intel_ringbuffer.c 47 KB

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  1. /*
  2. * Copyright © 2008-2010 Intel Corporation
  3. *
  4. * Permission is hereby granted, free of charge, to any person obtaining a
  5. * copy of this software and associated documentation files (the "Software"),
  6. * to deal in the Software without restriction, including without limitation
  7. * the rights to use, copy, modify, merge, publish, distribute, sublicense,
  8. * and/or sell copies of the Software, and to permit persons to whom the
  9. * Software is furnished to do so, subject to the following conditions:
  10. *
  11. * The above copyright notice and this permission notice (including the next
  12. * paragraph) shall be included in all copies or substantial portions of the
  13. * Software.
  14. *
  15. * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
  16. * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
  17. * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL
  18. * THE AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
  19. * LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING
  20. * FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS
  21. * IN THE SOFTWARE.
  22. *
  23. * Authors:
  24. * Eric Anholt <eric@anholt.net>
  25. * Zou Nan hai <nanhai.zou@intel.com>
  26. * Xiang Hai hao<haihao.xiang@intel.com>
  27. *
  28. */
  29. #include <drm/drmP.h>
  30. #include "i915_drv.h"
  31. #include <drm/i915_drm.h>
  32. #include "i915_trace.h"
  33. #include "intel_drv.h"
  34. /*
  35. * 965+ support PIPE_CONTROL commands, which provide finer grained control
  36. * over cache flushing.
  37. */
  38. struct pipe_control {
  39. struct drm_i915_gem_object *obj;
  40. volatile u32 *cpu_page;
  41. u32 gtt_offset;
  42. };
  43. static inline int ring_space(struct intel_ring_buffer *ring)
  44. {
  45. int space = (ring->head & HEAD_ADDR) - (ring->tail + 8);
  46. if (space < 0)
  47. space += ring->size;
  48. return space;
  49. }
  50. static int
  51. gen2_render_ring_flush(struct intel_ring_buffer *ring,
  52. u32 invalidate_domains,
  53. u32 flush_domains)
  54. {
  55. u32 cmd;
  56. int ret;
  57. cmd = MI_FLUSH;
  58. if (((invalidate_domains|flush_domains) & I915_GEM_DOMAIN_RENDER) == 0)
  59. cmd |= MI_NO_WRITE_FLUSH;
  60. if (invalidate_domains & I915_GEM_DOMAIN_SAMPLER)
  61. cmd |= MI_READ_FLUSH;
  62. ret = intel_ring_begin(ring, 2);
  63. if (ret)
  64. return ret;
  65. intel_ring_emit(ring, cmd);
  66. intel_ring_emit(ring, MI_NOOP);
  67. intel_ring_advance(ring);
  68. return 0;
  69. }
  70. static int
  71. gen4_render_ring_flush(struct intel_ring_buffer *ring,
  72. u32 invalidate_domains,
  73. u32 flush_domains)
  74. {
  75. struct drm_device *dev = ring->dev;
  76. u32 cmd;
  77. int ret;
  78. /*
  79. * read/write caches:
  80. *
  81. * I915_GEM_DOMAIN_RENDER is always invalidated, but is
  82. * only flushed if MI_NO_WRITE_FLUSH is unset. On 965, it is
  83. * also flushed at 2d versus 3d pipeline switches.
  84. *
  85. * read-only caches:
  86. *
  87. * I915_GEM_DOMAIN_SAMPLER is flushed on pre-965 if
  88. * MI_READ_FLUSH is set, and is always flushed on 965.
  89. *
  90. * I915_GEM_DOMAIN_COMMAND may not exist?
  91. *
  92. * I915_GEM_DOMAIN_INSTRUCTION, which exists on 965, is
  93. * invalidated when MI_EXE_FLUSH is set.
  94. *
  95. * I915_GEM_DOMAIN_VERTEX, which exists on 965, is
  96. * invalidated with every MI_FLUSH.
  97. *
  98. * TLBs:
  99. *
  100. * On 965, TLBs associated with I915_GEM_DOMAIN_COMMAND
  101. * and I915_GEM_DOMAIN_CPU in are invalidated at PTE write and
  102. * I915_GEM_DOMAIN_RENDER and I915_GEM_DOMAIN_SAMPLER
  103. * are flushed at any MI_FLUSH.
  104. */
  105. cmd = MI_FLUSH | MI_NO_WRITE_FLUSH;
  106. if ((invalidate_domains|flush_domains) & I915_GEM_DOMAIN_RENDER)
  107. cmd &= ~MI_NO_WRITE_FLUSH;
  108. if (invalidate_domains & I915_GEM_DOMAIN_INSTRUCTION)
  109. cmd |= MI_EXE_FLUSH;
  110. if (invalidate_domains & I915_GEM_DOMAIN_COMMAND &&
  111. (IS_G4X(dev) || IS_GEN5(dev)))
  112. cmd |= MI_INVALIDATE_ISP;
  113. ret = intel_ring_begin(ring, 2);
  114. if (ret)
  115. return ret;
  116. intel_ring_emit(ring, cmd);
  117. intel_ring_emit(ring, MI_NOOP);
  118. intel_ring_advance(ring);
  119. return 0;
  120. }
  121. /**
  122. * Emits a PIPE_CONTROL with a non-zero post-sync operation, for
  123. * implementing two workarounds on gen6. From section 1.4.7.1
  124. * "PIPE_CONTROL" of the Sandy Bridge PRM volume 2 part 1:
  125. *
  126. * [DevSNB-C+{W/A}] Before any depth stall flush (including those
  127. * produced by non-pipelined state commands), software needs to first
  128. * send a PIPE_CONTROL with no bits set except Post-Sync Operation !=
  129. * 0.
  130. *
  131. * [Dev-SNB{W/A}]: Before a PIPE_CONTROL with Write Cache Flush Enable
  132. * =1, a PIPE_CONTROL with any non-zero post-sync-op is required.
  133. *
  134. * And the workaround for these two requires this workaround first:
  135. *
  136. * [Dev-SNB{W/A}]: Pipe-control with CS-stall bit set must be sent
  137. * BEFORE the pipe-control with a post-sync op and no write-cache
  138. * flushes.
  139. *
  140. * And this last workaround is tricky because of the requirements on
  141. * that bit. From section 1.4.7.2.3 "Stall" of the Sandy Bridge PRM
  142. * volume 2 part 1:
  143. *
  144. * "1 of the following must also be set:
  145. * - Render Target Cache Flush Enable ([12] of DW1)
  146. * - Depth Cache Flush Enable ([0] of DW1)
  147. * - Stall at Pixel Scoreboard ([1] of DW1)
  148. * - Depth Stall ([13] of DW1)
  149. * - Post-Sync Operation ([13] of DW1)
  150. * - Notify Enable ([8] of DW1)"
  151. *
  152. * The cache flushes require the workaround flush that triggered this
  153. * one, so we can't use it. Depth stall would trigger the same.
  154. * Post-sync nonzero is what triggered this second workaround, so we
  155. * can't use that one either. Notify enable is IRQs, which aren't
  156. * really our business. That leaves only stall at scoreboard.
  157. */
  158. static int
  159. intel_emit_post_sync_nonzero_flush(struct intel_ring_buffer *ring)
  160. {
  161. struct pipe_control *pc = ring->private;
  162. u32 scratch_addr = pc->gtt_offset + 128;
  163. int ret;
  164. ret = intel_ring_begin(ring, 6);
  165. if (ret)
  166. return ret;
  167. intel_ring_emit(ring, GFX_OP_PIPE_CONTROL(5));
  168. intel_ring_emit(ring, PIPE_CONTROL_CS_STALL |
  169. PIPE_CONTROL_STALL_AT_SCOREBOARD);
  170. intel_ring_emit(ring, scratch_addr | PIPE_CONTROL_GLOBAL_GTT); /* address */
  171. intel_ring_emit(ring, 0); /* low dword */
  172. intel_ring_emit(ring, 0); /* high dword */
  173. intel_ring_emit(ring, MI_NOOP);
  174. intel_ring_advance(ring);
  175. ret = intel_ring_begin(ring, 6);
  176. if (ret)
  177. return ret;
  178. intel_ring_emit(ring, GFX_OP_PIPE_CONTROL(5));
  179. intel_ring_emit(ring, PIPE_CONTROL_QW_WRITE);
  180. intel_ring_emit(ring, scratch_addr | PIPE_CONTROL_GLOBAL_GTT); /* address */
  181. intel_ring_emit(ring, 0);
  182. intel_ring_emit(ring, 0);
  183. intel_ring_emit(ring, MI_NOOP);
  184. intel_ring_advance(ring);
  185. return 0;
  186. }
  187. static int
  188. gen6_render_ring_flush(struct intel_ring_buffer *ring,
  189. u32 invalidate_domains, u32 flush_domains)
  190. {
  191. u32 flags = 0;
  192. struct pipe_control *pc = ring->private;
  193. u32 scratch_addr = pc->gtt_offset + 128;
  194. int ret;
  195. /* Force SNB workarounds for PIPE_CONTROL flushes */
  196. ret = intel_emit_post_sync_nonzero_flush(ring);
  197. if (ret)
  198. return ret;
  199. /* Just flush everything. Experiments have shown that reducing the
  200. * number of bits based on the write domains has little performance
  201. * impact.
  202. */
  203. if (flush_domains) {
  204. flags |= PIPE_CONTROL_RENDER_TARGET_CACHE_FLUSH;
  205. flags |= PIPE_CONTROL_DEPTH_CACHE_FLUSH;
  206. /*
  207. * Ensure that any following seqno writes only happen
  208. * when the render cache is indeed flushed.
  209. */
  210. flags |= PIPE_CONTROL_CS_STALL;
  211. }
  212. if (invalidate_domains) {
  213. flags |= PIPE_CONTROL_TLB_INVALIDATE;
  214. flags |= PIPE_CONTROL_INSTRUCTION_CACHE_INVALIDATE;
  215. flags |= PIPE_CONTROL_TEXTURE_CACHE_INVALIDATE;
  216. flags |= PIPE_CONTROL_VF_CACHE_INVALIDATE;
  217. flags |= PIPE_CONTROL_CONST_CACHE_INVALIDATE;
  218. flags |= PIPE_CONTROL_STATE_CACHE_INVALIDATE;
  219. /*
  220. * TLB invalidate requires a post-sync write.
  221. */
  222. flags |= PIPE_CONTROL_QW_WRITE | PIPE_CONTROL_CS_STALL;
  223. }
  224. ret = intel_ring_begin(ring, 4);
  225. if (ret)
  226. return ret;
  227. intel_ring_emit(ring, GFX_OP_PIPE_CONTROL(4));
  228. intel_ring_emit(ring, flags);
  229. intel_ring_emit(ring, scratch_addr | PIPE_CONTROL_GLOBAL_GTT);
  230. intel_ring_emit(ring, 0);
  231. intel_ring_advance(ring);
  232. return 0;
  233. }
  234. static int
  235. gen7_render_ring_cs_stall_wa(struct intel_ring_buffer *ring)
  236. {
  237. int ret;
  238. ret = intel_ring_begin(ring, 4);
  239. if (ret)
  240. return ret;
  241. intel_ring_emit(ring, GFX_OP_PIPE_CONTROL(4));
  242. intel_ring_emit(ring, PIPE_CONTROL_CS_STALL |
  243. PIPE_CONTROL_STALL_AT_SCOREBOARD);
  244. intel_ring_emit(ring, 0);
  245. intel_ring_emit(ring, 0);
  246. intel_ring_advance(ring);
  247. return 0;
  248. }
  249. static int
  250. gen7_render_ring_flush(struct intel_ring_buffer *ring,
  251. u32 invalidate_domains, u32 flush_domains)
  252. {
  253. u32 flags = 0;
  254. struct pipe_control *pc = ring->private;
  255. u32 scratch_addr = pc->gtt_offset + 128;
  256. int ret;
  257. /*
  258. * Ensure that any following seqno writes only happen when the render
  259. * cache is indeed flushed.
  260. *
  261. * Workaround: 4th PIPE_CONTROL command (except the ones with only
  262. * read-cache invalidate bits set) must have the CS_STALL bit set. We
  263. * don't try to be clever and just set it unconditionally.
  264. */
  265. flags |= PIPE_CONTROL_CS_STALL;
  266. /* Just flush everything. Experiments have shown that reducing the
  267. * number of bits based on the write domains has little performance
  268. * impact.
  269. */
  270. if (flush_domains) {
  271. flags |= PIPE_CONTROL_RENDER_TARGET_CACHE_FLUSH;
  272. flags |= PIPE_CONTROL_DEPTH_CACHE_FLUSH;
  273. }
  274. if (invalidate_domains) {
  275. flags |= PIPE_CONTROL_TLB_INVALIDATE;
  276. flags |= PIPE_CONTROL_INSTRUCTION_CACHE_INVALIDATE;
  277. flags |= PIPE_CONTROL_TEXTURE_CACHE_INVALIDATE;
  278. flags |= PIPE_CONTROL_VF_CACHE_INVALIDATE;
  279. flags |= PIPE_CONTROL_CONST_CACHE_INVALIDATE;
  280. flags |= PIPE_CONTROL_STATE_CACHE_INVALIDATE;
  281. /*
  282. * TLB invalidate requires a post-sync write.
  283. */
  284. flags |= PIPE_CONTROL_QW_WRITE;
  285. /* Workaround: we must issue a pipe_control with CS-stall bit
  286. * set before a pipe_control command that has the state cache
  287. * invalidate bit set. */
  288. gen7_render_ring_cs_stall_wa(ring);
  289. }
  290. ret = intel_ring_begin(ring, 4);
  291. if (ret)
  292. return ret;
  293. intel_ring_emit(ring, GFX_OP_PIPE_CONTROL(4));
  294. intel_ring_emit(ring, flags);
  295. intel_ring_emit(ring, scratch_addr | PIPE_CONTROL_GLOBAL_GTT);
  296. intel_ring_emit(ring, 0);
  297. intel_ring_advance(ring);
  298. return 0;
  299. }
  300. static void ring_write_tail(struct intel_ring_buffer *ring,
  301. u32 value)
  302. {
  303. drm_i915_private_t *dev_priv = ring->dev->dev_private;
  304. I915_WRITE_TAIL(ring, value);
  305. }
  306. u32 intel_ring_get_active_head(struct intel_ring_buffer *ring)
  307. {
  308. drm_i915_private_t *dev_priv = ring->dev->dev_private;
  309. u32 acthd_reg = INTEL_INFO(ring->dev)->gen >= 4 ?
  310. RING_ACTHD(ring->mmio_base) : ACTHD;
  311. return I915_READ(acthd_reg);
  312. }
  313. static int init_ring_common(struct intel_ring_buffer *ring)
  314. {
  315. struct drm_device *dev = ring->dev;
  316. drm_i915_private_t *dev_priv = dev->dev_private;
  317. struct drm_i915_gem_object *obj = ring->obj;
  318. int ret = 0;
  319. u32 head;
  320. if (HAS_FORCE_WAKE(dev))
  321. gen6_gt_force_wake_get(dev_priv);
  322. /* Stop the ring if it's running. */
  323. I915_WRITE_CTL(ring, 0);
  324. I915_WRITE_HEAD(ring, 0);
  325. ring->write_tail(ring, 0);
  326. head = I915_READ_HEAD(ring) & HEAD_ADDR;
  327. /* G45 ring initialization fails to reset head to zero */
  328. if (head != 0) {
  329. DRM_DEBUG_KMS("%s head not reset to zero "
  330. "ctl %08x head %08x tail %08x start %08x\n",
  331. ring->name,
  332. I915_READ_CTL(ring),
  333. I915_READ_HEAD(ring),
  334. I915_READ_TAIL(ring),
  335. I915_READ_START(ring));
  336. I915_WRITE_HEAD(ring, 0);
  337. if (I915_READ_HEAD(ring) & HEAD_ADDR) {
  338. DRM_ERROR("failed to set %s head to zero "
  339. "ctl %08x head %08x tail %08x start %08x\n",
  340. ring->name,
  341. I915_READ_CTL(ring),
  342. I915_READ_HEAD(ring),
  343. I915_READ_TAIL(ring),
  344. I915_READ_START(ring));
  345. }
  346. }
  347. /* Initialize the ring. This must happen _after_ we've cleared the ring
  348. * registers with the above sequence (the readback of the HEAD registers
  349. * also enforces ordering), otherwise the hw might lose the new ring
  350. * register values. */
  351. I915_WRITE_START(ring, obj->gtt_offset);
  352. I915_WRITE_CTL(ring,
  353. ((ring->size - PAGE_SIZE) & RING_NR_PAGES)
  354. | RING_VALID);
  355. /* If the head is still not zero, the ring is dead */
  356. if (wait_for((I915_READ_CTL(ring) & RING_VALID) != 0 &&
  357. I915_READ_START(ring) == obj->gtt_offset &&
  358. (I915_READ_HEAD(ring) & HEAD_ADDR) == 0, 50)) {
  359. DRM_ERROR("%s initialization failed "
  360. "ctl %08x head %08x tail %08x start %08x\n",
  361. ring->name,
  362. I915_READ_CTL(ring),
  363. I915_READ_HEAD(ring),
  364. I915_READ_TAIL(ring),
  365. I915_READ_START(ring));
  366. ret = -EIO;
  367. goto out;
  368. }
  369. if (!drm_core_check_feature(ring->dev, DRIVER_MODESET))
  370. i915_kernel_lost_context(ring->dev);
  371. else {
  372. ring->head = I915_READ_HEAD(ring);
  373. ring->tail = I915_READ_TAIL(ring) & TAIL_ADDR;
  374. ring->space = ring_space(ring);
  375. ring->last_retired_head = -1;
  376. }
  377. out:
  378. if (HAS_FORCE_WAKE(dev))
  379. gen6_gt_force_wake_put(dev_priv);
  380. return ret;
  381. }
  382. static int
  383. init_pipe_control(struct intel_ring_buffer *ring)
  384. {
  385. struct pipe_control *pc;
  386. struct drm_i915_gem_object *obj;
  387. int ret;
  388. if (ring->private)
  389. return 0;
  390. pc = kmalloc(sizeof(*pc), GFP_KERNEL);
  391. if (!pc)
  392. return -ENOMEM;
  393. obj = i915_gem_alloc_object(ring->dev, 4096);
  394. if (obj == NULL) {
  395. DRM_ERROR("Failed to allocate seqno page\n");
  396. ret = -ENOMEM;
  397. goto err;
  398. }
  399. i915_gem_object_set_cache_level(obj, I915_CACHE_LLC);
  400. ret = i915_gem_object_pin(obj, 4096, true, false);
  401. if (ret)
  402. goto err_unref;
  403. pc->gtt_offset = obj->gtt_offset;
  404. pc->cpu_page = kmap(sg_page(obj->pages->sgl));
  405. if (pc->cpu_page == NULL)
  406. goto err_unpin;
  407. pc->obj = obj;
  408. ring->private = pc;
  409. return 0;
  410. err_unpin:
  411. i915_gem_object_unpin(obj);
  412. err_unref:
  413. drm_gem_object_unreference(&obj->base);
  414. err:
  415. kfree(pc);
  416. return ret;
  417. }
  418. static void
  419. cleanup_pipe_control(struct intel_ring_buffer *ring)
  420. {
  421. struct pipe_control *pc = ring->private;
  422. struct drm_i915_gem_object *obj;
  423. if (!ring->private)
  424. return;
  425. obj = pc->obj;
  426. kunmap(sg_page(obj->pages->sgl));
  427. i915_gem_object_unpin(obj);
  428. drm_gem_object_unreference(&obj->base);
  429. kfree(pc);
  430. ring->private = NULL;
  431. }
  432. static int init_render_ring(struct intel_ring_buffer *ring)
  433. {
  434. struct drm_device *dev = ring->dev;
  435. struct drm_i915_private *dev_priv = dev->dev_private;
  436. int ret = init_ring_common(ring);
  437. if (INTEL_INFO(dev)->gen > 3) {
  438. I915_WRITE(MI_MODE, _MASKED_BIT_ENABLE(VS_TIMER_DISPATCH));
  439. if (IS_GEN7(dev))
  440. I915_WRITE(GFX_MODE_GEN7,
  441. _MASKED_BIT_DISABLE(GFX_TLB_INVALIDATE_ALWAYS) |
  442. _MASKED_BIT_ENABLE(GFX_REPLAY_MODE));
  443. }
  444. if (INTEL_INFO(dev)->gen >= 5) {
  445. ret = init_pipe_control(ring);
  446. if (ret)
  447. return ret;
  448. }
  449. if (IS_GEN6(dev)) {
  450. /* From the Sandybridge PRM, volume 1 part 3, page 24:
  451. * "If this bit is set, STCunit will have LRA as replacement
  452. * policy. [...] This bit must be reset. LRA replacement
  453. * policy is not supported."
  454. */
  455. I915_WRITE(CACHE_MODE_0,
  456. _MASKED_BIT_DISABLE(CM0_STC_EVICT_DISABLE_LRA_SNB));
  457. /* This is not explicitly set for GEN6, so read the register.
  458. * see intel_ring_mi_set_context() for why we care.
  459. * TODO: consider explicitly setting the bit for GEN5
  460. */
  461. ring->itlb_before_ctx_switch =
  462. !!(I915_READ(GFX_MODE) & GFX_TLB_INVALIDATE_ALWAYS);
  463. }
  464. if (INTEL_INFO(dev)->gen >= 6)
  465. I915_WRITE(INSTPM, _MASKED_BIT_ENABLE(INSTPM_FORCE_ORDERING));
  466. if (HAS_L3_GPU_CACHE(dev))
  467. I915_WRITE_IMR(ring, ~GEN6_RENDER_L3_PARITY_ERROR);
  468. return ret;
  469. }
  470. static void render_ring_cleanup(struct intel_ring_buffer *ring)
  471. {
  472. if (!ring->private)
  473. return;
  474. cleanup_pipe_control(ring);
  475. }
  476. static void
  477. update_mboxes(struct intel_ring_buffer *ring,
  478. u32 mmio_offset)
  479. {
  480. intel_ring_emit(ring, MI_LOAD_REGISTER_IMM(1));
  481. intel_ring_emit(ring, mmio_offset);
  482. intel_ring_emit(ring, ring->outstanding_lazy_request);
  483. }
  484. /**
  485. * gen6_add_request - Update the semaphore mailbox registers
  486. *
  487. * @ring - ring that is adding a request
  488. * @seqno - return seqno stuck into the ring
  489. *
  490. * Update the mailbox registers in the *other* rings with the current seqno.
  491. * This acts like a signal in the canonical semaphore.
  492. */
  493. static int
  494. gen6_add_request(struct intel_ring_buffer *ring)
  495. {
  496. u32 mbox1_reg;
  497. u32 mbox2_reg;
  498. int ret;
  499. ret = intel_ring_begin(ring, 10);
  500. if (ret)
  501. return ret;
  502. mbox1_reg = ring->signal_mbox[0];
  503. mbox2_reg = ring->signal_mbox[1];
  504. update_mboxes(ring, mbox1_reg);
  505. update_mboxes(ring, mbox2_reg);
  506. intel_ring_emit(ring, MI_STORE_DWORD_INDEX);
  507. intel_ring_emit(ring, I915_GEM_HWS_INDEX << MI_STORE_DWORD_INDEX_SHIFT);
  508. intel_ring_emit(ring, ring->outstanding_lazy_request);
  509. intel_ring_emit(ring, MI_USER_INTERRUPT);
  510. intel_ring_advance(ring);
  511. return 0;
  512. }
  513. static inline bool i915_gem_has_seqno_wrapped(struct drm_device *dev,
  514. u32 seqno)
  515. {
  516. struct drm_i915_private *dev_priv = dev->dev_private;
  517. return dev_priv->last_seqno < seqno;
  518. }
  519. /**
  520. * intel_ring_sync - sync the waiter to the signaller on seqno
  521. *
  522. * @waiter - ring that is waiting
  523. * @signaller - ring which has, or will signal
  524. * @seqno - seqno which the waiter will block on
  525. */
  526. static int
  527. gen6_ring_sync(struct intel_ring_buffer *waiter,
  528. struct intel_ring_buffer *signaller,
  529. u32 seqno)
  530. {
  531. int ret;
  532. u32 dw1 = MI_SEMAPHORE_MBOX |
  533. MI_SEMAPHORE_COMPARE |
  534. MI_SEMAPHORE_REGISTER;
  535. /* Throughout all of the GEM code, seqno passed implies our current
  536. * seqno is >= the last seqno executed. However for hardware the
  537. * comparison is strictly greater than.
  538. */
  539. seqno -= 1;
  540. WARN_ON(signaller->semaphore_register[waiter->id] ==
  541. MI_SEMAPHORE_SYNC_INVALID);
  542. ret = intel_ring_begin(waiter, 4);
  543. if (ret)
  544. return ret;
  545. /* If seqno wrap happened, omit the wait with no-ops */
  546. if (likely(!i915_gem_has_seqno_wrapped(waiter->dev, seqno))) {
  547. intel_ring_emit(waiter,
  548. dw1 |
  549. signaller->semaphore_register[waiter->id]);
  550. intel_ring_emit(waiter, seqno);
  551. intel_ring_emit(waiter, 0);
  552. intel_ring_emit(waiter, MI_NOOP);
  553. } else {
  554. intel_ring_emit(waiter, MI_NOOP);
  555. intel_ring_emit(waiter, MI_NOOP);
  556. intel_ring_emit(waiter, MI_NOOP);
  557. intel_ring_emit(waiter, MI_NOOP);
  558. }
  559. intel_ring_advance(waiter);
  560. return 0;
  561. }
  562. #define PIPE_CONTROL_FLUSH(ring__, addr__) \
  563. do { \
  564. intel_ring_emit(ring__, GFX_OP_PIPE_CONTROL(4) | PIPE_CONTROL_QW_WRITE | \
  565. PIPE_CONTROL_DEPTH_STALL); \
  566. intel_ring_emit(ring__, (addr__) | PIPE_CONTROL_GLOBAL_GTT); \
  567. intel_ring_emit(ring__, 0); \
  568. intel_ring_emit(ring__, 0); \
  569. } while (0)
  570. static int
  571. pc_render_add_request(struct intel_ring_buffer *ring)
  572. {
  573. struct pipe_control *pc = ring->private;
  574. u32 scratch_addr = pc->gtt_offset + 128;
  575. int ret;
  576. /* For Ironlake, MI_USER_INTERRUPT was deprecated and apparently
  577. * incoherent with writes to memory, i.e. completely fubar,
  578. * so we need to use PIPE_NOTIFY instead.
  579. *
  580. * However, we also need to workaround the qword write
  581. * incoherence by flushing the 6 PIPE_NOTIFY buffers out to
  582. * memory before requesting an interrupt.
  583. */
  584. ret = intel_ring_begin(ring, 32);
  585. if (ret)
  586. return ret;
  587. intel_ring_emit(ring, GFX_OP_PIPE_CONTROL(4) | PIPE_CONTROL_QW_WRITE |
  588. PIPE_CONTROL_WRITE_FLUSH |
  589. PIPE_CONTROL_TEXTURE_CACHE_INVALIDATE);
  590. intel_ring_emit(ring, pc->gtt_offset | PIPE_CONTROL_GLOBAL_GTT);
  591. intel_ring_emit(ring, ring->outstanding_lazy_request);
  592. intel_ring_emit(ring, 0);
  593. PIPE_CONTROL_FLUSH(ring, scratch_addr);
  594. scratch_addr += 128; /* write to separate cachelines */
  595. PIPE_CONTROL_FLUSH(ring, scratch_addr);
  596. scratch_addr += 128;
  597. PIPE_CONTROL_FLUSH(ring, scratch_addr);
  598. scratch_addr += 128;
  599. PIPE_CONTROL_FLUSH(ring, scratch_addr);
  600. scratch_addr += 128;
  601. PIPE_CONTROL_FLUSH(ring, scratch_addr);
  602. scratch_addr += 128;
  603. PIPE_CONTROL_FLUSH(ring, scratch_addr);
  604. intel_ring_emit(ring, GFX_OP_PIPE_CONTROL(4) | PIPE_CONTROL_QW_WRITE |
  605. PIPE_CONTROL_WRITE_FLUSH |
  606. PIPE_CONTROL_TEXTURE_CACHE_INVALIDATE |
  607. PIPE_CONTROL_NOTIFY);
  608. intel_ring_emit(ring, pc->gtt_offset | PIPE_CONTROL_GLOBAL_GTT);
  609. intel_ring_emit(ring, ring->outstanding_lazy_request);
  610. intel_ring_emit(ring, 0);
  611. intel_ring_advance(ring);
  612. return 0;
  613. }
  614. static u32
  615. gen6_ring_get_seqno(struct intel_ring_buffer *ring, bool lazy_coherency)
  616. {
  617. /* Workaround to force correct ordering between irq and seqno writes on
  618. * ivb (and maybe also on snb) by reading from a CS register (like
  619. * ACTHD) before reading the status page. */
  620. if (!lazy_coherency)
  621. intel_ring_get_active_head(ring);
  622. return intel_read_status_page(ring, I915_GEM_HWS_INDEX);
  623. }
  624. static u32
  625. ring_get_seqno(struct intel_ring_buffer *ring, bool lazy_coherency)
  626. {
  627. return intel_read_status_page(ring, I915_GEM_HWS_INDEX);
  628. }
  629. static u32
  630. pc_render_get_seqno(struct intel_ring_buffer *ring, bool lazy_coherency)
  631. {
  632. struct pipe_control *pc = ring->private;
  633. return pc->cpu_page[0];
  634. }
  635. static bool
  636. gen5_ring_get_irq(struct intel_ring_buffer *ring)
  637. {
  638. struct drm_device *dev = ring->dev;
  639. drm_i915_private_t *dev_priv = dev->dev_private;
  640. unsigned long flags;
  641. if (!dev->irq_enabled)
  642. return false;
  643. spin_lock_irqsave(&dev_priv->irq_lock, flags);
  644. if (ring->irq_refcount++ == 0) {
  645. dev_priv->gt_irq_mask &= ~ring->irq_enable_mask;
  646. I915_WRITE(GTIMR, dev_priv->gt_irq_mask);
  647. POSTING_READ(GTIMR);
  648. }
  649. spin_unlock_irqrestore(&dev_priv->irq_lock, flags);
  650. return true;
  651. }
  652. static void
  653. gen5_ring_put_irq(struct intel_ring_buffer *ring)
  654. {
  655. struct drm_device *dev = ring->dev;
  656. drm_i915_private_t *dev_priv = dev->dev_private;
  657. unsigned long flags;
  658. spin_lock_irqsave(&dev_priv->irq_lock, flags);
  659. if (--ring->irq_refcount == 0) {
  660. dev_priv->gt_irq_mask |= ring->irq_enable_mask;
  661. I915_WRITE(GTIMR, dev_priv->gt_irq_mask);
  662. POSTING_READ(GTIMR);
  663. }
  664. spin_unlock_irqrestore(&dev_priv->irq_lock, flags);
  665. }
  666. static bool
  667. i9xx_ring_get_irq(struct intel_ring_buffer *ring)
  668. {
  669. struct drm_device *dev = ring->dev;
  670. drm_i915_private_t *dev_priv = dev->dev_private;
  671. unsigned long flags;
  672. if (!dev->irq_enabled)
  673. return false;
  674. spin_lock_irqsave(&dev_priv->irq_lock, flags);
  675. if (ring->irq_refcount++ == 0) {
  676. dev_priv->irq_mask &= ~ring->irq_enable_mask;
  677. I915_WRITE(IMR, dev_priv->irq_mask);
  678. POSTING_READ(IMR);
  679. }
  680. spin_unlock_irqrestore(&dev_priv->irq_lock, flags);
  681. return true;
  682. }
  683. static void
  684. i9xx_ring_put_irq(struct intel_ring_buffer *ring)
  685. {
  686. struct drm_device *dev = ring->dev;
  687. drm_i915_private_t *dev_priv = dev->dev_private;
  688. unsigned long flags;
  689. spin_lock_irqsave(&dev_priv->irq_lock, flags);
  690. if (--ring->irq_refcount == 0) {
  691. dev_priv->irq_mask |= ring->irq_enable_mask;
  692. I915_WRITE(IMR, dev_priv->irq_mask);
  693. POSTING_READ(IMR);
  694. }
  695. spin_unlock_irqrestore(&dev_priv->irq_lock, flags);
  696. }
  697. static bool
  698. i8xx_ring_get_irq(struct intel_ring_buffer *ring)
  699. {
  700. struct drm_device *dev = ring->dev;
  701. drm_i915_private_t *dev_priv = dev->dev_private;
  702. unsigned long flags;
  703. if (!dev->irq_enabled)
  704. return false;
  705. spin_lock_irqsave(&dev_priv->irq_lock, flags);
  706. if (ring->irq_refcount++ == 0) {
  707. dev_priv->irq_mask &= ~ring->irq_enable_mask;
  708. I915_WRITE16(IMR, dev_priv->irq_mask);
  709. POSTING_READ16(IMR);
  710. }
  711. spin_unlock_irqrestore(&dev_priv->irq_lock, flags);
  712. return true;
  713. }
  714. static void
  715. i8xx_ring_put_irq(struct intel_ring_buffer *ring)
  716. {
  717. struct drm_device *dev = ring->dev;
  718. drm_i915_private_t *dev_priv = dev->dev_private;
  719. unsigned long flags;
  720. spin_lock_irqsave(&dev_priv->irq_lock, flags);
  721. if (--ring->irq_refcount == 0) {
  722. dev_priv->irq_mask |= ring->irq_enable_mask;
  723. I915_WRITE16(IMR, dev_priv->irq_mask);
  724. POSTING_READ16(IMR);
  725. }
  726. spin_unlock_irqrestore(&dev_priv->irq_lock, flags);
  727. }
  728. void intel_ring_setup_status_page(struct intel_ring_buffer *ring)
  729. {
  730. struct drm_device *dev = ring->dev;
  731. drm_i915_private_t *dev_priv = ring->dev->dev_private;
  732. u32 mmio = 0;
  733. /* The ring status page addresses are no longer next to the rest of
  734. * the ring registers as of gen7.
  735. */
  736. if (IS_GEN7(dev)) {
  737. switch (ring->id) {
  738. case RCS:
  739. mmio = RENDER_HWS_PGA_GEN7;
  740. break;
  741. case BCS:
  742. mmio = BLT_HWS_PGA_GEN7;
  743. break;
  744. case VCS:
  745. mmio = BSD_HWS_PGA_GEN7;
  746. break;
  747. }
  748. } else if (IS_GEN6(ring->dev)) {
  749. mmio = RING_HWS_PGA_GEN6(ring->mmio_base);
  750. } else {
  751. mmio = RING_HWS_PGA(ring->mmio_base);
  752. }
  753. I915_WRITE(mmio, (u32)ring->status_page.gfx_addr);
  754. POSTING_READ(mmio);
  755. }
  756. static int
  757. bsd_ring_flush(struct intel_ring_buffer *ring,
  758. u32 invalidate_domains,
  759. u32 flush_domains)
  760. {
  761. int ret;
  762. ret = intel_ring_begin(ring, 2);
  763. if (ret)
  764. return ret;
  765. intel_ring_emit(ring, MI_FLUSH);
  766. intel_ring_emit(ring, MI_NOOP);
  767. intel_ring_advance(ring);
  768. return 0;
  769. }
  770. static int
  771. i9xx_add_request(struct intel_ring_buffer *ring)
  772. {
  773. int ret;
  774. ret = intel_ring_begin(ring, 4);
  775. if (ret)
  776. return ret;
  777. intel_ring_emit(ring, MI_STORE_DWORD_INDEX);
  778. intel_ring_emit(ring, I915_GEM_HWS_INDEX << MI_STORE_DWORD_INDEX_SHIFT);
  779. intel_ring_emit(ring, ring->outstanding_lazy_request);
  780. intel_ring_emit(ring, MI_USER_INTERRUPT);
  781. intel_ring_advance(ring);
  782. return 0;
  783. }
  784. static bool
  785. gen6_ring_get_irq(struct intel_ring_buffer *ring)
  786. {
  787. struct drm_device *dev = ring->dev;
  788. drm_i915_private_t *dev_priv = dev->dev_private;
  789. unsigned long flags;
  790. if (!dev->irq_enabled)
  791. return false;
  792. /* It looks like we need to prevent the gt from suspending while waiting
  793. * for an notifiy irq, otherwise irqs seem to get lost on at least the
  794. * blt/bsd rings on ivb. */
  795. gen6_gt_force_wake_get(dev_priv);
  796. spin_lock_irqsave(&dev_priv->irq_lock, flags);
  797. if (ring->irq_refcount++ == 0) {
  798. if (HAS_L3_GPU_CACHE(dev) && ring->id == RCS)
  799. I915_WRITE_IMR(ring, ~(ring->irq_enable_mask |
  800. GEN6_RENDER_L3_PARITY_ERROR));
  801. else
  802. I915_WRITE_IMR(ring, ~ring->irq_enable_mask);
  803. dev_priv->gt_irq_mask &= ~ring->irq_enable_mask;
  804. I915_WRITE(GTIMR, dev_priv->gt_irq_mask);
  805. POSTING_READ(GTIMR);
  806. }
  807. spin_unlock_irqrestore(&dev_priv->irq_lock, flags);
  808. return true;
  809. }
  810. static void
  811. gen6_ring_put_irq(struct intel_ring_buffer *ring)
  812. {
  813. struct drm_device *dev = ring->dev;
  814. drm_i915_private_t *dev_priv = dev->dev_private;
  815. unsigned long flags;
  816. spin_lock_irqsave(&dev_priv->irq_lock, flags);
  817. if (--ring->irq_refcount == 0) {
  818. if (HAS_L3_GPU_CACHE(dev) && ring->id == RCS)
  819. I915_WRITE_IMR(ring, ~GEN6_RENDER_L3_PARITY_ERROR);
  820. else
  821. I915_WRITE_IMR(ring, ~0);
  822. dev_priv->gt_irq_mask |= ring->irq_enable_mask;
  823. I915_WRITE(GTIMR, dev_priv->gt_irq_mask);
  824. POSTING_READ(GTIMR);
  825. }
  826. spin_unlock_irqrestore(&dev_priv->irq_lock, flags);
  827. gen6_gt_force_wake_put(dev_priv);
  828. }
  829. static int
  830. i965_dispatch_execbuffer(struct intel_ring_buffer *ring,
  831. u32 offset, u32 length,
  832. unsigned flags)
  833. {
  834. int ret;
  835. ret = intel_ring_begin(ring, 2);
  836. if (ret)
  837. return ret;
  838. intel_ring_emit(ring,
  839. MI_BATCH_BUFFER_START |
  840. MI_BATCH_GTT |
  841. (flags & I915_DISPATCH_SECURE ? 0 : MI_BATCH_NON_SECURE_I965));
  842. intel_ring_emit(ring, offset);
  843. intel_ring_advance(ring);
  844. return 0;
  845. }
  846. static int
  847. i830_dispatch_execbuffer(struct intel_ring_buffer *ring,
  848. u32 offset, u32 len,
  849. unsigned flags)
  850. {
  851. int ret;
  852. ret = intel_ring_begin(ring, 4);
  853. if (ret)
  854. return ret;
  855. intel_ring_emit(ring, MI_BATCH_BUFFER);
  856. intel_ring_emit(ring, offset | (flags & I915_DISPATCH_SECURE ? 0 : MI_BATCH_NON_SECURE));
  857. intel_ring_emit(ring, offset + len - 8);
  858. intel_ring_emit(ring, 0);
  859. intel_ring_advance(ring);
  860. return 0;
  861. }
  862. static int
  863. i915_dispatch_execbuffer(struct intel_ring_buffer *ring,
  864. u32 offset, u32 len,
  865. unsigned flags)
  866. {
  867. int ret;
  868. ret = intel_ring_begin(ring, 2);
  869. if (ret)
  870. return ret;
  871. intel_ring_emit(ring, MI_BATCH_BUFFER_START | MI_BATCH_GTT);
  872. intel_ring_emit(ring, offset | (flags & I915_DISPATCH_SECURE ? 0 : MI_BATCH_NON_SECURE));
  873. intel_ring_advance(ring);
  874. return 0;
  875. }
  876. static void cleanup_status_page(struct intel_ring_buffer *ring)
  877. {
  878. struct drm_i915_gem_object *obj;
  879. obj = ring->status_page.obj;
  880. if (obj == NULL)
  881. return;
  882. kunmap(sg_page(obj->pages->sgl));
  883. i915_gem_object_unpin(obj);
  884. drm_gem_object_unreference(&obj->base);
  885. ring->status_page.obj = NULL;
  886. }
  887. static int init_status_page(struct intel_ring_buffer *ring)
  888. {
  889. struct drm_device *dev = ring->dev;
  890. struct drm_i915_gem_object *obj;
  891. int ret;
  892. obj = i915_gem_alloc_object(dev, 4096);
  893. if (obj == NULL) {
  894. DRM_ERROR("Failed to allocate status page\n");
  895. ret = -ENOMEM;
  896. goto err;
  897. }
  898. i915_gem_object_set_cache_level(obj, I915_CACHE_LLC);
  899. ret = i915_gem_object_pin(obj, 4096, true, false);
  900. if (ret != 0) {
  901. goto err_unref;
  902. }
  903. ring->status_page.gfx_addr = obj->gtt_offset;
  904. ring->status_page.page_addr = kmap(sg_page(obj->pages->sgl));
  905. if (ring->status_page.page_addr == NULL) {
  906. ret = -ENOMEM;
  907. goto err_unpin;
  908. }
  909. ring->status_page.obj = obj;
  910. memset(ring->status_page.page_addr, 0, PAGE_SIZE);
  911. intel_ring_setup_status_page(ring);
  912. DRM_DEBUG_DRIVER("%s hws offset: 0x%08x\n",
  913. ring->name, ring->status_page.gfx_addr);
  914. return 0;
  915. err_unpin:
  916. i915_gem_object_unpin(obj);
  917. err_unref:
  918. drm_gem_object_unreference(&obj->base);
  919. err:
  920. return ret;
  921. }
  922. static int init_phys_hws_pga(struct intel_ring_buffer *ring)
  923. {
  924. struct drm_i915_private *dev_priv = ring->dev->dev_private;
  925. u32 addr;
  926. if (!dev_priv->status_page_dmah) {
  927. dev_priv->status_page_dmah =
  928. drm_pci_alloc(ring->dev, PAGE_SIZE, PAGE_SIZE);
  929. if (!dev_priv->status_page_dmah)
  930. return -ENOMEM;
  931. }
  932. addr = dev_priv->status_page_dmah->busaddr;
  933. if (INTEL_INFO(ring->dev)->gen >= 4)
  934. addr |= (dev_priv->status_page_dmah->busaddr >> 28) & 0xf0;
  935. I915_WRITE(HWS_PGA, addr);
  936. ring->status_page.page_addr = dev_priv->status_page_dmah->vaddr;
  937. memset(ring->status_page.page_addr, 0, PAGE_SIZE);
  938. return 0;
  939. }
  940. static int intel_init_ring_buffer(struct drm_device *dev,
  941. struct intel_ring_buffer *ring)
  942. {
  943. struct drm_i915_gem_object *obj;
  944. struct drm_i915_private *dev_priv = dev->dev_private;
  945. int ret;
  946. ring->dev = dev;
  947. INIT_LIST_HEAD(&ring->active_list);
  948. INIT_LIST_HEAD(&ring->request_list);
  949. ring->size = 32 * PAGE_SIZE;
  950. memset(ring->sync_seqno, 0, sizeof(ring->sync_seqno));
  951. init_waitqueue_head(&ring->irq_queue);
  952. if (I915_NEED_GFX_HWS(dev)) {
  953. ret = init_status_page(ring);
  954. if (ret)
  955. return ret;
  956. } else {
  957. BUG_ON(ring->id != RCS);
  958. ret = init_phys_hws_pga(ring);
  959. if (ret)
  960. return ret;
  961. }
  962. obj = NULL;
  963. if (!HAS_LLC(dev))
  964. obj = i915_gem_object_create_stolen(dev, ring->size);
  965. if (obj == NULL)
  966. obj = i915_gem_alloc_object(dev, ring->size);
  967. if (obj == NULL) {
  968. DRM_ERROR("Failed to allocate ringbuffer\n");
  969. ret = -ENOMEM;
  970. goto err_hws;
  971. }
  972. ring->obj = obj;
  973. ret = i915_gem_object_pin(obj, PAGE_SIZE, true, false);
  974. if (ret)
  975. goto err_unref;
  976. ret = i915_gem_object_set_to_gtt_domain(obj, true);
  977. if (ret)
  978. goto err_unpin;
  979. ring->virtual_start =
  980. ioremap_wc(dev_priv->mm.gtt->gma_bus_addr + obj->gtt_offset,
  981. ring->size);
  982. if (ring->virtual_start == NULL) {
  983. DRM_ERROR("Failed to map ringbuffer.\n");
  984. ret = -EINVAL;
  985. goto err_unpin;
  986. }
  987. ret = ring->init(ring);
  988. if (ret)
  989. goto err_unmap;
  990. /* Workaround an erratum on the i830 which causes a hang if
  991. * the TAIL pointer points to within the last 2 cachelines
  992. * of the buffer.
  993. */
  994. ring->effective_size = ring->size;
  995. if (IS_I830(ring->dev) || IS_845G(ring->dev))
  996. ring->effective_size -= 128;
  997. return 0;
  998. err_unmap:
  999. iounmap(ring->virtual_start);
  1000. err_unpin:
  1001. i915_gem_object_unpin(obj);
  1002. err_unref:
  1003. drm_gem_object_unreference(&obj->base);
  1004. ring->obj = NULL;
  1005. err_hws:
  1006. cleanup_status_page(ring);
  1007. return ret;
  1008. }
  1009. void intel_cleanup_ring_buffer(struct intel_ring_buffer *ring)
  1010. {
  1011. struct drm_i915_private *dev_priv;
  1012. int ret;
  1013. if (ring->obj == NULL)
  1014. return;
  1015. /* Disable the ring buffer. The ring must be idle at this point */
  1016. dev_priv = ring->dev->dev_private;
  1017. ret = intel_ring_idle(ring);
  1018. if (ret)
  1019. DRM_ERROR("failed to quiesce %s whilst cleaning up: %d\n",
  1020. ring->name, ret);
  1021. I915_WRITE_CTL(ring, 0);
  1022. iounmap(ring->virtual_start);
  1023. i915_gem_object_unpin(ring->obj);
  1024. drm_gem_object_unreference(&ring->obj->base);
  1025. ring->obj = NULL;
  1026. if (ring->cleanup)
  1027. ring->cleanup(ring);
  1028. cleanup_status_page(ring);
  1029. }
  1030. static int intel_ring_wait_seqno(struct intel_ring_buffer *ring, u32 seqno)
  1031. {
  1032. int ret;
  1033. ret = i915_wait_seqno(ring, seqno);
  1034. if (!ret)
  1035. i915_gem_retire_requests_ring(ring);
  1036. return ret;
  1037. }
  1038. static int intel_ring_wait_request(struct intel_ring_buffer *ring, int n)
  1039. {
  1040. struct drm_i915_gem_request *request;
  1041. u32 seqno = 0;
  1042. int ret;
  1043. i915_gem_retire_requests_ring(ring);
  1044. if (ring->last_retired_head != -1) {
  1045. ring->head = ring->last_retired_head;
  1046. ring->last_retired_head = -1;
  1047. ring->space = ring_space(ring);
  1048. if (ring->space >= n)
  1049. return 0;
  1050. }
  1051. list_for_each_entry(request, &ring->request_list, list) {
  1052. int space;
  1053. if (request->tail == -1)
  1054. continue;
  1055. space = request->tail - (ring->tail + 8);
  1056. if (space < 0)
  1057. space += ring->size;
  1058. if (space >= n) {
  1059. seqno = request->seqno;
  1060. break;
  1061. }
  1062. /* Consume this request in case we need more space than
  1063. * is available and so need to prevent a race between
  1064. * updating last_retired_head and direct reads of
  1065. * I915_RING_HEAD. It also provides a nice sanity check.
  1066. */
  1067. request->tail = -1;
  1068. }
  1069. if (seqno == 0)
  1070. return -ENOSPC;
  1071. ret = intel_ring_wait_seqno(ring, seqno);
  1072. if (ret)
  1073. return ret;
  1074. if (WARN_ON(ring->last_retired_head == -1))
  1075. return -ENOSPC;
  1076. ring->head = ring->last_retired_head;
  1077. ring->last_retired_head = -1;
  1078. ring->space = ring_space(ring);
  1079. if (WARN_ON(ring->space < n))
  1080. return -ENOSPC;
  1081. return 0;
  1082. }
  1083. static int ring_wait_for_space(struct intel_ring_buffer *ring, int n)
  1084. {
  1085. struct drm_device *dev = ring->dev;
  1086. struct drm_i915_private *dev_priv = dev->dev_private;
  1087. unsigned long end;
  1088. int ret;
  1089. ret = intel_ring_wait_request(ring, n);
  1090. if (ret != -ENOSPC)
  1091. return ret;
  1092. trace_i915_ring_wait_begin(ring);
  1093. /* With GEM the hangcheck timer should kick us out of the loop,
  1094. * leaving it early runs the risk of corrupting GEM state (due
  1095. * to running on almost untested codepaths). But on resume
  1096. * timers don't work yet, so prevent a complete hang in that
  1097. * case by choosing an insanely large timeout. */
  1098. end = jiffies + 60 * HZ;
  1099. do {
  1100. ring->head = I915_READ_HEAD(ring);
  1101. ring->space = ring_space(ring);
  1102. if (ring->space >= n) {
  1103. trace_i915_ring_wait_end(ring);
  1104. return 0;
  1105. }
  1106. if (dev->primary->master) {
  1107. struct drm_i915_master_private *master_priv = dev->primary->master->driver_priv;
  1108. if (master_priv->sarea_priv)
  1109. master_priv->sarea_priv->perf_boxes |= I915_BOX_WAIT;
  1110. }
  1111. msleep(1);
  1112. ret = i915_gem_check_wedge(dev_priv, dev_priv->mm.interruptible);
  1113. if (ret)
  1114. return ret;
  1115. } while (!time_after(jiffies, end));
  1116. trace_i915_ring_wait_end(ring);
  1117. return -EBUSY;
  1118. }
  1119. static int intel_wrap_ring_buffer(struct intel_ring_buffer *ring)
  1120. {
  1121. uint32_t __iomem *virt;
  1122. int rem = ring->size - ring->tail;
  1123. if (ring->space < rem) {
  1124. int ret = ring_wait_for_space(ring, rem);
  1125. if (ret)
  1126. return ret;
  1127. }
  1128. virt = ring->virtual_start + ring->tail;
  1129. rem /= 4;
  1130. while (rem--)
  1131. iowrite32(MI_NOOP, virt++);
  1132. ring->tail = 0;
  1133. ring->space = ring_space(ring);
  1134. return 0;
  1135. }
  1136. int intel_ring_idle(struct intel_ring_buffer *ring)
  1137. {
  1138. u32 seqno;
  1139. int ret;
  1140. /* We need to add any requests required to flush the objects and ring */
  1141. if (ring->outstanding_lazy_request) {
  1142. ret = i915_add_request(ring, NULL, NULL);
  1143. if (ret)
  1144. return ret;
  1145. }
  1146. /* Wait upon the last request to be completed */
  1147. if (list_empty(&ring->request_list))
  1148. return 0;
  1149. seqno = list_entry(ring->request_list.prev,
  1150. struct drm_i915_gem_request,
  1151. list)->seqno;
  1152. return i915_wait_seqno(ring, seqno);
  1153. }
  1154. static int
  1155. intel_ring_alloc_seqno(struct intel_ring_buffer *ring)
  1156. {
  1157. if (ring->outstanding_lazy_request)
  1158. return 0;
  1159. return i915_gem_get_seqno(ring->dev, &ring->outstanding_lazy_request);
  1160. }
  1161. static int __intel_ring_begin(struct intel_ring_buffer *ring,
  1162. int bytes)
  1163. {
  1164. int ret;
  1165. if (unlikely(ring->tail + bytes > ring->effective_size)) {
  1166. ret = intel_wrap_ring_buffer(ring);
  1167. if (unlikely(ret))
  1168. return ret;
  1169. }
  1170. if (unlikely(ring->space < bytes)) {
  1171. ret = ring_wait_for_space(ring, bytes);
  1172. if (unlikely(ret))
  1173. return ret;
  1174. }
  1175. ring->space -= bytes;
  1176. return 0;
  1177. }
  1178. int intel_ring_begin(struct intel_ring_buffer *ring,
  1179. int num_dwords)
  1180. {
  1181. drm_i915_private_t *dev_priv = ring->dev->dev_private;
  1182. int ret;
  1183. ret = i915_gem_check_wedge(dev_priv, dev_priv->mm.interruptible);
  1184. if (ret)
  1185. return ret;
  1186. /* Preallocate the olr before touching the ring */
  1187. ret = intel_ring_alloc_seqno(ring);
  1188. if (ret)
  1189. return ret;
  1190. return __intel_ring_begin(ring, num_dwords * sizeof(uint32_t));
  1191. }
  1192. int intel_ring_handle_seqno_wrap(struct intel_ring_buffer *ring)
  1193. {
  1194. int ret;
  1195. BUG_ON(ring->outstanding_lazy_request);
  1196. if (INTEL_INFO(ring->dev)->gen < 6)
  1197. return 0;
  1198. ret = __intel_ring_begin(ring, 6 * sizeof(uint32_t));
  1199. if (ret)
  1200. return ret;
  1201. /* Leaving a stale, pre-wrap seqno behind in the mboxes will result in
  1202. * post-wrap semaphore waits completing immediately. Clear them. */
  1203. update_mboxes(ring, ring->signal_mbox[0]);
  1204. update_mboxes(ring, ring->signal_mbox[1]);
  1205. intel_ring_advance(ring);
  1206. return 0;
  1207. }
  1208. void intel_ring_advance(struct intel_ring_buffer *ring)
  1209. {
  1210. struct drm_i915_private *dev_priv = ring->dev->dev_private;
  1211. ring->tail &= ring->size - 1;
  1212. if (dev_priv->stop_rings & intel_ring_flag(ring))
  1213. return;
  1214. ring->write_tail(ring, ring->tail);
  1215. }
  1216. static void gen6_bsd_ring_write_tail(struct intel_ring_buffer *ring,
  1217. u32 value)
  1218. {
  1219. drm_i915_private_t *dev_priv = ring->dev->dev_private;
  1220. /* Every tail move must follow the sequence below */
  1221. /* Disable notification that the ring is IDLE. The GT
  1222. * will then assume that it is busy and bring it out of rc6.
  1223. */
  1224. I915_WRITE(GEN6_BSD_SLEEP_PSMI_CONTROL,
  1225. _MASKED_BIT_ENABLE(GEN6_BSD_SLEEP_MSG_DISABLE));
  1226. /* Clear the context id. Here be magic! */
  1227. I915_WRITE64(GEN6_BSD_RNCID, 0x0);
  1228. /* Wait for the ring not to be idle, i.e. for it to wake up. */
  1229. if (wait_for((I915_READ(GEN6_BSD_SLEEP_PSMI_CONTROL) &
  1230. GEN6_BSD_SLEEP_INDICATOR) == 0,
  1231. 50))
  1232. DRM_ERROR("timed out waiting for the BSD ring to wake up\n");
  1233. /* Now that the ring is fully powered up, update the tail */
  1234. I915_WRITE_TAIL(ring, value);
  1235. POSTING_READ(RING_TAIL(ring->mmio_base));
  1236. /* Let the ring send IDLE messages to the GT again,
  1237. * and so let it sleep to conserve power when idle.
  1238. */
  1239. I915_WRITE(GEN6_BSD_SLEEP_PSMI_CONTROL,
  1240. _MASKED_BIT_DISABLE(GEN6_BSD_SLEEP_MSG_DISABLE));
  1241. }
  1242. static int gen6_ring_flush(struct intel_ring_buffer *ring,
  1243. u32 invalidate, u32 flush)
  1244. {
  1245. uint32_t cmd;
  1246. int ret;
  1247. ret = intel_ring_begin(ring, 4);
  1248. if (ret)
  1249. return ret;
  1250. cmd = MI_FLUSH_DW;
  1251. /*
  1252. * Bspec vol 1c.5 - video engine command streamer:
  1253. * "If ENABLED, all TLBs will be invalidated once the flush
  1254. * operation is complete. This bit is only valid when the
  1255. * Post-Sync Operation field is a value of 1h or 3h."
  1256. */
  1257. if (invalidate & I915_GEM_GPU_DOMAINS)
  1258. cmd |= MI_INVALIDATE_TLB | MI_INVALIDATE_BSD |
  1259. MI_FLUSH_DW_STORE_INDEX | MI_FLUSH_DW_OP_STOREDW;
  1260. intel_ring_emit(ring, cmd);
  1261. intel_ring_emit(ring, I915_GEM_HWS_SCRATCH_ADDR | MI_FLUSH_DW_USE_GTT);
  1262. intel_ring_emit(ring, 0);
  1263. intel_ring_emit(ring, MI_NOOP);
  1264. intel_ring_advance(ring);
  1265. return 0;
  1266. }
  1267. static int
  1268. hsw_ring_dispatch_execbuffer(struct intel_ring_buffer *ring,
  1269. u32 offset, u32 len,
  1270. unsigned flags)
  1271. {
  1272. int ret;
  1273. ret = intel_ring_begin(ring, 2);
  1274. if (ret)
  1275. return ret;
  1276. intel_ring_emit(ring,
  1277. MI_BATCH_BUFFER_START | MI_BATCH_PPGTT_HSW |
  1278. (flags & I915_DISPATCH_SECURE ? 0 : MI_BATCH_NON_SECURE_HSW));
  1279. /* bit0-7 is the length on GEN6+ */
  1280. intel_ring_emit(ring, offset);
  1281. intel_ring_advance(ring);
  1282. return 0;
  1283. }
  1284. static int
  1285. gen6_ring_dispatch_execbuffer(struct intel_ring_buffer *ring,
  1286. u32 offset, u32 len,
  1287. unsigned flags)
  1288. {
  1289. int ret;
  1290. ret = intel_ring_begin(ring, 2);
  1291. if (ret)
  1292. return ret;
  1293. intel_ring_emit(ring,
  1294. MI_BATCH_BUFFER_START |
  1295. (flags & I915_DISPATCH_SECURE ? 0 : MI_BATCH_NON_SECURE_I965));
  1296. /* bit0-7 is the length on GEN6+ */
  1297. intel_ring_emit(ring, offset);
  1298. intel_ring_advance(ring);
  1299. return 0;
  1300. }
  1301. /* Blitter support (SandyBridge+) */
  1302. static int blt_ring_flush(struct intel_ring_buffer *ring,
  1303. u32 invalidate, u32 flush)
  1304. {
  1305. uint32_t cmd;
  1306. int ret;
  1307. ret = intel_ring_begin(ring, 4);
  1308. if (ret)
  1309. return ret;
  1310. cmd = MI_FLUSH_DW;
  1311. /*
  1312. * Bspec vol 1c.3 - blitter engine command streamer:
  1313. * "If ENABLED, all TLBs will be invalidated once the flush
  1314. * operation is complete. This bit is only valid when the
  1315. * Post-Sync Operation field is a value of 1h or 3h."
  1316. */
  1317. if (invalidate & I915_GEM_DOMAIN_RENDER)
  1318. cmd |= MI_INVALIDATE_TLB | MI_FLUSH_DW_STORE_INDEX |
  1319. MI_FLUSH_DW_OP_STOREDW;
  1320. intel_ring_emit(ring, cmd);
  1321. intel_ring_emit(ring, I915_GEM_HWS_SCRATCH_ADDR | MI_FLUSH_DW_USE_GTT);
  1322. intel_ring_emit(ring, 0);
  1323. intel_ring_emit(ring, MI_NOOP);
  1324. intel_ring_advance(ring);
  1325. return 0;
  1326. }
  1327. int intel_init_render_ring_buffer(struct drm_device *dev)
  1328. {
  1329. drm_i915_private_t *dev_priv = dev->dev_private;
  1330. struct intel_ring_buffer *ring = &dev_priv->ring[RCS];
  1331. ring->name = "render ring";
  1332. ring->id = RCS;
  1333. ring->mmio_base = RENDER_RING_BASE;
  1334. if (INTEL_INFO(dev)->gen >= 6) {
  1335. ring->add_request = gen6_add_request;
  1336. ring->flush = gen7_render_ring_flush;
  1337. if (INTEL_INFO(dev)->gen == 6)
  1338. ring->flush = gen6_render_ring_flush;
  1339. ring->irq_get = gen6_ring_get_irq;
  1340. ring->irq_put = gen6_ring_put_irq;
  1341. ring->irq_enable_mask = GT_USER_INTERRUPT;
  1342. ring->get_seqno = gen6_ring_get_seqno;
  1343. ring->sync_to = gen6_ring_sync;
  1344. ring->semaphore_register[0] = MI_SEMAPHORE_SYNC_INVALID;
  1345. ring->semaphore_register[1] = MI_SEMAPHORE_SYNC_RV;
  1346. ring->semaphore_register[2] = MI_SEMAPHORE_SYNC_RB;
  1347. ring->signal_mbox[0] = GEN6_VRSYNC;
  1348. ring->signal_mbox[1] = GEN6_BRSYNC;
  1349. } else if (IS_GEN5(dev)) {
  1350. ring->add_request = pc_render_add_request;
  1351. ring->flush = gen4_render_ring_flush;
  1352. ring->get_seqno = pc_render_get_seqno;
  1353. ring->irq_get = gen5_ring_get_irq;
  1354. ring->irq_put = gen5_ring_put_irq;
  1355. ring->irq_enable_mask = GT_USER_INTERRUPT | GT_PIPE_NOTIFY;
  1356. } else {
  1357. ring->add_request = i9xx_add_request;
  1358. if (INTEL_INFO(dev)->gen < 4)
  1359. ring->flush = gen2_render_ring_flush;
  1360. else
  1361. ring->flush = gen4_render_ring_flush;
  1362. ring->get_seqno = ring_get_seqno;
  1363. if (IS_GEN2(dev)) {
  1364. ring->irq_get = i8xx_ring_get_irq;
  1365. ring->irq_put = i8xx_ring_put_irq;
  1366. } else {
  1367. ring->irq_get = i9xx_ring_get_irq;
  1368. ring->irq_put = i9xx_ring_put_irq;
  1369. }
  1370. ring->irq_enable_mask = I915_USER_INTERRUPT;
  1371. }
  1372. ring->write_tail = ring_write_tail;
  1373. if (IS_HASWELL(dev))
  1374. ring->dispatch_execbuffer = hsw_ring_dispatch_execbuffer;
  1375. else if (INTEL_INFO(dev)->gen >= 6)
  1376. ring->dispatch_execbuffer = gen6_ring_dispatch_execbuffer;
  1377. else if (INTEL_INFO(dev)->gen >= 4)
  1378. ring->dispatch_execbuffer = i965_dispatch_execbuffer;
  1379. else if (IS_I830(dev) || IS_845G(dev))
  1380. ring->dispatch_execbuffer = i830_dispatch_execbuffer;
  1381. else
  1382. ring->dispatch_execbuffer = i915_dispatch_execbuffer;
  1383. ring->init = init_render_ring;
  1384. ring->cleanup = render_ring_cleanup;
  1385. return intel_init_ring_buffer(dev, ring);
  1386. }
  1387. int intel_render_ring_init_dri(struct drm_device *dev, u64 start, u32 size)
  1388. {
  1389. drm_i915_private_t *dev_priv = dev->dev_private;
  1390. struct intel_ring_buffer *ring = &dev_priv->ring[RCS];
  1391. int ret;
  1392. ring->name = "render ring";
  1393. ring->id = RCS;
  1394. ring->mmio_base = RENDER_RING_BASE;
  1395. if (INTEL_INFO(dev)->gen >= 6) {
  1396. /* non-kms not supported on gen6+ */
  1397. return -ENODEV;
  1398. }
  1399. /* Note: gem is not supported on gen5/ilk without kms (the corresponding
  1400. * gem_init ioctl returns with -ENODEV). Hence we do not need to set up
  1401. * the special gen5 functions. */
  1402. ring->add_request = i9xx_add_request;
  1403. if (INTEL_INFO(dev)->gen < 4)
  1404. ring->flush = gen2_render_ring_flush;
  1405. else
  1406. ring->flush = gen4_render_ring_flush;
  1407. ring->get_seqno = ring_get_seqno;
  1408. if (IS_GEN2(dev)) {
  1409. ring->irq_get = i8xx_ring_get_irq;
  1410. ring->irq_put = i8xx_ring_put_irq;
  1411. } else {
  1412. ring->irq_get = i9xx_ring_get_irq;
  1413. ring->irq_put = i9xx_ring_put_irq;
  1414. }
  1415. ring->irq_enable_mask = I915_USER_INTERRUPT;
  1416. ring->write_tail = ring_write_tail;
  1417. if (INTEL_INFO(dev)->gen >= 4)
  1418. ring->dispatch_execbuffer = i965_dispatch_execbuffer;
  1419. else if (IS_I830(dev) || IS_845G(dev))
  1420. ring->dispatch_execbuffer = i830_dispatch_execbuffer;
  1421. else
  1422. ring->dispatch_execbuffer = i915_dispatch_execbuffer;
  1423. ring->init = init_render_ring;
  1424. ring->cleanup = render_ring_cleanup;
  1425. ring->dev = dev;
  1426. INIT_LIST_HEAD(&ring->active_list);
  1427. INIT_LIST_HEAD(&ring->request_list);
  1428. ring->size = size;
  1429. ring->effective_size = ring->size;
  1430. if (IS_I830(ring->dev) || IS_845G(ring->dev))
  1431. ring->effective_size -= 128;
  1432. ring->virtual_start = ioremap_wc(start, size);
  1433. if (ring->virtual_start == NULL) {
  1434. DRM_ERROR("can not ioremap virtual address for"
  1435. " ring buffer\n");
  1436. return -ENOMEM;
  1437. }
  1438. if (!I915_NEED_GFX_HWS(dev)) {
  1439. ret = init_phys_hws_pga(ring);
  1440. if (ret)
  1441. return ret;
  1442. }
  1443. return 0;
  1444. }
  1445. int intel_init_bsd_ring_buffer(struct drm_device *dev)
  1446. {
  1447. drm_i915_private_t *dev_priv = dev->dev_private;
  1448. struct intel_ring_buffer *ring = &dev_priv->ring[VCS];
  1449. ring->name = "bsd ring";
  1450. ring->id = VCS;
  1451. ring->write_tail = ring_write_tail;
  1452. if (IS_GEN6(dev) || IS_GEN7(dev)) {
  1453. ring->mmio_base = GEN6_BSD_RING_BASE;
  1454. /* gen6 bsd needs a special wa for tail updates */
  1455. if (IS_GEN6(dev))
  1456. ring->write_tail = gen6_bsd_ring_write_tail;
  1457. ring->flush = gen6_ring_flush;
  1458. ring->add_request = gen6_add_request;
  1459. ring->get_seqno = gen6_ring_get_seqno;
  1460. ring->irq_enable_mask = GEN6_BSD_USER_INTERRUPT;
  1461. ring->irq_get = gen6_ring_get_irq;
  1462. ring->irq_put = gen6_ring_put_irq;
  1463. ring->dispatch_execbuffer = gen6_ring_dispatch_execbuffer;
  1464. ring->sync_to = gen6_ring_sync;
  1465. ring->semaphore_register[0] = MI_SEMAPHORE_SYNC_VR;
  1466. ring->semaphore_register[1] = MI_SEMAPHORE_SYNC_INVALID;
  1467. ring->semaphore_register[2] = MI_SEMAPHORE_SYNC_VB;
  1468. ring->signal_mbox[0] = GEN6_RVSYNC;
  1469. ring->signal_mbox[1] = GEN6_BVSYNC;
  1470. } else {
  1471. ring->mmio_base = BSD_RING_BASE;
  1472. ring->flush = bsd_ring_flush;
  1473. ring->add_request = i9xx_add_request;
  1474. ring->get_seqno = ring_get_seqno;
  1475. if (IS_GEN5(dev)) {
  1476. ring->irq_enable_mask = GT_BSD_USER_INTERRUPT;
  1477. ring->irq_get = gen5_ring_get_irq;
  1478. ring->irq_put = gen5_ring_put_irq;
  1479. } else {
  1480. ring->irq_enable_mask = I915_BSD_USER_INTERRUPT;
  1481. ring->irq_get = i9xx_ring_get_irq;
  1482. ring->irq_put = i9xx_ring_put_irq;
  1483. }
  1484. ring->dispatch_execbuffer = i965_dispatch_execbuffer;
  1485. }
  1486. ring->init = init_ring_common;
  1487. return intel_init_ring_buffer(dev, ring);
  1488. }
  1489. int intel_init_blt_ring_buffer(struct drm_device *dev)
  1490. {
  1491. drm_i915_private_t *dev_priv = dev->dev_private;
  1492. struct intel_ring_buffer *ring = &dev_priv->ring[BCS];
  1493. ring->name = "blitter ring";
  1494. ring->id = BCS;
  1495. ring->mmio_base = BLT_RING_BASE;
  1496. ring->write_tail = ring_write_tail;
  1497. ring->flush = blt_ring_flush;
  1498. ring->add_request = gen6_add_request;
  1499. ring->get_seqno = gen6_ring_get_seqno;
  1500. ring->irq_enable_mask = GEN6_BLITTER_USER_INTERRUPT;
  1501. ring->irq_get = gen6_ring_get_irq;
  1502. ring->irq_put = gen6_ring_put_irq;
  1503. ring->dispatch_execbuffer = gen6_ring_dispatch_execbuffer;
  1504. ring->sync_to = gen6_ring_sync;
  1505. ring->semaphore_register[0] = MI_SEMAPHORE_SYNC_BR;
  1506. ring->semaphore_register[1] = MI_SEMAPHORE_SYNC_BV;
  1507. ring->semaphore_register[2] = MI_SEMAPHORE_SYNC_INVALID;
  1508. ring->signal_mbox[0] = GEN6_RBSYNC;
  1509. ring->signal_mbox[1] = GEN6_VBSYNC;
  1510. ring->init = init_ring_common;
  1511. return intel_init_ring_buffer(dev, ring);
  1512. }
  1513. int
  1514. intel_ring_flush_all_caches(struct intel_ring_buffer *ring)
  1515. {
  1516. int ret;
  1517. if (!ring->gpu_caches_dirty)
  1518. return 0;
  1519. ret = ring->flush(ring, 0, I915_GEM_GPU_DOMAINS);
  1520. if (ret)
  1521. return ret;
  1522. trace_i915_gem_ring_flush(ring, 0, I915_GEM_GPU_DOMAINS);
  1523. ring->gpu_caches_dirty = false;
  1524. return 0;
  1525. }
  1526. int
  1527. intel_ring_invalidate_all_caches(struct intel_ring_buffer *ring)
  1528. {
  1529. uint32_t flush_domains;
  1530. int ret;
  1531. flush_domains = 0;
  1532. if (ring->gpu_caches_dirty)
  1533. flush_domains = I915_GEM_GPU_DOMAINS;
  1534. ret = ring->flush(ring, I915_GEM_GPU_DOMAINS, flush_domains);
  1535. if (ret)
  1536. return ret;
  1537. trace_i915_gem_ring_flush(ring, I915_GEM_GPU_DOMAINS, flush_domains);
  1538. ring->gpu_caches_dirty = false;
  1539. return 0;
  1540. }