1 // SPDX-License-Identifier: GPL-2.0-or-later 2 /* 3 * Samsung S5P Multi Format Codec v 5.1 4 * 5 * Copyright (c) 2011 Samsung Electronics Co., Ltd. 6 * Kamil Debski, <k.debski@samsung.com> 7 */ 8 9 #include <linux/clk.h> 10 #include <linux/delay.h> 11 #include <linux/interrupt.h> 12 #include <linux/io.h> 13 #include <linux/module.h> 14 #include <linux/platform_device.h> 15 #include <linux/sched.h> 16 #include <linux/slab.h> 17 #include <linux/videodev2.h> 18 #include <media/v4l2-event.h> 19 #include <linux/workqueue.h> 20 #include <linux/of.h> 21 #include <linux/of_device.h> 22 #include <linux/of_reserved_mem.h> 23 #include <media/videobuf2-v4l2.h> 24 #include "s5p_mfc_common.h" 25 #include "s5p_mfc_ctrl.h" 26 #include "s5p_mfc_debug.h" 27 #include "s5p_mfc_dec.h" 28 #include "s5p_mfc_enc.h" 29 #include "s5p_mfc_intr.h" 30 #include "s5p_mfc_iommu.h" 31 #include "s5p_mfc_opr.h" 32 #include "s5p_mfc_cmd.h" 33 #include "s5p_mfc_pm.h" 34 35 #define S5P_MFC_DEC_NAME "s5p-mfc-dec" 36 #define S5P_MFC_ENC_NAME "s5p-mfc-enc" 37 38 int mfc_debug_level; 39 module_param_named(debug, mfc_debug_level, int, 0644); 40 MODULE_PARM_DESC(debug, "Debug level - higher value produces more verbose messages"); 41 42 static char *mfc_mem_size; 43 module_param_named(mem, mfc_mem_size, charp, 0644); 44 MODULE_PARM_DESC(mem, "Preallocated memory size for the firmware and context buffers"); 45 46 /* Helper functions for interrupt processing */ 47 48 /* Remove from hw execution round robin */ 49 void clear_work_bit(struct s5p_mfc_ctx *ctx) 50 { 51 struct s5p_mfc_dev *dev = ctx->dev; 52 53 spin_lock(&dev->condlock); 54 __clear_bit(ctx->num, &dev->ctx_work_bits); 55 spin_unlock(&dev->condlock); 56 } 57 58 /* Add to hw execution round robin */ 59 void set_work_bit(struct s5p_mfc_ctx *ctx) 60 { 61 struct s5p_mfc_dev *dev = ctx->dev; 62 63 spin_lock(&dev->condlock); 64 __set_bit(ctx->num, &dev->ctx_work_bits); 65 spin_unlock(&dev->condlock); 66 } 67 68 /* Remove from hw execution round robin */ 69 void clear_work_bit_irqsave(struct s5p_mfc_ctx *ctx) 70 { 71 struct s5p_mfc_dev *dev = ctx->dev; 72 unsigned long flags; 73 74 spin_lock_irqsave(&dev->condlock, flags); 75 __clear_bit(ctx->num, &dev->ctx_work_bits); 76 spin_unlock_irqrestore(&dev->condlock, flags); 77 } 78 79 /* Add to hw execution round robin */ 80 void set_work_bit_irqsave(struct s5p_mfc_ctx *ctx) 81 { 82 struct s5p_mfc_dev *dev = ctx->dev; 83 unsigned long flags; 84 85 spin_lock_irqsave(&dev->condlock, flags); 86 __set_bit(ctx->num, &dev->ctx_work_bits); 87 spin_unlock_irqrestore(&dev->condlock, flags); 88 } 89 90 int s5p_mfc_get_new_ctx(struct s5p_mfc_dev *dev) 91 { 92 unsigned long flags; 93 int ctx; 94 95 spin_lock_irqsave(&dev->condlock, flags); 96 ctx = dev->curr_ctx; 97 do { 98 ctx = (ctx + 1) % MFC_NUM_CONTEXTS; 99 if (ctx == dev->curr_ctx) { 100 if (!test_bit(ctx, &dev->ctx_work_bits)) 101 ctx = -EAGAIN; 102 break; 103 } 104 } while (!test_bit(ctx, &dev->ctx_work_bits)); 105 spin_unlock_irqrestore(&dev->condlock, flags); 106 107 return ctx; 108 } 109 110 /* Wake up context wait_queue */ 111 static void wake_up_ctx(struct s5p_mfc_ctx *ctx, unsigned int reason, 112 unsigned int err) 113 { 114 ctx->int_cond = 1; 115 ctx->int_type = reason; 116 ctx->int_err = err; 117 wake_up(&ctx->queue); 118 } 119 120 /* Wake up device wait_queue */ 121 static void wake_up_dev(struct s5p_mfc_dev *dev, unsigned int reason, 122 unsigned int err) 123 { 124 dev->int_cond = 1; 125 dev->int_type = reason; 126 dev->int_err = err; 127 wake_up(&dev->queue); 128 } 129 130 void s5p_mfc_cleanup_queue(struct list_head *lh, struct vb2_queue *vq) 131 { 132 struct s5p_mfc_buf *b; 133 int i; 134 135 while (!list_empty(lh)) { 136 b = list_entry(lh->next, struct s5p_mfc_buf, list); 137 for (i = 0; i < b->b->vb2_buf.num_planes; i++) 138 vb2_set_plane_payload(&b->b->vb2_buf, i, 0); 139 vb2_buffer_done(&b->b->vb2_buf, VB2_BUF_STATE_ERROR); 140 list_del(&b->list); 141 } 142 } 143 144 static void s5p_mfc_watchdog(struct timer_list *t) 145 { 146 struct s5p_mfc_dev *dev = timer_container_of(dev, t, watchdog_timer); 147 148 if (test_bit(0, &dev->hw_lock)) 149 atomic_inc(&dev->watchdog_cnt); 150 if (atomic_read(&dev->watchdog_cnt) >= MFC_WATCHDOG_CNT) { 151 /* 152 * This means that hw is busy and no interrupts were 153 * generated by hw for the Nth time of running this 154 * watchdog timer. This usually means a serious hw 155 * error. Now it is time to kill all instances and 156 * reset the MFC. 157 */ 158 mfc_err("Time out during waiting for HW\n"); 159 schedule_work(&dev->watchdog_work); 160 } 161 dev->watchdog_timer.expires = jiffies + 162 msecs_to_jiffies(MFC_WATCHDOG_INTERVAL); 163 add_timer(&dev->watchdog_timer); 164 } 165 166 static void s5p_mfc_watchdog_worker(struct work_struct *work) 167 { 168 struct s5p_mfc_dev *dev; 169 struct s5p_mfc_ctx *ctx; 170 unsigned long flags; 171 int mutex_locked; 172 int i, ret; 173 174 dev = container_of(work, struct s5p_mfc_dev, watchdog_work); 175 176 mfc_err("Driver timeout error handling\n"); 177 /* 178 * Lock the mutex that protects open and release. 179 * This is necessary as they may load and unload firmware. 180 */ 181 mutex_locked = mutex_trylock(&dev->mfc_mutex); 182 if (!mutex_locked) 183 mfc_err("Error: some instance may be closing/opening\n"); 184 spin_lock_irqsave(&dev->irqlock, flags); 185 186 s5p_mfc_clock_off(dev); 187 188 for (i = 0; i < MFC_NUM_CONTEXTS; i++) { 189 ctx = dev->ctx[i]; 190 if (!ctx) 191 continue; 192 ctx->state = MFCINST_ERROR; 193 s5p_mfc_cleanup_queue(&ctx->dst_queue, &ctx->vq_dst); 194 s5p_mfc_cleanup_queue(&ctx->src_queue, &ctx->vq_src); 195 clear_work_bit(ctx); 196 wake_up_ctx(ctx, S5P_MFC_R2H_CMD_ERR_RET, 0); 197 } 198 clear_bit(0, &dev->hw_lock); 199 spin_unlock_irqrestore(&dev->irqlock, flags); 200 201 /* De-init MFC */ 202 s5p_mfc_deinit_hw(dev); 203 204 /* 205 * Double check if there is at least one instance running. 206 * If no instance is in memory than no firmware should be present 207 */ 208 if (dev->num_inst > 0) { 209 ret = s5p_mfc_load_firmware(dev); 210 if (ret) { 211 mfc_err("Failed to reload FW\n"); 212 goto unlock; 213 } 214 s5p_mfc_clock_on(dev); 215 ret = s5p_mfc_init_hw(dev); 216 s5p_mfc_clock_off(dev); 217 if (ret) 218 mfc_err("Failed to reinit FW\n"); 219 } 220 unlock: 221 if (mutex_locked) 222 mutex_unlock(&dev->mfc_mutex); 223 } 224 225 static void s5p_mfc_handle_frame_all_extracted(struct s5p_mfc_ctx *ctx) 226 { 227 struct s5p_mfc_buf *dst_buf; 228 struct s5p_mfc_dev *dev = ctx->dev; 229 230 ctx->state = MFCINST_FINISHED; 231 ctx->sequence++; 232 while (!list_empty(&ctx->dst_queue)) { 233 dst_buf = list_entry(ctx->dst_queue.next, 234 struct s5p_mfc_buf, list); 235 mfc_debug(2, "Cleaning up buffer: %d\n", 236 dst_buf->b->vb2_buf.index); 237 vb2_set_plane_payload(&dst_buf->b->vb2_buf, 0, 0); 238 vb2_set_plane_payload(&dst_buf->b->vb2_buf, 1, 0); 239 list_del(&dst_buf->list); 240 dst_buf->flags |= MFC_BUF_FLAG_EOS; 241 ctx->dst_queue_cnt--; 242 dst_buf->b->sequence = (ctx->sequence++); 243 244 if (s5p_mfc_hw_call(dev->mfc_ops, get_pic_type_top, ctx) == 245 s5p_mfc_hw_call(dev->mfc_ops, get_pic_type_bot, ctx)) 246 dst_buf->b->field = V4L2_FIELD_NONE; 247 else 248 dst_buf->b->field = V4L2_FIELD_INTERLACED; 249 dst_buf->b->flags |= V4L2_BUF_FLAG_LAST; 250 251 ctx->dec_dst_flag &= ~(1 << dst_buf->b->vb2_buf.index); 252 vb2_buffer_done(&dst_buf->b->vb2_buf, VB2_BUF_STATE_DONE); 253 } 254 } 255 256 static void s5p_mfc_handle_frame_copy_time(struct s5p_mfc_ctx *ctx) 257 { 258 struct s5p_mfc_dev *dev = ctx->dev; 259 struct s5p_mfc_buf *dst_buf, *src_buf; 260 u32 dec_y_addr; 261 unsigned int frame_type; 262 263 /* Make sure we actually have a new frame before continuing. */ 264 frame_type = s5p_mfc_hw_call(dev->mfc_ops, get_dec_frame_type, dev); 265 if (frame_type == S5P_FIMV_DECODE_FRAME_SKIPPED) 266 return; 267 dec_y_addr = (u32)s5p_mfc_hw_call(dev->mfc_ops, get_dec_y_adr, dev); 268 269 /* 270 * Copy timestamp / timecode from decoded src to dst and set 271 * appropriate flags. 272 */ 273 src_buf = list_entry(ctx->src_queue.next, struct s5p_mfc_buf, list); 274 list_for_each_entry(dst_buf, &ctx->dst_queue, list) { 275 u32 addr = (u32)vb2_dma_contig_plane_dma_addr(&dst_buf->b->vb2_buf, 0); 276 277 if (addr == dec_y_addr) { 278 dst_buf->b->timecode = src_buf->b->timecode; 279 dst_buf->b->vb2_buf.timestamp = 280 src_buf->b->vb2_buf.timestamp; 281 dst_buf->b->flags &= 282 ~V4L2_BUF_FLAG_TSTAMP_SRC_MASK; 283 dst_buf->b->flags |= 284 src_buf->b->flags 285 & V4L2_BUF_FLAG_TSTAMP_SRC_MASK; 286 switch (frame_type) { 287 case S5P_FIMV_DECODE_FRAME_I_FRAME: 288 dst_buf->b->flags |= 289 V4L2_BUF_FLAG_KEYFRAME; 290 break; 291 case S5P_FIMV_DECODE_FRAME_P_FRAME: 292 dst_buf->b->flags |= 293 V4L2_BUF_FLAG_PFRAME; 294 break; 295 case S5P_FIMV_DECODE_FRAME_B_FRAME: 296 dst_buf->b->flags |= 297 V4L2_BUF_FLAG_BFRAME; 298 break; 299 default: 300 /* 301 * Don't know how to handle 302 * S5P_FIMV_DECODE_FRAME_OTHER_FRAME. 303 */ 304 mfc_debug(2, "Unexpected frame type: %d\n", 305 frame_type); 306 } 307 break; 308 } 309 } 310 } 311 312 static void s5p_mfc_handle_frame_new(struct s5p_mfc_ctx *ctx, unsigned int err) 313 { 314 struct s5p_mfc_dev *dev = ctx->dev; 315 struct s5p_mfc_buf *dst_buf; 316 u32 dspl_y_addr; 317 unsigned int frame_type; 318 319 dspl_y_addr = (u32)s5p_mfc_hw_call(dev->mfc_ops, get_dspl_y_adr, dev); 320 if (IS_MFCV6_PLUS(dev)) 321 frame_type = s5p_mfc_hw_call(dev->mfc_ops, 322 get_disp_frame_type, ctx); 323 else 324 frame_type = s5p_mfc_hw_call(dev->mfc_ops, 325 get_dec_frame_type, dev); 326 327 /* If frame is same as previous then skip and do not dequeue */ 328 if (frame_type == S5P_FIMV_DECODE_FRAME_SKIPPED) { 329 if (!ctx->after_packed_pb) 330 ctx->sequence++; 331 ctx->after_packed_pb = 0; 332 return; 333 } 334 ctx->sequence++; 335 /* 336 * The MFC returns address of the buffer, now we have to 337 * check which vb2_buffer does it correspond to 338 */ 339 list_for_each_entry(dst_buf, &ctx->dst_queue, list) { 340 u32 addr = (u32)vb2_dma_contig_plane_dma_addr(&dst_buf->b->vb2_buf, 0); 341 342 /* Check if this is the buffer we're looking for */ 343 if (addr == dspl_y_addr) { 344 list_del(&dst_buf->list); 345 ctx->dst_queue_cnt--; 346 dst_buf->b->sequence = ctx->sequence; 347 if (s5p_mfc_hw_call(dev->mfc_ops, 348 get_pic_type_top, ctx) == 349 s5p_mfc_hw_call(dev->mfc_ops, 350 get_pic_type_bot, ctx)) 351 dst_buf->b->field = V4L2_FIELD_NONE; 352 else 353 dst_buf->b->field = 354 V4L2_FIELD_INTERLACED; 355 vb2_set_plane_payload(&dst_buf->b->vb2_buf, 0, 356 ctx->luma_size); 357 vb2_set_plane_payload(&dst_buf->b->vb2_buf, 1, 358 ctx->chroma_size); 359 clear_bit(dst_buf->b->vb2_buf.index, 360 &ctx->dec_dst_flag); 361 362 vb2_buffer_done(&dst_buf->b->vb2_buf, err ? 363 VB2_BUF_STATE_ERROR : VB2_BUF_STATE_DONE); 364 365 break; 366 } 367 } 368 } 369 370 /* Handle frame decoding interrupt */ 371 static void s5p_mfc_handle_frame(struct s5p_mfc_ctx *ctx, 372 unsigned int reason, unsigned int err) 373 { 374 struct s5p_mfc_dev *dev = ctx->dev; 375 unsigned int dst_frame_status; 376 unsigned int dec_frame_status; 377 struct s5p_mfc_buf *src_buf; 378 unsigned int res_change; 379 380 dst_frame_status = s5p_mfc_hw_call(dev->mfc_ops, get_dspl_status, dev) 381 & S5P_FIMV_DEC_STATUS_DECODING_STATUS_MASK; 382 dec_frame_status = s5p_mfc_hw_call(dev->mfc_ops, get_dec_status, dev) 383 & S5P_FIMV_DEC_STATUS_DECODING_STATUS_MASK; 384 res_change = (s5p_mfc_hw_call(dev->mfc_ops, get_dspl_status, dev) 385 & S5P_FIMV_DEC_STATUS_RESOLUTION_MASK) 386 >> S5P_FIMV_DEC_STATUS_RESOLUTION_SHIFT; 387 mfc_debug(2, "Frame Status: %x\n", dst_frame_status); 388 if (ctx->state == MFCINST_RES_CHANGE_INIT) 389 ctx->state = MFCINST_RES_CHANGE_FLUSH; 390 if (res_change == S5P_FIMV_RES_INCREASE || 391 res_change == S5P_FIMV_RES_DECREASE) { 392 ctx->state = MFCINST_RES_CHANGE_INIT; 393 s5p_mfc_hw_call(dev->mfc_ops, clear_int_flags, dev); 394 wake_up_ctx(ctx, reason, err); 395 WARN_ON(test_and_clear_bit(0, &dev->hw_lock) == 0); 396 s5p_mfc_clock_off(dev); 397 s5p_mfc_hw_call(dev->mfc_ops, try_run, dev); 398 return; 399 } 400 if (ctx->dpb_flush_flag) 401 ctx->dpb_flush_flag = 0; 402 403 /* All frames remaining in the buffer have been extracted */ 404 if (dst_frame_status == S5P_FIMV_DEC_STATUS_DECODING_EMPTY) { 405 if (ctx->state == MFCINST_RES_CHANGE_FLUSH) { 406 static const struct v4l2_event ev_src_ch = { 407 .type = V4L2_EVENT_SOURCE_CHANGE, 408 .u.src_change.changes = 409 V4L2_EVENT_SRC_CH_RESOLUTION, 410 }; 411 412 s5p_mfc_handle_frame_all_extracted(ctx); 413 ctx->state = MFCINST_RES_CHANGE_END; 414 v4l2_event_queue_fh(&ctx->fh, &ev_src_ch); 415 416 goto leave_handle_frame; 417 } else { 418 s5p_mfc_handle_frame_all_extracted(ctx); 419 } 420 } 421 422 if (dec_frame_status == S5P_FIMV_DEC_STATUS_DECODING_DISPLAY) 423 s5p_mfc_handle_frame_copy_time(ctx); 424 425 /* A frame has been decoded and is in the buffer */ 426 if (dst_frame_status == S5P_FIMV_DEC_STATUS_DISPLAY_ONLY || 427 dst_frame_status == S5P_FIMV_DEC_STATUS_DECODING_DISPLAY) { 428 s5p_mfc_handle_frame_new(ctx, err); 429 } else { 430 mfc_debug(2, "No frame decode\n"); 431 } 432 /* Mark source buffer as complete */ 433 if (dst_frame_status != S5P_FIMV_DEC_STATUS_DISPLAY_ONLY 434 && !list_empty(&ctx->src_queue)) { 435 src_buf = list_entry(ctx->src_queue.next, struct s5p_mfc_buf, 436 list); 437 ctx->consumed_stream += s5p_mfc_hw_call(dev->mfc_ops, 438 get_consumed_stream, dev); 439 if (ctx->codec_mode != S5P_MFC_CODEC_H264_DEC && 440 ctx->codec_mode != S5P_MFC_CODEC_VP8_DEC && 441 ctx->consumed_stream + STUFF_BYTE < 442 src_buf->b->vb2_buf.planes[0].bytesused) { 443 /* Run MFC again on the same buffer */ 444 mfc_debug(2, "Running again the same buffer\n"); 445 ctx->after_packed_pb = 1; 446 } else { 447 mfc_debug(2, "MFC needs next buffer\n"); 448 ctx->consumed_stream = 0; 449 if (src_buf->flags & MFC_BUF_FLAG_EOS) 450 ctx->state = MFCINST_FINISHING; 451 list_del(&src_buf->list); 452 ctx->src_queue_cnt--; 453 if (s5p_mfc_hw_call(dev->mfc_ops, err_dec, err) > 0) 454 vb2_buffer_done(&src_buf->b->vb2_buf, 455 VB2_BUF_STATE_ERROR); 456 else 457 vb2_buffer_done(&src_buf->b->vb2_buf, 458 VB2_BUF_STATE_DONE); 459 } 460 } 461 leave_handle_frame: 462 if ((ctx->src_queue_cnt == 0 && ctx->state != MFCINST_FINISHING) 463 || ctx->dst_queue_cnt < ctx->pb_count) 464 clear_work_bit(ctx); 465 s5p_mfc_hw_call(dev->mfc_ops, clear_int_flags, dev); 466 wake_up_ctx(ctx, reason, err); 467 WARN_ON(test_and_clear_bit(0, &dev->hw_lock) == 0); 468 s5p_mfc_clock_off(dev); 469 /* if suspending, wake up device and do not try_run again*/ 470 if (test_bit(0, &dev->enter_suspend)) 471 wake_up_dev(dev, reason, err); 472 else 473 s5p_mfc_hw_call(dev->mfc_ops, try_run, dev); 474 } 475 476 /* Error handling for interrupt */ 477 static void s5p_mfc_handle_error(struct s5p_mfc_dev *dev, 478 struct s5p_mfc_ctx *ctx, unsigned int reason, unsigned int err) 479 { 480 mfc_err("Interrupt Error: %08x\n", err); 481 482 if (ctx) { 483 /* Error recovery is dependent on the state of context */ 484 switch (ctx->state) { 485 case MFCINST_RES_CHANGE_INIT: 486 case MFCINST_RES_CHANGE_FLUSH: 487 case MFCINST_RES_CHANGE_END: 488 case MFCINST_FINISHING: 489 case MFCINST_FINISHED: 490 case MFCINST_RUNNING: 491 /* 492 * It is highly probable that an error occurred 493 * while decoding a frame 494 */ 495 clear_work_bit(ctx); 496 ctx->state = MFCINST_ERROR; 497 /* Mark all dst buffers as having an error */ 498 s5p_mfc_cleanup_queue(&ctx->dst_queue, &ctx->vq_dst); 499 /* Mark all src buffers as having an error */ 500 s5p_mfc_cleanup_queue(&ctx->src_queue, &ctx->vq_src); 501 wake_up_ctx(ctx, reason, err); 502 break; 503 default: 504 clear_work_bit(ctx); 505 ctx->state = MFCINST_ERROR; 506 wake_up_ctx(ctx, reason, err); 507 break; 508 } 509 } 510 WARN_ON(test_and_clear_bit(0, &dev->hw_lock) == 0); 511 s5p_mfc_hw_call(dev->mfc_ops, clear_int_flags, dev); 512 s5p_mfc_clock_off(dev); 513 wake_up_dev(dev, reason, err); 514 } 515 516 /* Header parsing interrupt handling */ 517 static void s5p_mfc_handle_seq_done(struct s5p_mfc_ctx *ctx, 518 unsigned int reason, unsigned int err) 519 { 520 struct s5p_mfc_dev *dev; 521 522 if (!ctx) 523 return; 524 dev = ctx->dev; 525 if (ctx->c_ops->post_seq_start) { 526 if (ctx->c_ops->post_seq_start(ctx)) 527 mfc_err("post_seq_start() failed\n"); 528 } else { 529 ctx->img_width = s5p_mfc_hw_call(dev->mfc_ops, get_img_width, 530 dev); 531 ctx->img_height = s5p_mfc_hw_call(dev->mfc_ops, get_img_height, 532 dev); 533 534 s5p_mfc_hw_call(dev->mfc_ops, dec_calc_dpb_size, ctx); 535 536 ctx->pb_count = s5p_mfc_hw_call(dev->mfc_ops, get_dpb_count, 537 dev); 538 ctx->mv_count = s5p_mfc_hw_call(dev->mfc_ops, get_mv_count, 539 dev); 540 if (FW_HAS_E_MIN_SCRATCH_BUF(dev)) 541 ctx->scratch_buf_size = s5p_mfc_hw_call(dev->mfc_ops, 542 get_min_scratch_buf_size, dev); 543 if (ctx->img_width == 0 || ctx->img_height == 0) 544 ctx->state = MFCINST_ERROR; 545 else 546 ctx->state = MFCINST_HEAD_PARSED; 547 548 if ((ctx->codec_mode == S5P_MFC_CODEC_H264_DEC || 549 ctx->codec_mode == S5P_MFC_CODEC_H264_MVC_DEC) && 550 !list_empty(&ctx->src_queue)) { 551 struct s5p_mfc_buf *src_buf; 552 553 src_buf = list_entry(ctx->src_queue.next, 554 struct s5p_mfc_buf, list); 555 if (s5p_mfc_hw_call(dev->mfc_ops, get_consumed_stream, 556 dev) < 557 src_buf->b->vb2_buf.planes[0].bytesused) 558 ctx->head_processed = 0; 559 else 560 ctx->head_processed = 1; 561 } else { 562 ctx->head_processed = 1; 563 } 564 } 565 s5p_mfc_hw_call(dev->mfc_ops, clear_int_flags, dev); 566 clear_work_bit(ctx); 567 WARN_ON(test_and_clear_bit(0, &dev->hw_lock) == 0); 568 s5p_mfc_clock_off(dev); 569 s5p_mfc_hw_call(dev->mfc_ops, try_run, dev); 570 wake_up_ctx(ctx, reason, err); 571 } 572 573 /* Header parsing interrupt handling */ 574 static void s5p_mfc_handle_init_buffers(struct s5p_mfc_ctx *ctx, 575 unsigned int reason, unsigned int err) 576 { 577 struct s5p_mfc_buf *src_buf; 578 struct s5p_mfc_dev *dev; 579 580 if (!ctx) 581 return; 582 dev = ctx->dev; 583 s5p_mfc_hw_call(dev->mfc_ops, clear_int_flags, dev); 584 ctx->int_type = reason; 585 ctx->int_err = err; 586 ctx->int_cond = 1; 587 clear_work_bit(ctx); 588 if (err == 0) { 589 ctx->state = MFCINST_RUNNING; 590 if (!ctx->dpb_flush_flag && ctx->head_processed) { 591 if (!list_empty(&ctx->src_queue)) { 592 src_buf = list_entry(ctx->src_queue.next, 593 struct s5p_mfc_buf, list); 594 list_del(&src_buf->list); 595 ctx->src_queue_cnt--; 596 vb2_buffer_done(&src_buf->b->vb2_buf, 597 VB2_BUF_STATE_DONE); 598 } 599 } else { 600 ctx->dpb_flush_flag = 0; 601 } 602 WARN_ON(test_and_clear_bit(0, &dev->hw_lock) == 0); 603 604 s5p_mfc_clock_off(dev); 605 606 wake_up(&ctx->queue); 607 if (ctx->src_queue_cnt >= 1 && ctx->dst_queue_cnt >= 1) 608 set_work_bit_irqsave(ctx); 609 s5p_mfc_hw_call(dev->mfc_ops, try_run, dev); 610 } else { 611 WARN_ON(test_and_clear_bit(0, &dev->hw_lock) == 0); 612 613 s5p_mfc_clock_off(dev); 614 615 wake_up(&ctx->queue); 616 } 617 } 618 619 static void s5p_mfc_handle_stream_complete(struct s5p_mfc_ctx *ctx) 620 { 621 struct s5p_mfc_dev *dev = ctx->dev; 622 struct s5p_mfc_buf *mb_entry; 623 624 mfc_debug(2, "Stream completed\n"); 625 626 ctx->state = MFCINST_FINISHED; 627 628 if (!list_empty(&ctx->dst_queue)) { 629 mb_entry = list_entry(ctx->dst_queue.next, struct s5p_mfc_buf, 630 list); 631 list_del(&mb_entry->list); 632 ctx->dst_queue_cnt--; 633 vb2_set_plane_payload(&mb_entry->b->vb2_buf, 0, 0); 634 vb2_buffer_done(&mb_entry->b->vb2_buf, VB2_BUF_STATE_DONE); 635 } 636 637 clear_work_bit(ctx); 638 639 WARN_ON(test_and_clear_bit(0, &dev->hw_lock) == 0); 640 641 s5p_mfc_clock_off(dev); 642 wake_up(&ctx->queue); 643 s5p_mfc_hw_call(dev->mfc_ops, try_run, dev); 644 } 645 646 /* Interrupt processing */ 647 static irqreturn_t s5p_mfc_irq(int irq, void *priv) 648 { 649 struct s5p_mfc_dev *dev = priv; 650 struct s5p_mfc_ctx *ctx; 651 unsigned int reason; 652 unsigned int err; 653 654 mfc_debug_enter(); 655 /* Reset the timeout watchdog */ 656 atomic_set(&dev->watchdog_cnt, 0); 657 spin_lock(&dev->irqlock); 658 ctx = dev->ctx[dev->curr_ctx]; 659 /* Get the reason of interrupt and the error code */ 660 reason = s5p_mfc_hw_call(dev->mfc_ops, get_int_reason, dev); 661 err = s5p_mfc_hw_call(dev->mfc_ops, get_int_err, dev); 662 mfc_debug(1, "Int reason: %d (err: %08x)\n", reason, err); 663 switch (reason) { 664 case S5P_MFC_R2H_CMD_ERR_RET: 665 /* An error has occurred */ 666 if (ctx->state == MFCINST_RUNNING && 667 (s5p_mfc_hw_call(dev->mfc_ops, err_dec, err) >= 668 dev->warn_start || 669 err == S5P_FIMV_ERR_NO_VALID_SEQ_HDR || 670 err == S5P_FIMV_ERR_INCOMPLETE_FRAME || 671 err == S5P_FIMV_ERR_TIMEOUT)) 672 s5p_mfc_handle_frame(ctx, reason, err); 673 else 674 s5p_mfc_handle_error(dev, ctx, reason, err); 675 clear_bit(0, &dev->enter_suspend); 676 break; 677 678 case S5P_MFC_R2H_CMD_SLICE_DONE_RET: 679 case S5P_MFC_R2H_CMD_FIELD_DONE_RET: 680 case S5P_MFC_R2H_CMD_FRAME_DONE_RET: 681 if (ctx->c_ops->post_frame_start) { 682 if (ctx->c_ops->post_frame_start(ctx)) 683 mfc_err("post_frame_start() failed\n"); 684 685 if (ctx->state == MFCINST_FINISHING && 686 list_empty(&ctx->ref_queue)) { 687 s5p_mfc_hw_call(dev->mfc_ops, clear_int_flags, dev); 688 s5p_mfc_handle_stream_complete(ctx); 689 break; 690 } 691 s5p_mfc_hw_call(dev->mfc_ops, clear_int_flags, dev); 692 WARN_ON(test_and_clear_bit(0, &dev->hw_lock) == 0); 693 s5p_mfc_clock_off(dev); 694 wake_up_ctx(ctx, reason, err); 695 s5p_mfc_hw_call(dev->mfc_ops, try_run, dev); 696 } else { 697 s5p_mfc_handle_frame(ctx, reason, err); 698 } 699 break; 700 701 case S5P_MFC_R2H_CMD_SEQ_DONE_RET: 702 s5p_mfc_handle_seq_done(ctx, reason, err); 703 break; 704 705 case S5P_MFC_R2H_CMD_OPEN_INSTANCE_RET: 706 ctx->inst_no = s5p_mfc_hw_call(dev->mfc_ops, get_inst_no, dev); 707 ctx->state = MFCINST_GOT_INST; 708 goto irq_cleanup_hw; 709 710 case S5P_MFC_R2H_CMD_CLOSE_INSTANCE_RET: 711 ctx->inst_no = MFC_NO_INSTANCE_SET; 712 ctx->state = MFCINST_FREE; 713 goto irq_cleanup_hw; 714 715 case S5P_MFC_R2H_CMD_SYS_INIT_RET: 716 case S5P_MFC_R2H_CMD_FW_STATUS_RET: 717 case S5P_MFC_R2H_CMD_SLEEP_RET: 718 case S5P_MFC_R2H_CMD_WAKEUP_RET: 719 if (ctx) 720 clear_work_bit(ctx); 721 s5p_mfc_hw_call(dev->mfc_ops, clear_int_flags, dev); 722 clear_bit(0, &dev->hw_lock); 723 clear_bit(0, &dev->enter_suspend); 724 wake_up_dev(dev, reason, err); 725 break; 726 727 case S5P_MFC_R2H_CMD_INIT_BUFFERS_RET: 728 s5p_mfc_handle_init_buffers(ctx, reason, err); 729 break; 730 731 case S5P_MFC_R2H_CMD_COMPLETE_SEQ_RET: 732 s5p_mfc_hw_call(dev->mfc_ops, clear_int_flags, dev); 733 ctx->int_type = reason; 734 ctx->int_err = err; 735 s5p_mfc_handle_stream_complete(ctx); 736 break; 737 738 case S5P_MFC_R2H_CMD_DPB_FLUSH_RET: 739 ctx->state = MFCINST_RUNNING; 740 goto irq_cleanup_hw; 741 742 case S5P_MFC_R2H_CMD_ENC_BUFFER_FUL_RET: 743 ctx->state = MFCINST_NAL_ABORT; 744 s5p_mfc_hw_call(dev->mfc_ops, clear_int_flags, dev); 745 set_work_bit(ctx); 746 WARN_ON(test_and_clear_bit(0, &dev->hw_lock) == 0); 747 s5p_mfc_hw_call(dev->mfc_ops, try_run, dev); 748 break; 749 750 case S5P_MFC_R2H_CMD_NAL_ABORT_RET: 751 ctx->state = MFCINST_ERROR; 752 s5p_mfc_cleanup_queue(&ctx->dst_queue, &ctx->vq_dst); 753 s5p_mfc_cleanup_queue(&ctx->src_queue, &ctx->vq_src); 754 goto irq_cleanup_hw; 755 756 default: 757 mfc_debug(2, "Unknown int reason\n"); 758 s5p_mfc_hw_call(dev->mfc_ops, clear_int_flags, dev); 759 } 760 spin_unlock(&dev->irqlock); 761 mfc_debug_leave(); 762 return IRQ_HANDLED; 763 irq_cleanup_hw: 764 s5p_mfc_hw_call(dev->mfc_ops, clear_int_flags, dev); 765 ctx->int_type = reason; 766 ctx->int_err = err; 767 ctx->int_cond = 1; 768 if (test_and_clear_bit(0, &dev->hw_lock) == 0) 769 mfc_err("Failed to unlock hw\n"); 770 771 s5p_mfc_clock_off(dev); 772 clear_work_bit(ctx); 773 wake_up(&ctx->queue); 774 775 s5p_mfc_hw_call(dev->mfc_ops, try_run, dev); 776 spin_unlock(&dev->irqlock); 777 mfc_debug(2, "Exit via irq_cleanup_hw\n"); 778 return IRQ_HANDLED; 779 } 780 781 /* Open an MFC node */ 782 static int s5p_mfc_open(struct file *file) 783 { 784 struct video_device *vdev = video_devdata(file); 785 struct s5p_mfc_dev *dev = video_drvdata(file); 786 struct s5p_mfc_ctx *ctx = NULL; 787 struct vb2_queue *q; 788 int ret = 0; 789 790 mfc_debug_enter(); 791 if (mutex_lock_interruptible(&dev->mfc_mutex)) { 792 ret = -ERESTARTSYS; 793 goto err_enter; 794 } 795 dev->num_inst++; /* It is guarded by mfc_mutex in vfd */ 796 /* Allocate memory for context */ 797 ctx = kzalloc(sizeof(*ctx), GFP_KERNEL); 798 if (!ctx) { 799 ret = -ENOMEM; 800 goto err_alloc; 801 } 802 init_waitqueue_head(&ctx->queue); 803 v4l2_fh_init(&ctx->fh, vdev); 804 v4l2_fh_add(&ctx->fh, file); 805 ctx->dev = dev; 806 INIT_LIST_HEAD(&ctx->src_queue); 807 INIT_LIST_HEAD(&ctx->dst_queue); 808 ctx->src_queue_cnt = 0; 809 ctx->dst_queue_cnt = 0; 810 ctx->is_422 = 0; 811 ctx->is_10bit = 0; 812 /* Get context number */ 813 ctx->num = 0; 814 while (dev->ctx[ctx->num]) { 815 ctx->num++; 816 if (ctx->num >= MFC_NUM_CONTEXTS) { 817 mfc_debug(2, "Too many open contexts\n"); 818 ret = -EBUSY; 819 goto err_no_ctx; 820 } 821 } 822 /* Mark context as idle */ 823 clear_work_bit_irqsave(ctx); 824 dev->ctx[ctx->num] = ctx; 825 if (vdev == dev->vfd_dec) { 826 ctx->type = MFCINST_DECODER; 827 ctx->c_ops = get_dec_codec_ops(); 828 s5p_mfc_dec_init(ctx); 829 /* Setup ctrl handler */ 830 ret = s5p_mfc_dec_ctrls_setup(ctx); 831 if (ret) { 832 mfc_err("Failed to setup mfc controls\n"); 833 goto err_ctrls_setup; 834 } 835 } else if (vdev == dev->vfd_enc) { 836 ctx->type = MFCINST_ENCODER; 837 ctx->c_ops = get_enc_codec_ops(); 838 /* only for encoder */ 839 INIT_LIST_HEAD(&ctx->ref_queue); 840 ctx->ref_queue_cnt = 0; 841 s5p_mfc_enc_init(ctx); 842 /* Setup ctrl handler */ 843 ret = s5p_mfc_enc_ctrls_setup(ctx); 844 if (ret) { 845 mfc_err("Failed to setup mfc controls\n"); 846 goto err_ctrls_setup; 847 } 848 } else { 849 ret = -ENOENT; 850 goto err_bad_node; 851 } 852 ctx->fh.ctrl_handler = &ctx->ctrl_handler; 853 ctx->inst_no = MFC_NO_INSTANCE_SET; 854 /* Load firmware if this is the first instance */ 855 if (dev->num_inst == 1) { 856 dev->watchdog_timer.expires = jiffies + 857 msecs_to_jiffies(MFC_WATCHDOG_INTERVAL); 858 add_timer(&dev->watchdog_timer); 859 ret = s5p_mfc_power_on(dev); 860 if (ret < 0) { 861 mfc_err("power on failed\n"); 862 goto err_pwr_enable; 863 } 864 s5p_mfc_clock_on(dev); 865 ret = s5p_mfc_load_firmware(dev); 866 if (ret) { 867 s5p_mfc_clock_off(dev); 868 goto err_load_fw; 869 } 870 /* Init the FW */ 871 ret = s5p_mfc_init_hw(dev); 872 s5p_mfc_clock_off(dev); 873 if (ret) 874 goto err_init_hw; 875 } 876 /* Init videobuf2 queue for CAPTURE */ 877 q = &ctx->vq_dst; 878 q->type = V4L2_BUF_TYPE_VIDEO_CAPTURE_MPLANE; 879 q->drv_priv = ctx; 880 q->lock = &dev->mfc_mutex; 881 if (vdev == dev->vfd_dec) { 882 q->io_modes = VB2_MMAP; 883 q->ops = get_dec_queue_ops(); 884 } else if (vdev == dev->vfd_enc) { 885 q->io_modes = VB2_MMAP | VB2_USERPTR | VB2_DMABUF; 886 q->ops = get_enc_queue_ops(); 887 } else { 888 ret = -ENOENT; 889 goto err_queue_init; 890 } 891 /* 892 * We'll do mostly sequential access, so sacrifice TLB efficiency for 893 * faster allocation. 894 */ 895 q->dma_attrs = DMA_ATTR_ALLOC_SINGLE_PAGES; 896 q->mem_ops = &vb2_dma_contig_memops; 897 q->timestamp_flags = V4L2_BUF_FLAG_TIMESTAMP_COPY; 898 ret = vb2_queue_init(q); 899 if (ret) { 900 mfc_err("Failed to initialize videobuf2 queue(capture)\n"); 901 goto err_queue_init; 902 } 903 /* Init videobuf2 queue for OUTPUT */ 904 q = &ctx->vq_src; 905 q->type = V4L2_BUF_TYPE_VIDEO_OUTPUT_MPLANE; 906 q->drv_priv = ctx; 907 q->lock = &dev->mfc_mutex; 908 if (vdev == dev->vfd_dec) { 909 q->io_modes = VB2_MMAP; 910 q->ops = get_dec_queue_ops(); 911 } else if (vdev == dev->vfd_enc) { 912 q->io_modes = VB2_MMAP | VB2_USERPTR | VB2_DMABUF; 913 q->ops = get_enc_queue_ops(); 914 } else { 915 ret = -ENOENT; 916 goto err_queue_init; 917 } 918 /* One way to indicate end-of-stream for MFC is to set the 919 * bytesused == 0. However by default videobuf2 handles bytesused 920 * equal to 0 as a special case and changes its value to the size 921 * of the buffer. Set the allow_zero_bytesused flag so that videobuf2 922 * will keep the value of bytesused intact. 923 */ 924 q->allow_zero_bytesused = 1; 925 926 /* 927 * We'll do mostly sequential access, so sacrifice TLB efficiency for 928 * faster allocation. 929 */ 930 q->dma_attrs = DMA_ATTR_ALLOC_SINGLE_PAGES; 931 q->mem_ops = &vb2_dma_contig_memops; 932 q->timestamp_flags = V4L2_BUF_FLAG_TIMESTAMP_COPY; 933 ret = vb2_queue_init(q); 934 if (ret) { 935 mfc_err("Failed to initialize videobuf2 queue(output)\n"); 936 goto err_queue_init; 937 } 938 mutex_unlock(&dev->mfc_mutex); 939 mfc_debug_leave(); 940 return ret; 941 /* Deinit when failure occurred */ 942 err_queue_init: 943 if (dev->num_inst == 1) 944 s5p_mfc_deinit_hw(dev); 945 err_init_hw: 946 err_load_fw: 947 err_pwr_enable: 948 if (dev->num_inst == 1) { 949 if (s5p_mfc_power_off(dev) < 0) 950 mfc_err("power off failed\n"); 951 timer_delete_sync(&dev->watchdog_timer); 952 } 953 err_ctrls_setup: 954 s5p_mfc_dec_ctrls_delete(ctx); 955 err_bad_node: 956 dev->ctx[ctx->num] = NULL; 957 err_no_ctx: 958 v4l2_fh_del(&ctx->fh, file); 959 v4l2_fh_exit(&ctx->fh); 960 kfree(ctx); 961 err_alloc: 962 dev->num_inst--; 963 mutex_unlock(&dev->mfc_mutex); 964 err_enter: 965 mfc_debug_leave(); 966 return ret; 967 } 968 969 /* Release MFC context */ 970 static int s5p_mfc_release(struct file *file) 971 { 972 struct s5p_mfc_ctx *ctx = file_to_ctx(file); 973 struct s5p_mfc_dev *dev = ctx->dev; 974 975 /* if dev is null, do cleanup that doesn't need dev */ 976 mfc_debug_enter(); 977 if (dev) 978 mutex_lock(&dev->mfc_mutex); 979 vb2_queue_release(&ctx->vq_src); 980 vb2_queue_release(&ctx->vq_dst); 981 if (dev) { 982 s5p_mfc_clock_on(dev); 983 984 /* Mark context as idle */ 985 clear_work_bit_irqsave(ctx); 986 /* 987 * If instance was initialised and not yet freed, 988 * return instance and free resources 989 */ 990 if (ctx->state != MFCINST_FREE && ctx->state != MFCINST_INIT) { 991 mfc_debug(2, "Has to free instance\n"); 992 s5p_mfc_close_mfc_inst(dev, ctx); 993 } 994 /* hardware locking scheme */ 995 if (dev->curr_ctx == ctx->num) 996 clear_bit(0, &dev->hw_lock); 997 dev->num_inst--; 998 if (dev->num_inst == 0) { 999 mfc_debug(2, "Last instance\n"); 1000 s5p_mfc_deinit_hw(dev); 1001 timer_delete_sync(&dev->watchdog_timer); 1002 s5p_mfc_clock_off(dev); 1003 if (s5p_mfc_power_off(dev) < 0) 1004 mfc_err("Power off failed\n"); 1005 } else { 1006 mfc_debug(2, "Shutting down clock\n"); 1007 s5p_mfc_clock_off(dev); 1008 } 1009 } 1010 if (dev) 1011 dev->ctx[ctx->num] = NULL; 1012 s5p_mfc_dec_ctrls_delete(ctx); 1013 v4l2_fh_del(&ctx->fh, file); 1014 /* vdev is gone if dev is null */ 1015 if (dev) 1016 v4l2_fh_exit(&ctx->fh); 1017 kfree(ctx); 1018 mfc_debug_leave(); 1019 if (dev) 1020 mutex_unlock(&dev->mfc_mutex); 1021 1022 return 0; 1023 } 1024 1025 /* Poll */ 1026 static __poll_t s5p_mfc_poll(struct file *file, 1027 struct poll_table_struct *wait) 1028 { 1029 struct s5p_mfc_ctx *ctx = file_to_ctx(file); 1030 struct s5p_mfc_dev *dev = ctx->dev; 1031 struct vb2_queue *src_q, *dst_q; 1032 struct vb2_buffer *src_vb = NULL, *dst_vb = NULL; 1033 __poll_t rc = 0; 1034 unsigned long flags; 1035 1036 mutex_lock(&dev->mfc_mutex); 1037 src_q = &ctx->vq_src; 1038 dst_q = &ctx->vq_dst; 1039 /* 1040 * There has to be at least one buffer queued on each queued_list, which 1041 * means either in driver already or waiting for driver to claim it 1042 * and start processing. 1043 */ 1044 if ((!vb2_is_streaming(src_q) || list_empty(&src_q->queued_list)) && 1045 (!vb2_is_streaming(dst_q) || list_empty(&dst_q->queued_list))) { 1046 rc = EPOLLERR; 1047 goto end; 1048 } 1049 mutex_unlock(&dev->mfc_mutex); 1050 poll_wait(file, &ctx->fh.wait, wait); 1051 poll_wait(file, &src_q->done_wq, wait); 1052 poll_wait(file, &dst_q->done_wq, wait); 1053 mutex_lock(&dev->mfc_mutex); 1054 if (v4l2_event_pending(&ctx->fh)) 1055 rc |= EPOLLPRI; 1056 spin_lock_irqsave(&src_q->done_lock, flags); 1057 if (!list_empty(&src_q->done_list)) 1058 src_vb = list_first_entry(&src_q->done_list, struct vb2_buffer, 1059 done_entry); 1060 if (src_vb && (src_vb->state == VB2_BUF_STATE_DONE 1061 || src_vb->state == VB2_BUF_STATE_ERROR)) 1062 rc |= EPOLLOUT | EPOLLWRNORM; 1063 spin_unlock_irqrestore(&src_q->done_lock, flags); 1064 spin_lock_irqsave(&dst_q->done_lock, flags); 1065 if (!list_empty(&dst_q->done_list)) 1066 dst_vb = list_first_entry(&dst_q->done_list, struct vb2_buffer, 1067 done_entry); 1068 if (dst_vb && (dst_vb->state == VB2_BUF_STATE_DONE 1069 || dst_vb->state == VB2_BUF_STATE_ERROR)) 1070 rc |= EPOLLIN | EPOLLRDNORM; 1071 spin_unlock_irqrestore(&dst_q->done_lock, flags); 1072 end: 1073 mutex_unlock(&dev->mfc_mutex); 1074 return rc; 1075 } 1076 1077 /* Mmap */ 1078 static int s5p_mfc_mmap(struct file *file, struct vm_area_struct *vma) 1079 { 1080 struct s5p_mfc_ctx *ctx = file_to_ctx(file); 1081 unsigned long offset = vma->vm_pgoff << PAGE_SHIFT; 1082 int ret; 1083 1084 if (offset < DST_QUEUE_OFF_BASE) { 1085 mfc_debug(2, "mmapping source\n"); 1086 ret = vb2_mmap(&ctx->vq_src, vma); 1087 } else { /* capture */ 1088 mfc_debug(2, "mmapping destination\n"); 1089 vma->vm_pgoff -= (DST_QUEUE_OFF_BASE >> PAGE_SHIFT); 1090 ret = vb2_mmap(&ctx->vq_dst, vma); 1091 } 1092 return ret; 1093 } 1094 1095 /* v4l2 ops */ 1096 static const struct v4l2_file_operations s5p_mfc_fops = { 1097 .owner = THIS_MODULE, 1098 .open = s5p_mfc_open, 1099 .release = s5p_mfc_release, 1100 .poll = s5p_mfc_poll, 1101 .unlocked_ioctl = video_ioctl2, 1102 .mmap = s5p_mfc_mmap, 1103 }; 1104 1105 /* DMA memory related helper functions */ 1106 static void s5p_mfc_memdev_release(struct device *dev) 1107 { 1108 of_reserved_mem_device_release(dev); 1109 } 1110 1111 static struct device *s5p_mfc_alloc_memdev(struct device *dev, 1112 const char *name, unsigned int idx) 1113 { 1114 struct device *child; 1115 int ret; 1116 1117 child = devm_kzalloc(dev, sizeof(*child), GFP_KERNEL); 1118 if (!child) 1119 return NULL; 1120 1121 device_initialize(child); 1122 dev_set_name(child, "%s:%s", dev_name(dev), name); 1123 child->parent = dev; 1124 child->coherent_dma_mask = dev->coherent_dma_mask; 1125 child->dma_mask = dev->dma_mask; 1126 child->release = s5p_mfc_memdev_release; 1127 child->dma_parms = devm_kzalloc(dev, sizeof(*child->dma_parms), 1128 GFP_KERNEL); 1129 if (!child->dma_parms) 1130 goto err; 1131 1132 /* 1133 * The memdevs are not proper OF platform devices, so in order for them 1134 * to be treated as valid DMA masters we need a bit of a hack to force 1135 * them to inherit the MFC node's DMA configuration. 1136 */ 1137 of_dma_configure(child, dev->of_node, true); 1138 1139 if (device_add(child) == 0) { 1140 ret = of_reserved_mem_device_init_by_idx(child, dev->of_node, 1141 idx); 1142 if (ret == 0) 1143 return child; 1144 device_del(child); 1145 } 1146 err: 1147 put_device(child); 1148 return NULL; 1149 } 1150 1151 static int s5p_mfc_configure_2port_memory(struct s5p_mfc_dev *mfc_dev) 1152 { 1153 struct device *dev = &mfc_dev->plat_dev->dev; 1154 void *bank2_virt; 1155 dma_addr_t bank2_dma_addr; 1156 unsigned long align_size = 1 << MFC_BASE_ALIGN_ORDER; 1157 int ret; 1158 1159 /* 1160 * Create and initialize virtual devices for accessing 1161 * reserved memory regions. 1162 */ 1163 mfc_dev->mem_dev[BANK_L_CTX] = s5p_mfc_alloc_memdev(dev, "left", 1164 BANK_L_CTX); 1165 if (!mfc_dev->mem_dev[BANK_L_CTX]) 1166 return -ENODEV; 1167 mfc_dev->mem_dev[BANK_R_CTX] = s5p_mfc_alloc_memdev(dev, "right", 1168 BANK_R_CTX); 1169 if (!mfc_dev->mem_dev[BANK_R_CTX]) { 1170 device_unregister(mfc_dev->mem_dev[BANK_L_CTX]); 1171 return -ENODEV; 1172 } 1173 1174 /* Allocate memory for firmware and initialize both banks addresses */ 1175 ret = s5p_mfc_alloc_firmware(mfc_dev); 1176 if (ret) { 1177 device_unregister(mfc_dev->mem_dev[BANK_R_CTX]); 1178 device_unregister(mfc_dev->mem_dev[BANK_L_CTX]); 1179 return ret; 1180 } 1181 1182 mfc_dev->dma_base[BANK_L_CTX] = mfc_dev->fw_buf.dma; 1183 1184 bank2_virt = dma_alloc_coherent(mfc_dev->mem_dev[BANK_R_CTX], 1185 align_size, &bank2_dma_addr, GFP_KERNEL); 1186 if (!bank2_virt) { 1187 s5p_mfc_release_firmware(mfc_dev); 1188 device_unregister(mfc_dev->mem_dev[BANK_R_CTX]); 1189 device_unregister(mfc_dev->mem_dev[BANK_L_CTX]); 1190 return -ENOMEM; 1191 } 1192 1193 /* Valid buffers passed to MFC encoder with LAST_FRAME command 1194 * should not have address of bank2 - MFC will treat it as a null frame. 1195 * To avoid such situation we set bank2 address below the pool address. 1196 */ 1197 mfc_dev->dma_base[BANK_R_CTX] = bank2_dma_addr - align_size; 1198 1199 dma_free_coherent(mfc_dev->mem_dev[BANK_R_CTX], align_size, bank2_virt, 1200 bank2_dma_addr); 1201 1202 vb2_dma_contig_set_max_seg_size(mfc_dev->mem_dev[BANK_L_CTX], 1203 DMA_BIT_MASK(32)); 1204 vb2_dma_contig_set_max_seg_size(mfc_dev->mem_dev[BANK_R_CTX], 1205 DMA_BIT_MASK(32)); 1206 1207 return 0; 1208 } 1209 1210 static void s5p_mfc_unconfigure_2port_memory(struct s5p_mfc_dev *mfc_dev) 1211 { 1212 device_unregister(mfc_dev->mem_dev[BANK_L_CTX]); 1213 device_unregister(mfc_dev->mem_dev[BANK_R_CTX]); 1214 vb2_dma_contig_clear_max_seg_size(mfc_dev->mem_dev[BANK_L_CTX]); 1215 vb2_dma_contig_clear_max_seg_size(mfc_dev->mem_dev[BANK_R_CTX]); 1216 } 1217 1218 static int s5p_mfc_configure_common_memory(struct s5p_mfc_dev *mfc_dev) 1219 { 1220 struct device *dev = &mfc_dev->plat_dev->dev; 1221 unsigned long mem_size = SZ_4M; 1222 1223 if (IS_ENABLED(CONFIG_DMA_CMA) || exynos_is_iommu_available(dev)) 1224 mem_size = SZ_8M; 1225 1226 if (mfc_mem_size) 1227 mem_size = memparse(mfc_mem_size, NULL); 1228 1229 mfc_dev->mem_bitmap = bitmap_zalloc(mem_size >> PAGE_SHIFT, GFP_KERNEL); 1230 if (!mfc_dev->mem_bitmap) 1231 return -ENOMEM; 1232 1233 mfc_dev->mem_virt = dma_alloc_coherent(dev, mem_size, 1234 &mfc_dev->mem_base, GFP_KERNEL); 1235 if (!mfc_dev->mem_virt) { 1236 bitmap_free(mfc_dev->mem_bitmap); 1237 dev_err(dev, "failed to preallocate %ld MiB for the firmware and context buffers\n", 1238 (mem_size / SZ_1M)); 1239 return -ENOMEM; 1240 } 1241 mfc_dev->mem_size = mem_size; 1242 mfc_dev->dma_base[BANK_L_CTX] = mfc_dev->mem_base; 1243 mfc_dev->dma_base[BANK_R_CTX] = mfc_dev->mem_base; 1244 1245 /* 1246 * MFC hardware cannot handle 0 as a base address, so mark first 128K 1247 * as used (to keep required base alignment) and adjust base address 1248 */ 1249 if (mfc_dev->mem_base == (dma_addr_t)0) { 1250 unsigned int offset = 1 << MFC_BASE_ALIGN_ORDER; 1251 1252 bitmap_set(mfc_dev->mem_bitmap, 0, offset >> PAGE_SHIFT); 1253 mfc_dev->dma_base[BANK_L_CTX] += offset; 1254 mfc_dev->dma_base[BANK_R_CTX] += offset; 1255 } 1256 1257 /* Firmware allocation cannot fail in this case */ 1258 s5p_mfc_alloc_firmware(mfc_dev); 1259 1260 mfc_dev->mem_dev[BANK_L_CTX] = mfc_dev->mem_dev[BANK_R_CTX] = dev; 1261 vb2_dma_contig_set_max_seg_size(dev, DMA_BIT_MASK(32)); 1262 1263 dev_info(dev, "preallocated %ld MiB buffer for the firmware and context buffers\n", 1264 (mem_size / SZ_1M)); 1265 1266 return 0; 1267 } 1268 1269 static void s5p_mfc_unconfigure_common_memory(struct s5p_mfc_dev *mfc_dev) 1270 { 1271 struct device *dev = &mfc_dev->plat_dev->dev; 1272 1273 dma_free_coherent(dev, mfc_dev->mem_size, mfc_dev->mem_virt, 1274 mfc_dev->mem_base); 1275 bitmap_free(mfc_dev->mem_bitmap); 1276 vb2_dma_contig_clear_max_seg_size(dev); 1277 } 1278 1279 static int s5p_mfc_configure_dma_memory(struct s5p_mfc_dev *mfc_dev) 1280 { 1281 struct device *dev = &mfc_dev->plat_dev->dev; 1282 1283 if (exynos_is_iommu_available(dev) || !IS_TWOPORT(mfc_dev)) 1284 return s5p_mfc_configure_common_memory(mfc_dev); 1285 else 1286 return s5p_mfc_configure_2port_memory(mfc_dev); 1287 } 1288 1289 static void s5p_mfc_unconfigure_dma_memory(struct s5p_mfc_dev *mfc_dev) 1290 { 1291 struct device *dev = &mfc_dev->plat_dev->dev; 1292 1293 s5p_mfc_release_firmware(mfc_dev); 1294 if (exynos_is_iommu_available(dev) || !IS_TWOPORT(mfc_dev)) 1295 s5p_mfc_unconfigure_common_memory(mfc_dev); 1296 else 1297 s5p_mfc_unconfigure_2port_memory(mfc_dev); 1298 } 1299 1300 /* MFC probe function */ 1301 static int s5p_mfc_probe(struct platform_device *pdev) 1302 { 1303 struct s5p_mfc_dev *dev; 1304 struct video_device *vfd; 1305 int ret; 1306 1307 pr_debug("%s++\n", __func__); 1308 dev = devm_kzalloc(&pdev->dev, sizeof(*dev), GFP_KERNEL); 1309 if (!dev) 1310 return -ENOMEM; 1311 1312 spin_lock_init(&dev->irqlock); 1313 spin_lock_init(&dev->condlock); 1314 dev->plat_dev = pdev; 1315 if (!dev->plat_dev) { 1316 mfc_err("No platform data specified\n"); 1317 return -ENODEV; 1318 } 1319 1320 dev->variant = of_device_get_match_data(&pdev->dev); 1321 if (!dev->variant) { 1322 dev_err(&pdev->dev, "Failed to get device MFC hardware variant information\n"); 1323 return -ENOENT; 1324 } 1325 1326 dev->regs_base = devm_platform_ioremap_resource(pdev, 0); 1327 if (IS_ERR(dev->regs_base)) 1328 return PTR_ERR(dev->regs_base); 1329 1330 ret = platform_get_irq(pdev, 0); 1331 if (ret < 0) 1332 return ret; 1333 dev->irq = ret; 1334 ret = devm_request_irq(&pdev->dev, dev->irq, s5p_mfc_irq, 1335 0, pdev->name, dev); 1336 if (ret) { 1337 dev_err(&pdev->dev, "Failed to install irq (%d)\n", ret); 1338 return ret; 1339 } 1340 1341 ret = s5p_mfc_configure_dma_memory(dev); 1342 if (ret < 0) { 1343 dev_err(&pdev->dev, "failed to configure DMA memory\n"); 1344 return ret; 1345 } 1346 1347 ret = s5p_mfc_init_pm(dev); 1348 if (ret < 0) { 1349 dev_err(&pdev->dev, "failed to get mfc clock source\n"); 1350 goto err_dma; 1351 } 1352 1353 /* 1354 * Load fails if fs isn't mounted. Try loading anyway. 1355 * _open() will load it, it fails now. Ignore failure. 1356 */ 1357 s5p_mfc_load_firmware(dev); 1358 1359 mutex_init(&dev->mfc_mutex); 1360 init_waitqueue_head(&dev->queue); 1361 dev->hw_lock = 0; 1362 INIT_WORK(&dev->watchdog_work, s5p_mfc_watchdog_worker); 1363 atomic_set(&dev->watchdog_cnt, 0); 1364 timer_setup(&dev->watchdog_timer, s5p_mfc_watchdog, 0); 1365 1366 ret = v4l2_device_register(&pdev->dev, &dev->v4l2_dev); 1367 if (ret) 1368 goto err_v4l2_dev_reg; 1369 1370 /* decoder */ 1371 vfd = video_device_alloc(); 1372 if (!vfd) { 1373 v4l2_err(&dev->v4l2_dev, "Failed to allocate video device\n"); 1374 ret = -ENOMEM; 1375 goto err_dec_alloc; 1376 } 1377 vfd->fops = &s5p_mfc_fops; 1378 vfd->ioctl_ops = get_dec_v4l2_ioctl_ops(); 1379 vfd->release = video_device_release; 1380 vfd->lock = &dev->mfc_mutex; 1381 vfd->v4l2_dev = &dev->v4l2_dev; 1382 vfd->vfl_dir = VFL_DIR_M2M; 1383 vfd->device_caps = V4L2_CAP_VIDEO_M2M_MPLANE | V4L2_CAP_STREAMING; 1384 set_bit(V4L2_FL_QUIRK_INVERTED_CROP, &vfd->flags); 1385 snprintf(vfd->name, sizeof(vfd->name), "%s", S5P_MFC_DEC_NAME); 1386 dev->vfd_dec = vfd; 1387 video_set_drvdata(vfd, dev); 1388 1389 /* encoder */ 1390 vfd = video_device_alloc(); 1391 if (!vfd) { 1392 v4l2_err(&dev->v4l2_dev, "Failed to allocate video device\n"); 1393 ret = -ENOMEM; 1394 goto err_enc_alloc; 1395 } 1396 vfd->fops = &s5p_mfc_fops; 1397 vfd->ioctl_ops = get_enc_v4l2_ioctl_ops(); 1398 vfd->release = video_device_release; 1399 vfd->lock = &dev->mfc_mutex; 1400 vfd->v4l2_dev = &dev->v4l2_dev; 1401 vfd->vfl_dir = VFL_DIR_M2M; 1402 vfd->device_caps = V4L2_CAP_VIDEO_M2M_MPLANE | V4L2_CAP_STREAMING; 1403 snprintf(vfd->name, sizeof(vfd->name), "%s", S5P_MFC_ENC_NAME); 1404 dev->vfd_enc = vfd; 1405 video_set_drvdata(vfd, dev); 1406 platform_set_drvdata(pdev, dev); 1407 1408 /* Initialize HW ops and commands based on MFC version */ 1409 s5p_mfc_init_hw_ops(dev); 1410 s5p_mfc_init_hw_cmds(dev); 1411 s5p_mfc_init_regs(dev); 1412 1413 /* Register decoder and encoder */ 1414 ret = video_register_device(dev->vfd_dec, VFL_TYPE_VIDEO, 0); 1415 if (ret) { 1416 v4l2_err(&dev->v4l2_dev, "Failed to register video device\n"); 1417 goto err_dec_reg; 1418 } 1419 v4l2_info(&dev->v4l2_dev, 1420 "decoder registered as /dev/video%d\n", dev->vfd_dec->num); 1421 1422 ret = video_register_device(dev->vfd_enc, VFL_TYPE_VIDEO, 0); 1423 if (ret) { 1424 v4l2_err(&dev->v4l2_dev, "Failed to register video device\n"); 1425 goto err_enc_reg; 1426 } 1427 v4l2_info(&dev->v4l2_dev, 1428 "encoder registered as /dev/video%d\n", dev->vfd_enc->num); 1429 1430 pr_debug("%s--\n", __func__); 1431 return 0; 1432 1433 /* Deinit MFC if probe had failed */ 1434 err_enc_reg: 1435 video_unregister_device(dev->vfd_dec); 1436 dev->vfd_dec = NULL; 1437 err_dec_reg: 1438 video_device_release(dev->vfd_enc); 1439 err_enc_alloc: 1440 video_device_release(dev->vfd_dec); 1441 err_dec_alloc: 1442 v4l2_device_unregister(&dev->v4l2_dev); 1443 err_v4l2_dev_reg: 1444 s5p_mfc_final_pm(dev); 1445 err_dma: 1446 s5p_mfc_unconfigure_dma_memory(dev); 1447 1448 pr_debug("%s-- with error\n", __func__); 1449 return ret; 1450 1451 } 1452 1453 /* Remove the driver */ 1454 static void s5p_mfc_remove(struct platform_device *pdev) 1455 { 1456 struct s5p_mfc_dev *dev = platform_get_drvdata(pdev); 1457 struct s5p_mfc_ctx *ctx; 1458 int i; 1459 1460 v4l2_info(&dev->v4l2_dev, "Removing %s\n", pdev->name); 1461 1462 /* 1463 * Clear ctx dev pointer to avoid races between s5p_mfc_remove() 1464 * and s5p_mfc_release() and s5p_mfc_release() accessing ctx->dev 1465 * after s5p_mfc_remove() is run during unbind. 1466 */ 1467 mutex_lock(&dev->mfc_mutex); 1468 for (i = 0; i < MFC_NUM_CONTEXTS; i++) { 1469 ctx = dev->ctx[i]; 1470 if (!ctx) 1471 continue; 1472 /* clear ctx->dev */ 1473 ctx->dev = NULL; 1474 } 1475 mutex_unlock(&dev->mfc_mutex); 1476 1477 timer_delete_sync(&dev->watchdog_timer); 1478 flush_work(&dev->watchdog_work); 1479 1480 video_unregister_device(dev->vfd_enc); 1481 video_unregister_device(dev->vfd_dec); 1482 v4l2_device_unregister(&dev->v4l2_dev); 1483 s5p_mfc_unconfigure_dma_memory(dev); 1484 1485 s5p_mfc_final_pm(dev); 1486 } 1487 1488 #ifdef CONFIG_PM_SLEEP 1489 1490 static int s5p_mfc_suspend(struct device *dev) 1491 { 1492 struct s5p_mfc_dev *m_dev = dev_get_drvdata(dev); 1493 int ret; 1494 1495 if (m_dev->num_inst == 0) 1496 return 0; 1497 1498 if (test_and_set_bit(0, &m_dev->enter_suspend) != 0) { 1499 mfc_err("Error: going to suspend for a second time\n"); 1500 return -EIO; 1501 } 1502 1503 /* Check if we're processing then wait if it necessary. */ 1504 while (test_and_set_bit(0, &m_dev->hw_lock) != 0) { 1505 /* Try and lock the HW */ 1506 /* Wait on the interrupt waitqueue */ 1507 ret = wait_event_interruptible_timeout(m_dev->queue, 1508 m_dev->int_cond, msecs_to_jiffies(MFC_INT_TIMEOUT)); 1509 if (ret == 0) { 1510 mfc_err("Waiting for hardware to finish timed out\n"); 1511 clear_bit(0, &m_dev->enter_suspend); 1512 return -EIO; 1513 } 1514 } 1515 1516 ret = s5p_mfc_sleep(m_dev); 1517 if (ret) { 1518 clear_bit(0, &m_dev->enter_suspend); 1519 clear_bit(0, &m_dev->hw_lock); 1520 } 1521 return ret; 1522 } 1523 1524 static int s5p_mfc_resume(struct device *dev) 1525 { 1526 struct s5p_mfc_dev *m_dev = dev_get_drvdata(dev); 1527 1528 if (m_dev->num_inst == 0) 1529 return 0; 1530 return s5p_mfc_wakeup(m_dev); 1531 } 1532 #endif 1533 1534 /* Power management */ 1535 static const struct dev_pm_ops s5p_mfc_pm_ops = { 1536 SET_SYSTEM_SLEEP_PM_OPS(s5p_mfc_suspend, s5p_mfc_resume) 1537 }; 1538 1539 static const struct s5p_mfc_buf_size_v5 mfc_buf_size_v5 = { 1540 .h264_ctx = MFC_H264_CTX_BUF_SIZE, 1541 .non_h264_ctx = MFC_CTX_BUF_SIZE, 1542 .dsc = DESC_BUF_SIZE, 1543 .shm = SHARED_BUF_SIZE, 1544 }; 1545 1546 static const struct s5p_mfc_buf_size buf_size_v5 = { 1547 .fw = MAX_FW_SIZE, 1548 .cpb = MAX_CPB_SIZE, 1549 .priv = &mfc_buf_size_v5, 1550 }; 1551 1552 static const struct s5p_mfc_variant mfc_drvdata_v5 = { 1553 .version = MFC_VERSION, 1554 .version_bit = MFC_V5_BIT, 1555 .port_num = MFC_NUM_PORTS, 1556 .buf_size = &buf_size_v5, 1557 .fw_name[0] = "s5p-mfc.fw", 1558 .clk_names = {"mfc", "sclk_mfc"}, 1559 .num_clocks = 2, 1560 .use_clock_gating = true, 1561 }; 1562 1563 static const struct s5p_mfc_buf_size_v6 mfc_buf_size_v6 = { 1564 .dev_ctx = MFC_CTX_BUF_SIZE_V6, 1565 .h264_dec_ctx = MFC_H264_DEC_CTX_BUF_SIZE_V6, 1566 .other_dec_ctx = MFC_OTHER_DEC_CTX_BUF_SIZE_V6, 1567 .h264_enc_ctx = MFC_H264_ENC_CTX_BUF_SIZE_V6, 1568 .other_enc_ctx = MFC_OTHER_ENC_CTX_BUF_SIZE_V6, 1569 }; 1570 1571 static const struct s5p_mfc_buf_size buf_size_v6 = { 1572 .fw = MAX_FW_SIZE_V6, 1573 .cpb = MAX_CPB_SIZE_V6, 1574 .priv = &mfc_buf_size_v6, 1575 }; 1576 1577 static const struct s5p_mfc_variant mfc_drvdata_v6 = { 1578 .version = MFC_VERSION_V6, 1579 .version_bit = MFC_V6_BIT, 1580 .port_num = MFC_NUM_PORTS_V6, 1581 .buf_size = &buf_size_v6, 1582 .fw_name[0] = "s5p-mfc-v6.fw", 1583 /* 1584 * v6-v2 firmware contains bug fixes and interface change 1585 * for init buffer command 1586 */ 1587 .fw_name[1] = "s5p-mfc-v6-v2.fw", 1588 .clk_names = {"mfc"}, 1589 .num_clocks = 1, 1590 }; 1591 1592 static const struct s5p_mfc_buf_size_v6 mfc_buf_size_v7 = { 1593 .dev_ctx = MFC_CTX_BUF_SIZE_V7, 1594 .h264_dec_ctx = MFC_H264_DEC_CTX_BUF_SIZE_V7, 1595 .other_dec_ctx = MFC_OTHER_DEC_CTX_BUF_SIZE_V7, 1596 .h264_enc_ctx = MFC_H264_ENC_CTX_BUF_SIZE_V7, 1597 .other_enc_ctx = MFC_OTHER_ENC_CTX_BUF_SIZE_V7, 1598 }; 1599 1600 static const struct s5p_mfc_buf_size buf_size_v7 = { 1601 .fw = MAX_FW_SIZE_V7, 1602 .cpb = MAX_CPB_SIZE_V7, 1603 .priv = &mfc_buf_size_v7, 1604 }; 1605 1606 static const struct s5p_mfc_variant mfc_drvdata_v7 = { 1607 .version = MFC_VERSION_V7, 1608 .version_bit = MFC_V7_BIT, 1609 .port_num = MFC_NUM_PORTS_V7, 1610 .buf_size = &buf_size_v7, 1611 .fw_name[0] = "s5p-mfc-v7.fw", 1612 .clk_names = {"mfc"}, 1613 .num_clocks = 1, 1614 }; 1615 1616 static const struct s5p_mfc_variant mfc_drvdata_v7_3250 = { 1617 .version = MFC_VERSION_V7, 1618 .version_bit = MFC_V7_BIT, 1619 .port_num = MFC_NUM_PORTS_V7, 1620 .buf_size = &buf_size_v7, 1621 .fw_name[0] = "s5p-mfc-v7.fw", 1622 .clk_names = {"mfc", "sclk_mfc"}, 1623 .num_clocks = 2, 1624 }; 1625 1626 static const struct s5p_mfc_buf_size_v6 mfc_buf_size_v8 = { 1627 .dev_ctx = MFC_CTX_BUF_SIZE_V8, 1628 .h264_dec_ctx = MFC_H264_DEC_CTX_BUF_SIZE_V8, 1629 .other_dec_ctx = MFC_OTHER_DEC_CTX_BUF_SIZE_V8, 1630 .h264_enc_ctx = MFC_H264_ENC_CTX_BUF_SIZE_V8, 1631 .other_enc_ctx = MFC_OTHER_ENC_CTX_BUF_SIZE_V8, 1632 }; 1633 1634 static const struct s5p_mfc_buf_size buf_size_v8 = { 1635 .fw = MAX_FW_SIZE_V8, 1636 .cpb = MAX_CPB_SIZE_V8, 1637 .priv = &mfc_buf_size_v8, 1638 }; 1639 1640 static const struct s5p_mfc_variant mfc_drvdata_v8 = { 1641 .version = MFC_VERSION_V8, 1642 .version_bit = MFC_V8_BIT, 1643 .port_num = MFC_NUM_PORTS_V8, 1644 .buf_size = &buf_size_v8, 1645 .fw_name[0] = "s5p-mfc-v8.fw", 1646 .clk_names = {"mfc"}, 1647 .num_clocks = 1, 1648 }; 1649 1650 static const struct s5p_mfc_variant mfc_drvdata_v8_5433 = { 1651 .version = MFC_VERSION_V8, 1652 .version_bit = MFC_V8_BIT, 1653 .port_num = MFC_NUM_PORTS_V8, 1654 .buf_size = &buf_size_v8, 1655 .fw_name[0] = "s5p-mfc-v8.fw", 1656 .clk_names = {"pclk", "aclk", "aclk_xiu"}, 1657 .num_clocks = 3, 1658 }; 1659 1660 static const struct s5p_mfc_buf_size_v6 mfc_buf_size_v10 = { 1661 .dev_ctx = MFC_CTX_BUF_SIZE_V10, 1662 .h264_dec_ctx = MFC_H264_DEC_CTX_BUF_SIZE_V10, 1663 .other_dec_ctx = MFC_OTHER_DEC_CTX_BUF_SIZE_V10, 1664 .h264_enc_ctx = MFC_H264_ENC_CTX_BUF_SIZE_V10, 1665 .hevc_enc_ctx = MFC_HEVC_ENC_CTX_BUF_SIZE_V10, 1666 .other_enc_ctx = MFC_OTHER_ENC_CTX_BUF_SIZE_V10, 1667 }; 1668 1669 static const struct s5p_mfc_buf_size buf_size_v10 = { 1670 .fw = MAX_FW_SIZE_V10, 1671 .cpb = MAX_CPB_SIZE_V10, 1672 .priv = &mfc_buf_size_v10, 1673 }; 1674 1675 static const struct s5p_mfc_variant mfc_drvdata_v10 = { 1676 .version = MFC_VERSION_V10, 1677 .version_bit = MFC_V10_BIT, 1678 .port_num = MFC_NUM_PORTS_V10, 1679 .buf_size = &buf_size_v10, 1680 .fw_name[0] = "s5p-mfc-v10.fw", 1681 }; 1682 1683 static struct s5p_mfc_buf_size_v6 mfc_buf_size_v12 = { 1684 .dev_ctx = MFC_CTX_BUF_SIZE_V12, 1685 .h264_dec_ctx = MFC_H264_DEC_CTX_BUF_SIZE_V12, 1686 .other_dec_ctx = MFC_OTHER_DEC_CTX_BUF_SIZE_V12, 1687 .h264_enc_ctx = MFC_H264_ENC_CTX_BUF_SIZE_V12, 1688 .hevc_enc_ctx = MFC_HEVC_ENC_CTX_BUF_SIZE_V12, 1689 .other_enc_ctx = MFC_OTHER_ENC_CTX_BUF_SIZE_V12, 1690 }; 1691 1692 static struct s5p_mfc_buf_size buf_size_v12 = { 1693 .fw = MAX_FW_SIZE_V12, 1694 .cpb = MAX_CPB_SIZE_V12, 1695 .priv = &mfc_buf_size_v12, 1696 }; 1697 1698 static struct s5p_mfc_variant mfc_drvdata_v12 = { 1699 .version = MFC_VERSION_V12, 1700 .version_bit = MFC_V12_BIT, 1701 .port_num = MFC_NUM_PORTS_V12, 1702 .buf_size = &buf_size_v12, 1703 .fw_name[0] = "s5p-mfc-v12.fw", 1704 .clk_names = {"mfc"}, 1705 .num_clocks = 1, 1706 }; 1707 1708 static const struct of_device_id exynos_mfc_match[] = { 1709 { 1710 .compatible = "samsung,mfc-v5", 1711 .data = &mfc_drvdata_v5, 1712 }, { 1713 .compatible = "samsung,mfc-v6", 1714 .data = &mfc_drvdata_v6, 1715 }, { 1716 .compatible = "samsung,mfc-v7", 1717 .data = &mfc_drvdata_v7, 1718 }, { 1719 .compatible = "samsung,exynos3250-mfc", 1720 .data = &mfc_drvdata_v7_3250, 1721 }, { 1722 .compatible = "samsung,mfc-v8", 1723 .data = &mfc_drvdata_v8, 1724 }, { 1725 .compatible = "samsung,exynos5433-mfc", 1726 .data = &mfc_drvdata_v8_5433, 1727 }, { 1728 .compatible = "samsung,mfc-v10", 1729 .data = &mfc_drvdata_v10, 1730 }, { 1731 .compatible = "tesla,fsd-mfc", 1732 .data = &mfc_drvdata_v12, 1733 }, 1734 {}, 1735 }; 1736 MODULE_DEVICE_TABLE(of, exynos_mfc_match); 1737 1738 static struct platform_driver s5p_mfc_driver = { 1739 .probe = s5p_mfc_probe, 1740 .remove = s5p_mfc_remove, 1741 .driver = { 1742 .name = S5P_MFC_NAME, 1743 .pm = &s5p_mfc_pm_ops, 1744 .of_match_table = exynos_mfc_match, 1745 }, 1746 }; 1747 1748 module_platform_driver(s5p_mfc_driver); 1749 1750 MODULE_LICENSE("GPL"); 1751 MODULE_AUTHOR("Kamil Debski <k.debski@samsung.com>"); 1752 MODULE_DESCRIPTION("Samsung S5P Multi Format Codec V4L2 driver"); 1753 1754