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
29 #include <linux/debugfs.h>
30 #include <linux/firmware.h>
31 #include <linux/module.h>
32 #include <linux/pci.h>
33 #include <linux/seq_file.h>
34 #include <linux/slab.h>
35
36 #include <drm/drm_device.h>
37 #include <drm/drm_file.h>
38 #include <drm/drm_fourcc.h>
39 #include <drm/drm_framebuffer.h>
40 #include <drm/drm_vblank.h>
41 #include <drm/radeon_drm.h>
42
43 #include "atom.h"
44 #include "r100_reg_safe.h"
45 #include "r100d.h"
46 #include "radeon.h"
47 #include "radeon_asic.h"
48 #include "radeon_reg.h"
49 #include "rn50_reg_safe.h"
50 #include "rs100d.h"
51 #include "rv200d.h"
52 #include "rv250d.h"
53
54 /* Firmware Names */
55 #define FIRMWARE_R100 "radeon/R100_cp.bin"
56 #define FIRMWARE_R200 "radeon/R200_cp.bin"
57 #define FIRMWARE_R300 "radeon/R300_cp.bin"
58 #define FIRMWARE_R420 "radeon/R420_cp.bin"
59 #define FIRMWARE_RS690 "radeon/RS690_cp.bin"
60 #define FIRMWARE_RS600 "radeon/RS600_cp.bin"
61 #define FIRMWARE_R520 "radeon/R520_cp.bin"
62
63 MODULE_FIRMWARE(FIRMWARE_R100);
64 MODULE_FIRMWARE(FIRMWARE_R200);
65 MODULE_FIRMWARE(FIRMWARE_R300);
66 MODULE_FIRMWARE(FIRMWARE_R420);
67 MODULE_FIRMWARE(FIRMWARE_RS690);
68 MODULE_FIRMWARE(FIRMWARE_RS600);
69 MODULE_FIRMWARE(FIRMWARE_R520);
70
71 #include "r100_track.h"
72
73 /* This files gather functions specifics to:
74 * r100,rv100,rs100,rv200,rs200,r200,rv250,rs300,rv280
75 * and others in some cases.
76 */
77
r100_is_in_vblank(struct radeon_device * rdev,int crtc)78 static bool r100_is_in_vblank(struct radeon_device *rdev, int crtc)
79 {
80 if (crtc == 0) {
81 if (RREG32(RADEON_CRTC_STATUS) & RADEON_CRTC_VBLANK_CUR)
82 return true;
83 else
84 return false;
85 } else {
86 if (RREG32(RADEON_CRTC2_STATUS) & RADEON_CRTC2_VBLANK_CUR)
87 return true;
88 else
89 return false;
90 }
91 }
92
r100_is_counter_moving(struct radeon_device * rdev,int crtc)93 static bool r100_is_counter_moving(struct radeon_device *rdev, int crtc)
94 {
95 u32 vline1, vline2;
96
97 if (crtc == 0) {
98 vline1 = (RREG32(RADEON_CRTC_VLINE_CRNT_VLINE) >> 16) & RADEON_CRTC_V_TOTAL;
99 vline2 = (RREG32(RADEON_CRTC_VLINE_CRNT_VLINE) >> 16) & RADEON_CRTC_V_TOTAL;
100 } else {
101 vline1 = (RREG32(RADEON_CRTC2_VLINE_CRNT_VLINE) >> 16) & RADEON_CRTC_V_TOTAL;
102 vline2 = (RREG32(RADEON_CRTC2_VLINE_CRNT_VLINE) >> 16) & RADEON_CRTC_V_TOTAL;
103 }
104 if (vline1 != vline2)
105 return true;
106 else
107 return false;
108 }
109
110 /**
111 * r100_wait_for_vblank - vblank wait asic callback.
112 *
113 * @rdev: radeon_device pointer
114 * @crtc: crtc to wait for vblank on
115 *
116 * Wait for vblank on the requested crtc (r1xx-r4xx).
117 */
r100_wait_for_vblank(struct radeon_device * rdev,int crtc)118 void r100_wait_for_vblank(struct radeon_device *rdev, int crtc)
119 {
120 unsigned i = 0;
121
122 if (crtc >= rdev->num_crtc)
123 return;
124
125 if (crtc == 0) {
126 if (!(RREG32(RADEON_CRTC_GEN_CNTL) & RADEON_CRTC_EN))
127 return;
128 } else {
129 if (!(RREG32(RADEON_CRTC2_GEN_CNTL) & RADEON_CRTC2_EN))
130 return;
131 }
132
133 /* depending on when we hit vblank, we may be close to active; if so,
134 * wait for another frame.
135 */
136 while (r100_is_in_vblank(rdev, crtc)) {
137 if (i++ % 100 == 0) {
138 if (!r100_is_counter_moving(rdev, crtc))
139 break;
140 }
141 }
142
143 while (!r100_is_in_vblank(rdev, crtc)) {
144 if (i++ % 100 == 0) {
145 if (!r100_is_counter_moving(rdev, crtc))
146 break;
147 }
148 }
149 }
150
151 /**
152 * r100_page_flip - pageflip callback.
153 *
154 * @rdev: radeon_device pointer
155 * @crtc_id: crtc to cleanup pageflip on
156 * @crtc_base: new address of the crtc (GPU MC address)
157 * @async: asynchronous flip
158 *
159 * Does the actual pageflip (r1xx-r4xx).
160 * During vblank we take the crtc lock and wait for the update_pending
161 * bit to go high, when it does, we release the lock, and allow the
162 * double buffered update to take place.
163 */
r100_page_flip(struct radeon_device * rdev,int crtc_id,u64 crtc_base,bool async)164 void r100_page_flip(struct radeon_device *rdev, int crtc_id, u64 crtc_base, bool async)
165 {
166 struct radeon_crtc *radeon_crtc = rdev->mode_info.crtcs[crtc_id];
167 uint32_t crtc_pitch, pitch_pixels;
168 struct drm_framebuffer *fb = radeon_crtc->base.primary->fb;
169 u32 tmp = ((u32)crtc_base) | RADEON_CRTC_OFFSET__OFFSET_LOCK;
170 int i;
171
172 /* Lock the graphics update lock */
173 /* update the scanout addresses */
174 WREG32(RADEON_CRTC_OFFSET + radeon_crtc->crtc_offset, tmp);
175
176 /* update pitch */
177 pitch_pixels = fb->pitches[0] / fb->format->cpp[0];
178 crtc_pitch = DIV_ROUND_UP(pitch_pixels * fb->format->cpp[0] * 8,
179 fb->format->cpp[0] * 8 * 8);
180 crtc_pitch |= crtc_pitch << 16;
181 WREG32(RADEON_CRTC_PITCH + radeon_crtc->crtc_offset, crtc_pitch);
182
183 /* Wait for update_pending to go high. */
184 for (i = 0; i < rdev->usec_timeout; i++) {
185 if (RREG32(RADEON_CRTC_OFFSET + radeon_crtc->crtc_offset) & RADEON_CRTC_OFFSET__GUI_TRIG_OFFSET)
186 break;
187 udelay(1);
188 }
189 DRM_DEBUG("Update pending now high. Unlocking vupdate_lock.\n");
190
191 /* Unlock the lock, so double-buffering can take place inside vblank */
192 tmp &= ~RADEON_CRTC_OFFSET__OFFSET_LOCK;
193 WREG32(RADEON_CRTC_OFFSET + radeon_crtc->crtc_offset, tmp);
194
195 }
196
197 /**
198 * r100_page_flip_pending - check if page flip is still pending
199 *
200 * @rdev: radeon_device pointer
201 * @crtc_id: crtc to check
202 *
203 * Check if the last pagefilp is still pending (r1xx-r4xx).
204 * Returns the current update pending status.
205 */
r100_page_flip_pending(struct radeon_device * rdev,int crtc_id)206 bool r100_page_flip_pending(struct radeon_device *rdev, int crtc_id)
207 {
208 struct radeon_crtc *radeon_crtc = rdev->mode_info.crtcs[crtc_id];
209
210 /* Return current update_pending status: */
211 return !!(RREG32(RADEON_CRTC_OFFSET + radeon_crtc->crtc_offset) &
212 RADEON_CRTC_OFFSET__GUI_TRIG_OFFSET);
213 }
214
215 /**
216 * r100_pm_get_dynpm_state - look up dynpm power state callback.
217 *
218 * @rdev: radeon_device pointer
219 *
220 * Look up the optimal power state based on the
221 * current state of the GPU (r1xx-r5xx).
222 * Used for dynpm only.
223 */
r100_pm_get_dynpm_state(struct radeon_device * rdev)224 void r100_pm_get_dynpm_state(struct radeon_device *rdev)
225 {
226 int i;
227 rdev->pm.dynpm_can_upclock = true;
228 rdev->pm.dynpm_can_downclock = true;
229
230 switch (rdev->pm.dynpm_planned_action) {
231 case DYNPM_ACTION_MINIMUM:
232 rdev->pm.requested_power_state_index = 0;
233 rdev->pm.dynpm_can_downclock = false;
234 break;
235 case DYNPM_ACTION_DOWNCLOCK:
236 if (rdev->pm.current_power_state_index == 0) {
237 rdev->pm.requested_power_state_index = rdev->pm.current_power_state_index;
238 rdev->pm.dynpm_can_downclock = false;
239 } else {
240 if (rdev->pm.active_crtc_count > 1) {
241 for (i = 0; i < rdev->pm.num_power_states; i++) {
242 if (rdev->pm.power_state[i].flags & RADEON_PM_STATE_SINGLE_DISPLAY_ONLY)
243 continue;
244 else if (i >= rdev->pm.current_power_state_index) {
245 rdev->pm.requested_power_state_index = rdev->pm.current_power_state_index;
246 break;
247 } else {
248 rdev->pm.requested_power_state_index = i;
249 break;
250 }
251 }
252 } else
253 rdev->pm.requested_power_state_index =
254 rdev->pm.current_power_state_index - 1;
255 }
256 /* don't use the power state if crtcs are active and no display flag is set */
257 if ((rdev->pm.active_crtc_count > 0) &&
258 (rdev->pm.power_state[rdev->pm.requested_power_state_index].clock_info[0].flags &
259 RADEON_PM_MODE_NO_DISPLAY)) {
260 rdev->pm.requested_power_state_index++;
261 }
262 break;
263 case DYNPM_ACTION_UPCLOCK:
264 if (rdev->pm.current_power_state_index == (rdev->pm.num_power_states - 1)) {
265 rdev->pm.requested_power_state_index = rdev->pm.current_power_state_index;
266 rdev->pm.dynpm_can_upclock = false;
267 } else {
268 if (rdev->pm.active_crtc_count > 1) {
269 for (i = (rdev->pm.num_power_states - 1); i >= 0; i--) {
270 if (rdev->pm.power_state[i].flags & RADEON_PM_STATE_SINGLE_DISPLAY_ONLY)
271 continue;
272 else if (i <= rdev->pm.current_power_state_index) {
273 rdev->pm.requested_power_state_index = rdev->pm.current_power_state_index;
274 break;
275 } else {
276 rdev->pm.requested_power_state_index = i;
277 break;
278 }
279 }
280 } else
281 rdev->pm.requested_power_state_index =
282 rdev->pm.current_power_state_index + 1;
283 }
284 break;
285 case DYNPM_ACTION_DEFAULT:
286 rdev->pm.requested_power_state_index = rdev->pm.default_power_state_index;
287 rdev->pm.dynpm_can_upclock = false;
288 break;
289 case DYNPM_ACTION_NONE:
290 default:
291 DRM_ERROR("Requested mode for not defined action\n");
292 return;
293 }
294 /* only one clock mode per power state */
295 rdev->pm.requested_clock_mode_index = 0;
296
297 DRM_DEBUG_DRIVER("Requested: e: %d m: %d p: %d\n",
298 rdev->pm.power_state[rdev->pm.requested_power_state_index].
299 clock_info[rdev->pm.requested_clock_mode_index].sclk,
300 rdev->pm.power_state[rdev->pm.requested_power_state_index].
301 clock_info[rdev->pm.requested_clock_mode_index].mclk,
302 rdev->pm.power_state[rdev->pm.requested_power_state_index].
303 pcie_lanes);
304 }
305
306 /**
307 * r100_pm_init_profile - Initialize power profiles callback.
308 *
309 * @rdev: radeon_device pointer
310 *
311 * Initialize the power states used in profile mode
312 * (r1xx-r3xx).
313 * Used for profile mode only.
314 */
r100_pm_init_profile(struct radeon_device * rdev)315 void r100_pm_init_profile(struct radeon_device *rdev)
316 {
317 /* default */
318 rdev->pm.profiles[PM_PROFILE_DEFAULT_IDX].dpms_off_ps_idx = rdev->pm.default_power_state_index;
319 rdev->pm.profiles[PM_PROFILE_DEFAULT_IDX].dpms_on_ps_idx = rdev->pm.default_power_state_index;
320 rdev->pm.profiles[PM_PROFILE_DEFAULT_IDX].dpms_off_cm_idx = 0;
321 rdev->pm.profiles[PM_PROFILE_DEFAULT_IDX].dpms_on_cm_idx = 0;
322 /* low sh */
323 rdev->pm.profiles[PM_PROFILE_LOW_SH_IDX].dpms_off_ps_idx = 0;
324 rdev->pm.profiles[PM_PROFILE_LOW_SH_IDX].dpms_on_ps_idx = 0;
325 rdev->pm.profiles[PM_PROFILE_LOW_SH_IDX].dpms_off_cm_idx = 0;
326 rdev->pm.profiles[PM_PROFILE_LOW_SH_IDX].dpms_on_cm_idx = 0;
327 /* mid sh */
328 rdev->pm.profiles[PM_PROFILE_MID_SH_IDX].dpms_off_ps_idx = 0;
329 rdev->pm.profiles[PM_PROFILE_MID_SH_IDX].dpms_on_ps_idx = 0;
330 rdev->pm.profiles[PM_PROFILE_MID_SH_IDX].dpms_off_cm_idx = 0;
331 rdev->pm.profiles[PM_PROFILE_MID_SH_IDX].dpms_on_cm_idx = 0;
332 /* high sh */
333 rdev->pm.profiles[PM_PROFILE_HIGH_SH_IDX].dpms_off_ps_idx = 0;
334 rdev->pm.profiles[PM_PROFILE_HIGH_SH_IDX].dpms_on_ps_idx = rdev->pm.default_power_state_index;
335 rdev->pm.profiles[PM_PROFILE_HIGH_SH_IDX].dpms_off_cm_idx = 0;
336 rdev->pm.profiles[PM_PROFILE_HIGH_SH_IDX].dpms_on_cm_idx = 0;
337 /* low mh */
338 rdev->pm.profiles[PM_PROFILE_LOW_MH_IDX].dpms_off_ps_idx = 0;
339 rdev->pm.profiles[PM_PROFILE_LOW_MH_IDX].dpms_on_ps_idx = rdev->pm.default_power_state_index;
340 rdev->pm.profiles[PM_PROFILE_LOW_MH_IDX].dpms_off_cm_idx = 0;
341 rdev->pm.profiles[PM_PROFILE_LOW_MH_IDX].dpms_on_cm_idx = 0;
342 /* mid mh */
343 rdev->pm.profiles[PM_PROFILE_MID_MH_IDX].dpms_off_ps_idx = 0;
344 rdev->pm.profiles[PM_PROFILE_MID_MH_IDX].dpms_on_ps_idx = rdev->pm.default_power_state_index;
345 rdev->pm.profiles[PM_PROFILE_MID_MH_IDX].dpms_off_cm_idx = 0;
346 rdev->pm.profiles[PM_PROFILE_MID_MH_IDX].dpms_on_cm_idx = 0;
347 /* high mh */
348 rdev->pm.profiles[PM_PROFILE_HIGH_MH_IDX].dpms_off_ps_idx = 0;
349 rdev->pm.profiles[PM_PROFILE_HIGH_MH_IDX].dpms_on_ps_idx = rdev->pm.default_power_state_index;
350 rdev->pm.profiles[PM_PROFILE_HIGH_MH_IDX].dpms_off_cm_idx = 0;
351 rdev->pm.profiles[PM_PROFILE_HIGH_MH_IDX].dpms_on_cm_idx = 0;
352 }
353
354 /**
355 * r100_pm_misc - set additional pm hw parameters callback.
356 *
357 * @rdev: radeon_device pointer
358 *
359 * Set non-clock parameters associated with a power state
360 * (voltage, pcie lanes, etc.) (r1xx-r4xx).
361 */
r100_pm_misc(struct radeon_device * rdev)362 void r100_pm_misc(struct radeon_device *rdev)
363 {
364 int requested_index = rdev->pm.requested_power_state_index;
365 struct radeon_power_state *ps = &rdev->pm.power_state[requested_index];
366 struct radeon_voltage *voltage = &ps->clock_info[0].voltage;
367 u32 tmp, sclk_cntl, sclk_cntl2, sclk_more_cntl;
368
369 if ((voltage->type == VOLTAGE_GPIO) && (voltage->gpio.valid)) {
370 if (ps->misc & ATOM_PM_MISCINFO_VOLTAGE_DROP_SUPPORT) {
371 tmp = RREG32(voltage->gpio.reg);
372 if (voltage->active_high)
373 tmp |= voltage->gpio.mask;
374 else
375 tmp &= ~(voltage->gpio.mask);
376 WREG32(voltage->gpio.reg, tmp);
377 if (voltage->delay)
378 udelay(voltage->delay);
379 } else {
380 tmp = RREG32(voltage->gpio.reg);
381 if (voltage->active_high)
382 tmp &= ~voltage->gpio.mask;
383 else
384 tmp |= voltage->gpio.mask;
385 WREG32(voltage->gpio.reg, tmp);
386 if (voltage->delay)
387 udelay(voltage->delay);
388 }
389 }
390
391 sclk_cntl = RREG32_PLL(SCLK_CNTL);
392 sclk_cntl2 = RREG32_PLL(SCLK_CNTL2);
393 sclk_cntl2 &= ~REDUCED_SPEED_SCLK_SEL(3);
394 sclk_more_cntl = RREG32_PLL(SCLK_MORE_CNTL);
395 sclk_more_cntl &= ~VOLTAGE_DELAY_SEL(3);
396 if (ps->misc & ATOM_PM_MISCINFO_ASIC_REDUCED_SPEED_SCLK_EN) {
397 sclk_more_cntl |= REDUCED_SPEED_SCLK_EN;
398 if (ps->misc & ATOM_PM_MISCINFO_DYN_CLK_3D_IDLE)
399 sclk_cntl2 |= REDUCED_SPEED_SCLK_MODE;
400 else
401 sclk_cntl2 &= ~REDUCED_SPEED_SCLK_MODE;
402 if (ps->misc & ATOM_PM_MISCINFO_DYNAMIC_CLOCK_DIVIDER_BY_2)
403 sclk_cntl2 |= REDUCED_SPEED_SCLK_SEL(0);
404 else if (ps->misc & ATOM_PM_MISCINFO_DYNAMIC_CLOCK_DIVIDER_BY_4)
405 sclk_cntl2 |= REDUCED_SPEED_SCLK_SEL(2);
406 } else
407 sclk_more_cntl &= ~REDUCED_SPEED_SCLK_EN;
408
409 if (ps->misc & ATOM_PM_MISCINFO_ASIC_DYNAMIC_VOLTAGE_EN) {
410 sclk_more_cntl |= IO_CG_VOLTAGE_DROP;
411 if (voltage->delay) {
412 sclk_more_cntl |= VOLTAGE_DROP_SYNC;
413 switch (voltage->delay) {
414 case 33:
415 sclk_more_cntl |= VOLTAGE_DELAY_SEL(0);
416 break;
417 case 66:
418 sclk_more_cntl |= VOLTAGE_DELAY_SEL(1);
419 break;
420 case 99:
421 sclk_more_cntl |= VOLTAGE_DELAY_SEL(2);
422 break;
423 case 132:
424 sclk_more_cntl |= VOLTAGE_DELAY_SEL(3);
425 break;
426 }
427 } else
428 sclk_more_cntl &= ~VOLTAGE_DROP_SYNC;
429 } else
430 sclk_more_cntl &= ~IO_CG_VOLTAGE_DROP;
431
432 if (ps->misc & ATOM_PM_MISCINFO_DYNAMIC_HDP_BLOCK_EN)
433 sclk_cntl &= ~FORCE_HDP;
434 else
435 sclk_cntl |= FORCE_HDP;
436
437 WREG32_PLL(SCLK_CNTL, sclk_cntl);
438 WREG32_PLL(SCLK_CNTL2, sclk_cntl2);
439 WREG32_PLL(SCLK_MORE_CNTL, sclk_more_cntl);
440
441 /* set pcie lanes */
442 if ((rdev->flags & RADEON_IS_PCIE) &&
443 !(rdev->flags & RADEON_IS_IGP) &&
444 rdev->asic->pm.set_pcie_lanes &&
445 (ps->pcie_lanes !=
446 rdev->pm.power_state[rdev->pm.current_power_state_index].pcie_lanes)) {
447 radeon_set_pcie_lanes(rdev,
448 ps->pcie_lanes);
449 DRM_DEBUG_DRIVER("Setting: p: %d\n", ps->pcie_lanes);
450 }
451 }
452
453 /**
454 * r100_pm_prepare - pre-power state change callback.
455 *
456 * @rdev: radeon_device pointer
457 *
458 * Prepare for a power state change (r1xx-r4xx).
459 */
r100_pm_prepare(struct radeon_device * rdev)460 void r100_pm_prepare(struct radeon_device *rdev)
461 {
462 struct drm_device *ddev = rdev_to_drm(rdev);
463 struct drm_crtc *crtc;
464 struct radeon_crtc *radeon_crtc;
465 u32 tmp;
466
467 /* disable any active CRTCs */
468 list_for_each_entry(crtc, &ddev->mode_config.crtc_list, head) {
469 radeon_crtc = to_radeon_crtc(crtc);
470 if (radeon_crtc->enabled) {
471 if (radeon_crtc->crtc_id) {
472 tmp = RREG32(RADEON_CRTC2_GEN_CNTL);
473 tmp |= RADEON_CRTC2_DISP_REQ_EN_B;
474 WREG32(RADEON_CRTC2_GEN_CNTL, tmp);
475 } else {
476 tmp = RREG32(RADEON_CRTC_GEN_CNTL);
477 tmp |= RADEON_CRTC_DISP_REQ_EN_B;
478 WREG32(RADEON_CRTC_GEN_CNTL, tmp);
479 }
480 }
481 }
482 }
483
484 /**
485 * r100_pm_finish - post-power state change callback.
486 *
487 * @rdev: radeon_device pointer
488 *
489 * Clean up after a power state change (r1xx-r4xx).
490 */
r100_pm_finish(struct radeon_device * rdev)491 void r100_pm_finish(struct radeon_device *rdev)
492 {
493 struct drm_device *ddev = rdev_to_drm(rdev);
494 struct drm_crtc *crtc;
495 struct radeon_crtc *radeon_crtc;
496 u32 tmp;
497
498 /* enable any active CRTCs */
499 list_for_each_entry(crtc, &ddev->mode_config.crtc_list, head) {
500 radeon_crtc = to_radeon_crtc(crtc);
501 if (radeon_crtc->enabled) {
502 if (radeon_crtc->crtc_id) {
503 tmp = RREG32(RADEON_CRTC2_GEN_CNTL);
504 tmp &= ~RADEON_CRTC2_DISP_REQ_EN_B;
505 WREG32(RADEON_CRTC2_GEN_CNTL, tmp);
506 } else {
507 tmp = RREG32(RADEON_CRTC_GEN_CNTL);
508 tmp &= ~RADEON_CRTC_DISP_REQ_EN_B;
509 WREG32(RADEON_CRTC_GEN_CNTL, tmp);
510 }
511 }
512 }
513 }
514
515 /**
516 * r100_gui_idle - gui idle callback.
517 *
518 * @rdev: radeon_device pointer
519 *
520 * Check of the GUI (2D/3D engines) are idle (r1xx-r5xx).
521 * Returns true if idle, false if not.
522 */
r100_gui_idle(struct radeon_device * rdev)523 bool r100_gui_idle(struct radeon_device *rdev)
524 {
525 if (RREG32(RADEON_RBBM_STATUS) & RADEON_RBBM_ACTIVE)
526 return false;
527 else
528 return true;
529 }
530
531 /* hpd for digital panel detect/disconnect */
532 /**
533 * r100_hpd_sense - hpd sense callback.
534 *
535 * @rdev: radeon_device pointer
536 * @hpd: hpd (hotplug detect) pin
537 *
538 * Checks if a digital monitor is connected (r1xx-r4xx).
539 * Returns true if connected, false if not connected.
540 */
r100_hpd_sense(struct radeon_device * rdev,enum radeon_hpd_id hpd)541 bool r100_hpd_sense(struct radeon_device *rdev, enum radeon_hpd_id hpd)
542 {
543 bool connected = false;
544
545 switch (hpd) {
546 case RADEON_HPD_1:
547 if (RREG32(RADEON_FP_GEN_CNTL) & RADEON_FP_DETECT_SENSE)
548 connected = true;
549 break;
550 case RADEON_HPD_2:
551 if (RREG32(RADEON_FP2_GEN_CNTL) & RADEON_FP2_DETECT_SENSE)
552 connected = true;
553 break;
554 default:
555 break;
556 }
557 return connected;
558 }
559
560 /**
561 * r100_hpd_set_polarity - hpd set polarity callback.
562 *
563 * @rdev: radeon_device pointer
564 * @hpd: hpd (hotplug detect) pin
565 *
566 * Set the polarity of the hpd pin (r1xx-r4xx).
567 */
r100_hpd_set_polarity(struct radeon_device * rdev,enum radeon_hpd_id hpd)568 void r100_hpd_set_polarity(struct radeon_device *rdev,
569 enum radeon_hpd_id hpd)
570 {
571 u32 tmp;
572 bool connected = r100_hpd_sense(rdev, hpd);
573
574 switch (hpd) {
575 case RADEON_HPD_1:
576 tmp = RREG32(RADEON_FP_GEN_CNTL);
577 if (connected)
578 tmp &= ~RADEON_FP_DETECT_INT_POL;
579 else
580 tmp |= RADEON_FP_DETECT_INT_POL;
581 WREG32(RADEON_FP_GEN_CNTL, tmp);
582 break;
583 case RADEON_HPD_2:
584 tmp = RREG32(RADEON_FP2_GEN_CNTL);
585 if (connected)
586 tmp &= ~RADEON_FP2_DETECT_INT_POL;
587 else
588 tmp |= RADEON_FP2_DETECT_INT_POL;
589 WREG32(RADEON_FP2_GEN_CNTL, tmp);
590 break;
591 default:
592 break;
593 }
594 }
595
596 /**
597 * r100_hpd_init - hpd setup callback.
598 *
599 * @rdev: radeon_device pointer
600 *
601 * Setup the hpd pins used by the card (r1xx-r4xx).
602 * Set the polarity, and enable the hpd interrupts.
603 */
r100_hpd_init(struct radeon_device * rdev)604 void r100_hpd_init(struct radeon_device *rdev)
605 {
606 struct drm_device *dev = rdev_to_drm(rdev);
607 struct drm_connector *connector;
608 unsigned enable = 0;
609
610 list_for_each_entry(connector, &dev->mode_config.connector_list, head) {
611 struct radeon_connector *radeon_connector = to_radeon_connector(connector);
612 if (radeon_connector->hpd.hpd != RADEON_HPD_NONE)
613 enable |= 1 << radeon_connector->hpd.hpd;
614 radeon_hpd_set_polarity(rdev, radeon_connector->hpd.hpd);
615 }
616 radeon_irq_kms_enable_hpd(rdev, enable);
617 }
618
619 /**
620 * r100_hpd_fini - hpd tear down callback.
621 *
622 * @rdev: radeon_device pointer
623 *
624 * Tear down the hpd pins used by the card (r1xx-r4xx).
625 * Disable the hpd interrupts.
626 */
r100_hpd_fini(struct radeon_device * rdev)627 void r100_hpd_fini(struct radeon_device *rdev)
628 {
629 struct drm_device *dev = rdev_to_drm(rdev);
630 struct drm_connector *connector;
631 unsigned disable = 0;
632
633 list_for_each_entry(connector, &dev->mode_config.connector_list, head) {
634 struct radeon_connector *radeon_connector = to_radeon_connector(connector);
635 if (radeon_connector->hpd.hpd != RADEON_HPD_NONE)
636 disable |= 1 << radeon_connector->hpd.hpd;
637 }
638 radeon_irq_kms_disable_hpd(rdev, disable);
639 }
640
641 /*
642 * PCI GART
643 */
r100_pci_gart_tlb_flush(struct radeon_device * rdev)644 void r100_pci_gart_tlb_flush(struct radeon_device *rdev)
645 {
646 /* TODO: can we do somethings here ? */
647 /* It seems hw only cache one entry so we should discard this
648 * entry otherwise if first GPU GART read hit this entry it
649 * could end up in wrong address. */
650 }
651
r100_pci_gart_init(struct radeon_device * rdev)652 int r100_pci_gart_init(struct radeon_device *rdev)
653 {
654 int r;
655
656 if (rdev->gart.ptr) {
657 WARN(1, "R100 PCI GART already initialized\n");
658 return 0;
659 }
660 /* Initialize common gart structure */
661 r = radeon_gart_init(rdev);
662 if (r)
663 return r;
664 rdev->gart.table_size = rdev->gart.num_gpu_pages * 4;
665 rdev->asic->gart.tlb_flush = &r100_pci_gart_tlb_flush;
666 rdev->asic->gart.get_page_entry = &r100_pci_gart_get_page_entry;
667 rdev->asic->gart.set_page = &r100_pci_gart_set_page;
668 return radeon_gart_table_ram_alloc(rdev);
669 }
670
r100_pci_gart_enable(struct radeon_device * rdev)671 int r100_pci_gart_enable(struct radeon_device *rdev)
672 {
673 uint32_t tmp;
674
675 /* discard memory request outside of configured range */
676 tmp = RREG32(RADEON_AIC_CNTL) | RADEON_DIS_OUT_OF_PCI_GART_ACCESS;
677 WREG32(RADEON_AIC_CNTL, tmp);
678 /* set address range for PCI address translate */
679 WREG32(RADEON_AIC_LO_ADDR, rdev->mc.gtt_start);
680 WREG32(RADEON_AIC_HI_ADDR, rdev->mc.gtt_end);
681 /* set PCI GART page-table base address */
682 WREG32(RADEON_AIC_PT_BASE, rdev->gart.table_addr);
683 tmp = RREG32(RADEON_AIC_CNTL) | RADEON_PCIGART_TRANSLATE_EN;
684 WREG32(RADEON_AIC_CNTL, tmp);
685 r100_pci_gart_tlb_flush(rdev);
686 DRM_INFO("PCI GART of %uM enabled (table at 0x%016llX).\n",
687 (unsigned)(rdev->mc.gtt_size >> 20),
688 (unsigned long long)rdev->gart.table_addr);
689 rdev->gart.ready = true;
690 return 0;
691 }
692
r100_pci_gart_disable(struct radeon_device * rdev)693 void r100_pci_gart_disable(struct radeon_device *rdev)
694 {
695 uint32_t tmp;
696
697 /* discard memory request outside of configured range */
698 tmp = RREG32(RADEON_AIC_CNTL) | RADEON_DIS_OUT_OF_PCI_GART_ACCESS;
699 WREG32(RADEON_AIC_CNTL, tmp & ~RADEON_PCIGART_TRANSLATE_EN);
700 WREG32(RADEON_AIC_LO_ADDR, 0);
701 WREG32(RADEON_AIC_HI_ADDR, 0);
702 }
703
r100_pci_gart_get_page_entry(uint64_t addr,uint32_t flags)704 uint64_t r100_pci_gart_get_page_entry(uint64_t addr, uint32_t flags)
705 {
706 return addr;
707 }
708
r100_pci_gart_set_page(struct radeon_device * rdev,unsigned i,uint64_t entry)709 void r100_pci_gart_set_page(struct radeon_device *rdev, unsigned i,
710 uint64_t entry)
711 {
712 u32 *gtt = rdev->gart.ptr;
713 gtt[i] = cpu_to_le32(lower_32_bits(entry));
714 }
715
r100_pci_gart_fini(struct radeon_device * rdev)716 void r100_pci_gart_fini(struct radeon_device *rdev)
717 {
718 radeon_gart_fini(rdev);
719 r100_pci_gart_disable(rdev);
720 radeon_gart_table_ram_free(rdev);
721 }
722
r100_irq_set(struct radeon_device * rdev)723 int r100_irq_set(struct radeon_device *rdev)
724 {
725 uint32_t tmp = 0;
726
727 if (!rdev->irq.installed) {
728 WARN(1, "Can't enable IRQ/MSI because no handler is installed\n");
729 WREG32(R_000040_GEN_INT_CNTL, 0);
730 return -EINVAL;
731 }
732 if (atomic_read(&rdev->irq.ring_int[RADEON_RING_TYPE_GFX_INDEX])) {
733 tmp |= RADEON_SW_INT_ENABLE;
734 }
735 if (rdev->irq.crtc_vblank_int[0] ||
736 atomic_read(&rdev->irq.pflip[0])) {
737 tmp |= RADEON_CRTC_VBLANK_MASK;
738 }
739 if (rdev->irq.crtc_vblank_int[1] ||
740 atomic_read(&rdev->irq.pflip[1])) {
741 tmp |= RADEON_CRTC2_VBLANK_MASK;
742 }
743 if (rdev->irq.hpd[0]) {
744 tmp |= RADEON_FP_DETECT_MASK;
745 }
746 if (rdev->irq.hpd[1]) {
747 tmp |= RADEON_FP2_DETECT_MASK;
748 }
749 WREG32(RADEON_GEN_INT_CNTL, tmp);
750
751 /* read back to post the write */
752 RREG32(RADEON_GEN_INT_CNTL);
753
754 return 0;
755 }
756
r100_irq_disable(struct radeon_device * rdev)757 void r100_irq_disable(struct radeon_device *rdev)
758 {
759 u32 tmp;
760
761 WREG32(R_000040_GEN_INT_CNTL, 0);
762 /* Wait and acknowledge irq */
763 mdelay(1);
764 tmp = RREG32(R_000044_GEN_INT_STATUS);
765 WREG32(R_000044_GEN_INT_STATUS, tmp);
766 }
767
r100_irq_ack(struct radeon_device * rdev)768 static uint32_t r100_irq_ack(struct radeon_device *rdev)
769 {
770 uint32_t irqs = RREG32(RADEON_GEN_INT_STATUS);
771 uint32_t irq_mask = RADEON_SW_INT_TEST |
772 RADEON_CRTC_VBLANK_STAT | RADEON_CRTC2_VBLANK_STAT |
773 RADEON_FP_DETECT_STAT | RADEON_FP2_DETECT_STAT;
774
775 if (irqs) {
776 WREG32(RADEON_GEN_INT_STATUS, irqs);
777 }
778 return irqs & irq_mask;
779 }
780
r100_irq_process(struct radeon_device * rdev)781 int r100_irq_process(struct radeon_device *rdev)
782 {
783 uint32_t status, msi_rearm;
784 bool queue_hotplug = false;
785
786 status = r100_irq_ack(rdev);
787 if (!status) {
788 return IRQ_NONE;
789 }
790 if (rdev->shutdown) {
791 return IRQ_NONE;
792 }
793 while (status) {
794 /* SW interrupt */
795 if (status & RADEON_SW_INT_TEST) {
796 radeon_fence_process(rdev, RADEON_RING_TYPE_GFX_INDEX);
797 }
798 /* Vertical blank interrupts */
799 if (status & RADEON_CRTC_VBLANK_STAT) {
800 if (rdev->irq.crtc_vblank_int[0]) {
801 drm_handle_vblank(rdev_to_drm(rdev), 0);
802 rdev->pm.vblank_sync = true;
803 wake_up(&rdev->irq.vblank_queue);
804 }
805 if (atomic_read(&rdev->irq.pflip[0]))
806 radeon_crtc_handle_vblank(rdev, 0);
807 }
808 if (status & RADEON_CRTC2_VBLANK_STAT) {
809 if (rdev->irq.crtc_vblank_int[1]) {
810 drm_handle_vblank(rdev_to_drm(rdev), 1);
811 rdev->pm.vblank_sync = true;
812 wake_up(&rdev->irq.vblank_queue);
813 }
814 if (atomic_read(&rdev->irq.pflip[1]))
815 radeon_crtc_handle_vblank(rdev, 1);
816 }
817 if (status & RADEON_FP_DETECT_STAT) {
818 queue_hotplug = true;
819 DRM_DEBUG("HPD1\n");
820 }
821 if (status & RADEON_FP2_DETECT_STAT) {
822 queue_hotplug = true;
823 DRM_DEBUG("HPD2\n");
824 }
825 status = r100_irq_ack(rdev);
826 }
827 if (queue_hotplug)
828 schedule_delayed_work(&rdev->hotplug_work, 0);
829 if (rdev->msi_enabled) {
830 switch (rdev->family) {
831 case CHIP_RS400:
832 case CHIP_RS480:
833 msi_rearm = RREG32(RADEON_AIC_CNTL) & ~RS400_MSI_REARM;
834 WREG32(RADEON_AIC_CNTL, msi_rearm);
835 WREG32(RADEON_AIC_CNTL, msi_rearm | RS400_MSI_REARM);
836 break;
837 default:
838 WREG32(RADEON_MSI_REARM_EN, RV370_MSI_REARM_EN);
839 break;
840 }
841 }
842 return IRQ_HANDLED;
843 }
844
r100_get_vblank_counter(struct radeon_device * rdev,int crtc)845 u32 r100_get_vblank_counter(struct radeon_device *rdev, int crtc)
846 {
847 if (crtc == 0)
848 return RREG32(RADEON_CRTC_CRNT_FRAME);
849 else
850 return RREG32(RADEON_CRTC2_CRNT_FRAME);
851 }
852
853 /**
854 * r100_ring_hdp_flush - flush Host Data Path via the ring buffer
855 * @rdev: radeon device structure
856 * @ring: ring buffer struct for emitting packets
857 */
r100_ring_hdp_flush(struct radeon_device * rdev,struct radeon_ring * ring)858 static void r100_ring_hdp_flush(struct radeon_device *rdev, struct radeon_ring *ring)
859 {
860 radeon_ring_write(ring, PACKET0(RADEON_HOST_PATH_CNTL, 0));
861 radeon_ring_write(ring, rdev->config.r100.hdp_cntl |
862 RADEON_HDP_READ_BUFFER_INVALIDATE);
863 radeon_ring_write(ring, PACKET0(RADEON_HOST_PATH_CNTL, 0));
864 radeon_ring_write(ring, rdev->config.r100.hdp_cntl);
865 }
866
867 /* Who ever call radeon_fence_emit should call ring_lock and ask
868 * for enough space (today caller are ib schedule and buffer move) */
r100_fence_ring_emit(struct radeon_device * rdev,struct radeon_fence * fence)869 void r100_fence_ring_emit(struct radeon_device *rdev,
870 struct radeon_fence *fence)
871 {
872 struct radeon_ring *ring = &rdev->ring[fence->ring];
873
874 /* We have to make sure that caches are flushed before
875 * CPU might read something from VRAM. */
876 radeon_ring_write(ring, PACKET0(RADEON_RB3D_DSTCACHE_CTLSTAT, 0));
877 radeon_ring_write(ring, RADEON_RB3D_DC_FLUSH_ALL);
878 radeon_ring_write(ring, PACKET0(RADEON_RB3D_ZCACHE_CTLSTAT, 0));
879 radeon_ring_write(ring, RADEON_RB3D_ZC_FLUSH_ALL);
880 /* Wait until IDLE & CLEAN */
881 radeon_ring_write(ring, PACKET0(RADEON_WAIT_UNTIL, 0));
882 radeon_ring_write(ring, RADEON_WAIT_2D_IDLECLEAN | RADEON_WAIT_3D_IDLECLEAN);
883 r100_ring_hdp_flush(rdev, ring);
884 /* Emit fence sequence & fire IRQ */
885 radeon_ring_write(ring, PACKET0(rdev->fence_drv[fence->ring].scratch_reg, 0));
886 radeon_ring_write(ring, fence->seq);
887 radeon_ring_write(ring, PACKET0(RADEON_GEN_INT_STATUS, 0));
888 radeon_ring_write(ring, RADEON_SW_INT_FIRE);
889 }
890
r100_semaphore_ring_emit(struct radeon_device * rdev,struct radeon_ring * ring,struct radeon_semaphore * semaphore,bool emit_wait)891 bool r100_semaphore_ring_emit(struct radeon_device *rdev,
892 struct radeon_ring *ring,
893 struct radeon_semaphore *semaphore,
894 bool emit_wait)
895 {
896 /* Unused on older asics, since we don't have semaphores or multiple rings */
897 BUG();
898 return false;
899 }
900
r100_copy_blit(struct radeon_device * rdev,uint64_t src_offset,uint64_t dst_offset,unsigned num_gpu_pages,struct dma_resv * resv)901 struct radeon_fence *r100_copy_blit(struct radeon_device *rdev,
902 uint64_t src_offset,
903 uint64_t dst_offset,
904 unsigned num_gpu_pages,
905 struct dma_resv *resv)
906 {
907 struct radeon_ring *ring = &rdev->ring[RADEON_RING_TYPE_GFX_INDEX];
908 struct radeon_fence *fence;
909 uint64_t cur_src_offset, cur_dst_offset;
910 uint32_t cur_pages;
911 uint32_t stride_bytes = RADEON_GPU_PAGE_SIZE;
912 uint32_t pitch;
913 uint32_t stride_pixels;
914 unsigned ndw;
915 int num_loops;
916 int r = 0;
917
918 /* radeon limited to 16k stride */
919 stride_bytes &= 0x3fff;
920 /* radeon pitch is /64 */
921 pitch = stride_bytes / 64;
922 stride_pixels = stride_bytes / 4;
923 num_loops = DIV_ROUND_UP(num_gpu_pages, 8191);
924
925 /* Ask for enough room for blit + flush + fence */
926 ndw = 64 + (10 * num_loops);
927 r = radeon_ring_lock(rdev, ring, ndw);
928 if (r) {
929 DRM_ERROR("radeon: moving bo (%d) asking for %u dw.\n", r, ndw);
930 return ERR_PTR(-EINVAL);
931 }
932 while (num_gpu_pages > 0) {
933 cur_pages = num_gpu_pages;
934 if (cur_pages > 8191) {
935 cur_pages = 8191;
936 }
937 num_gpu_pages -= cur_pages;
938 cur_src_offset = src_offset +
939 (uint64_t)num_gpu_pages * RADEON_GPU_PAGE_SIZE;
940 cur_dst_offset = dst_offset +
941 (uint64_t)num_gpu_pages * RADEON_GPU_PAGE_SIZE;
942
943 /* pages are in Y direction - height
944 page width in X direction - width */
945 radeon_ring_write(ring, PACKET3(PACKET3_BITBLT_MULTI, 8));
946 radeon_ring_write(ring,
947 RADEON_GMC_SRC_PITCH_OFFSET_CNTL |
948 RADEON_GMC_DST_PITCH_OFFSET_CNTL |
949 RADEON_GMC_SRC_CLIPPING |
950 RADEON_GMC_DST_CLIPPING |
951 RADEON_GMC_BRUSH_NONE |
952 (RADEON_COLOR_FORMAT_ARGB8888 << 8) |
953 RADEON_GMC_SRC_DATATYPE_COLOR |
954 RADEON_ROP3_S |
955 RADEON_DP_SRC_SOURCE_MEMORY |
956 RADEON_GMC_CLR_CMP_CNTL_DIS |
957 RADEON_GMC_WR_MSK_DIS);
958 radeon_ring_write(ring, (pitch << 22) | (cur_src_offset >> 10));
959 radeon_ring_write(ring, (pitch << 22) | (cur_dst_offset >> 10));
960 radeon_ring_write(ring, (0x1fff) | (0x1fff << 16));
961 radeon_ring_write(ring, 0);
962 radeon_ring_write(ring, (0x1fff) | (0x1fff << 16));
963 radeon_ring_write(ring, 0);
964 radeon_ring_write(ring, 0);
965 radeon_ring_write(ring, cur_pages | (stride_pixels << 16));
966 }
967 radeon_ring_write(ring, PACKET0(RADEON_DSTCACHE_CTLSTAT, 0));
968 radeon_ring_write(ring, RADEON_RB2D_DC_FLUSH_ALL);
969 radeon_ring_write(ring, PACKET0(RADEON_WAIT_UNTIL, 0));
970 radeon_ring_write(ring,
971 RADEON_WAIT_2D_IDLECLEAN |
972 RADEON_WAIT_HOST_IDLECLEAN |
973 RADEON_WAIT_DMA_GUI_IDLE);
974 r = radeon_fence_emit(rdev, &fence, RADEON_RING_TYPE_GFX_INDEX);
975 if (r) {
976 radeon_ring_unlock_undo(rdev, ring);
977 return ERR_PTR(r);
978 }
979 radeon_ring_unlock_commit(rdev, ring, false);
980 return fence;
981 }
982
r100_cp_wait_for_idle(struct radeon_device * rdev)983 static int r100_cp_wait_for_idle(struct radeon_device *rdev)
984 {
985 unsigned i;
986 u32 tmp;
987
988 for (i = 0; i < rdev->usec_timeout; i++) {
989 tmp = RREG32(R_000E40_RBBM_STATUS);
990 if (!G_000E40_CP_CMDSTRM_BUSY(tmp)) {
991 return 0;
992 }
993 udelay(1);
994 }
995 return -1;
996 }
997
r100_ring_start(struct radeon_device * rdev,struct radeon_ring * ring)998 void r100_ring_start(struct radeon_device *rdev, struct radeon_ring *ring)
999 {
1000 int r;
1001
1002 r = radeon_ring_lock(rdev, ring, 2);
1003 if (r) {
1004 return;
1005 }
1006 radeon_ring_write(ring, PACKET0(RADEON_ISYNC_CNTL, 0));
1007 radeon_ring_write(ring,
1008 RADEON_ISYNC_ANY2D_IDLE3D |
1009 RADEON_ISYNC_ANY3D_IDLE2D |
1010 RADEON_ISYNC_WAIT_IDLEGUI |
1011 RADEON_ISYNC_CPSCRATCH_IDLEGUI);
1012 radeon_ring_unlock_commit(rdev, ring, false);
1013 }
1014
1015
1016 /* Load the microcode for the CP */
r100_cp_init_microcode(struct radeon_device * rdev)1017 static int r100_cp_init_microcode(struct radeon_device *rdev)
1018 {
1019 const char *fw_name = NULL;
1020 int err;
1021
1022 DRM_DEBUG_KMS("\n");
1023
1024 switch (rdev->family) {
1025 case CHIP_R100:
1026 case CHIP_RV100:
1027 case CHIP_RV200:
1028 case CHIP_RS100:
1029 case CHIP_RS200:
1030 DRM_INFO("Loading R100 Microcode\n");
1031 fw_name = FIRMWARE_R100;
1032 break;
1033
1034 case CHIP_R200:
1035 case CHIP_RV250:
1036 case CHIP_RV280:
1037 case CHIP_RS300:
1038 DRM_INFO("Loading R200 Microcode\n");
1039 fw_name = FIRMWARE_R200;
1040 break;
1041
1042 case CHIP_R300:
1043 case CHIP_R350:
1044 case CHIP_RV350:
1045 case CHIP_RV380:
1046 case CHIP_RS400:
1047 case CHIP_RS480:
1048 DRM_INFO("Loading R300 Microcode\n");
1049 fw_name = FIRMWARE_R300;
1050 break;
1051
1052 case CHIP_R420:
1053 case CHIP_R423:
1054 case CHIP_RV410:
1055 DRM_INFO("Loading R400 Microcode\n");
1056 fw_name = FIRMWARE_R420;
1057 break;
1058
1059 case CHIP_RS690:
1060 case CHIP_RS740:
1061 DRM_INFO("Loading RS690/RS740 Microcode\n");
1062 fw_name = FIRMWARE_RS690;
1063 break;
1064
1065 case CHIP_RS600:
1066 DRM_INFO("Loading RS600 Microcode\n");
1067 fw_name = FIRMWARE_RS600;
1068 break;
1069
1070 case CHIP_RV515:
1071 case CHIP_R520:
1072 case CHIP_RV530:
1073 case CHIP_R580:
1074 case CHIP_RV560:
1075 case CHIP_RV570:
1076 DRM_INFO("Loading R500 Microcode\n");
1077 fw_name = FIRMWARE_R520;
1078 break;
1079
1080 default:
1081 DRM_ERROR("Unsupported Radeon family %u\n", rdev->family);
1082 return -EINVAL;
1083 }
1084
1085 err = request_firmware(&rdev->me_fw, fw_name, rdev->dev);
1086 if (err) {
1087 pr_err("radeon_cp: Failed to load firmware \"%s\"\n", fw_name);
1088 } else if (rdev->me_fw->size % 8) {
1089 pr_err("radeon_cp: Bogus length %zu in firmware \"%s\"\n",
1090 rdev->me_fw->size, fw_name);
1091 err = -EINVAL;
1092 release_firmware(rdev->me_fw);
1093 rdev->me_fw = NULL;
1094 }
1095 return err;
1096 }
1097
r100_gfx_get_rptr(struct radeon_device * rdev,struct radeon_ring * ring)1098 u32 r100_gfx_get_rptr(struct radeon_device *rdev,
1099 struct radeon_ring *ring)
1100 {
1101 u32 rptr;
1102
1103 if (rdev->wb.enabled)
1104 rptr = le32_to_cpu(rdev->wb.wb[ring->rptr_offs/4]);
1105 else
1106 rptr = RREG32(RADEON_CP_RB_RPTR);
1107
1108 return rptr;
1109 }
1110
r100_gfx_get_wptr(struct radeon_device * rdev,struct radeon_ring * ring)1111 u32 r100_gfx_get_wptr(struct radeon_device *rdev,
1112 struct radeon_ring *ring)
1113 {
1114 return RREG32(RADEON_CP_RB_WPTR);
1115 }
1116
r100_gfx_set_wptr(struct radeon_device * rdev,struct radeon_ring * ring)1117 void r100_gfx_set_wptr(struct radeon_device *rdev,
1118 struct radeon_ring *ring)
1119 {
1120 WREG32(RADEON_CP_RB_WPTR, ring->wptr);
1121 (void)RREG32(RADEON_CP_RB_WPTR);
1122 }
1123
r100_cp_load_microcode(struct radeon_device * rdev)1124 static void r100_cp_load_microcode(struct radeon_device *rdev)
1125 {
1126 const __be32 *fw_data;
1127 int i, size;
1128
1129 if (r100_gui_wait_for_idle(rdev)) {
1130 pr_warn("Failed to wait GUI idle while programming pipes. Bad things might happen.\n");
1131 }
1132
1133 if (rdev->me_fw) {
1134 size = rdev->me_fw->size / 4;
1135 fw_data = (const __be32 *)&rdev->me_fw->data[0];
1136 WREG32(RADEON_CP_ME_RAM_ADDR, 0);
1137 for (i = 0; i < size; i += 2) {
1138 WREG32(RADEON_CP_ME_RAM_DATAH,
1139 be32_to_cpup(&fw_data[i]));
1140 WREG32(RADEON_CP_ME_RAM_DATAL,
1141 be32_to_cpup(&fw_data[i + 1]));
1142 }
1143 }
1144 }
1145
r100_cp_init(struct radeon_device * rdev,unsigned ring_size)1146 int r100_cp_init(struct radeon_device *rdev, unsigned ring_size)
1147 {
1148 struct radeon_ring *ring = &rdev->ring[RADEON_RING_TYPE_GFX_INDEX];
1149 unsigned rb_bufsz;
1150 unsigned rb_blksz;
1151 unsigned max_fetch;
1152 unsigned pre_write_timer;
1153 unsigned pre_write_limit;
1154 unsigned indirect2_start;
1155 unsigned indirect1_start;
1156 uint32_t tmp;
1157 int r;
1158
1159 r100_debugfs_cp_init(rdev);
1160 if (!rdev->me_fw) {
1161 r = r100_cp_init_microcode(rdev);
1162 if (r) {
1163 DRM_ERROR("Failed to load firmware!\n");
1164 return r;
1165 }
1166 }
1167
1168 /* Align ring size */
1169 rb_bufsz = order_base_2(ring_size / 8);
1170 ring_size = (1 << (rb_bufsz + 1)) * 4;
1171 r100_cp_load_microcode(rdev);
1172 r = radeon_ring_init(rdev, ring, ring_size, RADEON_WB_CP_RPTR_OFFSET,
1173 RADEON_CP_PACKET2);
1174 if (r) {
1175 return r;
1176 }
1177 /* Each time the cp read 1024 bytes (16 dword/quadword) update
1178 * the rptr copy in system ram */
1179 rb_blksz = 9;
1180 /* cp will read 128bytes at a time (4 dwords) */
1181 max_fetch = 1;
1182 ring->align_mask = 16 - 1;
1183 /* Write to CP_RB_WPTR will be delayed for pre_write_timer clocks */
1184 pre_write_timer = 64;
1185 /* Force CP_RB_WPTR write if written more than one time before the
1186 * delay expire
1187 */
1188 pre_write_limit = 0;
1189 /* Setup the cp cache like this (cache size is 96 dwords) :
1190 * RING 0 to 15
1191 * INDIRECT1 16 to 79
1192 * INDIRECT2 80 to 95
1193 * So ring cache size is 16dwords (> (2 * max_fetch = 2 * 4dwords))
1194 * indirect1 cache size is 64dwords (> (2 * max_fetch = 2 * 4dwords))
1195 * indirect2 cache size is 16dwords (> (2 * max_fetch = 2 * 4dwords))
1196 * Idea being that most of the gpu cmd will be through indirect1 buffer
1197 * so it gets the bigger cache.
1198 */
1199 indirect2_start = 80;
1200 indirect1_start = 16;
1201 /* cp setup */
1202 WREG32(0x718, pre_write_timer | (pre_write_limit << 28));
1203 tmp = (REG_SET(RADEON_RB_BUFSZ, rb_bufsz) |
1204 REG_SET(RADEON_RB_BLKSZ, rb_blksz) |
1205 REG_SET(RADEON_MAX_FETCH, max_fetch));
1206 #ifdef __BIG_ENDIAN
1207 tmp |= RADEON_BUF_SWAP_32BIT;
1208 #endif
1209 WREG32(RADEON_CP_RB_CNTL, tmp | RADEON_RB_NO_UPDATE);
1210
1211 /* Set ring address */
1212 DRM_INFO("radeon: ring at 0x%016lX\n", (unsigned long)ring->gpu_addr);
1213 WREG32(RADEON_CP_RB_BASE, ring->gpu_addr);
1214 /* Force read & write ptr to 0 */
1215 WREG32(RADEON_CP_RB_CNTL, tmp | RADEON_RB_RPTR_WR_ENA | RADEON_RB_NO_UPDATE);
1216 WREG32(RADEON_CP_RB_RPTR_WR, 0);
1217 ring->wptr = 0;
1218 WREG32(RADEON_CP_RB_WPTR, ring->wptr);
1219
1220 /* set the wb address whether it's enabled or not */
1221 WREG32(R_00070C_CP_RB_RPTR_ADDR,
1222 S_00070C_RB_RPTR_ADDR((rdev->wb.gpu_addr + RADEON_WB_CP_RPTR_OFFSET) >> 2));
1223 WREG32(R_000774_SCRATCH_ADDR, rdev->wb.gpu_addr + RADEON_WB_SCRATCH_OFFSET);
1224
1225 if (rdev->wb.enabled)
1226 WREG32(R_000770_SCRATCH_UMSK, 0xff);
1227 else {
1228 tmp |= RADEON_RB_NO_UPDATE;
1229 WREG32(R_000770_SCRATCH_UMSK, 0);
1230 }
1231
1232 WREG32(RADEON_CP_RB_CNTL, tmp);
1233 udelay(10);
1234 /* Set cp mode to bus mastering & enable cp*/
1235 WREG32(RADEON_CP_CSQ_MODE,
1236 REG_SET(RADEON_INDIRECT2_START, indirect2_start) |
1237 REG_SET(RADEON_INDIRECT1_START, indirect1_start));
1238 WREG32(RADEON_CP_RB_WPTR_DELAY, 0);
1239 WREG32(RADEON_CP_CSQ_MODE, 0x00004D4D);
1240 WREG32(RADEON_CP_CSQ_CNTL, RADEON_CSQ_PRIBM_INDBM);
1241
1242 /* at this point everything should be setup correctly to enable master */
1243 pci_set_master(rdev->pdev);
1244
1245 radeon_ring_start(rdev, RADEON_RING_TYPE_GFX_INDEX, &rdev->ring[RADEON_RING_TYPE_GFX_INDEX]);
1246 r = radeon_ring_test(rdev, RADEON_RING_TYPE_GFX_INDEX, ring);
1247 if (r) {
1248 DRM_ERROR("radeon: cp isn't working (%d).\n", r);
1249 return r;
1250 }
1251 ring->ready = true;
1252 radeon_ttm_set_active_vram_size(rdev, rdev->mc.real_vram_size);
1253
1254 if (!ring->rptr_save_reg /* not resuming from suspend */
1255 && radeon_ring_supports_scratch_reg(rdev, ring)) {
1256 r = radeon_scratch_get(rdev, &ring->rptr_save_reg);
1257 if (r) {
1258 DRM_ERROR("failed to get scratch reg for rptr save (%d).\n", r);
1259 ring->rptr_save_reg = 0;
1260 }
1261 }
1262 return 0;
1263 }
1264
r100_cp_fini(struct radeon_device * rdev)1265 void r100_cp_fini(struct radeon_device *rdev)
1266 {
1267 if (r100_cp_wait_for_idle(rdev)) {
1268 DRM_ERROR("Wait for CP idle timeout, shutting down CP.\n");
1269 }
1270 /* Disable ring */
1271 r100_cp_disable(rdev);
1272 radeon_scratch_free(rdev, rdev->ring[RADEON_RING_TYPE_GFX_INDEX].rptr_save_reg);
1273 radeon_ring_fini(rdev, &rdev->ring[RADEON_RING_TYPE_GFX_INDEX]);
1274 DRM_INFO("radeon: cp finalized\n");
1275 }
1276
r100_cp_disable(struct radeon_device * rdev)1277 void r100_cp_disable(struct radeon_device *rdev)
1278 {
1279 /* Disable ring */
1280 radeon_ttm_set_active_vram_size(rdev, rdev->mc.visible_vram_size);
1281 rdev->ring[RADEON_RING_TYPE_GFX_INDEX].ready = false;
1282 WREG32(RADEON_CP_CSQ_MODE, 0);
1283 WREG32(RADEON_CP_CSQ_CNTL, 0);
1284 WREG32(R_000770_SCRATCH_UMSK, 0);
1285 if (r100_gui_wait_for_idle(rdev)) {
1286 pr_warn("Failed to wait GUI idle while programming pipes. Bad things might happen.\n");
1287 }
1288 }
1289
1290 /*
1291 * CS functions
1292 */
r100_reloc_pitch_offset(struct radeon_cs_parser * p,struct radeon_cs_packet * pkt,unsigned idx,unsigned reg)1293 int r100_reloc_pitch_offset(struct radeon_cs_parser *p,
1294 struct radeon_cs_packet *pkt,
1295 unsigned idx,
1296 unsigned reg)
1297 {
1298 int r;
1299 u32 tile_flags = 0;
1300 u32 tmp;
1301 struct radeon_bo_list *reloc;
1302 u32 value;
1303
1304 r = radeon_cs_packet_next_reloc(p, &reloc, 0);
1305 if (r) {
1306 dev_warn_once(p->dev, "No reloc for ib[%d]=0x%04X\n",
1307 idx, reg);
1308 radeon_cs_dump_packet(p, pkt);
1309 return r;
1310 }
1311
1312 value = radeon_get_ib_value(p, idx);
1313 tmp = value & 0x003fffff;
1314 tmp += (((u32)reloc->gpu_offset) >> 10);
1315
1316 if (!(p->cs_flags & RADEON_CS_KEEP_TILING_FLAGS)) {
1317 if (reloc->tiling_flags & RADEON_TILING_MACRO)
1318 tile_flags |= RADEON_DST_TILE_MACRO;
1319 if (reloc->tiling_flags & RADEON_TILING_MICRO) {
1320 if (reg == RADEON_SRC_PITCH_OFFSET) {
1321 dev_warn_once(p->dev, "Cannot src blit from microtiled surface\n");
1322 radeon_cs_dump_packet(p, pkt);
1323 return -EINVAL;
1324 }
1325 tile_flags |= RADEON_DST_TILE_MICRO;
1326 }
1327
1328 tmp |= tile_flags;
1329 p->ib.ptr[idx] = (value & 0x3fc00000) | tmp;
1330 } else
1331 p->ib.ptr[idx] = (value & 0xffc00000) | tmp;
1332 return 0;
1333 }
1334
r100_packet3_load_vbpntr(struct radeon_cs_parser * p,struct radeon_cs_packet * pkt,int idx)1335 int r100_packet3_load_vbpntr(struct radeon_cs_parser *p,
1336 struct radeon_cs_packet *pkt,
1337 int idx)
1338 {
1339 unsigned c, i;
1340 struct radeon_bo_list *reloc;
1341 struct r100_cs_track *track;
1342 int r = 0;
1343 volatile uint32_t *ib;
1344 u32 idx_value;
1345
1346 ib = p->ib.ptr;
1347 track = (struct r100_cs_track *)p->track;
1348 c = radeon_get_ib_value(p, idx++) & 0x1F;
1349 if (c > 16) {
1350 dev_warn_once(p->dev, "Only 16 vertex buffers are allowed %d\n",
1351 pkt->opcode);
1352 radeon_cs_dump_packet(p, pkt);
1353 return -EINVAL;
1354 }
1355 track->num_arrays = c;
1356 for (i = 0; i < (c - 1); i += 2, idx += 3) {
1357 r = radeon_cs_packet_next_reloc(p, &reloc, 0);
1358 if (r) {
1359 dev_warn_once(p->dev, "No reloc for packet3 %d\n",
1360 pkt->opcode);
1361 radeon_cs_dump_packet(p, pkt);
1362 return r;
1363 }
1364 idx_value = radeon_get_ib_value(p, idx);
1365 ib[idx+1] = radeon_get_ib_value(p, idx + 1) + ((u32)reloc->gpu_offset);
1366
1367 track->arrays[i + 0].esize = idx_value >> 8;
1368 track->arrays[i + 0].robj = reloc->robj;
1369 track->arrays[i + 0].esize &= 0x7F;
1370 r = radeon_cs_packet_next_reloc(p, &reloc, 0);
1371 if (r) {
1372 dev_warn_once(p->dev, "No reloc for packet3 %d\n",
1373 pkt->opcode);
1374 radeon_cs_dump_packet(p, pkt);
1375 return r;
1376 }
1377 ib[idx+2] = radeon_get_ib_value(p, idx + 2) + ((u32)reloc->gpu_offset);
1378 track->arrays[i + 1].robj = reloc->robj;
1379 track->arrays[i + 1].esize = idx_value >> 24;
1380 track->arrays[i + 1].esize &= 0x7F;
1381 }
1382 if (c & 1) {
1383 r = radeon_cs_packet_next_reloc(p, &reloc, 0);
1384 if (r) {
1385 dev_warn_once(p->dev, "No reloc for packet3 %d\n",
1386 pkt->opcode);
1387 radeon_cs_dump_packet(p, pkt);
1388 return r;
1389 }
1390 idx_value = radeon_get_ib_value(p, idx);
1391 ib[idx+1] = radeon_get_ib_value(p, idx + 1) + ((u32)reloc->gpu_offset);
1392 track->arrays[i + 0].robj = reloc->robj;
1393 track->arrays[i + 0].esize = idx_value >> 8;
1394 track->arrays[i + 0].esize &= 0x7F;
1395 }
1396 return r;
1397 }
1398
r100_cs_parse_packet0(struct radeon_cs_parser * p,struct radeon_cs_packet * pkt,const unsigned * auth,unsigned n,radeon_packet0_check_t check)1399 int r100_cs_parse_packet0(struct radeon_cs_parser *p,
1400 struct radeon_cs_packet *pkt,
1401 const unsigned *auth, unsigned n,
1402 radeon_packet0_check_t check)
1403 {
1404 unsigned reg;
1405 unsigned i, j, m;
1406 unsigned idx;
1407 int r;
1408
1409 idx = pkt->idx + 1;
1410 reg = pkt->reg;
1411 /* Check that register fall into register range
1412 * determined by the number of entry (n) in the
1413 * safe register bitmap.
1414 */
1415 if (pkt->one_reg_wr) {
1416 if ((reg >> 7) > n) {
1417 return -EINVAL;
1418 }
1419 } else {
1420 if (((reg + (pkt->count << 2)) >> 7) > n) {
1421 return -EINVAL;
1422 }
1423 }
1424 for (i = 0; i <= pkt->count; i++, idx++) {
1425 j = (reg >> 7);
1426 m = 1 << ((reg >> 2) & 31);
1427 if (auth[j] & m) {
1428 r = check(p, pkt, idx, reg);
1429 if (r) {
1430 return r;
1431 }
1432 }
1433 if (pkt->one_reg_wr) {
1434 if (!(auth[j] & m)) {
1435 break;
1436 }
1437 } else {
1438 reg += 4;
1439 }
1440 }
1441 return 0;
1442 }
1443
1444 /**
1445 * r100_cs_packet_parse_vline() - parse userspace VLINE packet
1446 * @p: parser structure holding parsing context.
1447 *
1448 * Userspace sends a special sequence for VLINE waits.
1449 * PACKET0 - VLINE_START_END + value
1450 * PACKET0 - WAIT_UNTIL +_value
1451 * RELOC (P3) - crtc_id in reloc.
1452 *
1453 * This function parses this and relocates the VLINE START END
1454 * and WAIT UNTIL packets to the correct crtc.
1455 * It also detects a switched off crtc and nulls out the
1456 * wait in that case.
1457 */
r100_cs_packet_parse_vline(struct radeon_cs_parser * p)1458 int r100_cs_packet_parse_vline(struct radeon_cs_parser *p)
1459 {
1460 struct drm_crtc *crtc;
1461 struct radeon_crtc *radeon_crtc;
1462 struct radeon_cs_packet p3reloc, waitreloc;
1463 int crtc_id;
1464 int r;
1465 uint32_t header, h_idx, reg;
1466 volatile uint32_t *ib;
1467
1468 ib = p->ib.ptr;
1469
1470 /* parse the wait until */
1471 r = radeon_cs_packet_parse(p, &waitreloc, p->idx);
1472 if (r)
1473 return r;
1474
1475 /* check its a wait until and only 1 count */
1476 if (waitreloc.reg != RADEON_WAIT_UNTIL ||
1477 waitreloc.count != 0) {
1478 dev_warn_once(p->dev, "vline wait had illegal wait until segment\n");
1479 return -EINVAL;
1480 }
1481
1482 if (radeon_get_ib_value(p, waitreloc.idx + 1) != RADEON_WAIT_CRTC_VLINE) {
1483 dev_warn_once(p->dev, "vline wait had illegal wait until\n");
1484 return -EINVAL;
1485 }
1486
1487 /* jump over the NOP */
1488 r = radeon_cs_packet_parse(p, &p3reloc, p->idx + waitreloc.count + 2);
1489 if (r)
1490 return r;
1491
1492 h_idx = p->idx - 2;
1493 p->idx += waitreloc.count + 2;
1494 p->idx += p3reloc.count + 2;
1495
1496 header = radeon_get_ib_value(p, h_idx);
1497 crtc_id = radeon_get_ib_value(p, h_idx + 5);
1498 reg = R100_CP_PACKET0_GET_REG(header);
1499 crtc = drm_crtc_find(rdev_to_drm(p->rdev), p->filp, crtc_id);
1500 if (!crtc) {
1501 dev_warn_once(p->dev, "cannot find crtc %d\n", crtc_id);
1502 return -ENOENT;
1503 }
1504 radeon_crtc = to_radeon_crtc(crtc);
1505 crtc_id = radeon_crtc->crtc_id;
1506
1507 if (!crtc->enabled) {
1508 /* if the CRTC isn't enabled - we need to nop out the wait until */
1509 ib[h_idx + 2] = PACKET2(0);
1510 ib[h_idx + 3] = PACKET2(0);
1511 } else if (crtc_id == 1) {
1512 switch (reg) {
1513 case AVIVO_D1MODE_VLINE_START_END:
1514 header &= ~R300_CP_PACKET0_REG_MASK;
1515 header |= AVIVO_D2MODE_VLINE_START_END >> 2;
1516 break;
1517 case RADEON_CRTC_GUI_TRIG_VLINE:
1518 header &= ~R300_CP_PACKET0_REG_MASK;
1519 header |= RADEON_CRTC2_GUI_TRIG_VLINE >> 2;
1520 break;
1521 default:
1522 dev_warn_once(p->dev, "unknown crtc reloc\n");
1523 return -EINVAL;
1524 }
1525 ib[h_idx] = header;
1526 ib[h_idx + 3] |= RADEON_ENG_DISPLAY_SELECT_CRTC1;
1527 }
1528
1529 return 0;
1530 }
1531
r100_get_vtx_size(uint32_t vtx_fmt)1532 static int r100_get_vtx_size(uint32_t vtx_fmt)
1533 {
1534 int vtx_size;
1535 vtx_size = 2;
1536 /* ordered according to bits in spec */
1537 if (vtx_fmt & RADEON_SE_VTX_FMT_W0)
1538 vtx_size++;
1539 if (vtx_fmt & RADEON_SE_VTX_FMT_FPCOLOR)
1540 vtx_size += 3;
1541 if (vtx_fmt & RADEON_SE_VTX_FMT_FPALPHA)
1542 vtx_size++;
1543 if (vtx_fmt & RADEON_SE_VTX_FMT_PKCOLOR)
1544 vtx_size++;
1545 if (vtx_fmt & RADEON_SE_VTX_FMT_FPSPEC)
1546 vtx_size += 3;
1547 if (vtx_fmt & RADEON_SE_VTX_FMT_FPFOG)
1548 vtx_size++;
1549 if (vtx_fmt & RADEON_SE_VTX_FMT_PKSPEC)
1550 vtx_size++;
1551 if (vtx_fmt & RADEON_SE_VTX_FMT_ST0)
1552 vtx_size += 2;
1553 if (vtx_fmt & RADEON_SE_VTX_FMT_ST1)
1554 vtx_size += 2;
1555 if (vtx_fmt & RADEON_SE_VTX_FMT_Q1)
1556 vtx_size++;
1557 if (vtx_fmt & RADEON_SE_VTX_FMT_ST2)
1558 vtx_size += 2;
1559 if (vtx_fmt & RADEON_SE_VTX_FMT_Q2)
1560 vtx_size++;
1561 if (vtx_fmt & RADEON_SE_VTX_FMT_ST3)
1562 vtx_size += 2;
1563 if (vtx_fmt & RADEON_SE_VTX_FMT_Q3)
1564 vtx_size++;
1565 if (vtx_fmt & RADEON_SE_VTX_FMT_Q0)
1566 vtx_size++;
1567 /* blend weight */
1568 if (vtx_fmt & (0x7 << 15))
1569 vtx_size += (vtx_fmt >> 15) & 0x7;
1570 if (vtx_fmt & RADEON_SE_VTX_FMT_N0)
1571 vtx_size += 3;
1572 if (vtx_fmt & RADEON_SE_VTX_FMT_XY1)
1573 vtx_size += 2;
1574 if (vtx_fmt & RADEON_SE_VTX_FMT_Z1)
1575 vtx_size++;
1576 if (vtx_fmt & RADEON_SE_VTX_FMT_W1)
1577 vtx_size++;
1578 if (vtx_fmt & RADEON_SE_VTX_FMT_N1)
1579 vtx_size++;
1580 if (vtx_fmt & RADEON_SE_VTX_FMT_Z)
1581 vtx_size++;
1582 return vtx_size;
1583 }
1584
r100_packet0_check(struct radeon_cs_parser * p,struct radeon_cs_packet * pkt,unsigned idx,unsigned reg)1585 static int r100_packet0_check(struct radeon_cs_parser *p,
1586 struct radeon_cs_packet *pkt,
1587 unsigned idx, unsigned reg)
1588 {
1589 struct radeon_bo_list *reloc;
1590 struct r100_cs_track *track;
1591 volatile uint32_t *ib;
1592 uint32_t tmp;
1593 int r;
1594 int i, face;
1595 u32 tile_flags = 0;
1596 u32 idx_value;
1597
1598 ib = p->ib.ptr;
1599 track = (struct r100_cs_track *)p->track;
1600
1601 idx_value = radeon_get_ib_value(p, idx);
1602
1603 switch (reg) {
1604 case RADEON_CRTC_GUI_TRIG_VLINE:
1605 r = r100_cs_packet_parse_vline(p);
1606 if (r) {
1607 dev_warn_once(p->dev, "No reloc for ib[%d]=0x%04X\n",
1608 idx, reg);
1609 radeon_cs_dump_packet(p, pkt);
1610 return r;
1611 }
1612 break;
1613 /* FIXME: only allow PACKET3 blit? easier to check for out of
1614 * range access */
1615 case RADEON_DST_PITCH_OFFSET:
1616 case RADEON_SRC_PITCH_OFFSET:
1617 r = r100_reloc_pitch_offset(p, pkt, idx, reg);
1618 if (r)
1619 return r;
1620 break;
1621 case RADEON_RB3D_DEPTHOFFSET:
1622 r = radeon_cs_packet_next_reloc(p, &reloc, 0);
1623 if (r) {
1624 dev_warn_once(p->dev, "No reloc for ib[%d]=0x%04X\n",
1625 idx, reg);
1626 radeon_cs_dump_packet(p, pkt);
1627 return r;
1628 }
1629 track->zb.robj = reloc->robj;
1630 track->zb.offset = idx_value;
1631 track->zb_dirty = true;
1632 ib[idx] = idx_value + ((u32)reloc->gpu_offset);
1633 break;
1634 case RADEON_RB3D_COLOROFFSET:
1635 r = radeon_cs_packet_next_reloc(p, &reloc, 0);
1636 if (r) {
1637 dev_warn_once(p->dev, "No reloc for ib[%d]=0x%04X\n",
1638 idx, reg);
1639 radeon_cs_dump_packet(p, pkt);
1640 return r;
1641 }
1642 track->cb[0].robj = reloc->robj;
1643 track->cb[0].offset = idx_value;
1644 track->cb_dirty = true;
1645 ib[idx] = idx_value + ((u32)reloc->gpu_offset);
1646 break;
1647 case RADEON_PP_TXOFFSET_0:
1648 case RADEON_PP_TXOFFSET_1:
1649 case RADEON_PP_TXOFFSET_2:
1650 i = (reg - RADEON_PP_TXOFFSET_0) / 24;
1651 r = radeon_cs_packet_next_reloc(p, &reloc, 0);
1652 if (r) {
1653 dev_warn_once(p->dev, "No reloc for ib[%d]=0x%04X\n",
1654 idx, reg);
1655 radeon_cs_dump_packet(p, pkt);
1656 return r;
1657 }
1658 if (!(p->cs_flags & RADEON_CS_KEEP_TILING_FLAGS)) {
1659 if (reloc->tiling_flags & RADEON_TILING_MACRO)
1660 tile_flags |= RADEON_TXO_MACRO_TILE;
1661 if (reloc->tiling_flags & RADEON_TILING_MICRO)
1662 tile_flags |= RADEON_TXO_MICRO_TILE_X2;
1663
1664 tmp = idx_value & ~(0x7 << 2);
1665 tmp |= tile_flags;
1666 ib[idx] = tmp + ((u32)reloc->gpu_offset);
1667 } else
1668 ib[idx] = idx_value + ((u32)reloc->gpu_offset);
1669 track->textures[i].robj = reloc->robj;
1670 track->tex_dirty = true;
1671 break;
1672 case RADEON_PP_CUBIC_OFFSET_T0_0:
1673 case RADEON_PP_CUBIC_OFFSET_T0_1:
1674 case RADEON_PP_CUBIC_OFFSET_T0_2:
1675 case RADEON_PP_CUBIC_OFFSET_T0_3:
1676 case RADEON_PP_CUBIC_OFFSET_T0_4:
1677 i = (reg - RADEON_PP_CUBIC_OFFSET_T0_0) / 4;
1678 r = radeon_cs_packet_next_reloc(p, &reloc, 0);
1679 if (r) {
1680 dev_warn_once(p->dev, "No reloc for ib[%d]=0x%04X\n",
1681 idx, reg);
1682 radeon_cs_dump_packet(p, pkt);
1683 return r;
1684 }
1685 track->textures[0].cube_info[i].offset = idx_value;
1686 ib[idx] = idx_value + ((u32)reloc->gpu_offset);
1687 track->textures[0].cube_info[i].robj = reloc->robj;
1688 track->tex_dirty = true;
1689 break;
1690 case RADEON_PP_CUBIC_OFFSET_T1_0:
1691 case RADEON_PP_CUBIC_OFFSET_T1_1:
1692 case RADEON_PP_CUBIC_OFFSET_T1_2:
1693 case RADEON_PP_CUBIC_OFFSET_T1_3:
1694 case RADEON_PP_CUBIC_OFFSET_T1_4:
1695 i = (reg - RADEON_PP_CUBIC_OFFSET_T1_0) / 4;
1696 r = radeon_cs_packet_next_reloc(p, &reloc, 0);
1697 if (r) {
1698 dev_warn_once(p->dev, "No reloc for ib[%d]=0x%04X\n",
1699 idx, reg);
1700 radeon_cs_dump_packet(p, pkt);
1701 return r;
1702 }
1703 track->textures[1].cube_info[i].offset = idx_value;
1704 ib[idx] = idx_value + ((u32)reloc->gpu_offset);
1705 track->textures[1].cube_info[i].robj = reloc->robj;
1706 track->tex_dirty = true;
1707 break;
1708 case RADEON_PP_CUBIC_OFFSET_T2_0:
1709 case RADEON_PP_CUBIC_OFFSET_T2_1:
1710 case RADEON_PP_CUBIC_OFFSET_T2_2:
1711 case RADEON_PP_CUBIC_OFFSET_T2_3:
1712 case RADEON_PP_CUBIC_OFFSET_T2_4:
1713 i = (reg - RADEON_PP_CUBIC_OFFSET_T2_0) / 4;
1714 r = radeon_cs_packet_next_reloc(p, &reloc, 0);
1715 if (r) {
1716 dev_warn_once(p->dev, "No reloc for ib[%d]=0x%04X\n",
1717 idx, reg);
1718 radeon_cs_dump_packet(p, pkt);
1719 return r;
1720 }
1721 track->textures[2].cube_info[i].offset = idx_value;
1722 ib[idx] = idx_value + ((u32)reloc->gpu_offset);
1723 track->textures[2].cube_info[i].robj = reloc->robj;
1724 track->tex_dirty = true;
1725 break;
1726 case RADEON_RE_WIDTH_HEIGHT:
1727 track->maxy = ((idx_value >> 16) & 0x7FF);
1728 track->cb_dirty = true;
1729 track->zb_dirty = true;
1730 break;
1731 case RADEON_RB3D_COLORPITCH:
1732 r = radeon_cs_packet_next_reloc(p, &reloc, 0);
1733 if (r) {
1734 dev_warn_once(p->dev, "No reloc for ib[%d]=0x%04X\n",
1735 idx, reg);
1736 radeon_cs_dump_packet(p, pkt);
1737 return r;
1738 }
1739 if (!(p->cs_flags & RADEON_CS_KEEP_TILING_FLAGS)) {
1740 if (reloc->tiling_flags & RADEON_TILING_MACRO)
1741 tile_flags |= RADEON_COLOR_TILE_ENABLE;
1742 if (reloc->tiling_flags & RADEON_TILING_MICRO)
1743 tile_flags |= RADEON_COLOR_MICROTILE_ENABLE;
1744
1745 tmp = idx_value & ~(0x7 << 16);
1746 tmp |= tile_flags;
1747 ib[idx] = tmp;
1748 } else
1749 ib[idx] = idx_value;
1750
1751 track->cb[0].pitch = idx_value & RADEON_COLORPITCH_MASK;
1752 track->cb_dirty = true;
1753 break;
1754 case RADEON_RB3D_DEPTHPITCH:
1755 track->zb.pitch = idx_value & RADEON_DEPTHPITCH_MASK;
1756 track->zb_dirty = true;
1757 break;
1758 case RADEON_RB3D_CNTL:
1759 switch ((idx_value >> RADEON_RB3D_COLOR_FORMAT_SHIFT) & 0x1f) {
1760 case 7:
1761 case 8:
1762 case 9:
1763 case 11:
1764 case 12:
1765 track->cb[0].cpp = 1;
1766 break;
1767 case 3:
1768 case 4:
1769 case 15:
1770 track->cb[0].cpp = 2;
1771 break;
1772 case 6:
1773 track->cb[0].cpp = 4;
1774 break;
1775 default:
1776 dev_warn_once(p->dev, "Invalid color buffer format (%d) !\n",
1777 ((idx_value >> RADEON_RB3D_COLOR_FORMAT_SHIFT) & 0x1f));
1778 return -EINVAL;
1779 }
1780 track->z_enabled = !!(idx_value & RADEON_Z_ENABLE);
1781 track->cb_dirty = true;
1782 track->zb_dirty = true;
1783 break;
1784 case RADEON_RB3D_ZSTENCILCNTL:
1785 switch (idx_value & 0xf) {
1786 case 0:
1787 track->zb.cpp = 2;
1788 break;
1789 case 2:
1790 case 3:
1791 case 4:
1792 case 5:
1793 case 9:
1794 case 11:
1795 track->zb.cpp = 4;
1796 break;
1797 default:
1798 break;
1799 }
1800 track->zb_dirty = true;
1801 break;
1802 case RADEON_RB3D_ZPASS_ADDR:
1803 r = radeon_cs_packet_next_reloc(p, &reloc, 0);
1804 if (r) {
1805 dev_warn_once(p->dev, "No reloc for ib[%d]=0x%04X\n",
1806 idx, reg);
1807 radeon_cs_dump_packet(p, pkt);
1808 return r;
1809 }
1810 ib[idx] = idx_value + ((u32)reloc->gpu_offset);
1811 break;
1812 case RADEON_PP_CNTL:
1813 {
1814 uint32_t temp = idx_value >> 4;
1815 for (i = 0; i < track->num_texture; i++)
1816 track->textures[i].enabled = !!(temp & (1 << i));
1817 track->tex_dirty = true;
1818 }
1819 break;
1820 case RADEON_SE_VF_CNTL:
1821 track->vap_vf_cntl = idx_value;
1822 break;
1823 case RADEON_SE_VTX_FMT:
1824 track->vtx_size = r100_get_vtx_size(idx_value);
1825 break;
1826 case RADEON_PP_TEX_SIZE_0:
1827 case RADEON_PP_TEX_SIZE_1:
1828 case RADEON_PP_TEX_SIZE_2:
1829 i = (reg - RADEON_PP_TEX_SIZE_0) / 8;
1830 track->textures[i].width = (idx_value & RADEON_TEX_USIZE_MASK) + 1;
1831 track->textures[i].height = ((idx_value & RADEON_TEX_VSIZE_MASK) >> RADEON_TEX_VSIZE_SHIFT) + 1;
1832 track->tex_dirty = true;
1833 break;
1834 case RADEON_PP_TEX_PITCH_0:
1835 case RADEON_PP_TEX_PITCH_1:
1836 case RADEON_PP_TEX_PITCH_2:
1837 i = (reg - RADEON_PP_TEX_PITCH_0) / 8;
1838 track->textures[i].pitch = idx_value + 32;
1839 track->tex_dirty = true;
1840 break;
1841 case RADEON_PP_TXFILTER_0:
1842 case RADEON_PP_TXFILTER_1:
1843 case RADEON_PP_TXFILTER_2:
1844 i = (reg - RADEON_PP_TXFILTER_0) / 24;
1845 track->textures[i].num_levels = ((idx_value & RADEON_MAX_MIP_LEVEL_MASK)
1846 >> RADEON_MAX_MIP_LEVEL_SHIFT);
1847 tmp = (idx_value >> 23) & 0x7;
1848 if (tmp == 2 || tmp == 6)
1849 track->textures[i].roundup_w = false;
1850 tmp = (idx_value >> 27) & 0x7;
1851 if (tmp == 2 || tmp == 6)
1852 track->textures[i].roundup_h = false;
1853 track->tex_dirty = true;
1854 break;
1855 case RADEON_PP_TXFORMAT_0:
1856 case RADEON_PP_TXFORMAT_1:
1857 case RADEON_PP_TXFORMAT_2:
1858 i = (reg - RADEON_PP_TXFORMAT_0) / 24;
1859 if (idx_value & RADEON_TXFORMAT_NON_POWER2) {
1860 track->textures[i].use_pitch = true;
1861 } else {
1862 track->textures[i].use_pitch = false;
1863 track->textures[i].width = 1 << ((idx_value & RADEON_TXFORMAT_WIDTH_MASK) >> RADEON_TXFORMAT_WIDTH_SHIFT);
1864 track->textures[i].height = 1 << ((idx_value & RADEON_TXFORMAT_HEIGHT_MASK) >> RADEON_TXFORMAT_HEIGHT_SHIFT);
1865 }
1866 if (idx_value & RADEON_TXFORMAT_CUBIC_MAP_ENABLE)
1867 track->textures[i].tex_coord_type = 2;
1868 switch ((idx_value & RADEON_TXFORMAT_FORMAT_MASK)) {
1869 case RADEON_TXFORMAT_I8:
1870 case RADEON_TXFORMAT_RGB332:
1871 case RADEON_TXFORMAT_Y8:
1872 track->textures[i].cpp = 1;
1873 track->textures[i].compress_format = R100_TRACK_COMP_NONE;
1874 break;
1875 case RADEON_TXFORMAT_AI88:
1876 case RADEON_TXFORMAT_ARGB1555:
1877 case RADEON_TXFORMAT_RGB565:
1878 case RADEON_TXFORMAT_ARGB4444:
1879 case RADEON_TXFORMAT_VYUY422:
1880 case RADEON_TXFORMAT_YVYU422:
1881 case RADEON_TXFORMAT_SHADOW16:
1882 case RADEON_TXFORMAT_LDUDV655:
1883 case RADEON_TXFORMAT_DUDV88:
1884 track->textures[i].cpp = 2;
1885 track->textures[i].compress_format = R100_TRACK_COMP_NONE;
1886 break;
1887 case RADEON_TXFORMAT_ARGB8888:
1888 case RADEON_TXFORMAT_RGBA8888:
1889 case RADEON_TXFORMAT_SHADOW32:
1890 case RADEON_TXFORMAT_LDUDUV8888:
1891 track->textures[i].cpp = 4;
1892 track->textures[i].compress_format = R100_TRACK_COMP_NONE;
1893 break;
1894 case RADEON_TXFORMAT_DXT1:
1895 track->textures[i].cpp = 1;
1896 track->textures[i].compress_format = R100_TRACK_COMP_DXT1;
1897 break;
1898 case RADEON_TXFORMAT_DXT23:
1899 case RADEON_TXFORMAT_DXT45:
1900 track->textures[i].cpp = 1;
1901 track->textures[i].compress_format = R100_TRACK_COMP_DXT35;
1902 break;
1903 }
1904 track->textures[i].cube_info[4].width = 1 << ((idx_value >> 16) & 0xf);
1905 track->textures[i].cube_info[4].height = 1 << ((idx_value >> 20) & 0xf);
1906 track->tex_dirty = true;
1907 break;
1908 case RADEON_PP_CUBIC_FACES_0:
1909 case RADEON_PP_CUBIC_FACES_1:
1910 case RADEON_PP_CUBIC_FACES_2:
1911 tmp = idx_value;
1912 i = (reg - RADEON_PP_CUBIC_FACES_0) / 4;
1913 for (face = 0; face < 4; face++) {
1914 track->textures[i].cube_info[face].width = 1 << ((tmp >> (face * 8)) & 0xf);
1915 track->textures[i].cube_info[face].height = 1 << ((tmp >> ((face * 8) + 4)) & 0xf);
1916 }
1917 track->tex_dirty = true;
1918 break;
1919 default:
1920 pr_err("Forbidden register 0x%04X in cs at %d\n", reg, idx);
1921 return -EINVAL;
1922 }
1923 return 0;
1924 }
1925
r100_cs_track_check_pkt3_indx_buffer(struct radeon_cs_parser * p,struct radeon_cs_packet * pkt,struct radeon_bo * robj)1926 int r100_cs_track_check_pkt3_indx_buffer(struct radeon_cs_parser *p,
1927 struct radeon_cs_packet *pkt,
1928 struct radeon_bo *robj)
1929 {
1930 unsigned idx;
1931 u32 value;
1932 idx = pkt->idx + 1;
1933 value = radeon_get_ib_value(p, idx + 2);
1934 if ((value + 1) > radeon_bo_size(robj)) {
1935 dev_warn_once(p->dev, "[drm] Buffer too small for PACKET3 INDX_BUFFER "
1936 "(need %u have %lu) !\n",
1937 value + 1,
1938 radeon_bo_size(robj));
1939 return -EINVAL;
1940 }
1941 return 0;
1942 }
1943
r100_packet3_check(struct radeon_cs_parser * p,struct radeon_cs_packet * pkt)1944 static int r100_packet3_check(struct radeon_cs_parser *p,
1945 struct radeon_cs_packet *pkt)
1946 {
1947 struct radeon_bo_list *reloc;
1948 struct r100_cs_track *track;
1949 unsigned idx;
1950 volatile uint32_t *ib;
1951 int r;
1952
1953 ib = p->ib.ptr;
1954 idx = pkt->idx + 1;
1955 track = (struct r100_cs_track *)p->track;
1956 switch (pkt->opcode) {
1957 case PACKET3_3D_LOAD_VBPNTR:
1958 r = r100_packet3_load_vbpntr(p, pkt, idx);
1959 if (r)
1960 return r;
1961 break;
1962 case PACKET3_INDX_BUFFER:
1963 r = radeon_cs_packet_next_reloc(p, &reloc, 0);
1964 if (r) {
1965 dev_warn_once(p->dev, "No reloc for packet3 %d\n", pkt->opcode);
1966 radeon_cs_dump_packet(p, pkt);
1967 return r;
1968 }
1969 ib[idx+1] = radeon_get_ib_value(p, idx+1) + ((u32)reloc->gpu_offset);
1970 r = r100_cs_track_check_pkt3_indx_buffer(p, pkt, reloc->robj);
1971 if (r) {
1972 return r;
1973 }
1974 break;
1975 case 0x23:
1976 /* 3D_RNDR_GEN_INDX_PRIM on r100/r200 */
1977 r = radeon_cs_packet_next_reloc(p, &reloc, 0);
1978 if (r) {
1979 dev_warn_once(p->dev, "No reloc for packet3 %d\n", pkt->opcode);
1980 radeon_cs_dump_packet(p, pkt);
1981 return r;
1982 }
1983 ib[idx] = radeon_get_ib_value(p, idx) + ((u32)reloc->gpu_offset);
1984 track->num_arrays = 1;
1985 track->vtx_size = r100_get_vtx_size(radeon_get_ib_value(p, idx + 2));
1986
1987 track->arrays[0].robj = reloc->robj;
1988 track->arrays[0].esize = track->vtx_size;
1989
1990 track->max_indx = radeon_get_ib_value(p, idx+1);
1991
1992 track->vap_vf_cntl = radeon_get_ib_value(p, idx+3);
1993 track->immd_dwords = pkt->count - 1;
1994 r = r100_cs_track_check(p->rdev, track);
1995 if (r)
1996 return r;
1997 break;
1998 case PACKET3_3D_DRAW_IMMD:
1999 if (((radeon_get_ib_value(p, idx + 1) >> 4) & 0x3) != 3) {
2000 dev_warn_once(p->dev, "PRIM_WALK must be 3 for IMMD draw\n");
2001 return -EINVAL;
2002 }
2003 track->vtx_size = r100_get_vtx_size(radeon_get_ib_value(p, idx + 0));
2004 track->vap_vf_cntl = radeon_get_ib_value(p, idx + 1);
2005 track->immd_dwords = pkt->count - 1;
2006 r = r100_cs_track_check(p->rdev, track);
2007 if (r)
2008 return r;
2009 break;
2010 /* triggers drawing using in-packet vertex data */
2011 case PACKET3_3D_DRAW_IMMD_2:
2012 if (((radeon_get_ib_value(p, idx) >> 4) & 0x3) != 3) {
2013 dev_warn_once(p->dev, "PRIM_WALK must be 3 for IMMD draw\n");
2014 return -EINVAL;
2015 }
2016 track->vap_vf_cntl = radeon_get_ib_value(p, idx);
2017 track->immd_dwords = pkt->count;
2018 r = r100_cs_track_check(p->rdev, track);
2019 if (r)
2020 return r;
2021 break;
2022 /* triggers drawing using in-packet vertex data */
2023 case PACKET3_3D_DRAW_VBUF_2:
2024 track->vap_vf_cntl = radeon_get_ib_value(p, idx);
2025 r = r100_cs_track_check(p->rdev, track);
2026 if (r)
2027 return r;
2028 break;
2029 /* triggers drawing of vertex buffers setup elsewhere */
2030 case PACKET3_3D_DRAW_INDX_2:
2031 track->vap_vf_cntl = radeon_get_ib_value(p, idx);
2032 r = r100_cs_track_check(p->rdev, track);
2033 if (r)
2034 return r;
2035 break;
2036 /* triggers drawing using indices to vertex buffer */
2037 case PACKET3_3D_DRAW_VBUF:
2038 track->vap_vf_cntl = radeon_get_ib_value(p, idx + 1);
2039 r = r100_cs_track_check(p->rdev, track);
2040 if (r)
2041 return r;
2042 break;
2043 /* triggers drawing of vertex buffers setup elsewhere */
2044 case PACKET3_3D_DRAW_INDX:
2045 track->vap_vf_cntl = radeon_get_ib_value(p, idx + 1);
2046 r = r100_cs_track_check(p->rdev, track);
2047 if (r)
2048 return r;
2049 break;
2050 /* triggers drawing using indices to vertex buffer */
2051 case PACKET3_3D_CLEAR_HIZ:
2052 case PACKET3_3D_CLEAR_ZMASK:
2053 if (p->rdev->hyperz_filp != p->filp)
2054 return -EINVAL;
2055 break;
2056 case PACKET3_NOP:
2057 break;
2058 default:
2059 dev_warn_once(p->dev, "Packet3 opcode %x not supported\n", pkt->opcode);
2060 return -EINVAL;
2061 }
2062 return 0;
2063 }
2064
r100_cs_parse(struct radeon_cs_parser * p)2065 int r100_cs_parse(struct radeon_cs_parser *p)
2066 {
2067 struct radeon_cs_packet pkt;
2068 struct r100_cs_track *track;
2069 int r;
2070
2071 track = kzalloc_obj(*track);
2072 if (!track)
2073 return -ENOMEM;
2074 r100_cs_track_clear(p->rdev, track);
2075 p->track = track;
2076 do {
2077 r = radeon_cs_packet_parse(p, &pkt, p->idx);
2078 if (r) {
2079 return r;
2080 }
2081 p->idx += pkt.count + 2;
2082 switch (pkt.type) {
2083 case RADEON_PACKET_TYPE0:
2084 if (p->rdev->family >= CHIP_R200)
2085 r = r100_cs_parse_packet0(p, &pkt,
2086 p->rdev->config.r100.reg_safe_bm,
2087 p->rdev->config.r100.reg_safe_bm_size,
2088 &r200_packet0_check);
2089 else
2090 r = r100_cs_parse_packet0(p, &pkt,
2091 p->rdev->config.r100.reg_safe_bm,
2092 p->rdev->config.r100.reg_safe_bm_size,
2093 &r100_packet0_check);
2094 break;
2095 case RADEON_PACKET_TYPE2:
2096 break;
2097 case RADEON_PACKET_TYPE3:
2098 r = r100_packet3_check(p, &pkt);
2099 break;
2100 default:
2101 dev_warn_once(p->dev, "Unknown packet type %d !\n",
2102 pkt.type);
2103 return -EINVAL;
2104 }
2105 if (r)
2106 return r;
2107 } while (p->idx < p->chunk_ib->length_dw);
2108 return 0;
2109 }
2110
r100_cs_track_texture_print(struct r100_cs_track_texture * t)2111 static void r100_cs_track_texture_print(struct r100_cs_track_texture *t)
2112 {
2113 DRM_DEBUG("pitch %d\n", t->pitch);
2114 DRM_DEBUG("use_pitch %d\n", t->use_pitch);
2115 DRM_DEBUG("width %d\n", t->width);
2116 DRM_DEBUG("width_11 %d\n", t->width_11);
2117 DRM_DEBUG("height %d\n", t->height);
2118 DRM_DEBUG("height_11 %d\n", t->height_11);
2119 DRM_DEBUG("num levels %d\n", t->num_levels);
2120 DRM_DEBUG("depth %d\n", t->txdepth);
2121 DRM_DEBUG("bpp %d\n", t->cpp);
2122 DRM_DEBUG("coordinate type %d\n", t->tex_coord_type);
2123 DRM_DEBUG("width round to power of 2 %d\n", t->roundup_w);
2124 DRM_DEBUG("height round to power of 2 %d\n", t->roundup_h);
2125 DRM_DEBUG("compress format %d\n", t->compress_format);
2126 }
2127
r100_track_compress_size(int compress_format,int w,int h)2128 static int r100_track_compress_size(int compress_format, int w, int h)
2129 {
2130 int block_width, block_height, block_bytes;
2131 int wblocks, hblocks;
2132 int min_wblocks;
2133 int sz;
2134
2135 block_width = 4;
2136 block_height = 4;
2137
2138 switch (compress_format) {
2139 case R100_TRACK_COMP_DXT1:
2140 block_bytes = 8;
2141 min_wblocks = 4;
2142 break;
2143 default:
2144 case R100_TRACK_COMP_DXT35:
2145 block_bytes = 16;
2146 min_wblocks = 2;
2147 break;
2148 }
2149
2150 hblocks = (h + block_height - 1) / block_height;
2151 wblocks = (w + block_width - 1) / block_width;
2152 if (wblocks < min_wblocks)
2153 wblocks = min_wblocks;
2154 sz = wblocks * hblocks * block_bytes;
2155 return sz;
2156 }
2157
r100_cs_track_cube(struct radeon_device * rdev,struct r100_cs_track * track,unsigned idx)2158 static int r100_cs_track_cube(struct radeon_device *rdev,
2159 struct r100_cs_track *track, unsigned idx)
2160 {
2161 unsigned face, w, h;
2162 struct radeon_bo *cube_robj;
2163 unsigned long size;
2164 unsigned compress_format = track->textures[idx].compress_format;
2165
2166 for (face = 0; face < 5; face++) {
2167 cube_robj = track->textures[idx].cube_info[face].robj;
2168 w = track->textures[idx].cube_info[face].width;
2169 h = track->textures[idx].cube_info[face].height;
2170
2171 if (compress_format) {
2172 size = r100_track_compress_size(compress_format, w, h);
2173 } else
2174 size = w * h;
2175 size *= track->textures[idx].cpp;
2176
2177 size += track->textures[idx].cube_info[face].offset;
2178
2179 if (size > radeon_bo_size(cube_robj)) {
2180 dev_warn_once(rdev->dev,
2181 "Cube texture offset greater than object size %lu %lu\n",
2182 size, radeon_bo_size(cube_robj));
2183 r100_cs_track_texture_print(&track->textures[idx]);
2184 return -1;
2185 }
2186 }
2187 return 0;
2188 }
2189
r100_cs_track_texture_check(struct radeon_device * rdev,struct r100_cs_track * track)2190 static int r100_cs_track_texture_check(struct radeon_device *rdev,
2191 struct r100_cs_track *track)
2192 {
2193 struct radeon_bo *robj;
2194 unsigned long size;
2195 unsigned u, i, w, h, d;
2196 int ret;
2197
2198 for (u = 0; u < track->num_texture; u++) {
2199 if (!track->textures[u].enabled)
2200 continue;
2201 if (track->textures[u].lookup_disable)
2202 continue;
2203 robj = track->textures[u].robj;
2204 if (robj == NULL) {
2205 dev_warn_once(rdev->dev, "No texture bound to unit %u\n", u);
2206 return -EINVAL;
2207 }
2208 size = 0;
2209 for (i = 0; i <= track->textures[u].num_levels; i++) {
2210 if (track->textures[u].use_pitch) {
2211 if (rdev->family < CHIP_R300)
2212 w = (track->textures[u].pitch / track->textures[u].cpp) / (1 << i);
2213 else
2214 w = track->textures[u].pitch / (1 << i);
2215 } else {
2216 w = track->textures[u].width;
2217 if (rdev->family >= CHIP_RV515)
2218 w |= track->textures[u].width_11;
2219 w = w / (1 << i);
2220 if (track->textures[u].roundup_w)
2221 w = roundup_pow_of_two(w);
2222 }
2223 h = track->textures[u].height;
2224 if (rdev->family >= CHIP_RV515)
2225 h |= track->textures[u].height_11;
2226 h = h / (1 << i);
2227 if (track->textures[u].roundup_h)
2228 h = roundup_pow_of_two(h);
2229 if (track->textures[u].tex_coord_type == 1) {
2230 d = (1 << track->textures[u].txdepth) / (1 << i);
2231 if (!d)
2232 d = 1;
2233 } else {
2234 d = 1;
2235 }
2236 if (track->textures[u].compress_format) {
2237
2238 size += r100_track_compress_size(track->textures[u].compress_format, w, h) * d;
2239 /* compressed textures are block based */
2240 } else
2241 size += w * h * d;
2242 }
2243 size *= track->textures[u].cpp;
2244
2245 switch (track->textures[u].tex_coord_type) {
2246 case 0:
2247 case 1:
2248 break;
2249 case 2:
2250 if (track->separate_cube) {
2251 ret = r100_cs_track_cube(rdev, track, u);
2252 if (ret)
2253 return ret;
2254 } else
2255 size *= 6;
2256 break;
2257 default:
2258 dev_warn_once(rdev->dev, "Invalid texture coordinate type %u for unit "
2259 "%u\n", track->textures[u].tex_coord_type, u);
2260 return -EINVAL;
2261 }
2262 if (size > radeon_bo_size(robj)) {
2263 dev_warn_once(rdev->dev, "Texture of unit %u needs %lu bytes but is "
2264 "%lu\n", u, size, radeon_bo_size(robj));
2265 r100_cs_track_texture_print(&track->textures[u]);
2266 return -EINVAL;
2267 }
2268 }
2269 return 0;
2270 }
2271
r100_cs_track_check(struct radeon_device * rdev,struct r100_cs_track * track)2272 int r100_cs_track_check(struct radeon_device *rdev, struct r100_cs_track *track)
2273 {
2274 unsigned i;
2275 unsigned long size;
2276 unsigned prim_walk;
2277 unsigned nverts;
2278 unsigned num_cb = track->cb_dirty ? track->num_cb : 0;
2279
2280 if (num_cb && !track->zb_cb_clear && !track->color_channel_mask &&
2281 !track->blend_read_enable)
2282 num_cb = 0;
2283
2284 for (i = 0; i < num_cb; i++) {
2285 if (track->cb[i].robj == NULL) {
2286 dev_warn_once(rdev->dev, "[drm] No buffer for color buffer %d !\n", i);
2287 return -EINVAL;
2288 }
2289 size = track->cb[i].pitch * track->cb[i].cpp * track->maxy;
2290 size += track->cb[i].offset;
2291 if (size > radeon_bo_size(track->cb[i].robj)) {
2292 dev_warn_once(rdev->dev, "[drm] Buffer too small for color buffer %d "
2293 "(need %lu have %lu) !\n", i, size,
2294 radeon_bo_size(track->cb[i].robj));
2295 dev_warn_once(rdev->dev, "[drm] color buffer %d (%u %u %u %u)\n",
2296 i, track->cb[i].pitch, track->cb[i].cpp,
2297 track->cb[i].offset, track->maxy);
2298 return -EINVAL;
2299 }
2300 }
2301 track->cb_dirty = false;
2302
2303 if (track->zb_dirty && track->z_enabled) {
2304 if (track->zb.robj == NULL) {
2305 dev_warn_once(rdev->dev, "[drm] No buffer for z buffer !\n");
2306 return -EINVAL;
2307 }
2308 size = track->zb.pitch * track->zb.cpp * track->maxy;
2309 size += track->zb.offset;
2310 if (size > radeon_bo_size(track->zb.robj)) {
2311 dev_warn_once(rdev->dev, "[drm] Buffer too small for z buffer "
2312 "(need %lu have %lu) !\n", size,
2313 radeon_bo_size(track->zb.robj));
2314 dev_warn_once(rdev->dev, "[drm] zbuffer (%u %u %u %u)\n",
2315 track->zb.pitch, track->zb.cpp,
2316 track->zb.offset, track->maxy);
2317 return -EINVAL;
2318 }
2319 }
2320 track->zb_dirty = false;
2321
2322 if (track->aa_dirty && track->aaresolve) {
2323 if (track->aa.robj == NULL) {
2324 dev_warn_once(rdev->dev, "[drm] No buffer for AA resolve buffer %d !\n", i);
2325 return -EINVAL;
2326 }
2327 /* I believe the format comes from colorbuffer0. */
2328 size = track->aa.pitch * track->cb[0].cpp * track->maxy;
2329 size += track->aa.offset;
2330 if (size > radeon_bo_size(track->aa.robj)) {
2331 dev_warn_once(rdev->dev, "[drm] Buffer too small for AA resolve buffer %d "
2332 "(need %lu have %lu) !\n", i, size,
2333 radeon_bo_size(track->aa.robj));
2334 dev_warn_once(rdev->dev, "[drm] AA resolve buffer %d (%u %u %u %u)\n",
2335 i, track->aa.pitch, track->cb[0].cpp,
2336 track->aa.offset, track->maxy);
2337 return -EINVAL;
2338 }
2339 }
2340 track->aa_dirty = false;
2341
2342 prim_walk = (track->vap_vf_cntl >> 4) & 0x3;
2343 if (track->vap_vf_cntl & (1 << 14)) {
2344 nverts = track->vap_alt_nverts;
2345 } else {
2346 nverts = (track->vap_vf_cntl >> 16) & 0xFFFF;
2347 }
2348 switch (prim_walk) {
2349 case 1:
2350 for (i = 0; i < track->num_arrays; i++) {
2351 size = track->arrays[i].esize * track->max_indx * 4UL;
2352 if (track->arrays[i].robj == NULL) {
2353 dev_warn_once(rdev->dev, "(PW %u) Vertex array %u no buffer "
2354 "bound\n", prim_walk, i);
2355 return -EINVAL;
2356 }
2357 if (size > radeon_bo_size(track->arrays[i].robj)) {
2358 dev_warn_once(rdev->dev, "(PW %u) Vertex array %u "
2359 "need %lu dwords have %lu dwords\n",
2360 prim_walk, i, size >> 2,
2361 radeon_bo_size(track->arrays[i].robj)
2362 >> 2);
2363 dev_warn_once(rdev->dev, "Max indices %u\n", track->max_indx);
2364 return -EINVAL;
2365 }
2366 }
2367 break;
2368 case 2:
2369 for (i = 0; i < track->num_arrays; i++) {
2370 size = track->arrays[i].esize * (nverts - 1) * 4UL;
2371 if (track->arrays[i].robj == NULL) {
2372 dev_warn_once(rdev->dev, "(PW %u) Vertex array %u no buffer "
2373 "bound\n", prim_walk, i);
2374 return -EINVAL;
2375 }
2376 if (size > radeon_bo_size(track->arrays[i].robj)) {
2377 dev_warn_once(rdev->dev, "(PW %u) Vertex array %u "
2378 "need %lu dwords have %lu dwords\n",
2379 prim_walk, i, size >> 2,
2380 radeon_bo_size(track->arrays[i].robj)
2381 >> 2);
2382 return -EINVAL;
2383 }
2384 }
2385 break;
2386 case 3:
2387 size = track->vtx_size * nverts;
2388 if (size != track->immd_dwords) {
2389 dev_warn_once(rdev->dev, "IMMD draw %u dwors but needs %lu dwords\n",
2390 track->immd_dwords, size);
2391 dev_warn_once(rdev->dev, "VAP_VF_CNTL.NUM_VERTICES %u, VTX_SIZE %u\n",
2392 nverts, track->vtx_size);
2393 return -EINVAL;
2394 }
2395 break;
2396 default:
2397 dev_warn_once(rdev->dev, "[drm] Invalid primitive walk %d for VAP_VF_CNTL\n",
2398 prim_walk);
2399 return -EINVAL;
2400 }
2401
2402 if (track->tex_dirty) {
2403 track->tex_dirty = false;
2404 return r100_cs_track_texture_check(rdev, track);
2405 }
2406 return 0;
2407 }
2408
r100_cs_track_clear(struct radeon_device * rdev,struct r100_cs_track * track)2409 void r100_cs_track_clear(struct radeon_device *rdev, struct r100_cs_track *track)
2410 {
2411 unsigned i, face;
2412
2413 track->cb_dirty = true;
2414 track->zb_dirty = true;
2415 track->tex_dirty = true;
2416 track->aa_dirty = true;
2417
2418 if (rdev->family < CHIP_R300) {
2419 track->num_cb = 1;
2420 if (rdev->family <= CHIP_RS200)
2421 track->num_texture = 3;
2422 else
2423 track->num_texture = 6;
2424 track->maxy = 2048;
2425 track->separate_cube = true;
2426 } else {
2427 track->num_cb = 4;
2428 track->num_texture = 16;
2429 track->maxy = 4096;
2430 track->separate_cube = false;
2431 track->aaresolve = false;
2432 track->aa.robj = NULL;
2433 }
2434
2435 for (i = 0; i < track->num_cb; i++) {
2436 track->cb[i].robj = NULL;
2437 track->cb[i].pitch = 8192;
2438 track->cb[i].cpp = 16;
2439 track->cb[i].offset = 0;
2440 }
2441 track->z_enabled = true;
2442 track->zb.robj = NULL;
2443 track->zb.pitch = 8192;
2444 track->zb.cpp = 4;
2445 track->zb.offset = 0;
2446 track->vtx_size = 0x7F;
2447 track->immd_dwords = 0xFFFFFFFFUL;
2448 track->num_arrays = 11;
2449 track->max_indx = 0x00FFFFFFUL;
2450 for (i = 0; i < track->num_arrays; i++) {
2451 track->arrays[i].robj = NULL;
2452 track->arrays[i].esize = 0x7F;
2453 }
2454 for (i = 0; i < track->num_texture; i++) {
2455 track->textures[i].compress_format = R100_TRACK_COMP_NONE;
2456 track->textures[i].pitch = 16536;
2457 track->textures[i].width = 16536;
2458 track->textures[i].height = 16536;
2459 track->textures[i].width_11 = 1 << 11;
2460 track->textures[i].height_11 = 1 << 11;
2461 track->textures[i].num_levels = 12;
2462 if (rdev->family <= CHIP_RS200) {
2463 track->textures[i].tex_coord_type = 0;
2464 track->textures[i].txdepth = 0;
2465 } else {
2466 track->textures[i].txdepth = 16;
2467 track->textures[i].tex_coord_type = 1;
2468 }
2469 track->textures[i].cpp = 64;
2470 track->textures[i].robj = NULL;
2471 /* CS IB emission code makes sure texture unit are disabled */
2472 track->textures[i].enabled = false;
2473 track->textures[i].lookup_disable = false;
2474 track->textures[i].roundup_w = true;
2475 track->textures[i].roundup_h = true;
2476 if (track->separate_cube)
2477 for (face = 0; face < 5; face++) {
2478 track->textures[i].cube_info[face].robj = NULL;
2479 track->textures[i].cube_info[face].width = 16536;
2480 track->textures[i].cube_info[face].height = 16536;
2481 track->textures[i].cube_info[face].offset = 0;
2482 }
2483 }
2484 }
2485
2486 /*
2487 * Global GPU functions
2488 */
r100_errata(struct radeon_device * rdev)2489 static void r100_errata(struct radeon_device *rdev)
2490 {
2491 rdev->pll_errata = 0;
2492
2493 if (rdev->family == CHIP_RV200 || rdev->family == CHIP_RS200) {
2494 rdev->pll_errata |= CHIP_ERRATA_PLL_DUMMYREADS;
2495 }
2496
2497 if (rdev->family == CHIP_RV100 ||
2498 rdev->family == CHIP_RS100 ||
2499 rdev->family == CHIP_RS200) {
2500 rdev->pll_errata |= CHIP_ERRATA_PLL_DELAY;
2501 }
2502 }
2503
r100_rbbm_fifo_wait_for_entry(struct radeon_device * rdev,unsigned n)2504 static int r100_rbbm_fifo_wait_for_entry(struct radeon_device *rdev, unsigned n)
2505 {
2506 unsigned i;
2507 uint32_t tmp;
2508
2509 for (i = 0; i < rdev->usec_timeout; i++) {
2510 tmp = RREG32(RADEON_RBBM_STATUS) & RADEON_RBBM_FIFOCNT_MASK;
2511 if (tmp >= n) {
2512 return 0;
2513 }
2514 udelay(1);
2515 }
2516 return -1;
2517 }
2518
r100_gui_wait_for_idle(struct radeon_device * rdev)2519 int r100_gui_wait_for_idle(struct radeon_device *rdev)
2520 {
2521 unsigned i;
2522 uint32_t tmp;
2523
2524 if (r100_rbbm_fifo_wait_for_entry(rdev, 64)) {
2525 pr_warn("radeon: wait for empty RBBM fifo failed! Bad things might happen.\n");
2526 }
2527 for (i = 0; i < rdev->usec_timeout; i++) {
2528 tmp = RREG32(RADEON_RBBM_STATUS);
2529 if (!(tmp & RADEON_RBBM_ACTIVE)) {
2530 return 0;
2531 }
2532 udelay(1);
2533 }
2534 return -1;
2535 }
2536
r100_mc_wait_for_idle(struct radeon_device * rdev)2537 int r100_mc_wait_for_idle(struct radeon_device *rdev)
2538 {
2539 unsigned i;
2540 uint32_t tmp;
2541
2542 for (i = 0; i < rdev->usec_timeout; i++) {
2543 /* read MC_STATUS */
2544 tmp = RREG32(RADEON_MC_STATUS);
2545 if (tmp & RADEON_MC_IDLE) {
2546 return 0;
2547 }
2548 udelay(1);
2549 }
2550 return -1;
2551 }
2552
r100_gpu_is_lockup(struct radeon_device * rdev,struct radeon_ring * ring)2553 bool r100_gpu_is_lockup(struct radeon_device *rdev, struct radeon_ring *ring)
2554 {
2555 u32 rbbm_status;
2556
2557 rbbm_status = RREG32(R_000E40_RBBM_STATUS);
2558 if (!G_000E40_GUI_ACTIVE(rbbm_status)) {
2559 radeon_ring_lockup_update(rdev, ring);
2560 return false;
2561 }
2562 return radeon_ring_test_lockup(rdev, ring);
2563 }
2564
2565 /* required on r1xx, r2xx, r300, r(v)350, r420/r481, rs400/rs480 */
r100_enable_bm(struct radeon_device * rdev)2566 void r100_enable_bm(struct radeon_device *rdev)
2567 {
2568 uint32_t tmp;
2569 /* Enable bus mastering */
2570 tmp = RREG32(RADEON_BUS_CNTL) & ~RADEON_BUS_MASTER_DIS;
2571 WREG32(RADEON_BUS_CNTL, tmp);
2572 }
2573
r100_bm_disable(struct radeon_device * rdev)2574 void r100_bm_disable(struct radeon_device *rdev)
2575 {
2576 u32 tmp;
2577
2578 /* disable bus mastering */
2579 tmp = RREG32(R_000030_BUS_CNTL);
2580 WREG32(R_000030_BUS_CNTL, (tmp & 0xFFFFFFFF) | 0x00000044);
2581 mdelay(1);
2582 WREG32(R_000030_BUS_CNTL, (tmp & 0xFFFFFFFF) | 0x00000042);
2583 mdelay(1);
2584 WREG32(R_000030_BUS_CNTL, (tmp & 0xFFFFFFFF) | 0x00000040);
2585 tmp = RREG32(RADEON_BUS_CNTL);
2586 mdelay(1);
2587 pci_clear_master(rdev->pdev);
2588 mdelay(1);
2589 }
2590
r100_asic_reset(struct radeon_device * rdev,bool hard)2591 int r100_asic_reset(struct radeon_device *rdev, bool hard)
2592 {
2593 struct r100_mc_save save;
2594 u32 status, tmp;
2595 int ret = 0;
2596
2597 status = RREG32(R_000E40_RBBM_STATUS);
2598 if (!G_000E40_GUI_ACTIVE(status)) {
2599 return 0;
2600 }
2601 r100_mc_stop(rdev, &save);
2602 status = RREG32(R_000E40_RBBM_STATUS);
2603 dev_info(rdev->dev, "(%s:%d) RBBM_STATUS=0x%08X\n", __func__, __LINE__, status);
2604 /* stop CP */
2605 WREG32(RADEON_CP_CSQ_CNTL, 0);
2606 tmp = RREG32(RADEON_CP_RB_CNTL);
2607 WREG32(RADEON_CP_RB_CNTL, tmp | RADEON_RB_RPTR_WR_ENA);
2608 WREG32(RADEON_CP_RB_RPTR_WR, 0);
2609 WREG32(RADEON_CP_RB_WPTR, 0);
2610 WREG32(RADEON_CP_RB_CNTL, tmp);
2611 /* save PCI state */
2612 pci_save_state(rdev->pdev);
2613 /* disable bus mastering */
2614 r100_bm_disable(rdev);
2615 WREG32(R_0000F0_RBBM_SOFT_RESET, S_0000F0_SOFT_RESET_SE(1) |
2616 S_0000F0_SOFT_RESET_RE(1) |
2617 S_0000F0_SOFT_RESET_PP(1) |
2618 S_0000F0_SOFT_RESET_RB(1));
2619 RREG32(R_0000F0_RBBM_SOFT_RESET);
2620 mdelay(500);
2621 WREG32(R_0000F0_RBBM_SOFT_RESET, 0);
2622 mdelay(1);
2623 status = RREG32(R_000E40_RBBM_STATUS);
2624 dev_info(rdev->dev, "(%s:%d) RBBM_STATUS=0x%08X\n", __func__, __LINE__, status);
2625 /* reset CP */
2626 WREG32(R_0000F0_RBBM_SOFT_RESET, S_0000F0_SOFT_RESET_CP(1));
2627 RREG32(R_0000F0_RBBM_SOFT_RESET);
2628 mdelay(500);
2629 WREG32(R_0000F0_RBBM_SOFT_RESET, 0);
2630 mdelay(1);
2631 status = RREG32(R_000E40_RBBM_STATUS);
2632 dev_info(rdev->dev, "(%s:%d) RBBM_STATUS=0x%08X\n", __func__, __LINE__, status);
2633 /* restore PCI & busmastering */
2634 pci_restore_state(rdev->pdev);
2635 r100_enable_bm(rdev);
2636 /* Check if GPU is idle */
2637 if (G_000E40_SE_BUSY(status) || G_000E40_RE_BUSY(status) ||
2638 G_000E40_TAM_BUSY(status) || G_000E40_PB_BUSY(status)) {
2639 dev_err(rdev->dev, "failed to reset GPU\n");
2640 ret = -1;
2641 } else
2642 dev_info(rdev->dev, "GPU reset succeed\n");
2643 r100_mc_resume(rdev, &save);
2644 return ret;
2645 }
2646
r100_set_common_regs(struct radeon_device * rdev)2647 void r100_set_common_regs(struct radeon_device *rdev)
2648 {
2649 bool force_dac2 = false;
2650 u32 tmp;
2651
2652 /* set these so they don't interfere with anything */
2653 WREG32(RADEON_OV0_SCALE_CNTL, 0);
2654 WREG32(RADEON_SUBPIC_CNTL, 0);
2655 WREG32(RADEON_VIPH_CONTROL, 0);
2656 WREG32(RADEON_I2C_CNTL_1, 0);
2657 WREG32(RADEON_DVI_I2C_CNTL_1, 0);
2658 WREG32(RADEON_CAP0_TRIG_CNTL, 0);
2659 WREG32(RADEON_CAP1_TRIG_CNTL, 0);
2660
2661 /* always set up dac2 on rn50 and some rv100 as lots
2662 * of servers seem to wire it up to a VGA port but
2663 * don't report it in the bios connector
2664 * table.
2665 */
2666 switch (rdev->pdev->device) {
2667 /* RN50 */
2668 case 0x515e:
2669 case 0x5969:
2670 force_dac2 = true;
2671 break;
2672 /* RV100*/
2673 case 0x5159:
2674 case 0x515a:
2675 /* DELL triple head servers */
2676 if ((rdev->pdev->subsystem_vendor == 0x1028 /* DELL */) &&
2677 ((rdev->pdev->subsystem_device == 0x016c) ||
2678 (rdev->pdev->subsystem_device == 0x016d) ||
2679 (rdev->pdev->subsystem_device == 0x016e) ||
2680 (rdev->pdev->subsystem_device == 0x016f) ||
2681 (rdev->pdev->subsystem_device == 0x0170) ||
2682 (rdev->pdev->subsystem_device == 0x017d) ||
2683 (rdev->pdev->subsystem_device == 0x017e) ||
2684 (rdev->pdev->subsystem_device == 0x0183) ||
2685 (rdev->pdev->subsystem_device == 0x018a) ||
2686 (rdev->pdev->subsystem_device == 0x019a)))
2687 force_dac2 = true;
2688 break;
2689 }
2690
2691 if (force_dac2) {
2692 u32 disp_hw_debug = RREG32(RADEON_DISP_HW_DEBUG);
2693 u32 tv_dac_cntl = RREG32(RADEON_TV_DAC_CNTL);
2694 u32 dac2_cntl = RREG32(RADEON_DAC_CNTL2);
2695
2696 /* For CRT on DAC2, don't turn it on if BIOS didn't
2697 enable it, even it's detected.
2698 */
2699
2700 /* force it to crtc0 */
2701 dac2_cntl &= ~RADEON_DAC2_DAC_CLK_SEL;
2702 dac2_cntl |= RADEON_DAC2_DAC2_CLK_SEL;
2703 disp_hw_debug |= RADEON_CRT2_DISP1_SEL;
2704
2705 /* set up the TV DAC */
2706 tv_dac_cntl &= ~(RADEON_TV_DAC_PEDESTAL |
2707 RADEON_TV_DAC_STD_MASK |
2708 RADEON_TV_DAC_RDACPD |
2709 RADEON_TV_DAC_GDACPD |
2710 RADEON_TV_DAC_BDACPD |
2711 RADEON_TV_DAC_BGADJ_MASK |
2712 RADEON_TV_DAC_DACADJ_MASK);
2713 tv_dac_cntl |= (RADEON_TV_DAC_NBLANK |
2714 RADEON_TV_DAC_NHOLD |
2715 RADEON_TV_DAC_STD_PS2 |
2716 (0x58 << 16));
2717
2718 WREG32(RADEON_TV_DAC_CNTL, tv_dac_cntl);
2719 WREG32(RADEON_DISP_HW_DEBUG, disp_hw_debug);
2720 WREG32(RADEON_DAC_CNTL2, dac2_cntl);
2721 }
2722
2723 /* switch PM block to ACPI mode */
2724 tmp = RREG32_PLL(RADEON_PLL_PWRMGT_CNTL);
2725 tmp &= ~RADEON_PM_MODE_SEL;
2726 WREG32_PLL(RADEON_PLL_PWRMGT_CNTL, tmp);
2727
2728 }
2729
2730 /*
2731 * VRAM info
2732 */
r100_vram_get_type(struct radeon_device * rdev)2733 static void r100_vram_get_type(struct radeon_device *rdev)
2734 {
2735 uint32_t tmp;
2736
2737 rdev->mc.vram_is_ddr = false;
2738 if (rdev->flags & RADEON_IS_IGP)
2739 rdev->mc.vram_is_ddr = true;
2740 else if (RREG32(RADEON_MEM_SDRAM_MODE_REG) & RADEON_MEM_CFG_TYPE_DDR)
2741 rdev->mc.vram_is_ddr = true;
2742 if ((rdev->family == CHIP_RV100) ||
2743 (rdev->family == CHIP_RS100) ||
2744 (rdev->family == CHIP_RS200)) {
2745 tmp = RREG32(RADEON_MEM_CNTL);
2746 if (tmp & RV100_HALF_MODE) {
2747 rdev->mc.vram_width = 32;
2748 } else {
2749 rdev->mc.vram_width = 64;
2750 }
2751 if (rdev->flags & RADEON_SINGLE_CRTC) {
2752 rdev->mc.vram_width /= 4;
2753 rdev->mc.vram_is_ddr = true;
2754 }
2755 } else if (rdev->family <= CHIP_RV280) {
2756 tmp = RREG32(RADEON_MEM_CNTL);
2757 if (tmp & RADEON_MEM_NUM_CHANNELS_MASK) {
2758 rdev->mc.vram_width = 128;
2759 } else {
2760 rdev->mc.vram_width = 64;
2761 }
2762 } else {
2763 /* newer IGPs */
2764 rdev->mc.vram_width = 128;
2765 }
2766 }
2767
r100_get_accessible_vram(struct radeon_device * rdev)2768 static u32 r100_get_accessible_vram(struct radeon_device *rdev)
2769 {
2770 u32 aper_size;
2771 u8 byte;
2772
2773 aper_size = RREG32(RADEON_CONFIG_APER_SIZE);
2774
2775 /* Set HDP_APER_CNTL only on cards that are known not to be broken,
2776 * that is has the 2nd generation multifunction PCI interface
2777 */
2778 if (rdev->family == CHIP_RV280 ||
2779 rdev->family >= CHIP_RV350) {
2780 WREG32_P(RADEON_HOST_PATH_CNTL, RADEON_HDP_APER_CNTL,
2781 ~RADEON_HDP_APER_CNTL);
2782 DRM_INFO("Generation 2 PCI interface, using max accessible memory\n");
2783 return aper_size * 2;
2784 }
2785
2786 /* Older cards have all sorts of funny issues to deal with. First
2787 * check if it's a multifunction card by reading the PCI config
2788 * header type... Limit those to one aperture size
2789 */
2790 pci_read_config_byte(rdev->pdev, 0xe, &byte);
2791 if (byte & 0x80) {
2792 DRM_INFO("Generation 1 PCI interface in multifunction mode\n");
2793 DRM_INFO("Limiting VRAM to one aperture\n");
2794 return aper_size;
2795 }
2796
2797 /* Single function older card. We read HDP_APER_CNTL to see how the BIOS
2798 * have set it up. We don't write this as it's broken on some ASICs but
2799 * we expect the BIOS to have done the right thing (might be too optimistic...)
2800 */
2801 if (RREG32(RADEON_HOST_PATH_CNTL) & RADEON_HDP_APER_CNTL)
2802 return aper_size * 2;
2803 return aper_size;
2804 }
2805
r100_vram_init_sizes(struct radeon_device * rdev)2806 void r100_vram_init_sizes(struct radeon_device *rdev)
2807 {
2808 u64 config_aper_size;
2809
2810 /* work out accessible VRAM */
2811 rdev->mc.aper_base = pci_resource_start(rdev->pdev, 0);
2812 rdev->mc.aper_size = pci_resource_len(rdev->pdev, 0);
2813 rdev->mc.visible_vram_size = r100_get_accessible_vram(rdev);
2814 /* FIXME we don't use the second aperture yet when we could use it */
2815 if (rdev->mc.visible_vram_size > rdev->mc.aper_size)
2816 rdev->mc.visible_vram_size = rdev->mc.aper_size;
2817 config_aper_size = RREG32(RADEON_CONFIG_APER_SIZE);
2818 if (rdev->flags & RADEON_IS_IGP) {
2819 uint32_t tom;
2820 /* read NB_TOM to get the amount of ram stolen for the GPU */
2821 tom = RREG32(RADEON_NB_TOM);
2822 rdev->mc.real_vram_size = (((tom >> 16) - (tom & 0xffff) + 1) << 16);
2823 WREG32(RADEON_CONFIG_MEMSIZE, rdev->mc.real_vram_size);
2824 rdev->mc.mc_vram_size = rdev->mc.real_vram_size;
2825 } else {
2826 rdev->mc.real_vram_size = RREG32(RADEON_CONFIG_MEMSIZE);
2827 /* Some production boards of m6 will report 0
2828 * if it's 8 MB
2829 */
2830 if (rdev->mc.real_vram_size == 0) {
2831 rdev->mc.real_vram_size = 8192 * 1024;
2832 WREG32(RADEON_CONFIG_MEMSIZE, rdev->mc.real_vram_size);
2833 }
2834 /* Fix for RN50, M6, M7 with 8/16/32(??) MBs of VRAM -
2835 * Novell bug 204882 + along with lots of ubuntu ones
2836 */
2837 if (rdev->mc.aper_size > config_aper_size)
2838 config_aper_size = rdev->mc.aper_size;
2839
2840 if (config_aper_size > rdev->mc.real_vram_size)
2841 rdev->mc.mc_vram_size = config_aper_size;
2842 else
2843 rdev->mc.mc_vram_size = rdev->mc.real_vram_size;
2844 }
2845 }
2846
r100_vga_set_state(struct radeon_device * rdev,bool state)2847 void r100_vga_set_state(struct radeon_device *rdev, bool state)
2848 {
2849 uint32_t temp;
2850
2851 temp = RREG32(RADEON_CONFIG_CNTL);
2852 if (!state) {
2853 temp &= ~RADEON_CFG_VGA_RAM_EN;
2854 temp |= RADEON_CFG_VGA_IO_DIS;
2855 } else {
2856 temp &= ~RADEON_CFG_VGA_IO_DIS;
2857 }
2858 WREG32(RADEON_CONFIG_CNTL, temp);
2859 }
2860
r100_mc_init(struct radeon_device * rdev)2861 static void r100_mc_init(struct radeon_device *rdev)
2862 {
2863 u64 base;
2864
2865 r100_vram_get_type(rdev);
2866 r100_vram_init_sizes(rdev);
2867 base = rdev->mc.aper_base;
2868 if (rdev->flags & RADEON_IS_IGP)
2869 base = (RREG32(RADEON_NB_TOM) & 0xffff) << 16;
2870 radeon_vram_location(rdev, &rdev->mc, base);
2871 rdev->mc.gtt_base_align = 0;
2872 if (!(rdev->flags & RADEON_IS_AGP))
2873 radeon_gtt_location(rdev, &rdev->mc);
2874 radeon_update_bandwidth_info(rdev);
2875 }
2876
2877
2878 /*
2879 * Indirect registers accessor
2880 */
r100_pll_errata_after_index(struct radeon_device * rdev)2881 void r100_pll_errata_after_index(struct radeon_device *rdev)
2882 {
2883 if (rdev->pll_errata & CHIP_ERRATA_PLL_DUMMYREADS) {
2884 (void)RREG32(RADEON_CLOCK_CNTL_DATA);
2885 (void)RREG32(RADEON_CRTC_GEN_CNTL);
2886 }
2887 }
2888
r100_pll_errata_after_data(struct radeon_device * rdev)2889 static void r100_pll_errata_after_data(struct radeon_device *rdev)
2890 {
2891 /* This workarounds is necessary on RV100, RS100 and RS200 chips
2892 * or the chip could hang on a subsequent access
2893 */
2894 if (rdev->pll_errata & CHIP_ERRATA_PLL_DELAY) {
2895 mdelay(5);
2896 }
2897
2898 /* This function is required to workaround a hardware bug in some (all?)
2899 * revisions of the R300. This workaround should be called after every
2900 * CLOCK_CNTL_INDEX register access. If not, register reads afterward
2901 * may not be correct.
2902 */
2903 if (rdev->pll_errata & CHIP_ERRATA_R300_CG) {
2904 uint32_t save, tmp;
2905
2906 save = RREG32(RADEON_CLOCK_CNTL_INDEX);
2907 tmp = save & ~(0x3f | RADEON_PLL_WR_EN);
2908 WREG32(RADEON_CLOCK_CNTL_INDEX, tmp);
2909 tmp = RREG32(RADEON_CLOCK_CNTL_DATA);
2910 WREG32(RADEON_CLOCK_CNTL_INDEX, save);
2911 }
2912 }
2913
r100_pll_rreg(struct radeon_device * rdev,uint32_t reg)2914 uint32_t r100_pll_rreg(struct radeon_device *rdev, uint32_t reg)
2915 {
2916 unsigned long flags;
2917 uint32_t data;
2918
2919 spin_lock_irqsave(&rdev->pll_idx_lock, flags);
2920 WREG8(RADEON_CLOCK_CNTL_INDEX, reg & 0x3f);
2921 r100_pll_errata_after_index(rdev);
2922 data = RREG32(RADEON_CLOCK_CNTL_DATA);
2923 r100_pll_errata_after_data(rdev);
2924 spin_unlock_irqrestore(&rdev->pll_idx_lock, flags);
2925 return data;
2926 }
2927
r100_pll_wreg(struct radeon_device * rdev,uint32_t reg,uint32_t v)2928 void r100_pll_wreg(struct radeon_device *rdev, uint32_t reg, uint32_t v)
2929 {
2930 unsigned long flags;
2931
2932 spin_lock_irqsave(&rdev->pll_idx_lock, flags);
2933 WREG8(RADEON_CLOCK_CNTL_INDEX, ((reg & 0x3f) | RADEON_PLL_WR_EN));
2934 r100_pll_errata_after_index(rdev);
2935 WREG32(RADEON_CLOCK_CNTL_DATA, v);
2936 r100_pll_errata_after_data(rdev);
2937 spin_unlock_irqrestore(&rdev->pll_idx_lock, flags);
2938 }
2939
r100_set_safe_registers(struct radeon_device * rdev)2940 static void r100_set_safe_registers(struct radeon_device *rdev)
2941 {
2942 if (ASIC_IS_RN50(rdev)) {
2943 rdev->config.r100.reg_safe_bm = rn50_reg_safe_bm;
2944 rdev->config.r100.reg_safe_bm_size = ARRAY_SIZE(rn50_reg_safe_bm);
2945 } else if (rdev->family < CHIP_R200) {
2946 rdev->config.r100.reg_safe_bm = r100_reg_safe_bm;
2947 rdev->config.r100.reg_safe_bm_size = ARRAY_SIZE(r100_reg_safe_bm);
2948 } else {
2949 r200_set_safe_registers(rdev);
2950 }
2951 }
2952
2953 /*
2954 * Debugfs info
2955 */
2956 #if defined(CONFIG_DEBUG_FS)
r100_debugfs_rbbm_info_show(struct seq_file * m,void * unused)2957 static int r100_debugfs_rbbm_info_show(struct seq_file *m, void *unused)
2958 {
2959 struct radeon_device *rdev = m->private;
2960 uint32_t reg, value;
2961 unsigned i;
2962
2963 seq_printf(m, "RBBM_STATUS 0x%08x\n", RREG32(RADEON_RBBM_STATUS));
2964 seq_printf(m, "RBBM_CMDFIFO_STAT 0x%08x\n", RREG32(0xE7C));
2965 seq_printf(m, "CP_STAT 0x%08x\n", RREG32(RADEON_CP_STAT));
2966 for (i = 0; i < 64; i++) {
2967 WREG32(RADEON_RBBM_CMDFIFO_ADDR, i | 0x100);
2968 reg = (RREG32(RADEON_RBBM_CMDFIFO_DATA) - 1) >> 2;
2969 WREG32(RADEON_RBBM_CMDFIFO_ADDR, i);
2970 value = RREG32(RADEON_RBBM_CMDFIFO_DATA);
2971 seq_printf(m, "[0x%03X] 0x%04X=0x%08X\n", i, reg, value);
2972 }
2973 return 0;
2974 }
2975
r100_debugfs_cp_ring_info_show(struct seq_file * m,void * unused)2976 static int r100_debugfs_cp_ring_info_show(struct seq_file *m, void *unused)
2977 {
2978 struct radeon_device *rdev = m->private;
2979 struct radeon_ring *ring = &rdev->ring[RADEON_RING_TYPE_GFX_INDEX];
2980 uint32_t rdp, wdp;
2981 unsigned count, i, j;
2982
2983 radeon_ring_free_size(rdev, ring);
2984 rdp = RREG32(RADEON_CP_RB_RPTR);
2985 wdp = RREG32(RADEON_CP_RB_WPTR);
2986 count = (rdp + ring->ring_size - wdp) & ring->ptr_mask;
2987 seq_printf(m, "CP_STAT 0x%08x\n", RREG32(RADEON_CP_STAT));
2988 seq_printf(m, "CP_RB_WPTR 0x%08x\n", wdp);
2989 seq_printf(m, "CP_RB_RPTR 0x%08x\n", rdp);
2990 seq_printf(m, "%u free dwords in ring\n", ring->ring_free_dw);
2991 seq_printf(m, "%u dwords in ring\n", count);
2992 if (ring->ready) {
2993 for (j = 0; j <= count; j++) {
2994 i = (rdp + j) & ring->ptr_mask;
2995 seq_printf(m, "r[%04d]=0x%08x\n", i, ring->ring[i]);
2996 }
2997 }
2998 return 0;
2999 }
3000
3001
r100_debugfs_cp_csq_fifo_show(struct seq_file * m,void * unused)3002 static int r100_debugfs_cp_csq_fifo_show(struct seq_file *m, void *unused)
3003 {
3004 struct radeon_device *rdev = m->private;
3005 uint32_t csq_stat, csq2_stat, tmp;
3006 unsigned r_rptr, r_wptr, ib1_rptr, ib1_wptr, ib2_rptr, ib2_wptr;
3007 unsigned i;
3008
3009 seq_printf(m, "CP_STAT 0x%08x\n", RREG32(RADEON_CP_STAT));
3010 seq_printf(m, "CP_CSQ_MODE 0x%08x\n", RREG32(RADEON_CP_CSQ_MODE));
3011 csq_stat = RREG32(RADEON_CP_CSQ_STAT);
3012 csq2_stat = RREG32(RADEON_CP_CSQ2_STAT);
3013 r_rptr = (csq_stat >> 0) & 0x3ff;
3014 r_wptr = (csq_stat >> 10) & 0x3ff;
3015 ib1_rptr = (csq_stat >> 20) & 0x3ff;
3016 ib1_wptr = (csq2_stat >> 0) & 0x3ff;
3017 ib2_rptr = (csq2_stat >> 10) & 0x3ff;
3018 ib2_wptr = (csq2_stat >> 20) & 0x3ff;
3019 seq_printf(m, "CP_CSQ_STAT 0x%08x\n", csq_stat);
3020 seq_printf(m, "CP_CSQ2_STAT 0x%08x\n", csq2_stat);
3021 seq_printf(m, "Ring rptr %u\n", r_rptr);
3022 seq_printf(m, "Ring wptr %u\n", r_wptr);
3023 seq_printf(m, "Indirect1 rptr %u\n", ib1_rptr);
3024 seq_printf(m, "Indirect1 wptr %u\n", ib1_wptr);
3025 seq_printf(m, "Indirect2 rptr %u\n", ib2_rptr);
3026 seq_printf(m, "Indirect2 wptr %u\n", ib2_wptr);
3027 /* FIXME: 0, 128, 640 depends on fifo setup see cp_init_kms
3028 * 128 = indirect1_start * 8 & 640 = indirect2_start * 8 */
3029 seq_printf(m, "Ring fifo:\n");
3030 for (i = 0; i < 256; i++) {
3031 WREG32(RADEON_CP_CSQ_ADDR, i << 2);
3032 tmp = RREG32(RADEON_CP_CSQ_DATA);
3033 seq_printf(m, "rfifo[%04d]=0x%08X\n", i, tmp);
3034 }
3035 seq_printf(m, "Indirect1 fifo:\n");
3036 for (i = 256; i <= 512; i++) {
3037 WREG32(RADEON_CP_CSQ_ADDR, i << 2);
3038 tmp = RREG32(RADEON_CP_CSQ_DATA);
3039 seq_printf(m, "ib1fifo[%04d]=0x%08X\n", i, tmp);
3040 }
3041 seq_printf(m, "Indirect2 fifo:\n");
3042 for (i = 640; i < ib1_wptr; i++) {
3043 WREG32(RADEON_CP_CSQ_ADDR, i << 2);
3044 tmp = RREG32(RADEON_CP_CSQ_DATA);
3045 seq_printf(m, "ib2fifo[%04d]=0x%08X\n", i, tmp);
3046 }
3047 return 0;
3048 }
3049
r100_debugfs_mc_info_show(struct seq_file * m,void * unused)3050 static int r100_debugfs_mc_info_show(struct seq_file *m, void *unused)
3051 {
3052 struct radeon_device *rdev = m->private;
3053 uint32_t tmp;
3054
3055 tmp = RREG32(RADEON_CONFIG_MEMSIZE);
3056 seq_printf(m, "CONFIG_MEMSIZE 0x%08x\n", tmp);
3057 tmp = RREG32(RADEON_MC_FB_LOCATION);
3058 seq_printf(m, "MC_FB_LOCATION 0x%08x\n", tmp);
3059 tmp = RREG32(RADEON_BUS_CNTL);
3060 seq_printf(m, "BUS_CNTL 0x%08x\n", tmp);
3061 tmp = RREG32(RADEON_MC_AGP_LOCATION);
3062 seq_printf(m, "MC_AGP_LOCATION 0x%08x\n", tmp);
3063 tmp = RREG32(RADEON_AGP_BASE);
3064 seq_printf(m, "AGP_BASE 0x%08x\n", tmp);
3065 tmp = RREG32(RADEON_HOST_PATH_CNTL);
3066 seq_printf(m, "HOST_PATH_CNTL 0x%08x\n", tmp);
3067 tmp = RREG32(0x01D0);
3068 seq_printf(m, "AIC_CTRL 0x%08x\n", tmp);
3069 tmp = RREG32(RADEON_AIC_LO_ADDR);
3070 seq_printf(m, "AIC_LO_ADDR 0x%08x\n", tmp);
3071 tmp = RREG32(RADEON_AIC_HI_ADDR);
3072 seq_printf(m, "AIC_HI_ADDR 0x%08x\n", tmp);
3073 tmp = RREG32(0x01E4);
3074 seq_printf(m, "AIC_TLB_ADDR 0x%08x\n", tmp);
3075 return 0;
3076 }
3077
3078 DEFINE_SHOW_ATTRIBUTE(r100_debugfs_rbbm_info);
3079 DEFINE_SHOW_ATTRIBUTE(r100_debugfs_cp_ring_info);
3080 DEFINE_SHOW_ATTRIBUTE(r100_debugfs_cp_csq_fifo);
3081 DEFINE_SHOW_ATTRIBUTE(r100_debugfs_mc_info);
3082
3083 #endif
3084
r100_debugfs_rbbm_init(struct radeon_device * rdev)3085 void r100_debugfs_rbbm_init(struct radeon_device *rdev)
3086 {
3087 #if defined(CONFIG_DEBUG_FS)
3088 struct dentry *root = rdev_to_drm(rdev)->primary->debugfs_root;
3089
3090 debugfs_create_file("r100_rbbm_info", 0444, root, rdev,
3091 &r100_debugfs_rbbm_info_fops);
3092 #endif
3093 }
3094
r100_debugfs_cp_init(struct radeon_device * rdev)3095 void r100_debugfs_cp_init(struct radeon_device *rdev)
3096 {
3097 #if defined(CONFIG_DEBUG_FS)
3098 struct dentry *root = rdev_to_drm(rdev)->primary->debugfs_root;
3099
3100 debugfs_create_file("r100_cp_ring_info", 0444, root, rdev,
3101 &r100_debugfs_cp_ring_info_fops);
3102 debugfs_create_file("r100_cp_csq_fifo", 0444, root, rdev,
3103 &r100_debugfs_cp_csq_fifo_fops);
3104 #endif
3105 }
3106
r100_debugfs_mc_info_init(struct radeon_device * rdev)3107 void r100_debugfs_mc_info_init(struct radeon_device *rdev)
3108 {
3109 #if defined(CONFIG_DEBUG_FS)
3110 struct dentry *root = rdev_to_drm(rdev)->primary->debugfs_root;
3111
3112 debugfs_create_file("r100_mc_info", 0444, root, rdev,
3113 &r100_debugfs_mc_info_fops);
3114 #endif
3115 }
3116
r100_set_surface_reg(struct radeon_device * rdev,int reg,uint32_t tiling_flags,uint32_t pitch,uint32_t offset,uint32_t obj_size)3117 int r100_set_surface_reg(struct radeon_device *rdev, int reg,
3118 uint32_t tiling_flags, uint32_t pitch,
3119 uint32_t offset, uint32_t obj_size)
3120 {
3121 int surf_index = reg * 16;
3122 int flags = 0;
3123
3124 if (rdev->family <= CHIP_RS200) {
3125 if ((tiling_flags & (RADEON_TILING_MACRO|RADEON_TILING_MICRO))
3126 == (RADEON_TILING_MACRO|RADEON_TILING_MICRO))
3127 flags |= RADEON_SURF_TILE_COLOR_BOTH;
3128 if (tiling_flags & RADEON_TILING_MACRO)
3129 flags |= RADEON_SURF_TILE_COLOR_MACRO;
3130 /* setting pitch to 0 disables tiling */
3131 if ((tiling_flags & (RADEON_TILING_MACRO|RADEON_TILING_MICRO))
3132 == 0)
3133 pitch = 0;
3134 } else if (rdev->family <= CHIP_RV280) {
3135 if (tiling_flags & (RADEON_TILING_MACRO))
3136 flags |= R200_SURF_TILE_COLOR_MACRO;
3137 if (tiling_flags & RADEON_TILING_MICRO)
3138 flags |= R200_SURF_TILE_COLOR_MICRO;
3139 } else {
3140 if (tiling_flags & RADEON_TILING_MACRO)
3141 flags |= R300_SURF_TILE_MACRO;
3142 if (tiling_flags & RADEON_TILING_MICRO)
3143 flags |= R300_SURF_TILE_MICRO;
3144 }
3145
3146 if (tiling_flags & RADEON_TILING_SWAP_16BIT)
3147 flags |= RADEON_SURF_AP0_SWP_16BPP | RADEON_SURF_AP1_SWP_16BPP;
3148 if (tiling_flags & RADEON_TILING_SWAP_32BIT)
3149 flags |= RADEON_SURF_AP0_SWP_32BPP | RADEON_SURF_AP1_SWP_32BPP;
3150
3151 /* r100/r200 divide by 16 */
3152 if (rdev->family < CHIP_R300)
3153 flags |= pitch / 16;
3154 else
3155 flags |= pitch / 8;
3156
3157
3158 DRM_DEBUG_KMS("writing surface %d %d %x %x\n", reg, flags, offset, offset+obj_size-1);
3159 WREG32(RADEON_SURFACE0_INFO + surf_index, flags);
3160 WREG32(RADEON_SURFACE0_LOWER_BOUND + surf_index, offset);
3161 WREG32(RADEON_SURFACE0_UPPER_BOUND + surf_index, offset + obj_size - 1);
3162 return 0;
3163 }
3164
r100_clear_surface_reg(struct radeon_device * rdev,int reg)3165 void r100_clear_surface_reg(struct radeon_device *rdev, int reg)
3166 {
3167 int surf_index = reg * 16;
3168 WREG32(RADEON_SURFACE0_INFO + surf_index, 0);
3169 }
3170
r100_bandwidth_update(struct radeon_device * rdev)3171 void r100_bandwidth_update(struct radeon_device *rdev)
3172 {
3173 fixed20_12 trcd_ff, trp_ff, tras_ff, trbs_ff, tcas_ff;
3174 fixed20_12 sclk_ff, mclk_ff, sclk_eff_ff, sclk_delay_ff;
3175 fixed20_12 peak_disp_bw, mem_bw, pix_clk, pix_clk2, temp_ff;
3176 fixed20_12 crit_point_ff = {0};
3177 uint32_t temp, data, mem_trcd, mem_trp, mem_tras;
3178 fixed20_12 memtcas_ff[8] = {
3179 dfixed_init(1),
3180 dfixed_init(2),
3181 dfixed_init(3),
3182 dfixed_init(0),
3183 dfixed_init_half(1),
3184 dfixed_init_half(2),
3185 dfixed_init(0),
3186 };
3187 fixed20_12 memtcas_rs480_ff[8] = {
3188 dfixed_init(0),
3189 dfixed_init(1),
3190 dfixed_init(2),
3191 dfixed_init(3),
3192 dfixed_init(0),
3193 dfixed_init_half(1),
3194 dfixed_init_half(2),
3195 dfixed_init_half(3),
3196 };
3197 fixed20_12 memtcas2_ff[8] = {
3198 dfixed_init(0),
3199 dfixed_init(1),
3200 dfixed_init(2),
3201 dfixed_init(3),
3202 dfixed_init(4),
3203 dfixed_init(5),
3204 dfixed_init(6),
3205 dfixed_init(7),
3206 };
3207 fixed20_12 memtrbs[8] = {
3208 dfixed_init(1),
3209 dfixed_init_half(1),
3210 dfixed_init(2),
3211 dfixed_init_half(2),
3212 dfixed_init(3),
3213 dfixed_init_half(3),
3214 dfixed_init(4),
3215 dfixed_init_half(4)
3216 };
3217 fixed20_12 memtrbs_r4xx[8] = {
3218 dfixed_init(4),
3219 dfixed_init(5),
3220 dfixed_init(6),
3221 dfixed_init(7),
3222 dfixed_init(8),
3223 dfixed_init(9),
3224 dfixed_init(10),
3225 dfixed_init(11)
3226 };
3227 fixed20_12 min_mem_eff;
3228 fixed20_12 mc_latency_sclk, mc_latency_mclk, k1;
3229 fixed20_12 cur_latency_mclk, cur_latency_sclk;
3230 fixed20_12 disp_latency, disp_latency_overhead, disp_drain_rate = {0},
3231 disp_drain_rate2, read_return_rate;
3232 fixed20_12 time_disp1_drop_priority;
3233 int c;
3234 int cur_size = 16; /* in octawords */
3235 int critical_point = 0, critical_point2;
3236 /* uint32_t read_return_rate, time_disp1_drop_priority; */
3237 int stop_req, max_stop_req;
3238 struct drm_display_mode *mode1 = NULL;
3239 struct drm_display_mode *mode2 = NULL;
3240 uint32_t pixel_bytes1 = 0;
3241 uint32_t pixel_bytes2 = 0;
3242
3243 /* Guess line buffer size to be 8192 pixels */
3244 u32 lb_size = 8192;
3245
3246 if (!rdev->mode_info.mode_config_initialized)
3247 return;
3248
3249 radeon_update_display_priority(rdev);
3250
3251 if (rdev->mode_info.crtcs[0]->base.enabled) {
3252 const struct drm_framebuffer *fb =
3253 rdev->mode_info.crtcs[0]->base.primary->fb;
3254
3255 mode1 = &rdev->mode_info.crtcs[0]->base.mode;
3256 pixel_bytes1 = fb->format->cpp[0];
3257 }
3258 if (!(rdev->flags & RADEON_SINGLE_CRTC)) {
3259 if (rdev->mode_info.crtcs[1]->base.enabled) {
3260 const struct drm_framebuffer *fb =
3261 rdev->mode_info.crtcs[1]->base.primary->fb;
3262
3263 mode2 = &rdev->mode_info.crtcs[1]->base.mode;
3264 pixel_bytes2 = fb->format->cpp[0];
3265 }
3266 }
3267
3268 min_mem_eff.full = dfixed_const_8(0);
3269 /* get modes */
3270 if ((rdev->disp_priority == 2) && ASIC_IS_R300(rdev)) {
3271 uint32_t mc_init_misc_lat_timer = RREG32(R300_MC_INIT_MISC_LAT_TIMER);
3272 mc_init_misc_lat_timer &= ~(R300_MC_DISP1R_INIT_LAT_MASK << R300_MC_DISP1R_INIT_LAT_SHIFT);
3273 mc_init_misc_lat_timer &= ~(R300_MC_DISP0R_INIT_LAT_MASK << R300_MC_DISP0R_INIT_LAT_SHIFT);
3274 /* check crtc enables */
3275 if (mode2)
3276 mc_init_misc_lat_timer |= (1 << R300_MC_DISP1R_INIT_LAT_SHIFT);
3277 if (mode1)
3278 mc_init_misc_lat_timer |= (1 << R300_MC_DISP0R_INIT_LAT_SHIFT);
3279 WREG32(R300_MC_INIT_MISC_LAT_TIMER, mc_init_misc_lat_timer);
3280 }
3281
3282 /*
3283 * determine is there is enough bw for current mode
3284 */
3285 sclk_ff = rdev->pm.sclk;
3286 mclk_ff = rdev->pm.mclk;
3287
3288 temp = (rdev->mc.vram_width / 8) * (rdev->mc.vram_is_ddr ? 2 : 1);
3289 temp_ff.full = dfixed_const(temp);
3290 mem_bw.full = dfixed_mul(mclk_ff, temp_ff);
3291
3292 pix_clk.full = 0;
3293 pix_clk2.full = 0;
3294 peak_disp_bw.full = 0;
3295 if (mode1) {
3296 temp_ff.full = dfixed_const(1000);
3297 pix_clk.full = dfixed_const(mode1->clock); /* convert to fixed point */
3298 pix_clk.full = dfixed_div(pix_clk, temp_ff);
3299 temp_ff.full = dfixed_const(pixel_bytes1);
3300 peak_disp_bw.full += dfixed_mul(pix_clk, temp_ff);
3301 }
3302 if (mode2) {
3303 temp_ff.full = dfixed_const(1000);
3304 pix_clk2.full = dfixed_const(mode2->clock); /* convert to fixed point */
3305 pix_clk2.full = dfixed_div(pix_clk2, temp_ff);
3306 temp_ff.full = dfixed_const(pixel_bytes2);
3307 peak_disp_bw.full += dfixed_mul(pix_clk2, temp_ff);
3308 }
3309
3310 mem_bw.full = dfixed_mul(mem_bw, min_mem_eff);
3311 if (peak_disp_bw.full >= mem_bw.full) {
3312 DRM_ERROR("You may not have enough display bandwidth for current mode\n"
3313 "If you have flickering problem, try to lower resolution, refresh rate, or color depth\n");
3314 }
3315
3316 /* Get values from the EXT_MEM_CNTL register...converting its contents. */
3317 temp = RREG32(RADEON_MEM_TIMING_CNTL);
3318 if ((rdev->family == CHIP_RV100) || (rdev->flags & RADEON_IS_IGP)) { /* RV100, M6, IGPs */
3319 mem_trcd = ((temp >> 2) & 0x3) + 1;
3320 mem_trp = ((temp & 0x3)) + 1;
3321 mem_tras = ((temp & 0x70) >> 4) + 1;
3322 } else if (rdev->family == CHIP_R300 ||
3323 rdev->family == CHIP_R350) { /* r300, r350 */
3324 mem_trcd = (temp & 0x7) + 1;
3325 mem_trp = ((temp >> 8) & 0x7) + 1;
3326 mem_tras = ((temp >> 11) & 0xf) + 4;
3327 } else if (rdev->family == CHIP_RV350 ||
3328 rdev->family == CHIP_RV380) {
3329 /* rv3x0 */
3330 mem_trcd = (temp & 0x7) + 3;
3331 mem_trp = ((temp >> 8) & 0x7) + 3;
3332 mem_tras = ((temp >> 11) & 0xf) + 6;
3333 } else if (rdev->family == CHIP_R420 ||
3334 rdev->family == CHIP_R423 ||
3335 rdev->family == CHIP_RV410) {
3336 /* r4xx */
3337 mem_trcd = (temp & 0xf) + 3;
3338 if (mem_trcd > 15)
3339 mem_trcd = 15;
3340 mem_trp = ((temp >> 8) & 0xf) + 3;
3341 if (mem_trp > 15)
3342 mem_trp = 15;
3343 mem_tras = ((temp >> 12) & 0x1f) + 6;
3344 if (mem_tras > 31)
3345 mem_tras = 31;
3346 } else { /* RV200, R200 */
3347 mem_trcd = (temp & 0x7) + 1;
3348 mem_trp = ((temp >> 8) & 0x7) + 1;
3349 mem_tras = ((temp >> 12) & 0xf) + 4;
3350 }
3351 /* convert to FF */
3352 trcd_ff.full = dfixed_const(mem_trcd);
3353 trp_ff.full = dfixed_const(mem_trp);
3354 tras_ff.full = dfixed_const(mem_tras);
3355
3356 /* Get values from the MEM_SDRAM_MODE_REG register...converting its */
3357 temp = RREG32(RADEON_MEM_SDRAM_MODE_REG);
3358 data = (temp & (7 << 20)) >> 20;
3359 if ((rdev->family == CHIP_RV100) || rdev->flags & RADEON_IS_IGP) {
3360 if (rdev->family == CHIP_RS480) /* don't think rs400 */
3361 tcas_ff = memtcas_rs480_ff[data];
3362 else
3363 tcas_ff = memtcas_ff[data];
3364 } else
3365 tcas_ff = memtcas2_ff[data];
3366
3367 if (rdev->family == CHIP_RS400 ||
3368 rdev->family == CHIP_RS480) {
3369 /* extra cas latency stored in bits 23-25 0-4 clocks */
3370 data = (temp >> 23) & 0x7;
3371 if (data < 5)
3372 tcas_ff.full += dfixed_const(data);
3373 }
3374
3375 if (ASIC_IS_R300(rdev) && !(rdev->flags & RADEON_IS_IGP)) {
3376 /* on the R300, Tcas is included in Trbs.
3377 */
3378 temp = RREG32(RADEON_MEM_CNTL);
3379 data = (R300_MEM_NUM_CHANNELS_MASK & temp);
3380 if (data == 1) {
3381 if (R300_MEM_USE_CD_CH_ONLY & temp) {
3382 temp = RREG32(R300_MC_IND_INDEX);
3383 temp &= ~R300_MC_IND_ADDR_MASK;
3384 temp |= R300_MC_READ_CNTL_CD_mcind;
3385 WREG32(R300_MC_IND_INDEX, temp);
3386 temp = RREG32(R300_MC_IND_DATA);
3387 data = (R300_MEM_RBS_POSITION_C_MASK & temp);
3388 } else {
3389 temp = RREG32(R300_MC_READ_CNTL_AB);
3390 data = (R300_MEM_RBS_POSITION_A_MASK & temp);
3391 }
3392 } else {
3393 temp = RREG32(R300_MC_READ_CNTL_AB);
3394 data = (R300_MEM_RBS_POSITION_A_MASK & temp);
3395 }
3396 if (rdev->family == CHIP_RV410 ||
3397 rdev->family == CHIP_R420 ||
3398 rdev->family == CHIP_R423)
3399 trbs_ff = memtrbs_r4xx[data];
3400 else
3401 trbs_ff = memtrbs[data];
3402 tcas_ff.full += trbs_ff.full;
3403 }
3404
3405 sclk_eff_ff.full = sclk_ff.full;
3406
3407 if (rdev->flags & RADEON_IS_AGP) {
3408 fixed20_12 agpmode_ff;
3409 agpmode_ff.full = dfixed_const(radeon_agpmode);
3410 temp_ff.full = dfixed_const_666(16);
3411 sclk_eff_ff.full -= dfixed_mul(agpmode_ff, temp_ff);
3412 }
3413 /* TODO PCIE lanes may affect this - agpmode == 16?? */
3414
3415 if (ASIC_IS_R300(rdev)) {
3416 sclk_delay_ff.full = dfixed_const(250);
3417 } else {
3418 if ((rdev->family == CHIP_RV100) ||
3419 rdev->flags & RADEON_IS_IGP) {
3420 if (rdev->mc.vram_is_ddr)
3421 sclk_delay_ff.full = dfixed_const(41);
3422 else
3423 sclk_delay_ff.full = dfixed_const(33);
3424 } else {
3425 if (rdev->mc.vram_width == 128)
3426 sclk_delay_ff.full = dfixed_const(57);
3427 else
3428 sclk_delay_ff.full = dfixed_const(41);
3429 }
3430 }
3431
3432 mc_latency_sclk.full = dfixed_div(sclk_delay_ff, sclk_eff_ff);
3433
3434 if (rdev->mc.vram_is_ddr) {
3435 if (rdev->mc.vram_width == 32) {
3436 k1.full = dfixed_const(40);
3437 c = 3;
3438 } else {
3439 k1.full = dfixed_const(20);
3440 c = 1;
3441 }
3442 } else {
3443 k1.full = dfixed_const(40);
3444 c = 3;
3445 }
3446
3447 temp_ff.full = dfixed_const(2);
3448 mc_latency_mclk.full = dfixed_mul(trcd_ff, temp_ff);
3449 temp_ff.full = dfixed_const(c);
3450 mc_latency_mclk.full += dfixed_mul(tcas_ff, temp_ff);
3451 temp_ff.full = dfixed_const(4);
3452 mc_latency_mclk.full += dfixed_mul(tras_ff, temp_ff);
3453 mc_latency_mclk.full += dfixed_mul(trp_ff, temp_ff);
3454 mc_latency_mclk.full += k1.full;
3455
3456 mc_latency_mclk.full = dfixed_div(mc_latency_mclk, mclk_ff);
3457 mc_latency_mclk.full += dfixed_div(temp_ff, sclk_eff_ff);
3458
3459 /*
3460 HW cursor time assuming worst case of full size colour cursor.
3461 */
3462 temp_ff.full = dfixed_const((2 * (cur_size - (rdev->mc.vram_is_ddr + 1))));
3463 temp_ff.full += trcd_ff.full;
3464 if (temp_ff.full < tras_ff.full)
3465 temp_ff.full = tras_ff.full;
3466 cur_latency_mclk.full = dfixed_div(temp_ff, mclk_ff);
3467
3468 temp_ff.full = dfixed_const(cur_size);
3469 cur_latency_sclk.full = dfixed_div(temp_ff, sclk_eff_ff);
3470 /*
3471 Find the total latency for the display data.
3472 */
3473 disp_latency_overhead.full = dfixed_const(8);
3474 disp_latency_overhead.full = dfixed_div(disp_latency_overhead, sclk_ff);
3475 mc_latency_mclk.full += disp_latency_overhead.full + cur_latency_mclk.full;
3476 mc_latency_sclk.full += disp_latency_overhead.full + cur_latency_sclk.full;
3477
3478 if (mc_latency_mclk.full > mc_latency_sclk.full)
3479 disp_latency.full = mc_latency_mclk.full;
3480 else
3481 disp_latency.full = mc_latency_sclk.full;
3482
3483 /* setup Max GRPH_STOP_REQ default value */
3484 if (ASIC_IS_RV100(rdev))
3485 max_stop_req = 0x5c;
3486 else
3487 max_stop_req = 0x7c;
3488
3489 if (mode1) {
3490 /* CRTC1
3491 Set GRPH_BUFFER_CNTL register using h/w defined optimal values.
3492 GRPH_STOP_REQ <= MIN[ 0x7C, (CRTC_H_DISP + 1) * (bit depth) / 0x10 ]
3493 */
3494 stop_req = mode1->hdisplay * pixel_bytes1 / 16;
3495
3496 if (stop_req > max_stop_req)
3497 stop_req = max_stop_req;
3498
3499 /*
3500 Find the drain rate of the display buffer.
3501 */
3502 temp_ff.full = dfixed_const((16/pixel_bytes1));
3503 disp_drain_rate.full = dfixed_div(pix_clk, temp_ff);
3504
3505 /*
3506 Find the critical point of the display buffer.
3507 */
3508 crit_point_ff.full = dfixed_mul(disp_drain_rate, disp_latency);
3509 crit_point_ff.full += dfixed_const_half(0);
3510
3511 critical_point = dfixed_trunc(crit_point_ff);
3512
3513 if (rdev->disp_priority == 2) {
3514 critical_point = 0;
3515 }
3516
3517 /*
3518 The critical point should never be above max_stop_req-4. Setting
3519 GRPH_CRITICAL_CNTL = 0 will thus force high priority all the time.
3520 */
3521 if (max_stop_req - critical_point < 4)
3522 critical_point = 0;
3523
3524 if (critical_point == 0 && mode2 && rdev->family == CHIP_R300) {
3525 /* some R300 cards have problem with this set to 0, when CRTC2 is enabled.*/
3526 critical_point = 0x10;
3527 }
3528
3529 temp = RREG32(RADEON_GRPH_BUFFER_CNTL);
3530 temp &= ~(RADEON_GRPH_STOP_REQ_MASK);
3531 temp |= (stop_req << RADEON_GRPH_STOP_REQ_SHIFT);
3532 temp &= ~(RADEON_GRPH_START_REQ_MASK);
3533 if ((rdev->family == CHIP_R350) &&
3534 (stop_req > 0x15)) {
3535 stop_req -= 0x10;
3536 }
3537 temp |= (stop_req << RADEON_GRPH_START_REQ_SHIFT);
3538 temp |= RADEON_GRPH_BUFFER_SIZE;
3539 temp &= ~(RADEON_GRPH_CRITICAL_CNTL |
3540 RADEON_GRPH_CRITICAL_AT_SOF |
3541 RADEON_GRPH_STOP_CNTL);
3542 /*
3543 Write the result into the register.
3544 */
3545 WREG32(RADEON_GRPH_BUFFER_CNTL, ((temp & ~RADEON_GRPH_CRITICAL_POINT_MASK) |
3546 (critical_point << RADEON_GRPH_CRITICAL_POINT_SHIFT)));
3547
3548 #if 0
3549 if ((rdev->family == CHIP_RS400) ||
3550 (rdev->family == CHIP_RS480)) {
3551 /* attempt to program RS400 disp regs correctly ??? */
3552 temp = RREG32(RS400_DISP1_REG_CNTL);
3553 temp &= ~(RS400_DISP1_START_REQ_LEVEL_MASK |
3554 RS400_DISP1_STOP_REQ_LEVEL_MASK);
3555 WREG32(RS400_DISP1_REQ_CNTL1, (temp |
3556 (critical_point << RS400_DISP1_START_REQ_LEVEL_SHIFT) |
3557 (critical_point << RS400_DISP1_STOP_REQ_LEVEL_SHIFT)));
3558 temp = RREG32(RS400_DMIF_MEM_CNTL1);
3559 temp &= ~(RS400_DISP1_CRITICAL_POINT_START_MASK |
3560 RS400_DISP1_CRITICAL_POINT_STOP_MASK);
3561 WREG32(RS400_DMIF_MEM_CNTL1, (temp |
3562 (critical_point << RS400_DISP1_CRITICAL_POINT_START_SHIFT) |
3563 (critical_point << RS400_DISP1_CRITICAL_POINT_STOP_SHIFT)));
3564 }
3565 #endif
3566
3567 DRM_DEBUG_KMS("GRPH_BUFFER_CNTL from to %x\n",
3568 /* (unsigned int)info->SavedReg->grph_buffer_cntl, */
3569 (unsigned int)RREG32(RADEON_GRPH_BUFFER_CNTL));
3570 }
3571
3572 if (mode2) {
3573 u32 grph2_cntl;
3574 stop_req = mode2->hdisplay * pixel_bytes2 / 16;
3575
3576 if (stop_req > max_stop_req)
3577 stop_req = max_stop_req;
3578
3579 /*
3580 Find the drain rate of the display buffer.
3581 */
3582 temp_ff.full = dfixed_const((16/pixel_bytes2));
3583 disp_drain_rate2.full = dfixed_div(pix_clk2, temp_ff);
3584
3585 grph2_cntl = RREG32(RADEON_GRPH2_BUFFER_CNTL);
3586 grph2_cntl &= ~(RADEON_GRPH_STOP_REQ_MASK);
3587 grph2_cntl |= (stop_req << RADEON_GRPH_STOP_REQ_SHIFT);
3588 grph2_cntl &= ~(RADEON_GRPH_START_REQ_MASK);
3589 if ((rdev->family == CHIP_R350) &&
3590 (stop_req > 0x15)) {
3591 stop_req -= 0x10;
3592 }
3593 grph2_cntl |= (stop_req << RADEON_GRPH_START_REQ_SHIFT);
3594 grph2_cntl |= RADEON_GRPH_BUFFER_SIZE;
3595 grph2_cntl &= ~(RADEON_GRPH_CRITICAL_CNTL |
3596 RADEON_GRPH_CRITICAL_AT_SOF |
3597 RADEON_GRPH_STOP_CNTL);
3598
3599 if ((rdev->family == CHIP_RS100) ||
3600 (rdev->family == CHIP_RS200))
3601 critical_point2 = 0;
3602 else {
3603 temp = (rdev->mc.vram_width * rdev->mc.vram_is_ddr + 1)/128;
3604 temp_ff.full = dfixed_const(temp);
3605 temp_ff.full = dfixed_mul(mclk_ff, temp_ff);
3606 if (sclk_ff.full < temp_ff.full)
3607 temp_ff.full = sclk_ff.full;
3608
3609 read_return_rate.full = temp_ff.full;
3610
3611 if (mode1) {
3612 temp_ff.full = read_return_rate.full - disp_drain_rate.full;
3613 time_disp1_drop_priority.full = dfixed_div(crit_point_ff, temp_ff);
3614 } else {
3615 time_disp1_drop_priority.full = 0;
3616 }
3617 crit_point_ff.full = disp_latency.full + time_disp1_drop_priority.full + disp_latency.full;
3618 crit_point_ff.full = dfixed_mul(crit_point_ff, disp_drain_rate2);
3619 crit_point_ff.full += dfixed_const_half(0);
3620
3621 critical_point2 = dfixed_trunc(crit_point_ff);
3622
3623 if (rdev->disp_priority == 2) {
3624 critical_point2 = 0;
3625 }
3626
3627 if (max_stop_req - critical_point2 < 4)
3628 critical_point2 = 0;
3629
3630 }
3631
3632 if (critical_point2 == 0 && rdev->family == CHIP_R300) {
3633 /* some R300 cards have problem with this set to 0 */
3634 critical_point2 = 0x10;
3635 }
3636
3637 WREG32(RADEON_GRPH2_BUFFER_CNTL, ((grph2_cntl & ~RADEON_GRPH_CRITICAL_POINT_MASK) |
3638 (critical_point2 << RADEON_GRPH_CRITICAL_POINT_SHIFT)));
3639
3640 if ((rdev->family == CHIP_RS400) ||
3641 (rdev->family == CHIP_RS480)) {
3642 #if 0
3643 /* attempt to program RS400 disp2 regs correctly ??? */
3644 temp = RREG32(RS400_DISP2_REQ_CNTL1);
3645 temp &= ~(RS400_DISP2_START_REQ_LEVEL_MASK |
3646 RS400_DISP2_STOP_REQ_LEVEL_MASK);
3647 WREG32(RS400_DISP2_REQ_CNTL1, (temp |
3648 (critical_point2 << RS400_DISP1_START_REQ_LEVEL_SHIFT) |
3649 (critical_point2 << RS400_DISP1_STOP_REQ_LEVEL_SHIFT)));
3650 temp = RREG32(RS400_DISP2_REQ_CNTL2);
3651 temp &= ~(RS400_DISP2_CRITICAL_POINT_START_MASK |
3652 RS400_DISP2_CRITICAL_POINT_STOP_MASK);
3653 WREG32(RS400_DISP2_REQ_CNTL2, (temp |
3654 (critical_point2 << RS400_DISP2_CRITICAL_POINT_START_SHIFT) |
3655 (critical_point2 << RS400_DISP2_CRITICAL_POINT_STOP_SHIFT)));
3656 #endif
3657 WREG32(RS400_DISP2_REQ_CNTL1, 0x105DC1CC);
3658 WREG32(RS400_DISP2_REQ_CNTL2, 0x2749D000);
3659 WREG32(RS400_DMIF_MEM_CNTL1, 0x29CA71DC);
3660 WREG32(RS400_DISP1_REQ_CNTL1, 0x28FBC3AC);
3661 }
3662
3663 DRM_DEBUG_KMS("GRPH2_BUFFER_CNTL from to %x\n",
3664 (unsigned int)RREG32(RADEON_GRPH2_BUFFER_CNTL));
3665 }
3666
3667 /* Save number of lines the linebuffer leads before the scanout */
3668 if (mode1)
3669 rdev->mode_info.crtcs[0]->lb_vblank_lead_lines = DIV_ROUND_UP(lb_size, mode1->crtc_hdisplay);
3670
3671 if (mode2)
3672 rdev->mode_info.crtcs[1]->lb_vblank_lead_lines = DIV_ROUND_UP(lb_size, mode2->crtc_hdisplay);
3673 }
3674
r100_ring_test(struct radeon_device * rdev,struct radeon_ring * ring)3675 int r100_ring_test(struct radeon_device *rdev, struct radeon_ring *ring)
3676 {
3677 uint32_t scratch;
3678 uint32_t tmp = 0;
3679 unsigned i;
3680 int r;
3681
3682 r = radeon_scratch_get(rdev, &scratch);
3683 if (r) {
3684 DRM_ERROR("radeon: cp failed to get scratch reg (%d).\n", r);
3685 return r;
3686 }
3687 WREG32(scratch, 0xCAFEDEAD);
3688 r = radeon_ring_lock(rdev, ring, 2);
3689 if (r) {
3690 DRM_ERROR("radeon: cp failed to lock ring (%d).\n", r);
3691 radeon_scratch_free(rdev, scratch);
3692 return r;
3693 }
3694 radeon_ring_write(ring, PACKET0(scratch, 0));
3695 radeon_ring_write(ring, 0xDEADBEEF);
3696 radeon_ring_unlock_commit(rdev, ring, false);
3697 for (i = 0; i < rdev->usec_timeout; i++) {
3698 tmp = RREG32(scratch);
3699 if (tmp == 0xDEADBEEF) {
3700 break;
3701 }
3702 udelay(1);
3703 }
3704 if (i < rdev->usec_timeout) {
3705 DRM_INFO("ring test succeeded in %d usecs\n", i);
3706 } else {
3707 DRM_ERROR("radeon: ring test failed (scratch(0x%04X)=0x%08X)\n",
3708 scratch, tmp);
3709 r = -EINVAL;
3710 }
3711 radeon_scratch_free(rdev, scratch);
3712 return r;
3713 }
3714
r100_ring_ib_execute(struct radeon_device * rdev,struct radeon_ib * ib)3715 void r100_ring_ib_execute(struct radeon_device *rdev, struct radeon_ib *ib)
3716 {
3717 struct radeon_ring *ring = &rdev->ring[RADEON_RING_TYPE_GFX_INDEX];
3718
3719 if (ring->rptr_save_reg) {
3720 u32 next_rptr = ring->wptr + 2 + 3;
3721 radeon_ring_write(ring, PACKET0(ring->rptr_save_reg, 0));
3722 radeon_ring_write(ring, next_rptr);
3723 }
3724
3725 radeon_ring_write(ring, PACKET0(RADEON_CP_IB_BASE, 1));
3726 radeon_ring_write(ring, ib->gpu_addr);
3727 radeon_ring_write(ring, ib->length_dw);
3728 }
3729
r100_ib_test(struct radeon_device * rdev,struct radeon_ring * ring)3730 int r100_ib_test(struct radeon_device *rdev, struct radeon_ring *ring)
3731 {
3732 struct radeon_ib ib;
3733 uint32_t scratch;
3734 uint32_t tmp = 0;
3735 unsigned i;
3736 int r;
3737
3738 r = radeon_scratch_get(rdev, &scratch);
3739 if (r) {
3740 DRM_ERROR("radeon: failed to get scratch reg (%d).\n", r);
3741 return r;
3742 }
3743 WREG32(scratch, 0xCAFEDEAD);
3744 r = radeon_ib_get(rdev, RADEON_RING_TYPE_GFX_INDEX, &ib, NULL, 256);
3745 if (r) {
3746 DRM_ERROR("radeon: failed to get ib (%d).\n", r);
3747 goto free_scratch;
3748 }
3749 ib.ptr[0] = PACKET0(scratch, 0);
3750 ib.ptr[1] = 0xDEADBEEF;
3751 ib.ptr[2] = PACKET2(0);
3752 ib.ptr[3] = PACKET2(0);
3753 ib.ptr[4] = PACKET2(0);
3754 ib.ptr[5] = PACKET2(0);
3755 ib.ptr[6] = PACKET2(0);
3756 ib.ptr[7] = PACKET2(0);
3757 ib.length_dw = 8;
3758 r = radeon_ib_schedule(rdev, &ib, NULL, false);
3759 if (r) {
3760 DRM_ERROR("radeon: failed to schedule ib (%d).\n", r);
3761 goto free_ib;
3762 }
3763 r = radeon_fence_wait_timeout(ib.fence, false, usecs_to_jiffies(
3764 RADEON_USEC_IB_TEST_TIMEOUT));
3765 if (r < 0) {
3766 DRM_ERROR("radeon: fence wait failed (%d).\n", r);
3767 goto free_ib;
3768 } else if (r == 0) {
3769 DRM_ERROR("radeon: fence wait timed out.\n");
3770 r = -ETIMEDOUT;
3771 goto free_ib;
3772 }
3773 r = 0;
3774 for (i = 0; i < rdev->usec_timeout; i++) {
3775 tmp = RREG32(scratch);
3776 if (tmp == 0xDEADBEEF) {
3777 break;
3778 }
3779 udelay(1);
3780 }
3781 if (i < rdev->usec_timeout) {
3782 DRM_INFO("ib test succeeded in %u usecs\n", i);
3783 } else {
3784 DRM_ERROR("radeon: ib test failed (scratch(0x%04X)=0x%08X)\n",
3785 scratch, tmp);
3786 r = -EINVAL;
3787 }
3788 free_ib:
3789 radeon_ib_free(rdev, &ib);
3790 free_scratch:
3791 radeon_scratch_free(rdev, scratch);
3792 return r;
3793 }
3794
r100_mc_stop(struct radeon_device * rdev,struct r100_mc_save * save)3795 void r100_mc_stop(struct radeon_device *rdev, struct r100_mc_save *save)
3796 {
3797 /* Shutdown CP we shouldn't need to do that but better be safe than
3798 * sorry
3799 */
3800 rdev->ring[RADEON_RING_TYPE_GFX_INDEX].ready = false;
3801 WREG32(R_000740_CP_CSQ_CNTL, 0);
3802
3803 /* Save few CRTC registers */
3804 save->GENMO_WT = RREG8(R_0003C2_GENMO_WT);
3805 save->CRTC_EXT_CNTL = RREG32(R_000054_CRTC_EXT_CNTL);
3806 save->CRTC_GEN_CNTL = RREG32(R_000050_CRTC_GEN_CNTL);
3807 save->CUR_OFFSET = RREG32(R_000260_CUR_OFFSET);
3808 if (!(rdev->flags & RADEON_SINGLE_CRTC)) {
3809 save->CRTC2_GEN_CNTL = RREG32(R_0003F8_CRTC2_GEN_CNTL);
3810 save->CUR2_OFFSET = RREG32(R_000360_CUR2_OFFSET);
3811 }
3812
3813 /* Disable VGA aperture access */
3814 WREG8(R_0003C2_GENMO_WT, C_0003C2_VGA_RAM_EN & save->GENMO_WT);
3815 /* Disable cursor, overlay, crtc */
3816 WREG32(R_000260_CUR_OFFSET, save->CUR_OFFSET | S_000260_CUR_LOCK(1));
3817 WREG32(R_000054_CRTC_EXT_CNTL, save->CRTC_EXT_CNTL |
3818 S_000054_CRTC_DISPLAY_DIS(1));
3819 WREG32(R_000050_CRTC_GEN_CNTL,
3820 (C_000050_CRTC_CUR_EN & save->CRTC_GEN_CNTL) |
3821 S_000050_CRTC_DISP_REQ_EN_B(1));
3822 WREG32(R_000420_OV0_SCALE_CNTL,
3823 C_000420_OV0_OVERLAY_EN & RREG32(R_000420_OV0_SCALE_CNTL));
3824 WREG32(R_000260_CUR_OFFSET, C_000260_CUR_LOCK & save->CUR_OFFSET);
3825 if (!(rdev->flags & RADEON_SINGLE_CRTC)) {
3826 WREG32(R_000360_CUR2_OFFSET, save->CUR2_OFFSET |
3827 S_000360_CUR2_LOCK(1));
3828 WREG32(R_0003F8_CRTC2_GEN_CNTL,
3829 (C_0003F8_CRTC2_CUR_EN & save->CRTC2_GEN_CNTL) |
3830 S_0003F8_CRTC2_DISPLAY_DIS(1) |
3831 S_0003F8_CRTC2_DISP_REQ_EN_B(1));
3832 WREG32(R_000360_CUR2_OFFSET,
3833 C_000360_CUR2_LOCK & save->CUR2_OFFSET);
3834 }
3835 }
3836
r100_mc_resume(struct radeon_device * rdev,struct r100_mc_save * save)3837 void r100_mc_resume(struct radeon_device *rdev, struct r100_mc_save *save)
3838 {
3839 /* Update base address for crtc */
3840 WREG32(R_00023C_DISPLAY_BASE_ADDR, rdev->mc.vram_start);
3841 if (!(rdev->flags & RADEON_SINGLE_CRTC)) {
3842 WREG32(R_00033C_CRTC2_DISPLAY_BASE_ADDR, rdev->mc.vram_start);
3843 }
3844 /* Restore CRTC registers */
3845 WREG8(R_0003C2_GENMO_WT, save->GENMO_WT);
3846 WREG32(R_000054_CRTC_EXT_CNTL, save->CRTC_EXT_CNTL);
3847 WREG32(R_000050_CRTC_GEN_CNTL, save->CRTC_GEN_CNTL);
3848 if (!(rdev->flags & RADEON_SINGLE_CRTC)) {
3849 WREG32(R_0003F8_CRTC2_GEN_CNTL, save->CRTC2_GEN_CNTL);
3850 }
3851 }
3852
r100_vga_render_disable(struct radeon_device * rdev)3853 void r100_vga_render_disable(struct radeon_device *rdev)
3854 {
3855 u32 tmp;
3856
3857 tmp = RREG8(R_0003C2_GENMO_WT);
3858 WREG8(R_0003C2_GENMO_WT, C_0003C2_VGA_RAM_EN & tmp);
3859 }
3860
r100_mc_program(struct radeon_device * rdev)3861 static void r100_mc_program(struct radeon_device *rdev)
3862 {
3863 struct r100_mc_save save;
3864
3865 /* Stops all mc clients */
3866 r100_mc_stop(rdev, &save);
3867 if (rdev->flags & RADEON_IS_AGP) {
3868 WREG32(R_00014C_MC_AGP_LOCATION,
3869 S_00014C_MC_AGP_START(rdev->mc.gtt_start >> 16) |
3870 S_00014C_MC_AGP_TOP(rdev->mc.gtt_end >> 16));
3871 WREG32(R_000170_AGP_BASE, lower_32_bits(rdev->mc.agp_base));
3872 if (rdev->family > CHIP_RV200)
3873 WREG32(R_00015C_AGP_BASE_2,
3874 upper_32_bits(rdev->mc.agp_base) & 0xff);
3875 } else {
3876 WREG32(R_00014C_MC_AGP_LOCATION, 0x0FFFFFFF);
3877 WREG32(R_000170_AGP_BASE, 0);
3878 if (rdev->family > CHIP_RV200)
3879 WREG32(R_00015C_AGP_BASE_2, 0);
3880 }
3881 /* Wait for mc idle */
3882 if (r100_mc_wait_for_idle(rdev))
3883 dev_warn(rdev->dev, "Wait for MC idle timeout.\n");
3884 /* Program MC, should be a 32bits limited address space */
3885 WREG32(R_000148_MC_FB_LOCATION,
3886 S_000148_MC_FB_START(rdev->mc.vram_start >> 16) |
3887 S_000148_MC_FB_TOP(rdev->mc.vram_end >> 16));
3888 r100_mc_resume(rdev, &save);
3889 }
3890
r100_clock_startup(struct radeon_device * rdev)3891 static void r100_clock_startup(struct radeon_device *rdev)
3892 {
3893 u32 tmp;
3894
3895 if (radeon_dynclks != -1 && radeon_dynclks)
3896 radeon_legacy_set_clock_gating(rdev, 1);
3897 /* We need to force on some of the block */
3898 tmp = RREG32_PLL(R_00000D_SCLK_CNTL);
3899 tmp |= S_00000D_FORCE_CP(1) | S_00000D_FORCE_VIP(1);
3900 if ((rdev->family == CHIP_RV250) || (rdev->family == CHIP_RV280))
3901 tmp |= S_00000D_FORCE_DISP1(1) | S_00000D_FORCE_DISP2(1);
3902 WREG32_PLL(R_00000D_SCLK_CNTL, tmp);
3903 }
3904
r100_startup(struct radeon_device * rdev)3905 static int r100_startup(struct radeon_device *rdev)
3906 {
3907 int r;
3908
3909 /* set common regs */
3910 r100_set_common_regs(rdev);
3911 /* program mc */
3912 r100_mc_program(rdev);
3913 /* Resume clock */
3914 r100_clock_startup(rdev);
3915 /* Initialize GART (initialize after TTM so we can allocate
3916 * memory through TTM but finalize after TTM) */
3917 r100_enable_bm(rdev);
3918 if (rdev->flags & RADEON_IS_PCI) {
3919 r = r100_pci_gart_enable(rdev);
3920 if (r)
3921 return r;
3922 }
3923
3924 /* allocate wb buffer */
3925 r = radeon_wb_init(rdev);
3926 if (r)
3927 return r;
3928
3929 r = radeon_fence_driver_start_ring(rdev, RADEON_RING_TYPE_GFX_INDEX);
3930 if (r) {
3931 dev_err(rdev->dev, "failed initializing CP fences (%d).\n", r);
3932 return r;
3933 }
3934
3935 /* Enable IRQ */
3936 if (!rdev->irq.installed) {
3937 r = radeon_irq_kms_init(rdev);
3938 if (r)
3939 return r;
3940 }
3941
3942 r100_irq_set(rdev);
3943 rdev->config.r100.hdp_cntl = RREG32(RADEON_HOST_PATH_CNTL);
3944 /* 1M ring buffer */
3945 r = r100_cp_init(rdev, 1024 * 1024);
3946 if (r) {
3947 dev_err(rdev->dev, "failed initializing CP (%d).\n", r);
3948 return r;
3949 }
3950
3951 r = radeon_ib_pool_init(rdev);
3952 if (r) {
3953 dev_err(rdev->dev, "IB initialization failed (%d).\n", r);
3954 return r;
3955 }
3956
3957 return 0;
3958 }
3959
r100_resume(struct radeon_device * rdev)3960 int r100_resume(struct radeon_device *rdev)
3961 {
3962 int r;
3963
3964 /* Make sur GART are not working */
3965 if (rdev->flags & RADEON_IS_PCI)
3966 r100_pci_gart_disable(rdev);
3967 /* Resume clock before doing reset */
3968 r100_clock_startup(rdev);
3969 /* Reset gpu before posting otherwise ATOM will enter infinite loop */
3970 if (radeon_asic_reset(rdev)) {
3971 dev_warn(rdev->dev, "GPU reset failed ! (0xE40=0x%08X, 0x7C0=0x%08X)\n",
3972 RREG32(R_000E40_RBBM_STATUS),
3973 RREG32(R_0007C0_CP_STAT));
3974 }
3975 /* post */
3976 radeon_combios_asic_init(rdev_to_drm(rdev));
3977 /* Resume clock after posting */
3978 r100_clock_startup(rdev);
3979 /* Initialize surface registers */
3980 radeon_surface_init(rdev);
3981
3982 rdev->accel_working = true;
3983 r = r100_startup(rdev);
3984 if (r) {
3985 rdev->accel_working = false;
3986 }
3987 return r;
3988 }
3989
r100_suspend(struct radeon_device * rdev)3990 int r100_suspend(struct radeon_device *rdev)
3991 {
3992 radeon_pm_suspend(rdev);
3993 r100_cp_disable(rdev);
3994 radeon_wb_disable(rdev);
3995 r100_irq_disable(rdev);
3996 if (rdev->flags & RADEON_IS_PCI)
3997 r100_pci_gart_disable(rdev);
3998 return 0;
3999 }
4000
r100_fini(struct radeon_device * rdev)4001 void r100_fini(struct radeon_device *rdev)
4002 {
4003 radeon_pm_fini(rdev);
4004 r100_cp_fini(rdev);
4005 radeon_wb_fini(rdev);
4006 radeon_ib_pool_fini(rdev);
4007 radeon_gem_fini(rdev);
4008 if (rdev->flags & RADEON_IS_PCI)
4009 r100_pci_gart_fini(rdev);
4010 radeon_agp_fini(rdev);
4011 radeon_irq_kms_fini(rdev);
4012 radeon_fence_driver_fini(rdev);
4013 radeon_bo_fini(rdev);
4014 radeon_atombios_fini(rdev);
4015 kfree(rdev->bios);
4016 rdev->bios = NULL;
4017 }
4018
4019 /*
4020 * Due to how kexec works, it can leave the hw fully initialised when it
4021 * boots the new kernel. However doing our init sequence with the CP and
4022 * WB stuff setup causes GPU hangs on the RN50 at least. So at startup
4023 * do some quick sanity checks and restore sane values to avoid this
4024 * problem.
4025 */
r100_restore_sanity(struct radeon_device * rdev)4026 void r100_restore_sanity(struct radeon_device *rdev)
4027 {
4028 u32 tmp;
4029
4030 tmp = RREG32(RADEON_CP_CSQ_CNTL);
4031 if (tmp) {
4032 WREG32(RADEON_CP_CSQ_CNTL, 0);
4033 }
4034 tmp = RREG32(RADEON_CP_RB_CNTL);
4035 if (tmp) {
4036 WREG32(RADEON_CP_RB_CNTL, 0);
4037 }
4038 tmp = RREG32(RADEON_SCRATCH_UMSK);
4039 if (tmp) {
4040 WREG32(RADEON_SCRATCH_UMSK, 0);
4041 }
4042 }
4043
r100_init(struct radeon_device * rdev)4044 int r100_init(struct radeon_device *rdev)
4045 {
4046 int r;
4047
4048 /* Register debugfs file specific to this group of asics */
4049 r100_debugfs_mc_info_init(rdev);
4050 /* Disable VGA */
4051 r100_vga_render_disable(rdev);
4052 /* Initialize scratch registers */
4053 radeon_scratch_init(rdev);
4054 /* Initialize surface registers */
4055 radeon_surface_init(rdev);
4056 /* sanity check some register to avoid hangs like after kexec */
4057 r100_restore_sanity(rdev);
4058 /* TODO: disable VGA need to use VGA request */
4059 /* BIOS*/
4060 if (!radeon_get_bios(rdev)) {
4061 if (ASIC_IS_AVIVO(rdev))
4062 return -EINVAL;
4063 }
4064 if (rdev->is_atom_bios) {
4065 dev_err(rdev->dev, "Expecting combios for RS400/RS480 GPU\n");
4066 return -EINVAL;
4067 } else {
4068 r = radeon_combios_init(rdev);
4069 if (r)
4070 return r;
4071 }
4072 /* Reset gpu before posting otherwise ATOM will enter infinite loop */
4073 if (radeon_asic_reset(rdev)) {
4074 dev_warn(rdev->dev,
4075 "GPU reset failed ! (0xE40=0x%08X, 0x7C0=0x%08X)\n",
4076 RREG32(R_000E40_RBBM_STATUS),
4077 RREG32(R_0007C0_CP_STAT));
4078 }
4079 /* check if cards are posted or not */
4080 if (radeon_boot_test_post_card(rdev) == false)
4081 return -EINVAL;
4082 /* Set asic errata */
4083 r100_errata(rdev);
4084 /* Initialize clocks */
4085 radeon_get_clock_info(rdev_to_drm(rdev));
4086 /* initialize AGP */
4087 if (rdev->flags & RADEON_IS_AGP) {
4088 r = radeon_agp_init(rdev);
4089 if (r) {
4090 radeon_agp_disable(rdev);
4091 }
4092 }
4093 /* initialize VRAM */
4094 r100_mc_init(rdev);
4095 /* Fence driver */
4096 radeon_fence_driver_init(rdev);
4097 /* Memory manager */
4098 r = radeon_bo_init(rdev);
4099 if (r)
4100 return r;
4101 if (rdev->flags & RADEON_IS_PCI) {
4102 r = r100_pci_gart_init(rdev);
4103 if (r)
4104 return r;
4105 }
4106 r100_set_safe_registers(rdev);
4107
4108 /* Initialize power management */
4109 radeon_pm_init(rdev);
4110
4111 rdev->accel_working = true;
4112 r = r100_startup(rdev);
4113 if (r) {
4114 /* Somethings want wront with the accel init stop accel */
4115 dev_err(rdev->dev, "Disabling GPU acceleration\n");
4116 r100_cp_fini(rdev);
4117 radeon_wb_fini(rdev);
4118 radeon_ib_pool_fini(rdev);
4119 radeon_irq_kms_fini(rdev);
4120 if (rdev->flags & RADEON_IS_PCI)
4121 r100_pci_gart_fini(rdev);
4122 rdev->accel_working = false;
4123 }
4124 return 0;
4125 }
4126
r100_mm_rreg_slow(struct radeon_device * rdev,uint32_t reg)4127 uint32_t r100_mm_rreg_slow(struct radeon_device *rdev, uint32_t reg)
4128 {
4129 unsigned long flags;
4130 uint32_t ret;
4131
4132 spin_lock_irqsave(&rdev->mmio_idx_lock, flags);
4133 writel(reg, ((void __iomem *)rdev->rmmio) + RADEON_MM_INDEX);
4134 ret = readl(((void __iomem *)rdev->rmmio) + RADEON_MM_DATA);
4135 spin_unlock_irqrestore(&rdev->mmio_idx_lock, flags);
4136 return ret;
4137 }
4138
r100_mm_wreg_slow(struct radeon_device * rdev,uint32_t reg,uint32_t v)4139 void r100_mm_wreg_slow(struct radeon_device *rdev, uint32_t reg, uint32_t v)
4140 {
4141 unsigned long flags;
4142
4143 spin_lock_irqsave(&rdev->mmio_idx_lock, flags);
4144 writel(reg, ((void __iomem *)rdev->rmmio) + RADEON_MM_INDEX);
4145 writel(v, ((void __iomem *)rdev->rmmio) + RADEON_MM_DATA);
4146 spin_unlock_irqrestore(&rdev->mmio_idx_lock, flags);
4147 }
4148
r100_io_rreg(struct radeon_device * rdev,u32 reg)4149 u32 r100_io_rreg(struct radeon_device *rdev, u32 reg)
4150 {
4151 if (reg < rdev->rio_mem_size)
4152 return ioread32(rdev->rio_mem + reg);
4153 else {
4154 iowrite32(reg, rdev->rio_mem + RADEON_MM_INDEX);
4155 return ioread32(rdev->rio_mem + RADEON_MM_DATA);
4156 }
4157 }
4158
r100_io_wreg(struct radeon_device * rdev,u32 reg,u32 v)4159 void r100_io_wreg(struct radeon_device *rdev, u32 reg, u32 v)
4160 {
4161 if (reg < rdev->rio_mem_size)
4162 iowrite32(v, rdev->rio_mem + reg);
4163 else {
4164 iowrite32(reg, rdev->rio_mem + RADEON_MM_INDEX);
4165 iowrite32(v, rdev->rio_mem + RADEON_MM_DATA);
4166 }
4167 }
4168