xe)) {
636 		hwe->exl_port = xe_execlist_port_create(xe, hwe);
637 		if (IS_ERR(hwe->exl_port)) {
638 			err = PTR_ERR(hwe->exl_port);
639 			goto err_name;
640 		}
641 	} else {
642 		/* GSCCS has a special interrupt for reset */
643 		if (hwe->class == XE_ENGINE_CLASS_OTHER)
644 			hwe->irq_handler = xe_gsc_hwe_irq_handler;
645 
646 		if (!IS_SRIOV_VF(xe))
647 			xe_hw_engine_enable_ring(hwe);
648 	}
649 
650 	/* Ensure IDLEDLY is lower than MAXCNT */
651 	adjust_idledly(hwe);
652 
653 	return devm_add_action_or_reset(xe->drm.dev, hw_engine_fini, hwe);
654 
655 err_name:
656 	hwe->name = NULL;
657 
658 	return err;
659 }
660 
661 static int hw_engine_setup_logical_and_paging_mapping(struct xe_gt *gt)
662 {
663 	struct xe_device *xe = gt_to_xe(gt);
664 	unsigned int num_copy_engines = 0, num_paging_engines = 0;
665 	unsigned int reserved_logical_bcs_start;
666 	struct xe_hw_engine *hwe;
667 	enum xe_hw_engine_id id;
668 	int class;
669 
670 	for_each_hw_engine(hwe, gt, id)
671 		if (hwe->class == XE_ENGINE_CLASS_COPY)
672 			num_copy_engines++;
673 
674 	if (num_copy_engines && xe->info.has_usm)
675 		num_paging_engines = 1;
676 
677 	if (IS_SRIOV_VF(xe)) {
678 		u32 vf_num_paging_engines;
679 
680 		/*
681 		 * PF could in theory reserve multiple paging engines, which
682 		 * internally the submission/scheduling backend can load balance
683 		 * from. Not something we currently expect, but we are at the
684 		 * mercy of the PF, so we just need try our best to mirror the
685 		 * paging configuration.
686 		 */
687 		vf_num_paging_engines = xe_gt_sriov_vf_paging_engines(gt);
688 		if (vf_num_paging_engines) {
689 			/* This should only be non-zero on NVL-S+ */
690 			if (xe_gt_WARN_ON(gt, xe->info.platform < XE_NOVALAKE_S))
691 				return -EINVAL;
692 
693 			num_paging_engines = vf_num_paging_engines;
694 		}
695 	}
696 
697 	if (xe_gt_WARN_ON(gt, num_paging_engines > num_copy_engines))
698 		return -EINVAL;
699 
700 	/*
701 	 * On PF, we just reserve the highest BCS instance for USM.
702 	 *
703 	 * Note: This is now a requirement going forward. The PF must ALWAYS
704 	 * reserve BCS instances in top-down order, that way the VF has a chance
705 	 * of discovering the physical BCS instance mappings for paging engines,
706 	 * in conjunction with vf_num_paging_engines. In some places we might
707 	 * only have the physical instance, and from hw pov there is no such
708 	 * thing as a paging engine. For example, the page fault descriptor,
709 	 * which comes directly from the hw, will use the physical engine
710 	 * instance.
711 	 */
712 	reserved_logical_bcs_start = num_copy_engines - num_paging_engines;
713 
714 	/* FIXME: Doing a simple logical mapping that works for most hardware */
715 	for (class = 0; class < XE_ENGINE_CLASS_MAX; ++class) {
716 		int logical_instance = 0;
717 
718 		for_each_hw_engine(hwe, gt, id) {
719 			if (hwe->class == class) {
720 				hwe->logical_instance = logical_instance++;
721 
722 				if (class == XE_ENGINE_CLASS_COPY &&
723 				    hwe->logical_instance >=
724 					    reserved_logical_bcs_start) {
725 					if (!gt->usm.paging_hwe0)
726 						gt->usm.paging_hwe0 = hwe;
727 					gt->usm.paging_logical_mask |=
728 						BIT(hwe->logical_instance);
729 				}
730 			}
731 		}
732 	}
733 
734 	return 0;
735 }
736 
737 static void read_media_fuses(struct xe_gt *gt)
738 {
739 	struct xe_device *xe = gt_to_xe(gt);
740 	u32 media_fuse;
741 	u16 vdbox_mask;
742 	u16 vebox_mask;
743 	int i, j;
744 
745 	xe_force_wake_assert_held(gt_to_fw(gt), XE_FW_GT);
746 
747 	media_fuse = xe_mmio_read32(&gt->mmio, GT_VEBOX_VDBOX_DISABLE);
748 
749 	/*
750 	 * Pre-Xe_HP platforms had register bits representing absent engines,
751 	 * whereas Xe_HP and beyond have bits representing present engines.
752 	 * Invert the polarity on old platforms so that we can use common
753 	 * handling below.
754 	 */
755 	if (GRAPHICS_VERx100(xe) < 1250)
756 		media_fuse = ~media_fuse;
757 
758 	vdbox_mask = REG_FIELD_GET(GT_VDBOX_DISABLE_MASK, media_fuse);
759 	vebox_mask = REG_FIELD_GET(GT_VEBOX_DISABLE_MASK, media_fuse);
760 
761 	for (i = XE_HW_ENGINE_VCS0, j = 0; i <= XE_HW_ENGINE_VCS7; ++i, ++j) {
762 		if (!(gt->info.engine_mask & BIT(i)))
763 			continue;
764 
765 		if (!(BIT(j) & vdbox_mask)) {
766 			gt->info.engine_mask &= ~BIT(i);
767 			xe_gt_info(gt, "vcs%u fused off\n", j);
768 		}
769 	}
770 
771 	for (i = XE_HW_ENGINE_VECS0, j = 0; i <= XE_HW_ENGINE_VECS3; ++i, ++j) {
772 		if (!(gt->info.engine_mask & BIT(i)))
773 			continue;
774 
775 		if (!(BIT(j) & vebox_mask)) {
776 			gt->info.engine_mask &= ~BIT(i);
777 			xe_gt_info(gt, "vecs%u fused off\n", j);
778 		}
779 	}
780 }
781 
782 static u32 infer_svccopy_from_meml3(struct xe_gt *gt)
783 {
784 	u32 meml3 = REG_FIELD_GET(MEML3_EN_MASK,
785 				  xe_mmio_read32(&gt->mmio, MIRROR_FUSE3));
786 	u32 svccopy_mask = 0;
787 
788 	/*
789 	 * Each of the four meml3 bits determines the fusing of two service
790 	 * copy engines.
791 	 */
792 	for (int i = 0; i < 4; i++)
793 		svccopy_mask |= (meml3 & BIT(i)) ? 0b11 << 2 * i : 0;
794 
795 	return svccopy_mask;
796 }
797 
798 static u32 read_svccopy_fuses(struct xe_gt *gt)
799 {
800 	return REG_FIELD_GET(FUSE_SERVICE_COPY_ENABLE_MASK,
801 			     xe_mmio_read32(&gt->mmio, SERVICE_COPY_ENABLE));
802 }
803 
804 static void read_copy_fuses(struct xe_gt *gt)
805 {
806 	struct xe_device *xe = gt_to_xe(gt);
807 	u32 bcs_mask;
808 
809 	xe_force_wake_assert_held(gt_to_fw(gt), XE_FW_GT);
810 
811 	if (GRAPHICS_VER(xe) >= 35)
812 		bcs_mask = read_svccopy_fuses(gt);
813 	else if (GRAPHICS_VERx100(xe) == 1260)
814 		bcs_mask = infer_svccopy_from_meml3(gt);
815 	else
816 		return;
817 
818 	/* Only BCS1-BCS8 may be fused off */
819 	bcs_mask <<= XE_HW_ENGINE_BCS1;
820 	for (int i = XE_HW_ENGINE_BCS1; i <= XE_HW_ENGINE_BCS8; ++i) {
821 		if (!(gt->info.engine_mask & BIT(i)))
822 			continue;
823 
824 		if (!(bcs_mask & BIT(i))) {
825 			gt->info.engine_mask &= ~BIT(i);
826 			xe_gt_info(gt, "bcs%u fused off\n",
827 				   i - XE_HW_ENGINE_BCS0);
828 		}
829 	}
830 }
831 
832 static void read_compute_fuses_from_dss(struct xe_gt *gt)
833 {
834 	/*
835 	 * CCS fusing based on DSS masks only applies to platforms that can
836 	 * have more than one CCS.
837 	 */
838 	if (hweight64(gt->info.engine_mask &
839 		      GENMASK_ULL(XE_HW_ENGINE_CCS3, XE_HW_ENGINE_CCS0)) <= 1)
840 		return;
841 
842 	/*
843 	 * CCS availability on Xe_HP is inferred from the presence of DSS in
844 	 * each quadrant.
845 	 */
846 	for (int i = XE_HW_ENGINE_CCS0, j = 0; i <= XE_HW_ENGINE_CCS3; ++i, ++j) {
847 		if (!(gt->info.engine_mask & BIT(i)))
848 			continue;
849 
850 		if (!xe_gt_topology_has_dss_in_quadrant(gt, j)) {
851 			gt->info.engine_mask &= ~BIT(i);
852 			xe_gt_info(gt, "ccs%u fused off\n", j);
853 		}
854 	}
855 }
856 
857 static void read_compute_fuses_from_reg(struct xe_gt *gt)
858 {
859 	u32 ccs_mask;
860 
861 	ccs_mask = xe_mmio_read32(&gt->mmio, XEHP_FUSE4);
862 	ccs_mask = REG_FIELD_GET(CCS_EN_MASK, ccs_mask);
863 
864 	for (int i = XE_HW_ENGINE_CCS0, j = 0; i <= XE_HW_ENGINE_CCS3; ++i, ++j) {
865 		if (!(gt->info.engine_mask & BIT(i)))
866 			continue;
867 
868 		if ((ccs_mask & BIT(j)) == 0) {
869 			gt->info.engine_mask &= ~BIT(i);
870 			xe_gt_info(gt, "ccs%u fused off\n", j);
871 		}
872 	}
873 }
874 
875 static void read_compute_fuses(struct xe_gt *gt)
876 {
877 	if (GRAPHICS_VER(gt_to_xe(gt)) >= 20)
878 		read_compute_fuses_from_reg(gt);
879 	else
880 		read_compute_fuses_from_dss(gt);
881 }
882 
883 static void check_gsc_availability(struct xe_gt *gt)
884 {
885 	if (!(gt->info.engine_mask & BIT(XE_HW_ENGINE_GSCCS0)))
886 		return;
887 
888 	/*
889 	 * The GSCCS is only used to communicate with the GSC FW, so if we don't
890 	 * have the FW there is nothing we need the engine for and can therefore
891 	 * skip its initialization.
892 	 */
893 	if (!xe_uc_fw_is_available(&gt->uc.gsc.fw)) {
894 		gt->info.engine_mask &= ~BIT(XE_HW_ENGINE_GSCCS0);
895 
896 		/* interrupts where previously enabled, so turn them off */
897 		xe_mmio_write32(&gt->mmio, GUNIT_GSC_INTR_ENABLE, 0);
898 		xe_mmio_write32(&gt->mmio, GUNIT_GSC_INTR_MASK, ~0);
899 
900 		xe_gt_dbg(gt, "GSC FW not used, disabling gsccs\n");
901 	}
902 }
903 
904 static void check_sw_disable(struct xe_gt *gt)
905 {
906 	struct xe_device *xe = gt_to_xe(gt);
907 	u64 sw_allowed = xe_configfs_get_engines_allowed(to_pci_dev(xe->drm.dev));
908 	enum xe_hw_engine_id id;
909 
910 	for (id = 0; id < XE_NUM_HW_ENGINES; ++id) {
911 		if (!(gt->info.engine_mask & BIT(id)))
912 			continue;
913 
914 		if (!(sw_allowed & BIT(id))) {
915 			gt->info.engine_mask &= ~BIT(id);
916 			xe_gt_info(gt, "%s disabled via configfs\n",
917 				   engine_infos[id].name);
918 		}
919 	}
920 }
921 
922 int xe_hw_engines_init_early(struct xe_gt *gt)
923 {
924 	int i;
925 
926 	read_media_fuses(gt);
927 	read_copy_fuses(gt);
928 	read_compute_fuses(gt);
929 	check_gsc_availability(gt);
930 	check_sw_disable(gt);
931 
932 	BUILD_BUG_ON(XE_HW_ENGINE_PREEMPT_TIMEOUT < XE_HW_ENGINE_PREEMPT_TIMEOUT_MIN);
933 	BUILD_BUG_ON(XE_HW_ENGINE_PREEMPT_TIMEOUT > XE_HW_ENGINE_PREEMPT_TIMEOUT_MAX);
934 
935 	for (i = 0; i < ARRAY_SIZE(gt->hw_engines); i++)
936 		hw_engine_init_early(gt, &gt->hw_engines[i], i);
937 
938 	return 0;
939 }
940 
941 int xe_hw_engines_init(struct xe_gt *gt)
942 {
943 	int err;
944 	struct xe_hw_engine *hwe;
945 	enum xe_hw_engine_id id;
946 
947 	for_each_hw_engine(hwe, gt, id) {
948 		err = hw_engine_init(gt, hwe, id);
949 		if (err)
950 			return err;
951 	}
952 
953 	err = hw_engine_setup_logical_and_paging_mapping(gt);
954 	if (err)
955 		return err;
956 
957 	err = xe_hw_engine_setup_groups(gt);
958 	if (err)
959 		return err;
960 
961 	return 0;
962 }
963 
964 void xe_hw_engine_handle_irq(struct xe_hw_engine *hwe, u16 intr_vec)
965 {
966 	wake_up_all(&gt_to_xe(hwe->gt)->ufence_wq);
967 
968 	if (hwe->irq_handler)
969 		hwe->irq_handler(hwe, intr_vec);
970 
971 	if (intr_vec & GT_MI_USER_INTERRUPT)
972 		xe_hw_fence_irq_run(hwe->fence_irq);
973 }
974 
975 /**
976  * xe_hw_engine_snapshot_capture - Take a quick snapshot of the HW Engine.
977  * @hwe: Xe HW Engine.
978  * @q: The exec queue object.
979  *
980  * This can be printed out in a later stage like during dev_coredump
981  * analysis.
982  *
983  * Returns: a Xe HW Engine snapshot object that must be freed by the
984  * caller, using `xe_hw_engine_snapshot_free`.
985  */
986 struct xe_hw_engine_snapshot *
987 xe_hw_engine_snapshot_capture(struct xe_hw_engine *hwe, struct xe_exec_queue *q)
988 {
989 	struct xe_hw_engine_snapshot *snapshot;
990 	struct __guc_capture_parsed_output *node;
991 
992 	if (!xe_hw_engine_is_valid(hwe))
993 		return NULL;
994 
995 	snapshot = kzalloc_obj(*snapshot, GFP_ATOMIC);
996 
997 	if (!snapshot)
998 		return NULL;
999 
1000 	snapshot->name = kstrdup(hwe->name, GFP_ATOMIC);
1001 	snapshot->hwe = hwe;
1002 	snapshot->logical_instance = hwe->logical_instance;
1003 	snapshot->forcewake.domain = hwe->domain;
1004 	snapshot->forcewake.ref = xe_force_wake_ref(gt_to_fw(hwe->gt),
1005 						    hwe->domain);
1006 	snapshot->mmio_base = hwe->mmio_base;
1007 	snapshot->kernel_reserved = xe_hw_engine_is_reserved(hwe);
1008 
1009 	/* no more VF accessible data below this point */
1010 	if (IS_SRIOV_VF(gt_to_xe(hwe->gt)))
1011 		return snapshot;
1012 
1013 	if (q) {
1014 		/* If got guc capture, set source to GuC */
1015 		node = xe_guc_capture_get_matching_and_lock(q);
1016 		if (node) {
1017 			struct xe_device *xe = gt_to_xe(hwe->gt);
1018 			struct xe_devcoredump *coredump = &xe->devcoredump;
1019 
1020 			coredump->snapshot.matched_node = node;
1021 			xe_gt_dbg(hwe->gt, "Found and locked GuC-err-capture node");
1022 			return snapshot;
1023 		}
1024 	}
1025 
1026 	/* otherwise, do manual capture */
1027 	xe_engine_manual_capture(hwe, snapshot);
1028 	xe_gt_dbg(hwe->gt, "Proceeding with manual engine snapshot");
1029 
1030 	return snapshot;
1031 }
1032 
1033 /**
1034  * xe_hw_engine_snapshot_free - Free all allocated objects for a given snapshot.
1035  * @snapshot: Xe HW Engine snapshot object.
1036  *
1037  * This function free all the memory that needed to be allocated at capture
1038  * time.
1039  */
1040 void xe_hw_engine_snapshot_free(struct xe_hw_engine_snapshot *snapshot)
1041 {
1042 	struct xe_gt *gt;
1043 	if (!snapshot)
1044 		return;
1045 
1046 	gt = snapshot->hwe->gt;
1047 	/*
1048 	 * xe_guc_capture_put_matched_nodes is called here and from
1049 	 * xe_devcoredump_snapshot_free, to cover the 2 calling paths
1050 	 * of hw_engines - debugfs and devcoredump free.
1051 	 */
1052 	xe_guc_capture_put_matched_nodes(&gt->uc.guc);
1053 
1054 	kfree(snapshot->name);
1055 	kfree(snapshot);
1056 }
1057 
1058 /**
1059  * xe_hw_engine_print - Xe HW Engine Print.
1060  * @hwe: Hardware Engine.
1061  * @p: drm_printer.
1062  *
1063  * This function quickly capture a snapshot and immediately print it out.
1064  */
1065 void xe_hw_engine_print(struct xe_hw_engine *hwe, struct drm_printer *p)
1066 {
1067 	struct xe_hw_engine_snapshot *snapshot;
1068 
1069 	snapshot = xe_hw_engine_snapshot_capture(hwe, NULL);
1070 	xe_engine_snapshot_print(snapshot, p);
1071 	xe_hw_engine_snapshot_free(snapshot);
1072 }
1073 
1074 u32 xe_hw_engine_mask_per_class(struct xe_gt *gt,
1075 				enum xe_engine_class engine_class)
1076 {
1077 	u32 mask = 0;
1078 	enum xe_hw_engine_id id;
1079 
1080 	for (id = 0; id < XE_NUM_HW_ENGINES; ++id) {
1081 		if (engine_infos[id].class == engine_class &&
1082 		    gt->info.engine_mask & BIT(id))
1083 			mask |= BIT(engine_infos[id].instance);
1084 	}
1085 	return mask;
1086 }
1087 
1088 bool xe_hw_engine_is_reserved(struct xe_hw_engine *hwe)
1089 {
1090 	struct xe_gt *gt = hwe->gt;
1091 	struct xe_device *xe = gt_to_xe(gt);
1092 
1093 	if (xe_device_is_admin_only(xe))
1094 		return true;
1095 
1096 	if (hwe->class == XE_ENGINE_CLASS_OTHER)
1097 		return true;
1098 
1099 	/* Check for engines disabled by ccs_mode setting */
1100 	if (xe_gt_ccs_mode_enabled(gt) &&
1101 	    hwe->class == XE_ENGINE_CLASS_COMPUTE &&
1102 	    hwe->logical_instance >= gt->ccs_mode)
1103 		return true;
1104 
1105 	return xe_gt_is_usm_hwe(gt, hwe);
1106 }
1107 
1108 const char *xe_hw_engine_class_to_str(enum xe_engine_class class)
1109 {
1110 	switch (class) {
1111 	case XE_ENGINE_CLASS_RENDER:
1112 		return "rcs";
1113 	case XE_ENGINE_CLASS_VIDEO_DECODE:
1114 		return "vcs";
1115 	case XE_ENGINE_CLASS_VIDEO_ENHANCE:
1116 		return "vecs";
1117 	case XE_ENGINE_CLASS_COPY:
1118 		return "bcs";
1119 	case XE_ENGINE_CLASS_OTHER:
1120 		return "other";
1121 	case XE_ENGINE_CLASS_COMPUTE:
1122 		return "ccs";
1123 	case XE_ENGINE_CLASS_MAX:
1124 		break;
1125 	}
1126 
1127 	return NULL;
1128 }
1129 
1130 u64 xe_hw_engine_read_timestamp(struct xe_hw_engine *hwe)
1131 {
1132 	return xe_mmio_read64_2x32(&hwe->gt->mmio, RING_TIMESTAMP(hwe->mmio_base));
1133 }
1134 
1135 enum xe_force_wake_domains xe_hw_engine_to_fw_domain(struct xe_hw_engine *hwe)
1136 {
1137 	return engine_infos[hwe->engine_id].domain;
1138 }
1139 
1140 static const enum xe_engine_class user_to_xe_engine_class[] = {
1141 	[DRM_XE_ENGINE_CLASS_RENDER] = XE_ENGINE_CLASS_RENDER,
1142 	[DRM_XE_ENGINE_CLASS_COPY] = XE_ENGINE_CLASS_COPY,
1143 	[DRM_XE_ENGINE_CLASS_VIDEO_DECODE] = XE_ENGINE_CLASS_VIDEO_DECODE,
1144 	[DRM_XE_ENGINE_CLASS_VIDEO_ENHANCE] = XE_ENGINE_CLASS_VIDEO_ENHANCE,
1145 	[DRM_XE_ENGINE_CLASS_COMPUTE] = XE_ENGINE_CLASS_COMPUTE,
1146 };
1147 
1148 /**
1149  * xe_hw_engine_lookup() - Lookup hardware engine for class:instance
1150  * @xe: xe device
1151  * @eci: engine class and instance
1152  *
1153  * This function will find a hardware engine for given engine
1154  * class and instance.
1155  *
1156  * Return: If found xe_hw_engine pointer, NULL otherwise.
1157  */
1158 struct xe_hw_engine *
1159 xe_hw_engine_lookup(struct xe_device *xe,
1160 		    struct drm_xe_engine_class_instance eci)
1161 {
1162 	struct xe_gt *gt = xe_device_get_gt(xe, eci.gt_id);
1163 	unsigned int idx;
1164 
1165 	if (eci.engine_class >= ARRAY_SIZE(user_to_xe_engine_class))
1166 		return NULL;
1167 
1168 	if (!gt)
1169 		return NULL;
1170 
1171 	idx = array_index_nospec(eci.engine_class,
1172 				 ARRAY_SIZE(user_to_xe_engine_class));
1173 
1174 	return xe_gt_hw_engine(xe_device_get_gt(xe, eci.gt_id),
1175 			       user_to_xe_engine_class[idx],
1176 			       eci.engine_instance, true);
1177 }
1178