1 /*
2  * Copyright 2008 Advanced Micro Devices, Inc.
3  * Copyright 2008 Red Hat Inc.
4  * Copyright 2009 Jerome Glisse.
5  *
6  * Permission is hereby granted, free of charge, to any person obtaining a
7  * copy of this software and associated documentation files (the "Software"),
8  * to deal in the Software without restriction, including without limitation
9  * the rights to use, copy, modify, merge, publish, distribute, sublicense,
10  * and/or sell copies of the Software, and to permit persons to whom the
11  * Software is furnished to do so, subject to the following conditions:
12  *
13  * The above copyright notice and this permission notice shall be included in
14  * all copies or substantial portions of the Software.
15  *
16  * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
17  * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
18  * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT.  IN NO EVENT SHALL
19  * THE COPYRIGHT HOLDER(S) OR AUTHOR(S) BE LIABLE FOR ANY CLAIM, DAMAGES OR
20  * OTHER LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE,
21  * ARISING FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR
22  * OTHER DEALINGS IN THE SOFTWARE.
23  *
24  * Authors: Dave Airlie
25  *          Alex Deucher
26  *          Jerome Glisse
27  */
28 #include <linux/console.h>
29 #include <linux/slab.h>
30 #include <drm/drmP.h>
31 #include <drm/drm_crtc_helper.h>
32 #include <drm/drm_probe_helper.h>
33 #include <drm/drm_cache.h>
34 #include <drm/radeon_drm.h>
35 #include <linux/pm_runtime.h>
36 #include <linux/vgaarb.h>
37 #include <linux/vga_switcheroo.h>
38 #include <linux/efi.h>
39 #include "radeon_reg.h"
40 #include "radeon.h"
41 #include "atom.h"
42 
43 static const char radeon_family_name[][16] = {
44 	"R100",
45 	"RV100",
46 	"RS100",
47 	"RV200",
48 	"RS200",
49 	"R200",
50 	"RV250",
51 	"RS300",
52 	"RV280",
53 	"R300",
54 	"R350",
55 	"RV350",
56 	"RV380",
57 	"R420",
58 	"R423",
59 	"RV410",
60 	"RS400",
61 	"RS480",
62 	"RS600",
63 	"RS690",
64 	"RS740",
65 	"RV515",
66 	"R520",
67 	"RV530",
68 	"RV560",
69 	"RV570",
70 	"R580",
71 	"R600",
72 	"RV610",
73 	"RV630",
74 	"RV670",
75 	"RV620",
76 	"RV635",
77 	"RS780",
78 	"RS880",
79 	"RV770",
80 	"RV730",
81 	"RV710",
82 	"RV740",
83 	"CEDAR",
84 	"REDWOOD",
85 	"JUNIPER",
86 	"CYPRESS",
87 	"HEMLOCK",
88 	"PALM",
89 	"SUMO",
90 	"SUMO2",
91 	"BARTS",
92 	"TURKS",
93 	"CAICOS",
94 	"CAYMAN",
95 	"ARUBA",
96 	"TAHITI",
97 	"PITCAIRN",
98 	"VERDE",
99 	"OLAND",
100 	"HAINAN",
101 	"BONAIRE",
102 	"KAVERI",
103 	"KABINI",
104 	"HAWAII",
105 	"MULLINS",
106 	"LAST",
107 };
108 
109 #if defined(CONFIG_VGA_SWITCHEROO)
110 bool radeon_has_atpx_dgpu_power_cntl(void);
111 bool radeon_is_atpx_hybrid(void);
112 #else
113 static inline bool radeon_has_atpx_dgpu_power_cntl(void) { return false; }
114 static inline bool radeon_is_atpx_hybrid(void) { return false; }
115 #endif
116 
117 #define RADEON_PX_QUIRK_DISABLE_PX  (1 << 0)
118 
119 struct radeon_px_quirk {
120 	u32 chip_vendor;
121 	u32 chip_device;
122 	u32 subsys_vendor;
123 	u32 subsys_device;
124 	u32 px_quirk_flags;
125 };
126 
127 static struct radeon_px_quirk radeon_px_quirk_list[] = {
128 	/* Acer aspire 5560g (CPU: AMD A4-3305M; GPU: AMD Radeon HD 6480g + 7470m)
129 	 * https://bugzilla.kernel.org/show_bug.cgi?id=74551
130 	 */
131 	{ PCI_VENDOR_ID_ATI, 0x6760, 0x1025, 0x0672, RADEON_PX_QUIRK_DISABLE_PX },
132 	/* Asus K73TA laptop with AMD A6-3400M APU and Radeon 6550 GPU
133 	 * https://bugzilla.kernel.org/show_bug.cgi?id=51381
134 	 */
135 	{ PCI_VENDOR_ID_ATI, 0x6741, 0x1043, 0x108c, RADEON_PX_QUIRK_DISABLE_PX },
136 	/* Asus K53TK laptop with AMD A6-3420M APU and Radeon 7670m GPU
137 	 * https://bugzilla.kernel.org/show_bug.cgi?id=51381
138 	 */
139 	{ PCI_VENDOR_ID_ATI, 0x6840, 0x1043, 0x2122, RADEON_PX_QUIRK_DISABLE_PX },
140 	/* Asus K53TK laptop with AMD A6-3420M APU and Radeon 7670m GPU
141 	 * https://bugs.freedesktop.org/show_bug.cgi?id=101491
142 	 */
143 	{ PCI_VENDOR_ID_ATI, 0x6741, 0x1043, 0x2122, RADEON_PX_QUIRK_DISABLE_PX },
144 	/* Asus K73TK laptop with AMD A6-3420M APU and Radeon 7670m GPU
145 	 * https://bugzilla.kernel.org/show_bug.cgi?id=51381#c52
146 	 */
147 	{ PCI_VENDOR_ID_ATI, 0x6840, 0x1043, 0x2123, RADEON_PX_QUIRK_DISABLE_PX },
148 	{ 0, 0, 0, 0, 0 },
149 };
150 
151 bool radeon_is_px(struct drm_device *dev)
152 {
153 	struct radeon_device *rdev = dev->dev_private;
154 
155 	if (rdev->flags & RADEON_IS_PX)
156 		return true;
157 	return false;
158 }
159 
160 static void radeon_device_handle_px_quirks(struct radeon_device *rdev)
161 {
162 	struct radeon_px_quirk *p = radeon_px_quirk_list;
163 
164 	/* Apply PX quirks */
165 	while (p && p->chip_device != 0) {
166 		if (rdev->pdev->vendor == p->chip_vendor &&
167 		    rdev->pdev->device == p->chip_device &&
168 		    rdev->pdev->subsystem_vendor == p->subsys_vendor &&
169 		    rdev->pdev->subsystem_device == p->subsys_device) {
170 			rdev->px_quirk_flags = p->px_quirk_flags;
171 			break;
172 		}
173 		++p;
174 	}
175 
176 	if (rdev->px_quirk_flags & RADEON_PX_QUIRK_DISABLE_PX)
177 		rdev->flags &= ~RADEON_IS_PX;
178 
179 	/* disable PX is the system doesn't support dGPU power control or hybrid gfx */
180 	if (!radeon_is_atpx_hybrid() &&
181 	    !radeon_has_atpx_dgpu_power_cntl())
182 		rdev->flags &= ~RADEON_IS_PX;
183 }
184 
185 /**
186  * radeon_program_register_sequence - program an array of registers.
187  *
188  * @rdev: radeon_device pointer
189  * @registers: pointer to the register array
190  * @array_size: size of the register array
191  *
192  * Programs an array or registers with and and or masks.
193  * This is a helper for setting golden registers.
194  */
195 void radeon_program_register_sequence(struct radeon_device *rdev,
196 				      const u32 *registers,
197 				      const u32 array_size)
198 {
199 	u32 tmp, reg, and_mask, or_mask;
200 	int i;
201 
202 	if (array_size % 3)
203 		return;
204 
205 	for (i = 0; i < array_size; i +=3) {
206 		reg = registers[i + 0];
207 		and_mask = registers[i + 1];
208 		or_mask = registers[i + 2];
209 
210 		if (and_mask == 0xffffffff) {
211 			tmp = or_mask;
212 		} else {
213 			tmp = RREG32(reg);
214 			tmp &= ~and_mask;
215 			tmp |= or_mask;
216 		}
217 		WREG32(reg, tmp);
218 	}
219 }
220 
221 void radeon_pci_config_reset(struct radeon_device *rdev)
222 {
223 	pci_write_config_dword(rdev->pdev, 0x7c, RADEON_ASIC_RESET_DATA);
224 }
225 
226 /**
227  * radeon_surface_init - Clear GPU surface registers.
228  *
229  * @rdev: radeon_device pointer
230  *
231  * Clear GPU surface registers (r1xx-r5xx).
232  */
233 void radeon_surface_init(struct radeon_device *rdev)
234 {
235 	/* FIXME: check this out */
236 	if (rdev->family < CHIP_R600) {
237 		int i;
238 
239 		for (i = 0; i < RADEON_GEM_MAX_SURFACES; i++) {
240 			if (rdev->surface_regs[i].bo)
241 				radeon_bo_get_surface_reg(rdev->surface_regs[i].bo);
242 			else
243 				radeon_clear_surface_reg(rdev, i);
244 		}
245 		/* enable surfaces */
246 		WREG32(RADEON_SURFACE_CNTL, 0);
247 	}
248 }
249 
250 /*
251  * GPU scratch registers helpers function.
252  */
253 /**
254  * radeon_scratch_init - Init scratch register driver information.
255  *
256  * @rdev: radeon_device pointer
257  *
258  * Init CP scratch register driver information (r1xx-r5xx)
259  */
260 void radeon_scratch_init(struct radeon_device *rdev)
261 {
262 	int i;
263 
264 	/* FIXME: check this out */
265 	if (rdev->family < CHIP_R300) {
266 		rdev->scratch.num_reg = 5;
267 	} else {
268 		rdev->scratch.num_reg = 7;
269 	}
270 	rdev->scratch.reg_base = RADEON_SCRATCH_REG0;
271 	for (i = 0; i < rdev->scratch.num_reg; i++) {
272 		rdev->scratch.free[i] = true;
273 		rdev->scratch.reg[i] = rdev->scratch.reg_base + (i * 4);
274 	}
275 }
276 
277 /**
278  * radeon_scratch_get - Allocate a scratch register
279  *
280  * @rdev: radeon_device pointer
281  * @reg: scratch register mmio offset
282  *
283  * Allocate a CP scratch register for use by the driver (all asics).
284  * Returns 0 on success or -EINVAL on failure.
285  */
286 int radeon_scratch_get(struct radeon_device *rdev, uint32_t *reg)
287 {
288 	int i;
289 
290 	for (i = 0; i < rdev->scratch.num_reg; i++) {
291 		if (rdev->scratch.free[i]) {
292 			rdev->scratch.free[i] = false;
293 			*reg = rdev->scratch.reg[i];
294 			return 0;
295 		}
296 	}
297 	return -EINVAL;
298 }
299 
300 /**
301  * radeon_scratch_free - Free a scratch register
302  *
303  * @rdev: radeon_device pointer
304  * @reg: scratch register mmio offset
305  *
306  * Free a CP scratch register allocated for use by the driver (all asics)
307  */
308 void radeon_scratch_free(struct radeon_device *rdev, uint32_t reg)
309 {
310 	int i;
311 
312 	for (i = 0; i < rdev->scratch.num_reg; i++) {
313 		if (rdev->scratch.reg[i] == reg) {
314 			rdev->scratch.free[i] = true;
315 			return;
316 		}
317 	}
318 }
319 
320 /*
321  * GPU doorbell aperture helpers function.
322  */
323 /**
324  * radeon_doorbell_init - Init doorbell driver information.
325  *
326  * @rdev: radeon_device pointer
327  *
328  * Init doorbell driver information (CIK)
329  * Returns 0 on success, error on failure.
330  */
331 static int radeon_doorbell_init(struct radeon_device *rdev)
332 {
333 	/* doorbell bar mapping */
334 	rdev->doorbell.base = pci_resource_start(rdev->pdev, 2);
335 	rdev->doorbell.size = pci_resource_len(rdev->pdev, 2);
336 
337 	rdev->doorbell.num_doorbells = min_t(u32, rdev->doorbell.size / sizeof(u32), RADEON_MAX_DOORBELLS);
338 	if (rdev->doorbell.num_doorbells == 0)
339 		return -EINVAL;
340 
341 	rdev->doorbell.ptr = ioremap(rdev->doorbell.base, rdev->doorbell.num_doorbells * sizeof(u32));
342 	if (rdev->doorbell.ptr == NULL) {
343 		return -ENOMEM;
344 	}
345 	DRM_INFO("doorbell mmio base: 0x%08X\n", (uint32_t)rdev->doorbell.base);
346 	DRM_INFO("doorbell mmio size: %u\n", (unsigned)rdev->doorbell.size);
347 
348 	memset(&rdev->doorbell.used, 0, sizeof(rdev->doorbell.used));
349 
350 	return 0;
351 }
352 
353 /**
354  * radeon_doorbell_fini - Tear down doorbell driver information.
355  *
356  * @rdev: radeon_device pointer
357  *
358  * Tear down doorbell driver information (CIK)
359  */
360 static void radeon_doorbell_fini(struct radeon_device *rdev)
361 {
362 	iounmap(rdev->doorbell.ptr);
363 	rdev->doorbell.ptr = NULL;
364 }
365 
366 /**
367  * radeon_doorbell_get - Allocate a doorbell entry
368  *
369  * @rdev: radeon_device pointer
370  * @doorbell: doorbell index
371  *
372  * Allocate a doorbell for use by the driver (all asics).
373  * Returns 0 on success or -EINVAL on failure.
374  */
375 int radeon_doorbell_get(struct radeon_device *rdev, u32 *doorbell)
376 {
377 	unsigned long offset = find_first_zero_bit(rdev->doorbell.used, rdev->doorbell.num_doorbells);
378 	if (offset < rdev->doorbell.num_doorbells) {
379 		__set_bit(offset, rdev->doorbell.used);
380 		*doorbell = offset;
381 		return 0;
382 	} else {
383 		return -EINVAL;
384 	}
385 }
386 
387 /**
388  * radeon_doorbell_free - Free a doorbell entry
389  *
390  * @rdev: radeon_device pointer
391  * @doorbell: doorbell index
392  *
393  * Free a doorbell allocated for use by the driver (all asics)
394  */
395 void radeon_doorbell_free(struct radeon_device *rdev, u32 doorbell)
396 {
397 	if (doorbell < rdev->doorbell.num_doorbells)
398 		__clear_bit(doorbell, rdev->doorbell.used);
399 }
400 
401 /*
402  * radeon_wb_*()
403  * Writeback is the the method by which the the GPU updates special pages
404  * in memory with the status of certain GPU events (fences, ring pointers,
405  * etc.).
406  */
407 
408 /**
409  * radeon_wb_disable - Disable Writeback
410  *
411  * @rdev: radeon_device pointer
412  *
413  * Disables Writeback (all asics).  Used for suspend.
414  */
415 void radeon_wb_disable(struct radeon_device *rdev)
416 {
417 	rdev->wb.enabled = false;
418 }
419 
420 /**
421  * radeon_wb_fini - Disable Writeback and free memory
422  *
423  * @rdev: radeon_device pointer
424  *
425  * Disables Writeback and frees the Writeback memory (all asics).
426  * Used at driver shutdown.
427  */
428 void radeon_wb_fini(struct radeon_device *rdev)
429 {
430 	radeon_wb_disable(rdev);
431 	if (rdev->wb.wb_obj) {
432 		if (!radeon_bo_reserve(rdev->wb.wb_obj, false)) {
433 			radeon_bo_kunmap(rdev->wb.wb_obj);
434 			radeon_bo_unpin(rdev->wb.wb_obj);
435 			radeon_bo_unreserve(rdev->wb.wb_obj);
436 		}
437 		radeon_bo_unref(&rdev->wb.wb_obj);
438 		rdev->wb.wb = NULL;
439 		rdev->wb.wb_obj = NULL;
440 	}
441 }
442 
443 /**
444  * radeon_wb_init- Init Writeback driver info and allocate memory
445  *
446  * @rdev: radeon_device pointer
447  *
448  * Disables Writeback and frees the Writeback memory (all asics).
449  * Used at driver startup.
450  * Returns 0 on success or an -error on failure.
451  */
452 int radeon_wb_init(struct radeon_device *rdev)
453 {
454 	int r;
455 
456 	if (rdev->wb.wb_obj == NULL) {
457 		r = radeon_bo_create(rdev, RADEON_GPU_PAGE_SIZE, PAGE_SIZE, true,
458 				     RADEON_GEM_DOMAIN_GTT, 0, NULL, NULL,
459 				     &rdev->wb.wb_obj);
460 		if (r) {
461 			dev_warn(rdev->dev, "(%d) create WB bo failed\n", r);
462 			return r;
463 		}
464 		r = radeon_bo_reserve(rdev->wb.wb_obj, false);
465 		if (unlikely(r != 0)) {
466 			radeon_wb_fini(rdev);
467 			return r;
468 		}
469 		r = radeon_bo_pin(rdev->wb.wb_obj, RADEON_GEM_DOMAIN_GTT,
470 				&rdev->wb.gpu_addr);
471 		if (r) {
472 			radeon_bo_unreserve(rdev->wb.wb_obj);
473 			dev_warn(rdev->dev, "(%d) pin WB bo failed\n", r);
474 			radeon_wb_fini(rdev);
475 			return r;
476 		}
477 		r = radeon_bo_kmap(rdev->wb.wb_obj, (void **)&rdev->wb.wb);
478 		radeon_bo_unreserve(rdev->wb.wb_obj);
479 		if (r) {
480 			dev_warn(rdev->dev, "(%d) map WB bo failed\n", r);
481 			radeon_wb_fini(rdev);
482 			return r;
483 		}
484 	}
485 
486 	/* clear wb memory */
487 	memset((char *)rdev->wb.wb, 0, RADEON_GPU_PAGE_SIZE);
488 	/* disable event_write fences */
489 	rdev->wb.use_event = false;
490 	/* disabled via module param */
491 	if (radeon_no_wb == 1) {
492 		rdev->wb.enabled = false;
493 	} else {
494 		if (rdev->flags & RADEON_IS_AGP) {
495 			/* often unreliable on AGP */
496 			rdev->wb.enabled = false;
497 		} else if (rdev->family < CHIP_R300) {
498 			/* often unreliable on pre-r300 */
499 			rdev->wb.enabled = false;
500 		} else {
501 			rdev->wb.enabled = true;
502 			/* event_write fences are only available on r600+ */
503 			if (rdev->family >= CHIP_R600) {
504 				rdev->wb.use_event = true;
505 			}
506 		}
507 	}
508 	/* always use writeback/events on NI, APUs */
509 	if (rdev->family >= CHIP_PALM) {
510 		rdev->wb.enabled = true;
511 		rdev->wb.use_event = true;
512 	}
513 
514 	dev_info(rdev->dev, "WB %sabled\n", rdev->wb.enabled ? "en" : "dis");
515 
516 	return 0;
517 }
518 
519 /**
520  * radeon_vram_location - try to find VRAM location
521  * @rdev: radeon device structure holding all necessary informations
522  * @mc: memory controller structure holding memory informations
523  * @base: base address at which to put VRAM
524  *
525  * Function will place try to place VRAM at base address provided
526  * as parameter (which is so far either PCI aperture address or
527  * for IGP TOM base address).
528  *
529  * If there is not enough space to fit the unvisible VRAM in the 32bits
530  * address space then we limit the VRAM size to the aperture.
531  *
532  * If we are using AGP and if the AGP aperture doesn't allow us to have
533  * room for all the VRAM than we restrict the VRAM to the PCI aperture
534  * size and print a warning.
535  *
536  * This function will never fails, worst case are limiting VRAM.
537  *
538  * Note: GTT start, end, size should be initialized before calling this
539  * function on AGP platform.
540  *
541  * Note: We don't explicitly enforce VRAM start to be aligned on VRAM size,
542  * this shouldn't be a problem as we are using the PCI aperture as a reference.
543  * Otherwise this would be needed for rv280, all r3xx, and all r4xx, but
544  * not IGP.
545  *
546  * Note: we use mc_vram_size as on some board we need to program the mc to
547  * cover the whole aperture even if VRAM size is inferior to aperture size
548  * Novell bug 204882 + along with lots of ubuntu ones
549  *
550  * Note: when limiting vram it's safe to overwritte real_vram_size because
551  * we are not in case where real_vram_size is inferior to mc_vram_size (ie
552  * note afected by bogus hw of Novell bug 204882 + along with lots of ubuntu
553  * ones)
554  *
555  * Note: IGP TOM addr should be the same as the aperture addr, we don't
556  * explicitly check for that thought.
557  *
558  * FIXME: when reducing VRAM size align new size on power of 2.
559  */
560 void radeon_vram_location(struct radeon_device *rdev, struct radeon_mc *mc, u64 base)
561 {
562 	uint64_t limit = (uint64_t)radeon_vram_limit << 20;
563 
564 	mc->vram_start = base;
565 	if (mc->mc_vram_size > (rdev->mc.mc_mask - base + 1)) {
566 		dev_warn(rdev->dev, "limiting VRAM to PCI aperture size\n");
567 		mc->real_vram_size = mc->aper_size;
568 		mc->mc_vram_size = mc->aper_size;
569 	}
570 	mc->vram_end = mc->vram_start + mc->mc_vram_size - 1;
571 	if (rdev->flags & RADEON_IS_AGP && mc->vram_end > mc->gtt_start && mc->vram_start <= mc->gtt_end) {
572 		dev_warn(rdev->dev, "limiting VRAM to PCI aperture size\n");
573 		mc->real_vram_size = mc->aper_size;
574 		mc->mc_vram_size = mc->aper_size;
575 	}
576 	mc->vram_end = mc->vram_start + mc->mc_vram_size - 1;
577 	if (limit && limit < mc->real_vram_size)
578 		mc->real_vram_size = limit;
579 	dev_info(rdev->dev, "VRAM: %lluM 0x%016llX - 0x%016llX (%lluM used)\n",
580 			mc->mc_vram_size >> 20, mc->vram_start,
581 			mc->vram_end, mc->real_vram_size >> 20);
582 }
583 
584 /**
585  * radeon_gtt_location - try to find GTT location
586  * @rdev: radeon device structure holding all necessary informations
587  * @mc: memory controller structure holding memory informations
588  *
589  * Function will place try to place GTT before or after VRAM.
590  *
591  * If GTT size is bigger than space left then we ajust GTT size.
592  * Thus function will never fails.
593  *
594  * FIXME: when reducing GTT size align new size on power of 2.
595  */
596 void radeon_gtt_location(struct radeon_device *rdev, struct radeon_mc *mc)
597 {
598 	u64 size_af, size_bf;
599 
600 	size_af = ((rdev->mc.mc_mask - mc->vram_end) + mc->gtt_base_align) & ~mc->gtt_base_align;
601 	size_bf = mc->vram_start & ~mc->gtt_base_align;
602 	if (size_bf > size_af) {
603 		if (mc->gtt_size > size_bf) {
604 			dev_warn(rdev->dev, "limiting GTT\n");
605 			mc->gtt_size = size_bf;
606 		}
607 		mc->gtt_start = (mc->vram_start & ~mc->gtt_base_align) - mc->gtt_size;
608 	} else {
609 		if (mc->gtt_size > size_af) {
610 			dev_warn(rdev->dev, "limiting GTT\n");
611 			mc->gtt_size = size_af;
612 		}
613 		mc->gtt_start = (mc->vram_end + 1 + mc->gtt_base_align) & ~mc->gtt_base_align;
614 	}
615 	mc->gtt_end = mc->gtt_start + mc->gtt_size - 1;
616 	dev_info(rdev->dev, "GTT: %lluM 0x%016llX - 0x%016llX\n",
617 			mc->gtt_size >> 20, mc->gtt_start, mc->gtt_end);
618 }
619 
620 /*
621  * GPU helpers function.
622  */
623 
624 /**
625  * radeon_device_is_virtual - check if we are running is a virtual environment
626  *
627  * Check if the asic has been passed through to a VM (all asics).
628  * Used at driver startup.
629  * Returns true if virtual or false if not.
630  */
631 bool radeon_device_is_virtual(void)
632 {
633 #ifdef CONFIG_X86
634 	return boot_cpu_has(X86_FEATURE_HYPERVISOR);
635 #else
636 	return false;
637 #endif
638 }
639 
640 /**
641  * radeon_card_posted - check if the hw has already been initialized
642  *
643  * @rdev: radeon_device pointer
644  *
645  * Check if the asic has been initialized (all asics).
646  * Used at driver startup.
647  * Returns true if initialized or false if not.
648  */
649 bool radeon_card_posted(struct radeon_device *rdev)
650 {
651 	uint32_t reg;
652 
653 	/* for pass through, always force asic_init for CI */
654 	if (rdev->family >= CHIP_BONAIRE &&
655 	    radeon_device_is_virtual())
656 		return false;
657 
658 	/* required for EFI mode on macbook2,1 which uses an r5xx asic */
659 	if (efi_enabled(EFI_BOOT) &&
660 	    (rdev->pdev->subsystem_vendor == PCI_VENDOR_ID_APPLE) &&
661 	    (rdev->family < CHIP_R600))
662 		return false;
663 
664 	if (ASIC_IS_NODCE(rdev))
665 		goto check_memsize;
666 
667 	/* first check CRTCs */
668 	if (ASIC_IS_DCE4(rdev)) {
669 		reg = RREG32(EVERGREEN_CRTC_CONTROL + EVERGREEN_CRTC0_REGISTER_OFFSET) |
670 			RREG32(EVERGREEN_CRTC_CONTROL + EVERGREEN_CRTC1_REGISTER_OFFSET);
671 			if (rdev->num_crtc >= 4) {
672 				reg |= RREG32(EVERGREEN_CRTC_CONTROL + EVERGREEN_CRTC2_REGISTER_OFFSET) |
673 					RREG32(EVERGREEN_CRTC_CONTROL + EVERGREEN_CRTC3_REGISTER_OFFSET);
674 			}
675 			if (rdev->num_crtc >= 6) {
676 				reg |= RREG32(EVERGREEN_CRTC_CONTROL + EVERGREEN_CRTC4_REGISTER_OFFSET) |
677 					RREG32(EVERGREEN_CRTC_CONTROL + EVERGREEN_CRTC5_REGISTER_OFFSET);
678 			}
679 		if (reg & EVERGREEN_CRTC_MASTER_EN)
680 			return true;
681 	} else if (ASIC_IS_AVIVO(rdev)) {
682 		reg = RREG32(AVIVO_D1CRTC_CONTROL) |
683 		      RREG32(AVIVO_D2CRTC_CONTROL);
684 		if (reg & AVIVO_CRTC_EN) {
685 			return true;
686 		}
687 	} else {
688 		reg = RREG32(RADEON_CRTC_GEN_CNTL) |
689 		      RREG32(RADEON_CRTC2_GEN_CNTL);
690 		if (reg & RADEON_CRTC_EN) {
691 			return true;
692 		}
693 	}
694 
695 check_memsize:
696 	/* then check MEM_SIZE, in case the crtcs are off */
697 	if (rdev->family >= CHIP_R600)
698 		reg = RREG32(R600_CONFIG_MEMSIZE);
699 	else
700 		reg = RREG32(RADEON_CONFIG_MEMSIZE);
701 
702 	if (reg)
703 		return true;
704 
705 	return false;
706 
707 }
708 
709 /**
710  * radeon_update_bandwidth_info - update display bandwidth params
711  *
712  * @rdev: radeon_device pointer
713  *
714  * Used when sclk/mclk are switched or display modes are set.
715  * params are used to calculate display watermarks (all asics)
716  */
717 void radeon_update_bandwidth_info(struct radeon_device *rdev)
718 {
719 	fixed20_12 a;
720 	u32 sclk = rdev->pm.current_sclk;
721 	u32 mclk = rdev->pm.current_mclk;
722 
723 	/* sclk/mclk in Mhz */
724 	a.full = dfixed_const(100);
725 	rdev->pm.sclk.full = dfixed_const(sclk);
726 	rdev->pm.sclk.full = dfixed_div(rdev->pm.sclk, a);
727 	rdev->pm.mclk.full = dfixed_const(mclk);
728 	rdev->pm.mclk.full = dfixed_div(rdev->pm.mclk, a);
729 
730 	if (rdev->flags & RADEON_IS_IGP) {
731 		a.full = dfixed_const(16);
732 		/* core_bandwidth = sclk(Mhz) * 16 */
733 		rdev->pm.core_bandwidth.full = dfixed_div(rdev->pm.sclk, a);
734 	}
735 }
736 
737 /**
738  * radeon_boot_test_post_card - check and possibly initialize the hw
739  *
740  * @rdev: radeon_device pointer
741  *
742  * Check if the asic is initialized and if not, attempt to initialize
743  * it (all asics).
744  * Returns true if initialized or false if not.
745  */
746 bool radeon_boot_test_post_card(struct radeon_device *rdev)
747 {
748 	if (radeon_card_posted(rdev))
749 		return true;
750 
751 	if (rdev->bios) {
752 		DRM_INFO("GPU not posted. posting now...\n");
753 		if (rdev->is_atom_bios)
754 			atom_asic_init(rdev->mode_info.atom_context);
755 		else
756 			radeon_combios_asic_init(rdev->ddev);
757 		return true;
758 	} else {
759 		dev_err(rdev->dev, "Card not posted and no BIOS - ignoring\n");
760 		return false;
761 	}
762 }
763 
764 /**
765  * radeon_dummy_page_init - init dummy page used by the driver
766  *
767  * @rdev: radeon_device pointer
768  *
769  * Allocate the dummy page used by the driver (all asics).
770  * This dummy page is used by the driver as a filler for gart entries
771  * when pages are taken out of the GART
772  * Returns 0 on sucess, -ENOMEM on failure.
773  */
774 int radeon_dummy_page_init(struct radeon_device *rdev)
775 {
776 	if (rdev->dummy_page.page)
777 		return 0;
778 	rdev->dummy_page.page = alloc_page(GFP_DMA32 | GFP_KERNEL | __GFP_ZERO);
779 	if (rdev->dummy_page.page == NULL)
780 		return -ENOMEM;
781 	rdev->dummy_page.addr = pci_map_page(rdev->pdev, rdev->dummy_page.page,
782 					0, PAGE_SIZE, PCI_DMA_BIDIRECTIONAL);
783 	if (pci_dma_mapping_error(rdev->pdev, rdev->dummy_page.addr)) {
784 		dev_err(&rdev->pdev->dev, "Failed to DMA MAP the dummy page\n");
785 		__free_page(rdev->dummy_page.page);
786 		rdev->dummy_page.page = NULL;
787 		return -ENOMEM;
788 	}
789 	rdev->dummy_page.entry = radeon_gart_get_page_entry(rdev->dummy_page.addr,
790 							    RADEON_GART_PAGE_DUMMY);
791 	return 0;
792 }
793 
794 /**
795  * radeon_dummy_page_fini - free dummy page used by the driver
796  *
797  * @rdev: radeon_device pointer
798  *
799  * Frees the dummy page used by the driver (all asics).
800  */
801 void radeon_dummy_page_fini(struct radeon_device *rdev)
802 {
803 	if (rdev->dummy_page.page == NULL)
804 		return;
805 	pci_unmap_page(rdev->pdev, rdev->dummy_page.addr,
806 			PAGE_SIZE, PCI_DMA_BIDIRECTIONAL);
807 	__free_page(rdev->dummy_page.page);
808 	rdev->dummy_page.page = NULL;
809 }
810 
811 
812 /* ATOM accessor methods */
813 /*
814  * ATOM is an interpreted byte code stored in tables in the vbios.  The
815  * driver registers callbacks to access registers and the interpreter
816  * in the driver parses the tables and executes then to program specific
817  * actions (set display modes, asic init, etc.).  See radeon_atombios.c,
818  * atombios.h, and atom.c
819  */
820 
821 /**
822  * cail_pll_read - read PLL register
823  *
824  * @info: atom card_info pointer
825  * @reg: PLL register offset
826  *
827  * Provides a PLL register accessor for the atom interpreter (r4xx+).
828  * Returns the value of the PLL register.
829  */
830 static uint32_t cail_pll_read(struct card_info *info, uint32_t reg)
831 {
832 	struct radeon_device *rdev = info->dev->dev_private;
833 	uint32_t r;
834 
835 	r = rdev->pll_rreg(rdev, reg);
836 	return r;
837 }
838 
839 /**
840  * cail_pll_write - write PLL register
841  *
842  * @info: atom card_info pointer
843  * @reg: PLL register offset
844  * @val: value to write to the pll register
845  *
846  * Provides a PLL register accessor for the atom interpreter (r4xx+).
847  */
848 static void cail_pll_write(struct card_info *info, uint32_t reg, uint32_t val)
849 {
850 	struct radeon_device *rdev = info->dev->dev_private;
851 
852 	rdev->pll_wreg(rdev, reg, val);
853 }
854 
855 /**
856  * cail_mc_read - read MC (Memory Controller) register
857  *
858  * @info: atom card_info pointer
859  * @reg: MC register offset
860  *
861  * Provides an MC register accessor for the atom interpreter (r4xx+).
862  * Returns the value of the MC register.
863  */
864 static uint32_t cail_mc_read(struct card_info *info, uint32_t reg)
865 {
866 	struct radeon_device *rdev = info->dev->dev_private;
867 	uint32_t r;
868 
869 	r = rdev->mc_rreg(rdev, reg);
870 	return r;
871 }
872 
873 /**
874  * cail_mc_write - write MC (Memory Controller) register
875  *
876  * @info: atom card_info pointer
877  * @reg: MC register offset
878  * @val: value to write to the pll register
879  *
880  * Provides a MC register accessor for the atom interpreter (r4xx+).
881  */
882 static void cail_mc_write(struct card_info *info, uint32_t reg, uint32_t val)
883 {
884 	struct radeon_device *rdev = info->dev->dev_private;
885 
886 	rdev->mc_wreg(rdev, reg, val);
887 }
888 
889 /**
890  * cail_reg_write - write MMIO register
891  *
892  * @info: atom card_info pointer
893  * @reg: MMIO register offset
894  * @val: value to write to the pll register
895  *
896  * Provides a MMIO register accessor for the atom interpreter (r4xx+).
897  */
898 static void cail_reg_write(struct card_info *info, uint32_t reg, uint32_t val)
899 {
900 	struct radeon_device *rdev = info->dev->dev_private;
901 
902 	WREG32(reg*4, val);
903 }
904 
905 /**
906  * cail_reg_read - read MMIO register
907  *
908  * @info: atom card_info pointer
909  * @reg: MMIO register offset
910  *
911  * Provides an MMIO register accessor for the atom interpreter (r4xx+).
912  * Returns the value of the MMIO register.
913  */
914 static uint32_t cail_reg_read(struct card_info *info, uint32_t reg)
915 {
916 	struct radeon_device *rdev = info->dev->dev_private;
917 	uint32_t r;
918 
919 	r = RREG32(reg*4);
920 	return r;
921 }
922 
923 /**
924  * cail_ioreg_write - write IO register
925  *
926  * @info: atom card_info pointer
927  * @reg: IO register offset
928  * @val: value to write to the pll register
929  *
930  * Provides a IO register accessor for the atom interpreter (r4xx+).
931  */
932 static void cail_ioreg_write(struct card_info *info, uint32_t reg, uint32_t val)
933 {
934 	struct radeon_device *rdev = info->dev->dev_private;
935 
936 	WREG32_IO(reg*4, val);
937 }
938 
939 /**
940  * cail_ioreg_read - read IO register
941  *
942  * @info: atom card_info pointer
943  * @reg: IO register offset
944  *
945  * Provides an IO register accessor for the atom interpreter (r4xx+).
946  * Returns the value of the IO register.
947  */
948 static uint32_t cail_ioreg_read(struct card_info *info, uint32_t reg)
949 {
950 	struct radeon_device *rdev = info->dev->dev_private;
951 	uint32_t r;
952 
953 	r = RREG32_IO(reg*4);
954 	return r;
955 }
956 
957 /**
958  * radeon_atombios_init - init the driver info and callbacks for atombios
959  *
960  * @rdev: radeon_device pointer
961  *
962  * Initializes the driver info and register access callbacks for the
963  * ATOM interpreter (r4xx+).
964  * Returns 0 on sucess, -ENOMEM on failure.
965  * Called at driver startup.
966  */
967 int radeon_atombios_init(struct radeon_device *rdev)
968 {
969 	struct card_info *atom_card_info =
970 	    kzalloc(sizeof(struct card_info), GFP_KERNEL);
971 
972 	if (!atom_card_info)
973 		return -ENOMEM;
974 
975 	rdev->mode_info.atom_card_info = atom_card_info;
976 	atom_card_info->dev = rdev->ddev;
977 	atom_card_info->reg_read = cail_reg_read;
978 	atom_card_info->reg_write = cail_reg_write;
979 	/* needed for iio ops */
980 	if (rdev->rio_mem) {
981 		atom_card_info->ioreg_read = cail_ioreg_read;
982 		atom_card_info->ioreg_write = cail_ioreg_write;
983 	} else {
984 		DRM_ERROR("Unable to find PCI I/O BAR; using MMIO for ATOM IIO\n");
985 		atom_card_info->ioreg_read = cail_reg_read;
986 		atom_card_info->ioreg_write = cail_reg_write;
987 	}
988 	atom_card_info->mc_read = cail_mc_read;
989 	atom_card_info->mc_write = cail_mc_write;
990 	atom_card_info->pll_read = cail_pll_read;
991 	atom_card_info->pll_write = cail_pll_write;
992 
993 	rdev->mode_info.atom_context = atom_parse(atom_card_info, rdev->bios);
994 	if (!rdev->mode_info.atom_context) {
995 		radeon_atombios_fini(rdev);
996 		return -ENOMEM;
997 	}
998 
999 	mutex_init(&rdev->mode_info.atom_context->mutex);
1000 	mutex_init(&rdev->mode_info.atom_context->scratch_mutex);
1001 	radeon_atom_initialize_bios_scratch_regs(rdev->ddev);
1002 	atom_allocate_fb_scratch(rdev->mode_info.atom_context);
1003 	return 0;
1004 }
1005 
1006 /**
1007  * radeon_atombios_fini - free the driver info and callbacks for atombios
1008  *
1009  * @rdev: radeon_device pointer
1010  *
1011  * Frees the driver info and register access callbacks for the ATOM
1012  * interpreter (r4xx+).
1013  * Called at driver shutdown.
1014  */
1015 void radeon_atombios_fini(struct radeon_device *rdev)
1016 {
1017 	if (rdev->mode_info.atom_context) {
1018 		kfree(rdev->mode_info.atom_context->scratch);
1019 	}
1020 	kfree(rdev->mode_info.atom_context);
1021 	rdev->mode_info.atom_context = NULL;
1022 	kfree(rdev->mode_info.atom_card_info);
1023 	rdev->mode_info.atom_card_info = NULL;
1024 }
1025 
1026 /* COMBIOS */
1027 /*
1028  * COMBIOS is the bios format prior to ATOM. It provides
1029  * command tables similar to ATOM, but doesn't have a unified
1030  * parser.  See radeon_combios.c
1031  */
1032 
1033 /**
1034  * radeon_combios_init - init the driver info for combios
1035  *
1036  * @rdev: radeon_device pointer
1037  *
1038  * Initializes the driver info for combios (r1xx-r3xx).
1039  * Returns 0 on sucess.
1040  * Called at driver startup.
1041  */
1042 int radeon_combios_init(struct radeon_device *rdev)
1043 {
1044 	radeon_combios_initialize_bios_scratch_regs(rdev->ddev);
1045 	return 0;
1046 }
1047 
1048 /**
1049  * radeon_combios_fini - free the driver info for combios
1050  *
1051  * @rdev: radeon_device pointer
1052  *
1053  * Frees the driver info for combios (r1xx-r3xx).
1054  * Called at driver shutdown.
1055  */
1056 void radeon_combios_fini(struct radeon_device *rdev)
1057 {
1058 }
1059 
1060 /* if we get transitioned to only one device, take VGA back */
1061 /**
1062  * radeon_vga_set_decode - enable/disable vga decode
1063  *
1064  * @cookie: radeon_device pointer
1065  * @state: enable/disable vga decode
1066  *
1067  * Enable/disable vga decode (all asics).
1068  * Returns VGA resource flags.
1069  */
1070 static unsigned int radeon_vga_set_decode(void *cookie, bool state)
1071 {
1072 	struct radeon_device *rdev = cookie;
1073 	radeon_vga_set_state(rdev, state);
1074 	if (state)
1075 		return VGA_RSRC_LEGACY_IO | VGA_RSRC_LEGACY_MEM |
1076 		       VGA_RSRC_NORMAL_IO | VGA_RSRC_NORMAL_MEM;
1077 	else
1078 		return VGA_RSRC_NORMAL_IO | VGA_RSRC_NORMAL_MEM;
1079 }
1080 
1081 /**
1082  * radeon_check_pot_argument - check that argument is a power of two
1083  *
1084  * @arg: value to check
1085  *
1086  * Validates that a certain argument is a power of two (all asics).
1087  * Returns true if argument is valid.
1088  */
1089 static bool radeon_check_pot_argument(int arg)
1090 {
1091 	return (arg & (arg - 1)) == 0;
1092 }
1093 
1094 /**
1095  * Determine a sensible default GART size according to ASIC family.
1096  *
1097  * @family ASIC family name
1098  */
1099 static int radeon_gart_size_auto(enum radeon_family family)
1100 {
1101 	/* default to a larger gart size on newer asics */
1102 	if (family >= CHIP_TAHITI)
1103 		return 2048;
1104 	else if (family >= CHIP_RV770)
1105 		return 1024;
1106 	else
1107 		return 512;
1108 }
1109 
1110 /**
1111  * radeon_check_arguments - validate module params
1112  *
1113  * @rdev: radeon_device pointer
1114  *
1115  * Validates certain module parameters and updates
1116  * the associated values used by the driver (all asics).
1117  */
1118 static void radeon_check_arguments(struct radeon_device *rdev)
1119 {
1120 	/* vramlimit must be a power of two */
1121 	if (!radeon_check_pot_argument(radeon_vram_limit)) {
1122 		dev_warn(rdev->dev, "vram limit (%d) must be a power of 2\n",
1123 				radeon_vram_limit);
1124 		radeon_vram_limit = 0;
1125 	}
1126 
1127 	if (radeon_gart_size == -1) {
1128 		radeon_gart_size = radeon_gart_size_auto(rdev->family);
1129 	}
1130 	/* gtt size must be power of two and greater or equal to 32M */
1131 	if (radeon_gart_size < 32) {
1132 		dev_warn(rdev->dev, "gart size (%d) too small\n",
1133 				radeon_gart_size);
1134 		radeon_gart_size = radeon_gart_size_auto(rdev->family);
1135 	} else if (!radeon_check_pot_argument(radeon_gart_size)) {
1136 		dev_warn(rdev->dev, "gart size (%d) must be a power of 2\n",
1137 				radeon_gart_size);
1138 		radeon_gart_size = radeon_gart_size_auto(rdev->family);
1139 	}
1140 	rdev->mc.gtt_size = (uint64_t)radeon_gart_size << 20;
1141 
1142 	/* AGP mode can only be -1, 1, 2, 4, 8 */
1143 	switch (radeon_agpmode) {
1144 	case -1:
1145 	case 0:
1146 	case 1:
1147 	case 2:
1148 	case 4:
1149 	case 8:
1150 		break;
1151 	default:
1152 		dev_warn(rdev->dev, "invalid AGP mode %d (valid mode: "
1153 				"-1, 0, 1, 2, 4, 8)\n", radeon_agpmode);
1154 		radeon_agpmode = 0;
1155 		break;
1156 	}
1157 
1158 	if (!radeon_check_pot_argument(radeon_vm_size)) {
1159 		dev_warn(rdev->dev, "VM size (%d) must be a power of 2\n",
1160 			 radeon_vm_size);
1161 		radeon_vm_size = 4;
1162 	}
1163 
1164 	if (radeon_vm_size < 1) {
1165 		dev_warn(rdev->dev, "VM size (%d) too small, min is 1GB\n",
1166 			 radeon_vm_size);
1167 		radeon_vm_size = 4;
1168 	}
1169 
1170 	/*
1171 	 * Max GPUVM size for Cayman, SI and CI are 40 bits.
1172 	 */
1173 	if (radeon_vm_size > 1024) {
1174 		dev_warn(rdev->dev, "VM size (%d) too large, max is 1TB\n",
1175 			 radeon_vm_size);
1176 		radeon_vm_size = 4;
1177 	}
1178 
1179 	/* defines number of bits in page table versus page directory,
1180 	 * a page is 4KB so we have 12 bits offset, minimum 9 bits in the
1181 	 * page table and the remaining bits are in the page directory */
1182 	if (radeon_vm_block_size == -1) {
1183 
1184 		/* Total bits covered by PD + PTs */
1185 		unsigned bits = ilog2(radeon_vm_size) + 18;
1186 
1187 		/* Make sure the PD is 4K in size up to 8GB address space.
1188 		   Above that split equal between PD and PTs */
1189 		if (radeon_vm_size <= 8)
1190 			radeon_vm_block_size = bits - 9;
1191 		else
1192 			radeon_vm_block_size = (bits + 3) / 2;
1193 
1194 	} else if (radeon_vm_block_size < 9) {
1195 		dev_warn(rdev->dev, "VM page table size (%d) too small\n",
1196 			 radeon_vm_block_size);
1197 		radeon_vm_block_size = 9;
1198 	}
1199 
1200 	if (radeon_vm_block_size > 24 ||
1201 	    (radeon_vm_size * 1024) < (1ull << radeon_vm_block_size)) {
1202 		dev_warn(rdev->dev, "VM page table size (%d) too large\n",
1203 			 radeon_vm_block_size);
1204 		radeon_vm_block_size = 9;
1205 	}
1206 }
1207 
1208 /**
1209  * radeon_switcheroo_set_state - set switcheroo state
1210  *
1211  * @pdev: pci dev pointer
1212  * @state: vga_switcheroo state
1213  *
1214  * Callback for the switcheroo driver.  Suspends or resumes the
1215  * the asics before or after it is powered up using ACPI methods.
1216  */
1217 static void radeon_switcheroo_set_state(struct pci_dev *pdev, enum vga_switcheroo_state state)
1218 {
1219 	struct drm_device *dev = pci_get_drvdata(pdev);
1220 
1221 	if (radeon_is_px(dev) && state == VGA_SWITCHEROO_OFF)
1222 		return;
1223 
1224 	if (state == VGA_SWITCHEROO_ON) {
1225 		pr_info("radeon: switched on\n");
1226 		/* don't suspend or resume card normally */
1227 		dev->switch_power_state = DRM_SWITCH_POWER_CHANGING;
1228 
1229 		radeon_resume_kms(dev, true, true);
1230 
1231 		dev->switch_power_state = DRM_SWITCH_POWER_ON;
1232 		drm_kms_helper_poll_enable(dev);
1233 	} else {
1234 		pr_info("radeon: switched off\n");
1235 		drm_kms_helper_poll_disable(dev);
1236 		dev->switch_power_state = DRM_SWITCH_POWER_CHANGING;
1237 		radeon_suspend_kms(dev, true, true, false);
1238 		dev->switch_power_state = DRM_SWITCH_POWER_OFF;
1239 	}
1240 }
1241 
1242 /**
1243  * radeon_switcheroo_can_switch - see if switcheroo state can change
1244  *
1245  * @pdev: pci dev pointer
1246  *
1247  * Callback for the switcheroo driver.  Check of the switcheroo
1248  * state can be changed.
1249  * Returns true if the state can be changed, false if not.
1250  */
1251 static bool radeon_switcheroo_can_switch(struct pci_dev *pdev)
1252 {
1253 	struct drm_device *dev = pci_get_drvdata(pdev);
1254 
1255 	/*
1256 	 * FIXME: open_count is protected by drm_global_mutex but that would lead to
1257 	 * locking inversion with the driver load path. And the access here is
1258 	 * completely racy anyway. So don't bother with locking for now.
1259 	 */
1260 	return dev->open_count == 0;
1261 }
1262 
1263 static const struct vga_switcheroo_client_ops radeon_switcheroo_ops = {
1264 	.set_gpu_state = radeon_switcheroo_set_state,
1265 	.reprobe = NULL,
1266 	.can_switch = radeon_switcheroo_can_switch,
1267 };
1268 
1269 /**
1270  * radeon_device_init - initialize the driver
1271  *
1272  * @rdev: radeon_device pointer
1273  * @pdev: drm dev pointer
1274  * @pdev: pci dev pointer
1275  * @flags: driver flags
1276  *
1277  * Initializes the driver info and hw (all asics).
1278  * Returns 0 for success or an error on failure.
1279  * Called at driver startup.
1280  */
1281 int radeon_device_init(struct radeon_device *rdev,
1282 		       struct drm_device *ddev,
1283 		       struct pci_dev *pdev,
1284 		       uint32_t flags)
1285 {
1286 	int r, i;
1287 	int dma_bits;
1288 	bool runtime = false;
1289 
1290 	rdev->shutdown = false;
1291 	rdev->dev = &pdev->dev;
1292 	rdev->ddev = ddev;
1293 	rdev->pdev = pdev;
1294 	rdev->flags = flags;
1295 	rdev->family = flags & RADEON_FAMILY_MASK;
1296 	rdev->is_atom_bios = false;
1297 	rdev->usec_timeout = RADEON_MAX_USEC_TIMEOUT;
1298 	rdev->mc.gtt_size = 512 * 1024 * 1024;
1299 	rdev->accel_working = false;
1300 	/* set up ring ids */
1301 	for (i = 0; i < RADEON_NUM_RINGS; i++) {
1302 		rdev->ring[i].idx = i;
1303 	}
1304 	rdev->fence_context = dma_fence_context_alloc(RADEON_NUM_RINGS);
1305 
1306 	DRM_INFO("initializing kernel modesetting (%s 0x%04X:0x%04X 0x%04X:0x%04X 0x%02X).\n",
1307 		 radeon_family_name[rdev->family], pdev->vendor, pdev->device,
1308 		 pdev->subsystem_vendor, pdev->subsystem_device, pdev->revision);
1309 
1310 	/* mutex initialization are all done here so we
1311 	 * can recall function without having locking issues */
1312 	mutex_init(&rdev->ring_lock);
1313 	mutex_init(&rdev->dc_hw_i2c_mutex);
1314 	atomic_set(&rdev->ih.lock, 0);
1315 	mutex_init(&rdev->gem.mutex);
1316 	mutex_init(&rdev->pm.mutex);
1317 	mutex_init(&rdev->gpu_clock_mutex);
1318 	mutex_init(&rdev->srbm_mutex);
1319 	init_rwsem(&rdev->pm.mclk_lock);
1320 	init_rwsem(&rdev->exclusive_lock);
1321 	init_waitqueue_head(&rdev->irq.vblank_queue);
1322 	mutex_init(&rdev->mn_lock);
1323 	hash_init(rdev->mn_hash);
1324 	r = radeon_gem_init(rdev);
1325 	if (r)
1326 		return r;
1327 
1328 	radeon_check_arguments(rdev);
1329 	/* Adjust VM size here.
1330 	 * Max GPUVM size for cayman+ is 40 bits.
1331 	 */
1332 	rdev->vm_manager.max_pfn = radeon_vm_size << 18;
1333 
1334 	/* Set asic functions */
1335 	r = radeon_asic_init(rdev);
1336 	if (r)
1337 		return r;
1338 
1339 	/* all of the newer IGP chips have an internal gart
1340 	 * However some rs4xx report as AGP, so remove that here.
1341 	 */
1342 	if ((rdev->family >= CHIP_RS400) &&
1343 	    (rdev->flags & RADEON_IS_IGP)) {
1344 		rdev->flags &= ~RADEON_IS_AGP;
1345 	}
1346 
1347 	if (rdev->flags & RADEON_IS_AGP && radeon_agpmode == -1) {
1348 		radeon_agp_disable(rdev);
1349 	}
1350 
1351 	/* Set the internal MC address mask
1352 	 * This is the max address of the GPU's
1353 	 * internal address space.
1354 	 */
1355 	if (rdev->family >= CHIP_CAYMAN)
1356 		rdev->mc.mc_mask = 0xffffffffffULL; /* 40 bit MC */
1357 	else if (rdev->family >= CHIP_CEDAR)
1358 		rdev->mc.mc_mask = 0xfffffffffULL; /* 36 bit MC */
1359 	else
1360 		rdev->mc.mc_mask = 0xffffffffULL; /* 32 bit MC */
1361 
1362 	/* set DMA mask + need_dma32 flags.
1363 	 * PCIE - can handle 40-bits.
1364 	 * IGP - can handle 40-bits
1365 	 * AGP - generally dma32 is safest
1366 	 * PCI - dma32 for legacy pci gart, 40 bits on newer asics
1367 	 */
1368 	rdev->need_dma32 = false;
1369 	if (rdev->flags & RADEON_IS_AGP)
1370 		rdev->need_dma32 = true;
1371 	if ((rdev->flags & RADEON_IS_PCI) &&
1372 	    (rdev->family <= CHIP_RS740))
1373 		rdev->need_dma32 = true;
1374 #ifdef CONFIG_PPC64
1375 	if (rdev->family == CHIP_CEDAR)
1376 		rdev->need_dma32 = true;
1377 #endif
1378 
1379 	dma_bits = rdev->need_dma32 ? 32 : 40;
1380 	r = pci_set_dma_mask(rdev->pdev, DMA_BIT_MASK(dma_bits));
1381 	if (r) {
1382 		rdev->need_dma32 = true;
1383 		dma_bits = 32;
1384 		pr_warn("radeon: No suitable DMA available\n");
1385 	}
1386 	r = pci_set_consistent_dma_mask(rdev->pdev, DMA_BIT_MASK(dma_bits));
1387 	if (r) {
1388 		pci_set_consistent_dma_mask(rdev->pdev, DMA_BIT_MASK(32));
1389 		pr_warn("radeon: No coherent DMA available\n");
1390 	}
1391 	rdev->need_swiotlb = drm_get_max_iomem() > ((u64)1 << dma_bits);
1392 
1393 	/* Registers mapping */
1394 	/* TODO: block userspace mapping of io register */
1395 	spin_lock_init(&rdev->mmio_idx_lock);
1396 	spin_lock_init(&rdev->smc_idx_lock);
1397 	spin_lock_init(&rdev->pll_idx_lock);
1398 	spin_lock_init(&rdev->mc_idx_lock);
1399 	spin_lock_init(&rdev->pcie_idx_lock);
1400 	spin_lock_init(&rdev->pciep_idx_lock);
1401 	spin_lock_init(&rdev->pif_idx_lock);
1402 	spin_lock_init(&rdev->cg_idx_lock);
1403 	spin_lock_init(&rdev->uvd_idx_lock);
1404 	spin_lock_init(&rdev->rcu_idx_lock);
1405 	spin_lock_init(&rdev->didt_idx_lock);
1406 	spin_lock_init(&rdev->end_idx_lock);
1407 	if (rdev->family >= CHIP_BONAIRE) {
1408 		rdev->rmmio_base = pci_resource_start(rdev->pdev, 5);
1409 		rdev->rmmio_size = pci_resource_len(rdev->pdev, 5);
1410 	} else {
1411 		rdev->rmmio_base = pci_resource_start(rdev->pdev, 2);
1412 		rdev->rmmio_size = pci_resource_len(rdev->pdev, 2);
1413 	}
1414 	rdev->rmmio = ioremap(rdev->rmmio_base, rdev->rmmio_size);
1415 	if (rdev->rmmio == NULL)
1416 		return -ENOMEM;
1417 
1418 	/* doorbell bar mapping */
1419 	if (rdev->family >= CHIP_BONAIRE)
1420 		radeon_doorbell_init(rdev);
1421 
1422 	/* io port mapping */
1423 	for (i = 0; i < DEVICE_COUNT_RESOURCE; i++) {
1424 		if (pci_resource_flags(rdev->pdev, i) & IORESOURCE_IO) {
1425 			rdev->rio_mem_size = pci_resource_len(rdev->pdev, i);
1426 			rdev->rio_mem = pci_iomap(rdev->pdev, i, rdev->rio_mem_size);
1427 			break;
1428 		}
1429 	}
1430 	if (rdev->rio_mem == NULL)
1431 		DRM_ERROR("Unable to find PCI I/O BAR\n");
1432 
1433 	if (rdev->flags & RADEON_IS_PX)
1434 		radeon_device_handle_px_quirks(rdev);
1435 
1436 	/* if we have > 1 VGA cards, then disable the radeon VGA resources */
1437 	/* this will fail for cards that aren't VGA class devices, just
1438 	 * ignore it */
1439 	vga_client_register(rdev->pdev, rdev, NULL, radeon_vga_set_decode);
1440 
1441 	if (rdev->flags & RADEON_IS_PX)
1442 		runtime = true;
1443 	if (!pci_is_thunderbolt_attached(rdev->pdev))
1444 		vga_switcheroo_register_client(rdev->pdev,
1445 					       &radeon_switcheroo_ops, runtime);
1446 	if (runtime)
1447 		vga_switcheroo_init_domain_pm_ops(rdev->dev, &rdev->vga_pm_domain);
1448 
1449 	r = radeon_init(rdev);
1450 	if (r)
1451 		goto failed;
1452 
1453 	r = radeon_gem_debugfs_init(rdev);
1454 	if (r) {
1455 		DRM_ERROR("registering gem debugfs failed (%d).\n", r);
1456 	}
1457 
1458 	r = radeon_mst_debugfs_init(rdev);
1459 	if (r) {
1460 		DRM_ERROR("registering mst debugfs failed (%d).\n", r);
1461 	}
1462 
1463 	if (rdev->flags & RADEON_IS_AGP && !rdev->accel_working) {
1464 		/* Acceleration not working on AGP card try again
1465 		 * with fallback to PCI or PCIE GART
1466 		 */
1467 		radeon_asic_reset(rdev);
1468 		radeon_fini(rdev);
1469 		radeon_agp_disable(rdev);
1470 		r = radeon_init(rdev);
1471 		if (r)
1472 			goto failed;
1473 	}
1474 
1475 	r = radeon_ib_ring_tests(rdev);
1476 	if (r)
1477 		DRM_ERROR("ib ring test failed (%d).\n", r);
1478 
1479 	/*
1480 	 * Turks/Thames GPU will freeze whole laptop if DPM is not restarted
1481 	 * after the CP ring have chew one packet at least. Hence here we stop
1482 	 * and restart DPM after the radeon_ib_ring_tests().
1483 	 */
1484 	if (rdev->pm.dpm_enabled &&
1485 	    (rdev->pm.pm_method == PM_METHOD_DPM) &&
1486 	    (rdev->family == CHIP_TURKS) &&
1487 	    (rdev->flags & RADEON_IS_MOBILITY)) {
1488 		mutex_lock(&rdev->pm.mutex);
1489 		radeon_dpm_disable(rdev);
1490 		radeon_dpm_enable(rdev);
1491 		mutex_unlock(&rdev->pm.mutex);
1492 	}
1493 
1494 	if ((radeon_testing & 1)) {
1495 		if (rdev->accel_working)
1496 			radeon_test_moves(rdev);
1497 		else
1498 			DRM_INFO("radeon: acceleration disabled, skipping move tests\n");
1499 	}
1500 	if ((radeon_testing & 2)) {
1501 		if (rdev->accel_working)
1502 			radeon_test_syncing(rdev);
1503 		else
1504 			DRM_INFO("radeon: acceleration disabled, skipping sync tests\n");
1505 	}
1506 	if (radeon_benchmarking) {
1507 		if (rdev->accel_working)
1508 			radeon_benchmark(rdev, radeon_benchmarking);
1509 		else
1510 			DRM_INFO("radeon: acceleration disabled, skipping benchmarks\n");
1511 	}
1512 	return 0;
1513 
1514 failed:
1515 	/* balance pm_runtime_get_sync() in radeon_driver_unload_kms() */
1516 	if (radeon_is_px(ddev))
1517 		pm_runtime_put_noidle(ddev->dev);
1518 	if (runtime)
1519 		vga_switcheroo_fini_domain_pm_ops(rdev->dev);
1520 	return r;
1521 }
1522 
1523 /**
1524  * radeon_device_fini - tear down the driver
1525  *
1526  * @rdev: radeon_device pointer
1527  *
1528  * Tear down the driver info (all asics).
1529  * Called at driver shutdown.
1530  */
1531 void radeon_device_fini(struct radeon_device *rdev)
1532 {
1533 	DRM_INFO("radeon: finishing device.\n");
1534 	rdev->shutdown = true;
1535 	/* evict vram memory */
1536 	radeon_bo_evict_vram(rdev);
1537 	radeon_fini(rdev);
1538 	if (!pci_is_thunderbolt_attached(rdev->pdev))
1539 		vga_switcheroo_unregister_client(rdev->pdev);
1540 	if (rdev->flags & RADEON_IS_PX)
1541 		vga_switcheroo_fini_domain_pm_ops(rdev->dev);
1542 	vga_client_register(rdev->pdev, NULL, NULL, NULL);
1543 	if (rdev->rio_mem)
1544 		pci_iounmap(rdev->pdev, rdev->rio_mem);
1545 	rdev->rio_mem = NULL;
1546 	iounmap(rdev->rmmio);
1547 	rdev->rmmio = NULL;
1548 	if (rdev->family >= CHIP_BONAIRE)
1549 		radeon_doorbell_fini(rdev);
1550 }
1551 
1552 
1553 /*
1554  * Suspend & resume.
1555  */
1556 /**
1557  * radeon_suspend_kms - initiate device suspend
1558  *
1559  * @pdev: drm dev pointer
1560  * @state: suspend state
1561  *
1562  * Puts the hw in the suspend state (all asics).
1563  * Returns 0 for success or an error on failure.
1564  * Called at driver suspend.
1565  */
1566 int radeon_suspend_kms(struct drm_device *dev, bool suspend,
1567 		       bool fbcon, bool freeze)
1568 {
1569 	struct radeon_device *rdev;
1570 	struct drm_crtc *crtc;
1571 	struct drm_connector *connector;
1572 	int i, r;
1573 
1574 	if (dev == NULL || dev->dev_private == NULL) {
1575 		return -ENODEV;
1576 	}
1577 
1578 	rdev = dev->dev_private;
1579 
1580 	if (dev->switch_power_state == DRM_SWITCH_POWER_OFF)
1581 		return 0;
1582 
1583 	drm_kms_helper_poll_disable(dev);
1584 
1585 	drm_modeset_lock_all(dev);
1586 	/* turn off display hw */
1587 	list_for_each_entry(connector, &dev->mode_config.connector_list, head) {
1588 		drm_helper_connector_dpms(connector, DRM_MODE_DPMS_OFF);
1589 	}
1590 	drm_modeset_unlock_all(dev);
1591 
1592 	/* unpin the front buffers and cursors */
1593 	list_for_each_entry(crtc, &dev->mode_config.crtc_list, head) {
1594 		struct radeon_crtc *radeon_crtc = to_radeon_crtc(crtc);
1595 		struct drm_framebuffer *fb = crtc->primary->fb;
1596 		struct radeon_bo *robj;
1597 
1598 		if (radeon_crtc->cursor_bo) {
1599 			struct radeon_bo *robj = gem_to_radeon_bo(radeon_crtc->cursor_bo);
1600 			r = radeon_bo_reserve(robj, false);
1601 			if (r == 0) {
1602 				radeon_bo_unpin(robj);
1603 				radeon_bo_unreserve(robj);
1604 			}
1605 		}
1606 
1607 		if (fb == NULL || fb->obj[0] == NULL) {
1608 			continue;
1609 		}
1610 		robj = gem_to_radeon_bo(fb->obj[0]);
1611 		/* don't unpin kernel fb objects */
1612 		if (!radeon_fbdev_robj_is_fb(rdev, robj)) {
1613 			r = radeon_bo_reserve(robj, false);
1614 			if (r == 0) {
1615 				radeon_bo_unpin(robj);
1616 				radeon_bo_unreserve(robj);
1617 			}
1618 		}
1619 	}
1620 	/* evict vram memory */
1621 	radeon_bo_evict_vram(rdev);
1622 
1623 	/* wait for gpu to finish processing current batch */
1624 	for (i = 0; i < RADEON_NUM_RINGS; i++) {
1625 		r = radeon_fence_wait_empty(rdev, i);
1626 		if (r) {
1627 			/* delay GPU reset to resume */
1628 			radeon_fence_driver_force_completion(rdev, i);
1629 		}
1630 	}
1631 
1632 	radeon_save_bios_scratch_regs(rdev);
1633 
1634 	radeon_suspend(rdev);
1635 	radeon_hpd_fini(rdev);
1636 	/* evict remaining vram memory
1637 	 * This second call to evict vram is to evict the gart page table
1638 	 * using the CPU.
1639 	 */
1640 	radeon_bo_evict_vram(rdev);
1641 
1642 	radeon_agp_suspend(rdev);
1643 
1644 	pci_save_state(dev->pdev);
1645 	if (freeze && rdev->family >= CHIP_CEDAR && !(rdev->flags & RADEON_IS_IGP)) {
1646 		rdev->asic->asic_reset(rdev, true);
1647 		pci_restore_state(dev->pdev);
1648 	} else if (suspend) {
1649 		/* Shut down the device */
1650 		pci_disable_device(dev->pdev);
1651 		pci_set_power_state(dev->pdev, PCI_D3hot);
1652 	}
1653 
1654 	if (fbcon) {
1655 		console_lock();
1656 		radeon_fbdev_set_suspend(rdev, 1);
1657 		console_unlock();
1658 	}
1659 	return 0;
1660 }
1661 
1662 /**
1663  * radeon_resume_kms - initiate device resume
1664  *
1665  * @pdev: drm dev pointer
1666  *
1667  * Bring the hw back to operating state (all asics).
1668  * Returns 0 for success or an error on failure.
1669  * Called at driver resume.
1670  */
1671 int radeon_resume_kms(struct drm_device *dev, bool resume, bool fbcon)
1672 {
1673 	struct drm_connector *connector;
1674 	struct radeon_device *rdev = dev->dev_private;
1675 	struct drm_crtc *crtc;
1676 	int r;
1677 
1678 	if (dev->switch_power_state == DRM_SWITCH_POWER_OFF)
1679 		return 0;
1680 
1681 	if (fbcon) {
1682 		console_lock();
1683 	}
1684 	if (resume) {
1685 		pci_set_power_state(dev->pdev, PCI_D0);
1686 		pci_restore_state(dev->pdev);
1687 		if (pci_enable_device(dev->pdev)) {
1688 			if (fbcon)
1689 				console_unlock();
1690 			return -1;
1691 		}
1692 	}
1693 	/* resume AGP if in use */
1694 	radeon_agp_resume(rdev);
1695 	radeon_resume(rdev);
1696 
1697 	r = radeon_ib_ring_tests(rdev);
1698 	if (r)
1699 		DRM_ERROR("ib ring test failed (%d).\n", r);
1700 
1701 	if ((rdev->pm.pm_method == PM_METHOD_DPM) && rdev->pm.dpm_enabled) {
1702 		/* do dpm late init */
1703 		r = radeon_pm_late_init(rdev);
1704 		if (r) {
1705 			rdev->pm.dpm_enabled = false;
1706 			DRM_ERROR("radeon_pm_late_init failed, disabling dpm\n");
1707 		}
1708 	} else {
1709 		/* resume old pm late */
1710 		radeon_pm_resume(rdev);
1711 	}
1712 
1713 	radeon_restore_bios_scratch_regs(rdev);
1714 
1715 	/* pin cursors */
1716 	list_for_each_entry(crtc, &dev->mode_config.crtc_list, head) {
1717 		struct radeon_crtc *radeon_crtc = to_radeon_crtc(crtc);
1718 
1719 		if (radeon_crtc->cursor_bo) {
1720 			struct radeon_bo *robj = gem_to_radeon_bo(radeon_crtc->cursor_bo);
1721 			r = radeon_bo_reserve(robj, false);
1722 			if (r == 0) {
1723 				/* Only 27 bit offset for legacy cursor */
1724 				r = radeon_bo_pin_restricted(robj,
1725 							     RADEON_GEM_DOMAIN_VRAM,
1726 							     ASIC_IS_AVIVO(rdev) ?
1727 							     0 : 1 << 27,
1728 							     &radeon_crtc->cursor_addr);
1729 				if (r != 0)
1730 					DRM_ERROR("Failed to pin cursor BO (%d)\n", r);
1731 				radeon_bo_unreserve(robj);
1732 			}
1733 		}
1734 	}
1735 
1736 	/* init dig PHYs, disp eng pll */
1737 	if (rdev->is_atom_bios) {
1738 		radeon_atom_encoder_init(rdev);
1739 		radeon_atom_disp_eng_pll_init(rdev);
1740 		/* turn on the BL */
1741 		if (rdev->mode_info.bl_encoder) {
1742 			u8 bl_level = radeon_get_backlight_level(rdev,
1743 								 rdev->mode_info.bl_encoder);
1744 			radeon_set_backlight_level(rdev, rdev->mode_info.bl_encoder,
1745 						   bl_level);
1746 		}
1747 	}
1748 	/* reset hpd state */
1749 	radeon_hpd_init(rdev);
1750 	/* blat the mode back in */
1751 	if (fbcon) {
1752 		drm_helper_resume_force_mode(dev);
1753 		/* turn on display hw */
1754 		drm_modeset_lock_all(dev);
1755 		list_for_each_entry(connector, &dev->mode_config.connector_list, head) {
1756 			drm_helper_connector_dpms(connector, DRM_MODE_DPMS_ON);
1757 		}
1758 		drm_modeset_unlock_all(dev);
1759 	}
1760 
1761 	drm_kms_helper_poll_enable(dev);
1762 
1763 	/* set the power state here in case we are a PX system or headless */
1764 	if ((rdev->pm.pm_method == PM_METHOD_DPM) && rdev->pm.dpm_enabled)
1765 		radeon_pm_compute_clocks(rdev);
1766 
1767 	if (fbcon) {
1768 		radeon_fbdev_set_suspend(rdev, 0);
1769 		console_unlock();
1770 	}
1771 
1772 	return 0;
1773 }
1774 
1775 /**
1776  * radeon_gpu_reset - reset the asic
1777  *
1778  * @rdev: radeon device pointer
1779  *
1780  * Attempt the reset the GPU if it has hung (all asics).
1781  * Returns 0 for success or an error on failure.
1782  */
1783 int radeon_gpu_reset(struct radeon_device *rdev)
1784 {
1785 	unsigned ring_sizes[RADEON_NUM_RINGS];
1786 	uint32_t *ring_data[RADEON_NUM_RINGS];
1787 
1788 	bool saved = false;
1789 
1790 	int i, r;
1791 	int resched;
1792 
1793 	down_write(&rdev->exclusive_lock);
1794 
1795 	if (!rdev->needs_reset) {
1796 		up_write(&rdev->exclusive_lock);
1797 		return 0;
1798 	}
1799 
1800 	atomic_inc(&rdev->gpu_reset_counter);
1801 
1802 	radeon_save_bios_scratch_regs(rdev);
1803 	/* block TTM */
1804 	resched = ttm_bo_lock_delayed_workqueue(&rdev->mman.bdev);
1805 	radeon_suspend(rdev);
1806 	radeon_hpd_fini(rdev);
1807 
1808 	for (i = 0; i < RADEON_NUM_RINGS; ++i) {
1809 		ring_sizes[i] = radeon_ring_backup(rdev, &rdev->ring[i],
1810 						   &ring_data[i]);
1811 		if (ring_sizes[i]) {
1812 			saved = true;
1813 			dev_info(rdev->dev, "Saved %d dwords of commands "
1814 				 "on ring %d.\n", ring_sizes[i], i);
1815 		}
1816 	}
1817 
1818 	r = radeon_asic_reset(rdev);
1819 	if (!r) {
1820 		dev_info(rdev->dev, "GPU reset succeeded, trying to resume\n");
1821 		radeon_resume(rdev);
1822 	}
1823 
1824 	radeon_restore_bios_scratch_regs(rdev);
1825 
1826 	for (i = 0; i < RADEON_NUM_RINGS; ++i) {
1827 		if (!r && ring_data[i]) {
1828 			radeon_ring_restore(rdev, &rdev->ring[i],
1829 					    ring_sizes[i], ring_data[i]);
1830 		} else {
1831 			radeon_fence_driver_force_completion(rdev, i);
1832 			kfree(ring_data[i]);
1833 		}
1834 	}
1835 
1836 	if ((rdev->pm.pm_method == PM_METHOD_DPM) && rdev->pm.dpm_enabled) {
1837 		/* do dpm late init */
1838 		r = radeon_pm_late_init(rdev);
1839 		if (r) {
1840 			rdev->pm.dpm_enabled = false;
1841 			DRM_ERROR("radeon_pm_late_init failed, disabling dpm\n");
1842 		}
1843 	} else {
1844 		/* resume old pm late */
1845 		radeon_pm_resume(rdev);
1846 	}
1847 
1848 	/* init dig PHYs, disp eng pll */
1849 	if (rdev->is_atom_bios) {
1850 		radeon_atom_encoder_init(rdev);
1851 		radeon_atom_disp_eng_pll_init(rdev);
1852 		/* turn on the BL */
1853 		if (rdev->mode_info.bl_encoder) {
1854 			u8 bl_level = radeon_get_backlight_level(rdev,
1855 								 rdev->mode_info.bl_encoder);
1856 			radeon_set_backlight_level(rdev, rdev->mode_info.bl_encoder,
1857 						   bl_level);
1858 		}
1859 	}
1860 	/* reset hpd state */
1861 	radeon_hpd_init(rdev);
1862 
1863 	ttm_bo_unlock_delayed_workqueue(&rdev->mman.bdev, resched);
1864 
1865 	rdev->in_reset = true;
1866 	rdev->needs_reset = false;
1867 
1868 	downgrade_write(&rdev->exclusive_lock);
1869 
1870 	drm_helper_resume_force_mode(rdev->ddev);
1871 
1872 	/* set the power state here in case we are a PX system or headless */
1873 	if ((rdev->pm.pm_method == PM_METHOD_DPM) && rdev->pm.dpm_enabled)
1874 		radeon_pm_compute_clocks(rdev);
1875 
1876 	if (!r) {
1877 		r = radeon_ib_ring_tests(rdev);
1878 		if (r && saved)
1879 			r = -EAGAIN;
1880 	} else {
1881 		/* bad news, how to tell it to userspace ? */
1882 		dev_info(rdev->dev, "GPU reset failed\n");
1883 	}
1884 
1885 	rdev->needs_reset = r == -EAGAIN;
1886 	rdev->in_reset = false;
1887 
1888 	up_read(&rdev->exclusive_lock);
1889 	return r;
1890 }
1891 
1892 
1893 /*
1894  * Debugfs
1895  */
1896 int radeon_debugfs_add_files(struct radeon_device *rdev,
1897 			     struct drm_info_list *files,
1898 			     unsigned nfiles)
1899 {
1900 	unsigned i;
1901 
1902 	for (i = 0; i < rdev->debugfs_count; i++) {
1903 		if (rdev->debugfs[i].files == files) {
1904 			/* Already registered */
1905 			return 0;
1906 		}
1907 	}
1908 
1909 	i = rdev->debugfs_count + 1;
1910 	if (i > RADEON_DEBUGFS_MAX_COMPONENTS) {
1911 		DRM_ERROR("Reached maximum number of debugfs components.\n");
1912 		DRM_ERROR("Report so we increase "
1913 			  "RADEON_DEBUGFS_MAX_COMPONENTS.\n");
1914 		return -EINVAL;
1915 	}
1916 	rdev->debugfs[rdev->debugfs_count].files = files;
1917 	rdev->debugfs[rdev->debugfs_count].num_files = nfiles;
1918 	rdev->debugfs_count = i;
1919 #if defined(CONFIG_DEBUG_FS)
1920 	drm_debugfs_create_files(files, nfiles,
1921 				 rdev->ddev->primary->debugfs_root,
1922 				 rdev->ddev->primary);
1923 #endif
1924 	return 0;
1925 }
1926