drm/rockchip: force 8bit mode if vop not support 10bit output
[firefly-linux-kernel-4.4.55.git] / drivers / gpu / drm / rockchip / rockchip_drm_vop.c
1 /*
2  * Copyright (C) Fuzhou Rockchip Electronics Co.Ltd
3  * Author:Mark Yao <mark.yao@rock-chips.com>
4  *
5  * This software is licensed under the terms of the GNU General Public
6  * License version 2, as published by the Free Software Foundation, and
7  * may be copied, distributed, and modified under those terms.
8  *
9  * This program is distributed in the hope that it will be useful,
10  * but WITHOUT ANY WARRANTY; without even the implied warranty of
11  * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
12  * GNU General Public License for more details.
13  */
14
15 #include <drm/drm.h>
16 #include <drm/drmP.h>
17 #include <drm/drm_atomic.h>
18 #include <drm/drm_crtc.h>
19 #include <drm/drm_crtc_helper.h>
20 #include <drm/drm_plane_helper.h>
21
22 #include <linux/kernel.h>
23 #include <linux/module.h>
24 #include <linux/platform_device.h>
25 #include <linux/clk.h>
26 #include <linux/of.h>
27 #include <linux/of_device.h>
28 #include <linux/pm_runtime.h>
29 #include <linux/component.h>
30
31 #include <linux/reset.h>
32 #include <linux/delay.h>
33 #include <linux/sort.h>
34
35 #include "rockchip_drm_drv.h"
36 #include "rockchip_drm_gem.h"
37 #include "rockchip_drm_fb.h"
38 #include "rockchip_drm_vop.h"
39
40 #define __REG_SET_RELAXED(x, off, mask, shift, v, write_mask) \
41                 vop_mask_write(x, off, mask, shift, v, write_mask, true)
42
43 #define __REG_SET_NORMAL(x, off, mask, shift, v, write_mask) \
44                 vop_mask_write(x, off, mask, shift, v, write_mask, false)
45
46 #define REG_SET(x, off, reg, v, mode) \
47                 __REG_SET_##mode(x, off + reg.offset, \
48                                  reg.mask, reg.shift, v, reg.write_mask)
49 #define REG_SET_MASK(x, off, reg, mask, v, mode) \
50                 __REG_SET_##mode(x, off + reg.offset, \
51                                  mask, reg.shift, v, reg.write_mask)
52
53 #define VOP_WIN_SET(x, win, name, v) \
54                 REG_SET(x, win->offset, VOP_WIN_NAME(win, name), v, RELAXED)
55 #define VOP_SCL_SET(x, win, name, v) \
56                 REG_SET(x, win->offset, win->phy->scl->name, v, RELAXED)
57 #define VOP_SCL_SET_EXT(x, win, name, v) \
58                 REG_SET(x, win->offset, win->phy->scl->ext->name, v, RELAXED)
59
60 #define VOP_CTRL_SET(x, name, v) \
61                 REG_SET(x, 0, (x)->data->ctrl->name, v, NORMAL)
62
63 #define VOP_INTR_GET(vop, name) \
64                 vop_read_reg(vop, 0, &vop->data->ctrl->name)
65
66 #define VOP_INTR_SET(vop, name, mask, v) \
67                 REG_SET_MASK(vop, 0, vop->data->intr->name, mask, v, NORMAL)
68 #define VOP_INTR_SET_TYPE(vop, name, type, v) \
69         do { \
70                 int i, reg = 0, mask = 0; \
71                 for (i = 0; i < vop->data->intr->nintrs; i++) { \
72                         if (vop->data->intr->intrs[i] & type) { \
73                                 reg |= (v) << i; \
74                                 mask |= 1 << i; \
75                         } \
76                 } \
77                 VOP_INTR_SET(vop, name, mask, reg); \
78         } while (0)
79 #define VOP_INTR_GET_TYPE(vop, name, type) \
80                 vop_get_intr_type(vop, &vop->data->intr->name, type)
81
82 #define VOP_WIN_GET(x, win, name) \
83                 vop_read_reg(x, win->offset, &VOP_WIN_NAME(win, name))
84
85 #define VOP_WIN_NAME(win, name) \
86                 (vop_get_win_phy(win, &win->phy->name)->name)
87
88 #define VOP_WIN_GET_YRGBADDR(vop, win) \
89                 vop_readl(vop, win->offset + VOP_WIN_NAME(win, yrgb_mst).offset)
90
91 #define to_vop(x) container_of(x, struct vop, crtc)
92 #define to_vop_win(x) container_of(x, struct vop_win, base)
93 #define to_vop_plane_state(x) container_of(x, struct vop_plane_state, base)
94
95 struct vop_zpos {
96         int win_id;
97         int zpos;
98 };
99
100 struct vop_plane_state {
101         struct drm_plane_state base;
102         int format;
103         int zpos;
104         struct drm_rect src;
105         struct drm_rect dest;
106         dma_addr_t yrgb_mst;
107         bool enable;
108 };
109
110 struct vop_win {
111         struct vop_win *parent;
112         struct drm_plane base;
113
114         int win_id;
115         int area_id;
116         uint32_t offset;
117         enum drm_plane_type type;
118         const struct vop_win_phy *phy;
119         const uint32_t *data_formats;
120         uint32_t nformats;
121         struct vop *vop;
122
123         struct vop_plane_state state;
124 };
125
126 struct vop {
127         struct drm_crtc crtc;
128         struct device *dev;
129         struct drm_device *drm_dev;
130         struct drm_property *plane_zpos_prop;
131         bool is_enabled;
132
133         /* mutex vsync_ work */
134         struct mutex vsync_mutex;
135         bool vsync_work_pending;
136         struct completion dsp_hold_completion;
137         struct completion wait_update_complete;
138         struct drm_pending_vblank_event *event;
139
140         const struct vop_data *data;
141         int num_wins;
142
143         uint32_t *regsbak;
144         void __iomem *regs;
145
146         /* physical map length of vop register */
147         uint32_t len;
148
149         /* one time only one process allowed to config the register */
150         spinlock_t reg_lock;
151         /* lock vop irq reg */
152         spinlock_t irq_lock;
153
154         unsigned int irq;
155
156         /* vop AHP clk */
157         struct clk *hclk;
158         /* vop dclk */
159         struct clk *dclk;
160         /* vop share memory frequency */
161         struct clk *aclk;
162
163         /* vop dclk reset */
164         struct reset_control *dclk_rst;
165
166         struct vop_win win[];
167 };
168
169 static inline void vop_writel(struct vop *vop, uint32_t offset, uint32_t v)
170 {
171         writel(v, vop->regs + offset);
172         vop->regsbak[offset >> 2] = v;
173 }
174
175 static inline uint32_t vop_readl(struct vop *vop, uint32_t offset)
176 {
177         return readl(vop->regs + offset);
178 }
179
180 static inline uint32_t vop_read_reg(struct vop *vop, uint32_t base,
181                                     const struct vop_reg *reg)
182 {
183         return (vop_readl(vop, base + reg->offset) >> reg->shift) & reg->mask;
184 }
185
186 static inline void vop_mask_write(struct vop *vop, uint32_t offset,
187                                   uint32_t mask, uint32_t shift, uint32_t v,
188                                   bool write_mask, bool relaxed)
189 {
190         if (!mask)
191                 return;
192
193         if (write_mask) {
194                 v = ((v & mask) << shift) | (mask << (shift + 16));
195         } else {
196                 uint32_t cached_val = vop->regsbak[offset >> 2];
197
198                 v = (cached_val & ~(mask << shift)) | ((v & mask) << shift);
199                 vop->regsbak[offset >> 2] = v;
200         }
201
202         if (relaxed)
203                 writel_relaxed(v, vop->regs + offset);
204         else
205                 writel(v, vop->regs + offset);
206 }
207
208 static inline const struct vop_win_phy *
209 vop_get_win_phy(struct vop_win *win, const struct vop_reg *reg)
210 {
211         if (!reg->mask && win->parent)
212                 return win->parent->phy;
213
214         return win->phy;
215 }
216
217 static inline uint32_t vop_get_intr_type(struct vop *vop,
218                                          const struct vop_reg *reg, int type)
219 {
220         uint32_t i, ret = 0;
221         uint32_t regs = vop_read_reg(vop, 0, reg);
222
223         for (i = 0; i < vop->data->intr->nintrs; i++) {
224                 if ((type & vop->data->intr->intrs[i]) && (regs & 1 << i))
225                         ret |= vop->data->intr->intrs[i];
226         }
227
228         return ret;
229 }
230
231 static inline void vop_cfg_done(struct vop *vop)
232 {
233         VOP_CTRL_SET(vop, cfg_done, 1);
234 }
235
236 static bool has_rb_swapped(uint32_t format)
237 {
238         switch (format) {
239         case DRM_FORMAT_XBGR8888:
240         case DRM_FORMAT_ABGR8888:
241         case DRM_FORMAT_BGR888:
242         case DRM_FORMAT_BGR565:
243                 return true;
244         default:
245                 return false;
246         }
247 }
248
249 static enum vop_data_format vop_convert_format(uint32_t format)
250 {
251         switch (format) {
252         case DRM_FORMAT_XRGB8888:
253         case DRM_FORMAT_ARGB8888:
254         case DRM_FORMAT_XBGR8888:
255         case DRM_FORMAT_ABGR8888:
256                 return VOP_FMT_ARGB8888;
257         case DRM_FORMAT_RGB888:
258         case DRM_FORMAT_BGR888:
259                 return VOP_FMT_RGB888;
260         case DRM_FORMAT_RGB565:
261         case DRM_FORMAT_BGR565:
262                 return VOP_FMT_RGB565;
263         case DRM_FORMAT_NV12:
264                 return VOP_FMT_YUV420SP;
265         case DRM_FORMAT_NV16:
266                 return VOP_FMT_YUV422SP;
267         case DRM_FORMAT_NV24:
268                 return VOP_FMT_YUV444SP;
269         default:
270                 DRM_ERROR("unsupport format[%08x]\n", format);
271                 return -EINVAL;
272         }
273 }
274
275 static bool is_yuv_support(uint32_t format)
276 {
277         switch (format) {
278         case DRM_FORMAT_NV12:
279         case DRM_FORMAT_NV16:
280         case DRM_FORMAT_NV24:
281                 return true;
282         default:
283                 return false;
284         }
285 }
286
287 static bool is_alpha_support(uint32_t format)
288 {
289         switch (format) {
290         case DRM_FORMAT_ARGB8888:
291         case DRM_FORMAT_ABGR8888:
292                 return true;
293         default:
294                 return false;
295         }
296 }
297
298 static uint16_t scl_vop_cal_scale(enum scale_mode mode, uint32_t src,
299                                   uint32_t dst, bool is_horizontal,
300                                   int vsu_mode, int *vskiplines)
301 {
302         uint16_t val = 1 << SCL_FT_DEFAULT_FIXPOINT_SHIFT;
303
304         if (is_horizontal) {
305                 if (mode == SCALE_UP)
306                         val = GET_SCL_FT_BIC(src, dst);
307                 else if (mode == SCALE_DOWN)
308                         val = GET_SCL_FT_BILI_DN(src, dst);
309         } else {
310                 if (mode == SCALE_UP) {
311                         if (vsu_mode == SCALE_UP_BIL)
312                                 val = GET_SCL_FT_BILI_UP(src, dst);
313                         else
314                                 val = GET_SCL_FT_BIC(src, dst);
315                 } else if (mode == SCALE_DOWN) {
316                         if (vskiplines) {
317                                 *vskiplines = scl_get_vskiplines(src, dst);
318                                 val = scl_get_bili_dn_vskip(src, dst,
319                                                             *vskiplines);
320                         } else {
321                                 val = GET_SCL_FT_BILI_DN(src, dst);
322                         }
323                 }
324         }
325
326         return val;
327 }
328
329 static void scl_vop_cal_scl_fac(struct vop *vop, struct vop_win *win,
330                                 uint32_t src_w, uint32_t src_h, uint32_t dst_w,
331                                 uint32_t dst_h, uint32_t pixel_format)
332 {
333         uint16_t yrgb_hor_scl_mode, yrgb_ver_scl_mode;
334         uint16_t cbcr_hor_scl_mode = SCALE_NONE;
335         uint16_t cbcr_ver_scl_mode = SCALE_NONE;
336         int hsub = drm_format_horz_chroma_subsampling(pixel_format);
337         int vsub = drm_format_vert_chroma_subsampling(pixel_format);
338         bool is_yuv = is_yuv_support(pixel_format);
339         uint16_t cbcr_src_w = src_w / hsub;
340         uint16_t cbcr_src_h = src_h / vsub;
341         uint16_t vsu_mode;
342         uint16_t lb_mode;
343         uint32_t val;
344         int vskiplines = 0;
345
346         if (!win->phy->scl)
347                 return;
348
349         if (dst_w > 3840) {
350                 DRM_ERROR("Maximum destination width (3840) exceeded\n");
351                 return;
352         }
353
354         if (!win->phy->scl->ext) {
355                 VOP_SCL_SET(vop, win, scale_yrgb_x,
356                             scl_cal_scale2(src_w, dst_w));
357                 VOP_SCL_SET(vop, win, scale_yrgb_y,
358                             scl_cal_scale2(src_h, dst_h));
359                 if (is_yuv) {
360                         VOP_SCL_SET(vop, win, scale_cbcr_x,
361                                     scl_cal_scale2(cbcr_src_w, dst_w));
362                         VOP_SCL_SET(vop, win, scale_cbcr_y,
363                                     scl_cal_scale2(cbcr_src_h, dst_h));
364                 }
365                 return;
366         }
367
368         yrgb_hor_scl_mode = scl_get_scl_mode(src_w, dst_w);
369         yrgb_ver_scl_mode = scl_get_scl_mode(src_h, dst_h);
370
371         if (is_yuv) {
372                 cbcr_hor_scl_mode = scl_get_scl_mode(cbcr_src_w, dst_w);
373                 cbcr_ver_scl_mode = scl_get_scl_mode(cbcr_src_h, dst_h);
374                 if (cbcr_hor_scl_mode == SCALE_DOWN)
375                         lb_mode = scl_vop_cal_lb_mode(dst_w, true);
376                 else
377                         lb_mode = scl_vop_cal_lb_mode(cbcr_src_w, true);
378         } else {
379                 if (yrgb_hor_scl_mode == SCALE_DOWN)
380                         lb_mode = scl_vop_cal_lb_mode(dst_w, false);
381                 else
382                         lb_mode = scl_vop_cal_lb_mode(src_w, false);
383         }
384
385         VOP_SCL_SET_EXT(vop, win, lb_mode, lb_mode);
386         if (lb_mode == LB_RGB_3840X2) {
387                 if (yrgb_ver_scl_mode != SCALE_NONE) {
388                         DRM_ERROR("ERROR : not allow yrgb ver scale\n");
389                         return;
390                 }
391                 if (cbcr_ver_scl_mode != SCALE_NONE) {
392                         DRM_ERROR("ERROR : not allow cbcr ver scale\n");
393                         return;
394                 }
395                 vsu_mode = SCALE_UP_BIL;
396         } else if (lb_mode == LB_RGB_2560X4) {
397                 vsu_mode = SCALE_UP_BIL;
398         } else {
399                 vsu_mode = SCALE_UP_BIC;
400         }
401
402         val = scl_vop_cal_scale(yrgb_hor_scl_mode, src_w, dst_w,
403                                 true, 0, NULL);
404         VOP_SCL_SET(vop, win, scale_yrgb_x, val);
405         val = scl_vop_cal_scale(yrgb_ver_scl_mode, src_h, dst_h,
406                                 false, vsu_mode, &vskiplines);
407         VOP_SCL_SET(vop, win, scale_yrgb_y, val);
408
409         VOP_SCL_SET_EXT(vop, win, vsd_yrgb_gt4, vskiplines == 4);
410         VOP_SCL_SET_EXT(vop, win, vsd_yrgb_gt2, vskiplines == 2);
411
412         VOP_SCL_SET_EXT(vop, win, yrgb_hor_scl_mode, yrgb_hor_scl_mode);
413         VOP_SCL_SET_EXT(vop, win, yrgb_ver_scl_mode, yrgb_ver_scl_mode);
414         VOP_SCL_SET_EXT(vop, win, yrgb_hsd_mode, SCALE_DOWN_BIL);
415         VOP_SCL_SET_EXT(vop, win, yrgb_vsd_mode, SCALE_DOWN_BIL);
416         VOP_SCL_SET_EXT(vop, win, yrgb_vsu_mode, vsu_mode);
417         if (is_yuv) {
418                 val = scl_vop_cal_scale(cbcr_hor_scl_mode, cbcr_src_w,
419                                         dst_w, true, 0, NULL);
420                 VOP_SCL_SET(vop, win, scale_cbcr_x, val);
421                 val = scl_vop_cal_scale(cbcr_ver_scl_mode, cbcr_src_h,
422                                         dst_h, false, vsu_mode, &vskiplines);
423                 VOP_SCL_SET(vop, win, scale_cbcr_y, val);
424
425                 VOP_SCL_SET_EXT(vop, win, vsd_cbcr_gt4, vskiplines == 4);
426                 VOP_SCL_SET_EXT(vop, win, vsd_cbcr_gt2, vskiplines == 2);
427                 VOP_SCL_SET_EXT(vop, win, cbcr_hor_scl_mode, cbcr_hor_scl_mode);
428                 VOP_SCL_SET_EXT(vop, win, cbcr_ver_scl_mode, cbcr_ver_scl_mode);
429                 VOP_SCL_SET_EXT(vop, win, cbcr_hsd_mode, SCALE_DOWN_BIL);
430                 VOP_SCL_SET_EXT(vop, win, cbcr_vsd_mode, SCALE_DOWN_BIL);
431                 VOP_SCL_SET_EXT(vop, win, cbcr_vsu_mode, vsu_mode);
432         }
433 }
434
435 static void vop_dsp_hold_valid_irq_enable(struct vop *vop)
436 {
437         unsigned long flags;
438
439         if (WARN_ON(!vop->is_enabled))
440                 return;
441
442         spin_lock_irqsave(&vop->irq_lock, flags);
443
444         VOP_INTR_SET_TYPE(vop, enable, DSP_HOLD_VALID_INTR, 1);
445
446         spin_unlock_irqrestore(&vop->irq_lock, flags);
447 }
448
449 static void vop_dsp_hold_valid_irq_disable(struct vop *vop)
450 {
451         unsigned long flags;
452
453         if (WARN_ON(!vop->is_enabled))
454                 return;
455
456         spin_lock_irqsave(&vop->irq_lock, flags);
457
458         VOP_INTR_SET_TYPE(vop, enable, DSP_HOLD_VALID_INTR, 0);
459
460         spin_unlock_irqrestore(&vop->irq_lock, flags);
461 }
462
463 static void vop_enable(struct drm_crtc *crtc)
464 {
465         struct vop *vop = to_vop(crtc);
466         int ret;
467
468         if (vop->is_enabled)
469                 return;
470
471         ret = clk_enable(vop->hclk);
472         if (ret < 0) {
473                 dev_err(vop->dev, "failed to enable hclk - %d\n", ret);
474                 return;
475         }
476
477         ret = clk_enable(vop->dclk);
478         if (ret < 0) {
479                 dev_err(vop->dev, "failed to enable dclk - %d\n", ret);
480                 goto err_disable_hclk;
481         }
482
483         ret = clk_enable(vop->aclk);
484         if (ret < 0) {
485                 dev_err(vop->dev, "failed to enable aclk - %d\n", ret);
486                 goto err_disable_dclk;
487         }
488
489         ret = pm_runtime_get_sync(vop->dev);
490         if (ret < 0) {
491                 dev_err(vop->dev, "failed to get pm runtime: %d\n", ret);
492                 return;
493         }
494
495         /*
496          * Slave iommu shares power, irq and clock with vop.  It was associated
497          * automatically with this master device via common driver code.
498          * Now that we have enabled the clock we attach it to the shared drm
499          * mapping.
500          */
501         ret = rockchip_drm_dma_attach_device(vop->drm_dev, vop->dev);
502         if (ret) {
503                 dev_err(vop->dev, "failed to attach dma mapping, %d\n", ret);
504                 goto err_disable_aclk;
505         }
506
507         memcpy(vop->regs, vop->regsbak, vop->len);
508         /*
509          * At here, vop clock & iommu is enable, R/W vop regs would be safe.
510          */
511         vop->is_enabled = true;
512
513         spin_lock(&vop->reg_lock);
514
515         VOP_CTRL_SET(vop, standby, 0);
516
517         spin_unlock(&vop->reg_lock);
518
519         enable_irq(vop->irq);
520
521         drm_crtc_vblank_on(crtc);
522
523         return;
524
525 err_disable_aclk:
526         clk_disable(vop->aclk);
527 err_disable_dclk:
528         clk_disable(vop->dclk);
529 err_disable_hclk:
530         clk_disable(vop->hclk);
531 }
532
533 static void vop_crtc_disable(struct drm_crtc *crtc)
534 {
535         struct vop *vop = to_vop(crtc);
536         int i;
537
538         if (!vop->is_enabled)
539                 return;
540
541         /*
542          * We need to make sure that all windows are disabled before we
543          * disable that crtc. Otherwise we might try to scan from a destroyed
544          * buffer later.
545          */
546         for (i = 0; i < vop->num_wins; i++) {
547                 struct vop_win *win = &vop->win[i];
548
549                 spin_lock(&vop->reg_lock);
550                 VOP_WIN_SET(vop, win, enable, 0);
551                 spin_unlock(&vop->reg_lock);
552         }
553
554         drm_crtc_vblank_off(crtc);
555
556         /*
557          * Vop standby will take effect at end of current frame,
558          * if dsp hold valid irq happen, it means standby complete.
559          *
560          * we must wait standby complete when we want to disable aclk,
561          * if not, memory bus maybe dead.
562          */
563         reinit_completion(&vop->dsp_hold_completion);
564         vop_dsp_hold_valid_irq_enable(vop);
565
566         spin_lock(&vop->reg_lock);
567
568         VOP_CTRL_SET(vop, standby, 1);
569
570         spin_unlock(&vop->reg_lock);
571
572         wait_for_completion(&vop->dsp_hold_completion);
573
574         vop_dsp_hold_valid_irq_disable(vop);
575
576         disable_irq(vop->irq);
577
578         vop->is_enabled = false;
579
580         /*
581          * vop standby complete, so iommu detach is safe.
582          */
583         rockchip_drm_dma_detach_device(vop->drm_dev, vop->dev);
584
585         pm_runtime_put(vop->dev);
586         clk_disable(vop->dclk);
587         clk_disable(vop->aclk);
588         clk_disable(vop->hclk);
589 }
590
591 static void vop_plane_destroy(struct drm_plane *plane)
592 {
593         drm_plane_cleanup(plane);
594 }
595
596 static int vop_plane_prepare_fb(struct drm_plane *plane,
597                                 const struct drm_plane_state *new_state)
598 {
599         if (plane->state->fb)
600                 drm_framebuffer_reference(plane->state->fb);
601
602         return 0;
603 }
604
605 static void vop_plane_cleanup_fb(struct drm_plane *plane,
606                                  const struct drm_plane_state *old_state)
607 {
608         if (old_state->fb)
609                 drm_framebuffer_unreference(old_state->fb);
610 }
611
612 static int vop_plane_atomic_check(struct drm_plane *plane,
613                            struct drm_plane_state *state)
614 {
615         struct drm_crtc *crtc = state->crtc;
616         struct drm_framebuffer *fb = state->fb;
617         struct vop_win *win = to_vop_win(plane);
618         struct vop_plane_state *vop_plane_state = to_vop_plane_state(state);
619         struct drm_crtc_state *crtc_state;
620         bool visible;
621         int ret;
622         struct drm_rect *dest = &vop_plane_state->dest;
623         struct drm_rect *src = &vop_plane_state->src;
624         struct drm_rect clip;
625         int min_scale = win->phy->scl ? FRAC_16_16(1, 8) :
626                                         DRM_PLANE_HELPER_NO_SCALING;
627         int max_scale = win->phy->scl ? FRAC_16_16(8, 1) :
628                                         DRM_PLANE_HELPER_NO_SCALING;
629
630         crtc = crtc ? crtc : plane->state->crtc;
631         /*
632          * Both crtc or plane->state->crtc can be null.
633          */
634         if (!crtc || !fb)
635                 goto out_disable;
636
637         crtc_state = drm_atomic_get_crtc_state(state->state, crtc);
638         if (IS_ERR(crtc_state))
639                 return PTR_ERR(crtc_state);
640
641         src->x1 = state->src_x;
642         src->y1 = state->src_y;
643         src->x2 = state->src_x + state->src_w;
644         src->y2 = state->src_y + state->src_h;
645         dest->x1 = state->crtc_x;
646         dest->y1 = state->crtc_y;
647         dest->x2 = state->crtc_x + state->crtc_w;
648         dest->y2 = state->crtc_y + state->crtc_h;
649
650         clip.x1 = 0;
651         clip.y1 = 0;
652         clip.x2 = crtc_state->mode.hdisplay;
653         clip.y2 = crtc_state->mode.vdisplay;
654
655         ret = drm_plane_helper_check_update(plane, crtc, state->fb,
656                                             src, dest, &clip,
657                                             min_scale,
658                                             max_scale,
659                                             true, true, &visible);
660         if (ret)
661                 return ret;
662
663         if (!visible)
664                 goto out_disable;
665
666         vop_plane_state->format = vop_convert_format(fb->pixel_format);
667         if (vop_plane_state->format < 0)
668                 return vop_plane_state->format;
669
670         /*
671          * Src.x1 can be odd when do clip, but yuv plane start point
672          * need align with 2 pixel.
673          */
674         if (is_yuv_support(fb->pixel_format) && ((src->x1 >> 16) % 2))
675                 return -EINVAL;
676
677         vop_plane_state->enable = true;
678
679         return 0;
680
681 out_disable:
682         vop_plane_state->enable = false;
683         return 0;
684 }
685
686 static void vop_plane_atomic_disable(struct drm_plane *plane,
687                                      struct drm_plane_state *old_state)
688 {
689         struct vop_plane_state *vop_plane_state = to_vop_plane_state(old_state);
690         struct vop_win *win = to_vop_win(plane);
691         struct vop *vop = to_vop(old_state->crtc);
692
693         if (!old_state->crtc)
694                 return;
695
696         spin_lock(&vop->reg_lock);
697
698         VOP_WIN_SET(vop, win, enable, 0);
699
700         spin_unlock(&vop->reg_lock);
701
702         vop_plane_state->enable = false;
703 }
704
705 static void vop_plane_atomic_update(struct drm_plane *plane,
706                 struct drm_plane_state *old_state)
707 {
708         struct drm_plane_state *state = plane->state;
709         struct drm_crtc *crtc = state->crtc;
710         struct vop_win *win = to_vop_win(plane);
711         struct vop_plane_state *vop_plane_state = to_vop_plane_state(state);
712         struct rockchip_crtc_state *s = to_rockchip_crtc_state(crtc->state);
713         struct vop *vop = to_vop(state->crtc);
714         struct drm_framebuffer *fb = state->fb;
715         unsigned int actual_w, actual_h;
716         unsigned int dsp_stx, dsp_sty;
717         uint32_t act_info, dsp_info, dsp_st;
718         struct drm_rect *src = &vop_plane_state->src;
719         struct drm_rect *dest = &vop_plane_state->dest;
720         struct drm_gem_object *obj, *uv_obj;
721         struct rockchip_gem_object *rk_obj, *rk_uv_obj;
722         unsigned long offset;
723         dma_addr_t dma_addr;
724         uint32_t val;
725         bool rb_swap;
726
727         /*
728          * can't update plane when vop is disabled.
729          */
730         if (!crtc)
731                 return;
732
733         if (WARN_ON(!vop->is_enabled))
734                 return;
735
736         if (!vop_plane_state->enable) {
737                 vop_plane_atomic_disable(plane, old_state);
738                 return;
739         }
740
741         obj = rockchip_fb_get_gem_obj(fb, 0);
742         rk_obj = to_rockchip_obj(obj);
743
744         actual_w = drm_rect_width(src) >> 16;
745         actual_h = drm_rect_height(src) >> 16;
746         act_info = (actual_h - 1) << 16 | ((actual_w - 1) & 0xffff);
747
748         dsp_info = (drm_rect_height(dest) - 1) << 16;
749         dsp_info |= (drm_rect_width(dest) - 1) & 0xffff;
750
751         dsp_stx = dest->x1 + crtc->mode.htotal - crtc->mode.hsync_start;
752         dsp_sty = dest->y1 + crtc->mode.vtotal - crtc->mode.vsync_start;
753         dsp_st = dsp_sty << 16 | (dsp_stx & 0xffff);
754
755         offset = (src->x1 >> 16) * drm_format_plane_cpp(fb->pixel_format, 0);
756         offset += (src->y1 >> 16) * fb->pitches[0];
757         vop_plane_state->yrgb_mst = rk_obj->dma_addr + offset + fb->offsets[0];
758
759         spin_lock(&vop->reg_lock);
760
761         VOP_WIN_SET(vop, win, format, vop_plane_state->format);
762         VOP_WIN_SET(vop, win, yrgb_vir, fb->pitches[0] >> 2);
763         VOP_WIN_SET(vop, win, yrgb_mst, vop_plane_state->yrgb_mst);
764         if (is_yuv_support(fb->pixel_format)) {
765                 int hsub = drm_format_horz_chroma_subsampling(fb->pixel_format);
766                 int vsub = drm_format_vert_chroma_subsampling(fb->pixel_format);
767                 int bpp = drm_format_plane_cpp(fb->pixel_format, 1);
768
769                 uv_obj = rockchip_fb_get_gem_obj(fb, 1);
770                 rk_uv_obj = to_rockchip_obj(uv_obj);
771
772                 offset = (src->x1 >> 16) * bpp / hsub;
773                 offset += (src->y1 >> 16) * fb->pitches[1] / vsub;
774
775                 dma_addr = rk_uv_obj->dma_addr + offset + fb->offsets[1];
776                 VOP_WIN_SET(vop, win, uv_vir, fb->pitches[1] >> 2);
777                 VOP_WIN_SET(vop, win, uv_mst, dma_addr);
778         }
779
780         scl_vop_cal_scl_fac(vop, win, actual_w, actual_h,
781                             drm_rect_width(dest), drm_rect_height(dest),
782                             fb->pixel_format);
783
784         VOP_WIN_SET(vop, win, act_info, act_info);
785         VOP_WIN_SET(vop, win, dsp_info, dsp_info);
786         VOP_WIN_SET(vop, win, dsp_st, dsp_st);
787
788         rb_swap = has_rb_swapped(fb->pixel_format);
789         VOP_WIN_SET(vop, win, rb_swap, rb_swap);
790
791         if (is_alpha_support(fb->pixel_format) &&
792             (s->dsp_layer_sel & 0x3) != win->win_id) {
793                 VOP_WIN_SET(vop, win, dst_alpha_ctl,
794                             DST_FACTOR_M0(ALPHA_SRC_INVERSE));
795                 val = SRC_ALPHA_EN(1) | SRC_COLOR_M0(ALPHA_SRC_PRE_MUL) |
796                         SRC_ALPHA_M0(ALPHA_STRAIGHT) |
797                         SRC_BLEND_M0(ALPHA_PER_PIX) |
798                         SRC_ALPHA_CAL_M0(ALPHA_NO_SATURATION) |
799                         SRC_FACTOR_M0(ALPHA_ONE);
800                 VOP_WIN_SET(vop, win, src_alpha_ctl, val);
801         } else {
802                 VOP_WIN_SET(vop, win, src_alpha_ctl, SRC_ALPHA_EN(0));
803         }
804
805         VOP_WIN_SET(vop, win, enable, 1);
806         spin_unlock(&vop->reg_lock);
807 }
808
809 static const struct drm_plane_helper_funcs plane_helper_funcs = {
810         .prepare_fb = vop_plane_prepare_fb,
811         .cleanup_fb = vop_plane_cleanup_fb,
812         .atomic_check = vop_plane_atomic_check,
813         .atomic_update = vop_plane_atomic_update,
814         .atomic_disable = vop_plane_atomic_disable,
815 };
816
817 void vop_atomic_plane_reset(struct drm_plane *plane)
818 {
819         struct vop_win *win = to_vop_win(plane);
820         struct vop_plane_state *vop_plane_state =
821                                         to_vop_plane_state(plane->state);
822
823         if (plane->state && plane->state->fb)
824                 drm_framebuffer_unreference(plane->state->fb);
825
826         kfree(vop_plane_state);
827         vop_plane_state = kzalloc(sizeof(*vop_plane_state), GFP_KERNEL);
828         if (!vop_plane_state)
829                 return;
830
831         vop_plane_state->zpos = win->win_id;
832         plane->state = &vop_plane_state->base;
833         plane->state->plane = plane;
834 }
835
836 struct drm_plane_state *
837 vop_atomic_plane_duplicate_state(struct drm_plane *plane)
838 {
839         struct vop_plane_state *old_vop_plane_state;
840         struct vop_plane_state *vop_plane_state;
841
842         if (WARN_ON(!plane->state))
843                 return NULL;
844
845         old_vop_plane_state = to_vop_plane_state(plane->state);
846         vop_plane_state = kmemdup(old_vop_plane_state,
847                                   sizeof(*vop_plane_state), GFP_KERNEL);
848         if (!vop_plane_state)
849                 return NULL;
850
851         __drm_atomic_helper_plane_duplicate_state(plane,
852                                                   &vop_plane_state->base);
853
854         return &vop_plane_state->base;
855 }
856
857 static void vop_atomic_plane_destroy_state(struct drm_plane *plane,
858                                            struct drm_plane_state *state)
859 {
860         struct vop_plane_state *vop_state = to_vop_plane_state(state);
861
862         __drm_atomic_helper_plane_destroy_state(plane, state);
863
864         kfree(vop_state);
865 }
866
867 static int vop_atomic_plane_set_property(struct drm_plane *plane,
868                                          struct drm_plane_state *state,
869                                          struct drm_property *property,
870                                          uint64_t val)
871 {
872         struct vop_win *win = to_vop_win(plane);
873         struct vop_plane_state *plane_state = to_vop_plane_state(state);
874
875         if (property == win->vop->plane_zpos_prop) {
876                 plane_state->zpos = val;
877                 return 0;
878         }
879
880         DRM_ERROR("failed to set vop plane property\n");
881         return -EINVAL;
882 }
883
884 static int vop_atomic_plane_get_property(struct drm_plane *plane,
885                                          const struct drm_plane_state *state,
886                                          struct drm_property *property,
887                                          uint64_t *val)
888 {
889         struct vop_win *win = to_vop_win(plane);
890         struct vop_plane_state *plane_state = to_vop_plane_state(state);
891
892         if (property == win->vop->plane_zpos_prop) {
893                 *val = plane_state->zpos;
894                 return 0;
895         }
896
897         DRM_ERROR("failed to get vop plane property\n");
898         return -EINVAL;
899 }
900
901 static const struct drm_plane_funcs vop_plane_funcs = {
902         .update_plane   = drm_atomic_helper_update_plane,
903         .disable_plane  = drm_atomic_helper_disable_plane,
904         .destroy = vop_plane_destroy,
905         .reset = vop_atomic_plane_reset,
906         .atomic_duplicate_state = vop_atomic_plane_duplicate_state,
907         .atomic_destroy_state = vop_atomic_plane_destroy_state,
908         .atomic_set_property = vop_atomic_plane_set_property,
909         .atomic_get_property = vop_atomic_plane_get_property,
910 };
911
912 static int vop_crtc_enable_vblank(struct drm_crtc *crtc)
913 {
914         struct vop *vop = to_vop(crtc);
915         unsigned long flags;
916
917         if (WARN_ON(!vop->is_enabled))
918                 return -EPERM;
919
920         spin_lock_irqsave(&vop->irq_lock, flags);
921
922         VOP_INTR_SET_TYPE(vop, enable, FS_INTR, 1);
923
924         spin_unlock_irqrestore(&vop->irq_lock, flags);
925
926         return 0;
927 }
928
929 static void vop_crtc_disable_vblank(struct drm_crtc *crtc)
930 {
931         struct vop *vop = to_vop(crtc);
932         unsigned long flags;
933
934         if (WARN_ON(!vop->is_enabled))
935                 return;
936
937         spin_lock_irqsave(&vop->irq_lock, flags);
938
939         VOP_INTR_SET_TYPE(vop, enable, FS_INTR, 0);
940
941         spin_unlock_irqrestore(&vop->irq_lock, flags);
942 }
943
944 static void vop_crtc_wait_for_update(struct drm_crtc *crtc)
945 {
946         struct vop *vop = to_vop(crtc);
947
948         reinit_completion(&vop->wait_update_complete);
949         WARN_ON(!wait_for_completion_timeout(&vop->wait_update_complete, 100));
950 }
951
952 static void vop_crtc_cancel_pending_vblank(struct drm_crtc *crtc,
953                                            struct drm_file *file_priv)
954 {
955         struct drm_device *drm = crtc->dev;
956         struct vop *vop = to_vop(crtc);
957         struct drm_pending_vblank_event *e;
958         unsigned long flags;
959
960         spin_lock_irqsave(&drm->event_lock, flags);
961         e = vop->event;
962         if (e && e->base.file_priv == file_priv) {
963                 vop->event = NULL;
964
965                 e->base.destroy(&e->base);
966                 file_priv->event_space += sizeof(e->event);
967         }
968         spin_unlock_irqrestore(&drm->event_lock, flags);
969 }
970
971 static const struct rockchip_crtc_funcs private_crtc_funcs = {
972         .enable_vblank = vop_crtc_enable_vblank,
973         .disable_vblank = vop_crtc_disable_vblank,
974         .wait_for_update = vop_crtc_wait_for_update,
975         .cancel_pending_vblank = vop_crtc_cancel_pending_vblank,
976 };
977
978 static bool vop_crtc_mode_fixup(struct drm_crtc *crtc,
979                                 const struct drm_display_mode *mode,
980                                 struct drm_display_mode *adjusted_mode)
981 {
982         struct vop *vop = to_vop(crtc);
983
984         adjusted_mode->clock =
985                 clk_round_rate(vop->dclk, mode->clock * 1000) / 1000;
986
987         return true;
988 }
989
990 static void vop_crtc_enable(struct drm_crtc *crtc)
991 {
992         struct vop *vop = to_vop(crtc);
993         const struct vop_data *vop_data = vop->data;
994         struct rockchip_crtc_state *s = to_rockchip_crtc_state(crtc->state);
995         struct drm_display_mode *adjusted_mode = &crtc->state->adjusted_mode;
996         u16 hsync_len = adjusted_mode->hsync_end - adjusted_mode->hsync_start;
997         u16 hdisplay = adjusted_mode->hdisplay;
998         u16 htotal = adjusted_mode->htotal;
999         u16 hact_st = adjusted_mode->htotal - adjusted_mode->hsync_start;
1000         u16 hact_end = hact_st + hdisplay;
1001         u16 vdisplay = adjusted_mode->vdisplay;
1002         u16 vtotal = adjusted_mode->vtotal;
1003         u16 vsync_len = adjusted_mode->vsync_end - adjusted_mode->vsync_start;
1004         u16 vact_st = adjusted_mode->vtotal - adjusted_mode->vsync_start;
1005         u16 vact_end = vact_st + vdisplay;
1006         uint32_t val;
1007
1008         vop_enable(crtc);
1009         /*
1010          * If dclk rate is zero, mean that scanout is stop,
1011          * we don't need wait any more.
1012          */
1013         if (clk_get_rate(vop->dclk)) {
1014                 /*
1015                  * Rk3288 vop timing register is immediately, when configure
1016                  * display timing on display time, may cause tearing.
1017                  *
1018                  * Vop standby will take effect at end of current frame,
1019                  * if dsp hold valid irq happen, it means standby complete.
1020                  *
1021                  * mode set:
1022                  *    standby and wait complete --> |----
1023                  *                                  | display time
1024                  *                                  |----
1025                  *                                  |---> dsp hold irq
1026                  *     configure display timing --> |
1027                  *         standby exit             |
1028                  *                                  | new frame start.
1029                  */
1030
1031                 reinit_completion(&vop->dsp_hold_completion);
1032                 vop_dsp_hold_valid_irq_enable(vop);
1033
1034                 spin_lock(&vop->reg_lock);
1035
1036                 VOP_CTRL_SET(vop, standby, 1);
1037
1038                 spin_unlock(&vop->reg_lock);
1039
1040                 wait_for_completion(&vop->dsp_hold_completion);
1041
1042                 vop_dsp_hold_valid_irq_disable(vop);
1043         }
1044
1045         val = 0x8;
1046         val |= (adjusted_mode->flags & DRM_MODE_FLAG_NHSYNC) ? 0 : 1;
1047         val |= (adjusted_mode->flags & DRM_MODE_FLAG_NVSYNC) ? 0 : (1 << 1);
1048         VOP_CTRL_SET(vop, pin_pol, val);
1049         switch (s->output_type) {
1050         case DRM_MODE_CONNECTOR_LVDS:
1051                 VOP_CTRL_SET(vop, rgb_en, 1);
1052                 VOP_CTRL_SET(vop, rgb_pin_pol, val);
1053                 break;
1054         case DRM_MODE_CONNECTOR_eDP:
1055                 VOP_CTRL_SET(vop, edp_en, 1);
1056                 VOP_CTRL_SET(vop, edp_pin_pol, val);
1057                 break;
1058         case DRM_MODE_CONNECTOR_HDMIA:
1059                 VOP_CTRL_SET(vop, hdmi_en, 1);
1060                 VOP_CTRL_SET(vop, hdmi_pin_pol, val);
1061                 break;
1062         case DRM_MODE_CONNECTOR_DSI:
1063                 VOP_CTRL_SET(vop, mipi_en, 1);
1064                 VOP_CTRL_SET(vop, mipi_pin_pol, val);
1065                 break;
1066         default:
1067                 DRM_ERROR("unsupport connector_type[%d]\n", s->output_type);
1068         }
1069
1070         if (s->output_mode == ROCKCHIP_OUT_MODE_AAAA &&
1071             !(vop_data->feature & VOP_FEATURE_OUTPUT_10BIT))
1072                 s->output_mode = ROCKCHIP_OUT_MODE_P888;
1073
1074         VOP_CTRL_SET(vop, out_mode, s->output_mode);
1075
1076         VOP_CTRL_SET(vop, htotal_pw, (htotal << 16) | hsync_len);
1077         val = hact_st << 16;
1078         val |= hact_end;
1079         VOP_CTRL_SET(vop, hact_st_end, val);
1080         VOP_CTRL_SET(vop, hpost_st_end, val);
1081
1082         VOP_CTRL_SET(vop, vtotal_pw, (vtotal << 16) | vsync_len);
1083         val = vact_st << 16;
1084         val |= vact_end;
1085         VOP_CTRL_SET(vop, vact_st_end, val);
1086         VOP_CTRL_SET(vop, vpost_st_end, val);
1087
1088         clk_set_rate(vop->dclk, adjusted_mode->clock * 1000);
1089
1090         VOP_CTRL_SET(vop, standby, 0);
1091 }
1092
1093 static int vop_zpos_cmp(const void *a, const void *b)
1094 {
1095         struct vop_zpos *pa = (struct vop_zpos *)a;
1096         struct vop_zpos *pb = (struct vop_zpos *)b;
1097
1098         return pb->zpos - pa->zpos;
1099 }
1100
1101 static int vop_crtc_atomic_check(struct drm_crtc *crtc,
1102                                  struct drm_crtc_state *state)
1103 {
1104         struct drm_device *dev = crtc->dev;
1105         struct rockchip_crtc_state *s = to_rockchip_crtc_state(state);
1106         struct vop *vop = to_vop(crtc);
1107         const struct vop_data *vop_data = vop->data;
1108         struct drm_plane *plane;
1109         struct vop_zpos *pzpos;
1110         int dsp_layer_sel = 0;
1111         int i, cnt = 0, ret = 0;
1112
1113         pzpos = kmalloc_array(vop->num_wins, sizeof(*pzpos), GFP_KERNEL);
1114         if (!pzpos)
1115                 return -ENOMEM;
1116
1117         drm_atomic_crtc_state_for_each_plane(plane, state) {
1118                 struct drm_plane_state *pstate;
1119                 struct vop_plane_state *plane_state;
1120                 struct vop_win *win = to_vop_win(plane);
1121
1122                 if (plane->parent)
1123                         continue;
1124                 if (cnt >= vop->num_wins) {
1125                         dev_err(dev->dev, "too many planes!\n");
1126                         ret = -EINVAL;
1127                         goto err_free_pzpos;
1128                 }
1129                 pstate = state->state->plane_states[drm_plane_index(plane)];
1130
1131                 /*
1132                  * plane might not have changed, in which case take
1133                  * current state:
1134                  */
1135                 if (!pstate)
1136                         pstate = plane->state;
1137                 plane_state = to_vop_plane_state(pstate);
1138                 pzpos[cnt].zpos = plane_state->zpos;
1139                 pzpos[cnt].win_id = win->win_id;
1140
1141                 cnt++;
1142         }
1143
1144         sort(pzpos, cnt, sizeof(pzpos[0]), vop_zpos_cmp, NULL);
1145
1146         WARN_ON(vop_data->win_size < cnt);
1147         for (i = 0; i < (vop_data->win_size - cnt); i++) {
1148                 dsp_layer_sel <<= 2;
1149                 /*
1150                  * after sort, pzpos[0] is the top zpos layer.
1151                  */
1152                 dsp_layer_sel |= pzpos[0].win_id;
1153         }
1154
1155         for (i = 0; i < cnt; i++) {
1156                 struct vop_zpos *zpos = &pzpos[i];
1157
1158                 dsp_layer_sel <<= 2;
1159                 dsp_layer_sel |= zpos->win_id;
1160         }
1161
1162         s->dsp_layer_sel = dsp_layer_sel;
1163
1164 err_free_pzpos:
1165         kfree(pzpos);
1166         return ret;
1167 }
1168
1169 static void vop_crtc_atomic_flush(struct drm_crtc *crtc,
1170                                   struct drm_crtc_state *old_crtc_state)
1171 {
1172         struct rockchip_crtc_state *s =
1173                         to_rockchip_crtc_state(crtc->state);
1174         struct vop *vop = to_vop(crtc);
1175
1176         if (WARN_ON(!vop->is_enabled))
1177                 return;
1178
1179         spin_lock(&vop->reg_lock);
1180
1181         VOP_CTRL_SET(vop, dsp_layer_sel, s->dsp_layer_sel);
1182         vop_cfg_done(vop);
1183
1184         spin_unlock(&vop->reg_lock);
1185 }
1186
1187 static void vop_crtc_atomic_begin(struct drm_crtc *crtc,
1188                                   struct drm_crtc_state *old_crtc_state)
1189 {
1190         struct vop *vop = to_vop(crtc);
1191
1192         if (crtc->state->event) {
1193                 WARN_ON(drm_crtc_vblank_get(crtc) != 0);
1194
1195                 vop->event = crtc->state->event;
1196                 crtc->state->event = NULL;
1197         }
1198 }
1199
1200 static const struct drm_crtc_helper_funcs vop_crtc_helper_funcs = {
1201         .enable = vop_crtc_enable,
1202         .disable = vop_crtc_disable,
1203         .mode_fixup = vop_crtc_mode_fixup,
1204         .atomic_check = vop_crtc_atomic_check,
1205         .atomic_flush = vop_crtc_atomic_flush,
1206         .atomic_begin = vop_crtc_atomic_begin,
1207 };
1208
1209 static void vop_crtc_destroy(struct drm_crtc *crtc)
1210 {
1211         drm_crtc_cleanup(crtc);
1212 }
1213
1214 static struct drm_crtc_state *vop_crtc_duplicate_state(struct drm_crtc *crtc)
1215 {
1216         struct rockchip_crtc_state *rockchip_state;
1217
1218         rockchip_state = kzalloc(sizeof(*rockchip_state), GFP_KERNEL);
1219         if (!rockchip_state)
1220                 return NULL;
1221
1222         __drm_atomic_helper_crtc_duplicate_state(crtc, &rockchip_state->base);
1223         return &rockchip_state->base;
1224 }
1225
1226 static void vop_crtc_destroy_state(struct drm_crtc *crtc,
1227                                    struct drm_crtc_state *state)
1228 {
1229         struct rockchip_crtc_state *s = to_rockchip_crtc_state(state);
1230
1231         __drm_atomic_helper_crtc_destroy_state(crtc, &s->base);
1232         kfree(s);
1233 }
1234
1235 static const struct drm_crtc_funcs vop_crtc_funcs = {
1236         .set_config = drm_atomic_helper_set_config,
1237         .page_flip = drm_atomic_helper_page_flip,
1238         .destroy = vop_crtc_destroy,
1239         .reset = drm_atomic_helper_crtc_reset,
1240         .atomic_duplicate_state = vop_crtc_duplicate_state,
1241         .atomic_destroy_state = vop_crtc_destroy_state,
1242 };
1243
1244 static bool vop_win_pending_is_complete(struct vop_win *vop_win)
1245 {
1246         struct drm_plane *plane = &vop_win->base;
1247         struct vop_plane_state *state = to_vop_plane_state(plane->state);
1248         dma_addr_t yrgb_mst;
1249
1250         if (!state->enable)
1251                 return VOP_WIN_GET(vop_win->vop, vop_win, enable) == 0;
1252
1253         yrgb_mst = VOP_WIN_GET_YRGBADDR(vop_win->vop, vop_win);
1254
1255         return yrgb_mst == state->yrgb_mst;
1256 }
1257
1258 static void vop_handle_vblank(struct vop *vop)
1259 {
1260         struct drm_device *drm = vop->drm_dev;
1261         struct drm_crtc *crtc = &vop->crtc;
1262         unsigned long flags;
1263         int i;
1264
1265         for (i = 0; i < vop->num_wins; i++) {
1266                 if (!vop_win_pending_is_complete(&vop->win[i]))
1267                         return;
1268         }
1269
1270         if (vop->event) {
1271                 spin_lock_irqsave(&drm->event_lock, flags);
1272
1273                 drm_crtc_send_vblank_event(crtc, vop->event);
1274                 drm_crtc_vblank_put(crtc);
1275                 vop->event = NULL;
1276
1277                 spin_unlock_irqrestore(&drm->event_lock, flags);
1278         }
1279         if (!completion_done(&vop->wait_update_complete))
1280                 complete(&vop->wait_update_complete);
1281 }
1282
1283 static irqreturn_t vop_isr(int irq, void *data)
1284 {
1285         struct vop *vop = data;
1286         struct drm_crtc *crtc = &vop->crtc;
1287         uint32_t active_irqs;
1288         unsigned long flags;
1289         int ret = IRQ_NONE;
1290
1291         /*
1292          * interrupt register has interrupt status, enable and clear bits, we
1293          * must hold irq_lock to avoid a race with enable/disable_vblank().
1294         */
1295         spin_lock_irqsave(&vop->irq_lock, flags);
1296
1297         active_irqs = VOP_INTR_GET_TYPE(vop, status, INTR_MASK);
1298         /* Clear all active interrupt sources */
1299         if (active_irqs)
1300                 VOP_INTR_SET_TYPE(vop, clear, active_irqs, 1);
1301
1302         spin_unlock_irqrestore(&vop->irq_lock, flags);
1303
1304         /* This is expected for vop iommu irqs, since the irq is shared */
1305         if (!active_irqs)
1306                 return IRQ_NONE;
1307
1308         if (active_irqs & DSP_HOLD_VALID_INTR) {
1309                 complete(&vop->dsp_hold_completion);
1310                 active_irqs &= ~DSP_HOLD_VALID_INTR;
1311                 ret = IRQ_HANDLED;
1312         }
1313
1314         if (active_irqs & FS_INTR) {
1315                 drm_crtc_handle_vblank(crtc);
1316                 vop_handle_vblank(vop);
1317                 active_irqs &= ~FS_INTR;
1318                 ret = IRQ_HANDLED;
1319         }
1320
1321         /* Unhandled irqs are spurious. */
1322         if (active_irqs)
1323                 DRM_ERROR("Unknown VOP IRQs: %#02x\n", active_irqs);
1324
1325         return ret;
1326 }
1327
1328 static int vop_plane_init(struct vop *vop, struct vop_win *win,
1329                           unsigned long possible_crtcs)
1330 {
1331         struct drm_plane *share = NULL;
1332         int ret;
1333
1334         if (win->parent)
1335                 share = &win->parent->base;
1336
1337         ret = drm_share_plane_init(vop->drm_dev, &win->base, share,
1338                                    possible_crtcs, &vop_plane_funcs,
1339                                    win->data_formats, win->nformats, win->type);
1340         if (ret) {
1341                 DRM_ERROR("failed to initialize plane\n");
1342                 return ret;
1343         }
1344         drm_plane_helper_add(&win->base, &plane_helper_funcs);
1345         drm_object_attach_property(&win->base.base,
1346                                    vop->plane_zpos_prop, win->win_id);
1347         return 0;
1348 }
1349
1350 static int vop_create_crtc(struct vop *vop)
1351 {
1352         struct device *dev = vop->dev;
1353         struct drm_device *drm_dev = vop->drm_dev;
1354         struct drm_plane *primary = NULL, *cursor = NULL, *plane, *tmp;
1355         struct drm_crtc *crtc = &vop->crtc;
1356         struct device_node *port;
1357         int ret;
1358         int i;
1359
1360         /*
1361          * Create drm_plane for primary and cursor planes first, since we need
1362          * to pass them to drm_crtc_init_with_planes, which sets the
1363          * "possible_crtcs" to the newly initialized crtc.
1364          */
1365         for (i = 0; i < vop->num_wins; i++) {
1366                 struct vop_win *win = &vop->win[i];
1367
1368                 if (win->type != DRM_PLANE_TYPE_PRIMARY &&
1369                     win->type != DRM_PLANE_TYPE_CURSOR)
1370                         continue;
1371
1372                 ret = vop_plane_init(vop, win, 0);
1373                 if (ret)
1374                         goto err_cleanup_planes;
1375
1376                 plane = &win->base;
1377                 if (plane->type == DRM_PLANE_TYPE_PRIMARY)
1378                         primary = plane;
1379                 else if (plane->type == DRM_PLANE_TYPE_CURSOR)
1380                         cursor = plane;
1381
1382         }
1383
1384         ret = drm_crtc_init_with_planes(drm_dev, crtc, primary, cursor,
1385                                         &vop_crtc_funcs, NULL);
1386         if (ret)
1387                 goto err_cleanup_planes;
1388
1389         drm_crtc_helper_add(crtc, &vop_crtc_helper_funcs);
1390
1391         /*
1392          * Create drm_planes for overlay windows with possible_crtcs restricted
1393          * to the newly created crtc.
1394          */
1395         for (i = 0; i < vop->num_wins; i++) {
1396                 struct vop_win *win = &vop->win[i];
1397                 unsigned long possible_crtcs = 1 << drm_crtc_index(crtc);
1398
1399                 if (win->type != DRM_PLANE_TYPE_OVERLAY)
1400                         continue;
1401
1402                 ret = vop_plane_init(vop, win, possible_crtcs);
1403                 if (ret)
1404                         goto err_cleanup_crtc;
1405         }
1406
1407         port = of_get_child_by_name(dev->of_node, "port");
1408         if (!port) {
1409                 DRM_ERROR("no port node found in %s\n",
1410                           dev->of_node->full_name);
1411                 ret = -ENOENT;
1412                 goto err_cleanup_crtc;
1413         }
1414
1415         init_completion(&vop->dsp_hold_completion);
1416         init_completion(&vop->wait_update_complete);
1417         crtc->port = port;
1418         rockchip_register_crtc_funcs(crtc, &private_crtc_funcs);
1419
1420         return 0;
1421
1422 err_cleanup_crtc:
1423         drm_crtc_cleanup(crtc);
1424 err_cleanup_planes:
1425         list_for_each_entry_safe(plane, tmp, &drm_dev->mode_config.plane_list,
1426                                  head)
1427                 drm_plane_cleanup(plane);
1428         return ret;
1429 }
1430
1431 static void vop_destroy_crtc(struct vop *vop)
1432 {
1433         struct drm_crtc *crtc = &vop->crtc;
1434         struct drm_device *drm_dev = vop->drm_dev;
1435         struct drm_plane *plane, *tmp;
1436
1437         rockchip_unregister_crtc_funcs(crtc);
1438         of_node_put(crtc->port);
1439
1440         /*
1441          * We need to cleanup the planes now.  Why?
1442          *
1443          * The planes are "&vop->win[i].base".  That means the memory is
1444          * all part of the big "struct vop" chunk of memory.  That memory
1445          * was devm allocated and associated with this component.  We need to
1446          * free it ourselves before vop_unbind() finishes.
1447          */
1448         list_for_each_entry_safe(plane, tmp, &drm_dev->mode_config.plane_list,
1449                                  head)
1450                 vop_plane_destroy(plane);
1451
1452         /*
1453          * Destroy CRTC after vop_plane_destroy() since vop_disable_plane()
1454          * references the CRTC.
1455          */
1456         drm_crtc_cleanup(crtc);
1457 }
1458
1459 static int vop_initial(struct vop *vop)
1460 {
1461         const struct vop_data *vop_data = vop->data;
1462         const struct vop_reg_data *init_table = vop_data->init_table;
1463         struct reset_control *ahb_rst;
1464         int i, ret;
1465
1466         vop->hclk = devm_clk_get(vop->dev, "hclk_vop");
1467         if (IS_ERR(vop->hclk)) {
1468                 dev_err(vop->dev, "failed to get hclk source\n");
1469                 return PTR_ERR(vop->hclk);
1470         }
1471         vop->aclk = devm_clk_get(vop->dev, "aclk_vop");
1472         if (IS_ERR(vop->aclk)) {
1473                 dev_err(vop->dev, "failed to get aclk source\n");
1474                 return PTR_ERR(vop->aclk);
1475         }
1476         vop->dclk = devm_clk_get(vop->dev, "dclk_vop");
1477         if (IS_ERR(vop->dclk)) {
1478                 dev_err(vop->dev, "failed to get dclk source\n");
1479                 return PTR_ERR(vop->dclk);
1480         }
1481
1482         ret = clk_prepare(vop->dclk);
1483         if (ret < 0) {
1484                 dev_err(vop->dev, "failed to prepare dclk\n");
1485                 return ret;
1486         }
1487
1488         /* Enable both the hclk and aclk to setup the vop */
1489         ret = clk_prepare_enable(vop->hclk);
1490         if (ret < 0) {
1491                 dev_err(vop->dev, "failed to prepare/enable hclk\n");
1492                 goto err_unprepare_dclk;
1493         }
1494
1495         ret = clk_prepare_enable(vop->aclk);
1496         if (ret < 0) {
1497                 dev_err(vop->dev, "failed to prepare/enable aclk\n");
1498                 goto err_disable_hclk;
1499         }
1500
1501         /*
1502          * do hclk_reset, reset all vop registers.
1503          */
1504         ahb_rst = devm_reset_control_get(vop->dev, "ahb");
1505         if (IS_ERR(ahb_rst)) {
1506                 dev_err(vop->dev, "failed to get ahb reset\n");
1507                 ret = PTR_ERR(ahb_rst);
1508                 goto err_disable_aclk;
1509         }
1510         reset_control_assert(ahb_rst);
1511         usleep_range(10, 20);
1512         reset_control_deassert(ahb_rst);
1513
1514         memcpy(vop->regsbak, vop->regs, vop->len);
1515
1516         for (i = 0; i < vop_data->table_size; i++)
1517                 vop_writel(vop, init_table[i].offset, init_table[i].value);
1518
1519         for (i = 0; i < vop->num_wins; i++) {
1520                 struct vop_win *win = &vop->win[i];
1521
1522                 VOP_WIN_SET(vop, win, enable, 0);
1523         }
1524
1525         vop_cfg_done(vop);
1526
1527         /*
1528          * do dclk_reset, let all config take affect.
1529          */
1530         vop->dclk_rst = devm_reset_control_get(vop->dev, "dclk");
1531         if (IS_ERR(vop->dclk_rst)) {
1532                 dev_err(vop->dev, "failed to get dclk reset\n");
1533                 ret = PTR_ERR(vop->dclk_rst);
1534                 goto err_disable_aclk;
1535         }
1536         reset_control_assert(vop->dclk_rst);
1537         usleep_range(10, 20);
1538         reset_control_deassert(vop->dclk_rst);
1539
1540         clk_disable(vop->hclk);
1541         clk_disable(vop->aclk);
1542
1543         vop->is_enabled = false;
1544
1545         return 0;
1546
1547 err_disable_aclk:
1548         clk_disable_unprepare(vop->aclk);
1549 err_disable_hclk:
1550         clk_disable_unprepare(vop->hclk);
1551 err_unprepare_dclk:
1552         clk_unprepare(vop->dclk);
1553         return ret;
1554 }
1555
1556 /*
1557  * Initialize the vop->win array elements.
1558  */
1559 static int vop_win_init(struct vop *vop)
1560 {
1561         const struct vop_data *vop_data = vop->data;
1562         unsigned int i, j;
1563         unsigned int num_wins = 0;
1564         struct drm_property *prop;
1565
1566         for (i = 0; i < vop_data->win_size; i++) {
1567                 struct vop_win *vop_win = &vop->win[num_wins];
1568                 const struct vop_win_data *win_data = &vop_data->win[i];
1569
1570                 vop_win->phy = win_data->phy;
1571                 vop_win->offset = win_data->base;
1572                 vop_win->type = win_data->type;
1573                 vop_win->data_formats = win_data->phy->data_formats;
1574                 vop_win->nformats = win_data->phy->nformats;
1575                 vop_win->vop = vop;
1576                 vop_win->win_id = i;
1577                 vop_win->area_id = 0;
1578                 num_wins++;
1579
1580                 for (j = 0; j < win_data->area_size; j++) {
1581                         struct vop_win *vop_area = &vop->win[num_wins];
1582                         const struct vop_win_phy *area = win_data->area[j];
1583
1584                         vop_area->parent = vop_win;
1585                         vop_area->offset = vop_win->offset;
1586                         vop_area->phy = area;
1587                         vop_area->type = DRM_PLANE_TYPE_OVERLAY;
1588                         vop_area->data_formats = vop_win->data_formats;
1589                         vop_area->nformats = vop_win->nformats;
1590                         vop_area->vop = vop;
1591                         vop_area->win_id = i;
1592                         vop_area->area_id = j;
1593                         num_wins++;
1594                 }
1595         }
1596         prop = drm_property_create_range(vop->drm_dev, DRM_MODE_PROP_ATOMIC,
1597                                          "ZPOS", 0, vop->data->win_size);
1598         if (!prop) {
1599                 DRM_ERROR("failed to create zpos property\n");
1600                 return -EINVAL;
1601         }
1602         vop->plane_zpos_prop = prop;
1603
1604         return 0;
1605 }
1606
1607 static int vop_bind(struct device *dev, struct device *master, void *data)
1608 {
1609         struct platform_device *pdev = to_platform_device(dev);
1610         const struct vop_data *vop_data;
1611         struct drm_device *drm_dev = data;
1612         struct vop *vop;
1613         struct resource *res;
1614         size_t alloc_size;
1615         int ret, irq, i;
1616         int num_wins = 0;
1617
1618         vop_data = of_device_get_match_data(dev);
1619         if (!vop_data)
1620                 return -ENODEV;
1621
1622         for (i = 0; i < vop_data->win_size; i++) {
1623                 const struct vop_win_data *win_data = &vop_data->win[i];
1624
1625                 num_wins += win_data->area_size + 1;
1626         }
1627
1628         /* Allocate vop struct and its vop_win array */
1629         alloc_size = sizeof(*vop) + sizeof(*vop->win) * num_wins;
1630         vop = devm_kzalloc(dev, alloc_size, GFP_KERNEL);
1631         if (!vop)
1632                 return -ENOMEM;
1633
1634         vop->dev = dev;
1635         vop->data = vop_data;
1636         vop->drm_dev = drm_dev;
1637         vop->num_wins = num_wins;
1638         dev_set_drvdata(dev, vop);
1639
1640         ret = vop_win_init(vop);
1641         if (ret)
1642                 return ret;
1643
1644         res = platform_get_resource(pdev, IORESOURCE_MEM, 0);
1645         vop->len = resource_size(res);
1646         vop->regs = devm_ioremap_resource(dev, res);
1647         if (IS_ERR(vop->regs))
1648                 return PTR_ERR(vop->regs);
1649
1650         vop->regsbak = devm_kzalloc(dev, vop->len, GFP_KERNEL);
1651         if (!vop->regsbak)
1652                 return -ENOMEM;
1653
1654         ret = vop_initial(vop);
1655         if (ret < 0) {
1656                 dev_err(&pdev->dev, "cannot initial vop dev - err %d\n", ret);
1657                 return ret;
1658         }
1659
1660         irq = platform_get_irq(pdev, 0);
1661         if (irq < 0) {
1662                 dev_err(dev, "cannot find irq for vop\n");
1663                 return irq;
1664         }
1665         vop->irq = (unsigned int)irq;
1666
1667         spin_lock_init(&vop->reg_lock);
1668         spin_lock_init(&vop->irq_lock);
1669
1670         mutex_init(&vop->vsync_mutex);
1671
1672         ret = devm_request_irq(dev, vop->irq, vop_isr,
1673                                IRQF_SHARED, dev_name(dev), vop);
1674         if (ret)
1675                 return ret;
1676
1677         /* IRQ is initially disabled; it gets enabled in power_on */
1678         disable_irq(vop->irq);
1679
1680         ret = vop_create_crtc(vop);
1681         if (ret)
1682                 return ret;
1683
1684         pm_runtime_enable(&pdev->dev);
1685         return 0;
1686 }
1687
1688 static void vop_unbind(struct device *dev, struct device *master, void *data)
1689 {
1690         struct vop *vop = dev_get_drvdata(dev);
1691
1692         pm_runtime_disable(dev);
1693         vop_destroy_crtc(vop);
1694 }
1695
1696 const struct component_ops vop_component_ops = {
1697         .bind = vop_bind,
1698         .unbind = vop_unbind,
1699 };
1700 EXPORT_SYMBOL_GPL(vop_component_ops);