Merge tag 'drm-intel-next-2015-04-23-fixed' of git://anongit.freedesktop.org/drm...
[GitHub/LineageOS/android_kernel_motorola_exynos9610.git] / drivers / gpu / drm / i915 / i915_drv.c
1 /* i915_drv.c -- i830,i845,i855,i865,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 #include <linux/device.h>
31 #include <linux/acpi.h>
32 #include <drm/drmP.h>
33 #include <drm/i915_drm.h>
34 #include "i915_drv.h"
35 #include "i915_trace.h"
36 #include "intel_drv.h"
37
38 #include <linux/console.h>
39 #include <linux/module.h>
40 #include <linux/pm_runtime.h>
41 #include <drm/drm_crtc_helper.h>
42
43 static struct drm_driver driver;
44
45 #define GEN_DEFAULT_PIPEOFFSETS \
46 .pipe_offsets = { PIPE_A_OFFSET, PIPE_B_OFFSET, \
47 PIPE_C_OFFSET, PIPE_EDP_OFFSET }, \
48 .trans_offsets = { TRANSCODER_A_OFFSET, TRANSCODER_B_OFFSET, \
49 TRANSCODER_C_OFFSET, TRANSCODER_EDP_OFFSET }, \
50 .palette_offsets = { PALETTE_A_OFFSET, PALETTE_B_OFFSET }
51
52 #define GEN_CHV_PIPEOFFSETS \
53 .pipe_offsets = { PIPE_A_OFFSET, PIPE_B_OFFSET, \
54 CHV_PIPE_C_OFFSET }, \
55 .trans_offsets = { TRANSCODER_A_OFFSET, TRANSCODER_B_OFFSET, \
56 CHV_TRANSCODER_C_OFFSET, }, \
57 .palette_offsets = { PALETTE_A_OFFSET, PALETTE_B_OFFSET, \
58 CHV_PALETTE_C_OFFSET }
59
60 #define CURSOR_OFFSETS \
61 .cursor_offsets = { CURSOR_A_OFFSET, CURSOR_B_OFFSET, CHV_CURSOR_C_OFFSET }
62
63 #define IVB_CURSOR_OFFSETS \
64 .cursor_offsets = { CURSOR_A_OFFSET, IVB_CURSOR_B_OFFSET, IVB_CURSOR_C_OFFSET }
65
66 static const struct intel_device_info intel_i830_info = {
67 .gen = 2, .is_mobile = 1, .cursor_needs_physical = 1, .num_pipes = 2,
68 .has_overlay = 1, .overlay_needs_physical = 1,
69 .ring_mask = RENDER_RING,
70 GEN_DEFAULT_PIPEOFFSETS,
71 CURSOR_OFFSETS,
72 };
73
74 static const struct intel_device_info intel_845g_info = {
75 .gen = 2, .num_pipes = 1,
76 .has_overlay = 1, .overlay_needs_physical = 1,
77 .ring_mask = RENDER_RING,
78 GEN_DEFAULT_PIPEOFFSETS,
79 CURSOR_OFFSETS,
80 };
81
82 static const struct intel_device_info intel_i85x_info = {
83 .gen = 2, .is_i85x = 1, .is_mobile = 1, .num_pipes = 2,
84 .cursor_needs_physical = 1,
85 .has_overlay = 1, .overlay_needs_physical = 1,
86 .has_fbc = 1,
87 .ring_mask = RENDER_RING,
88 GEN_DEFAULT_PIPEOFFSETS,
89 CURSOR_OFFSETS,
90 };
91
92 static const struct intel_device_info intel_i865g_info = {
93 .gen = 2, .num_pipes = 1,
94 .has_overlay = 1, .overlay_needs_physical = 1,
95 .ring_mask = RENDER_RING,
96 GEN_DEFAULT_PIPEOFFSETS,
97 CURSOR_OFFSETS,
98 };
99
100 static const struct intel_device_info intel_i915g_info = {
101 .gen = 3, .is_i915g = 1, .cursor_needs_physical = 1, .num_pipes = 2,
102 .has_overlay = 1, .overlay_needs_physical = 1,
103 .ring_mask = RENDER_RING,
104 GEN_DEFAULT_PIPEOFFSETS,
105 CURSOR_OFFSETS,
106 };
107 static const struct intel_device_info intel_i915gm_info = {
108 .gen = 3, .is_mobile = 1, .num_pipes = 2,
109 .cursor_needs_physical = 1,
110 .has_overlay = 1, .overlay_needs_physical = 1,
111 .supports_tv = 1,
112 .has_fbc = 1,
113 .ring_mask = RENDER_RING,
114 GEN_DEFAULT_PIPEOFFSETS,
115 CURSOR_OFFSETS,
116 };
117 static const struct intel_device_info intel_i945g_info = {
118 .gen = 3, .has_hotplug = 1, .cursor_needs_physical = 1, .num_pipes = 2,
119 .has_overlay = 1, .overlay_needs_physical = 1,
120 .ring_mask = RENDER_RING,
121 GEN_DEFAULT_PIPEOFFSETS,
122 CURSOR_OFFSETS,
123 };
124 static const struct intel_device_info intel_i945gm_info = {
125 .gen = 3, .is_i945gm = 1, .is_mobile = 1, .num_pipes = 2,
126 .has_hotplug = 1, .cursor_needs_physical = 1,
127 .has_overlay = 1, .overlay_needs_physical = 1,
128 .supports_tv = 1,
129 .has_fbc = 1,
130 .ring_mask = RENDER_RING,
131 GEN_DEFAULT_PIPEOFFSETS,
132 CURSOR_OFFSETS,
133 };
134
135 static const struct intel_device_info intel_i965g_info = {
136 .gen = 4, .is_broadwater = 1, .num_pipes = 2,
137 .has_hotplug = 1,
138 .has_overlay = 1,
139 .ring_mask = RENDER_RING,
140 GEN_DEFAULT_PIPEOFFSETS,
141 CURSOR_OFFSETS,
142 };
143
144 static const struct intel_device_info intel_i965gm_info = {
145 .gen = 4, .is_crestline = 1, .num_pipes = 2,
146 .is_mobile = 1, .has_fbc = 1, .has_hotplug = 1,
147 .has_overlay = 1,
148 .supports_tv = 1,
149 .ring_mask = RENDER_RING,
150 GEN_DEFAULT_PIPEOFFSETS,
151 CURSOR_OFFSETS,
152 };
153
154 static const struct intel_device_info intel_g33_info = {
155 .gen = 3, .is_g33 = 1, .num_pipes = 2,
156 .need_gfx_hws = 1, .has_hotplug = 1,
157 .has_overlay = 1,
158 .ring_mask = RENDER_RING,
159 GEN_DEFAULT_PIPEOFFSETS,
160 CURSOR_OFFSETS,
161 };
162
163 static const struct intel_device_info intel_g45_info = {
164 .gen = 4, .is_g4x = 1, .need_gfx_hws = 1, .num_pipes = 2,
165 .has_pipe_cxsr = 1, .has_hotplug = 1,
166 .ring_mask = RENDER_RING | BSD_RING,
167 GEN_DEFAULT_PIPEOFFSETS,
168 CURSOR_OFFSETS,
169 };
170
171 static const struct intel_device_info intel_gm45_info = {
172 .gen = 4, .is_g4x = 1, .num_pipes = 2,
173 .is_mobile = 1, .need_gfx_hws = 1, .has_fbc = 1,
174 .has_pipe_cxsr = 1, .has_hotplug = 1,
175 .supports_tv = 1,
176 .ring_mask = RENDER_RING | BSD_RING,
177 GEN_DEFAULT_PIPEOFFSETS,
178 CURSOR_OFFSETS,
179 };
180
181 static const struct intel_device_info intel_pineview_info = {
182 .gen = 3, .is_g33 = 1, .is_pineview = 1, .is_mobile = 1, .num_pipes = 2,
183 .need_gfx_hws = 1, .has_hotplug = 1,
184 .has_overlay = 1,
185 GEN_DEFAULT_PIPEOFFSETS,
186 CURSOR_OFFSETS,
187 };
188
189 static const struct intel_device_info intel_ironlake_d_info = {
190 .gen = 5, .num_pipes = 2,
191 .need_gfx_hws = 1, .has_hotplug = 1,
192 .ring_mask = RENDER_RING | BSD_RING,
193 GEN_DEFAULT_PIPEOFFSETS,
194 CURSOR_OFFSETS,
195 };
196
197 static const struct intel_device_info intel_ironlake_m_info = {
198 .gen = 5, .is_mobile = 1, .num_pipes = 2,
199 .need_gfx_hws = 1, .has_hotplug = 1,
200 .has_fbc = 1,
201 .ring_mask = RENDER_RING | BSD_RING,
202 GEN_DEFAULT_PIPEOFFSETS,
203 CURSOR_OFFSETS,
204 };
205
206 static const struct intel_device_info intel_sandybridge_d_info = {
207 .gen = 6, .num_pipes = 2,
208 .need_gfx_hws = 1, .has_hotplug = 1,
209 .has_fbc = 1,
210 .ring_mask = RENDER_RING | BSD_RING | BLT_RING,
211 .has_llc = 1,
212 GEN_DEFAULT_PIPEOFFSETS,
213 CURSOR_OFFSETS,
214 };
215
216 static const struct intel_device_info intel_sandybridge_m_info = {
217 .gen = 6, .is_mobile = 1, .num_pipes = 2,
218 .need_gfx_hws = 1, .has_hotplug = 1,
219 .has_fbc = 1,
220 .ring_mask = RENDER_RING | BSD_RING | BLT_RING,
221 .has_llc = 1,
222 GEN_DEFAULT_PIPEOFFSETS,
223 CURSOR_OFFSETS,
224 };
225
226 #define GEN7_FEATURES \
227 .gen = 7, .num_pipes = 3, \
228 .need_gfx_hws = 1, .has_hotplug = 1, \
229 .has_fbc = 1, \
230 .ring_mask = RENDER_RING | BSD_RING | BLT_RING, \
231 .has_llc = 1
232
233 static const struct intel_device_info intel_ivybridge_d_info = {
234 GEN7_FEATURES,
235 .is_ivybridge = 1,
236 GEN_DEFAULT_PIPEOFFSETS,
237 IVB_CURSOR_OFFSETS,
238 };
239
240 static const struct intel_device_info intel_ivybridge_m_info = {
241 GEN7_FEATURES,
242 .is_ivybridge = 1,
243 .is_mobile = 1,
244 GEN_DEFAULT_PIPEOFFSETS,
245 IVB_CURSOR_OFFSETS,
246 };
247
248 static const struct intel_device_info intel_ivybridge_q_info = {
249 GEN7_FEATURES,
250 .is_ivybridge = 1,
251 .num_pipes = 0, /* legal, last one wins */
252 GEN_DEFAULT_PIPEOFFSETS,
253 IVB_CURSOR_OFFSETS,
254 };
255
256 static const struct intel_device_info intel_valleyview_m_info = {
257 GEN7_FEATURES,
258 .is_mobile = 1,
259 .num_pipes = 2,
260 .is_valleyview = 1,
261 .display_mmio_offset = VLV_DISPLAY_BASE,
262 .has_fbc = 0, /* legal, last one wins */
263 .has_llc = 0, /* legal, last one wins */
264 GEN_DEFAULT_PIPEOFFSETS,
265 CURSOR_OFFSETS,
266 };
267
268 static const struct intel_device_info intel_valleyview_d_info = {
269 GEN7_FEATURES,
270 .num_pipes = 2,
271 .is_valleyview = 1,
272 .display_mmio_offset = VLV_DISPLAY_BASE,
273 .has_fbc = 0, /* legal, last one wins */
274 .has_llc = 0, /* legal, last one wins */
275 GEN_DEFAULT_PIPEOFFSETS,
276 CURSOR_OFFSETS,
277 };
278
279 static const struct intel_device_info intel_haswell_d_info = {
280 GEN7_FEATURES,
281 .is_haswell = 1,
282 .has_ddi = 1,
283 .has_fpga_dbg = 1,
284 .ring_mask = RENDER_RING | BSD_RING | BLT_RING | VEBOX_RING,
285 GEN_DEFAULT_PIPEOFFSETS,
286 IVB_CURSOR_OFFSETS,
287 };
288
289 static const struct intel_device_info intel_haswell_m_info = {
290 GEN7_FEATURES,
291 .is_haswell = 1,
292 .is_mobile = 1,
293 .has_ddi = 1,
294 .has_fpga_dbg = 1,
295 .ring_mask = RENDER_RING | BSD_RING | BLT_RING | VEBOX_RING,
296 GEN_DEFAULT_PIPEOFFSETS,
297 IVB_CURSOR_OFFSETS,
298 };
299
300 static const struct intel_device_info intel_broadwell_d_info = {
301 .gen = 8, .num_pipes = 3,
302 .need_gfx_hws = 1, .has_hotplug = 1,
303 .ring_mask = RENDER_RING | BSD_RING | BLT_RING | VEBOX_RING,
304 .has_llc = 1,
305 .has_ddi = 1,
306 .has_fpga_dbg = 1,
307 .has_fbc = 1,
308 GEN_DEFAULT_PIPEOFFSETS,
309 IVB_CURSOR_OFFSETS,
310 };
311
312 static const struct intel_device_info intel_broadwell_m_info = {
313 .gen = 8, .is_mobile = 1, .num_pipes = 3,
314 .need_gfx_hws = 1, .has_hotplug = 1,
315 .ring_mask = RENDER_RING | BSD_RING | BLT_RING | VEBOX_RING,
316 .has_llc = 1,
317 .has_ddi = 1,
318 .has_fpga_dbg = 1,
319 .has_fbc = 1,
320 GEN_DEFAULT_PIPEOFFSETS,
321 IVB_CURSOR_OFFSETS,
322 };
323
324 static const struct intel_device_info intel_broadwell_gt3d_info = {
325 .gen = 8, .num_pipes = 3,
326 .need_gfx_hws = 1, .has_hotplug = 1,
327 .ring_mask = RENDER_RING | BSD_RING | BLT_RING | VEBOX_RING | BSD2_RING,
328 .has_llc = 1,
329 .has_ddi = 1,
330 .has_fpga_dbg = 1,
331 .has_fbc = 1,
332 GEN_DEFAULT_PIPEOFFSETS,
333 IVB_CURSOR_OFFSETS,
334 };
335
336 static const struct intel_device_info intel_broadwell_gt3m_info = {
337 .gen = 8, .is_mobile = 1, .num_pipes = 3,
338 .need_gfx_hws = 1, .has_hotplug = 1,
339 .ring_mask = RENDER_RING | BSD_RING | BLT_RING | VEBOX_RING | BSD2_RING,
340 .has_llc = 1,
341 .has_ddi = 1,
342 .has_fpga_dbg = 1,
343 .has_fbc = 1,
344 GEN_DEFAULT_PIPEOFFSETS,
345 IVB_CURSOR_OFFSETS,
346 };
347
348 static const struct intel_device_info intel_cherryview_info = {
349 .gen = 8, .num_pipes = 3,
350 .need_gfx_hws = 1, .has_hotplug = 1,
351 .ring_mask = RENDER_RING | BSD_RING | BLT_RING | VEBOX_RING,
352 .is_valleyview = 1,
353 .display_mmio_offset = VLV_DISPLAY_BASE,
354 GEN_CHV_PIPEOFFSETS,
355 CURSOR_OFFSETS,
356 };
357
358 static const struct intel_device_info intel_skylake_info = {
359 .is_preliminary = 1,
360 .is_skylake = 1,
361 .gen = 9, .num_pipes = 3,
362 .need_gfx_hws = 1, .has_hotplug = 1,
363 .ring_mask = RENDER_RING | BSD_RING | BLT_RING | VEBOX_RING,
364 .has_llc = 1,
365 .has_ddi = 1,
366 .has_fbc = 1,
367 GEN_DEFAULT_PIPEOFFSETS,
368 IVB_CURSOR_OFFSETS,
369 };
370
371 static const struct intel_device_info intel_skylake_gt3_info = {
372 .is_preliminary = 1,
373 .is_skylake = 1,
374 .gen = 9, .num_pipes = 3,
375 .need_gfx_hws = 1, .has_hotplug = 1,
376 .ring_mask = RENDER_RING | BSD_RING | BLT_RING | VEBOX_RING | BSD2_RING,
377 .has_llc = 1,
378 .has_ddi = 1,
379 .has_fbc = 1,
380 GEN_DEFAULT_PIPEOFFSETS,
381 IVB_CURSOR_OFFSETS,
382 };
383
384 static const struct intel_device_info intel_broxton_info = {
385 .is_preliminary = 1,
386 .gen = 9,
387 .need_gfx_hws = 1, .has_hotplug = 1,
388 .ring_mask = RENDER_RING | BSD_RING | BLT_RING | VEBOX_RING,
389 .num_pipes = 3,
390 .has_ddi = 1,
391 .has_fbc = 1,
392 GEN_DEFAULT_PIPEOFFSETS,
393 IVB_CURSOR_OFFSETS,
394 };
395
396 /*
397 * Make sure any device matches here are from most specific to most
398 * general. For example, since the Quanta match is based on the subsystem
399 * and subvendor IDs, we need it to come before the more general IVB
400 * PCI ID matches, otherwise we'll use the wrong info struct above.
401 */
402 #define INTEL_PCI_IDS \
403 INTEL_I830_IDS(&intel_i830_info), \
404 INTEL_I845G_IDS(&intel_845g_info), \
405 INTEL_I85X_IDS(&intel_i85x_info), \
406 INTEL_I865G_IDS(&intel_i865g_info), \
407 INTEL_I915G_IDS(&intel_i915g_info), \
408 INTEL_I915GM_IDS(&intel_i915gm_info), \
409 INTEL_I945G_IDS(&intel_i945g_info), \
410 INTEL_I945GM_IDS(&intel_i945gm_info), \
411 INTEL_I965G_IDS(&intel_i965g_info), \
412 INTEL_G33_IDS(&intel_g33_info), \
413 INTEL_I965GM_IDS(&intel_i965gm_info), \
414 INTEL_GM45_IDS(&intel_gm45_info), \
415 INTEL_G45_IDS(&intel_g45_info), \
416 INTEL_PINEVIEW_IDS(&intel_pineview_info), \
417 INTEL_IRONLAKE_D_IDS(&intel_ironlake_d_info), \
418 INTEL_IRONLAKE_M_IDS(&intel_ironlake_m_info), \
419 INTEL_SNB_D_IDS(&intel_sandybridge_d_info), \
420 INTEL_SNB_M_IDS(&intel_sandybridge_m_info), \
421 INTEL_IVB_Q_IDS(&intel_ivybridge_q_info), /* must be first IVB */ \
422 INTEL_IVB_M_IDS(&intel_ivybridge_m_info), \
423 INTEL_IVB_D_IDS(&intel_ivybridge_d_info), \
424 INTEL_HSW_D_IDS(&intel_haswell_d_info), \
425 INTEL_HSW_M_IDS(&intel_haswell_m_info), \
426 INTEL_VLV_M_IDS(&intel_valleyview_m_info), \
427 INTEL_VLV_D_IDS(&intel_valleyview_d_info), \
428 INTEL_BDW_GT12M_IDS(&intel_broadwell_m_info), \
429 INTEL_BDW_GT12D_IDS(&intel_broadwell_d_info), \
430 INTEL_BDW_GT3M_IDS(&intel_broadwell_gt3m_info), \
431 INTEL_BDW_GT3D_IDS(&intel_broadwell_gt3d_info), \
432 INTEL_CHV_IDS(&intel_cherryview_info), \
433 INTEL_SKL_GT1_IDS(&intel_skylake_info), \
434 INTEL_SKL_GT2_IDS(&intel_skylake_info), \
435 INTEL_SKL_GT3_IDS(&intel_skylake_gt3_info), \
436 INTEL_BXT_IDS(&intel_broxton_info)
437
438 static const struct pci_device_id pciidlist[] = { /* aka */
439 INTEL_PCI_IDS,
440 {0, 0, 0}
441 };
442
443 #if defined(CONFIG_DRM_I915_KMS)
444 MODULE_DEVICE_TABLE(pci, pciidlist);
445 #endif
446
447 void intel_detect_pch(struct drm_device *dev)
448 {
449 struct drm_i915_private *dev_priv = dev->dev_private;
450 struct pci_dev *pch = NULL;
451
452 /* In all current cases, num_pipes is equivalent to the PCH_NOP setting
453 * (which really amounts to a PCH but no South Display).
454 */
455 if (INTEL_INFO(dev)->num_pipes == 0) {
456 dev_priv->pch_type = PCH_NOP;
457 return;
458 }
459
460 /*
461 * The reason to probe ISA bridge instead of Dev31:Fun0 is to
462 * make graphics device passthrough work easy for VMM, that only
463 * need to expose ISA bridge to let driver know the real hardware
464 * underneath. This is a requirement from virtualization team.
465 *
466 * In some virtualized environments (e.g. XEN), there is irrelevant
467 * ISA bridge in the system. To work reliably, we should scan trhough
468 * all the ISA bridge devices and check for the first match, instead
469 * of only checking the first one.
470 */
471 while ((pch = pci_get_class(PCI_CLASS_BRIDGE_ISA << 8, pch))) {
472 if (pch->vendor == PCI_VENDOR_ID_INTEL) {
473 unsigned short id = pch->device & INTEL_PCH_DEVICE_ID_MASK;
474 dev_priv->pch_id = id;
475
476 if (id == INTEL_PCH_IBX_DEVICE_ID_TYPE) {
477 dev_priv->pch_type = PCH_IBX;
478 DRM_DEBUG_KMS("Found Ibex Peak PCH\n");
479 WARN_ON(!IS_GEN5(dev));
480 } else if (id == INTEL_PCH_CPT_DEVICE_ID_TYPE) {
481 dev_priv->pch_type = PCH_CPT;
482 DRM_DEBUG_KMS("Found CougarPoint PCH\n");
483 WARN_ON(!(IS_GEN6(dev) || IS_IVYBRIDGE(dev)));
484 } else if (id == INTEL_PCH_PPT_DEVICE_ID_TYPE) {
485 /* PantherPoint is CPT compatible */
486 dev_priv->pch_type = PCH_CPT;
487 DRM_DEBUG_KMS("Found PantherPoint PCH\n");
488 WARN_ON(!(IS_GEN6(dev) || IS_IVYBRIDGE(dev)));
489 } else if (id == INTEL_PCH_LPT_DEVICE_ID_TYPE) {
490 dev_priv->pch_type = PCH_LPT;
491 DRM_DEBUG_KMS("Found LynxPoint PCH\n");
492 WARN_ON(!IS_HASWELL(dev) && !IS_BROADWELL(dev));
493 WARN_ON(IS_HSW_ULT(dev) || IS_BDW_ULT(dev));
494 } else if (id == INTEL_PCH_LPT_LP_DEVICE_ID_TYPE) {
495 dev_priv->pch_type = PCH_LPT;
496 DRM_DEBUG_KMS("Found LynxPoint LP PCH\n");
497 WARN_ON(!IS_HASWELL(dev) && !IS_BROADWELL(dev));
498 WARN_ON(!IS_HSW_ULT(dev) && !IS_BDW_ULT(dev));
499 } else if (id == INTEL_PCH_SPT_DEVICE_ID_TYPE) {
500 dev_priv->pch_type = PCH_SPT;
501 DRM_DEBUG_KMS("Found SunrisePoint PCH\n");
502 WARN_ON(!IS_SKYLAKE(dev));
503 } else if (id == INTEL_PCH_SPT_LP_DEVICE_ID_TYPE) {
504 dev_priv->pch_type = PCH_SPT;
505 DRM_DEBUG_KMS("Found SunrisePoint LP PCH\n");
506 WARN_ON(!IS_SKYLAKE(dev));
507 } else
508 continue;
509
510 break;
511 }
512 }
513 if (!pch)
514 DRM_DEBUG_KMS("No PCH found.\n");
515
516 pci_dev_put(pch);
517 }
518
519 bool i915_semaphore_is_enabled(struct drm_device *dev)
520 {
521 if (INTEL_INFO(dev)->gen < 6)
522 return false;
523
524 if (i915.semaphores >= 0)
525 return i915.semaphores;
526
527 /* TODO: make semaphores and Execlists play nicely together */
528 if (i915.enable_execlists)
529 return false;
530
531 /* Until we get further testing... */
532 if (IS_GEN8(dev))
533 return false;
534
535 #ifdef CONFIG_INTEL_IOMMU
536 /* Enable semaphores on SNB when IO remapping is off */
537 if (INTEL_INFO(dev)->gen == 6 && intel_iommu_gfx_mapped)
538 return false;
539 #endif
540
541 return true;
542 }
543
544 void intel_hpd_cancel_work(struct drm_i915_private *dev_priv)
545 {
546 spin_lock_irq(&dev_priv->irq_lock);
547
548 dev_priv->long_hpd_port_mask = 0;
549 dev_priv->short_hpd_port_mask = 0;
550 dev_priv->hpd_event_bits = 0;
551
552 spin_unlock_irq(&dev_priv->irq_lock);
553
554 cancel_work_sync(&dev_priv->dig_port_work);
555 cancel_work_sync(&dev_priv->hotplug_work);
556 cancel_delayed_work_sync(&dev_priv->hotplug_reenable_work);
557 }
558
559 static void intel_suspend_encoders(struct drm_i915_private *dev_priv)
560 {
561 struct drm_device *dev = dev_priv->dev;
562 struct drm_encoder *encoder;
563
564 drm_modeset_lock_all(dev);
565 list_for_each_entry(encoder, &dev->mode_config.encoder_list, head) {
566 struct intel_encoder *intel_encoder = to_intel_encoder(encoder);
567
568 if (intel_encoder->suspend)
569 intel_encoder->suspend(intel_encoder);
570 }
571 drm_modeset_unlock_all(dev);
572 }
573
574 static int intel_suspend_complete(struct drm_i915_private *dev_priv);
575 static int vlv_resume_prepare(struct drm_i915_private *dev_priv,
576 bool rpm_resume);
577
578 static int i915_drm_suspend(struct drm_device *dev)
579 {
580 struct drm_i915_private *dev_priv = dev->dev_private;
581 struct drm_crtc *crtc;
582 pci_power_t opregion_target_state;
583 int error;
584
585 /* ignore lid events during suspend */
586 mutex_lock(&dev_priv->modeset_restore_lock);
587 dev_priv->modeset_restore = MODESET_SUSPENDED;
588 mutex_unlock(&dev_priv->modeset_restore_lock);
589
590 /* We do a lot of poking in a lot of registers, make sure they work
591 * properly. */
592 intel_display_set_init_power(dev_priv, true);
593
594 drm_kms_helper_poll_disable(dev);
595
596 pci_save_state(dev->pdev);
597
598 error = i915_gem_suspend(dev);
599 if (error) {
600 dev_err(&dev->pdev->dev,
601 "GEM idle failed, resume might fail\n");
602 return error;
603 }
604
605 intel_suspend_gt_powersave(dev);
606
607 /*
608 * Disable CRTCs directly since we want to preserve sw state
609 * for _thaw. Also, power gate the CRTC power wells.
610 */
611 drm_modeset_lock_all(dev);
612 for_each_crtc(dev, crtc)
613 intel_crtc_control(crtc, false);
614 drm_modeset_unlock_all(dev);
615
616 intel_dp_mst_suspend(dev);
617
618 intel_runtime_pm_disable_interrupts(dev_priv);
619 intel_hpd_cancel_work(dev_priv);
620
621 intel_suspend_encoders(dev_priv);
622
623 intel_suspend_hw(dev);
624
625 i915_gem_suspend_gtt_mappings(dev);
626
627 i915_save_state(dev);
628
629 opregion_target_state = PCI_D3cold;
630 #if IS_ENABLED(CONFIG_ACPI_SLEEP)
631 if (acpi_target_system_state() < ACPI_STATE_S3)
632 opregion_target_state = PCI_D1;
633 #endif
634 intel_opregion_notify_adapter(dev, opregion_target_state);
635
636 intel_uncore_forcewake_reset(dev, false);
637 intel_opregion_fini(dev);
638
639 intel_fbdev_set_suspend(dev, FBINFO_STATE_SUSPENDED, true);
640
641 dev_priv->suspend_count++;
642
643 intel_display_set_init_power(dev_priv, false);
644
645 return 0;
646 }
647
648 static int i915_drm_suspend_late(struct drm_device *drm_dev, bool hibernation)
649 {
650 struct drm_i915_private *dev_priv = drm_dev->dev_private;
651 int ret;
652
653 ret = intel_suspend_complete(dev_priv);
654
655 if (ret) {
656 DRM_ERROR("Suspend complete failed: %d\n", ret);
657
658 return ret;
659 }
660
661 pci_disable_device(drm_dev->pdev);
662 /*
663 * During hibernation on some GEN4 platforms the BIOS may try to access
664 * the device even though it's already in D3 and hang the machine. So
665 * leave the device in D0 on those platforms and hope the BIOS will
666 * power down the device properly. Platforms where this was seen:
667 * Lenovo Thinkpad X301, X61s
668 */
669 if (!(hibernation &&
670 drm_dev->pdev->subsystem_vendor == PCI_VENDOR_ID_LENOVO &&
671 INTEL_INFO(dev_priv)->gen == 4))
672 pci_set_power_state(drm_dev->pdev, PCI_D3hot);
673
674 return 0;
675 }
676
677 int i915_suspend_legacy(struct drm_device *dev, pm_message_t state)
678 {
679 int error;
680
681 if (!dev || !dev->dev_private) {
682 DRM_ERROR("dev: %p\n", dev);
683 DRM_ERROR("DRM not initialized, aborting suspend.\n");
684 return -ENODEV;
685 }
686
687 if (WARN_ON_ONCE(state.event != PM_EVENT_SUSPEND &&
688 state.event != PM_EVENT_FREEZE))
689 return -EINVAL;
690
691 if (dev->switch_power_state == DRM_SWITCH_POWER_OFF)
692 return 0;
693
694 error = i915_drm_suspend(dev);
695 if (error)
696 return error;
697
698 return i915_drm_suspend_late(dev, false);
699 }
700
701 static int i915_drm_resume(struct drm_device *dev)
702 {
703 struct drm_i915_private *dev_priv = dev->dev_private;
704
705 mutex_lock(&dev->struct_mutex);
706 i915_gem_restore_gtt_mappings(dev);
707 mutex_unlock(&dev->struct_mutex);
708
709 i915_restore_state(dev);
710 intel_opregion_setup(dev);
711
712 intel_init_pch_refclk(dev);
713 drm_mode_config_reset(dev);
714
715 mutex_lock(&dev->struct_mutex);
716 if (i915_gem_init_hw(dev)) {
717 DRM_ERROR("failed to re-initialize GPU, declaring wedged!\n");
718 atomic_set_mask(I915_WEDGED, &dev_priv->gpu_error.reset_counter);
719 }
720 mutex_unlock(&dev->struct_mutex);
721
722 /* We need working interrupts for modeset enabling ... */
723 intel_runtime_pm_enable_interrupts(dev_priv);
724
725 intel_modeset_init_hw(dev);
726
727 spin_lock_irq(&dev_priv->irq_lock);
728 if (dev_priv->display.hpd_irq_setup)
729 dev_priv->display.hpd_irq_setup(dev);
730 spin_unlock_irq(&dev_priv->irq_lock);
731
732 drm_modeset_lock_all(dev);
733 intel_modeset_setup_hw_state(dev, true);
734 drm_modeset_unlock_all(dev);
735
736 intel_dp_mst_resume(dev);
737
738 /*
739 * ... but also need to make sure that hotplug processing
740 * doesn't cause havoc. Like in the driver load code we don't
741 * bother with the tiny race here where we might loose hotplug
742 * notifications.
743 * */
744 intel_hpd_init(dev_priv);
745 /* Config may have changed between suspend and resume */
746 drm_helper_hpd_irq_event(dev);
747
748 intel_opregion_init(dev);
749
750 intel_fbdev_set_suspend(dev, FBINFO_STATE_RUNNING, false);
751
752 mutex_lock(&dev_priv->modeset_restore_lock);
753 dev_priv->modeset_restore = MODESET_DONE;
754 mutex_unlock(&dev_priv->modeset_restore_lock);
755
756 intel_opregion_notify_adapter(dev, PCI_D0);
757
758 drm_kms_helper_poll_enable(dev);
759
760 return 0;
761 }
762
763 static int i915_drm_resume_early(struct drm_device *dev)
764 {
765 struct drm_i915_private *dev_priv = dev->dev_private;
766 int ret = 0;
767
768 /*
769 * We have a resume ordering issue with the snd-hda driver also
770 * requiring our device to be power up. Due to the lack of a
771 * parent/child relationship we currently solve this with an early
772 * resume hook.
773 *
774 * FIXME: This should be solved with a special hdmi sink device or
775 * similar so that power domains can be employed.
776 */
777 if (pci_enable_device(dev->pdev))
778 return -EIO;
779
780 pci_set_master(dev->pdev);
781
782 if (IS_VALLEYVIEW(dev_priv))
783 ret = vlv_resume_prepare(dev_priv, false);
784 if (ret)
785 DRM_ERROR("Resume prepare failed: %d,Continuing resume\n", ret);
786
787 intel_uncore_early_sanitize(dev, true);
788
789 if (IS_HASWELL(dev_priv) || IS_BROADWELL(dev_priv))
790 hsw_disable_pc8(dev_priv);
791
792 intel_uncore_sanitize(dev);
793 intel_power_domains_init_hw(dev_priv);
794
795 return ret;
796 }
797
798 int i915_resume_legacy(struct drm_device *dev)
799 {
800 int ret;
801
802 if (dev->switch_power_state == DRM_SWITCH_POWER_OFF)
803 return 0;
804
805 ret = i915_drm_resume_early(dev);
806 if (ret)
807 return ret;
808
809 return i915_drm_resume(dev);
810 }
811
812 /**
813 * i915_reset - reset chip after a hang
814 * @dev: drm device to reset
815 *
816 * Reset the chip. Useful if a hang is detected. Returns zero on successful
817 * reset or otherwise an error code.
818 *
819 * Procedure is fairly simple:
820 * - reset the chip using the reset reg
821 * - re-init context state
822 * - re-init hardware status page
823 * - re-init ring buffer
824 * - re-init interrupt state
825 * - re-init display
826 */
827 int i915_reset(struct drm_device *dev)
828 {
829 struct drm_i915_private *dev_priv = dev->dev_private;
830 bool simulated;
831 int ret;
832
833 if (!i915.reset)
834 return 0;
835
836 intel_reset_gt_powersave(dev);
837
838 mutex_lock(&dev->struct_mutex);
839
840 i915_gem_reset(dev);
841
842 simulated = dev_priv->gpu_error.stop_rings != 0;
843
844 ret = intel_gpu_reset(dev);
845
846 /* Also reset the gpu hangman. */
847 if (simulated) {
848 DRM_INFO("Simulated gpu hang, resetting stop_rings\n");
849 dev_priv->gpu_error.stop_rings = 0;
850 if (ret == -ENODEV) {
851 DRM_INFO("Reset not implemented, but ignoring "
852 "error for simulated gpu hangs\n");
853 ret = 0;
854 }
855 }
856
857 if (i915_stop_ring_allow_warn(dev_priv))
858 pr_notice("drm/i915: Resetting chip after gpu hang\n");
859
860 if (ret) {
861 DRM_ERROR("Failed to reset chip: %i\n", ret);
862 mutex_unlock(&dev->struct_mutex);
863 return ret;
864 }
865
866 intel_overlay_reset(dev_priv);
867
868 /* Ok, now get things going again... */
869
870 /*
871 * Everything depends on having the GTT running, so we need to start
872 * there. Fortunately we don't need to do this unless we reset the
873 * chip at a PCI level.
874 *
875 * Next we need to restore the context, but we don't use those
876 * yet either...
877 *
878 * Ring buffer needs to be re-initialized in the KMS case, or if X
879 * was running at the time of the reset (i.e. we weren't VT
880 * switched away).
881 */
882
883 /* Used to prevent gem_check_wedged returning -EAGAIN during gpu reset */
884 dev_priv->gpu_error.reload_in_reset = true;
885
886 ret = i915_gem_init_hw(dev);
887
888 dev_priv->gpu_error.reload_in_reset = false;
889
890 mutex_unlock(&dev->struct_mutex);
891 if (ret) {
892 DRM_ERROR("Failed hw init on reset %d\n", ret);
893 return ret;
894 }
895
896 /*
897 * rps/rc6 re-init is necessary to restore state lost after the
898 * reset and the re-install of gt irqs. Skip for ironlake per
899 * previous concerns that it doesn't respond well to some forms
900 * of re-init after reset.
901 */
902 if (INTEL_INFO(dev)->gen > 5)
903 intel_enable_gt_powersave(dev);
904
905 return 0;
906 }
907
908 static int i915_pci_probe(struct pci_dev *pdev, const struct pci_device_id *ent)
909 {
910 struct intel_device_info *intel_info =
911 (struct intel_device_info *) ent->driver_data;
912
913 if (IS_PRELIMINARY_HW(intel_info) && !i915.preliminary_hw_support) {
914 DRM_INFO("This hardware requires preliminary hardware support.\n"
915 "See CONFIG_DRM_I915_PRELIMINARY_HW_SUPPORT, and/or modparam preliminary_hw_support\n");
916 return -ENODEV;
917 }
918
919 /* Only bind to function 0 of the device. Early generations
920 * used function 1 as a placeholder for multi-head. This causes
921 * us confusion instead, especially on the systems where both
922 * functions have the same PCI-ID!
923 */
924 if (PCI_FUNC(pdev->devfn))
925 return -ENODEV;
926
927 driver.driver_features &= ~(DRIVER_USE_AGP);
928
929 return drm_get_pci_dev(pdev, ent, &driver);
930 }
931
932 static void
933 i915_pci_remove(struct pci_dev *pdev)
934 {
935 struct drm_device *dev = pci_get_drvdata(pdev);
936
937 drm_put_dev(dev);
938 }
939
940 static int i915_pm_suspend(struct device *dev)
941 {
942 struct pci_dev *pdev = to_pci_dev(dev);
943 struct drm_device *drm_dev = pci_get_drvdata(pdev);
944
945 if (!drm_dev || !drm_dev->dev_private) {
946 dev_err(dev, "DRM not initialized, aborting suspend.\n");
947 return -ENODEV;
948 }
949
950 if (drm_dev->switch_power_state == DRM_SWITCH_POWER_OFF)
951 return 0;
952
953 return i915_drm_suspend(drm_dev);
954 }
955
956 static int i915_pm_suspend_late(struct device *dev)
957 {
958 struct drm_device *drm_dev = dev_to_i915(dev)->dev;
959
960 /*
961 * We have a suspedn ordering issue with the snd-hda driver also
962 * requiring our device to be power up. Due to the lack of a
963 * parent/child relationship we currently solve this with an late
964 * suspend hook.
965 *
966 * FIXME: This should be solved with a special hdmi sink device or
967 * similar so that power domains can be employed.
968 */
969 if (drm_dev->switch_power_state == DRM_SWITCH_POWER_OFF)
970 return 0;
971
972 return i915_drm_suspend_late(drm_dev, false);
973 }
974
975 static int i915_pm_poweroff_late(struct device *dev)
976 {
977 struct drm_device *drm_dev = dev_to_i915(dev)->dev;
978
979 if (drm_dev->switch_power_state == DRM_SWITCH_POWER_OFF)
980 return 0;
981
982 return i915_drm_suspend_late(drm_dev, true);
983 }
984
985 static int i915_pm_resume_early(struct device *dev)
986 {
987 struct drm_device *drm_dev = dev_to_i915(dev)->dev;
988
989 if (drm_dev->switch_power_state == DRM_SWITCH_POWER_OFF)
990 return 0;
991
992 return i915_drm_resume_early(drm_dev);
993 }
994
995 static int i915_pm_resume(struct device *dev)
996 {
997 struct drm_device *drm_dev = dev_to_i915(dev)->dev;
998
999 if (drm_dev->switch_power_state == DRM_SWITCH_POWER_OFF)
1000 return 0;
1001
1002 return i915_drm_resume(drm_dev);
1003 }
1004
1005 static int hsw_suspend_complete(struct drm_i915_private *dev_priv)
1006 {
1007 hsw_enable_pc8(dev_priv);
1008
1009 return 0;
1010 }
1011
1012 static int bxt_suspend_complete(struct drm_i915_private *dev_priv)
1013 {
1014 struct drm_device *dev = dev_priv->dev;
1015
1016 /* TODO: when DC5 support is added disable DC5 here. */
1017
1018 broxton_ddi_phy_uninit(dev);
1019 broxton_uninit_cdclk(dev);
1020 bxt_enable_dc9(dev_priv);
1021
1022 return 0;
1023 }
1024
1025 static int bxt_resume_prepare(struct drm_i915_private *dev_priv)
1026 {
1027 struct drm_device *dev = dev_priv->dev;
1028
1029 /* TODO: when CSR FW support is added make sure the FW is loaded */
1030
1031 bxt_disable_dc9(dev_priv);
1032
1033 /*
1034 * TODO: when DC5 support is added enable DC5 here if the CSR FW
1035 * is available.
1036 */
1037 broxton_init_cdclk(dev);
1038 broxton_ddi_phy_init(dev);
1039 intel_prepare_ddi(dev);
1040
1041 return 0;
1042 }
1043
1044 /*
1045 * Save all Gunit registers that may be lost after a D3 and a subsequent
1046 * S0i[R123] transition. The list of registers needing a save/restore is
1047 * defined in the VLV2_S0IXRegs document. This documents marks all Gunit
1048 * registers in the following way:
1049 * - Driver: saved/restored by the driver
1050 * - Punit : saved/restored by the Punit firmware
1051 * - No, w/o marking: no need to save/restore, since the register is R/O or
1052 * used internally by the HW in a way that doesn't depend
1053 * keeping the content across a suspend/resume.
1054 * - Debug : used for debugging
1055 *
1056 * We save/restore all registers marked with 'Driver', with the following
1057 * exceptions:
1058 * - Registers out of use, including also registers marked with 'Debug'.
1059 * These have no effect on the driver's operation, so we don't save/restore
1060 * them to reduce the overhead.
1061 * - Registers that are fully setup by an initialization function called from
1062 * the resume path. For example many clock gating and RPS/RC6 registers.
1063 * - Registers that provide the right functionality with their reset defaults.
1064 *
1065 * TODO: Except for registers that based on the above 3 criteria can be safely
1066 * ignored, we save/restore all others, practically treating the HW context as
1067 * a black-box for the driver. Further investigation is needed to reduce the
1068 * saved/restored registers even further, by following the same 3 criteria.
1069 */
1070 static void vlv_save_gunit_s0ix_state(struct drm_i915_private *dev_priv)
1071 {
1072 struct vlv_s0ix_state *s = &dev_priv->vlv_s0ix_state;
1073 int i;
1074
1075 /* GAM 0x4000-0x4770 */
1076 s->wr_watermark = I915_READ(GEN7_WR_WATERMARK);
1077 s->gfx_prio_ctrl = I915_READ(GEN7_GFX_PRIO_CTRL);
1078 s->arb_mode = I915_READ(ARB_MODE);
1079 s->gfx_pend_tlb0 = I915_READ(GEN7_GFX_PEND_TLB0);
1080 s->gfx_pend_tlb1 = I915_READ(GEN7_GFX_PEND_TLB1);
1081
1082 for (i = 0; i < ARRAY_SIZE(s->lra_limits); i++)
1083 s->lra_limits[i] = I915_READ(GEN7_LRA_LIMITS_BASE + i * 4);
1084
1085 s->media_max_req_count = I915_READ(GEN7_MEDIA_MAX_REQ_COUNT);
1086 s->gfx_max_req_count = I915_READ(GEN7_GFX_MAX_REQ_COUNT);
1087
1088 s->render_hwsp = I915_READ(RENDER_HWS_PGA_GEN7);
1089 s->ecochk = I915_READ(GAM_ECOCHK);
1090 s->bsd_hwsp = I915_READ(BSD_HWS_PGA_GEN7);
1091 s->blt_hwsp = I915_READ(BLT_HWS_PGA_GEN7);
1092
1093 s->tlb_rd_addr = I915_READ(GEN7_TLB_RD_ADDR);
1094
1095 /* MBC 0x9024-0x91D0, 0x8500 */
1096 s->g3dctl = I915_READ(VLV_G3DCTL);
1097 s->gsckgctl = I915_READ(VLV_GSCKGCTL);
1098 s->mbctl = I915_READ(GEN6_MBCTL);
1099
1100 /* GCP 0x9400-0x9424, 0x8100-0x810C */
1101 s->ucgctl1 = I915_READ(GEN6_UCGCTL1);
1102 s->ucgctl3 = I915_READ(GEN6_UCGCTL3);
1103 s->rcgctl1 = I915_READ(GEN6_RCGCTL1);
1104 s->rcgctl2 = I915_READ(GEN6_RCGCTL2);
1105 s->rstctl = I915_READ(GEN6_RSTCTL);
1106 s->misccpctl = I915_READ(GEN7_MISCCPCTL);
1107
1108 /* GPM 0xA000-0xAA84, 0x8000-0x80FC */
1109 s->gfxpause = I915_READ(GEN6_GFXPAUSE);
1110 s->rpdeuhwtc = I915_READ(GEN6_RPDEUHWTC);
1111 s->rpdeuc = I915_READ(GEN6_RPDEUC);
1112 s->ecobus = I915_READ(ECOBUS);
1113 s->pwrdwnupctl = I915_READ(VLV_PWRDWNUPCTL);
1114 s->rp_down_timeout = I915_READ(GEN6_RP_DOWN_TIMEOUT);
1115 s->rp_deucsw = I915_READ(GEN6_RPDEUCSW);
1116 s->rcubmabdtmr = I915_READ(GEN6_RCUBMABDTMR);
1117 s->rcedata = I915_READ(VLV_RCEDATA);
1118 s->spare2gh = I915_READ(VLV_SPAREG2H);
1119
1120 /* Display CZ domain, 0x4400C-0x4402C, 0x4F000-0x4F11F */
1121 s->gt_imr = I915_READ(GTIMR);
1122 s->gt_ier = I915_READ(GTIER);
1123 s->pm_imr = I915_READ(GEN6_PMIMR);
1124 s->pm_ier = I915_READ(GEN6_PMIER);
1125
1126 for (i = 0; i < ARRAY_SIZE(s->gt_scratch); i++)
1127 s->gt_scratch[i] = I915_READ(GEN7_GT_SCRATCH_BASE + i * 4);
1128
1129 /* GT SA CZ domain, 0x100000-0x138124 */
1130 s->tilectl = I915_READ(TILECTL);
1131 s->gt_fifoctl = I915_READ(GTFIFOCTL);
1132 s->gtlc_wake_ctrl = I915_READ(VLV_GTLC_WAKE_CTRL);
1133 s->gtlc_survive = I915_READ(VLV_GTLC_SURVIVABILITY_REG);
1134 s->pmwgicz = I915_READ(VLV_PMWGICZ);
1135
1136 /* Gunit-Display CZ domain, 0x182028-0x1821CF */
1137 s->gu_ctl0 = I915_READ(VLV_GU_CTL0);
1138 s->gu_ctl1 = I915_READ(VLV_GU_CTL1);
1139 s->pcbr = I915_READ(VLV_PCBR);
1140 s->clock_gate_dis2 = I915_READ(VLV_GUNIT_CLOCK_GATE2);
1141
1142 /*
1143 * Not saving any of:
1144 * DFT, 0x9800-0x9EC0
1145 * SARB, 0xB000-0xB1FC
1146 * GAC, 0x5208-0x524C, 0x14000-0x14C000
1147 * PCI CFG
1148 */
1149 }
1150
1151 static void vlv_restore_gunit_s0ix_state(struct drm_i915_private *dev_priv)
1152 {
1153 struct vlv_s0ix_state *s = &dev_priv->vlv_s0ix_state;
1154 u32 val;
1155 int i;
1156
1157 /* GAM 0x4000-0x4770 */
1158 I915_WRITE(GEN7_WR_WATERMARK, s->wr_watermark);
1159 I915_WRITE(GEN7_GFX_PRIO_CTRL, s->gfx_prio_ctrl);
1160 I915_WRITE(ARB_MODE, s->arb_mode | (0xffff << 16));
1161 I915_WRITE(GEN7_GFX_PEND_TLB0, s->gfx_pend_tlb0);
1162 I915_WRITE(GEN7_GFX_PEND_TLB1, s->gfx_pend_tlb1);
1163
1164 for (i = 0; i < ARRAY_SIZE(s->lra_limits); i++)
1165 I915_WRITE(GEN7_LRA_LIMITS_BASE + i * 4, s->lra_limits[i]);
1166
1167 I915_WRITE(GEN7_MEDIA_MAX_REQ_COUNT, s->media_max_req_count);
1168 I915_WRITE(GEN7_GFX_MAX_REQ_COUNT, s->gfx_max_req_count);
1169
1170 I915_WRITE(RENDER_HWS_PGA_GEN7, s->render_hwsp);
1171 I915_WRITE(GAM_ECOCHK, s->ecochk);
1172 I915_WRITE(BSD_HWS_PGA_GEN7, s->bsd_hwsp);
1173 I915_WRITE(BLT_HWS_PGA_GEN7, s->blt_hwsp);
1174
1175 I915_WRITE(GEN7_TLB_RD_ADDR, s->tlb_rd_addr);
1176
1177 /* MBC 0x9024-0x91D0, 0x8500 */
1178 I915_WRITE(VLV_G3DCTL, s->g3dctl);
1179 I915_WRITE(VLV_GSCKGCTL, s->gsckgctl);
1180 I915_WRITE(GEN6_MBCTL, s->mbctl);
1181
1182 /* GCP 0x9400-0x9424, 0x8100-0x810C */
1183 I915_WRITE(GEN6_UCGCTL1, s->ucgctl1);
1184 I915_WRITE(GEN6_UCGCTL3, s->ucgctl3);
1185 I915_WRITE(GEN6_RCGCTL1, s->rcgctl1);
1186 I915_WRITE(GEN6_RCGCTL2, s->rcgctl2);
1187 I915_WRITE(GEN6_RSTCTL, s->rstctl);
1188 I915_WRITE(GEN7_MISCCPCTL, s->misccpctl);
1189
1190 /* GPM 0xA000-0xAA84, 0x8000-0x80FC */
1191 I915_WRITE(GEN6_GFXPAUSE, s->gfxpause);
1192 I915_WRITE(GEN6_RPDEUHWTC, s->rpdeuhwtc);
1193 I915_WRITE(GEN6_RPDEUC, s->rpdeuc);
1194 I915_WRITE(ECOBUS, s->ecobus);
1195 I915_WRITE(VLV_PWRDWNUPCTL, s->pwrdwnupctl);
1196 I915_WRITE(GEN6_RP_DOWN_TIMEOUT,s->rp_down_timeout);
1197 I915_WRITE(GEN6_RPDEUCSW, s->rp_deucsw);
1198 I915_WRITE(GEN6_RCUBMABDTMR, s->rcubmabdtmr);
1199 I915_WRITE(VLV_RCEDATA, s->rcedata);
1200 I915_WRITE(VLV_SPAREG2H, s->spare2gh);
1201
1202 /* Display CZ domain, 0x4400C-0x4402C, 0x4F000-0x4F11F */
1203 I915_WRITE(GTIMR, s->gt_imr);
1204 I915_WRITE(GTIER, s->gt_ier);
1205 I915_WRITE(GEN6_PMIMR, s->pm_imr);
1206 I915_WRITE(GEN6_PMIER, s->pm_ier);
1207
1208 for (i = 0; i < ARRAY_SIZE(s->gt_scratch); i++)
1209 I915_WRITE(GEN7_GT_SCRATCH_BASE + i * 4, s->gt_scratch[i]);
1210
1211 /* GT SA CZ domain, 0x100000-0x138124 */
1212 I915_WRITE(TILECTL, s->tilectl);
1213 I915_WRITE(GTFIFOCTL, s->gt_fifoctl);
1214 /*
1215 * Preserve the GT allow wake and GFX force clock bit, they are not
1216 * be restored, as they are used to control the s0ix suspend/resume
1217 * sequence by the caller.
1218 */
1219 val = I915_READ(VLV_GTLC_WAKE_CTRL);
1220 val &= VLV_GTLC_ALLOWWAKEREQ;
1221 val |= s->gtlc_wake_ctrl & ~VLV_GTLC_ALLOWWAKEREQ;
1222 I915_WRITE(VLV_GTLC_WAKE_CTRL, val);
1223
1224 val = I915_READ(VLV_GTLC_SURVIVABILITY_REG);
1225 val &= VLV_GFX_CLK_FORCE_ON_BIT;
1226 val |= s->gtlc_survive & ~VLV_GFX_CLK_FORCE_ON_BIT;
1227 I915_WRITE(VLV_GTLC_SURVIVABILITY_REG, val);
1228
1229 I915_WRITE(VLV_PMWGICZ, s->pmwgicz);
1230
1231 /* Gunit-Display CZ domain, 0x182028-0x1821CF */
1232 I915_WRITE(VLV_GU_CTL0, s->gu_ctl0);
1233 I915_WRITE(VLV_GU_CTL1, s->gu_ctl1);
1234 I915_WRITE(VLV_PCBR, s->pcbr);
1235 I915_WRITE(VLV_GUNIT_CLOCK_GATE2, s->clock_gate_dis2);
1236 }
1237
1238 int vlv_force_gfx_clock(struct drm_i915_private *dev_priv, bool force_on)
1239 {
1240 u32 val;
1241 int err;
1242
1243 val = I915_READ(VLV_GTLC_SURVIVABILITY_REG);
1244
1245 #define COND (I915_READ(VLV_GTLC_SURVIVABILITY_REG) & VLV_GFX_CLK_STATUS_BIT)
1246 /* Wait for a previous force-off to settle */
1247 if (force_on && !IS_CHERRYVIEW(dev_priv->dev)) {
1248 /* WARN_ON only for the Valleyview */
1249 WARN_ON(!!(val & VLV_GFX_CLK_FORCE_ON_BIT) == force_on);
1250
1251 err = wait_for(!COND, 20);
1252 if (err) {
1253 DRM_ERROR("timeout waiting for GFX clock force-off (%08x)\n",
1254 I915_READ(VLV_GTLC_SURVIVABILITY_REG));
1255 return err;
1256 }
1257 }
1258
1259 val = I915_READ(VLV_GTLC_SURVIVABILITY_REG);
1260 val &= ~VLV_GFX_CLK_FORCE_ON_BIT;
1261 if (force_on)
1262 val |= VLV_GFX_CLK_FORCE_ON_BIT;
1263 I915_WRITE(VLV_GTLC_SURVIVABILITY_REG, val);
1264
1265 if (!force_on)
1266 return 0;
1267
1268 err = wait_for(COND, 20);
1269 if (err)
1270 DRM_ERROR("timeout waiting for GFX clock force-on (%08x)\n",
1271 I915_READ(VLV_GTLC_SURVIVABILITY_REG));
1272
1273 return err;
1274 #undef COND
1275 }
1276
1277 static int vlv_allow_gt_wake(struct drm_i915_private *dev_priv, bool allow)
1278 {
1279 u32 val;
1280 int err = 0;
1281
1282 val = I915_READ(VLV_GTLC_WAKE_CTRL);
1283 val &= ~VLV_GTLC_ALLOWWAKEREQ;
1284 if (allow)
1285 val |= VLV_GTLC_ALLOWWAKEREQ;
1286 I915_WRITE(VLV_GTLC_WAKE_CTRL, val);
1287 POSTING_READ(VLV_GTLC_WAKE_CTRL);
1288
1289 #define COND (!!(I915_READ(VLV_GTLC_PW_STATUS) & VLV_GTLC_ALLOWWAKEACK) == \
1290 allow)
1291 err = wait_for(COND, 1);
1292 if (err)
1293 DRM_ERROR("timeout disabling GT waking\n");
1294 return err;
1295 #undef COND
1296 }
1297
1298 static int vlv_wait_for_gt_wells(struct drm_i915_private *dev_priv,
1299 bool wait_for_on)
1300 {
1301 u32 mask;
1302 u32 val;
1303 int err;
1304
1305 mask = VLV_GTLC_PW_MEDIA_STATUS_MASK | VLV_GTLC_PW_RENDER_STATUS_MASK;
1306 val = wait_for_on ? mask : 0;
1307 #define COND ((I915_READ(VLV_GTLC_PW_STATUS) & mask) == val)
1308 if (COND)
1309 return 0;
1310
1311 DRM_DEBUG_KMS("waiting for GT wells to go %s (%08x)\n",
1312 wait_for_on ? "on" : "off",
1313 I915_READ(VLV_GTLC_PW_STATUS));
1314
1315 /*
1316 * RC6 transitioning can be delayed up to 2 msec (see
1317 * valleyview_enable_rps), use 3 msec for safety.
1318 */
1319 err = wait_for(COND, 3);
1320 if (err)
1321 DRM_ERROR("timeout waiting for GT wells to go %s\n",
1322 wait_for_on ? "on" : "off");
1323
1324 return err;
1325 #undef COND
1326 }
1327
1328 static void vlv_check_no_gt_access(struct drm_i915_private *dev_priv)
1329 {
1330 if (!(I915_READ(VLV_GTLC_PW_STATUS) & VLV_GTLC_ALLOWWAKEERR))
1331 return;
1332
1333 DRM_ERROR("GT register access while GT waking disabled\n");
1334 I915_WRITE(VLV_GTLC_PW_STATUS, VLV_GTLC_ALLOWWAKEERR);
1335 }
1336
1337 static int vlv_suspend_complete(struct drm_i915_private *dev_priv)
1338 {
1339 u32 mask;
1340 int err;
1341
1342 /*
1343 * Bspec defines the following GT well on flags as debug only, so
1344 * don't treat them as hard failures.
1345 */
1346 (void)vlv_wait_for_gt_wells(dev_priv, false);
1347
1348 mask = VLV_GTLC_RENDER_CTX_EXISTS | VLV_GTLC_MEDIA_CTX_EXISTS;
1349 WARN_ON((I915_READ(VLV_GTLC_WAKE_CTRL) & mask) != mask);
1350
1351 vlv_check_no_gt_access(dev_priv);
1352
1353 err = vlv_force_gfx_clock(dev_priv, true);
1354 if (err)
1355 goto err1;
1356
1357 err = vlv_allow_gt_wake(dev_priv, false);
1358 if (err)
1359 goto err2;
1360
1361 if (!IS_CHERRYVIEW(dev_priv->dev))
1362 vlv_save_gunit_s0ix_state(dev_priv);
1363
1364 err = vlv_force_gfx_clock(dev_priv, false);
1365 if (err)
1366 goto err2;
1367
1368 return 0;
1369
1370 err2:
1371 /* For safety always re-enable waking and disable gfx clock forcing */
1372 vlv_allow_gt_wake(dev_priv, true);
1373 err1:
1374 vlv_force_gfx_clock(dev_priv, false);
1375
1376 return err;
1377 }
1378
1379 static int vlv_resume_prepare(struct drm_i915_private *dev_priv,
1380 bool rpm_resume)
1381 {
1382 struct drm_device *dev = dev_priv->dev;
1383 int err;
1384 int ret;
1385
1386 /*
1387 * If any of the steps fail just try to continue, that's the best we
1388 * can do at this point. Return the first error code (which will also
1389 * leave RPM permanently disabled).
1390 */
1391 ret = vlv_force_gfx_clock(dev_priv, true);
1392
1393 if (!IS_CHERRYVIEW(dev_priv->dev))
1394 vlv_restore_gunit_s0ix_state(dev_priv);
1395
1396 err = vlv_allow_gt_wake(dev_priv, true);
1397 if (!ret)
1398 ret = err;
1399
1400 err = vlv_force_gfx_clock(dev_priv, false);
1401 if (!ret)
1402 ret = err;
1403
1404 vlv_check_no_gt_access(dev_priv);
1405
1406 if (rpm_resume) {
1407 intel_init_clock_gating(dev);
1408 i915_gem_restore_fences(dev);
1409 }
1410
1411 return ret;
1412 }
1413
1414 static int intel_runtime_suspend(struct device *device)
1415 {
1416 struct pci_dev *pdev = to_pci_dev(device);
1417 struct drm_device *dev = pci_get_drvdata(pdev);
1418 struct drm_i915_private *dev_priv = dev->dev_private;
1419 int ret;
1420
1421 if (WARN_ON_ONCE(!(dev_priv->rps.enabled && intel_enable_rc6(dev))))
1422 return -ENODEV;
1423
1424 if (WARN_ON_ONCE(!HAS_RUNTIME_PM(dev)))
1425 return -ENODEV;
1426
1427 DRM_DEBUG_KMS("Suspending device\n");
1428
1429 /*
1430 * We could deadlock here in case another thread holding struct_mutex
1431 * calls RPM suspend concurrently, since the RPM suspend will wait
1432 * first for this RPM suspend to finish. In this case the concurrent
1433 * RPM resume will be followed by its RPM suspend counterpart. Still
1434 * for consistency return -EAGAIN, which will reschedule this suspend.
1435 */
1436 if (!mutex_trylock(&dev->struct_mutex)) {
1437 DRM_DEBUG_KMS("device lock contention, deffering suspend\n");
1438 /*
1439 * Bump the expiration timestamp, otherwise the suspend won't
1440 * be rescheduled.
1441 */
1442 pm_runtime_mark_last_busy(device);
1443
1444 return -EAGAIN;
1445 }
1446 /*
1447 * We are safe here against re-faults, since the fault handler takes
1448 * an RPM reference.
1449 */
1450 i915_gem_release_all_mmaps(dev_priv);
1451 mutex_unlock(&dev->struct_mutex);
1452
1453 intel_suspend_gt_powersave(dev);
1454 intel_runtime_pm_disable_interrupts(dev_priv);
1455
1456 ret = intel_suspend_complete(dev_priv);
1457 if (ret) {
1458 DRM_ERROR("Runtime suspend failed, disabling it (%d)\n", ret);
1459 intel_runtime_pm_enable_interrupts(dev_priv);
1460
1461 return ret;
1462 }
1463
1464 cancel_delayed_work_sync(&dev_priv->gpu_error.hangcheck_work);
1465 intel_uncore_forcewake_reset(dev, false);
1466 dev_priv->pm.suspended = true;
1467
1468 /*
1469 * FIXME: We really should find a document that references the arguments
1470 * used below!
1471 */
1472 if (IS_HASWELL(dev)) {
1473 /*
1474 * current versions of firmware which depend on this opregion
1475 * notification have repurposed the D1 definition to mean
1476 * "runtime suspended" vs. what you would normally expect (D3)
1477 * to distinguish it from notifications that might be sent via
1478 * the suspend path.
1479 */
1480 intel_opregion_notify_adapter(dev, PCI_D1);
1481 } else {
1482 /*
1483 * On Broadwell, if we use PCI_D1 the PCH DDI ports will stop
1484 * being detected, and the call we do at intel_runtime_resume()
1485 * won't be able to restore them. Since PCI_D3hot matches the
1486 * actual specification and appears to be working, use it. Let's
1487 * assume the other non-Haswell platforms will stay the same as
1488 * Broadwell.
1489 */
1490 intel_opregion_notify_adapter(dev, PCI_D3hot);
1491 }
1492
1493 assert_forcewakes_inactive(dev_priv);
1494
1495 DRM_DEBUG_KMS("Device suspended\n");
1496 return 0;
1497 }
1498
1499 static int intel_runtime_resume(struct device *device)
1500 {
1501 struct pci_dev *pdev = to_pci_dev(device);
1502 struct drm_device *dev = pci_get_drvdata(pdev);
1503 struct drm_i915_private *dev_priv = dev->dev_private;
1504 int ret = 0;
1505
1506 if (WARN_ON_ONCE(!HAS_RUNTIME_PM(dev)))
1507 return -ENODEV;
1508
1509 DRM_DEBUG_KMS("Resuming device\n");
1510
1511 intel_opregion_notify_adapter(dev, PCI_D0);
1512 dev_priv->pm.suspended = false;
1513
1514 if (IS_GEN6(dev_priv))
1515 intel_init_pch_refclk(dev);
1516
1517 if (IS_BROXTON(dev))
1518 ret = bxt_resume_prepare(dev_priv);
1519 else if (IS_HASWELL(dev_priv) || IS_BROADWELL(dev_priv))
1520 hsw_disable_pc8(dev_priv);
1521 else if (IS_VALLEYVIEW(dev_priv))
1522 ret = vlv_resume_prepare(dev_priv, true);
1523
1524 /*
1525 * No point of rolling back things in case of an error, as the best
1526 * we can do is to hope that things will still work (and disable RPM).
1527 */
1528 i915_gem_init_swizzling(dev);
1529 gen6_update_ring_freq(dev);
1530
1531 intel_runtime_pm_enable_interrupts(dev_priv);
1532 intel_enable_gt_powersave(dev);
1533
1534 if (ret)
1535 DRM_ERROR("Runtime resume failed, disabling it (%d)\n", ret);
1536 else
1537 DRM_DEBUG_KMS("Device resumed\n");
1538
1539 return ret;
1540 }
1541
1542 /*
1543 * This function implements common functionality of runtime and system
1544 * suspend sequence.
1545 */
1546 static int intel_suspend_complete(struct drm_i915_private *dev_priv)
1547 {
1548 struct drm_device *dev = dev_priv->dev;
1549 int ret;
1550
1551 if (IS_BROXTON(dev))
1552 ret = bxt_suspend_complete(dev_priv);
1553 else if (IS_HASWELL(dev) || IS_BROADWELL(dev))
1554 ret = hsw_suspend_complete(dev_priv);
1555 else if (IS_VALLEYVIEW(dev))
1556 ret = vlv_suspend_complete(dev_priv);
1557 else
1558 ret = 0;
1559
1560 return ret;
1561 }
1562
1563 static const struct dev_pm_ops i915_pm_ops = {
1564 /*
1565 * S0ix (via system suspend) and S3 event handlers [PMSG_SUSPEND,
1566 * PMSG_RESUME]
1567 */
1568 .suspend = i915_pm_suspend,
1569 .suspend_late = i915_pm_suspend_late,
1570 .resume_early = i915_pm_resume_early,
1571 .resume = i915_pm_resume,
1572
1573 /*
1574 * S4 event handlers
1575 * @freeze, @freeze_late : called (1) before creating the
1576 * hibernation image [PMSG_FREEZE] and
1577 * (2) after rebooting, before restoring
1578 * the image [PMSG_QUIESCE]
1579 * @thaw, @thaw_early : called (1) after creating the hibernation
1580 * image, before writing it [PMSG_THAW]
1581 * and (2) after failing to create or
1582 * restore the image [PMSG_RECOVER]
1583 * @poweroff, @poweroff_late: called after writing the hibernation
1584 * image, before rebooting [PMSG_HIBERNATE]
1585 * @restore, @restore_early : called after rebooting and restoring the
1586 * hibernation image [PMSG_RESTORE]
1587 */
1588 .freeze = i915_pm_suspend,
1589 .freeze_late = i915_pm_suspend_late,
1590 .thaw_early = i915_pm_resume_early,
1591 .thaw = i915_pm_resume,
1592 .poweroff = i915_pm_suspend,
1593 .poweroff_late = i915_pm_poweroff_late,
1594 .restore_early = i915_pm_resume_early,
1595 .restore = i915_pm_resume,
1596
1597 /* S0ix (via runtime suspend) event handlers */
1598 .runtime_suspend = intel_runtime_suspend,
1599 .runtime_resume = intel_runtime_resume,
1600 };
1601
1602 static const struct vm_operations_struct i915_gem_vm_ops = {
1603 .fault = i915_gem_fault,
1604 .open = drm_gem_vm_open,
1605 .close = drm_gem_vm_close,
1606 };
1607
1608 static const struct file_operations i915_driver_fops = {
1609 .owner = THIS_MODULE,
1610 .open = drm_open,
1611 .release = drm_release,
1612 .unlocked_ioctl = drm_ioctl,
1613 .mmap = drm_gem_mmap,
1614 .poll = drm_poll,
1615 .read = drm_read,
1616 #ifdef CONFIG_COMPAT
1617 .compat_ioctl = i915_compat_ioctl,
1618 #endif
1619 .llseek = noop_llseek,
1620 };
1621
1622 static struct drm_driver driver = {
1623 /* Don't use MTRRs here; the Xserver or userspace app should
1624 * deal with them for Intel hardware.
1625 */
1626 .driver_features =
1627 DRIVER_USE_AGP |
1628 DRIVER_HAVE_IRQ | DRIVER_IRQ_SHARED | DRIVER_GEM | DRIVER_PRIME |
1629 DRIVER_RENDER,
1630 .load = i915_driver_load,
1631 .unload = i915_driver_unload,
1632 .open = i915_driver_open,
1633 .lastclose = i915_driver_lastclose,
1634 .preclose = i915_driver_preclose,
1635 .postclose = i915_driver_postclose,
1636 .set_busid = drm_pci_set_busid,
1637
1638 /* Used in place of i915_pm_ops for non-DRIVER_MODESET */
1639 .suspend = i915_suspend_legacy,
1640 .resume = i915_resume_legacy,
1641
1642 .device_is_agp = i915_driver_device_is_agp,
1643 #if defined(CONFIG_DEBUG_FS)
1644 .debugfs_init = i915_debugfs_init,
1645 .debugfs_cleanup = i915_debugfs_cleanup,
1646 #endif
1647 .gem_free_object = i915_gem_free_object,
1648 .gem_vm_ops = &i915_gem_vm_ops,
1649
1650 .prime_handle_to_fd = drm_gem_prime_handle_to_fd,
1651 .prime_fd_to_handle = drm_gem_prime_fd_to_handle,
1652 .gem_prime_export = i915_gem_prime_export,
1653 .gem_prime_import = i915_gem_prime_import,
1654
1655 .dumb_create = i915_gem_dumb_create,
1656 .dumb_map_offset = i915_gem_mmap_gtt,
1657 .dumb_destroy = drm_gem_dumb_destroy,
1658 .ioctls = i915_ioctls,
1659 .fops = &i915_driver_fops,
1660 .name = DRIVER_NAME,
1661 .desc = DRIVER_DESC,
1662 .date = DRIVER_DATE,
1663 .major = DRIVER_MAJOR,
1664 .minor = DRIVER_MINOR,
1665 .patchlevel = DRIVER_PATCHLEVEL,
1666 };
1667
1668 static struct pci_driver i915_pci_driver = {
1669 .name = DRIVER_NAME,
1670 .id_table = pciidlist,
1671 .probe = i915_pci_probe,
1672 .remove = i915_pci_remove,
1673 .driver.pm = &i915_pm_ops,
1674 };
1675
1676 static int __init i915_init(void)
1677 {
1678 driver.num_ioctls = i915_max_ioctl;
1679
1680 /*
1681 * If CONFIG_DRM_I915_KMS is set, default to KMS unless
1682 * explicitly disabled with the module pararmeter.
1683 *
1684 * Otherwise, just follow the parameter (defaulting to off).
1685 *
1686 * Allow optional vga_text_mode_force boot option to override
1687 * the default behavior.
1688 */
1689 #if defined(CONFIG_DRM_I915_KMS)
1690 if (i915.modeset != 0)
1691 driver.driver_features |= DRIVER_MODESET;
1692 #endif
1693 if (i915.modeset == 1)
1694 driver.driver_features |= DRIVER_MODESET;
1695
1696 #ifdef CONFIG_VGA_CONSOLE
1697 if (vgacon_text_force() && i915.modeset == -1)
1698 driver.driver_features &= ~DRIVER_MODESET;
1699 #endif
1700
1701 if (!(driver.driver_features & DRIVER_MODESET)) {
1702 driver.get_vblank_timestamp = NULL;
1703 /* Silently fail loading to not upset userspace. */
1704 DRM_DEBUG_DRIVER("KMS and UMS disabled.\n");
1705 return 0;
1706 }
1707
1708 /*
1709 * FIXME: Note that we're lying to the DRM core here so that we can get access
1710 * to the atomic ioctl and the atomic properties. Only plane operations on
1711 * a single CRTC will actually work.
1712 */
1713 if (i915.nuclear_pageflip)
1714 driver.driver_features |= DRIVER_ATOMIC;
1715
1716 return drm_pci_init(&driver, &i915_pci_driver);
1717 }
1718
1719 static void __exit i915_exit(void)
1720 {
1721 if (!(driver.driver_features & DRIVER_MODESET))
1722 return; /* Never loaded a driver. */
1723
1724 drm_pci_exit(&driver, &i915_pci_driver);
1725 }
1726
1727 module_init(i915_init);
1728 module_exit(i915_exit);
1729
1730 MODULE_AUTHOR("Tungsten Graphics, Inc.");
1731 MODULE_AUTHOR("Intel Corporation");
1732
1733 MODULE_DESCRIPTION(DRIVER_DESC);
1734 MODULE_LICENSE("GPL and additional rights");