xref: /dragonfly/sys/dev/drm/radeon/rs690.c (revision 0de61e28)
1 /*
2  * Copyright 2008 Advanced Micro Devices, Inc.
3  * Copyright 2008 Red Hat Inc.
4  * Copyright 2009 Jerome Glisse.
5  *
6  * Permission is hereby granted, free of charge, to any person obtaining a
7  * copy of this software and associated documentation files (the "Software"),
8  * to deal in the Software without restriction, including without limitation
9  * the rights to use, copy, modify, merge, publish, distribute, sublicense,
10  * and/or sell copies of the Software, and to permit persons to whom the
11  * Software is furnished to do so, subject to the following conditions:
12  *
13  * The above copyright notice and this permission notice shall be included in
14  * all copies or substantial portions of the Software.
15  *
16  * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
17  * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
18  * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT.  IN NO EVENT SHALL
19  * THE COPYRIGHT HOLDER(S) OR AUTHOR(S) BE LIABLE FOR ANY CLAIM, DAMAGES OR
20  * OTHER LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE,
21  * ARISING FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR
22  * OTHER DEALINGS IN THE SOFTWARE.
23  *
24  * Authors: Dave Airlie
25  *          Alex Deucher
26  *          Jerome Glisse
27  */
28 #include <drm/drmP.h>
29 #include "radeon.h"
30 #include "radeon_asic.h"
31 #include "radeon_audio.h"
32 #include "atom.h"
33 #include "rs690d.h"
34 
35 int rs690_mc_wait_for_idle(struct radeon_device *rdev)
36 {
37 	unsigned i;
38 	uint32_t tmp;
39 
40 	for (i = 0; i < rdev->usec_timeout; i++) {
41 		/* read MC_STATUS */
42 		tmp = RREG32_MC(R_000090_MC_SYSTEM_STATUS);
43 		if (G_000090_MC_SYSTEM_IDLE(tmp))
44 			return 0;
45 		udelay(1);
46 	}
47 	return -1;
48 }
49 
50 static void rs690_gpu_init(struct radeon_device *rdev)
51 {
52 	/* FIXME: is this correct ? */
53 	r420_pipes_init(rdev);
54 	if (rs690_mc_wait_for_idle(rdev)) {
55 		printk(KERN_WARNING "Failed to wait MC idle while "
56 		       "programming pipes. Bad things might happen.\n");
57 	}
58 }
59 
60 union igp_info {
61 	struct _ATOM_INTEGRATED_SYSTEM_INFO info;
62 	struct _ATOM_INTEGRATED_SYSTEM_INFO_V2 info_v2;
63 };
64 
65 void rs690_pm_info(struct radeon_device *rdev)
66 {
67 	int index = GetIndexIntoMasterTable(DATA, IntegratedSystemInfo);
68 	union igp_info *info;
69 	uint16_t data_offset;
70 	uint8_t frev, crev;
71 	fixed20_12 tmp;
72 
73 	if (atom_parse_data_header(rdev->mode_info.atom_context, index, NULL,
74 				   &frev, &crev, &data_offset)) {
75 		info = (union igp_info *)((uintptr_t)rdev->mode_info.atom_context->bios + data_offset);
76 
77 		/* Get various system informations from bios */
78 		switch (crev) {
79 		case 1:
80 			tmp.full = dfixed_const(100);
81 			rdev->pm.igp_sideport_mclk.full = dfixed_const(le32_to_cpu(info->info.ulBootUpMemoryClock));
82 			rdev->pm.igp_sideport_mclk.full = dfixed_div(rdev->pm.igp_sideport_mclk, tmp);
83 			if (le16_to_cpu(info->info.usK8MemoryClock))
84 				rdev->pm.igp_system_mclk.full = dfixed_const(le16_to_cpu(info->info.usK8MemoryClock));
85 			else if (rdev->clock.default_mclk) {
86 				rdev->pm.igp_system_mclk.full = dfixed_const(rdev->clock.default_mclk);
87 				rdev->pm.igp_system_mclk.full = dfixed_div(rdev->pm.igp_system_mclk, tmp);
88 			} else
89 				rdev->pm.igp_system_mclk.full = dfixed_const(400);
90 			rdev->pm.igp_ht_link_clk.full = dfixed_const(le16_to_cpu(info->info.usFSBClock));
91 			rdev->pm.igp_ht_link_width.full = dfixed_const(info->info.ucHTLinkWidth);
92 			break;
93 		case 2:
94 			tmp.full = dfixed_const(100);
95 			rdev->pm.igp_sideport_mclk.full = dfixed_const(le32_to_cpu(info->info_v2.ulBootUpSidePortClock));
96 			rdev->pm.igp_sideport_mclk.full = dfixed_div(rdev->pm.igp_sideport_mclk, tmp);
97 			if (le32_to_cpu(info->info_v2.ulBootUpUMAClock))
98 				rdev->pm.igp_system_mclk.full = dfixed_const(le32_to_cpu(info->info_v2.ulBootUpUMAClock));
99 			else if (rdev->clock.default_mclk)
100 				rdev->pm.igp_system_mclk.full = dfixed_const(rdev->clock.default_mclk);
101 			else
102 				rdev->pm.igp_system_mclk.full = dfixed_const(66700);
103 			rdev->pm.igp_system_mclk.full = dfixed_div(rdev->pm.igp_system_mclk, tmp);
104 			rdev->pm.igp_ht_link_clk.full = dfixed_const(le32_to_cpu(info->info_v2.ulHTLinkFreq));
105 			rdev->pm.igp_ht_link_clk.full = dfixed_div(rdev->pm.igp_ht_link_clk, tmp);
106 			rdev->pm.igp_ht_link_width.full = dfixed_const(le16_to_cpu(info->info_v2.usMinHTLinkWidth));
107 			break;
108 		default:
109 			/* We assume the slower possible clock ie worst case */
110 			rdev->pm.igp_sideport_mclk.full = dfixed_const(200);
111 			rdev->pm.igp_system_mclk.full = dfixed_const(200);
112 			rdev->pm.igp_ht_link_clk.full = dfixed_const(1000);
113 			rdev->pm.igp_ht_link_width.full = dfixed_const(8);
114 			DRM_ERROR("No integrated system info for your GPU, using safe default\n");
115 			break;
116 		}
117 	} else {
118 		/* We assume the slower possible clock ie worst case */
119 		rdev->pm.igp_sideport_mclk.full = dfixed_const(200);
120 		rdev->pm.igp_system_mclk.full = dfixed_const(200);
121 		rdev->pm.igp_ht_link_clk.full = dfixed_const(1000);
122 		rdev->pm.igp_ht_link_width.full = dfixed_const(8);
123 		DRM_ERROR("No integrated system info for your GPU, using safe default\n");
124 	}
125 	/* Compute various bandwidth */
126 	/* k8_bandwidth = (memory_clk / 2) * 2 * 8 * 0.5 = memory_clk * 4  */
127 	tmp.full = dfixed_const(4);
128 	rdev->pm.k8_bandwidth.full = dfixed_mul(rdev->pm.igp_system_mclk, tmp);
129 	/* ht_bandwidth = ht_clk * 2 * ht_width / 8 * 0.8
130 	 *              = ht_clk * ht_width / 5
131 	 */
132 	tmp.full = dfixed_const(5);
133 	rdev->pm.ht_bandwidth.full = dfixed_mul(rdev->pm.igp_ht_link_clk,
134 						rdev->pm.igp_ht_link_width);
135 	rdev->pm.ht_bandwidth.full = dfixed_div(rdev->pm.ht_bandwidth, tmp);
136 	if (tmp.full < rdev->pm.max_bandwidth.full) {
137 		/* HT link is a limiting factor */
138 		rdev->pm.max_bandwidth.full = tmp.full;
139 	}
140 	/* sideport_bandwidth = (sideport_clk / 2) * 2 * 2 * 0.7
141 	 *                    = (sideport_clk * 14) / 10
142 	 */
143 	tmp.full = dfixed_const(14);
144 	rdev->pm.sideport_bandwidth.full = dfixed_mul(rdev->pm.igp_sideport_mclk, tmp);
145 	tmp.full = dfixed_const(10);
146 	rdev->pm.sideport_bandwidth.full = dfixed_div(rdev->pm.sideport_bandwidth, tmp);
147 }
148 
149 static void rs690_mc_init(struct radeon_device *rdev)
150 {
151 	u64 base;
152 	uint32_t h_addr, l_addr;
153 	unsigned long long k8_addr;
154 
155 	rs400_gart_adjust_size(rdev);
156 	rdev->mc.vram_is_ddr = true;
157 	rdev->mc.vram_width = 128;
158 	rdev->mc.real_vram_size = RREG32(RADEON_CONFIG_MEMSIZE);
159 	rdev->mc.mc_vram_size = rdev->mc.real_vram_size;
160 	rdev->mc.aper_base = pci_resource_start(rdev->pdev, 0);
161 	rdev->mc.aper_size = pci_resource_len(rdev->pdev, 0);
162 	rdev->mc.visible_vram_size = rdev->mc.aper_size;
163 	base = RREG32_MC(R_000100_MCCFG_FB_LOCATION);
164 	base = G_000100_MC_FB_START(base) << 16;
165 	rdev->mc.igp_sideport_enabled = radeon_atombios_sideport_present(rdev);
166 	/* Some boards seem to be configured for 128MB of sideport memory,
167 	 * but really only have 64MB.  Just skip the sideport and use
168 	 * UMA memory.
169 	 */
170 	if (rdev->mc.igp_sideport_enabled &&
171 	    (rdev->mc.real_vram_size == (384 * 1024 * 1024))) {
172 		base += 128 * 1024 * 1024;
173 		rdev->mc.real_vram_size -= 128 * 1024 * 1024;
174 		rdev->mc.mc_vram_size = rdev->mc.real_vram_size;
175 	}
176 
177 	/* Use K8 direct mapping for fast fb access. */
178 	rdev->fastfb_working = false;
179 	h_addr = G_00005F_K8_ADDR_EXT(RREG32_MC(R_00005F_MC_MISC_UMA_CNTL));
180 	l_addr = RREG32_MC(R_00001E_K8_FB_LOCATION);
181 	k8_addr = ((unsigned long long)h_addr) << 32 | l_addr;
182 #if defined(CONFIG_X86_32) && !defined(CONFIG_X86_PAE)
183 	if (k8_addr + rdev->mc.visible_vram_size < 0x100000000ULL)
184 #endif
185 	{
186 		/* FastFB shall be used with UMA memory. Here it is simply disabled when sideport
187 		 * memory is present.
188 		 */
189 		if (rdev->mc.igp_sideport_enabled == false && radeon_fastfb == 1) {
190 			DRM_INFO("Direct mapping: aper base at 0x%llx, replaced by direct mapping base 0x%llx.\n",
191 					(unsigned long long)rdev->mc.aper_base, k8_addr);
192 			rdev->mc.aper_base = (resource_size_t)k8_addr;
193 			rdev->fastfb_working = true;
194 		}
195 	}
196 
197 	rs690_pm_info(rdev);
198 	radeon_vram_location(rdev, &rdev->mc, base);
199 	rdev->mc.gtt_base_align = rdev->mc.gtt_size - 1;
200 	radeon_gtt_location(rdev, &rdev->mc);
201 	radeon_update_bandwidth_info(rdev);
202 }
203 
204 void rs690_line_buffer_adjust(struct radeon_device *rdev,
205 			      struct drm_display_mode *mode1,
206 			      struct drm_display_mode *mode2)
207 {
208 	u32 tmp;
209 
210 	/* Guess line buffer size to be 8192 pixels */
211 	u32 lb_size = 8192;
212 
213 	/*
214 	 * Line Buffer Setup
215 	 * There is a single line buffer shared by both display controllers.
216 	 * R_006520_DC_LB_MEMORY_SPLIT controls how that line buffer is shared between
217 	 * the display controllers.  The paritioning can either be done
218 	 * manually or via one of four preset allocations specified in bits 1:0:
219 	 *  0 - line buffer is divided in half and shared between crtc
220 	 *  1 - D1 gets 3/4 of the line buffer, D2 gets 1/4
221 	 *  2 - D1 gets the whole buffer
222 	 *  3 - D1 gets 1/4 of the line buffer, D2 gets 3/4
223 	 * Setting bit 2 of R_006520_DC_LB_MEMORY_SPLIT controls switches to manual
224 	 * allocation mode. In manual allocation mode, D1 always starts at 0,
225 	 * D1 end/2 is specified in bits 14:4; D2 allocation follows D1.
226 	 */
227 	tmp = RREG32(R_006520_DC_LB_MEMORY_SPLIT) & C_006520_DC_LB_MEMORY_SPLIT;
228 	tmp &= ~C_006520_DC_LB_MEMORY_SPLIT_MODE;
229 	/* auto */
230 	if (mode1 && mode2) {
231 		if (mode1->hdisplay > mode2->hdisplay) {
232 			if (mode1->hdisplay > 2560)
233 				tmp |= V_006520_DC_LB_MEMORY_SPLIT_D1_3Q_D2_1Q;
234 			else
235 				tmp |= V_006520_DC_LB_MEMORY_SPLIT_D1HALF_D2HALF;
236 		} else if (mode2->hdisplay > mode1->hdisplay) {
237 			if (mode2->hdisplay > 2560)
238 				tmp |= V_006520_DC_LB_MEMORY_SPLIT_D1_1Q_D2_3Q;
239 			else
240 				tmp |= V_006520_DC_LB_MEMORY_SPLIT_D1HALF_D2HALF;
241 		} else
242 			tmp |= V_006520_DC_LB_MEMORY_SPLIT_D1HALF_D2HALF;
243 	} else if (mode1) {
244 		tmp |= V_006520_DC_LB_MEMORY_SPLIT_D1_ONLY;
245 	} else if (mode2) {
246 		tmp |= V_006520_DC_LB_MEMORY_SPLIT_D1_1Q_D2_3Q;
247 	}
248 	WREG32(R_006520_DC_LB_MEMORY_SPLIT, tmp);
249 
250 	/* Save number of lines the linebuffer leads before the scanout */
251 	if (mode1)
252 		rdev->mode_info.crtcs[0]->lb_vblank_lead_lines = DIV_ROUND_UP(lb_size, mode1->crtc_hdisplay);
253 
254 	if (mode2)
255 		rdev->mode_info.crtcs[1]->lb_vblank_lead_lines = DIV_ROUND_UP(lb_size, mode2->crtc_hdisplay);
256 }
257 
258 struct rs690_watermark {
259 	u32        lb_request_fifo_depth;
260 	fixed20_12 num_line_pair;
261 	fixed20_12 estimated_width;
262 	fixed20_12 worst_case_latency;
263 	fixed20_12 consumption_rate;
264 	fixed20_12 active_time;
265 	fixed20_12 dbpp;
266 	fixed20_12 priority_mark_max;
267 	fixed20_12 priority_mark;
268 	fixed20_12 sclk;
269 };
270 
271 static void rs690_crtc_bandwidth_compute(struct radeon_device *rdev,
272 					 struct radeon_crtc *crtc,
273 					 struct rs690_watermark *wm,
274 					 bool low)
275 {
276 	struct drm_display_mode *mode = &crtc->base.mode;
277 	fixed20_12 a, b, c;
278 	fixed20_12 pclk, request_fifo_depth, tolerable_latency, estimated_width;
279 	fixed20_12 consumption_time, line_time, chunk_time, read_delay_latency;
280 	fixed20_12 sclk, core_bandwidth, max_bandwidth;
281 	u32 selected_sclk;
282 
283 	bzero(wm, sizeof(*wm));	/* avoid gcc warning */
284 	if (!crtc->base.enabled) {
285 		/* FIXME: wouldn't it better to set priority mark to maximum */
286 		wm->lb_request_fifo_depth = 4;
287 		return;
288 	}
289 
290 	if (((rdev->family == CHIP_RS780) || (rdev->family == CHIP_RS880)) &&
291 	    (rdev->pm.pm_method == PM_METHOD_DPM) && rdev->pm.dpm_enabled)
292 		selected_sclk = radeon_dpm_get_sclk(rdev, low);
293 	else
294 		selected_sclk = rdev->pm.current_sclk;
295 
296 	/* sclk in Mhz */
297 	a.full = dfixed_const(100);
298 	sclk.full = dfixed_const(selected_sclk);
299 	sclk.full = dfixed_div(sclk, a);
300 
301 	/* core_bandwidth = sclk(Mhz) * 16 */
302 	a.full = dfixed_const(16);
303 	core_bandwidth.full = dfixed_div(rdev->pm.sclk, a);
304 
305 	if (crtc->vsc.full > dfixed_const(2))
306 		wm->num_line_pair.full = dfixed_const(2);
307 	else
308 		wm->num_line_pair.full = dfixed_const(1);
309 
310 	b.full = dfixed_const(mode->crtc_hdisplay);
311 	c.full = dfixed_const(256);
312 	a.full = dfixed_div(b, c);
313 	request_fifo_depth.full = dfixed_mul(a, wm->num_line_pair);
314 	request_fifo_depth.full = dfixed_ceil(request_fifo_depth);
315 	if (a.full < dfixed_const(4)) {
316 		wm->lb_request_fifo_depth = 4;
317 	} else {
318 		wm->lb_request_fifo_depth = dfixed_trunc(request_fifo_depth);
319 	}
320 
321 	/* Determine consumption rate
322 	 *  pclk = pixel clock period(ns) = 1000 / (mode.clock / 1000)
323 	 *  vtaps = number of vertical taps,
324 	 *  vsc = vertical scaling ratio, defined as source/destination
325 	 *  hsc = horizontal scaling ration, defined as source/destination
326 	 */
327 	a.full = dfixed_const(mode->clock);
328 	b.full = dfixed_const(1000);
329 	a.full = dfixed_div(a, b);
330 	pclk.full = dfixed_div(b, a);
331 	if (crtc->rmx_type != RMX_OFF) {
332 		b.full = dfixed_const(2);
333 		if (crtc->vsc.full > b.full)
334 			b.full = crtc->vsc.full;
335 		b.full = dfixed_mul(b, crtc->hsc);
336 		c.full = dfixed_const(2);
337 		b.full = dfixed_div(b, c);
338 		consumption_time.full = dfixed_div(pclk, b);
339 	} else {
340 		consumption_time.full = pclk.full;
341 	}
342 	a.full = dfixed_const(1);
343 	wm->consumption_rate.full = dfixed_div(a, consumption_time);
344 
345 
346 	/* Determine line time
347 	 *  LineTime = total time for one line of displayhtotal
348 	 *  LineTime = total number of horizontal pixels
349 	 *  pclk = pixel clock period(ns)
350 	 */
351 	a.full = dfixed_const(crtc->base.mode.crtc_htotal);
352 	line_time.full = dfixed_mul(a, pclk);
353 
354 	/* Determine active time
355 	 *  ActiveTime = time of active region of display within one line,
356 	 *  hactive = total number of horizontal active pixels
357 	 *  htotal = total number of horizontal pixels
358 	 */
359 	a.full = dfixed_const(crtc->base.mode.crtc_htotal);
360 	b.full = dfixed_const(crtc->base.mode.crtc_hdisplay);
361 	wm->active_time.full = dfixed_mul(line_time, b);
362 	wm->active_time.full = dfixed_div(wm->active_time, a);
363 
364 	/* Maximun bandwidth is the minimun bandwidth of all component */
365 	max_bandwidth = core_bandwidth;
366 	if (rdev->mc.igp_sideport_enabled) {
367 		if (max_bandwidth.full > rdev->pm.sideport_bandwidth.full &&
368 			rdev->pm.sideport_bandwidth.full)
369 			max_bandwidth = rdev->pm.sideport_bandwidth;
370 		read_delay_latency.full = dfixed_const(370 * 800);
371 		a.full = dfixed_const(1000);
372 		b.full = dfixed_div(rdev->pm.igp_sideport_mclk, a);
373 		read_delay_latency.full = dfixed_div(read_delay_latency, b);
374 		read_delay_latency.full = dfixed_mul(read_delay_latency, a);
375 	} else {
376 		if (max_bandwidth.full > rdev->pm.k8_bandwidth.full &&
377 			rdev->pm.k8_bandwidth.full)
378 			max_bandwidth = rdev->pm.k8_bandwidth;
379 		if (max_bandwidth.full > rdev->pm.ht_bandwidth.full &&
380 			rdev->pm.ht_bandwidth.full)
381 			max_bandwidth = rdev->pm.ht_bandwidth;
382 		read_delay_latency.full = dfixed_const(5000);
383 	}
384 
385 	/* sclk = system clocks(ns) = 1000 / max_bandwidth / 16 */
386 	a.full = dfixed_const(16);
387 	sclk.full = dfixed_mul(max_bandwidth, a);
388 	a.full = dfixed_const(1000);
389 	sclk.full = dfixed_div(a, sclk);
390 	/* Determine chunk time
391 	 * ChunkTime = the time it takes the DCP to send one chunk of data
392 	 * to the LB which consists of pipeline delay and inter chunk gap
393 	 * sclk = system clock(ns)
394 	 */
395 	a.full = dfixed_const(256 * 13);
396 	chunk_time.full = dfixed_mul(sclk, a);
397 	a.full = dfixed_const(10);
398 	chunk_time.full = dfixed_div(chunk_time, a);
399 
400 	/* Determine the worst case latency
401 	 * NumLinePair = Number of line pairs to request(1=2 lines, 2=4 lines)
402 	 * WorstCaseLatency = worst case time from urgent to when the MC starts
403 	 *                    to return data
404 	 * READ_DELAY_IDLE_MAX = constant of 1us
405 	 * ChunkTime = time it takes the DCP to send one chunk of data to the LB
406 	 *             which consists of pipeline delay and inter chunk gap
407 	 */
408 	if (dfixed_trunc(wm->num_line_pair) > 1) {
409 		a.full = dfixed_const(3);
410 		wm->worst_case_latency.full = dfixed_mul(a, chunk_time);
411 		wm->worst_case_latency.full += read_delay_latency.full;
412 	} else {
413 		a.full = dfixed_const(2);
414 		wm->worst_case_latency.full = dfixed_mul(a, chunk_time);
415 		wm->worst_case_latency.full += read_delay_latency.full;
416 	}
417 
418 	/* Determine the tolerable latency
419 	 * TolerableLatency = Any given request has only 1 line time
420 	 *                    for the data to be returned
421 	 * LBRequestFifoDepth = Number of chunk requests the LB can
422 	 *                      put into the request FIFO for a display
423 	 *  LineTime = total time for one line of display
424 	 *  ChunkTime = the time it takes the DCP to send one chunk
425 	 *              of data to the LB which consists of
426 	 *  pipeline delay and inter chunk gap
427 	 */
428 	if ((2+wm->lb_request_fifo_depth) >= dfixed_trunc(request_fifo_depth)) {
429 		tolerable_latency.full = line_time.full;
430 	} else {
431 		tolerable_latency.full = dfixed_const(wm->lb_request_fifo_depth - 2);
432 		tolerable_latency.full = request_fifo_depth.full - tolerable_latency.full;
433 		tolerable_latency.full = dfixed_mul(tolerable_latency, chunk_time);
434 		tolerable_latency.full = line_time.full - tolerable_latency.full;
435 	}
436 	/* We assume worst case 32bits (4 bytes) */
437 	wm->dbpp.full = dfixed_const(4 * 8);
438 
439 	/* Determine the maximum priority mark
440 	 *  width = viewport width in pixels
441 	 */
442 	a.full = dfixed_const(16);
443 	wm->priority_mark_max.full = dfixed_const(crtc->base.mode.crtc_hdisplay);
444 	wm->priority_mark_max.full = dfixed_div(wm->priority_mark_max, a);
445 	wm->priority_mark_max.full = dfixed_ceil(wm->priority_mark_max);
446 
447 	/* Determine estimated width */
448 	estimated_width.full = tolerable_latency.full - wm->worst_case_latency.full;
449 	estimated_width.full = dfixed_div(estimated_width, consumption_time);
450 	if (dfixed_trunc(estimated_width) > crtc->base.mode.crtc_hdisplay) {
451 		wm->priority_mark.full = dfixed_const(10);
452 	} else {
453 		a.full = dfixed_const(16);
454 		wm->priority_mark.full = dfixed_div(estimated_width, a);
455 		wm->priority_mark.full = dfixed_ceil(wm->priority_mark);
456 		wm->priority_mark.full = wm->priority_mark_max.full - wm->priority_mark.full;
457 	}
458 }
459 
460 static void rs690_compute_mode_priority(struct radeon_device *rdev,
461 					struct rs690_watermark *wm0,
462 					struct rs690_watermark *wm1,
463 					struct drm_display_mode *mode0,
464 					struct drm_display_mode *mode1,
465 					u32 *d1mode_priority_a_cnt,
466 					u32 *d2mode_priority_a_cnt)
467 {
468 	fixed20_12 priority_mark02, priority_mark12, fill_rate;
469 	fixed20_12 a, b;
470 
471 	*d1mode_priority_a_cnt = S_006548_D1MODE_PRIORITY_A_OFF(1);
472 	*d2mode_priority_a_cnt = S_006548_D1MODE_PRIORITY_A_OFF(1);
473 
474 	if (mode0 && mode1) {
475 		if (dfixed_trunc(wm0->dbpp) > 64)
476 			a.full = dfixed_mul(wm0->dbpp, wm0->num_line_pair);
477 		else
478 			a.full = wm0->num_line_pair.full;
479 		if (dfixed_trunc(wm1->dbpp) > 64)
480 			b.full = dfixed_mul(wm1->dbpp, wm1->num_line_pair);
481 		else
482 			b.full = wm1->num_line_pair.full;
483 		a.full += b.full;
484 		fill_rate.full = dfixed_div(wm0->sclk, a);
485 		if (wm0->consumption_rate.full > fill_rate.full) {
486 			b.full = wm0->consumption_rate.full - fill_rate.full;
487 			b.full = dfixed_mul(b, wm0->active_time);
488 			a.full = dfixed_mul(wm0->worst_case_latency,
489 						wm0->consumption_rate);
490 			a.full = a.full + b.full;
491 			b.full = dfixed_const(16 * 1000);
492 			priority_mark02.full = dfixed_div(a, b);
493 		} else {
494 			a.full = dfixed_mul(wm0->worst_case_latency,
495 						wm0->consumption_rate);
496 			b.full = dfixed_const(16 * 1000);
497 			priority_mark02.full = dfixed_div(a, b);
498 		}
499 		if (wm1->consumption_rate.full > fill_rate.full) {
500 			b.full = wm1->consumption_rate.full - fill_rate.full;
501 			b.full = dfixed_mul(b, wm1->active_time);
502 			a.full = dfixed_mul(wm1->worst_case_latency,
503 						wm1->consumption_rate);
504 			a.full = a.full + b.full;
505 			b.full = dfixed_const(16 * 1000);
506 			priority_mark12.full = dfixed_div(a, b);
507 		} else {
508 			a.full = dfixed_mul(wm1->worst_case_latency,
509 						wm1->consumption_rate);
510 			b.full = dfixed_const(16 * 1000);
511 			priority_mark12.full = dfixed_div(a, b);
512 		}
513 		if (wm0->priority_mark.full > priority_mark02.full)
514 			priority_mark02.full = wm0->priority_mark.full;
515 		if (wm0->priority_mark_max.full > priority_mark02.full)
516 			priority_mark02.full = wm0->priority_mark_max.full;
517 		if (wm1->priority_mark.full > priority_mark12.full)
518 			priority_mark12.full = wm1->priority_mark.full;
519 		if (wm1->priority_mark_max.full > priority_mark12.full)
520 			priority_mark12.full = wm1->priority_mark_max.full;
521 		*d1mode_priority_a_cnt = dfixed_trunc(priority_mark02);
522 		*d2mode_priority_a_cnt = dfixed_trunc(priority_mark12);
523 		if (rdev->disp_priority == 2) {
524 			*d1mode_priority_a_cnt |= S_006548_D1MODE_PRIORITY_A_ALWAYS_ON(1);
525 			*d2mode_priority_a_cnt |= S_006D48_D2MODE_PRIORITY_A_ALWAYS_ON(1);
526 		}
527 	} else if (mode0) {
528 		if (dfixed_trunc(wm0->dbpp) > 64)
529 			a.full = dfixed_mul(wm0->dbpp, wm0->num_line_pair);
530 		else
531 			a.full = wm0->num_line_pair.full;
532 		fill_rate.full = dfixed_div(wm0->sclk, a);
533 		if (wm0->consumption_rate.full > fill_rate.full) {
534 			b.full = wm0->consumption_rate.full - fill_rate.full;
535 			b.full = dfixed_mul(b, wm0->active_time);
536 			a.full = dfixed_mul(wm0->worst_case_latency,
537 						wm0->consumption_rate);
538 			a.full = a.full + b.full;
539 			b.full = dfixed_const(16 * 1000);
540 			priority_mark02.full = dfixed_div(a, b);
541 		} else {
542 			a.full = dfixed_mul(wm0->worst_case_latency,
543 						wm0->consumption_rate);
544 			b.full = dfixed_const(16 * 1000);
545 			priority_mark02.full = dfixed_div(a, b);
546 		}
547 		if (wm0->priority_mark.full > priority_mark02.full)
548 			priority_mark02.full = wm0->priority_mark.full;
549 		if (wm0->priority_mark_max.full > priority_mark02.full)
550 			priority_mark02.full = wm0->priority_mark_max.full;
551 		*d1mode_priority_a_cnt = dfixed_trunc(priority_mark02);
552 		if (rdev->disp_priority == 2)
553 			*d1mode_priority_a_cnt |= S_006548_D1MODE_PRIORITY_A_ALWAYS_ON(1);
554 	} else if (mode1) {
555 		if (dfixed_trunc(wm1->dbpp) > 64)
556 			a.full = dfixed_mul(wm1->dbpp, wm1->num_line_pair);
557 		else
558 			a.full = wm1->num_line_pair.full;
559 		fill_rate.full = dfixed_div(wm1->sclk, a);
560 		if (wm1->consumption_rate.full > fill_rate.full) {
561 			b.full = wm1->consumption_rate.full - fill_rate.full;
562 			b.full = dfixed_mul(b, wm1->active_time);
563 			a.full = dfixed_mul(wm1->worst_case_latency,
564 						wm1->consumption_rate);
565 			a.full = a.full + b.full;
566 			b.full = dfixed_const(16 * 1000);
567 			priority_mark12.full = dfixed_div(a, b);
568 		} else {
569 			a.full = dfixed_mul(wm1->worst_case_latency,
570 						wm1->consumption_rate);
571 			b.full = dfixed_const(16 * 1000);
572 			priority_mark12.full = dfixed_div(a, b);
573 		}
574 		if (wm1->priority_mark.full > priority_mark12.full)
575 			priority_mark12.full = wm1->priority_mark.full;
576 		if (wm1->priority_mark_max.full > priority_mark12.full)
577 			priority_mark12.full = wm1->priority_mark_max.full;
578 		*d2mode_priority_a_cnt = dfixed_trunc(priority_mark12);
579 		if (rdev->disp_priority == 2)
580 			*d2mode_priority_a_cnt |= S_006D48_D2MODE_PRIORITY_A_ALWAYS_ON(1);
581 	}
582 }
583 
584 void rs690_bandwidth_update(struct radeon_device *rdev)
585 {
586 	struct drm_display_mode *mode0 = NULL;
587 	struct drm_display_mode *mode1 = NULL;
588 	struct rs690_watermark wm0_high, wm0_low;
589 	struct rs690_watermark wm1_high, wm1_low;
590 	u32 tmp;
591 	u32 d1mode_priority_a_cnt, d1mode_priority_b_cnt;
592 	u32 d2mode_priority_a_cnt, d2mode_priority_b_cnt;
593 
594 	if (!rdev->mode_info.mode_config_initialized)
595 		return;
596 
597 	radeon_update_display_priority(rdev);
598 
599 	if (rdev->mode_info.crtcs[0]->base.enabled)
600 		mode0 = &rdev->mode_info.crtcs[0]->base.mode;
601 	if (rdev->mode_info.crtcs[1]->base.enabled)
602 		mode1 = &rdev->mode_info.crtcs[1]->base.mode;
603 	/*
604 	 * Set display0/1 priority up in the memory controller for
605 	 * modes if the user specifies HIGH for displaypriority
606 	 * option.
607 	 */
608 	if ((rdev->disp_priority == 2) &&
609 	    ((rdev->family == CHIP_RS690) || (rdev->family == CHIP_RS740))) {
610 		tmp = RREG32_MC(R_000104_MC_INIT_MISC_LAT_TIMER);
611 		tmp &= C_000104_MC_DISP0R_INIT_LAT;
612 		tmp &= C_000104_MC_DISP1R_INIT_LAT;
613 		if (mode0)
614 			tmp |= S_000104_MC_DISP0R_INIT_LAT(1);
615 		if (mode1)
616 			tmp |= S_000104_MC_DISP1R_INIT_LAT(1);
617 		WREG32_MC(R_000104_MC_INIT_MISC_LAT_TIMER, tmp);
618 	}
619 	rs690_line_buffer_adjust(rdev, mode0, mode1);
620 
621 	if ((rdev->family == CHIP_RS690) || (rdev->family == CHIP_RS740))
622 		WREG32(R_006C9C_DCP_CONTROL, 0);
623 	if ((rdev->family == CHIP_RS780) || (rdev->family == CHIP_RS880))
624 		WREG32(R_006C9C_DCP_CONTROL, 2);
625 
626 	rs690_crtc_bandwidth_compute(rdev, rdev->mode_info.crtcs[0], &wm0_high, false);
627 	rs690_crtc_bandwidth_compute(rdev, rdev->mode_info.crtcs[1], &wm1_high, false);
628 
629 	rs690_crtc_bandwidth_compute(rdev, rdev->mode_info.crtcs[0], &wm0_low, true);
630 	rs690_crtc_bandwidth_compute(rdev, rdev->mode_info.crtcs[1], &wm1_low, true);
631 
632 	tmp = (wm0_high.lb_request_fifo_depth - 1);
633 	tmp |= (wm1_high.lb_request_fifo_depth - 1) << 16;
634 	WREG32(R_006D58_LB_MAX_REQ_OUTSTANDING, tmp);
635 
636 	rs690_compute_mode_priority(rdev,
637 				    &wm0_high, &wm1_high,
638 				    mode0, mode1,
639 				    &d1mode_priority_a_cnt, &d2mode_priority_a_cnt);
640 	rs690_compute_mode_priority(rdev,
641 				    &wm0_low, &wm1_low,
642 				    mode0, mode1,
643 				    &d1mode_priority_b_cnt, &d2mode_priority_b_cnt);
644 
645 	WREG32(R_006548_D1MODE_PRIORITY_A_CNT, d1mode_priority_a_cnt);
646 	WREG32(R_00654C_D1MODE_PRIORITY_B_CNT, d1mode_priority_b_cnt);
647 	WREG32(R_006D48_D2MODE_PRIORITY_A_CNT, d2mode_priority_a_cnt);
648 	WREG32(R_006D4C_D2MODE_PRIORITY_B_CNT, d2mode_priority_b_cnt);
649 }
650 
651 uint32_t rs690_mc_rreg(struct radeon_device *rdev, uint32_t reg)
652 {
653 	uint32_t r;
654 
655 	lockmgr(&rdev->mc_idx_lock, LK_EXCLUSIVE);
656 	WREG32(R_000078_MC_INDEX, S_000078_MC_IND_ADDR(reg));
657 	r = RREG32(R_00007C_MC_DATA);
658 	WREG32(R_000078_MC_INDEX, ~C_000078_MC_IND_ADDR);
659 	lockmgr(&rdev->mc_idx_lock, LK_RELEASE);
660 	return r;
661 }
662 
663 void rs690_mc_wreg(struct radeon_device *rdev, uint32_t reg, uint32_t v)
664 {
665 	lockmgr(&rdev->mc_idx_lock, LK_EXCLUSIVE);
666 	WREG32(R_000078_MC_INDEX, S_000078_MC_IND_ADDR(reg) |
667 		S_000078_MC_IND_WR_EN(1));
668 	WREG32(R_00007C_MC_DATA, v);
669 	WREG32(R_000078_MC_INDEX, 0x7F);
670 	lockmgr(&rdev->mc_idx_lock, LK_RELEASE);
671 }
672 
673 static void rs690_mc_program(struct radeon_device *rdev)
674 {
675 	struct rv515_mc_save save;
676 
677 	/* Stops all mc clients */
678 	rv515_mc_stop(rdev, &save);
679 
680 	/* Wait for mc idle */
681 	if (rs690_mc_wait_for_idle(rdev))
682 		dev_warn(rdev->dev, "Wait MC idle timeout before updating MC.\n");
683 	/* Program MC, should be a 32bits limited address space */
684 	WREG32_MC(R_000100_MCCFG_FB_LOCATION,
685 			S_000100_MC_FB_START(rdev->mc.vram_start >> 16) |
686 			S_000100_MC_FB_TOP(rdev->mc.vram_end >> 16));
687 	WREG32(R_000134_HDP_FB_LOCATION,
688 		S_000134_HDP_FB_START(rdev->mc.vram_start >> 16));
689 
690 	rv515_mc_resume(rdev, &save);
691 }
692 
693 static int rs690_startup(struct radeon_device *rdev)
694 {
695 	int r;
696 
697 	rs690_mc_program(rdev);
698 	/* Resume clock */
699 	rv515_clock_startup(rdev);
700 	/* Initialize GPU configuration (# pipes, ...) */
701 	rs690_gpu_init(rdev);
702 	/* Initialize GART (initialize after TTM so we can allocate
703 	 * memory through TTM but finalize after TTM) */
704 	r = rs400_gart_enable(rdev);
705 	if (r)
706 		return r;
707 
708 	/* allocate wb buffer */
709 	r = radeon_wb_init(rdev);
710 	if (r)
711 		return r;
712 
713 	r = radeon_fence_driver_start_ring(rdev, RADEON_RING_TYPE_GFX_INDEX);
714 	if (r) {
715 		dev_err(rdev->dev, "failed initializing CP fences (%d).\n", r);
716 		return r;
717 	}
718 
719 	/* Enable IRQ */
720 	if (!rdev->irq.installed) {
721 		r = radeon_irq_kms_init(rdev);
722 		if (r)
723 			return r;
724 	}
725 
726 	rs600_irq_set(rdev);
727 	rdev->config.r300.hdp_cntl = RREG32(RADEON_HOST_PATH_CNTL);
728 	/* 1M ring buffer */
729 	r = r100_cp_init(rdev, 1024 * 1024);
730 	if (r) {
731 		dev_err(rdev->dev, "failed initializing CP (%d).\n", r);
732 		return r;
733 	}
734 
735 	r = radeon_ib_pool_init(rdev);
736 	if (r) {
737 		dev_err(rdev->dev, "IB initialization failed (%d).\n", r);
738 		return r;
739 	}
740 
741 	r = radeon_audio_init(rdev);
742 	if (r) {
743 		dev_err(rdev->dev, "failed initializing audio\n");
744 		return r;
745 	}
746 
747 	return 0;
748 }
749 
750 int rs690_resume(struct radeon_device *rdev)
751 {
752 	int r;
753 
754 	/* Make sur GART are not working */
755 	rs400_gart_disable(rdev);
756 	/* Resume clock before doing reset */
757 	rv515_clock_startup(rdev);
758 	/* Reset gpu before posting otherwise ATOM will enter infinite loop */
759 	if (radeon_asic_reset(rdev)) {
760 		dev_warn(rdev->dev, "GPU reset failed ! (0xE40=0x%08X, 0x7C0=0x%08X)\n",
761 			RREG32(R_000E40_RBBM_STATUS),
762 			RREG32(R_0007C0_CP_STAT));
763 	}
764 	/* post */
765 	atom_asic_init(rdev->mode_info.atom_context);
766 	/* Resume clock after posting */
767 	rv515_clock_startup(rdev);
768 	/* Initialize surface registers */
769 	radeon_surface_init(rdev);
770 
771 	rdev->accel_working = true;
772 	r = rs690_startup(rdev);
773 	if (r) {
774 		rdev->accel_working = false;
775 	}
776 	return r;
777 }
778 
779 int rs690_suspend(struct radeon_device *rdev)
780 {
781 	radeon_pm_suspend(rdev);
782 	radeon_audio_fini(rdev);
783 	r100_cp_disable(rdev);
784 	radeon_wb_disable(rdev);
785 	rs600_irq_disable(rdev);
786 	rs400_gart_disable(rdev);
787 	return 0;
788 }
789 
790 void rs690_fini(struct radeon_device *rdev)
791 {
792 	radeon_pm_fini(rdev);
793 	radeon_audio_fini(rdev);
794 	r100_cp_fini(rdev);
795 	radeon_wb_fini(rdev);
796 	radeon_ib_pool_fini(rdev);
797 	radeon_gem_fini(rdev);
798 	rs400_gart_fini(rdev);
799 	radeon_irq_kms_fini(rdev);
800 	radeon_fence_driver_fini(rdev);
801 	radeon_bo_fini(rdev);
802 	radeon_atombios_fini(rdev);
803 	kfree(rdev->bios);
804 	rdev->bios = NULL;
805 }
806 
807 int rs690_init(struct radeon_device *rdev)
808 {
809 	int r;
810 
811 	/* Disable VGA */
812 	rv515_vga_render_disable(rdev);
813 	/* Initialize scratch registers */
814 	radeon_scratch_init(rdev);
815 	/* Initialize surface registers */
816 	radeon_surface_init(rdev);
817 	/* restore some register to sane defaults */
818 	r100_restore_sanity(rdev);
819 	/* TODO: disable VGA need to use VGA request */
820 	/* BIOS*/
821 	if (!radeon_get_bios(rdev)) {
822 		if (ASIC_IS_AVIVO(rdev))
823 			return -EINVAL;
824 	}
825 	if (rdev->is_atom_bios) {
826 		r = radeon_atombios_init(rdev);
827 		if (r)
828 			return r;
829 	} else {
830 		dev_err(rdev->dev, "Expecting atombios for RV515 GPU\n");
831 		return -EINVAL;
832 	}
833 	/* Reset gpu before posting otherwise ATOM will enter infinite loop */
834 	if (radeon_asic_reset(rdev)) {
835 		dev_warn(rdev->dev,
836 			"GPU reset failed ! (0xE40=0x%08X, 0x7C0=0x%08X)\n",
837 			RREG32(R_000E40_RBBM_STATUS),
838 			RREG32(R_0007C0_CP_STAT));
839 	}
840 	/* check if cards are posted or not */
841 	if (radeon_boot_test_post_card(rdev) == false)
842 		return -EINVAL;
843 
844 	/* Initialize clocks */
845 	radeon_get_clock_info(rdev->ddev);
846 	/* initialize memory controller */
847 	rs690_mc_init(rdev);
848 	rv515_debugfs(rdev);
849 	/* Fence driver */
850 	r = radeon_fence_driver_init(rdev);
851 	if (r)
852 		return r;
853 	/* Memory manager */
854 	r = radeon_bo_init(rdev);
855 	if (r)
856 		return r;
857 	r = rs400_gart_init(rdev);
858 	if (r)
859 		return r;
860 	rs600_set_safe_registers(rdev);
861 
862 	/* Initialize power management */
863 	radeon_pm_init(rdev);
864 
865 	rdev->accel_working = true;
866 	r = rs690_startup(rdev);
867 	if (r) {
868 		/* Somethings want wront with the accel init stop accel */
869 		dev_err(rdev->dev, "Disabling GPU acceleration\n");
870 		r100_cp_fini(rdev);
871 		radeon_wb_fini(rdev);
872 		radeon_ib_pool_fini(rdev);
873 		rs400_gart_fini(rdev);
874 		radeon_irq_kms_fini(rdev);
875 		rdev->accel_working = false;
876 	}
877 	return 0;
878 }
879