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1 /* i915_drv.h -- Private header for the I915 driver -*- linux-c -*-
2 */
3 /*
4 *
5 * Copyright 2003 Tungsten Graphics, Inc., Cedar Park, Texas.
6 * All Rights Reserved.
7 *
8 * Permission is hereby granted, free of charge, to any person obtaining a
9 * copy of this software and associated documentation files (the
10 * "Software"), to deal in the Software without restriction, including
11 * without limitation the rights to use, copy, modify, merge, publish,
12 * distribute, sub license, and/or sell copies of the Software, and to
13 * permit persons to whom the Software is furnished to do so, subject to
14 * the following conditions:
15 *
16 * The above copyright notice and this permission notice (including the
17 * next paragraph) shall be included in all copies or substantial portions
18 * of the Software.
19 *
20 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS
21 * OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF
22 * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND NON-INFRINGEMENT.
23 * IN NO EVENT SHALL TUNGSTEN GRAPHICS AND/OR ITS SUPPLIERS BE LIABLE FOR
24 * ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN ACTION OF CONTRACT,
25 * TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN CONNECTION WITH THE
26 * SOFTWARE OR THE USE OR OTHER DEALINGS IN THE SOFTWARE.
27 *
28 */
29
30 #ifndef _I915_DRV_H_
31 #define _I915_DRV_H_
32
33 #include <uapi/drm/i915_drm.h>
34 #include <uapi/drm/drm_fourcc.h>
35
36 #include <drm/drmP.h>
37 #include "i915_params.h"
38 #include "i915_reg.h"
39 #include "intel_bios.h"
40 #include "intel_ringbuffer.h"
41 #include "intel_lrc.h"
42 #include "i915_gem_gtt.h"
43 #include "i915_gem_render_state.h"
44 #include <linux/io-mapping.h>
45 #include <linux/i2c.h>
46 #include <linux/i2c-algo-bit.h>
47 #include <drm/intel-gtt.h>
48 #include <drm/drm_legacy.h> /* for struct drm_dma_handle */
49 #include <drm/drm_gem.h>
50 #include <linux/backlight.h>
51 #include <linux/hashtable.h>
52 #include <linux/intel-iommu.h>
53 #include <linux/kref.h>
54 #include <linux/pm_qos.h>
55 #include "intel_guc.h"
56 #include "intel_dpll_mgr.h"
57
58 /* General customization:
59 */
60
61 #define DRIVER_NAME "i915"
62 #define DRIVER_DESC "Intel Graphics"
63 #define DRIVER_DATE "20160330"
64
65 #undef WARN_ON
66 /* Many gcc seem to no see through this and fall over :( */
67 #if 0
68 #define WARN_ON(x) ({ \
69 bool __i915_warn_cond = (x); \
70 if (__builtin_constant_p(__i915_warn_cond)) \
71 BUILD_BUG_ON(__i915_warn_cond); \
72 WARN(__i915_warn_cond, "WARN_ON(" #x ")"); })
73 #else
74 #define WARN_ON(x) WARN((x), "%s", "WARN_ON(" __stringify(x) ")")
75 #endif
76
77 #undef WARN_ON_ONCE
78 #define WARN_ON_ONCE(x) WARN_ONCE((x), "%s", "WARN_ON_ONCE(" __stringify(x) ")")
79
80 #define MISSING_CASE(x) WARN(1, "Missing switch case (%lu) in %s\n", \
81 (long) (x), __func__);
82
83 /* Use I915_STATE_WARN(x) and I915_STATE_WARN_ON() (rather than WARN() and
84 * WARN_ON()) for hw state sanity checks to check for unexpected conditions
85 * which may not necessarily be a user visible problem. This will either
86 * WARN() or DRM_ERROR() depending on the verbose_checks moduleparam, to
87 * enable distros and users to tailor their preferred amount of i915 abrt
88 * spam.
89 */
90 #define I915_STATE_WARN(condition, format...) ({ \
91 int __ret_warn_on = !!(condition); \
92 if (unlikely(__ret_warn_on)) \
93 if (!WARN(i915.verbose_state_checks, format)) \
94 DRM_ERROR(format); \
95 unlikely(__ret_warn_on); \
96 })
97
98 #define I915_STATE_WARN_ON(x) \
99 I915_STATE_WARN((x), "%s", "WARN_ON(" __stringify(x) ")")
100
101 bool __i915_inject_load_failure(const char *func, int line);
102 #define i915_inject_load_failure() \
103 __i915_inject_load_failure(__func__, __LINE__)
104
105 static inline const char *yesno(bool v)
106 {
107 return v ? "yes" : "no";
108 }
109
110 static inline const char *onoff(bool v)
111 {
112 return v ? "on" : "off";
113 }
114
115 enum pipe {
116 INVALID_PIPE = -1,
117 PIPE_A = 0,
118 PIPE_B,
119 PIPE_C,
120 _PIPE_EDP,
121 I915_MAX_PIPES = _PIPE_EDP
122 };
123 #define pipe_name(p) ((p) + 'A')
124
125 enum transcoder {
126 TRANSCODER_A = 0,
127 TRANSCODER_B,
128 TRANSCODER_C,
129 TRANSCODER_EDP,
130 TRANSCODER_DSI_A,
131 TRANSCODER_DSI_C,
132 I915_MAX_TRANSCODERS
133 };
134
135 static inline const char *transcoder_name(enum transcoder transcoder)
136 {
137 switch (transcoder) {
138 case TRANSCODER_A:
139 return "A";
140 case TRANSCODER_B:
141 return "B";
142 case TRANSCODER_C:
143 return "C";
144 case TRANSCODER_EDP:
145 return "EDP";
146 case TRANSCODER_DSI_A:
147 return "DSI A";
148 case TRANSCODER_DSI_C:
149 return "DSI C";
150 default:
151 return "<invalid>";
152 }
153 }
154
155 static inline bool transcoder_is_dsi(enum transcoder transcoder)
156 {
157 return transcoder == TRANSCODER_DSI_A || transcoder == TRANSCODER_DSI_C;
158 }
159
160 /*
161 * I915_MAX_PLANES in the enum below is the maximum (across all platforms)
162 * number of planes per CRTC. Not all platforms really have this many planes,
163 * which means some arrays of size I915_MAX_PLANES may have unused entries
164 * between the topmost sprite plane and the cursor plane.
165 */
166 enum plane {
167 PLANE_A = 0,
168 PLANE_B,
169 PLANE_C,
170 PLANE_CURSOR,
171 I915_MAX_PLANES,
172 };
173 #define plane_name(p) ((p) + 'A')
174
175 #define sprite_name(p, s) ((p) * INTEL_INFO(dev)->num_sprites[(p)] + (s) + 'A')
176
177 enum port {
178 PORT_A = 0,
179 PORT_B,
180 PORT_C,
181 PORT_D,
182 PORT_E,
183 I915_MAX_PORTS
184 };
185 #define port_name(p) ((p) + 'A')
186
187 #define I915_NUM_PHYS_VLV 2
188
189 enum dpio_channel {
190 DPIO_CH0,
191 DPIO_CH1
192 };
193
194 enum dpio_phy {
195 DPIO_PHY0,
196 DPIO_PHY1
197 };
198
199 enum intel_display_power_domain {
200 POWER_DOMAIN_PIPE_A,
201 POWER_DOMAIN_PIPE_B,
202 POWER_DOMAIN_PIPE_C,
203 POWER_DOMAIN_PIPE_A_PANEL_FITTER,
204 POWER_DOMAIN_PIPE_B_PANEL_FITTER,
205 POWER_DOMAIN_PIPE_C_PANEL_FITTER,
206 POWER_DOMAIN_TRANSCODER_A,
207 POWER_DOMAIN_TRANSCODER_B,
208 POWER_DOMAIN_TRANSCODER_C,
209 POWER_DOMAIN_TRANSCODER_EDP,
210 POWER_DOMAIN_TRANSCODER_DSI_A,
211 POWER_DOMAIN_TRANSCODER_DSI_C,
212 POWER_DOMAIN_PORT_DDI_A_LANES,
213 POWER_DOMAIN_PORT_DDI_B_LANES,
214 POWER_DOMAIN_PORT_DDI_C_LANES,
215 POWER_DOMAIN_PORT_DDI_D_LANES,
216 POWER_DOMAIN_PORT_DDI_E_LANES,
217 POWER_DOMAIN_PORT_DSI,
218 POWER_DOMAIN_PORT_CRT,
219 POWER_DOMAIN_PORT_OTHER,
220 POWER_DOMAIN_VGA,
221 POWER_DOMAIN_AUDIO,
222 POWER_DOMAIN_PLLS,
223 POWER_DOMAIN_AUX_A,
224 POWER_DOMAIN_AUX_B,
225 POWER_DOMAIN_AUX_C,
226 POWER_DOMAIN_AUX_D,
227 POWER_DOMAIN_GMBUS,
228 POWER_DOMAIN_MODESET,
229 POWER_DOMAIN_INIT,
230
231 POWER_DOMAIN_NUM,
232 };
233
234 #define POWER_DOMAIN_PIPE(pipe) ((pipe) + POWER_DOMAIN_PIPE_A)
235 #define POWER_DOMAIN_PIPE_PANEL_FITTER(pipe) \
236 ((pipe) + POWER_DOMAIN_PIPE_A_PANEL_FITTER)
237 #define POWER_DOMAIN_TRANSCODER(tran) \
238 ((tran) == TRANSCODER_EDP ? POWER_DOMAIN_TRANSCODER_EDP : \
239 (tran) + POWER_DOMAIN_TRANSCODER_A)
240
241 enum hpd_pin {
242 HPD_NONE = 0,
243 HPD_TV = HPD_NONE, /* TV is known to be unreliable */
244 HPD_CRT,
245 HPD_SDVO_B,
246 HPD_SDVO_C,
247 HPD_PORT_A,
248 HPD_PORT_B,
249 HPD_PORT_C,
250 HPD_PORT_D,
251 HPD_PORT_E,
252 HPD_NUM_PINS
253 };
254
255 #define for_each_hpd_pin(__pin) \
256 for ((__pin) = (HPD_NONE + 1); (__pin) < HPD_NUM_PINS; (__pin)++)
257
258 struct i915_hotplug {
259 struct work_struct hotplug_work;
260
261 struct {
262 unsigned long last_jiffies;
263 int count;
264 enum {
265 HPD_ENABLED = 0,
266 HPD_DISABLED = 1,
267 HPD_MARK_DISABLED = 2
268 } state;
269 } stats[HPD_NUM_PINS];
270 u32 event_bits;
271 struct delayed_work reenable_work;
272
273 struct intel_digital_port *irq_port[I915_MAX_PORTS];
274 u32 long_port_mask;
275 u32 short_port_mask;
276 struct work_struct dig_port_work;
277
278 /*
279 * if we get a HPD irq from DP and a HPD irq from non-DP
280 * the non-DP HPD could block the workqueue on a mode config
281 * mutex getting, that userspace may have taken. However
282 * userspace is waiting on the DP workqueue to run which is
283 * blocked behind the non-DP one.
284 */
285 struct workqueue_struct *dp_wq;
286 };
287
288 #define I915_GEM_GPU_DOMAINS \
289 (I915_GEM_DOMAIN_RENDER | \
290 I915_GEM_DOMAIN_SAMPLER | \
291 I915_GEM_DOMAIN_COMMAND | \
292 I915_GEM_DOMAIN_INSTRUCTION | \
293 I915_GEM_DOMAIN_VERTEX)
294
295 #define for_each_pipe(__dev_priv, __p) \
296 for ((__p) = 0; (__p) < INTEL_INFO(__dev_priv)->num_pipes; (__p)++)
297 #define for_each_pipe_masked(__dev_priv, __p, __mask) \
298 for ((__p) = 0; (__p) < INTEL_INFO(__dev_priv)->num_pipes; (__p)++) \
299 for_each_if ((__mask) & (1 << (__p)))
300 #define for_each_plane(__dev_priv, __pipe, __p) \
301 for ((__p) = 0; \
302 (__p) < INTEL_INFO(__dev_priv)->num_sprites[(__pipe)] + 1; \
303 (__p)++)
304 #define for_each_sprite(__dev_priv, __p, __s) \
305 for ((__s) = 0; \
306 (__s) < INTEL_INFO(__dev_priv)->num_sprites[(__p)]; \
307 (__s)++)
308
309 #define for_each_port_masked(__port, __ports_mask) \
310 for ((__port) = PORT_A; (__port) < I915_MAX_PORTS; (__port)++) \
311 for_each_if ((__ports_mask) & (1 << (__port)))
312
313 #define for_each_crtc(dev, crtc) \
314 list_for_each_entry(crtc, &dev->mode_config.crtc_list, head)
315
316 #define for_each_intel_plane(dev, intel_plane) \
317 list_for_each_entry(intel_plane, \
318 &dev->mode_config.plane_list, \
319 base.head)
320
321 #define for_each_intel_plane_on_crtc(dev, intel_crtc, intel_plane) \
322 list_for_each_entry(intel_plane, \
323 &(dev)->mode_config.plane_list, \
324 base.head) \
325 for_each_if ((intel_plane)->pipe == (intel_crtc)->pipe)
326
327 #define for_each_intel_crtc(dev, intel_crtc) \
328 list_for_each_entry(intel_crtc, &dev->mode_config.crtc_list, base.head)
329
330 #define for_each_intel_encoder(dev, intel_encoder) \
331 list_for_each_entry(intel_encoder, \
332 &(dev)->mode_config.encoder_list, \
333 base.head)
334
335 #define for_each_intel_connector(dev, intel_connector) \
336 list_for_each_entry(intel_connector, \
337 &dev->mode_config.connector_list, \
338 base.head)
339
340 #define for_each_encoder_on_crtc(dev, __crtc, intel_encoder) \
341 list_for_each_entry((intel_encoder), &(dev)->mode_config.encoder_list, base.head) \
342 for_each_if ((intel_encoder)->base.crtc == (__crtc))
343
344 #define for_each_connector_on_encoder(dev, __encoder, intel_connector) \
345 list_for_each_entry((intel_connector), &(dev)->mode_config.connector_list, base.head) \
346 for_each_if ((intel_connector)->base.encoder == (__encoder))
347
348 #define for_each_power_domain(domain, mask) \
349 for ((domain) = 0; (domain) < POWER_DOMAIN_NUM; (domain)++) \
350 for_each_if ((1 << (domain)) & (mask))
351
352 struct drm_i915_private;
353 struct i915_mm_struct;
354 struct i915_mmu_object;
355
356 struct drm_i915_file_private {
357 struct drm_i915_private *dev_priv;
358 struct drm_file *file;
359
360 struct {
361 spinlock_t lock;
362 struct list_head request_list;
363 /* 20ms is a fairly arbitrary limit (greater than the average frame time)
364 * chosen to prevent the CPU getting more than a frame ahead of the GPU
365 * (when using lax throttling for the frontbuffer). We also use it to
366 * offer free GPU waitboosts for severely congested workloads.
367 */
368 #define DRM_I915_THROTTLE_JIFFIES msecs_to_jiffies(20)
369 } mm;
370 struct idr context_idr;
371
372 struct intel_rps_client {
373 struct list_head link;
374 unsigned boosts;
375 } rps;
376
377 unsigned int bsd_ring;
378 };
379
380 /* Used by dp and fdi links */
381 struct intel_link_m_n {
382 uint32_t tu;
383 uint32_t gmch_m;
384 uint32_t gmch_n;
385 uint32_t link_m;
386 uint32_t link_n;
387 };
388
389 void intel_link_compute_m_n(int bpp, int nlanes,
390 int pixel_clock, int link_clock,
391 struct intel_link_m_n *m_n);
392
393 /* Interface history:
394 *
395 * 1.1: Original.
396 * 1.2: Add Power Management
397 * 1.3: Add vblank support
398 * 1.4: Fix cmdbuffer path, add heap destroy
399 * 1.5: Add vblank pipe configuration
400 * 1.6: - New ioctl for scheduling buffer swaps on vertical blank
401 * - Support vertical blank on secondary display pipe
402 */
403 #define DRIVER_MAJOR 1
404 #define DRIVER_MINOR 6
405 #define DRIVER_PATCHLEVEL 0
406
407 #define WATCH_LISTS 0
408
409 struct opregion_header;
410 struct opregion_acpi;
411 struct opregion_swsci;
412 struct opregion_asle;
413
414 struct intel_opregion {
415 struct opregion_header *header;
416 struct opregion_acpi *acpi;
417 struct opregion_swsci *swsci;
418 u32 swsci_gbda_sub_functions;
419 u32 swsci_sbcb_sub_functions;
420 struct opregion_asle *asle;
421 void *rvda;
422 const void *vbt;
423 u32 vbt_size;
424 u32 *lid_state;
425 struct work_struct asle_work;
426 };
427 #define OPREGION_SIZE (8*1024)
428
429 struct intel_overlay;
430 struct intel_overlay_error_state;
431
432 #define I915_FENCE_REG_NONE -1
433 #define I915_MAX_NUM_FENCES 32
434 /* 32 fences + sign bit for FENCE_REG_NONE */
435 #define I915_MAX_NUM_FENCE_BITS 6
436
437 struct drm_i915_fence_reg {
438 struct list_head lru_list;
439 struct drm_i915_gem_object *obj;
440 int pin_count;
441 };
442
443 struct sdvo_device_mapping {
444 u8 initialized;
445 u8 dvo_port;
446 u8 slave_addr;
447 u8 dvo_wiring;
448 u8 i2c_pin;
449 u8 ddc_pin;
450 };
451
452 struct intel_display_error_state;
453
454 struct drm_i915_error_state {
455 struct kref ref;
456 struct timeval time;
457
458 char error_msg[128];
459 int iommu;
460 u32 reset_count;
461 u32 suspend_count;
462
463 /* Generic register state */
464 u32 eir;
465 u32 pgtbl_er;
466 u32 ier;
467 u32 gtier[4];
468 u32 ccid;
469 u32 derrmr;
470 u32 forcewake;
471 u32 error; /* gen6+ */
472 u32 err_int; /* gen7 */
473 u32 fault_data0; /* gen8, gen9 */
474 u32 fault_data1; /* gen8, gen9 */
475 u32 done_reg;
476 u32 gac_eco;
477 u32 gam_ecochk;
478 u32 gab_ctl;
479 u32 gfx_mode;
480 u32 extra_instdone[I915_NUM_INSTDONE_REG];
481 u64 fence[I915_MAX_NUM_FENCES];
482 struct intel_overlay_error_state *overlay;
483 struct intel_display_error_state *display;
484 struct drm_i915_error_object *semaphore_obj;
485
486 struct drm_i915_error_ring {
487 bool valid;
488 /* Software tracked state */
489 bool waiting;
490 int hangcheck_score;
491 enum intel_ring_hangcheck_action hangcheck_action;
492 int num_requests;
493
494 /* our own tracking of ring head and tail */
495 u32 cpu_ring_head;
496 u32 cpu_ring_tail;
497
498 u32 semaphore_seqno[I915_NUM_ENGINES - 1];
499
500 /* Register state */
501 u32 start;
502 u32 tail;
503 u32 head;
504 u32 ctl;
505 u32 hws;
506 u32 ipeir;
507 u32 ipehr;
508 u32 instdone;
509 u32 bbstate;
510 u32 instpm;
511 u32 instps;
512 u32 seqno;
513 u64 bbaddr;
514 u64 acthd;
515 u32 fault_reg;
516 u64 faddr;
517 u32 rc_psmi; /* sleep state */
518 u32 semaphore_mboxes[I915_NUM_ENGINES - 1];
519
520 struct drm_i915_error_object {
521 int page_count;
522 u64 gtt_offset;
523 u32 *pages[0];
524 } *ringbuffer, *batchbuffer, *wa_batchbuffer, *ctx, *hws_page;
525
526 struct drm_i915_error_object *wa_ctx;
527
528 struct drm_i915_error_request {
529 long jiffies;
530 u32 seqno;
531 u32 tail;
532 } *requests;
533
534 struct {
535 u32 gfx_mode;
536 union {
537 u64 pdp[4];
538 u32 pp_dir_base;
539 };
540 } vm_info;
541
542 pid_t pid;
543 char comm[TASK_COMM_LEN];
544 } ring[I915_NUM_ENGINES];
545
546 struct drm_i915_error_buffer {
547 u32 size;
548 u32 name;
549 u32 rseqno[I915_NUM_ENGINES], wseqno;
550 u64 gtt_offset;
551 u32 read_domains;
552 u32 write_domain;
553 s32 fence_reg:I915_MAX_NUM_FENCE_BITS;
554 s32 pinned:2;
555 u32 tiling:2;
556 u32 dirty:1;
557 u32 purgeable:1;
558 u32 userptr:1;
559 s32 ring:4;
560 u32 cache_level:3;
561 } **active_bo, **pinned_bo;
562
563 u32 *active_bo_count, *pinned_bo_count;
564 u32 vm_count;
565 };
566
567 struct intel_connector;
568 struct intel_encoder;
569 struct intel_crtc_state;
570 struct intel_initial_plane_config;
571 struct intel_crtc;
572 struct intel_limit;
573 struct dpll;
574
575 struct drm_i915_display_funcs {
576 int (*get_display_clock_speed)(struct drm_device *dev);
577 int (*get_fifo_size)(struct drm_device *dev, int plane);
578 int (*compute_pipe_wm)(struct intel_crtc_state *cstate);
579 int (*compute_intermediate_wm)(struct drm_device *dev,
580 struct intel_crtc *intel_crtc,
581 struct intel_crtc_state *newstate);
582 void (*initial_watermarks)(struct intel_crtc_state *cstate);
583 void (*optimize_watermarks)(struct intel_crtc_state *cstate);
584 void (*update_wm)(struct drm_crtc *crtc);
585 int (*modeset_calc_cdclk)(struct drm_atomic_state *state);
586 void (*modeset_commit_cdclk)(struct drm_atomic_state *state);
587 /* Returns the active state of the crtc, and if the crtc is active,
588 * fills out the pipe-config with the hw state. */
589 bool (*get_pipe_config)(struct intel_crtc *,
590 struct intel_crtc_state *);
591 void (*get_initial_plane_config)(struct intel_crtc *,
592 struct intel_initial_plane_config *);
593 int (*crtc_compute_clock)(struct intel_crtc *crtc,
594 struct intel_crtc_state *crtc_state);
595 void (*crtc_enable)(struct drm_crtc *crtc);
596 void (*crtc_disable)(struct drm_crtc *crtc);
597 void (*audio_codec_enable)(struct drm_connector *connector,
598 struct intel_encoder *encoder,
599 const struct drm_display_mode *adjusted_mode);
600 void (*audio_codec_disable)(struct intel_encoder *encoder);
601 void (*fdi_link_train)(struct drm_crtc *crtc);
602 void (*init_clock_gating)(struct drm_device *dev);
603 int (*queue_flip)(struct drm_device *dev, struct drm_crtc *crtc,
604 struct drm_framebuffer *fb,
605 struct drm_i915_gem_object *obj,
606 struct drm_i915_gem_request *req,
607 uint32_t flags);
608 void (*hpd_irq_setup)(struct drm_device *dev);
609 /* clock updates for mode set */
610 /* cursor updates */
611 /* render clock increase/decrease */
612 /* display clock increase/decrease */
613 /* pll clock increase/decrease */
614
615 void (*load_csc_matrix)(struct drm_crtc_state *crtc_state);
616 void (*load_luts)(struct drm_crtc_state *crtc_state);
617 };
618
619 enum forcewake_domain_id {
620 FW_DOMAIN_ID_RENDER = 0,
621 FW_DOMAIN_ID_BLITTER,
622 FW_DOMAIN_ID_MEDIA,
623
624 FW_DOMAIN_ID_COUNT
625 };
626
627 enum forcewake_domains {
628 FORCEWAKE_RENDER = (1 << FW_DOMAIN_ID_RENDER),
629 FORCEWAKE_BLITTER = (1 << FW_DOMAIN_ID_BLITTER),
630 FORCEWAKE_MEDIA = (1 << FW_DOMAIN_ID_MEDIA),
631 FORCEWAKE_ALL = (FORCEWAKE_RENDER |
632 FORCEWAKE_BLITTER |
633 FORCEWAKE_MEDIA)
634 };
635
636 struct intel_uncore_funcs {
637 void (*force_wake_get)(struct drm_i915_private *dev_priv,
638 enum forcewake_domains domains);
639 void (*force_wake_put)(struct drm_i915_private *dev_priv,
640 enum forcewake_domains domains);
641
642 uint8_t (*mmio_readb)(struct drm_i915_private *dev_priv, i915_reg_t r, bool trace);
643 uint16_t (*mmio_readw)(struct drm_i915_private *dev_priv, i915_reg_t r, bool trace);
644 uint32_t (*mmio_readl)(struct drm_i915_private *dev_priv, i915_reg_t r, bool trace);
645 uint64_t (*mmio_readq)(struct drm_i915_private *dev_priv, i915_reg_t r, bool trace);
646
647 void (*mmio_writeb)(struct drm_i915_private *dev_priv, i915_reg_t r,
648 uint8_t val, bool trace);
649 void (*mmio_writew)(struct drm_i915_private *dev_priv, i915_reg_t r,
650 uint16_t val, bool trace);
651 void (*mmio_writel)(struct drm_i915_private *dev_priv, i915_reg_t r,
652 uint32_t val, bool trace);
653 void (*mmio_writeq)(struct drm_i915_private *dev_priv, i915_reg_t r,
654 uint64_t val, bool trace);
655 };
656
657 struct intel_uncore {
658 spinlock_t lock; /** lock is also taken in irq contexts. */
659
660 struct intel_uncore_funcs funcs;
661
662 unsigned fifo_count;
663 enum forcewake_domains fw_domains;
664
665 struct intel_uncore_forcewake_domain {
666 struct drm_i915_private *i915;
667 enum forcewake_domain_id id;
668 unsigned wake_count;
669 struct timer_list timer;
670 i915_reg_t reg_set;
671 u32 val_set;
672 u32 val_clear;
673 i915_reg_t reg_ack;
674 i915_reg_t reg_post;
675 u32 val_reset;
676 } fw_domain[FW_DOMAIN_ID_COUNT];
677
678 int unclaimed_mmio_check;
679 };
680
681 /* Iterate over initialised fw domains */
682 #define for_each_fw_domain_mask(domain__, mask__, dev_priv__, i__) \
683 for ((i__) = 0, (domain__) = &(dev_priv__)->uncore.fw_domain[0]; \
684 (i__) < FW_DOMAIN_ID_COUNT; \
685 (i__)++, (domain__) = &(dev_priv__)->uncore.fw_domain[i__]) \
686 for_each_if (((mask__) & (dev_priv__)->uncore.fw_domains) & (1 << (i__)))
687
688 #define for_each_fw_domain(domain__, dev_priv__, i__) \
689 for_each_fw_domain_mask(domain__, FORCEWAKE_ALL, dev_priv__, i__)
690
691 #define CSR_VERSION(major, minor) ((major) << 16 | (minor))
692 #define CSR_VERSION_MAJOR(version) ((version) >> 16)
693 #define CSR_VERSION_MINOR(version) ((version) & 0xffff)
694
695 struct intel_csr {
696 struct work_struct work;
697 const char *fw_path;
698 uint32_t *dmc_payload;
699 uint32_t dmc_fw_size;
700 uint32_t version;
701 uint32_t mmio_count;
702 i915_reg_t mmioaddr[8];
703 uint32_t mmiodata[8];
704 uint32_t dc_state;
705 uint32_t allowed_dc_mask;
706 };
707
708 #define DEV_INFO_FOR_EACH_FLAG(func, sep) \
709 func(is_mobile) sep \
710 func(is_i85x) sep \
711 func(is_i915g) sep \
712 func(is_i945gm) sep \
713 func(is_g33) sep \
714 func(need_gfx_hws) sep \
715 func(is_g4x) sep \
716 func(is_pineview) sep \
717 func(is_broadwater) sep \
718 func(is_crestline) sep \
719 func(is_ivybridge) sep \
720 func(is_valleyview) sep \
721 func(is_cherryview) sep \
722 func(is_haswell) sep \
723 func(is_skylake) sep \
724 func(is_broxton) sep \
725 func(is_kabylake) sep \
726 func(is_preliminary) sep \
727 func(has_fbc) sep \
728 func(has_pipe_cxsr) sep \
729 func(has_hotplug) sep \
730 func(cursor_needs_physical) sep \
731 func(has_overlay) sep \
732 func(overlay_needs_physical) sep \
733 func(supports_tv) sep \
734 func(has_llc) sep \
735 func(has_snoop) sep \
736 func(has_ddi) sep \
737 func(has_fpga_dbg)
738
739 #define DEFINE_FLAG(name) u8 name:1
740 #define SEP_SEMICOLON ;
741
742 struct intel_device_info {
743 u32 display_mmio_offset;
744 u16 device_id;
745 u8 num_pipes:3;
746 u8 num_sprites[I915_MAX_PIPES];
747 u8 gen;
748 u8 ring_mask; /* Rings supported by the HW */
749 DEV_INFO_FOR_EACH_FLAG(DEFINE_FLAG, SEP_SEMICOLON);
750 /* Register offsets for the various display pipes and transcoders */
751 int pipe_offsets[I915_MAX_TRANSCODERS];
752 int trans_offsets[I915_MAX_TRANSCODERS];
753 int palette_offsets[I915_MAX_PIPES];
754 int cursor_offsets[I915_MAX_PIPES];
755
756 /* Slice/subslice/EU info */
757 u8 slice_total;
758 u8 subslice_total;
759 u8 subslice_per_slice;
760 u8 eu_total;
761 u8 eu_per_subslice;
762 /* For each slice, which subslice(s) has(have) 7 EUs (bitfield)? */
763 u8 subslice_7eu[3];
764 u8 has_slice_pg:1;
765 u8 has_subslice_pg:1;
766 u8 has_eu_pg:1;
767
768 struct color_luts {
769 u16 degamma_lut_size;
770 u16 gamma_lut_size;
771 } color;
772 };
773
774 #undef DEFINE_FLAG
775 #undef SEP_SEMICOLON
776
777 enum i915_cache_level {
778 I915_CACHE_NONE = 0,
779 I915_CACHE_LLC, /* also used for snoopable memory on non-LLC */
780 I915_CACHE_L3_LLC, /* gen7+, L3 sits between the domain specifc
781 caches, eg sampler/render caches, and the
782 large Last-Level-Cache. LLC is coherent with
783 the CPU, but L3 is only visible to the GPU. */
784 I915_CACHE_WT, /* hsw:gt3e WriteThrough for scanouts */
785 };
786
787 struct i915_ctx_hang_stats {
788 /* This context had batch pending when hang was declared */
789 unsigned batch_pending;
790
791 /* This context had batch active when hang was declared */
792 unsigned batch_active;
793
794 /* Time when this context was last blamed for a GPU reset */
795 unsigned long guilty_ts;
796
797 /* If the contexts causes a second GPU hang within this time,
798 * it is permanently banned from submitting any more work.
799 */
800 unsigned long ban_period_seconds;
801
802 /* This context is banned to submit more work */
803 bool banned;
804 };
805
806 /* This must match up with the value previously used for execbuf2.rsvd1. */
807 #define DEFAULT_CONTEXT_HANDLE 0
808
809 #define CONTEXT_NO_ZEROMAP (1<<0)
810 /**
811 * struct intel_context - as the name implies, represents a context.
812 * @ref: reference count.
813 * @user_handle: userspace tracking identity for this context.
814 * @remap_slice: l3 row remapping information.
815 * @flags: context specific flags:
816 * CONTEXT_NO_ZEROMAP: do not allow mapping things to page 0.
817 * @file_priv: filp associated with this context (NULL for global default
818 * context).
819 * @hang_stats: information about the role of this context in possible GPU
820 * hangs.
821 * @ppgtt: virtual memory space used by this context.
822 * @legacy_hw_ctx: render context backing object and whether it is correctly
823 * initialized (legacy ring submission mechanism only).
824 * @link: link in the global list of contexts.
825 *
826 * Contexts are memory images used by the hardware to store copies of their
827 * internal state.
828 */
829 struct intel_context {
830 struct kref ref;
831 int user_handle;
832 uint8_t remap_slice;
833 struct drm_i915_private *i915;
834 int flags;
835 struct drm_i915_file_private *file_priv;
836 struct i915_ctx_hang_stats hang_stats;
837 struct i915_hw_ppgtt *ppgtt;
838
839 /* Legacy ring buffer submission */
840 struct {
841 struct drm_i915_gem_object *rcs_state;
842 bool initialized;
843 } legacy_hw_ctx;
844
845 /* Execlists */
846 struct {
847 struct drm_i915_gem_object *state;
848 struct intel_ringbuffer *ringbuf;
849 int pin_count;
850 struct i915_vma *lrc_vma;
851 u64 lrc_desc;
852 uint32_t *lrc_reg_state;
853 } engine[I915_NUM_ENGINES];
854
855 struct list_head link;
856 };
857
858 enum fb_op_origin {
859 ORIGIN_GTT,
860 ORIGIN_CPU,
861 ORIGIN_CS,
862 ORIGIN_FLIP,
863 ORIGIN_DIRTYFB,
864 };
865
866 struct intel_fbc {
867 /* This is always the inner lock when overlapping with struct_mutex and
868 * it's the outer lock when overlapping with stolen_lock. */
869 struct mutex lock;
870 unsigned threshold;
871 unsigned int possible_framebuffer_bits;
872 unsigned int busy_bits;
873 unsigned int visible_pipes_mask;
874 struct intel_crtc *crtc;
875
876 struct drm_mm_node compressed_fb;
877 struct drm_mm_node *compressed_llb;
878
879 bool false_color;
880
881 bool enabled;
882 bool active;
883
884 struct intel_fbc_state_cache {
885 struct {
886 unsigned int mode_flags;
887 uint32_t hsw_bdw_pixel_rate;
888 } crtc;
889
890 struct {
891 unsigned int rotation;
892 int src_w;
893 int src_h;
894 bool visible;
895 } plane;
896
897 struct {
898 u64 ilk_ggtt_offset;
899 uint32_t pixel_format;
900 unsigned int stride;
901 int fence_reg;
902 unsigned int tiling_mode;
903 } fb;
904 } state_cache;
905
906 struct intel_fbc_reg_params {
907 struct {
908 enum pipe pipe;
909 enum plane plane;
910 unsigned int fence_y_offset;
911 } crtc;
912
913 struct {
914 u64 ggtt_offset;
915 uint32_t pixel_format;
916 unsigned int stride;
917 int fence_reg;
918 } fb;
919
920 int cfb_size;
921 } params;
922
923 struct intel_fbc_work {
924 bool scheduled;
925 u32 scheduled_vblank;
926 struct work_struct work;
927 } work;
928
929 const char *no_fbc_reason;
930 };
931
932 /**
933 * HIGH_RR is the highest eDP panel refresh rate read from EDID
934 * LOW_RR is the lowest eDP panel refresh rate found from EDID
935 * parsing for same resolution.
936 */
937 enum drrs_refresh_rate_type {
938 DRRS_HIGH_RR,
939 DRRS_LOW_RR,
940 DRRS_MAX_RR, /* RR count */
941 };
942
943 enum drrs_support_type {
944 DRRS_NOT_SUPPORTED = 0,
945 STATIC_DRRS_SUPPORT = 1,
946 SEAMLESS_DRRS_SUPPORT = 2
947 };
948
949 struct intel_dp;
950 struct i915_drrs {
951 struct mutex mutex;
952 struct delayed_work work;
953 struct intel_dp *dp;
954 unsigned busy_frontbuffer_bits;
955 enum drrs_refresh_rate_type refresh_rate_type;
956 enum drrs_support_type type;
957 };
958
959 struct i915_psr {
960 struct mutex lock;
961 bool sink_support;
962 bool source_ok;
963 struct intel_dp *enabled;
964 bool active;
965 struct delayed_work work;
966 unsigned busy_frontbuffer_bits;
967 bool psr2_support;
968 bool aux_frame_sync;
969 bool link_standby;
970 };
971
972 enum intel_pch {
973 PCH_NONE = 0, /* No PCH present */
974 PCH_IBX, /* Ibexpeak PCH */
975 PCH_CPT, /* Cougarpoint PCH */
976 PCH_LPT, /* Lynxpoint PCH */
977 PCH_SPT, /* Sunrisepoint PCH */
978 PCH_NOP,
979 };
980
981 enum intel_sbi_destination {
982 SBI_ICLK,
983 SBI_MPHY,
984 };
985
986 #define QUIRK_PIPEA_FORCE (1<<0)
987 #define QUIRK_LVDS_SSC_DISABLE (1<<1)
988 #define QUIRK_INVERT_BRIGHTNESS (1<<2)
989 #define QUIRK_BACKLIGHT_PRESENT (1<<3)
990 #define QUIRK_PIPEB_FORCE (1<<4)
991 #define QUIRK_PIN_SWIZZLED_PAGES (1<<5)
992
993 struct intel_fbdev;
994 struct intel_fbc_work;
995
996 struct intel_gmbus {
997 struct i2c_adapter adapter;
998 u32 force_bit;
999 u32 reg0;
1000 i915_reg_t gpio_reg;
1001 struct i2c_algo_bit_data bit_algo;
1002 struct drm_i915_private *dev_priv;
1003 };
1004
1005 struct i915_suspend_saved_registers {
1006 u32 saveDSPARB;
1007 u32 saveLVDS;
1008 u32 savePP_ON_DELAYS;
1009 u32 savePP_OFF_DELAYS;
1010 u32 savePP_ON;
1011 u32 savePP_OFF;
1012 u32 savePP_CONTROL;
1013 u32 savePP_DIVISOR;
1014 u32 saveFBC_CONTROL;
1015 u32 saveCACHE_MODE_0;
1016 u32 saveMI_ARB_STATE;
1017 u32 saveSWF0[16];
1018 u32 saveSWF1[16];
1019 u32 saveSWF3[3];
1020 uint64_t saveFENCE[I915_MAX_NUM_FENCES];
1021 u32 savePCH_PORT_HOTPLUG;
1022 u16 saveGCDGMBUS;
1023 };
1024
1025 struct vlv_s0ix_state {
1026 /* GAM */
1027 u32 wr_watermark;
1028 u32 gfx_prio_ctrl;
1029 u32 arb_mode;
1030 u32 gfx_pend_tlb0;
1031 u32 gfx_pend_tlb1;
1032 u32 lra_limits[GEN7_LRA_LIMITS_REG_NUM];
1033 u32 media_max_req_count;
1034 u32 gfx_max_req_count;
1035 u32 render_hwsp;
1036 u32 ecochk;
1037 u32 bsd_hwsp;
1038 u32 blt_hwsp;
1039 u32 tlb_rd_addr;
1040
1041 /* MBC */
1042 u32 g3dctl;
1043 u32 gsckgctl;
1044 u32 mbctl;
1045
1046 /* GCP */
1047 u32 ucgctl1;
1048 u32 ucgctl3;
1049 u32 rcgctl1;
1050 u32 rcgctl2;
1051 u32 rstctl;
1052 u32 misccpctl;
1053
1054 /* GPM */
1055 u32 gfxpause;
1056 u32 rpdeuhwtc;
1057 u32 rpdeuc;
1058 u32 ecobus;
1059 u32 pwrdwnupctl;
1060 u32 rp_down_timeout;
1061 u32 rp_deucsw;
1062 u32 rcubmabdtmr;
1063 u32 rcedata;
1064 u32 spare2gh;
1065
1066 /* Display 1 CZ domain */
1067 u32 gt_imr;
1068 u32 gt_ier;
1069 u32 pm_imr;
1070 u32 pm_ier;
1071 u32 gt_scratch[GEN7_GT_SCRATCH_REG_NUM];
1072
1073 /* GT SA CZ domain */
1074 u32 tilectl;
1075 u32 gt_fifoctl;
1076 u32 gtlc_wake_ctrl;
1077 u32 gtlc_survive;
1078 u32 pmwgicz;
1079
1080 /* Display 2 CZ domain */
1081 u32 gu_ctl0;
1082 u32 gu_ctl1;
1083 u32 pcbr;
1084 u32 clock_gate_dis2;
1085 };
1086
1087 struct intel_rps_ei {
1088 u32 cz_clock;
1089 u32 render_c0;
1090 u32 media_c0;
1091 };
1092
1093 struct intel_gen6_power_mgmt {
1094 /*
1095 * work, interrupts_enabled and pm_iir are protected by
1096 * dev_priv->irq_lock
1097 */
1098 struct work_struct work;
1099 bool interrupts_enabled;
1100 u32 pm_iir;
1101
1102 /* Frequencies are stored in potentially platform dependent multiples.
1103 * In other words, *_freq needs to be multiplied by X to be interesting.
1104 * Soft limits are those which are used for the dynamic reclocking done
1105 * by the driver (raise frequencies under heavy loads, and lower for
1106 * lighter loads). Hard limits are those imposed by the hardware.
1107 *
1108 * A distinction is made for overclocking, which is never enabled by
1109 * default, and is considered to be above the hard limit if it's
1110 * possible at all.
1111 */
1112 u8 cur_freq; /* Current frequency (cached, may not == HW) */
1113 u8 min_freq_softlimit; /* Minimum frequency permitted by the driver */
1114 u8 max_freq_softlimit; /* Max frequency permitted by the driver */
1115 u8 max_freq; /* Maximum frequency, RP0 if not overclocking */
1116 u8 min_freq; /* AKA RPn. Minimum frequency */
1117 u8 idle_freq; /* Frequency to request when we are idle */
1118 u8 efficient_freq; /* AKA RPe. Pre-determined balanced frequency */
1119 u8 rp1_freq; /* "less than" RP0 power/freqency */
1120 u8 rp0_freq; /* Non-overclocked max frequency. */
1121
1122 u8 up_threshold; /* Current %busy required to uplock */
1123 u8 down_threshold; /* Current %busy required to downclock */
1124
1125 int last_adj;
1126 enum { LOW_POWER, BETWEEN, HIGH_POWER } power;
1127
1128 spinlock_t client_lock;
1129 struct list_head clients;
1130 bool client_boost;
1131
1132 bool enabled;
1133 struct delayed_work delayed_resume_work;
1134 unsigned boosts;
1135
1136 struct intel_rps_client semaphores, mmioflips;
1137
1138 /* manual wa residency calculations */
1139 struct intel_rps_ei up_ei, down_ei;
1140
1141 /*
1142 * Protects RPS/RC6 register access and PCU communication.
1143 * Must be taken after struct_mutex if nested. Note that
1144 * this lock may be held for long periods of time when
1145 * talking to hw - so only take it when talking to hw!
1146 */
1147 struct mutex hw_lock;
1148 };
1149
1150 /* defined intel_pm.c */
1151 extern spinlock_t mchdev_lock;
1152
1153 struct intel_ilk_power_mgmt {
1154 u8 cur_delay;
1155 u8 min_delay;
1156 u8 max_delay;
1157 u8 fmax;
1158 u8 fstart;
1159
1160 u64 last_count1;
1161 unsigned long last_time1;
1162 unsigned long chipset_power;
1163 u64 last_count2;
1164 u64 last_time2;
1165 unsigned long gfx_power;
1166 u8 corr;
1167
1168 int c_m;
1169 int r_t;
1170 };
1171
1172 struct drm_i915_private;
1173 struct i915_power_well;
1174
1175 struct i915_power_well_ops {
1176 /*
1177 * Synchronize the well's hw state to match the current sw state, for
1178 * example enable/disable it based on the current refcount. Called
1179 * during driver init and resume time, possibly after first calling
1180 * the enable/disable handlers.
1181 */
1182 void (*sync_hw)(struct drm_i915_private *dev_priv,
1183 struct i915_power_well *power_well);
1184 /*
1185 * Enable the well and resources that depend on it (for example
1186 * interrupts located on the well). Called after the 0->1 refcount
1187 * transition.
1188 */
1189 void (*enable)(struct drm_i915_private *dev_priv,
1190 struct i915_power_well *power_well);
1191 /*
1192 * Disable the well and resources that depend on it. Called after
1193 * the 1->0 refcount transition.
1194 */
1195 void (*disable)(struct drm_i915_private *dev_priv,
1196 struct i915_power_well *power_well);
1197 /* Returns the hw enabled state. */
1198 bool (*is_enabled)(struct drm_i915_private *dev_priv,
1199 struct i915_power_well *power_well);
1200 };
1201
1202 /* Power well structure for haswell */
1203 struct i915_power_well {
1204 const char *name;
1205 bool always_on;
1206 /* power well enable/disable usage count */
1207 int count;
1208 /* cached hw enabled state */
1209 bool hw_enabled;
1210 unsigned long domains;
1211 unsigned long data;
1212 const struct i915_power_well_ops *ops;
1213 };
1214
1215 struct i915_power_domains {
1216 /*
1217 * Power wells needed for initialization at driver init and suspend
1218 * time are on. They are kept on until after the first modeset.
1219 */
1220 bool init_power_on;
1221 bool initializing;
1222 int power_well_count;
1223
1224 struct mutex lock;
1225 int domain_use_count[POWER_DOMAIN_NUM];
1226 struct i915_power_well *power_wells;
1227 };
1228
1229 #define MAX_L3_SLICES 2
1230 struct intel_l3_parity {
1231 u32 *remap_info[MAX_L3_SLICES];
1232 struct work_struct error_work;
1233 int which_slice;
1234 };
1235
1236 struct i915_gem_mm {
1237 /** Memory allocator for GTT stolen memory */
1238 struct drm_mm stolen;
1239 /** Protects the usage of the GTT stolen memory allocator. This is
1240 * always the inner lock when overlapping with struct_mutex. */
1241 struct mutex stolen_lock;
1242
1243 /** List of all objects in gtt_space. Used to restore gtt
1244 * mappings on resume */
1245 struct list_head bound_list;
1246 /**
1247 * List of objects which are not bound to the GTT (thus
1248 * are idle and not used by the GPU) but still have
1249 * (presumably uncached) pages still attached.
1250 */
1251 struct list_head unbound_list;
1252
1253 /** Usable portion of the GTT for GEM */
1254 unsigned long stolen_base; /* limited to low memory (32-bit) */
1255
1256 /** PPGTT used for aliasing the PPGTT with the GTT */
1257 struct i915_hw_ppgtt *aliasing_ppgtt;
1258
1259 struct notifier_block oom_notifier;
1260 struct shrinker shrinker;
1261 bool shrinker_no_lock_stealing;
1262
1263 /** LRU list of objects with fence regs on them. */
1264 struct list_head fence_list;
1265
1266 /**
1267 * We leave the user IRQ off as much as possible,
1268 * but this means that requests will finish and never
1269 * be retired once the system goes idle. Set a timer to
1270 * fire periodically while the ring is running. When it
1271 * fires, go retire requests.
1272 */
1273 struct delayed_work retire_work;
1274
1275 /**
1276 * When we detect an idle GPU, we want to turn on
1277 * powersaving features. So once we see that there
1278 * are no more requests outstanding and no more
1279 * arrive within a small period of time, we fire
1280 * off the idle_work.
1281 */
1282 struct delayed_work idle_work;
1283
1284 /**
1285 * Are we in a non-interruptible section of code like
1286 * modesetting?
1287 */
1288 bool interruptible;
1289
1290 /**
1291 * Is the GPU currently considered idle, or busy executing userspace
1292 * requests? Whilst idle, we attempt to power down the hardware and
1293 * display clocks. In order to reduce the effect on performance, there
1294 * is a slight delay before we do so.
1295 */
1296 bool busy;
1297
1298 /* the indicator for dispatch video commands on two BSD rings */
1299 unsigned int bsd_ring_dispatch_index;
1300
1301 /** Bit 6 swizzling required for X tiling */
1302 uint32_t bit_6_swizzle_x;
1303 /** Bit 6 swizzling required for Y tiling */
1304 uint32_t bit_6_swizzle_y;
1305
1306 /* accounting, useful for userland debugging */
1307 spinlock_t object_stat_lock;
1308 size_t object_memory;
1309 u32 object_count;
1310 };
1311
1312 struct drm_i915_error_state_buf {
1313 struct drm_i915_private *i915;
1314 unsigned bytes;
1315 unsigned size;
1316 int err;
1317 u8 *buf;
1318 loff_t start;
1319 loff_t pos;
1320 };
1321
1322 struct i915_error_state_file_priv {
1323 struct drm_device *dev;
1324 struct drm_i915_error_state *error;
1325 };
1326
1327 struct i915_gpu_error {
1328 /* For hangcheck timer */
1329 #define DRM_I915_HANGCHECK_PERIOD 1500 /* in ms */
1330 #define DRM_I915_HANGCHECK_JIFFIES msecs_to_jiffies(DRM_I915_HANGCHECK_PERIOD)
1331 /* Hang gpu twice in this window and your context gets banned */
1332 #define DRM_I915_CTX_BAN_PERIOD DIV_ROUND_UP(8*DRM_I915_HANGCHECK_PERIOD, 1000)
1333
1334 struct workqueue_struct *hangcheck_wq;
1335 struct delayed_work hangcheck_work;
1336
1337 /* For reset and error_state handling. */
1338 spinlock_t lock;
1339 /* Protected by the above dev->gpu_error.lock. */
1340 struct drm_i915_error_state *first_error;
1341
1342 unsigned long missed_irq_rings;
1343
1344 /**
1345 * State variable controlling the reset flow and count
1346 *
1347 * This is a counter which gets incremented when reset is triggered,
1348 * and again when reset has been handled. So odd values (lowest bit set)
1349 * means that reset is in progress and even values that
1350 * (reset_counter >> 1):th reset was successfully completed.
1351 *
1352 * If reset is not completed succesfully, the I915_WEDGE bit is
1353 * set meaning that hardware is terminally sour and there is no
1354 * recovery. All waiters on the reset_queue will be woken when
1355 * that happens.
1356 *
1357 * This counter is used by the wait_seqno code to notice that reset
1358 * event happened and it needs to restart the entire ioctl (since most
1359 * likely the seqno it waited for won't ever signal anytime soon).
1360 *
1361 * This is important for lock-free wait paths, where no contended lock
1362 * naturally enforces the correct ordering between the bail-out of the
1363 * waiter and the gpu reset work code.
1364 */
1365 atomic_t reset_counter;
1366
1367 #define I915_RESET_IN_PROGRESS_FLAG 1
1368 #define I915_WEDGED (1 << 31)
1369
1370 /**
1371 * Waitqueue to signal when the reset has completed. Used by clients
1372 * that wait for dev_priv->mm.wedged to settle.
1373 */
1374 wait_queue_head_t reset_queue;
1375
1376 /* Userspace knobs for gpu hang simulation;
1377 * combines both a ring mask, and extra flags
1378 */
1379 u32 stop_rings;
1380 #define I915_STOP_RING_ALLOW_BAN (1 << 31)
1381 #define I915_STOP_RING_ALLOW_WARN (1 << 30)
1382
1383 /* For missed irq/seqno simulation. */
1384 unsigned int test_irq_rings;
1385
1386 /* Used to prevent gem_check_wedged returning -EAGAIN during gpu reset */
1387 bool reload_in_reset;
1388 };
1389
1390 enum modeset_restore {
1391 MODESET_ON_LID_OPEN,
1392 MODESET_DONE,
1393 MODESET_SUSPENDED,
1394 };
1395
1396 #define DP_AUX_A 0x40
1397 #define DP_AUX_B 0x10
1398 #define DP_AUX_C 0x20
1399 #define DP_AUX_D 0x30
1400
1401 #define DDC_PIN_B 0x05
1402 #define DDC_PIN_C 0x04
1403 #define DDC_PIN_D 0x06
1404
1405 struct ddi_vbt_port_info {
1406 /*
1407 * This is an index in the HDMI/DVI DDI buffer translation table.
1408 * The special value HDMI_LEVEL_SHIFT_UNKNOWN means the VBT didn't
1409 * populate this field.
1410 */
1411 #define HDMI_LEVEL_SHIFT_UNKNOWN 0xff
1412 uint8_t hdmi_level_shift;
1413
1414 uint8_t supports_dvi:1;
1415 uint8_t supports_hdmi:1;
1416 uint8_t supports_dp:1;
1417
1418 uint8_t alternate_aux_channel;
1419 uint8_t alternate_ddc_pin;
1420
1421 uint8_t dp_boost_level;
1422 uint8_t hdmi_boost_level;
1423 };
1424
1425 enum psr_lines_to_wait {
1426 PSR_0_LINES_TO_WAIT = 0,
1427 PSR_1_LINE_TO_WAIT,
1428 PSR_4_LINES_TO_WAIT,
1429 PSR_8_LINES_TO_WAIT
1430 };
1431
1432 struct intel_vbt_data {
1433 struct drm_display_mode *lfp_lvds_vbt_mode; /* if any */
1434 struct drm_display_mode *sdvo_lvds_vbt_mode; /* if any */
1435
1436 /* Feature bits */
1437 unsigned int int_tv_support:1;
1438 unsigned int lvds_dither:1;
1439 unsigned int lvds_vbt:1;
1440 unsigned int int_crt_support:1;
1441 unsigned int lvds_use_ssc:1;
1442 unsigned int display_clock_mode:1;
1443 unsigned int fdi_rx_polarity_inverted:1;
1444 int lvds_ssc_freq;
1445 unsigned int bios_lvds_val; /* initial [PCH_]LVDS reg val in VBIOS */
1446
1447 enum drrs_support_type drrs_type;
1448
1449 struct {
1450 int rate;
1451 int lanes;
1452 int preemphasis;
1453 int vswing;
1454 bool low_vswing;
1455 bool initialized;
1456 bool support;
1457 int bpp;
1458 struct edp_power_seq pps;
1459 } edp;
1460
1461 struct {
1462 bool full_link;
1463 bool require_aux_wakeup;
1464 int idle_frames;
1465 enum psr_lines_to_wait lines_to_wait;
1466 int tp1_wakeup_time;
1467 int tp2_tp3_wakeup_time;
1468 } psr;
1469
1470 struct {
1471 u16 pwm_freq_hz;
1472 bool present;
1473 bool active_low_pwm;
1474 u8 min_brightness; /* min_brightness/255 of max */
1475 } backlight;
1476
1477 /* MIPI DSI */
1478 struct {
1479 u16 panel_id;
1480 struct mipi_config *config;
1481 struct mipi_pps_data *pps;
1482 u8 seq_version;
1483 u32 size;
1484 u8 *data;
1485 const u8 *sequence[MIPI_SEQ_MAX];
1486 } dsi;
1487
1488 int crt_ddc_pin;
1489
1490 int child_dev_num;
1491 union child_device_config *child_dev;
1492
1493 struct ddi_vbt_port_info ddi_port_info[I915_MAX_PORTS];
1494 struct sdvo_device_mapping sdvo_mappings[2];
1495 };
1496
1497 enum intel_ddb_partitioning {
1498 INTEL_DDB_PART_1_2,
1499 INTEL_DDB_PART_5_6, /* IVB+ */
1500 };
1501
1502 struct intel_wm_level {
1503 bool enable;
1504 uint32_t pri_val;
1505 uint32_t spr_val;
1506 uint32_t cur_val;
1507 uint32_t fbc_val;
1508 };
1509
1510 struct ilk_wm_values {
1511 uint32_t wm_pipe[3];
1512 uint32_t wm_lp[3];
1513 uint32_t wm_lp_spr[3];
1514 uint32_t wm_linetime[3];
1515 bool enable_fbc_wm;
1516 enum intel_ddb_partitioning partitioning;
1517 };
1518
1519 struct vlv_pipe_wm {
1520 uint16_t primary;
1521 uint16_t sprite[2];
1522 uint8_t cursor;
1523 };
1524
1525 struct vlv_sr_wm {
1526 uint16_t plane;
1527 uint8_t cursor;
1528 };
1529
1530 struct vlv_wm_values {
1531 struct vlv_pipe_wm pipe[3];
1532 struct vlv_sr_wm sr;
1533 struct {
1534 uint8_t cursor;
1535 uint8_t sprite[2];
1536 uint8_t primary;
1537 } ddl[3];
1538 uint8_t level;
1539 bool cxsr;
1540 };
1541
1542 struct skl_ddb_entry {
1543 uint16_t start, end; /* in number of blocks, 'end' is exclusive */
1544 };
1545
1546 static inline uint16_t skl_ddb_entry_size(const struct skl_ddb_entry *entry)
1547 {
1548 return entry->end - entry->start;
1549 }
1550
1551 static inline bool skl_ddb_entry_equal(const struct skl_ddb_entry *e1,
1552 const struct skl_ddb_entry *e2)
1553 {
1554 if (e1->start == e2->start && e1->end == e2->end)
1555 return true;
1556
1557 return false;
1558 }
1559
1560 struct skl_ddb_allocation {
1561 struct skl_ddb_entry pipe[I915_MAX_PIPES];
1562 struct skl_ddb_entry plane[I915_MAX_PIPES][I915_MAX_PLANES]; /* packed/uv */
1563 struct skl_ddb_entry y_plane[I915_MAX_PIPES][I915_MAX_PLANES];
1564 };
1565
1566 struct skl_wm_values {
1567 bool dirty[I915_MAX_PIPES];
1568 struct skl_ddb_allocation ddb;
1569 uint32_t wm_linetime[I915_MAX_PIPES];
1570 uint32_t plane[I915_MAX_PIPES][I915_MAX_PLANES][8];
1571 uint32_t plane_trans[I915_MAX_PIPES][I915_MAX_PLANES];
1572 };
1573
1574 struct skl_wm_level {
1575 bool plane_en[I915_MAX_PLANES];
1576 uint16_t plane_res_b[I915_MAX_PLANES];
1577 uint8_t plane_res_l[I915_MAX_PLANES];
1578 };
1579
1580 /*
1581 * This struct helps tracking the state needed for runtime PM, which puts the
1582 * device in PCI D3 state. Notice that when this happens, nothing on the
1583 * graphics device works, even register access, so we don't get interrupts nor
1584 * anything else.
1585 *
1586 * Every piece of our code that needs to actually touch the hardware needs to
1587 * either call intel_runtime_pm_get or call intel_display_power_get with the
1588 * appropriate power domain.
1589 *
1590 * Our driver uses the autosuspend delay feature, which means we'll only really
1591 * suspend if we stay with zero refcount for a certain amount of time. The
1592 * default value is currently very conservative (see intel_runtime_pm_enable), but
1593 * it can be changed with the standard runtime PM files from sysfs.
1594 *
1595 * The irqs_disabled variable becomes true exactly after we disable the IRQs and
1596 * goes back to false exactly before we reenable the IRQs. We use this variable
1597 * to check if someone is trying to enable/disable IRQs while they're supposed
1598 * to be disabled. This shouldn't happen and we'll print some error messages in
1599 * case it happens.
1600 *
1601 * For more, read the Documentation/power/runtime_pm.txt.
1602 */
1603 struct i915_runtime_pm {
1604 atomic_t wakeref_count;
1605 atomic_t atomic_seq;
1606 bool suspended;
1607 bool irqs_enabled;
1608 };
1609
1610 enum intel_pipe_crc_source {
1611 INTEL_PIPE_CRC_SOURCE_NONE,
1612 INTEL_PIPE_CRC_SOURCE_PLANE1,
1613 INTEL_PIPE_CRC_SOURCE_PLANE2,
1614 INTEL_PIPE_CRC_SOURCE_PF,
1615 INTEL_PIPE_CRC_SOURCE_PIPE,
1616 /* TV/DP on pre-gen5/vlv can't use the pipe source. */
1617 INTEL_PIPE_CRC_SOURCE_TV,
1618 INTEL_PIPE_CRC_SOURCE_DP_B,
1619 INTEL_PIPE_CRC_SOURCE_DP_C,
1620 INTEL_PIPE_CRC_SOURCE_DP_D,
1621 INTEL_PIPE_CRC_SOURCE_AUTO,
1622 INTEL_PIPE_CRC_SOURCE_MAX,
1623 };
1624
1625 struct intel_pipe_crc_entry {
1626 uint32_t frame;
1627 uint32_t crc[5];
1628 };
1629
1630 #define INTEL_PIPE_CRC_ENTRIES_NR 128
1631 struct intel_pipe_crc {
1632 spinlock_t lock;
1633 bool opened; /* exclusive access to the result file */
1634 struct intel_pipe_crc_entry *entries;
1635 enum intel_pipe_crc_source source;
1636 int head, tail;
1637 wait_queue_head_t wq;
1638 };
1639
1640 struct i915_frontbuffer_tracking {
1641 struct mutex lock;
1642
1643 /*
1644 * Tracking bits for delayed frontbuffer flushing du to gpu activity or
1645 * scheduled flips.
1646 */
1647 unsigned busy_bits;
1648 unsigned flip_bits;
1649 };
1650
1651 struct i915_wa_reg {
1652 i915_reg_t addr;
1653 u32 value;
1654 /* bitmask representing WA bits */
1655 u32 mask;
1656 };
1657
1658 /*
1659 * RING_MAX_NONPRIV_SLOTS is per-engine but at this point we are only
1660 * allowing it for RCS as we don't foresee any requirement of having
1661 * a whitelist for other engines. When it is really required for
1662 * other engines then the limit need to be increased.
1663 */
1664 #define I915_MAX_WA_REGS (16 + RING_MAX_NONPRIV_SLOTS)
1665
1666 struct i915_workarounds {
1667 struct i915_wa_reg reg[I915_MAX_WA_REGS];
1668 u32 count;
1669 u32 hw_whitelist_count[I915_NUM_ENGINES];
1670 };
1671
1672 struct i915_virtual_gpu {
1673 bool active;
1674 };
1675
1676 struct i915_execbuffer_params {
1677 struct drm_device *dev;
1678 struct drm_file *file;
1679 uint32_t dispatch_flags;
1680 uint32_t args_batch_start_offset;
1681 uint64_t batch_obj_vm_offset;
1682 struct intel_engine_cs *engine;
1683 struct drm_i915_gem_object *batch_obj;
1684 struct intel_context *ctx;
1685 struct drm_i915_gem_request *request;
1686 };
1687
1688 /* used in computing the new watermarks state */
1689 struct intel_wm_config {
1690 unsigned int num_pipes_active;
1691 bool sprites_enabled;
1692 bool sprites_scaled;
1693 };
1694
1695 struct drm_i915_private {
1696 struct drm_device *dev;
1697 struct kmem_cache *objects;
1698 struct kmem_cache *vmas;
1699 struct kmem_cache *requests;
1700
1701 const struct intel_device_info info;
1702
1703 int relative_constants_mode;
1704
1705 void __iomem *regs;
1706
1707 struct intel_uncore uncore;
1708
1709 struct i915_virtual_gpu vgpu;
1710
1711 struct intel_guc guc;
1712
1713 struct intel_csr csr;
1714
1715 struct intel_gmbus gmbus[GMBUS_NUM_PINS];
1716
1717 /** gmbus_mutex protects against concurrent usage of the single hw gmbus
1718 * controller on different i2c buses. */
1719 struct mutex gmbus_mutex;
1720
1721 /**
1722 * Base address of the gmbus and gpio block.
1723 */
1724 uint32_t gpio_mmio_base;
1725
1726 /* MMIO base address for MIPI regs */
1727 uint32_t mipi_mmio_base;
1728
1729 uint32_t psr_mmio_base;
1730
1731 wait_queue_head_t gmbus_wait_queue;
1732
1733 struct pci_dev *bridge_dev;
1734 struct intel_engine_cs engine[I915_NUM_ENGINES];
1735 struct drm_i915_gem_object *semaphore_obj;
1736 uint32_t last_seqno, next_seqno;
1737
1738 struct drm_dma_handle *status_page_dmah;
1739 struct resource mch_res;
1740
1741 /* protects the irq masks */
1742 spinlock_t irq_lock;
1743
1744 /* protects the mmio flip data */
1745 spinlock_t mmio_flip_lock;
1746
1747 bool display_irqs_enabled;
1748
1749 /* To control wakeup latency, e.g. for irq-driven dp aux transfers. */
1750 struct pm_qos_request pm_qos;
1751
1752 /* Sideband mailbox protection */
1753 struct mutex sb_lock;
1754
1755 /** Cached value of IMR to avoid reads in updating the bitfield */
1756 union {
1757 u32 irq_mask;
1758 u32 de_irq_mask[I915_MAX_PIPES];
1759 };
1760 u32 gt_irq_mask;
1761 u32 pm_irq_mask;
1762 u32 pm_rps_events;
1763 u32 pipestat_irq_mask[I915_MAX_PIPES];
1764
1765 struct i915_hotplug hotplug;
1766 struct intel_fbc fbc;
1767 struct i915_drrs drrs;
1768 struct intel_opregion opregion;
1769 struct intel_vbt_data vbt;
1770
1771 bool preserve_bios_swizzle;
1772
1773 /* overlay */
1774 struct intel_overlay *overlay;
1775
1776 /* backlight registers and fields in struct intel_panel */
1777 struct mutex backlight_lock;
1778
1779 /* LVDS info */
1780 bool no_aux_handshake;
1781
1782 /* protects panel power sequencer state */
1783 struct mutex pps_mutex;
1784
1785 struct drm_i915_fence_reg fence_regs[I915_MAX_NUM_FENCES]; /* assume 965 */
1786 int num_fence_regs; /* 8 on pre-965, 16 otherwise */
1787
1788 unsigned int fsb_freq, mem_freq, is_ddr3;
1789 unsigned int skl_boot_cdclk;
1790 unsigned int cdclk_freq, max_cdclk_freq, atomic_cdclk_freq;
1791 unsigned int max_dotclk_freq;
1792 unsigned int rawclk_freq;
1793 unsigned int hpll_freq;
1794 unsigned int czclk_freq;
1795
1796 /**
1797 * wq - Driver workqueue for GEM.
1798 *
1799 * NOTE: Work items scheduled here are not allowed to grab any modeset
1800 * locks, for otherwise the flushing done in the pageflip code will
1801 * result in deadlocks.
1802 */
1803 struct workqueue_struct *wq;
1804
1805 /* Display functions */
1806 struct drm_i915_display_funcs display;
1807
1808 /* PCH chipset type */
1809 enum intel_pch pch_type;
1810 unsigned short pch_id;
1811
1812 unsigned long quirks;
1813
1814 enum modeset_restore modeset_restore;
1815 struct mutex modeset_restore_lock;
1816 struct drm_atomic_state *modeset_restore_state;
1817
1818 struct list_head vm_list; /* Global list of all address spaces */
1819 struct i915_ggtt ggtt; /* VM representing the global address space */
1820
1821 struct i915_gem_mm mm;
1822 DECLARE_HASHTABLE(mm_structs, 7);
1823 struct mutex mm_lock;
1824
1825 /* Kernel Modesetting */
1826
1827 struct drm_crtc *plane_to_crtc_mapping[I915_MAX_PIPES];
1828 struct drm_crtc *pipe_to_crtc_mapping[I915_MAX_PIPES];
1829 wait_queue_head_t pending_flip_queue;
1830
1831 #ifdef CONFIG_DEBUG_FS
1832 struct intel_pipe_crc pipe_crc[I915_MAX_PIPES];
1833 #endif
1834
1835 /* dpll and cdclk state is protected by connection_mutex */
1836 int num_shared_dpll;
1837 struct intel_shared_dpll shared_dplls[I915_NUM_PLLS];
1838 const struct intel_dpll_mgr *dpll_mgr;
1839
1840 /*
1841 * dpll_lock serializes intel_{prepare,enable,disable}_shared_dpll.
1842 * Must be global rather than per dpll, because on some platforms
1843 * plls share registers.
1844 */
1845 struct mutex dpll_lock;
1846
1847 unsigned int active_crtcs;
1848 unsigned int min_pixclk[I915_MAX_PIPES];
1849
1850 int dpio_phy_iosf_port[I915_NUM_PHYS_VLV];
1851
1852 struct i915_workarounds workarounds;
1853
1854 struct i915_frontbuffer_tracking fb_tracking;
1855
1856 u16 orig_clock;
1857
1858 bool mchbar_need_disable;
1859
1860 struct intel_l3_parity l3_parity;
1861
1862 /* Cannot be determined by PCIID. You must always read a register. */
1863 size_t ellc_size;
1864
1865 /* gen6+ rps state */
1866 struct intel_gen6_power_mgmt rps;
1867
1868 /* ilk-only ips/rps state. Everything in here is protected by the global
1869 * mchdev_lock in intel_pm.c */
1870 struct intel_ilk_power_mgmt ips;
1871
1872 struct i915_power_domains power_domains;
1873
1874 struct i915_psr psr;
1875
1876 struct i915_gpu_error gpu_error;
1877
1878 struct drm_i915_gem_object *vlv_pctx;
1879
1880 #ifdef CONFIG_DRM_FBDEV_EMULATION
1881 /* list of fbdev register on this device */
1882 struct intel_fbdev *fbdev;
1883 struct work_struct fbdev_suspend_work;
1884 #endif
1885
1886 struct drm_property *broadcast_rgb_property;
1887 struct drm_property *force_audio_property;
1888
1889 /* hda/i915 audio component */
1890 struct i915_audio_component *audio_component;
1891 bool audio_component_registered;
1892 /**
1893 * av_mutex - mutex for audio/video sync
1894 *
1895 */
1896 struct mutex av_mutex;
1897
1898 uint32_t hw_context_size;
1899 struct list_head context_list;
1900
1901 u32 fdi_rx_config;
1902
1903 /* Shadow for DISPLAY_PHY_CONTROL which can't be safely read */
1904 u32 chv_phy_control;
1905 /*
1906 * Shadows for CHV DPLL_MD regs to keep the state
1907 * checker somewhat working in the presence hardware
1908 * crappiness (can't read out DPLL_MD for pipes B & C).
1909 */
1910 u32 chv_dpll_md[I915_MAX_PIPES];
1911
1912 u32 suspend_count;
1913 bool suspended_to_idle;
1914 struct i915_suspend_saved_registers regfile;
1915 struct vlv_s0ix_state vlv_s0ix_state;
1916
1917 struct {
1918 /*
1919 * Raw watermark latency values:
1920 * in 0.1us units for WM0,
1921 * in 0.5us units for WM1+.
1922 */
1923 /* primary */
1924 uint16_t pri_latency[5];
1925 /* sprite */
1926 uint16_t spr_latency[5];
1927 /* cursor */
1928 uint16_t cur_latency[5];
1929 /*
1930 * Raw watermark memory latency values
1931 * for SKL for all 8 levels
1932 * in 1us units.
1933 */
1934 uint16_t skl_latency[8];
1935
1936 /* Committed wm config */
1937 struct intel_wm_config config;
1938
1939 /*
1940 * The skl_wm_values structure is a bit too big for stack
1941 * allocation, so we keep the staging struct where we store
1942 * intermediate results here instead.
1943 */
1944 struct skl_wm_values skl_results;
1945
1946 /* current hardware state */
1947 union {
1948 struct ilk_wm_values hw;
1949 struct skl_wm_values skl_hw;
1950 struct vlv_wm_values vlv;
1951 };
1952
1953 uint8_t max_level;
1954
1955 /*
1956 * Should be held around atomic WM register writing; also
1957 * protects * intel_crtc->wm.active and
1958 * cstate->wm.need_postvbl_update.
1959 */
1960 struct mutex wm_mutex;
1961 } wm;
1962
1963 struct i915_runtime_pm pm;
1964
1965 /* Abstract the submission mechanism (legacy ringbuffer or execlists) away */
1966 struct {
1967 int (*execbuf_submit)(struct i915_execbuffer_params *params,
1968 struct drm_i915_gem_execbuffer2 *args,
1969 struct list_head *vmas);
1970 int (*init_engines)(struct drm_device *dev);
1971 void (*cleanup_engine)(struct intel_engine_cs *engine);
1972 void (*stop_engine)(struct intel_engine_cs *engine);
1973 } gt;
1974
1975 struct intel_context *kernel_context;
1976
1977 /* perform PHY state sanity checks? */
1978 bool chv_phy_assert[2];
1979
1980 struct intel_encoder *dig_port_map[I915_MAX_PORTS];
1981
1982 /*
1983 * NOTE: This is the dri1/ums dungeon, don't add stuff here. Your patch
1984 * will be rejected. Instead look for a better place.
1985 */
1986 };
1987
1988 static inline struct drm_i915_private *to_i915(const struct drm_device *dev)
1989 {
1990 return dev->dev_private;
1991 }
1992
1993 static inline struct drm_i915_private *dev_to_i915(struct device *dev)
1994 {
1995 return to_i915(dev_get_drvdata(dev));
1996 }
1997
1998 static inline struct drm_i915_private *guc_to_i915(struct intel_guc *guc)
1999 {
2000 return container_of(guc, struct drm_i915_private, guc);
2001 }
2002
2003 /* Simple iterator over all initialised engines */
2004 #define for_each_engine(engine__, dev_priv__) \
2005 for ((engine__) = &(dev_priv__)->engine[0]; \
2006 (engine__) < &(dev_priv__)->engine[I915_NUM_ENGINES]; \
2007 (engine__)++) \
2008 for_each_if (intel_engine_initialized(engine__))
2009
2010 /* Iterator with engine_id */
2011 #define for_each_engine_id(engine__, dev_priv__, id__) \
2012 for ((engine__) = &(dev_priv__)->engine[0], (id__) = 0; \
2013 (engine__) < &(dev_priv__)->engine[I915_NUM_ENGINES]; \
2014 (engine__)++) \
2015 for_each_if (((id__) = (engine__)->id, \
2016 intel_engine_initialized(engine__)))
2017
2018 /* Iterator over subset of engines selected by mask */
2019 #define for_each_engine_masked(engine__, dev_priv__, mask__) \
2020 for ((engine__) = &(dev_priv__)->engine[0]; \
2021 (engine__) < &(dev_priv__)->engine[I915_NUM_ENGINES]; \
2022 (engine__)++) \
2023 for_each_if (((mask__) & intel_engine_flag(engine__)) && \
2024 intel_engine_initialized(engine__))
2025
2026 enum hdmi_force_audio {
2027 HDMI_AUDIO_OFF_DVI = -2, /* no aux data for HDMI-DVI converter */
2028 HDMI_AUDIO_OFF, /* force turn off HDMI audio */
2029 HDMI_AUDIO_AUTO, /* trust EDID */
2030 HDMI_AUDIO_ON, /* force turn on HDMI audio */
2031 };
2032
2033 #define I915_GTT_OFFSET_NONE ((u32)-1)
2034
2035 struct drm_i915_gem_object_ops {
2036 unsigned int flags;
2037 #define I915_GEM_OBJECT_HAS_STRUCT_PAGE 0x1
2038
2039 /* Interface between the GEM object and its backing storage.
2040 * get_pages() is called once prior to the use of the associated set
2041 * of pages before to binding them into the GTT, and put_pages() is
2042 * called after we no longer need them. As we expect there to be
2043 * associated cost with migrating pages between the backing storage
2044 * and making them available for the GPU (e.g. clflush), we may hold
2045 * onto the pages after they are no longer referenced by the GPU
2046 * in case they may be used again shortly (for example migrating the
2047 * pages to a different memory domain within the GTT). put_pages()
2048 * will therefore most likely be called when the object itself is
2049 * being released or under memory pressure (where we attempt to
2050 * reap pages for the shrinker).
2051 */
2052 int (*get_pages)(struct drm_i915_gem_object *);
2053 void (*put_pages)(struct drm_i915_gem_object *);
2054
2055 int (*dmabuf_export)(struct drm_i915_gem_object *);
2056 void (*release)(struct drm_i915_gem_object *);
2057 };
2058
2059 /*
2060 * Frontbuffer tracking bits. Set in obj->frontbuffer_bits while a gem bo is
2061 * considered to be the frontbuffer for the given plane interface-wise. This
2062 * doesn't mean that the hw necessarily already scans it out, but that any
2063 * rendering (by the cpu or gpu) will land in the frontbuffer eventually.
2064 *
2065 * We have one bit per pipe and per scanout plane type.
2066 */
2067 #define INTEL_MAX_SPRITE_BITS_PER_PIPE 5
2068 #define INTEL_FRONTBUFFER_BITS_PER_PIPE 8
2069 #define INTEL_FRONTBUFFER_BITS \
2070 (INTEL_FRONTBUFFER_BITS_PER_PIPE * I915_MAX_PIPES)
2071 #define INTEL_FRONTBUFFER_PRIMARY(pipe) \
2072 (1 << (INTEL_FRONTBUFFER_BITS_PER_PIPE * (pipe)))
2073 #define INTEL_FRONTBUFFER_CURSOR(pipe) \
2074 (1 << (1 + (INTEL_FRONTBUFFER_BITS_PER_PIPE * (pipe))))
2075 #define INTEL_FRONTBUFFER_SPRITE(pipe, plane) \
2076 (1 << (2 + plane + (INTEL_FRONTBUFFER_BITS_PER_PIPE * (pipe))))
2077 #define INTEL_FRONTBUFFER_OVERLAY(pipe) \
2078 (1 << (2 + INTEL_MAX_SPRITE_BITS_PER_PIPE + (INTEL_FRONTBUFFER_BITS_PER_PIPE * (pipe))))
2079 #define INTEL_FRONTBUFFER_ALL_MASK(pipe) \
2080 (0xff << (INTEL_FRONTBUFFER_BITS_PER_PIPE * (pipe)))
2081
2082 struct drm_i915_gem_object {
2083 struct drm_gem_object base;
2084
2085 const struct drm_i915_gem_object_ops *ops;
2086
2087 /** List of VMAs backed by this object */
2088 struct list_head vma_list;
2089
2090 /** Stolen memory for this object, instead of being backed by shmem. */
2091 struct drm_mm_node *stolen;
2092 struct list_head global_list;
2093
2094 struct list_head engine_list[I915_NUM_ENGINES];
2095 /** Used in execbuf to temporarily hold a ref */
2096 struct list_head obj_exec_link;
2097
2098 struct list_head batch_pool_link;
2099
2100 /**
2101 * This is set if the object is on the active lists (has pending
2102 * rendering and so a non-zero seqno), and is not set if it i s on
2103 * inactive (ready to be unbound) list.
2104 */
2105 unsigned int active:I915_NUM_ENGINES;
2106
2107 /**
2108 * This is set if the object has been written to since last bound
2109 * to the GTT
2110 */
2111 unsigned int dirty:1;
2112
2113 /**
2114 * Fence register bits (if any) for this object. Will be set
2115 * as needed when mapped into the GTT.
2116 * Protected by dev->struct_mutex.
2117 */
2118 signed int fence_reg:I915_MAX_NUM_FENCE_BITS;
2119
2120 /**
2121 * Advice: are the backing pages purgeable?
2122 */
2123 unsigned int madv:2;
2124
2125 /**
2126 * Current tiling mode for the object.
2127 */
2128 unsigned int tiling_mode:2;
2129 /**
2130 * Whether the tiling parameters for the currently associated fence
2131 * register have changed. Note that for the purposes of tracking
2132 * tiling changes we also treat the unfenced register, the register
2133 * slot that the object occupies whilst it executes a fenced
2134 * command (such as BLT on gen2/3), as a "fence".
2135 */
2136 unsigned int fence_dirty:1;
2137
2138 /**
2139 * Is the object at the current location in the gtt mappable and
2140 * fenceable? Used to avoid costly recalculations.
2141 */
2142 unsigned int map_and_fenceable:1;
2143
2144 /**
2145 * Whether the current gtt mapping needs to be mappable (and isn't just
2146 * mappable by accident). Track pin and fault separate for a more
2147 * accurate mappable working set.
2148 */
2149 unsigned int fault_mappable:1;
2150
2151 /*
2152 * Is the object to be mapped as read-only to the GPU
2153 * Only honoured if hardware has relevant pte bit
2154 */
2155 unsigned long gt_ro:1;
2156 unsigned int cache_level:3;
2157 unsigned int cache_dirty:1;
2158
2159 unsigned int frontbuffer_bits:INTEL_FRONTBUFFER_BITS;
2160
2161 unsigned int pin_display;
2162
2163 struct sg_table *pages;
2164 int pages_pin_count;
2165 struct get_page {
2166 struct scatterlist *sg;
2167 int last;
2168 } get_page;
2169
2170 /* prime dma-buf support */
2171 void *dma_buf_vmapping;
2172 int vmapping_count;
2173
2174 /** Breadcrumb of last rendering to the buffer.
2175 * There can only be one writer, but we allow for multiple readers.
2176 * If there is a writer that necessarily implies that all other
2177 * read requests are complete - but we may only be lazily clearing
2178 * the read requests. A read request is naturally the most recent
2179 * request on a ring, so we may have two different write and read
2180 * requests on one ring where the write request is older than the
2181 * read request. This allows for the CPU to read from an active
2182 * buffer by only waiting for the write to complete.
2183 * */
2184 struct drm_i915_gem_request *last_read_req[I915_NUM_ENGINES];
2185 struct drm_i915_gem_request *last_write_req;
2186 /** Breadcrumb of last fenced GPU access to the buffer. */
2187 struct drm_i915_gem_request *last_fenced_req;
2188
2189 /** Current tiling stride for the object, if it's tiled. */
2190 uint32_t stride;
2191
2192 /** References from framebuffers, locks out tiling changes. */
2193 unsigned long framebuffer_references;
2194
2195 /** Record of address bit 17 of each page at last unbind. */
2196 unsigned long *bit_17;
2197
2198 union {
2199 /** for phy allocated objects */
2200 struct drm_dma_handle *phys_handle;
2201
2202 struct i915_gem_userptr {
2203 uintptr_t ptr;
2204 unsigned read_only :1;
2205 unsigned workers :4;
2206 #define I915_GEM_USERPTR_MAX_WORKERS 15
2207
2208 struct i915_mm_struct *mm;
2209 struct i915_mmu_object *mmu_object;
2210 struct work_struct *work;
2211 } userptr;
2212 };
2213 };
2214 #define to_intel_bo(x) container_of(x, struct drm_i915_gem_object, base)
2215
2216 void i915_gem_track_fb(struct drm_i915_gem_object *old,
2217 struct drm_i915_gem_object *new,
2218 unsigned frontbuffer_bits);
2219
2220 /**
2221 * Request queue structure.
2222 *
2223 * The request queue allows us to note sequence numbers that have been emitted
2224 * and may be associated with active buffers to be retired.
2225 *
2226 * By keeping this list, we can avoid having to do questionable sequence
2227 * number comparisons on buffer last_read|write_seqno. It also allows an
2228 * emission time to be associated with the request for tracking how far ahead
2229 * of the GPU the submission is.
2230 *
2231 * The requests are reference counted, so upon creation they should have an
2232 * initial reference taken using kref_init
2233 */
2234 struct drm_i915_gem_request {
2235 struct kref ref;
2236
2237 /** On Which ring this request was generated */
2238 struct drm_i915_private *i915;
2239 struct intel_engine_cs *engine;
2240
2241 /** GEM sequence number associated with the previous request,
2242 * when the HWS breadcrumb is equal to this the GPU is processing
2243 * this request.
2244 */
2245 u32 previous_seqno;
2246
2247 /** GEM sequence number associated with this request,
2248 * when the HWS breadcrumb is equal or greater than this the GPU
2249 * has finished processing this request.
2250 */
2251 u32 seqno;
2252
2253 /** Position in the ringbuffer of the start of the request */
2254 u32 head;
2255
2256 /**
2257 * Position in the ringbuffer of the start of the postfix.
2258 * This is required to calculate the maximum available ringbuffer
2259 * space without overwriting the postfix.
2260 */
2261 u32 postfix;
2262
2263 /** Position in the ringbuffer of the end of the whole request */
2264 u32 tail;
2265
2266 /**
2267 * Context and ring buffer related to this request
2268 * Contexts are refcounted, so when this request is associated with a
2269 * context, we must increment the context's refcount, to guarantee that
2270 * it persists while any request is linked to it. Requests themselves
2271 * are also refcounted, so the request will only be freed when the last
2272 * reference to it is dismissed, and the code in
2273 * i915_gem_request_free() will then decrement the refcount on the
2274 * context.
2275 */
2276 struct intel_context *ctx;
2277 struct intel_ringbuffer *ringbuf;
2278
2279 /** Batch buffer related to this request if any (used for
2280 error state dump only) */
2281 struct drm_i915_gem_object *batch_obj;
2282
2283 /** Time at which this request was emitted, in jiffies. */
2284 unsigned long emitted_jiffies;
2285
2286 /** global list entry for this request */
2287 struct list_head list;
2288
2289 struct drm_i915_file_private *file_priv;
2290 /** file_priv list entry for this request */
2291 struct list_head client_list;
2292
2293 /** process identifier submitting this request */
2294 struct pid *pid;
2295
2296 /**
2297 * The ELSP only accepts two elements at a time, so we queue
2298 * context/tail pairs on a given queue (ring->execlist_queue) until the
2299 * hardware is available. The queue serves a double purpose: we also use
2300 * it to keep track of the up to 2 contexts currently in the hardware
2301 * (usually one in execution and the other queued up by the GPU): We
2302 * only remove elements from the head of the queue when the hardware
2303 * informs us that an element has been completed.
2304 *
2305 * All accesses to the queue are mediated by a spinlock
2306 * (ring->execlist_lock).
2307 */
2308
2309 /** Execlist link in the submission queue.*/
2310 struct list_head execlist_link;
2311
2312 /** Execlists no. of times this request has been sent to the ELSP */
2313 int elsp_submitted;
2314
2315 };
2316
2317 struct drm_i915_gem_request * __must_check
2318 i915_gem_request_alloc(struct intel_engine_cs *engine,
2319 struct intel_context *ctx);
2320 void i915_gem_request_cancel(struct drm_i915_gem_request *req);
2321 void i915_gem_request_free(struct kref *req_ref);
2322 int i915_gem_request_add_to_client(struct drm_i915_gem_request *req,
2323 struct drm_file *file);
2324
2325 static inline uint32_t
2326 i915_gem_request_get_seqno(struct drm_i915_gem_request *req)
2327 {
2328 return req ? req->seqno : 0;
2329 }
2330
2331 static inline struct intel_engine_cs *
2332 i915_gem_request_get_engine(struct drm_i915_gem_request *req)
2333 {
2334 return req ? req->engine : NULL;
2335 }
2336
2337 static inline struct drm_i915_gem_request *
2338 i915_gem_request_reference(struct drm_i915_gem_request *req)
2339 {
2340 if (req)
2341 kref_get(&req->ref);
2342 return req;
2343 }
2344
2345 static inline void
2346 i915_gem_request_unreference(struct drm_i915_gem_request *req)
2347 {
2348 WARN_ON(!mutex_is_locked(&req->engine->dev->struct_mutex));
2349 kref_put(&req->ref, i915_gem_request_free);
2350 }
2351
2352 static inline void
2353 i915_gem_request_unreference__unlocked(struct drm_i915_gem_request *req)
2354 {
2355 struct drm_device *dev;
2356
2357 if (!req)
2358 return;
2359
2360 dev = req->engine->dev;
2361 if (kref_put_mutex(&req->ref, i915_gem_request_free, &dev->struct_mutex))
2362 mutex_unlock(&dev->struct_mutex);
2363 }
2364
2365 static inline void i915_gem_request_assign(struct drm_i915_gem_request **pdst,
2366 struct drm_i915_gem_request *src)
2367 {
2368 if (src)
2369 i915_gem_request_reference(src);
2370
2371 if (*pdst)
2372 i915_gem_request_unreference(*pdst);
2373
2374 *pdst = src;
2375 }
2376
2377 /*
2378 * XXX: i915_gem_request_completed should be here but currently needs the
2379 * definition of i915_seqno_passed() which is below. It will be moved in
2380 * a later patch when the call to i915_seqno_passed() is obsoleted...
2381 */
2382
2383 /*
2384 * A command that requires special handling by the command parser.
2385 */
2386 struct drm_i915_cmd_descriptor {
2387 /*
2388 * Flags describing how the command parser processes the command.
2389 *
2390 * CMD_DESC_FIXED: The command has a fixed length if this is set,
2391 * a length mask if not set
2392 * CMD_DESC_SKIP: The command is allowed but does not follow the
2393 * standard length encoding for the opcode range in
2394 * which it falls
2395 * CMD_DESC_REJECT: The command is never allowed
2396 * CMD_DESC_REGISTER: The command should be checked against the
2397 * register whitelist for the appropriate ring
2398 * CMD_DESC_MASTER: The command is allowed if the submitting process
2399 * is the DRM master
2400 */
2401 u32 flags;
2402 #define CMD_DESC_FIXED (1<<0)
2403 #define CMD_DESC_SKIP (1<<1)
2404 #define CMD_DESC_REJECT (1<<2)
2405 #define CMD_DESC_REGISTER (1<<3)
2406 #define CMD_DESC_BITMASK (1<<4)
2407 #define CMD_DESC_MASTER (1<<5)
2408
2409 /*
2410 * The command's unique identification bits and the bitmask to get them.
2411 * This isn't strictly the opcode field as defined in the spec and may
2412 * also include type, subtype, and/or subop fields.
2413 */
2414 struct {
2415 u32 value;
2416 u32 mask;
2417 } cmd;
2418
2419 /*
2420 * The command's length. The command is either fixed length (i.e. does
2421 * not include a length field) or has a length field mask. The flag
2422 * CMD_DESC_FIXED indicates a fixed length. Otherwise, the command has
2423 * a length mask. All command entries in a command table must include
2424 * length information.
2425 */
2426 union {
2427 u32 fixed;
2428 u32 mask;
2429 } length;
2430
2431 /*
2432 * Describes where to find a register address in the command to check
2433 * against the ring's register whitelist. Only valid if flags has the
2434 * CMD_DESC_REGISTER bit set.
2435 *
2436 * A non-zero step value implies that the command may access multiple
2437 * registers in sequence (e.g. LRI), in that case step gives the
2438 * distance in dwords between individual offset fields.
2439 */
2440 struct {
2441 u32 offset;
2442 u32 mask;
2443 u32 step;
2444 } reg;
2445
2446 #define MAX_CMD_DESC_BITMASKS 3
2447 /*
2448 * Describes command checks where a particular dword is masked and
2449 * compared against an expected value. If the command does not match
2450 * the expected value, the parser rejects it. Only valid if flags has
2451 * the CMD_DESC_BITMASK bit set. Only entries where mask is non-zero
2452 * are valid.
2453 *
2454 * If the check specifies a non-zero condition_mask then the parser
2455 * only performs the check when the bits specified by condition_mask
2456 * are non-zero.
2457 */
2458 struct {
2459 u32 offset;
2460 u32 mask;
2461 u32 expected;
2462 u32 condition_offset;
2463 u32 condition_mask;
2464 } bits[MAX_CMD_DESC_BITMASKS];
2465 };
2466
2467 /*
2468 * A table of commands requiring special handling by the command parser.
2469 *
2470 * Each ring has an array of tables. Each table consists of an array of command
2471 * descriptors, which must be sorted with command opcodes in ascending order.
2472 */
2473 struct drm_i915_cmd_table {
2474 const struct drm_i915_cmd_descriptor *table;
2475 int count;
2476 };
2477
2478 /* Note that the (struct drm_i915_private *) cast is just to shut up gcc. */
2479 #define __I915__(p) ({ \
2480 struct drm_i915_private *__p; \
2481 if (__builtin_types_compatible_p(typeof(*p), struct drm_i915_private)) \
2482 __p = (struct drm_i915_private *)p; \
2483 else if (__builtin_types_compatible_p(typeof(*p), struct drm_device)) \
2484 __p = to_i915((struct drm_device *)p); \
2485 else \
2486 BUILD_BUG(); \
2487 __p; \
2488 })
2489 #define INTEL_INFO(p) (&__I915__(p)->info)
2490 #define INTEL_DEVID(p) (INTEL_INFO(p)->device_id)
2491 #define INTEL_REVID(p) (__I915__(p)->dev->pdev->revision)
2492
2493 #define REVID_FOREVER 0xff
2494 /*
2495 * Return true if revision is in range [since,until] inclusive.
2496 *
2497 * Use 0 for open-ended since, and REVID_FOREVER for open-ended until.
2498 */
2499 #define IS_REVID(p, since, until) \
2500 (INTEL_REVID(p) >= (since) && INTEL_REVID(p) <= (until))
2501
2502 #define IS_I830(dev) (INTEL_DEVID(dev) == 0x3577)
2503 #define IS_845G(dev) (INTEL_DEVID(dev) == 0x2562)
2504 #define IS_I85X(dev) (INTEL_INFO(dev)->is_i85x)
2505 #define IS_I865G(dev) (INTEL_DEVID(dev) == 0x2572)
2506 #define IS_I915G(dev) (INTEL_INFO(dev)->is_i915g)
2507 #define IS_I915GM(dev) (INTEL_DEVID(dev) == 0x2592)
2508 #define IS_I945G(dev) (INTEL_DEVID(dev) == 0x2772)
2509 #define IS_I945GM(dev) (INTEL_INFO(dev)->is_i945gm)
2510 #define IS_BROADWATER(dev) (INTEL_INFO(dev)->is_broadwater)
2511 #define IS_CRESTLINE(dev) (INTEL_INFO(dev)->is_crestline)
2512 #define IS_GM45(dev) (INTEL_DEVID(dev) == 0x2A42)
2513 #define IS_G4X(dev) (INTEL_INFO(dev)->is_g4x)
2514 #define IS_PINEVIEW_G(dev) (INTEL_DEVID(dev) == 0xa001)
2515 #define IS_PINEVIEW_M(dev) (INTEL_DEVID(dev) == 0xa011)
2516 #define IS_PINEVIEW(dev) (INTEL_INFO(dev)->is_pineview)
2517 #define IS_G33(dev) (INTEL_INFO(dev)->is_g33)
2518 #define IS_IRONLAKE_M(dev) (INTEL_DEVID(dev) == 0x0046)
2519 #define IS_IVYBRIDGE(dev) (INTEL_INFO(dev)->is_ivybridge)
2520 #define IS_IVB_GT1(dev) (INTEL_DEVID(dev) == 0x0156 || \
2521 INTEL_DEVID(dev) == 0x0152 || \
2522 INTEL_DEVID(dev) == 0x015a)
2523 #define IS_VALLEYVIEW(dev) (INTEL_INFO(dev)->is_valleyview)
2524 #define IS_CHERRYVIEW(dev) (INTEL_INFO(dev)->is_cherryview)
2525 #define IS_HASWELL(dev) (INTEL_INFO(dev)->is_haswell)
2526 #define IS_BROADWELL(dev) (!INTEL_INFO(dev)->is_cherryview && IS_GEN8(dev))
2527 #define IS_SKYLAKE(dev) (INTEL_INFO(dev)->is_skylake)
2528 #define IS_BROXTON(dev) (INTEL_INFO(dev)->is_broxton)
2529 #define IS_KABYLAKE(dev) (INTEL_INFO(dev)->is_kabylake)
2530 #define IS_MOBILE(dev) (INTEL_INFO(dev)->is_mobile)
2531 #define IS_HSW_EARLY_SDV(dev) (IS_HASWELL(dev) && \
2532 (INTEL_DEVID(dev) & 0xFF00) == 0x0C00)
2533 #define IS_BDW_ULT(dev) (IS_BROADWELL(dev) && \
2534 ((INTEL_DEVID(dev) & 0xf) == 0x6 || \
2535 (INTEL_DEVID(dev) & 0xf) == 0xb || \
2536 (INTEL_DEVID(dev) & 0xf) == 0xe))
2537 /* ULX machines are also considered ULT. */
2538 #define IS_BDW_ULX(dev) (IS_BROADWELL(dev) && \
2539 (INTEL_DEVID(dev) & 0xf) == 0xe)
2540 #define IS_BDW_GT3(dev) (IS_BROADWELL(dev) && \
2541 (INTEL_DEVID(dev) & 0x00F0) == 0x0020)
2542 #define IS_HSW_ULT(dev) (IS_HASWELL(dev) && \
2543 (INTEL_DEVID(dev) & 0xFF00) == 0x0A00)
2544 #define IS_HSW_GT3(dev) (IS_HASWELL(dev) && \
2545 (INTEL_DEVID(dev) & 0x00F0) == 0x0020)
2546 /* ULX machines are also considered ULT. */
2547 #define IS_HSW_ULX(dev) (INTEL_DEVID(dev) == 0x0A0E || \
2548 INTEL_DEVID(dev) == 0x0A1E)
2549 #define IS_SKL_ULT(dev) (INTEL_DEVID(dev) == 0x1906 || \
2550 INTEL_DEVID(dev) == 0x1913 || \
2551 INTEL_DEVID(dev) == 0x1916 || \
2552 INTEL_DEVID(dev) == 0x1921 || \
2553 INTEL_DEVID(dev) == 0x1926)
2554 #define IS_SKL_ULX(dev) (INTEL_DEVID(dev) == 0x190E || \
2555 INTEL_DEVID(dev) == 0x1915 || \
2556 INTEL_DEVID(dev) == 0x191E)
2557 #define IS_KBL_ULT(dev) (INTEL_DEVID(dev) == 0x5906 || \
2558 INTEL_DEVID(dev) == 0x5913 || \
2559 INTEL_DEVID(dev) == 0x5916 || \
2560 INTEL_DEVID(dev) == 0x5921 || \
2561 INTEL_DEVID(dev) == 0x5926)
2562 #define IS_KBL_ULX(dev) (INTEL_DEVID(dev) == 0x590E || \
2563 INTEL_DEVID(dev) == 0x5915 || \
2564 INTEL_DEVID(dev) == 0x591E)
2565 #define IS_SKL_GT3(dev) (IS_SKYLAKE(dev) && \
2566 (INTEL_DEVID(dev) & 0x00F0) == 0x0020)
2567 #define IS_SKL_GT4(dev) (IS_SKYLAKE(dev) && \
2568 (INTEL_DEVID(dev) & 0x00F0) == 0x0030)
2569
2570 #define IS_PRELIMINARY_HW(intel_info) ((intel_info)->is_preliminary)
2571
2572 #define SKL_REVID_A0 0x0
2573 #define SKL_REVID_B0 0x1
2574 #define SKL_REVID_C0 0x2
2575 #define SKL_REVID_D0 0x3
2576 #define SKL_REVID_E0 0x4
2577 #define SKL_REVID_F0 0x5
2578
2579 #define IS_SKL_REVID(p, since, until) (IS_SKYLAKE(p) && IS_REVID(p, since, until))
2580
2581 #define BXT_REVID_A0 0x0
2582 #define BXT_REVID_A1 0x1
2583 #define BXT_REVID_B0 0x3
2584 #define BXT_REVID_C0 0x9
2585
2586 #define IS_BXT_REVID(p, since, until) (IS_BROXTON(p) && IS_REVID(p, since, until))
2587
2588 /*
2589 * The genX designation typically refers to the render engine, so render
2590 * capability related checks should use IS_GEN, while display and other checks
2591 * have their own (e.g. HAS_PCH_SPLIT for ILK+ display, IS_foo for particular
2592 * chips, etc.).
2593 */
2594 #define IS_GEN2(dev) (INTEL_INFO(dev)->gen == 2)
2595 #define IS_GEN3(dev) (INTEL_INFO(dev)->gen == 3)
2596 #define IS_GEN4(dev) (INTEL_INFO(dev)->gen == 4)
2597 #define IS_GEN5(dev) (INTEL_INFO(dev)->gen == 5)
2598 #define IS_GEN6(dev) (INTEL_INFO(dev)->gen == 6)
2599 #define IS_GEN7(dev) (INTEL_INFO(dev)->gen == 7)
2600 #define IS_GEN8(dev) (INTEL_INFO(dev)->gen == 8)
2601 #define IS_GEN9(dev) (INTEL_INFO(dev)->gen == 9)
2602
2603 #define RENDER_RING (1<<RCS)
2604 #define BSD_RING (1<<VCS)
2605 #define BLT_RING (1<<BCS)
2606 #define VEBOX_RING (1<<VECS)
2607 #define BSD2_RING (1<<VCS2)
2608 #define ALL_ENGINES (~0)
2609
2610 #define HAS_BSD(dev) (INTEL_INFO(dev)->ring_mask & BSD_RING)
2611 #define HAS_BSD2(dev) (INTEL_INFO(dev)->ring_mask & BSD2_RING)
2612 #define HAS_BLT(dev) (INTEL_INFO(dev)->ring_mask & BLT_RING)
2613 #define HAS_VEBOX(dev) (INTEL_INFO(dev)->ring_mask & VEBOX_RING)
2614 #define HAS_LLC(dev) (INTEL_INFO(dev)->has_llc)
2615 #define HAS_SNOOP(dev) (INTEL_INFO(dev)->has_snoop)
2616 #define HAS_WT(dev) ((IS_HASWELL(dev) || IS_BROADWELL(dev)) && \
2617 __I915__(dev)->ellc_size)
2618 #define I915_NEED_GFX_HWS(dev) (INTEL_INFO(dev)->need_gfx_hws)
2619
2620 #define HAS_HW_CONTEXTS(dev) (INTEL_INFO(dev)->gen >= 6)
2621 #define HAS_LOGICAL_RING_CONTEXTS(dev) (INTEL_INFO(dev)->gen >= 8)
2622 #define USES_PPGTT(dev) (i915.enable_ppgtt)
2623 #define USES_FULL_PPGTT(dev) (i915.enable_ppgtt >= 2)
2624 #define USES_FULL_48BIT_PPGTT(dev) (i915.enable_ppgtt == 3)
2625
2626 #define HAS_OVERLAY(dev) (INTEL_INFO(dev)->has_overlay)
2627 #define OVERLAY_NEEDS_PHYSICAL(dev) (INTEL_INFO(dev)->overlay_needs_physical)
2628
2629 /* Early gen2 have a totally busted CS tlb and require pinned batches. */
2630 #define HAS_BROKEN_CS_TLB(dev) (IS_I830(dev) || IS_845G(dev))
2631
2632 /* WaRsDisableCoarsePowerGating:skl,bxt */
2633 #define NEEDS_WaRsDisableCoarsePowerGating(dev) (IS_BXT_REVID(dev, 0, BXT_REVID_A1) || \
2634 ((IS_SKL_GT3(dev) || IS_SKL_GT4(dev)) && \
2635 IS_SKL_REVID(dev, 0, SKL_REVID_F0)))
2636 /*
2637 * dp aux and gmbus irq on gen4 seems to be able to generate legacy interrupts
2638 * even when in MSI mode. This results in spurious interrupt warnings if the
2639 * legacy irq no. is shared with another device. The kernel then disables that
2640 * interrupt source and so prevents the other device from working properly.
2641 */
2642 #define HAS_AUX_IRQ(dev) (INTEL_INFO(dev)->gen >= 5)
2643 #define HAS_GMBUS_IRQ(dev) (INTEL_INFO(dev)->gen >= 5)
2644
2645 /* With the 945 and later, Y tiling got adjusted so that it was 32 128-byte
2646 * rows, which changed the alignment requirements and fence programming.
2647 */
2648 #define HAS_128_BYTE_Y_TILING(dev) (!IS_GEN2(dev) && !(IS_I915G(dev) || \
2649 IS_I915GM(dev)))
2650 #define SUPPORTS_TV(dev) (INTEL_INFO(dev)->supports_tv)
2651 #define I915_HAS_HOTPLUG(dev) (INTEL_INFO(dev)->has_hotplug)
2652
2653 #define HAS_FW_BLC(dev) (INTEL_INFO(dev)->gen > 2)
2654 #define HAS_PIPE_CXSR(dev) (INTEL_INFO(dev)->has_pipe_cxsr)
2655 #define HAS_FBC(dev) (INTEL_INFO(dev)->has_fbc)
2656
2657 #define HAS_IPS(dev) (IS_HSW_ULT(dev) || IS_BROADWELL(dev))
2658
2659 #define HAS_DP_MST(dev) (IS_HASWELL(dev) || IS_BROADWELL(dev) || \
2660 INTEL_INFO(dev)->gen >= 9)
2661
2662 #define HAS_DDI(dev) (INTEL_INFO(dev)->has_ddi)
2663 #define HAS_FPGA_DBG_UNCLAIMED(dev) (INTEL_INFO(dev)->has_fpga_dbg)
2664 #define HAS_PSR(dev) (IS_HASWELL(dev) || IS_BROADWELL(dev) || \
2665 IS_VALLEYVIEW(dev) || IS_CHERRYVIEW(dev) || \
2666 IS_SKYLAKE(dev) || IS_KABYLAKE(dev))
2667 #define HAS_RUNTIME_PM(dev) (IS_GEN6(dev) || IS_HASWELL(dev) || \
2668 IS_BROADWELL(dev) || IS_VALLEYVIEW(dev) || \
2669 IS_CHERRYVIEW(dev) || IS_SKYLAKE(dev) || \
2670 IS_KABYLAKE(dev))
2671 #define HAS_RC6(dev) (INTEL_INFO(dev)->gen >= 6)
2672 #define HAS_RC6p(dev) (INTEL_INFO(dev)->gen == 6 || IS_IVYBRIDGE(dev))
2673
2674 #define HAS_CSR(dev) (IS_GEN9(dev))
2675
2676 #define HAS_GUC_UCODE(dev) (IS_GEN9(dev) && !IS_KABYLAKE(dev))
2677 #define HAS_GUC_SCHED(dev) (IS_GEN9(dev) && !IS_KABYLAKE(dev))
2678
2679 #define HAS_RESOURCE_STREAMER(dev) (IS_HASWELL(dev) || \
2680 INTEL_INFO(dev)->gen >= 8)
2681
2682 #define HAS_CORE_RING_FREQ(dev) (INTEL_INFO(dev)->gen >= 6 && \
2683 !IS_VALLEYVIEW(dev) && !IS_CHERRYVIEW(dev) && \
2684 !IS_BROXTON(dev))
2685
2686 #define INTEL_PCH_DEVICE_ID_MASK 0xff00
2687 #define INTEL_PCH_IBX_DEVICE_ID_TYPE 0x3b00
2688 #define INTEL_PCH_CPT_DEVICE_ID_TYPE 0x1c00
2689 #define INTEL_PCH_PPT_DEVICE_ID_TYPE 0x1e00
2690 #define INTEL_PCH_LPT_DEVICE_ID_TYPE 0x8c00
2691 #define INTEL_PCH_LPT_LP_DEVICE_ID_TYPE 0x9c00
2692 #define INTEL_PCH_SPT_DEVICE_ID_TYPE 0xA100
2693 #define INTEL_PCH_SPT_LP_DEVICE_ID_TYPE 0x9D00
2694 #define INTEL_PCH_P2X_DEVICE_ID_TYPE 0x7100
2695 #define INTEL_PCH_P3X_DEVICE_ID_TYPE 0x7000
2696 #define INTEL_PCH_QEMU_DEVICE_ID_TYPE 0x2900 /* qemu q35 has 2918 */
2697
2698 #define INTEL_PCH_TYPE(dev) (__I915__(dev)->pch_type)
2699 #define HAS_PCH_SPT(dev) (INTEL_PCH_TYPE(dev) == PCH_SPT)
2700 #define HAS_PCH_LPT(dev) (INTEL_PCH_TYPE(dev) == PCH_LPT)
2701 #define HAS_PCH_LPT_LP(dev) (__I915__(dev)->pch_id == INTEL_PCH_LPT_LP_DEVICE_ID_TYPE)
2702 #define HAS_PCH_LPT_H(dev) (__I915__(dev)->pch_id == INTEL_PCH_LPT_DEVICE_ID_TYPE)
2703 #define HAS_PCH_CPT(dev) (INTEL_PCH_TYPE(dev) == PCH_CPT)
2704 #define HAS_PCH_IBX(dev) (INTEL_PCH_TYPE(dev) == PCH_IBX)
2705 #define HAS_PCH_NOP(dev) (INTEL_PCH_TYPE(dev) == PCH_NOP)
2706 #define HAS_PCH_SPLIT(dev) (INTEL_PCH_TYPE(dev) != PCH_NONE)
2707
2708 #define HAS_GMCH_DISPLAY(dev) (INTEL_INFO(dev)->gen < 5 || \
2709 IS_VALLEYVIEW(dev) || IS_CHERRYVIEW(dev))
2710
2711 /* DPF == dynamic parity feature */
2712 #define HAS_L3_DPF(dev) (IS_IVYBRIDGE(dev) || IS_HASWELL(dev))
2713 #define NUM_L3_SLICES(dev) (IS_HSW_GT3(dev) ? 2 : HAS_L3_DPF(dev))
2714
2715 #define GT_FREQUENCY_MULTIPLIER 50
2716 #define GEN9_FREQ_SCALER 3
2717
2718 #include "i915_trace.h"
2719
2720 extern const struct drm_ioctl_desc i915_ioctls[];
2721 extern int i915_max_ioctl;
2722
2723 extern int i915_suspend_switcheroo(struct drm_device *dev, pm_message_t state);
2724 extern int i915_resume_switcheroo(struct drm_device *dev);
2725
2726 /* i915_dma.c */
2727 void __printf(3, 4)
2728 __i915_printk(struct drm_i915_private *dev_priv, const char *level,
2729 const char *fmt, ...);
2730
2731 #define i915_report_error(dev_priv, fmt, ...) \
2732 __i915_printk(dev_priv, KERN_ERR, fmt, ##__VA_ARGS__)
2733
2734 extern int i915_driver_load(struct drm_device *, unsigned long flags);
2735 extern int i915_driver_unload(struct drm_device *);
2736 extern int i915_driver_open(struct drm_device *dev, struct drm_file *file);
2737 extern void i915_driver_lastclose(struct drm_device * dev);
2738 extern void i915_driver_preclose(struct drm_device *dev,
2739 struct drm_file *file);
2740 extern void i915_driver_postclose(struct drm_device *dev,
2741 struct drm_file *file);
2742 #ifdef CONFIG_COMPAT
2743 extern long i915_compat_ioctl(struct file *filp, unsigned int cmd,
2744 unsigned long arg);
2745 #endif
2746 extern int intel_gpu_reset(struct drm_device *dev, u32 engine_mask);
2747 extern bool intel_has_gpu_reset(struct drm_device *dev);
2748 extern int i915_reset(struct drm_device *dev);
2749 extern void intel_engine_init_hangcheck(struct intel_engine_cs *engine);
2750 extern unsigned long i915_chipset_val(struct drm_i915_private *dev_priv);
2751 extern unsigned long i915_mch_val(struct drm_i915_private *dev_priv);
2752 extern unsigned long i915_gfx_val(struct drm_i915_private *dev_priv);
2753 extern void i915_update_gfx_val(struct drm_i915_private *dev_priv);
2754 int vlv_force_gfx_clock(struct drm_i915_private *dev_priv, bool on);
2755
2756 /* intel_hotplug.c */
2757 void intel_hpd_irq_handler(struct drm_device *dev, u32 pin_mask, u32 long_mask);
2758 void intel_hpd_init(struct drm_i915_private *dev_priv);
2759 void intel_hpd_init_work(struct drm_i915_private *dev_priv);
2760 void intel_hpd_cancel_work(struct drm_i915_private *dev_priv);
2761 bool intel_hpd_pin_to_port(enum hpd_pin pin, enum port *port);
2762
2763 /* i915_irq.c */
2764 void i915_queue_hangcheck(struct drm_device *dev);
2765 __printf(3, 4)
2766 void i915_handle_error(struct drm_device *dev, u32 engine_mask,
2767 const char *fmt, ...);
2768
2769 extern void intel_irq_init(struct drm_i915_private *dev_priv);
2770 int intel_irq_install(struct drm_i915_private *dev_priv);
2771 void intel_irq_uninstall(struct drm_i915_private *dev_priv);
2772
2773 extern void intel_uncore_sanitize(struct drm_device *dev);
2774 extern void intel_uncore_early_sanitize(struct drm_device *dev,
2775 bool restore_forcewake);
2776 extern void intel_uncore_init(struct drm_device *dev);
2777 extern bool intel_uncore_unclaimed_mmio(struct drm_i915_private *dev_priv);
2778 extern bool intel_uncore_arm_unclaimed_mmio_detection(struct drm_i915_private *dev_priv);
2779 extern void intel_uncore_fini(struct drm_device *dev);
2780 extern void intel_uncore_forcewake_reset(struct drm_device *dev, bool restore);
2781 const char *intel_uncore_forcewake_domain_to_str(const enum forcewake_domain_id id);
2782 void intel_uncore_forcewake_get(struct drm_i915_private *dev_priv,
2783 enum forcewake_domains domains);
2784 void intel_uncore_forcewake_put(struct drm_i915_private *dev_priv,
2785 enum forcewake_domains domains);
2786 /* Like above but the caller must manage the uncore.lock itself.
2787 * Must be used with I915_READ_FW and friends.
2788 */
2789 void intel_uncore_forcewake_get__locked(struct drm_i915_private *dev_priv,
2790 enum forcewake_domains domains);
2791 void intel_uncore_forcewake_put__locked(struct drm_i915_private *dev_priv,
2792 enum forcewake_domains domains);
2793 void assert_forcewakes_inactive(struct drm_i915_private *dev_priv);
2794 static inline bool intel_vgpu_active(struct drm_device *dev)
2795 {
2796 return to_i915(dev)->vgpu.active;
2797 }
2798
2799 void
2800 i915_enable_pipestat(struct drm_i915_private *dev_priv, enum pipe pipe,
2801 u32 status_mask);
2802
2803 void
2804 i915_disable_pipestat(struct drm_i915_private *dev_priv, enum pipe pipe,
2805 u32 status_mask);
2806
2807 void valleyview_enable_display_irqs(struct drm_i915_private *dev_priv);
2808 void valleyview_disable_display_irqs(struct drm_i915_private *dev_priv);
2809 void i915_hotplug_interrupt_update(struct drm_i915_private *dev_priv,
2810 uint32_t mask,
2811 uint32_t bits);
2812 void ilk_update_display_irq(struct drm_i915_private *dev_priv,
2813 uint32_t interrupt_mask,
2814 uint32_t enabled_irq_mask);
2815 static inline void
2816 ilk_enable_display_irq(struct drm_i915_private *dev_priv, uint32_t bits)
2817 {
2818 ilk_update_display_irq(dev_priv, bits, bits);
2819 }
2820 static inline void
2821 ilk_disable_display_irq(struct drm_i915_private *dev_priv, uint32_t bits)
2822 {
2823 ilk_update_display_irq(dev_priv, bits, 0);
2824 }
2825 void bdw_update_pipe_irq(struct drm_i915_private *dev_priv,
2826 enum pipe pipe,
2827 uint32_t interrupt_mask,
2828 uint32_t enabled_irq_mask);
2829 static inline void bdw_enable_pipe_irq(struct drm_i915_private *dev_priv,
2830 enum pipe pipe, uint32_t bits)
2831 {
2832 bdw_update_pipe_irq(dev_priv, pipe, bits, bits);
2833 }
2834 static inline void bdw_disable_pipe_irq(struct drm_i915_private *dev_priv,
2835 enum pipe pipe, uint32_t bits)
2836 {
2837 bdw_update_pipe_irq(dev_priv, pipe, bits, 0);
2838 }
2839 void ibx_display_interrupt_update(struct drm_i915_private *dev_priv,
2840 uint32_t interrupt_mask,
2841 uint32_t enabled_irq_mask);
2842 static inline void
2843 ibx_enable_display_interrupt(struct drm_i915_private *dev_priv, uint32_t bits)
2844 {
2845 ibx_display_interrupt_update(dev_priv, bits, bits);
2846 }
2847 static inline void
2848 ibx_disable_display_interrupt(struct drm_i915_private *dev_priv, uint32_t bits)
2849 {
2850 ibx_display_interrupt_update(dev_priv, bits, 0);
2851 }
2852
2853
2854 /* i915_gem.c */
2855 int i915_gem_create_ioctl(struct drm_device *dev, void *data,
2856 struct drm_file *file_priv);
2857 int i915_gem_pread_ioctl(struct drm_device *dev, void *data,
2858 struct drm_file *file_priv);
2859 int i915_gem_pwrite_ioctl(struct drm_device *dev, void *data,
2860 struct drm_file *file_priv);
2861 int i915_gem_mmap_ioctl(struct drm_device *dev, void *data,
2862 struct drm_file *file_priv);
2863 int i915_gem_mmap_gtt_ioctl(struct drm_device *dev, void *data,
2864 struct drm_file *file_priv);
2865 int i915_gem_set_domain_ioctl(struct drm_device *dev, void *data,
2866 struct drm_file *file_priv);
2867 int i915_gem_sw_finish_ioctl(struct drm_device *dev, void *data,
2868 struct drm_file *file_priv);
2869 void i915_gem_execbuffer_move_to_active(struct list_head *vmas,
2870 struct drm_i915_gem_request *req);
2871 void i915_gem_execbuffer_retire_commands(struct i915_execbuffer_params *params);
2872 int i915_gem_ringbuffer_submission(struct i915_execbuffer_params *params,
2873 struct drm_i915_gem_execbuffer2 *args,
2874 struct list_head *vmas);
2875 int i915_gem_execbuffer(struct drm_device *dev, void *data,
2876 struct drm_file *file_priv);
2877 int i915_gem_execbuffer2(struct drm_device *dev, void *data,
2878 struct drm_file *file_priv);
2879 int i915_gem_busy_ioctl(struct drm_device *dev, void *data,
2880 struct drm_file *file_priv);
2881 int i915_gem_get_caching_ioctl(struct drm_device *dev, void *data,
2882 struct drm_file *file);
2883 int i915_gem_set_caching_ioctl(struct drm_device *dev, void *data,
2884 struct drm_file *file);
2885 int i915_gem_throttle_ioctl(struct drm_device *dev, void *data,
2886 struct drm_file *file_priv);
2887 int i915_gem_madvise_ioctl(struct drm_device *dev, void *data,
2888 struct drm_file *file_priv);
2889 int i915_gem_set_tiling(struct drm_device *dev, void *data,
2890 struct drm_file *file_priv);
2891 int i915_gem_get_tiling(struct drm_device *dev, void *data,
2892 struct drm_file *file_priv);
2893 int i915_gem_init_userptr(struct drm_device *dev);
2894 int i915_gem_userptr_ioctl(struct drm_device *dev, void *data,
2895 struct drm_file *file);
2896 int i915_gem_get_aperture_ioctl(struct drm_device *dev, void *data,
2897 struct drm_file *file_priv);
2898 int i915_gem_wait_ioctl(struct drm_device *dev, void *data,
2899 struct drm_file *file_priv);
2900 void i915_gem_load_init(struct drm_device *dev);
2901 void i915_gem_load_cleanup(struct drm_device *dev);
2902 void i915_gem_load_init_fences(struct drm_i915_private *dev_priv);
2903 void *i915_gem_object_alloc(struct drm_device *dev);
2904 void i915_gem_object_free(struct drm_i915_gem_object *obj);
2905 void i915_gem_object_init(struct drm_i915_gem_object *obj,
2906 const struct drm_i915_gem_object_ops *ops);
2907 struct drm_i915_gem_object *i915_gem_alloc_object(struct drm_device *dev,
2908 size_t size);
2909 struct drm_i915_gem_object *i915_gem_object_create_from_data(
2910 struct drm_device *dev, const void *data, size_t size);
2911 void i915_gem_free_object(struct drm_gem_object *obj);
2912 void i915_gem_vma_destroy(struct i915_vma *vma);
2913
2914 /* Flags used by pin/bind&friends. */
2915 #define PIN_MAPPABLE (1<<0)
2916 #define PIN_NONBLOCK (1<<1)
2917 #define PIN_GLOBAL (1<<2)
2918 #define PIN_OFFSET_BIAS (1<<3)
2919 #define PIN_USER (1<<4)
2920 #define PIN_UPDATE (1<<5)
2921 #define PIN_ZONE_4G (1<<6)
2922 #define PIN_HIGH (1<<7)
2923 #define PIN_OFFSET_FIXED (1<<8)
2924 #define PIN_OFFSET_MASK (~4095)
2925 int __must_check
2926 i915_gem_object_pin(struct drm_i915_gem_object *obj,
2927 struct i915_address_space *vm,
2928 uint32_t alignment,
2929 uint64_t flags);
2930 int __must_check
2931 i915_gem_object_ggtt_pin(struct drm_i915_gem_object *obj,
2932 const struct i915_ggtt_view *view,
2933 uint32_t alignment,
2934 uint64_t flags);
2935
2936 int i915_vma_bind(struct i915_vma *vma, enum i915_cache_level cache_level,
2937 u32 flags);
2938 void __i915_vma_set_map_and_fenceable(struct i915_vma *vma);
2939 int __must_check i915_vma_unbind(struct i915_vma *vma);
2940 /*
2941 * BEWARE: Do not use the function below unless you can _absolutely_
2942 * _guarantee_ VMA in question is _not in use_ anywhere.
2943 */
2944 int __must_check __i915_vma_unbind_no_wait(struct i915_vma *vma);
2945 int i915_gem_object_put_pages(struct drm_i915_gem_object *obj);
2946 void i915_gem_release_all_mmaps(struct drm_i915_private *dev_priv);
2947 void i915_gem_release_mmap(struct drm_i915_gem_object *obj);
2948
2949 int i915_gem_obj_prepare_shmem_read(struct drm_i915_gem_object *obj,
2950 int *needs_clflush);
2951
2952 int __must_check i915_gem_object_get_pages(struct drm_i915_gem_object *obj);
2953
2954 static inline int __sg_page_count(struct scatterlist *sg)
2955 {
2956 return sg->length >> PAGE_SHIFT;
2957 }
2958
2959 struct page *
2960 i915_gem_object_get_dirty_page(struct drm_i915_gem_object *obj, int n);
2961
2962 static inline struct page *
2963 i915_gem_object_get_page(struct drm_i915_gem_object *obj, int n)
2964 {
2965 if (WARN_ON(n >= obj->base.size >> PAGE_SHIFT))
2966 return NULL;
2967
2968 if (n < obj->get_page.last) {
2969 obj->get_page.sg = obj->pages->sgl;
2970 obj->get_page.last = 0;
2971 }
2972
2973 while (obj->get_page.last + __sg_page_count(obj->get_page.sg) <= n) {
2974 obj->get_page.last += __sg_page_count(obj->get_page.sg++);
2975 if (unlikely(sg_is_chain(obj->get_page.sg)))
2976 obj->get_page.sg = sg_chain_ptr(obj->get_page.sg);
2977 }
2978
2979 return nth_page(sg_page(obj->get_page.sg), n - obj->get_page.last);
2980 }
2981
2982 static inline void i915_gem_object_pin_pages(struct drm_i915_gem_object *obj)
2983 {
2984 BUG_ON(obj->pages == NULL);
2985 obj->pages_pin_count++;
2986 }
2987 static inline void i915_gem_object_unpin_pages(struct drm_i915_gem_object *obj)
2988 {
2989 BUG_ON(obj->pages_pin_count == 0);
2990 obj->pages_pin_count--;
2991 }
2992
2993 int __must_check i915_mutex_lock_interruptible(struct drm_device *dev);
2994 int i915_gem_object_sync(struct drm_i915_gem_object *obj,
2995 struct intel_engine_cs *to,
2996 struct drm_i915_gem_request **to_req);
2997 void i915_vma_move_to_active(struct i915_vma *vma,
2998 struct drm_i915_gem_request *req);
2999 int i915_gem_dumb_create(struct drm_file *file_priv,
3000 struct drm_device *dev,
3001 struct drm_mode_create_dumb *args);
3002 int i915_gem_mmap_gtt(struct drm_file *file_priv, struct drm_device *dev,
3003 uint32_t handle, uint64_t *offset);
3004 /**
3005 * Returns true if seq1 is later than seq2.
3006 */
3007 static inline bool
3008 i915_seqno_passed(uint32_t seq1, uint32_t seq2)
3009 {
3010 return (int32_t)(seq1 - seq2) >= 0;
3011 }
3012
3013 static inline bool i915_gem_request_started(struct drm_i915_gem_request *req,
3014 bool lazy_coherency)
3015 {
3016 u32 seqno = req->engine->get_seqno(req->engine, lazy_coherency);
3017 return i915_seqno_passed(seqno, req->previous_seqno);
3018 }
3019
3020 static inline bool i915_gem_request_completed(struct drm_i915_gem_request *req,
3021 bool lazy_coherency)
3022 {
3023 u32 seqno = req->engine->get_seqno(req->engine, lazy_coherency);
3024 return i915_seqno_passed(seqno, req->seqno);
3025 }
3026
3027 int __must_check i915_gem_get_seqno(struct drm_device *dev, u32 *seqno);
3028 int __must_check i915_gem_set_seqno(struct drm_device *dev, u32 seqno);
3029
3030 struct drm_i915_gem_request *
3031 i915_gem_find_active_request(struct intel_engine_cs *engine);
3032
3033 bool i915_gem_retire_requests(struct drm_device *dev);
3034 void i915_gem_retire_requests_ring(struct intel_engine_cs *engine);
3035 int __must_check i915_gem_check_wedge(struct i915_gpu_error *error,
3036 bool interruptible);
3037
3038 static inline bool i915_reset_in_progress(struct i915_gpu_error *error)
3039 {
3040 return unlikely(atomic_read(&error->reset_counter)
3041 & (I915_RESET_IN_PROGRESS_FLAG | I915_WEDGED));
3042 }
3043
3044 static inline bool i915_terminally_wedged(struct i915_gpu_error *error)
3045 {
3046 return atomic_read(&error->reset_counter) & I915_WEDGED;
3047 }
3048
3049 static inline u32 i915_reset_count(struct i915_gpu_error *error)
3050 {
3051 return ((atomic_read(&error->reset_counter) & ~I915_WEDGED) + 1) / 2;
3052 }
3053
3054 static inline bool i915_stop_ring_allow_ban(struct drm_i915_private *dev_priv)
3055 {
3056 return dev_priv->gpu_error.stop_rings == 0 ||
3057 dev_priv->gpu_error.stop_rings & I915_STOP_RING_ALLOW_BAN;
3058 }
3059
3060 static inline bool i915_stop_ring_allow_warn(struct drm_i915_private *dev_priv)
3061 {
3062 return dev_priv->gpu_error.stop_rings == 0 ||
3063 dev_priv->gpu_error.stop_rings & I915_STOP_RING_ALLOW_WARN;
3064 }
3065
3066 void i915_gem_reset(struct drm_device *dev);
3067 bool i915_gem_clflush_object(struct drm_i915_gem_object *obj, bool force);
3068 int __must_check i915_gem_init(struct drm_device *dev);
3069 int i915_gem_init_engines(struct drm_device *dev);
3070 int __must_check i915_gem_init_hw(struct drm_device *dev);
3071 int i915_gem_l3_remap(struct drm_i915_gem_request *req, int slice);
3072 void i915_gem_init_swizzling(struct drm_device *dev);
3073 void i915_gem_cleanup_engines(struct drm_device *dev);
3074 int __must_check i915_gpu_idle(struct drm_device *dev);
3075 int __must_check i915_gem_suspend(struct drm_device *dev);
3076 void __i915_add_request(struct drm_i915_gem_request *req,
3077 struct drm_i915_gem_object *batch_obj,
3078 bool flush_caches);
3079 #define i915_add_request(req) \
3080 __i915_add_request(req, NULL, true)
3081 #define i915_add_request_no_flush(req) \
3082 __i915_add_request(req, NULL, false)
3083 int __i915_wait_request(struct drm_i915_gem_request *req,
3084 unsigned reset_counter,
3085 bool interruptible,
3086 s64 *timeout,
3087 struct intel_rps_client *rps);
3088 int __must_check i915_wait_request(struct drm_i915_gem_request *req);
3089 int i915_gem_fault(struct vm_area_struct *vma, struct vm_fault *vmf);
3090 int __must_check
3091 i915_gem_object_wait_rendering(struct drm_i915_gem_object *obj,
3092 bool readonly);
3093 int __must_check
3094 i915_gem_object_set_to_gtt_domain(struct drm_i915_gem_object *obj,
3095 bool write);
3096 int __must_check
3097 i915_gem_object_set_to_cpu_domain(struct drm_i915_gem_object *obj, bool write);
3098 int __must_check
3099 i915_gem_object_pin_to_display_plane(struct drm_i915_gem_object *obj,
3100 u32 alignment,
3101 const struct i915_ggtt_view *view);
3102 void i915_gem_object_unpin_from_display_plane(struct drm_i915_gem_object *obj,
3103 const struct i915_ggtt_view *view);
3104 int i915_gem_object_attach_phys(struct drm_i915_gem_object *obj,
3105 int align);
3106 int i915_gem_open(struct drm_device *dev, struct drm_file *file);
3107 void i915_gem_release(struct drm_device *dev, struct drm_file *file);
3108
3109 uint32_t
3110 i915_gem_get_gtt_size(struct drm_device *dev, uint32_t size, int tiling_mode);
3111 uint32_t
3112 i915_gem_get_gtt_alignment(struct drm_device *dev, uint32_t size,
3113 int tiling_mode, bool fenced);
3114
3115 int i915_gem_object_set_cache_level(struct drm_i915_gem_object *obj,
3116 enum i915_cache_level cache_level);
3117
3118 struct drm_gem_object *i915_gem_prime_import(struct drm_device *dev,
3119 struct dma_buf *dma_buf);
3120
3121 struct dma_buf *i915_gem_prime_export(struct drm_device *dev,
3122 struct drm_gem_object *gem_obj, int flags);
3123
3124 u64 i915_gem_obj_ggtt_offset_view(struct drm_i915_gem_object *o,
3125 const struct i915_ggtt_view *view);
3126 u64 i915_gem_obj_offset(struct drm_i915_gem_object *o,
3127 struct i915_address_space *vm);
3128 static inline u64
3129 i915_gem_obj_ggtt_offset(struct drm_i915_gem_object *o)
3130 {
3131 return i915_gem_obj_ggtt_offset_view(o, &i915_ggtt_view_normal);
3132 }
3133
3134 bool i915_gem_obj_bound_any(struct drm_i915_gem_object *o);
3135 bool i915_gem_obj_ggtt_bound_view(struct drm_i915_gem_object *o,
3136 const struct i915_ggtt_view *view);
3137 bool i915_gem_obj_bound(struct drm_i915_gem_object *o,
3138 struct i915_address_space *vm);
3139
3140 unsigned long i915_gem_obj_size(struct drm_i915_gem_object *o,
3141 struct i915_address_space *vm);
3142 struct i915_vma *
3143 i915_gem_obj_to_vma(struct drm_i915_gem_object *obj,
3144 struct i915_address_space *vm);
3145 struct i915_vma *
3146 i915_gem_obj_to_ggtt_view(struct drm_i915_gem_object *obj,
3147 const struct i915_ggtt_view *view);
3148
3149 struct i915_vma *
3150 i915_gem_obj_lookup_or_create_vma(struct drm_i915_gem_object *obj,
3151 struct i915_address_space *vm);
3152 struct i915_vma *
3153 i915_gem_obj_lookup_or_create_ggtt_vma(struct drm_i915_gem_object *obj,
3154 const struct i915_ggtt_view *view);
3155
3156 static inline struct i915_vma *
3157 i915_gem_obj_to_ggtt(struct drm_i915_gem_object *obj)
3158 {
3159 return i915_gem_obj_to_ggtt_view(obj, &i915_ggtt_view_normal);
3160 }
3161 bool i915_gem_obj_is_pinned(struct drm_i915_gem_object *obj);
3162
3163 /* Some GGTT VM helpers */
3164 static inline struct i915_hw_ppgtt *
3165 i915_vm_to_ppgtt(struct i915_address_space *vm)
3166 {
3167 WARN_ON(i915_is_ggtt(vm));
3168 return container_of(vm, struct i915_hw_ppgtt, base);
3169 }
3170
3171
3172 static inline bool i915_gem_obj_ggtt_bound(struct drm_i915_gem_object *obj)
3173 {
3174 return i915_gem_obj_ggtt_bound_view(obj, &i915_ggtt_view_normal);
3175 }
3176
3177 static inline unsigned long
3178 i915_gem_obj_ggtt_size(struct drm_i915_gem_object *obj)
3179 {
3180 struct drm_i915_private *dev_priv = to_i915(obj->base.dev);
3181 struct i915_ggtt *ggtt = &dev_priv->ggtt;
3182
3183 return i915_gem_obj_size(obj, &ggtt->base);
3184 }
3185
3186 static inline int __must_check
3187 i915_gem_obj_ggtt_pin(struct drm_i915_gem_object *obj,
3188 uint32_t alignment,
3189 unsigned flags)
3190 {
3191 struct drm_i915_private *dev_priv = to_i915(obj->base.dev);
3192 struct i915_ggtt *ggtt = &dev_priv->ggtt;
3193
3194 return i915_gem_object_pin(obj, &ggtt->base,
3195 alignment, flags | PIN_GLOBAL);
3196 }
3197
3198 static inline int
3199 i915_gem_object_ggtt_unbind(struct drm_i915_gem_object *obj)
3200 {
3201 return i915_vma_unbind(i915_gem_obj_to_ggtt(obj));
3202 }
3203
3204 void i915_gem_object_ggtt_unpin_view(struct drm_i915_gem_object *obj,
3205 const struct i915_ggtt_view *view);
3206 static inline void
3207 i915_gem_object_ggtt_unpin(struct drm_i915_gem_object *obj)
3208 {
3209 i915_gem_object_ggtt_unpin_view(obj, &i915_ggtt_view_normal);
3210 }
3211
3212 /* i915_gem_fence.c */
3213 int __must_check i915_gem_object_get_fence(struct drm_i915_gem_object *obj);
3214 int __must_check i915_gem_object_put_fence(struct drm_i915_gem_object *obj);
3215
3216 bool i915_gem_object_pin_fence(struct drm_i915_gem_object *obj);
3217 void i915_gem_object_unpin_fence(struct drm_i915_gem_object *obj);
3218
3219 void i915_gem_restore_fences(struct drm_device *dev);
3220
3221 void i915_gem_detect_bit_6_swizzle(struct drm_device *dev);
3222 void i915_gem_object_do_bit_17_swizzle(struct drm_i915_gem_object *obj);
3223 void i915_gem_object_save_bit_17_swizzle(struct drm_i915_gem_object *obj);
3224
3225 /* i915_gem_context.c */
3226 int __must_check i915_gem_context_init(struct drm_device *dev);
3227 void i915_gem_context_fini(struct drm_device *dev);
3228 void i915_gem_context_reset(struct drm_device *dev);
3229 int i915_gem_context_open(struct drm_device *dev, struct drm_file *file);
3230 int i915_gem_context_enable(struct drm_i915_gem_request *req);
3231 void i915_gem_context_close(struct drm_device *dev, struct drm_file *file);
3232 int i915_switch_context(struct drm_i915_gem_request *req);
3233 struct intel_context *
3234 i915_gem_context_get(struct drm_i915_file_private *file_priv, u32 id);
3235 void i915_gem_context_free(struct kref *ctx_ref);
3236 struct drm_i915_gem_object *
3237 i915_gem_alloc_context_obj(struct drm_device *dev, size_t size);
3238 static inline void i915_gem_context_reference(struct intel_context *ctx)
3239 {
3240 kref_get(&ctx->ref);
3241 }
3242
3243 static inline void i915_gem_context_unreference(struct intel_context *ctx)
3244 {
3245 kref_put(&ctx->ref, i915_gem_context_free);
3246 }
3247
3248 static inline bool i915_gem_context_is_default(const struct intel_context *c)
3249 {
3250 return c->user_handle == DEFAULT_CONTEXT_HANDLE;
3251 }
3252
3253 int i915_gem_context_create_ioctl(struct drm_device *dev, void *data,
3254 struct drm_file *file);
3255 int i915_gem_context_destroy_ioctl(struct drm_device *dev, void *data,
3256 struct drm_file *file);
3257 int i915_gem_context_getparam_ioctl(struct drm_device *dev, void *data,
3258 struct drm_file *file_priv);
3259 int i915_gem_context_setparam_ioctl(struct drm_device *dev, void *data,
3260 struct drm_file *file_priv);
3261
3262 /* i915_gem_evict.c */
3263 int __must_check i915_gem_evict_something(struct drm_device *dev,
3264 struct i915_address_space *vm,
3265 int min_size,
3266 unsigned alignment,
3267 unsigned cache_level,
3268 unsigned long start,
3269 unsigned long end,
3270 unsigned flags);
3271 int __must_check i915_gem_evict_for_vma(struct i915_vma *target);
3272 int i915_gem_evict_vm(struct i915_address_space *vm, bool do_idle);
3273
3274 /* belongs in i915_gem_gtt.h */
3275 static inline void i915_gem_chipset_flush(struct drm_device *dev)
3276 {
3277 if (INTEL_INFO(dev)->gen < 6)
3278 intel_gtt_chipset_flush();
3279 }
3280
3281 /* i915_gem_stolen.c */
3282 int i915_gem_stolen_insert_node(struct drm_i915_private *dev_priv,
3283 struct drm_mm_node *node, u64 size,
3284 unsigned alignment);
3285 int i915_gem_stolen_insert_node_in_range(struct drm_i915_private *dev_priv,
3286 struct drm_mm_node *node, u64 size,
3287 unsigned alignment, u64 start,
3288 u64 end);
3289 void i915_gem_stolen_remove_node(struct drm_i915_private *dev_priv,
3290 struct drm_mm_node *node);
3291 int i915_gem_init_stolen(struct drm_device *dev);
3292 void i915_gem_cleanup_stolen(struct drm_device *dev);
3293 struct drm_i915_gem_object *
3294 i915_gem_object_create_stolen(struct drm_device *dev, u32 size);
3295 struct drm_i915_gem_object *
3296 i915_gem_object_create_stolen_for_preallocated(struct drm_device *dev,
3297 u32 stolen_offset,
3298 u32 gtt_offset,
3299 u32 size);
3300
3301 /* i915_gem_shrinker.c */
3302 unsigned long i915_gem_shrink(struct drm_i915_private *dev_priv,
3303 unsigned long target,
3304 unsigned flags);
3305 #define I915_SHRINK_PURGEABLE 0x1
3306 #define I915_SHRINK_UNBOUND 0x2
3307 #define I915_SHRINK_BOUND 0x4
3308 #define I915_SHRINK_ACTIVE 0x8
3309 unsigned long i915_gem_shrink_all(struct drm_i915_private *dev_priv);
3310 void i915_gem_shrinker_init(struct drm_i915_private *dev_priv);
3311 void i915_gem_shrinker_cleanup(struct drm_i915_private *dev_priv);
3312
3313
3314 /* i915_gem_tiling.c */
3315 static inline bool i915_gem_object_needs_bit17_swizzle(struct drm_i915_gem_object *obj)
3316 {
3317 struct drm_i915_private *dev_priv = obj->base.dev->dev_private;
3318
3319 return dev_priv->mm.bit_6_swizzle_x == I915_BIT_6_SWIZZLE_9_10_17 &&
3320 obj->tiling_mode != I915_TILING_NONE;
3321 }
3322
3323 /* i915_gem_debug.c */
3324 #if WATCH_LISTS
3325 int i915_verify_lists(struct drm_device *dev);
3326 #else
3327 #define i915_verify_lists(dev) 0
3328 #endif
3329
3330 /* i915_debugfs.c */
3331 int i915_debugfs_init(struct drm_minor *minor);
3332 void i915_debugfs_cleanup(struct drm_minor *minor);
3333 #ifdef CONFIG_DEBUG_FS
3334 int i915_debugfs_connector_add(struct drm_connector *connector);
3335 void intel_display_crc_init(struct drm_device *dev);
3336 #else
3337 static inline int i915_debugfs_connector_add(struct drm_connector *connector)
3338 { return 0; }
3339 static inline void intel_display_crc_init(struct drm_device *dev) {}
3340 #endif
3341
3342 /* i915_gpu_error.c */
3343 __printf(2, 3)
3344 void i915_error_printf(struct drm_i915_error_state_buf *e, const char *f, ...);
3345 int i915_error_state_to_str(struct drm_i915_error_state_buf *estr,
3346 const struct i915_error_state_file_priv *error);
3347 int i915_error_state_buf_init(struct drm_i915_error_state_buf *eb,
3348 struct drm_i915_private *i915,
3349 size_t count, loff_t pos);
3350 static inline void i915_error_state_buf_release(
3351 struct drm_i915_error_state_buf *eb)
3352 {
3353 kfree(eb->buf);
3354 }
3355 void i915_capture_error_state(struct drm_device *dev, u32 engine_mask,
3356 const char *error_msg);
3357 void i915_error_state_get(struct drm_device *dev,
3358 struct i915_error_state_file_priv *error_priv);
3359 void i915_error_state_put(struct i915_error_state_file_priv *error_priv);
3360 void i915_destroy_error_state(struct drm_device *dev);
3361
3362 void i915_get_extra_instdone(struct drm_device *dev, uint32_t *instdone);
3363 const char *i915_cache_level_str(struct drm_i915_private *i915, int type);
3364
3365 /* i915_cmd_parser.c */
3366 int i915_cmd_parser_get_version(void);
3367 int i915_cmd_parser_init_ring(struct intel_engine_cs *engine);
3368 void i915_cmd_parser_fini_ring(struct intel_engine_cs *engine);
3369 bool i915_needs_cmd_parser(struct intel_engine_cs *engine);
3370 int i915_parse_cmds(struct intel_engine_cs *engine,
3371 struct drm_i915_gem_object *batch_obj,
3372 struct drm_i915_gem_object *shadow_batch_obj,
3373 u32 batch_start_offset,
3374 u32 batch_len,
3375 bool is_master);
3376
3377 /* i915_suspend.c */
3378 extern int i915_save_state(struct drm_device *dev);
3379 extern int i915_restore_state(struct drm_device *dev);
3380
3381 /* i915_sysfs.c */
3382 void i915_setup_sysfs(struct drm_device *dev_priv);
3383 void i915_teardown_sysfs(struct drm_device *dev_priv);
3384
3385 /* intel_i2c.c */
3386 extern int intel_setup_gmbus(struct drm_device *dev);
3387 extern void intel_teardown_gmbus(struct drm_device *dev);
3388 extern bool intel_gmbus_is_valid_pin(struct drm_i915_private *dev_priv,
3389 unsigned int pin);
3390
3391 extern struct i2c_adapter *
3392 intel_gmbus_get_adapter(struct drm_i915_private *dev_priv, unsigned int pin);
3393 extern void intel_gmbus_set_speed(struct i2c_adapter *adapter, int speed);
3394 extern void intel_gmbus_force_bit(struct i2c_adapter *adapter, bool force_bit);
3395 static inline bool intel_gmbus_is_forced_bit(struct i2c_adapter *adapter)
3396 {
3397 return container_of(adapter, struct intel_gmbus, adapter)->force_bit;
3398 }
3399 extern void intel_i2c_reset(struct drm_device *dev);
3400
3401 /* intel_bios.c */
3402 int intel_bios_init(struct drm_i915_private *dev_priv);
3403 bool intel_bios_is_valid_vbt(const void *buf, size_t size);
3404 bool intel_bios_is_tv_present(struct drm_i915_private *dev_priv);
3405 bool intel_bios_is_lvds_present(struct drm_i915_private *dev_priv, u8 *i2c_pin);
3406 bool intel_bios_is_port_edp(struct drm_i915_private *dev_priv, enum port port);
3407 bool intel_bios_is_dsi_present(struct drm_i915_private *dev_priv, enum port *port);
3408
3409 /* intel_opregion.c */
3410 #ifdef CONFIG_ACPI
3411 extern int intel_opregion_setup(struct drm_device *dev);
3412 extern void intel_opregion_init(struct drm_device *dev);
3413 extern void intel_opregion_fini(struct drm_device *dev);
3414 extern void intel_opregion_asle_intr(struct drm_device *dev);
3415 extern int intel_opregion_notify_encoder(struct intel_encoder *intel_encoder,
3416 bool enable);
3417 extern int intel_opregion_notify_adapter(struct drm_device *dev,
3418 pci_power_t state);
3419 #else
3420 static inline int intel_opregion_setup(struct drm_device *dev) { return 0; }
3421 static inline void intel_opregion_init(struct drm_device *dev) { return; }
3422 static inline void intel_opregion_fini(struct drm_device *dev) { return; }
3423 static inline void intel_opregion_asle_intr(struct drm_device *dev) { return; }
3424 static inline int
3425 intel_opregion_notify_encoder(struct intel_encoder *intel_encoder, bool enable)
3426 {
3427 return 0;
3428 }
3429 static inline int
3430 intel_opregion_notify_adapter(struct drm_device *dev, pci_power_t state)
3431 {
3432 return 0;
3433 }
3434 #endif
3435
3436 /* intel_acpi.c */
3437 #ifdef CONFIG_ACPI
3438 extern void intel_register_dsm_handler(void);
3439 extern void intel_unregister_dsm_handler(void);
3440 #else
3441 static inline void intel_register_dsm_handler(void) { return; }
3442 static inline void intel_unregister_dsm_handler(void) { return; }
3443 #endif /* CONFIG_ACPI */
3444
3445 /* modesetting */
3446 extern void intel_modeset_init_hw(struct drm_device *dev);
3447 extern void intel_modeset_init(struct drm_device *dev);
3448 extern void intel_modeset_gem_init(struct drm_device *dev);
3449 extern void intel_modeset_cleanup(struct drm_device *dev);
3450 extern void intel_connector_unregister(struct intel_connector *);
3451 extern int intel_modeset_vga_set_state(struct drm_device *dev, bool state);
3452 extern void intel_display_resume(struct drm_device *dev);
3453 extern void i915_redisable_vga(struct drm_device *dev);
3454 extern void i915_redisable_vga_power_on(struct drm_device *dev);
3455 extern bool ironlake_set_drps(struct drm_device *dev, u8 val);
3456 extern void intel_init_pch_refclk(struct drm_device *dev);
3457 extern void intel_set_rps(struct drm_device *dev, u8 val);
3458 extern void intel_set_memory_cxsr(struct drm_i915_private *dev_priv,
3459 bool enable);
3460 extern void intel_detect_pch(struct drm_device *dev);
3461 extern int intel_enable_rc6(const struct drm_device *dev);
3462
3463 extern bool i915_semaphore_is_enabled(struct drm_device *dev);
3464 int i915_reg_read_ioctl(struct drm_device *dev, void *data,
3465 struct drm_file *file);
3466 int i915_get_reset_stats_ioctl(struct drm_device *dev, void *data,
3467 struct drm_file *file);
3468
3469 /* overlay */
3470 extern struct intel_overlay_error_state *intel_overlay_capture_error_state(struct drm_device *dev);
3471 extern void intel_overlay_print_error_state(struct drm_i915_error_state_buf *e,
3472 struct intel_overlay_error_state *error);
3473
3474 extern struct intel_display_error_state *intel_display_capture_error_state(struct drm_device *dev);
3475 extern void intel_display_print_error_state(struct drm_i915_error_state_buf *e,
3476 struct drm_device *dev,
3477 struct intel_display_error_state *error);
3478
3479 int sandybridge_pcode_read(struct drm_i915_private *dev_priv, u32 mbox, u32 *val);
3480 int sandybridge_pcode_write(struct drm_i915_private *dev_priv, u32 mbox, u32 val);
3481
3482 /* intel_sideband.c */
3483 u32 vlv_punit_read(struct drm_i915_private *dev_priv, u32 addr);
3484 void vlv_punit_write(struct drm_i915_private *dev_priv, u32 addr, u32 val);
3485 u32 vlv_nc_read(struct drm_i915_private *dev_priv, u8 addr);
3486 u32 vlv_iosf_sb_read(struct drm_i915_private *dev_priv, u8 port, u32 reg);
3487 void vlv_iosf_sb_write(struct drm_i915_private *dev_priv, u8 port, u32 reg, u32 val);
3488 u32 vlv_cck_read(struct drm_i915_private *dev_priv, u32 reg);
3489 void vlv_cck_write(struct drm_i915_private *dev_priv, u32 reg, u32 val);
3490 u32 vlv_ccu_read(struct drm_i915_private *dev_priv, u32 reg);
3491 void vlv_ccu_write(struct drm_i915_private *dev_priv, u32 reg, u32 val);
3492 u32 vlv_bunit_read(struct drm_i915_private *dev_priv, u32 reg);
3493 void vlv_bunit_write(struct drm_i915_private *dev_priv, u32 reg, u32 val);
3494 u32 vlv_dpio_read(struct drm_i915_private *dev_priv, enum pipe pipe, int reg);
3495 void vlv_dpio_write(struct drm_i915_private *dev_priv, enum pipe pipe, int reg, u32 val);
3496 u32 intel_sbi_read(struct drm_i915_private *dev_priv, u16 reg,
3497 enum intel_sbi_destination destination);
3498 void intel_sbi_write(struct drm_i915_private *dev_priv, u16 reg, u32 value,
3499 enum intel_sbi_destination destination);
3500 u32 vlv_flisdsi_read(struct drm_i915_private *dev_priv, u32 reg);
3501 void vlv_flisdsi_write(struct drm_i915_private *dev_priv, u32 reg, u32 val);
3502
3503 int intel_gpu_freq(struct drm_i915_private *dev_priv, int val);
3504 int intel_freq_opcode(struct drm_i915_private *dev_priv, int val);
3505
3506 #define I915_READ8(reg) dev_priv->uncore.funcs.mmio_readb(dev_priv, (reg), true)
3507 #define I915_WRITE8(reg, val) dev_priv->uncore.funcs.mmio_writeb(dev_priv, (reg), (val), true)
3508
3509 #define I915_READ16(reg) dev_priv->uncore.funcs.mmio_readw(dev_priv, (reg), true)
3510 #define I915_WRITE16(reg, val) dev_priv->uncore.funcs.mmio_writew(dev_priv, (reg), (val), true)
3511 #define I915_READ16_NOTRACE(reg) dev_priv->uncore.funcs.mmio_readw(dev_priv, (reg), false)
3512 #define I915_WRITE16_NOTRACE(reg, val) dev_priv->uncore.funcs.mmio_writew(dev_priv, (reg), (val), false)
3513
3514 #define I915_READ(reg) dev_priv->uncore.funcs.mmio_readl(dev_priv, (reg), true)
3515 #define I915_WRITE(reg, val) dev_priv->uncore.funcs.mmio_writel(dev_priv, (reg), (val), true)
3516 #define I915_READ_NOTRACE(reg) dev_priv->uncore.funcs.mmio_readl(dev_priv, (reg), false)
3517 #define I915_WRITE_NOTRACE(reg, val) dev_priv->uncore.funcs.mmio_writel(dev_priv, (reg), (val), false)
3518
3519 /* Be very careful with read/write 64-bit values. On 32-bit machines, they
3520 * will be implemented using 2 32-bit writes in an arbitrary order with
3521 * an arbitrary delay between them. This can cause the hardware to
3522 * act upon the intermediate value, possibly leading to corruption and
3523 * machine death. You have been warned.
3524 */
3525 #define I915_WRITE64(reg, val) dev_priv->uncore.funcs.mmio_writeq(dev_priv, (reg), (val), true)
3526 #define I915_READ64(reg) dev_priv->uncore.funcs.mmio_readq(dev_priv, (reg), true)
3527
3528 #define I915_READ64_2x32(lower_reg, upper_reg) ({ \
3529 u32 upper, lower, old_upper, loop = 0; \
3530 upper = I915_READ(upper_reg); \
3531 do { \
3532 old_upper = upper; \
3533 lower = I915_READ(lower_reg); \
3534 upper = I915_READ(upper_reg); \
3535 } while (upper != old_upper && loop++ < 2); \
3536 (u64)upper << 32 | lower; })
3537
3538 #define POSTING_READ(reg) (void)I915_READ_NOTRACE(reg)
3539 #define POSTING_READ16(reg) (void)I915_READ16_NOTRACE(reg)
3540
3541 #define __raw_read(x, s) \
3542 static inline uint##x##_t __raw_i915_read##x(struct drm_i915_private *dev_priv, \
3543 i915_reg_t reg) \
3544 { \
3545 return read##s(dev_priv->regs + i915_mmio_reg_offset(reg)); \
3546 }
3547
3548 #define __raw_write(x, s) \
3549 static inline void __raw_i915_write##x(struct drm_i915_private *dev_priv, \
3550 i915_reg_t reg, uint##x##_t val) \
3551 { \
3552 write##s(val, dev_priv->regs + i915_mmio_reg_offset(reg)); \
3553 }
3554 __raw_read(8, b)
3555 __raw_read(16, w)
3556 __raw_read(32, l)
3557 __raw_read(64, q)
3558
3559 __raw_write(8, b)
3560 __raw_write(16, w)
3561 __raw_write(32, l)
3562 __raw_write(64, q)
3563
3564 #undef __raw_read
3565 #undef __raw_write
3566
3567 /* These are untraced mmio-accessors that are only valid to be used inside
3568 * criticial sections inside IRQ handlers where forcewake is explicitly
3569 * controlled.
3570 * Think twice, and think again, before using these.
3571 * Note: Should only be used between intel_uncore_forcewake_irqlock() and
3572 * intel_uncore_forcewake_irqunlock().
3573 */
3574 #define I915_READ_FW(reg__) __raw_i915_read32(dev_priv, (reg__))
3575 #define I915_WRITE_FW(reg__, val__) __raw_i915_write32(dev_priv, (reg__), (val__))
3576 #define POSTING_READ_FW(reg__) (void)I915_READ_FW(reg__)
3577
3578 /* "Broadcast RGB" property */
3579 #define INTEL_BROADCAST_RGB_AUTO 0
3580 #define INTEL_BROADCAST_RGB_FULL 1
3581 #define INTEL_BROADCAST_RGB_LIMITED 2
3582
3583 static inline i915_reg_t i915_vgacntrl_reg(struct drm_device *dev)
3584 {
3585 if (IS_VALLEYVIEW(dev) || IS_CHERRYVIEW(dev))
3586 return VLV_VGACNTRL;
3587 else if (INTEL_INFO(dev)->gen >= 5)
3588 return CPU_VGACNTRL;
3589 else
3590 return VGACNTRL;
3591 }
3592
3593 static inline void __user *to_user_ptr(u64 address)
3594 {
3595 return (void __user *)(uintptr_t)address;
3596 }
3597
3598 static inline unsigned long msecs_to_jiffies_timeout(const unsigned int m)
3599 {
3600 unsigned long j = msecs_to_jiffies(m);
3601
3602 return min_t(unsigned long, MAX_JIFFY_OFFSET, j + 1);
3603 }
3604
3605 static inline unsigned long nsecs_to_jiffies_timeout(const u64 n)
3606 {
3607 return min_t(u64, MAX_JIFFY_OFFSET, nsecs_to_jiffies64(n) + 1);
3608 }
3609
3610 static inline unsigned long
3611 timespec_to_jiffies_timeout(const struct timespec *value)
3612 {
3613 unsigned long j = timespec_to_jiffies(value);
3614
3615 return min_t(unsigned long, MAX_JIFFY_OFFSET, j + 1);
3616 }
3617
3618 /*
3619 * If you need to wait X milliseconds between events A and B, but event B
3620 * doesn't happen exactly after event A, you record the timestamp (jiffies) of
3621 * when event A happened, then just before event B you call this function and
3622 * pass the timestamp as the first argument, and X as the second argument.
3623 */
3624 static inline void
3625 wait_remaining_ms_from_jiffies(unsigned long timestamp_jiffies, int to_wait_ms)
3626 {
3627 unsigned long target_jiffies, tmp_jiffies, remaining_jiffies;
3628
3629 /*
3630 * Don't re-read the value of "jiffies" every time since it may change
3631 * behind our back and break the math.
3632 */
3633 tmp_jiffies = jiffies;
3634 target_jiffies = timestamp_jiffies +
3635 msecs_to_jiffies_timeout(to_wait_ms);
3636
3637 if (time_after(target_jiffies, tmp_jiffies)) {
3638 remaining_jiffies = target_jiffies - tmp_jiffies;
3639 while (remaining_jiffies)
3640 remaining_jiffies =
3641 schedule_timeout_uninterruptible(remaining_jiffies);
3642 }
3643 }
3644
3645 static inline void i915_trace_irq_get(struct intel_engine_cs *engine,
3646 struct drm_i915_gem_request *req)
3647 {
3648 if (engine->trace_irq_req == NULL && engine->irq_get(engine))
3649 i915_gem_request_assign(&engine->trace_irq_req, req);
3650 }
3651
3652 #endif