1 // SPDX-License-Identifier: GPL-2.0-only 2 /* The industrial I/O core 3 * 4 * Copyright (c) 2008 Jonathan Cameron 5 * 6 * Handling of buffer allocation / resizing. 7 * 8 * Things to look at here. 9 * - Better memory allocation techniques? 10 * - Alternative access techniques? 11 */ 12 #include <linux/atomic.h> 13 #include <linux/anon_inodes.h> 14 #include <linux/cleanup.h> 15 #include <linux/kernel.h> 16 #include <linux/export.h> 17 #include <linux/device.h> 18 #include <linux/dma-buf.h> 19 #include <linux/dma-fence.h> 20 #include <linux/dma-resv.h> 21 #include <linux/file.h> 22 #include <linux/fs.h> 23 #include <linux/cdev.h> 24 #include <linux/slab.h> 25 #include <linux/mm.h> 26 #include <linux/poll.h> 27 #include <linux/sched/signal.h> 28 29 #include <linux/iio/iio.h> 30 #include <linux/iio/iio-opaque.h> 31 #include "iio_core.h" 32 #include "iio_core_trigger.h" 33 #include <linux/iio/sysfs.h> 34 #include <linux/iio/buffer.h> 35 #include <linux/iio/buffer_impl.h> 36 37 #define DMABUF_ENQUEUE_TIMEOUT_MS 5000 38 39 MODULE_IMPORT_NS("DMA_BUF"); 40 41 struct iio_dmabuf_priv { 42 struct list_head entry; 43 struct kref ref; 44 45 struct iio_buffer *buffer; 46 struct iio_dma_buffer_block *block; 47 48 u64 context; 49 50 /* Spinlock used for locking the dma_fence */ 51 spinlock_t lock; 52 53 struct dma_buf_attachment *attach; 54 struct sg_table *sgt; 55 enum dma_data_direction dir; 56 atomic_t seqno; 57 }; 58 59 struct iio_dma_fence { 60 struct dma_fence base; 61 struct iio_dmabuf_priv *priv; 62 struct work_struct work; 63 }; 64 65 static const char * const iio_endian_prefix[] = { 66 [IIO_BE] = "be", 67 [IIO_LE] = "le", 68 }; 69 70 static bool iio_buffer_is_active(struct iio_buffer *buf) 71 { 72 return !list_empty(&buf->buffer_list); 73 } 74 75 static size_t iio_buffer_data_available(struct iio_buffer *buf) 76 { 77 return buf->access->data_available(buf); 78 } 79 80 static int iio_buffer_flush_hwfifo(struct iio_dev *indio_dev, 81 struct iio_buffer *buf, size_t required) 82 { 83 if (!indio_dev->info->hwfifo_flush_to_buffer) 84 return -ENODEV; 85 86 return indio_dev->info->hwfifo_flush_to_buffer(indio_dev, required); 87 } 88 89 static bool iio_buffer_ready(struct iio_dev *indio_dev, struct iio_buffer *buf, 90 size_t to_wait, int to_flush) 91 { 92 size_t avail; 93 int flushed = 0; 94 95 /* wakeup if the device was unregistered */ 96 if (!indio_dev->info) 97 return true; 98 99 /* drain the buffer if it was disabled */ 100 if (!iio_buffer_is_active(buf)) { 101 to_wait = min_t(size_t, to_wait, 1); 102 to_flush = 0; 103 } 104 105 avail = iio_buffer_data_available(buf); 106 107 if (avail >= to_wait) { 108 /* force a flush for non-blocking reads */ 109 if (!to_wait && avail < to_flush) 110 iio_buffer_flush_hwfifo(indio_dev, buf, 111 to_flush - avail); 112 return true; 113 } 114 115 if (to_flush) 116 flushed = iio_buffer_flush_hwfifo(indio_dev, buf, 117 to_wait - avail); 118 if (flushed <= 0) 119 return false; 120 121 if (avail + flushed >= to_wait) 122 return true; 123 124 return false; 125 } 126 127 /** 128 * iio_buffer_read() - chrdev read for buffer access 129 * @filp: File structure pointer for the char device 130 * @buf: Destination buffer for iio buffer read 131 * @n: First n bytes to read 132 * @f_ps: Long offset provided by the user as a seek position 133 * 134 * This function relies on all buffer implementations having an 135 * iio_buffer as their first element. 136 * 137 * Return: negative values corresponding to error codes or ret != 0 138 * for ending the reading activity 139 **/ 140 static ssize_t iio_buffer_read(struct file *filp, char __user *buf, 141 size_t n, loff_t *f_ps) 142 { 143 struct iio_dev_buffer_pair *ib = filp->private_data; 144 struct iio_buffer *rb = ib->buffer; 145 struct iio_dev *indio_dev = ib->indio_dev; 146 DEFINE_WAIT_FUNC(wait, woken_wake_function); 147 size_t datum_size; 148 size_t to_wait; 149 int ret = 0; 150 151 if (!indio_dev->info) 152 return -ENODEV; 153 154 if (!rb || !rb->access->read) 155 return -EINVAL; 156 157 if (rb->direction != IIO_BUFFER_DIRECTION_IN) 158 return -EPERM; 159 160 datum_size = rb->bytes_per_datum; 161 162 /* 163 * If datum_size is 0 there will never be anything to read from the 164 * buffer, so signal end of file now. 165 */ 166 if (!datum_size) 167 return 0; 168 169 if (filp->f_flags & O_NONBLOCK) 170 to_wait = 0; 171 else 172 to_wait = min_t(size_t, n / datum_size, rb->watermark); 173 174 add_wait_queue(&rb->pollq, &wait); 175 do { 176 if (!indio_dev->info) { 177 ret = -ENODEV; 178 break; 179 } 180 181 if (!iio_buffer_ready(indio_dev, rb, to_wait, n / datum_size)) { 182 if (signal_pending(current)) { 183 ret = -ERESTARTSYS; 184 break; 185 } 186 187 wait_woken(&wait, TASK_INTERRUPTIBLE, 188 MAX_SCHEDULE_TIMEOUT); 189 continue; 190 } 191 192 ret = rb->access->read(rb, n, buf); 193 if (ret == 0 && (filp->f_flags & O_NONBLOCK)) 194 ret = -EAGAIN; 195 } while (ret == 0); 196 remove_wait_queue(&rb->pollq, &wait); 197 198 return ret; 199 } 200 201 static size_t iio_buffer_space_available(struct iio_buffer *buf) 202 { 203 if (buf->access->space_available) 204 return buf->access->space_available(buf); 205 206 return SIZE_MAX; 207 } 208 209 static ssize_t iio_buffer_write(struct file *filp, const char __user *buf, 210 size_t n, loff_t *f_ps) 211 { 212 struct iio_dev_buffer_pair *ib = filp->private_data; 213 struct iio_buffer *rb = ib->buffer; 214 struct iio_dev *indio_dev = ib->indio_dev; 215 DEFINE_WAIT_FUNC(wait, woken_wake_function); 216 int ret = 0; 217 size_t written; 218 219 if (!indio_dev->info) 220 return -ENODEV; 221 222 if (!rb || !rb->access->write) 223 return -EINVAL; 224 225 if (rb->direction != IIO_BUFFER_DIRECTION_OUT) 226 return -EPERM; 227 228 written = 0; 229 add_wait_queue(&rb->pollq, &wait); 230 do { 231 if (!indio_dev->info) { 232 ret = -ENODEV; 233 break; 234 } 235 236 if (!iio_buffer_space_available(rb)) { 237 if (signal_pending(current)) { 238 ret = -ERESTARTSYS; 239 break; 240 } 241 242 if (filp->f_flags & O_NONBLOCK) { 243 if (!written) 244 ret = -EAGAIN; 245 break; 246 } 247 248 wait_woken(&wait, TASK_INTERRUPTIBLE, 249 MAX_SCHEDULE_TIMEOUT); 250 continue; 251 } 252 253 ret = rb->access->write(rb, n - written, buf + written); 254 if (ret < 0) 255 break; 256 257 written += ret; 258 259 } while (written != n); 260 remove_wait_queue(&rb->pollq, &wait); 261 262 return ret < 0 ? ret : written; 263 } 264 265 /** 266 * iio_buffer_poll() - poll the buffer to find out if it has data 267 * @filp: File structure pointer for device access 268 * @wait: Poll table structure pointer for which the driver adds 269 * a wait queue 270 * 271 * Return: (EPOLLIN | EPOLLRDNORM) if data is available for reading 272 * or 0 for other cases 273 */ 274 static __poll_t iio_buffer_poll(struct file *filp, 275 struct poll_table_struct *wait) 276 { 277 struct iio_dev_buffer_pair *ib = filp->private_data; 278 struct iio_buffer *rb = ib->buffer; 279 struct iio_dev *indio_dev = ib->indio_dev; 280 281 if (!indio_dev->info || !rb) 282 return 0; 283 284 poll_wait(filp, &rb->pollq, wait); 285 286 switch (rb->direction) { 287 case IIO_BUFFER_DIRECTION_IN: 288 if (iio_buffer_ready(indio_dev, rb, rb->watermark, 0)) 289 return EPOLLIN | EPOLLRDNORM; 290 break; 291 case IIO_BUFFER_DIRECTION_OUT: 292 if (iio_buffer_space_available(rb)) 293 return EPOLLOUT | EPOLLWRNORM; 294 break; 295 } 296 297 return 0; 298 } 299 300 ssize_t iio_buffer_read_wrapper(struct file *filp, char __user *buf, 301 size_t n, loff_t *f_ps) 302 { 303 struct iio_dev_buffer_pair *ib = filp->private_data; 304 struct iio_buffer *rb = ib->buffer; 305 306 /* check if buffer was opened through new API */ 307 if (test_bit(IIO_BUSY_BIT_POS, &rb->flags)) 308 return -EBUSY; 309 310 return iio_buffer_read(filp, buf, n, f_ps); 311 } 312 313 ssize_t iio_buffer_write_wrapper(struct file *filp, const char __user *buf, 314 size_t n, loff_t *f_ps) 315 { 316 struct iio_dev_buffer_pair *ib = filp->private_data; 317 struct iio_buffer *rb = ib->buffer; 318 319 /* check if buffer was opened through new API */ 320 if (test_bit(IIO_BUSY_BIT_POS, &rb->flags)) 321 return -EBUSY; 322 323 return iio_buffer_write(filp, buf, n, f_ps); 324 } 325 326 __poll_t iio_buffer_poll_wrapper(struct file *filp, 327 struct poll_table_struct *wait) 328 { 329 struct iio_dev_buffer_pair *ib = filp->private_data; 330 struct iio_buffer *rb = ib->buffer; 331 332 /* check if buffer was opened through new API */ 333 if (test_bit(IIO_BUSY_BIT_POS, &rb->flags)) 334 return 0; 335 336 return iio_buffer_poll(filp, wait); 337 } 338 339 /** 340 * iio_buffer_wakeup_poll - Wakes up the buffer waitqueue 341 * @indio_dev: The IIO device 342 * 343 * Wakes up the event waitqueue used for poll(). Should usually 344 * be called when the device is unregistered. 345 */ 346 void iio_buffer_wakeup_poll(struct iio_dev *indio_dev) 347 { 348 struct iio_dev_opaque *iio_dev_opaque = to_iio_dev_opaque(indio_dev); 349 struct iio_buffer *buffer; 350 unsigned int i; 351 352 for (i = 0; i < iio_dev_opaque->attached_buffers_cnt; i++) { 353 buffer = iio_dev_opaque->attached_buffers[i]; 354 wake_up(&buffer->pollq); 355 } 356 } 357 358 int iio_pop_from_buffer(struct iio_buffer *buffer, void *data) 359 { 360 if (!buffer || !buffer->access || !buffer->access->remove_from) 361 return -EINVAL; 362 363 return buffer->access->remove_from(buffer, data); 364 } 365 EXPORT_SYMBOL_GPL(iio_pop_from_buffer); 366 367 void iio_buffer_init(struct iio_buffer *buffer) 368 { 369 INIT_LIST_HEAD(&buffer->demux_list); 370 INIT_LIST_HEAD(&buffer->buffer_list); 371 INIT_LIST_HEAD(&buffer->dmabufs); 372 mutex_init(&buffer->dmabufs_mutex); 373 init_waitqueue_head(&buffer->pollq); 374 kref_init(&buffer->ref); 375 if (!buffer->watermark) 376 buffer->watermark = 1; 377 } 378 EXPORT_SYMBOL(iio_buffer_init); 379 380 void iio_device_detach_buffers(struct iio_dev *indio_dev) 381 { 382 struct iio_dev_opaque *iio_dev_opaque = to_iio_dev_opaque(indio_dev); 383 struct iio_buffer *buffer; 384 unsigned int i; 385 386 for (i = 0; i < iio_dev_opaque->attached_buffers_cnt; i++) { 387 buffer = iio_dev_opaque->attached_buffers[i]; 388 iio_buffer_put(buffer); 389 } 390 391 kfree(iio_dev_opaque->attached_buffers); 392 } 393 394 static ssize_t iio_show_scan_index(struct device *dev, 395 struct device_attribute *attr, 396 char *buf) 397 { 398 return sysfs_emit(buf, "%u\n", to_iio_dev_attr(attr)->c->scan_index); 399 } 400 401 static ssize_t iio_show_fixed_type(struct device *dev, 402 struct device_attribute *attr, 403 char *buf) 404 { 405 struct iio_dev *indio_dev = dev_to_iio_dev(dev); 406 struct iio_dev_attr *this_attr = to_iio_dev_attr(attr); 407 const struct iio_scan_type *scan_type; 408 u8 type; 409 410 scan_type = iio_get_current_scan_type(indio_dev, this_attr->c); 411 if (IS_ERR(scan_type)) 412 return PTR_ERR(scan_type); 413 414 type = scan_type->endianness; 415 416 if (type == IIO_CPU) { 417 #ifdef __LITTLE_ENDIAN 418 type = IIO_LE; 419 #else 420 type = IIO_BE; 421 #endif 422 } 423 if (scan_type->repeat > 1) 424 return sysfs_emit(buf, "%s:%c%d/%dX%d>>%u\n", 425 iio_endian_prefix[type], 426 scan_type->sign, 427 scan_type->realbits, 428 scan_type->storagebits, 429 scan_type->repeat, 430 scan_type->shift); 431 else 432 return sysfs_emit(buf, "%s:%c%d/%d>>%u\n", 433 iio_endian_prefix[type], 434 scan_type->sign, 435 scan_type->realbits, 436 scan_type->storagebits, 437 scan_type->shift); 438 } 439 440 static ssize_t iio_scan_el_show(struct device *dev, 441 struct device_attribute *attr, 442 char *buf) 443 { 444 int ret; 445 struct iio_buffer *buffer = to_iio_dev_attr(attr)->buffer; 446 447 /* Ensure ret is 0 or 1. */ 448 ret = !!test_bit(to_iio_dev_attr(attr)->address, 449 buffer->scan_mask); 450 451 return sysfs_emit(buf, "%d\n", ret); 452 } 453 454 /* Note NULL used as error indicator as it doesn't make sense. */ 455 static const unsigned long *iio_scan_mask_match(const unsigned long *av_masks, 456 unsigned int masklength, 457 const unsigned long *mask, 458 bool strict) 459 { 460 if (bitmap_empty(mask, masklength)) 461 return NULL; 462 /* 463 * The condition here do not handle multi-long masks correctly. 464 * It only checks the first long to be zero, and will use such mask 465 * as a terminator even if there was bits set after the first long. 466 * 467 * Correct check would require using: 468 * while (!bitmap_empty(av_masks, masklength)) 469 * instead. This is potentially hazardous because the 470 * avaliable_scan_masks is a zero terminated array of longs - and 471 * using the proper bitmap_empty() check for multi-long wide masks 472 * would require the array to be terminated with multiple zero longs - 473 * which is not such an usual pattern. 474 * 475 * As writing of this no multi-long wide masks were found in-tree, so 476 * the simple while (*av_masks) check is working. 477 */ 478 while (*av_masks) { 479 if (strict) { 480 if (bitmap_equal(mask, av_masks, masklength)) 481 return av_masks; 482 } else { 483 if (bitmap_subset(mask, av_masks, masklength)) 484 return av_masks; 485 } 486 av_masks += BITS_TO_LONGS(masklength); 487 } 488 return NULL; 489 } 490 491 static bool iio_validate_scan_mask(struct iio_dev *indio_dev, 492 const unsigned long *mask) 493 { 494 if (!indio_dev->setup_ops->validate_scan_mask) 495 return true; 496 497 return indio_dev->setup_ops->validate_scan_mask(indio_dev, mask); 498 } 499 500 /** 501 * iio_scan_mask_set() - set particular bit in the scan mask 502 * @indio_dev: the iio device 503 * @buffer: the buffer whose scan mask we are interested in 504 * @bit: the bit to be set. 505 * 506 * Note that at this point we have no way of knowing what other 507 * buffers might request, hence this code only verifies that the 508 * individual buffers request is plausible. 509 */ 510 static int iio_scan_mask_set(struct iio_dev *indio_dev, 511 struct iio_buffer *buffer, int bit) 512 { 513 unsigned int masklength = iio_get_masklength(indio_dev); 514 const unsigned long *mask; 515 unsigned long *trialmask; 516 517 if (!masklength) { 518 WARN(1, "Trying to set scanmask prior to registering buffer\n"); 519 return -EINVAL; 520 } 521 522 trialmask = bitmap_alloc(masklength, GFP_KERNEL); 523 if (!trialmask) 524 return -ENOMEM; 525 bitmap_copy(trialmask, buffer->scan_mask, masklength); 526 set_bit(bit, trialmask); 527 528 if (!iio_validate_scan_mask(indio_dev, trialmask)) 529 goto err_invalid_mask; 530 531 if (indio_dev->available_scan_masks) { 532 mask = iio_scan_mask_match(indio_dev->available_scan_masks, 533 masklength, trialmask, false); 534 if (!mask) 535 goto err_invalid_mask; 536 } 537 bitmap_copy(buffer->scan_mask, trialmask, masklength); 538 539 bitmap_free(trialmask); 540 541 return 0; 542 543 err_invalid_mask: 544 bitmap_free(trialmask); 545 return -EINVAL; 546 } 547 548 static int iio_scan_mask_clear(struct iio_buffer *buffer, int bit) 549 { 550 clear_bit(bit, buffer->scan_mask); 551 return 0; 552 } 553 554 static int iio_scan_mask_query(struct iio_dev *indio_dev, 555 struct iio_buffer *buffer, int bit) 556 { 557 if (bit > iio_get_masklength(indio_dev)) 558 return -EINVAL; 559 560 if (!buffer->scan_mask) 561 return 0; 562 563 /* Ensure return value is 0 or 1. */ 564 return !!test_bit(bit, buffer->scan_mask); 565 }; 566 567 static ssize_t iio_scan_el_store(struct device *dev, 568 struct device_attribute *attr, 569 const char *buf, 570 size_t len) 571 { 572 int ret; 573 bool state; 574 struct iio_dev *indio_dev = dev_to_iio_dev(dev); 575 struct iio_dev_opaque *iio_dev_opaque = to_iio_dev_opaque(indio_dev); 576 struct iio_dev_attr *this_attr = to_iio_dev_attr(attr); 577 struct iio_buffer *buffer = this_attr->buffer; 578 579 ret = kstrtobool(buf, &state); 580 if (ret < 0) 581 return ret; 582 583 guard(mutex)(&iio_dev_opaque->mlock); 584 if (iio_buffer_is_active(buffer)) 585 return -EBUSY; 586 587 ret = iio_scan_mask_query(indio_dev, buffer, this_attr->address); 588 if (ret < 0) 589 return ret; 590 591 if (state && ret) 592 return len; 593 594 if (state) 595 ret = iio_scan_mask_set(indio_dev, buffer, this_attr->address); 596 else 597 ret = iio_scan_mask_clear(buffer, this_attr->address); 598 if (ret) 599 return ret; 600 601 return len; 602 } 603 604 static ssize_t iio_scan_el_ts_show(struct device *dev, 605 struct device_attribute *attr, 606 char *buf) 607 { 608 struct iio_buffer *buffer = to_iio_dev_attr(attr)->buffer; 609 610 return sysfs_emit(buf, "%d\n", buffer->scan_timestamp); 611 } 612 613 static ssize_t iio_scan_el_ts_store(struct device *dev, 614 struct device_attribute *attr, 615 const char *buf, 616 size_t len) 617 { 618 int ret; 619 struct iio_dev *indio_dev = dev_to_iio_dev(dev); 620 struct iio_dev_opaque *iio_dev_opaque = to_iio_dev_opaque(indio_dev); 621 struct iio_buffer *buffer = to_iio_dev_attr(attr)->buffer; 622 bool state; 623 624 ret = kstrtobool(buf, &state); 625 if (ret < 0) 626 return ret; 627 628 guard(mutex)(&iio_dev_opaque->mlock); 629 if (iio_buffer_is_active(buffer)) 630 return -EBUSY; 631 632 buffer->scan_timestamp = state; 633 634 return len; 635 } 636 637 static int iio_buffer_add_channel_sysfs(struct iio_dev *indio_dev, 638 struct iio_buffer *buffer, 639 const struct iio_chan_spec *chan) 640 { 641 int ret, attrcount = 0; 642 643 ret = __iio_add_chan_devattr("index", 644 chan, 645 &iio_show_scan_index, 646 NULL, 647 0, 648 IIO_SEPARATE, 649 &indio_dev->dev, 650 buffer, 651 &buffer->buffer_attr_list); 652 if (ret) 653 return ret; 654 attrcount++; 655 ret = __iio_add_chan_devattr("type", 656 chan, 657 &iio_show_fixed_type, 658 NULL, 659 0, 660 IIO_SEPARATE, 661 &indio_dev->dev, 662 buffer, 663 &buffer->buffer_attr_list); 664 if (ret) 665 return ret; 666 attrcount++; 667 if (chan->type != IIO_TIMESTAMP) 668 ret = __iio_add_chan_devattr("en", 669 chan, 670 &iio_scan_el_show, 671 &iio_scan_el_store, 672 chan->scan_index, 673 IIO_SEPARATE, 674 &indio_dev->dev, 675 buffer, 676 &buffer->buffer_attr_list); 677 else 678 ret = __iio_add_chan_devattr("en", 679 chan, 680 &iio_scan_el_ts_show, 681 &iio_scan_el_ts_store, 682 chan->scan_index, 683 IIO_SEPARATE, 684 &indio_dev->dev, 685 buffer, 686 &buffer->buffer_attr_list); 687 if (ret) 688 return ret; 689 attrcount++; 690 ret = attrcount; 691 return ret; 692 } 693 694 static ssize_t length_show(struct device *dev, struct device_attribute *attr, 695 char *buf) 696 { 697 struct iio_buffer *buffer = to_iio_dev_attr(attr)->buffer; 698 699 return sysfs_emit(buf, "%d\n", buffer->length); 700 } 701 702 static ssize_t length_store(struct device *dev, struct device_attribute *attr, 703 const char *buf, size_t len) 704 { 705 struct iio_dev *indio_dev = dev_to_iio_dev(dev); 706 struct iio_dev_opaque *iio_dev_opaque = to_iio_dev_opaque(indio_dev); 707 struct iio_buffer *buffer = to_iio_dev_attr(attr)->buffer; 708 unsigned int val; 709 int ret; 710 711 ret = kstrtouint(buf, 10, &val); 712 if (ret) 713 return ret; 714 715 if (val == buffer->length) 716 return len; 717 718 guard(mutex)(&iio_dev_opaque->mlock); 719 if (iio_buffer_is_active(buffer)) 720 return -EBUSY; 721 722 buffer->access->set_length(buffer, val); 723 724 if (buffer->length && buffer->length < buffer->watermark) 725 buffer->watermark = buffer->length; 726 727 return len; 728 } 729 730 static ssize_t enable_show(struct device *dev, struct device_attribute *attr, 731 char *buf) 732 { 733 struct iio_buffer *buffer = to_iio_dev_attr(attr)->buffer; 734 735 return sysfs_emit(buf, "%d\n", iio_buffer_is_active(buffer)); 736 } 737 738 static int iio_storage_bytes_for_si(struct iio_dev *indio_dev, 739 unsigned int scan_index) 740 { 741 const struct iio_chan_spec *ch; 742 const struct iio_scan_type *scan_type; 743 unsigned int bytes; 744 745 ch = iio_find_channel_from_si(indio_dev, scan_index); 746 scan_type = iio_get_current_scan_type(indio_dev, ch); 747 if (IS_ERR(scan_type)) 748 return PTR_ERR(scan_type); 749 750 bytes = scan_type->storagebits / 8; 751 752 if (scan_type->repeat > 1) 753 bytes *= scan_type->repeat; 754 755 return bytes; 756 } 757 758 static int iio_storage_bytes_for_timestamp(struct iio_dev *indio_dev) 759 { 760 struct iio_dev_opaque *iio_dev_opaque = to_iio_dev_opaque(indio_dev); 761 762 return iio_storage_bytes_for_si(indio_dev, 763 iio_dev_opaque->scan_index_timestamp); 764 } 765 766 static int iio_compute_scan_bytes(struct iio_dev *indio_dev, 767 const unsigned long *mask, bool timestamp) 768 { 769 unsigned int bytes = 0; 770 int length, i, largest = 0; 771 772 /* How much space will the demuxed element take? */ 773 for_each_set_bit(i, mask, iio_get_masklength(indio_dev)) { 774 length = iio_storage_bytes_for_si(indio_dev, i); 775 if (length < 0) 776 return length; 777 778 bytes = ALIGN(bytes, length); 779 bytes += length; 780 largest = max(largest, length); 781 } 782 783 if (timestamp) { 784 length = iio_storage_bytes_for_timestamp(indio_dev); 785 if (length < 0) 786 return length; 787 788 bytes = ALIGN(bytes, length); 789 bytes += length; 790 largest = max(largest, length); 791 } 792 793 bytes = ALIGN(bytes, largest); 794 return bytes; 795 } 796 797 static void iio_buffer_activate(struct iio_dev *indio_dev, 798 struct iio_buffer *buffer) 799 { 800 struct iio_dev_opaque *iio_dev_opaque = to_iio_dev_opaque(indio_dev); 801 802 iio_buffer_get(buffer); 803 list_add(&buffer->buffer_list, &iio_dev_opaque->buffer_list); 804 } 805 806 static void iio_buffer_deactivate(struct iio_buffer *buffer) 807 { 808 list_del_init(&buffer->buffer_list); 809 wake_up_interruptible(&buffer->pollq); 810 iio_buffer_put(buffer); 811 } 812 813 static void iio_buffer_deactivate_all(struct iio_dev *indio_dev) 814 { 815 struct iio_dev_opaque *iio_dev_opaque = to_iio_dev_opaque(indio_dev); 816 struct iio_buffer *buffer, *_buffer; 817 818 list_for_each_entry_safe(buffer, _buffer, 819 &iio_dev_opaque->buffer_list, buffer_list) 820 iio_buffer_deactivate(buffer); 821 } 822 823 static int iio_buffer_enable(struct iio_buffer *buffer, 824 struct iio_dev *indio_dev) 825 { 826 if (!buffer->access->enable) 827 return 0; 828 return buffer->access->enable(buffer, indio_dev); 829 } 830 831 static int iio_buffer_disable(struct iio_buffer *buffer, 832 struct iio_dev *indio_dev) 833 { 834 if (!buffer->access->disable) 835 return 0; 836 return buffer->access->disable(buffer, indio_dev); 837 } 838 839 static void iio_buffer_update_bytes_per_datum(struct iio_dev *indio_dev, 840 struct iio_buffer *buffer) 841 { 842 unsigned int bytes; 843 844 if (!buffer->access->set_bytes_per_datum) 845 return; 846 847 bytes = iio_compute_scan_bytes(indio_dev, buffer->scan_mask, 848 buffer->scan_timestamp); 849 850 buffer->access->set_bytes_per_datum(buffer, bytes); 851 } 852 853 static int iio_buffer_request_update(struct iio_dev *indio_dev, 854 struct iio_buffer *buffer) 855 { 856 int ret; 857 858 iio_buffer_update_bytes_per_datum(indio_dev, buffer); 859 if (buffer->access->request_update) { 860 ret = buffer->access->request_update(buffer); 861 if (ret) { 862 dev_dbg(&indio_dev->dev, 863 "Buffer not started: buffer parameter update failed (%d)\n", 864 ret); 865 return ret; 866 } 867 } 868 869 return 0; 870 } 871 872 static void iio_free_scan_mask(struct iio_dev *indio_dev, 873 const unsigned long *mask) 874 { 875 /* If the mask is dynamically allocated free it, otherwise do nothing */ 876 if (!indio_dev->available_scan_masks) 877 bitmap_free(mask); 878 } 879 880 struct iio_device_config { 881 unsigned int mode; 882 unsigned int watermark; 883 const unsigned long *scan_mask; 884 unsigned int scan_bytes; 885 bool scan_timestamp; 886 }; 887 888 static int iio_verify_update(struct iio_dev *indio_dev, 889 struct iio_buffer *insert_buffer, 890 struct iio_buffer *remove_buffer, 891 struct iio_device_config *config) 892 { 893 struct iio_dev_opaque *iio_dev_opaque = to_iio_dev_opaque(indio_dev); 894 unsigned int masklength = iio_get_masklength(indio_dev); 895 unsigned long *compound_mask; 896 const unsigned long *scan_mask; 897 bool strict_scanmask = false; 898 struct iio_buffer *buffer; 899 bool scan_timestamp; 900 unsigned int modes; 901 902 if (insert_buffer && 903 bitmap_empty(insert_buffer->scan_mask, masklength)) { 904 dev_dbg(&indio_dev->dev, 905 "At least one scan element must be enabled first\n"); 906 return -EINVAL; 907 } 908 909 memset(config, 0, sizeof(*config)); 910 config->watermark = ~0; 911 912 /* 913 * If there is just one buffer and we are removing it there is nothing 914 * to verify. 915 */ 916 if (remove_buffer && !insert_buffer && 917 list_is_singular(&iio_dev_opaque->buffer_list)) 918 return 0; 919 920 modes = indio_dev->modes; 921 922 list_for_each_entry(buffer, &iio_dev_opaque->buffer_list, buffer_list) { 923 if (buffer == remove_buffer) 924 continue; 925 modes &= buffer->access->modes; 926 config->watermark = min(config->watermark, buffer->watermark); 927 } 928 929 if (insert_buffer) { 930 modes &= insert_buffer->access->modes; 931 config->watermark = min(config->watermark, 932 insert_buffer->watermark); 933 } 934 935 /* Definitely possible for devices to support both of these. */ 936 if ((modes & INDIO_BUFFER_TRIGGERED) && indio_dev->trig) { 937 config->mode = INDIO_BUFFER_TRIGGERED; 938 } else if (modes & INDIO_BUFFER_HARDWARE) { 939 /* 940 * Keep things simple for now and only allow a single buffer to 941 * be connected in hardware mode. 942 */ 943 if (insert_buffer && !list_empty(&iio_dev_opaque->buffer_list)) 944 return -EINVAL; 945 config->mode = INDIO_BUFFER_HARDWARE; 946 strict_scanmask = true; 947 } else if (modes & INDIO_BUFFER_SOFTWARE) { 948 config->mode = INDIO_BUFFER_SOFTWARE; 949 } else { 950 /* Can only occur on first buffer */ 951 if (indio_dev->modes & INDIO_BUFFER_TRIGGERED) 952 dev_dbg(&indio_dev->dev, "Buffer not started: no trigger\n"); 953 return -EINVAL; 954 } 955 956 /* What scan mask do we actually have? */ 957 compound_mask = bitmap_zalloc(masklength, GFP_KERNEL); 958 if (!compound_mask) 959 return -ENOMEM; 960 961 scan_timestamp = false; 962 963 list_for_each_entry(buffer, &iio_dev_opaque->buffer_list, buffer_list) { 964 if (buffer == remove_buffer) 965 continue; 966 bitmap_or(compound_mask, compound_mask, buffer->scan_mask, 967 masklength); 968 scan_timestamp |= buffer->scan_timestamp; 969 } 970 971 if (insert_buffer) { 972 bitmap_or(compound_mask, compound_mask, 973 insert_buffer->scan_mask, masklength); 974 scan_timestamp |= insert_buffer->scan_timestamp; 975 } 976 977 if (indio_dev->available_scan_masks) { 978 scan_mask = iio_scan_mask_match(indio_dev->available_scan_masks, 979 masklength, compound_mask, 980 strict_scanmask); 981 bitmap_free(compound_mask); 982 if (!scan_mask) 983 return -EINVAL; 984 } else { 985 scan_mask = compound_mask; 986 } 987 988 config->scan_bytes = iio_compute_scan_bytes(indio_dev, 989 scan_mask, scan_timestamp); 990 config->scan_mask = scan_mask; 991 config->scan_timestamp = scan_timestamp; 992 993 return 0; 994 } 995 996 /** 997 * struct iio_demux_table - table describing demux memcpy ops 998 * @from: index to copy from 999 * @to: index to copy to 1000 * @length: how many bytes to copy 1001 * @l: list head used for management 1002 */ 1003 struct iio_demux_table { 1004 unsigned int from; 1005 unsigned int to; 1006 unsigned int length; 1007 struct list_head l; 1008 }; 1009 1010 static void iio_buffer_demux_free(struct iio_buffer *buffer) 1011 { 1012 struct iio_demux_table *p, *q; 1013 1014 list_for_each_entry_safe(p, q, &buffer->demux_list, l) { 1015 list_del(&p->l); 1016 kfree(p); 1017 } 1018 } 1019 1020 static int iio_buffer_add_demux(struct iio_buffer *buffer, 1021 struct iio_demux_table **p, unsigned int in_loc, 1022 unsigned int out_loc, 1023 unsigned int length) 1024 { 1025 if (*p && (*p)->from + (*p)->length == in_loc && 1026 (*p)->to + (*p)->length == out_loc) { 1027 (*p)->length += length; 1028 } else { 1029 *p = kmalloc_obj(**p); 1030 if (!(*p)) 1031 return -ENOMEM; 1032 (*p)->from = in_loc; 1033 (*p)->to = out_loc; 1034 (*p)->length = length; 1035 list_add_tail(&(*p)->l, &buffer->demux_list); 1036 } 1037 1038 return 0; 1039 } 1040 1041 static int iio_buffer_update_demux(struct iio_dev *indio_dev, 1042 struct iio_buffer *buffer) 1043 { 1044 unsigned int masklength = iio_get_masklength(indio_dev); 1045 int ret, in_ind = -1, out_ind, length; 1046 unsigned int in_loc = 0, out_loc = 0; 1047 struct iio_demux_table *p = NULL; 1048 1049 /* Clear out any old demux */ 1050 iio_buffer_demux_free(buffer); 1051 kfree(buffer->demux_bounce); 1052 buffer->demux_bounce = NULL; 1053 1054 /* First work out which scan mode we will actually have */ 1055 if (bitmap_equal(indio_dev->active_scan_mask, 1056 buffer->scan_mask, masklength)) 1057 return 0; 1058 1059 /* Now we have the two masks, work from least sig and build up sizes */ 1060 for_each_set_bit(out_ind, buffer->scan_mask, masklength) { 1061 in_ind = find_next_bit(indio_dev->active_scan_mask, 1062 masklength, in_ind + 1); 1063 while (in_ind != out_ind) { 1064 ret = iio_storage_bytes_for_si(indio_dev, in_ind); 1065 if (ret < 0) 1066 goto error_clear_mux_table; 1067 1068 length = ret; 1069 /* Make sure we are aligned */ 1070 in_loc = roundup(in_loc, length) + length; 1071 in_ind = find_next_bit(indio_dev->active_scan_mask, 1072 masklength, in_ind + 1); 1073 } 1074 ret = iio_storage_bytes_for_si(indio_dev, in_ind); 1075 if (ret < 0) 1076 goto error_clear_mux_table; 1077 1078 length = ret; 1079 out_loc = roundup(out_loc, length); 1080 in_loc = roundup(in_loc, length); 1081 ret = iio_buffer_add_demux(buffer, &p, in_loc, out_loc, length); 1082 if (ret) 1083 goto error_clear_mux_table; 1084 out_loc += length; 1085 in_loc += length; 1086 } 1087 /* Relies on scan_timestamp being last */ 1088 if (buffer->scan_timestamp) { 1089 ret = iio_storage_bytes_for_timestamp(indio_dev); 1090 if (ret < 0) 1091 goto error_clear_mux_table; 1092 1093 length = ret; 1094 out_loc = roundup(out_loc, length); 1095 in_loc = roundup(in_loc, length); 1096 ret = iio_buffer_add_demux(buffer, &p, in_loc, out_loc, length); 1097 if (ret) 1098 goto error_clear_mux_table; 1099 out_loc += length; 1100 } 1101 buffer->demux_bounce = kzalloc(out_loc, GFP_KERNEL); 1102 if (!buffer->demux_bounce) { 1103 ret = -ENOMEM; 1104 goto error_clear_mux_table; 1105 } 1106 return 0; 1107 1108 error_clear_mux_table: 1109 iio_buffer_demux_free(buffer); 1110 1111 return ret; 1112 } 1113 1114 static int iio_update_demux(struct iio_dev *indio_dev) 1115 { 1116 struct iio_dev_opaque *iio_dev_opaque = to_iio_dev_opaque(indio_dev); 1117 struct iio_buffer *buffer; 1118 int ret; 1119 1120 list_for_each_entry(buffer, &iio_dev_opaque->buffer_list, buffer_list) { 1121 ret = iio_buffer_update_demux(indio_dev, buffer); 1122 if (ret < 0) 1123 goto error_clear_mux_table; 1124 } 1125 return 0; 1126 1127 error_clear_mux_table: 1128 list_for_each_entry(buffer, &iio_dev_opaque->buffer_list, buffer_list) 1129 iio_buffer_demux_free(buffer); 1130 1131 return ret; 1132 } 1133 1134 static int iio_enable_buffers(struct iio_dev *indio_dev, 1135 struct iio_device_config *config) 1136 { 1137 struct iio_dev_opaque *iio_dev_opaque = to_iio_dev_opaque(indio_dev); 1138 struct iio_buffer *buffer, *tmp = NULL; 1139 int ret; 1140 1141 indio_dev->active_scan_mask = config->scan_mask; 1142 ACCESS_PRIVATE(indio_dev, scan_timestamp) = config->scan_timestamp; 1143 indio_dev->scan_bytes = config->scan_bytes; 1144 iio_dev_opaque->currentmode = config->mode; 1145 1146 iio_update_demux(indio_dev); 1147 1148 /* Wind up again */ 1149 if (indio_dev->setup_ops->preenable) { 1150 ret = indio_dev->setup_ops->preenable(indio_dev); 1151 if (ret) { 1152 dev_dbg(&indio_dev->dev, 1153 "Buffer not started: buffer preenable failed (%d)\n", ret); 1154 goto err_undo_config; 1155 } 1156 } 1157 1158 if (indio_dev->info->update_scan_mode) { 1159 ret = indio_dev->info 1160 ->update_scan_mode(indio_dev, 1161 indio_dev->active_scan_mask); 1162 if (ret < 0) { 1163 dev_dbg(&indio_dev->dev, 1164 "Buffer not started: update scan mode failed (%d)\n", 1165 ret); 1166 goto err_run_postdisable; 1167 } 1168 } 1169 1170 if (indio_dev->info->hwfifo_set_watermark) 1171 indio_dev->info->hwfifo_set_watermark(indio_dev, 1172 config->watermark); 1173 1174 list_for_each_entry(buffer, &iio_dev_opaque->buffer_list, buffer_list) { 1175 ret = iio_buffer_enable(buffer, indio_dev); 1176 if (ret) { 1177 tmp = buffer; 1178 goto err_disable_buffers; 1179 } 1180 } 1181 1182 if (iio_dev_opaque->currentmode == INDIO_BUFFER_TRIGGERED) { 1183 ret = iio_trigger_attach_poll_func(indio_dev->trig, 1184 indio_dev->pollfunc); 1185 if (ret) 1186 goto err_disable_buffers; 1187 } 1188 1189 if (indio_dev->setup_ops->postenable) { 1190 ret = indio_dev->setup_ops->postenable(indio_dev); 1191 if (ret) { 1192 dev_dbg(&indio_dev->dev, 1193 "Buffer not started: postenable failed (%d)\n", ret); 1194 goto err_detach_pollfunc; 1195 } 1196 } 1197 1198 return 0; 1199 1200 err_detach_pollfunc: 1201 if (iio_dev_opaque->currentmode == INDIO_BUFFER_TRIGGERED) { 1202 iio_trigger_detach_poll_func(indio_dev->trig, 1203 indio_dev->pollfunc); 1204 } 1205 err_disable_buffers: 1206 buffer = list_prepare_entry(tmp, &iio_dev_opaque->buffer_list, buffer_list); 1207 list_for_each_entry_continue_reverse(buffer, &iio_dev_opaque->buffer_list, 1208 buffer_list) 1209 iio_buffer_disable(buffer, indio_dev); 1210 err_run_postdisable: 1211 if (indio_dev->setup_ops->postdisable) 1212 indio_dev->setup_ops->postdisable(indio_dev); 1213 err_undo_config: 1214 iio_dev_opaque->currentmode = INDIO_DIRECT_MODE; 1215 indio_dev->active_scan_mask = NULL; 1216 1217 return ret; 1218 } 1219 1220 static int iio_disable_buffers(struct iio_dev *indio_dev) 1221 { 1222 struct iio_dev_opaque *iio_dev_opaque = to_iio_dev_opaque(indio_dev); 1223 struct iio_buffer *buffer; 1224 int ret = 0; 1225 int ret2; 1226 1227 /* Wind down existing buffers - iff there are any */ 1228 if (list_empty(&iio_dev_opaque->buffer_list)) 1229 return 0; 1230 1231 /* 1232 * If things go wrong at some step in disable we still need to continue 1233 * to perform the other steps, otherwise we leave the device in a 1234 * inconsistent state. We return the error code for the first error we 1235 * encountered. 1236 */ 1237 1238 if (indio_dev->setup_ops->predisable) { 1239 ret2 = indio_dev->setup_ops->predisable(indio_dev); 1240 if (ret2 && !ret) 1241 ret = ret2; 1242 } 1243 1244 if (iio_dev_opaque->currentmode == INDIO_BUFFER_TRIGGERED) { 1245 iio_trigger_detach_poll_func(indio_dev->trig, 1246 indio_dev->pollfunc); 1247 } 1248 1249 list_for_each_entry(buffer, &iio_dev_opaque->buffer_list, buffer_list) { 1250 ret2 = iio_buffer_disable(buffer, indio_dev); 1251 if (ret2 && !ret) 1252 ret = ret2; 1253 } 1254 1255 if (indio_dev->setup_ops->postdisable) { 1256 ret2 = indio_dev->setup_ops->postdisable(indio_dev); 1257 if (ret2 && !ret) 1258 ret = ret2; 1259 } 1260 1261 iio_free_scan_mask(indio_dev, indio_dev->active_scan_mask); 1262 indio_dev->active_scan_mask = NULL; 1263 iio_dev_opaque->currentmode = INDIO_DIRECT_MODE; 1264 1265 return ret; 1266 } 1267 1268 static int __iio_update_buffers(struct iio_dev *indio_dev, 1269 struct iio_buffer *insert_buffer, 1270 struct iio_buffer *remove_buffer) 1271 { 1272 struct iio_dev_opaque *iio_dev_opaque = to_iio_dev_opaque(indio_dev); 1273 struct iio_device_config new_config; 1274 int ret; 1275 1276 ret = iio_verify_update(indio_dev, insert_buffer, remove_buffer, 1277 &new_config); 1278 if (ret) 1279 return ret; 1280 1281 if (insert_buffer) { 1282 ret = iio_buffer_request_update(indio_dev, insert_buffer); 1283 if (ret) 1284 goto err_free_config; 1285 } 1286 1287 ret = iio_disable_buffers(indio_dev); 1288 if (ret) 1289 goto err_deactivate_all; 1290 1291 if (remove_buffer) 1292 iio_buffer_deactivate(remove_buffer); 1293 if (insert_buffer) 1294 iio_buffer_activate(indio_dev, insert_buffer); 1295 1296 /* If no buffers in list, we are done */ 1297 if (list_empty(&iio_dev_opaque->buffer_list)) 1298 return 0; 1299 1300 ret = iio_enable_buffers(indio_dev, &new_config); 1301 if (ret) 1302 goto err_deactivate_all; 1303 1304 return 0; 1305 1306 err_deactivate_all: 1307 /* 1308 * We've already verified that the config is valid earlier. If things go 1309 * wrong in either enable or disable the most likely reason is an IO 1310 * error from the device. In this case there is no good recovery 1311 * strategy. Just make sure to disable everything and leave the device 1312 * in a sane state. With a bit of luck the device might come back to 1313 * life again later and userspace can try again. 1314 */ 1315 iio_buffer_deactivate_all(indio_dev); 1316 1317 err_free_config: 1318 iio_free_scan_mask(indio_dev, new_config.scan_mask); 1319 return ret; 1320 } 1321 1322 int iio_update_buffers(struct iio_dev *indio_dev, 1323 struct iio_buffer *insert_buffer, 1324 struct iio_buffer *remove_buffer) 1325 { 1326 struct iio_dev_opaque *iio_dev_opaque = to_iio_dev_opaque(indio_dev); 1327 1328 if (insert_buffer == remove_buffer) 1329 return 0; 1330 1331 if (insert_buffer && 1332 insert_buffer->direction == IIO_BUFFER_DIRECTION_OUT) 1333 return -EINVAL; 1334 1335 guard(mutex)(&iio_dev_opaque->info_exist_lock); 1336 guard(mutex)(&iio_dev_opaque->mlock); 1337 1338 if (insert_buffer && iio_buffer_is_active(insert_buffer)) 1339 insert_buffer = NULL; 1340 1341 if (remove_buffer && !iio_buffer_is_active(remove_buffer)) 1342 remove_buffer = NULL; 1343 1344 if (!insert_buffer && !remove_buffer) 1345 return 0; 1346 1347 if (!indio_dev->info) 1348 return -ENODEV; 1349 1350 return __iio_update_buffers(indio_dev, insert_buffer, remove_buffer); 1351 } 1352 EXPORT_SYMBOL_GPL(iio_update_buffers); 1353 1354 void iio_disable_all_buffers(struct iio_dev *indio_dev) 1355 { 1356 iio_disable_buffers(indio_dev); 1357 iio_buffer_deactivate_all(indio_dev); 1358 } 1359 1360 static ssize_t enable_store(struct device *dev, struct device_attribute *attr, 1361 const char *buf, size_t len) 1362 { 1363 int ret; 1364 bool requested_state; 1365 struct iio_dev *indio_dev = dev_to_iio_dev(dev); 1366 struct iio_dev_opaque *iio_dev_opaque = to_iio_dev_opaque(indio_dev); 1367 struct iio_buffer *buffer = to_iio_dev_attr(attr)->buffer; 1368 bool inlist; 1369 1370 ret = kstrtobool(buf, &requested_state); 1371 if (ret < 0) 1372 return ret; 1373 1374 guard(mutex)(&iio_dev_opaque->mlock); 1375 1376 /* Find out if it is in the list */ 1377 inlist = iio_buffer_is_active(buffer); 1378 /* Already in desired state */ 1379 if (inlist == requested_state) 1380 return len; 1381 1382 if (requested_state) 1383 ret = __iio_update_buffers(indio_dev, buffer, NULL); 1384 else 1385 ret = __iio_update_buffers(indio_dev, NULL, buffer); 1386 if (ret) 1387 return ret; 1388 1389 return len; 1390 } 1391 1392 static ssize_t watermark_show(struct device *dev, struct device_attribute *attr, 1393 char *buf) 1394 { 1395 struct iio_buffer *buffer = to_iio_dev_attr(attr)->buffer; 1396 1397 return sysfs_emit(buf, "%u\n", buffer->watermark); 1398 } 1399 1400 static ssize_t watermark_store(struct device *dev, 1401 struct device_attribute *attr, 1402 const char *buf, size_t len) 1403 { 1404 struct iio_dev *indio_dev = dev_to_iio_dev(dev); 1405 struct iio_dev_opaque *iio_dev_opaque = to_iio_dev_opaque(indio_dev); 1406 struct iio_buffer *buffer = to_iio_dev_attr(attr)->buffer; 1407 unsigned int val; 1408 int ret; 1409 1410 ret = kstrtouint(buf, 10, &val); 1411 if (ret) 1412 return ret; 1413 if (!val) 1414 return -EINVAL; 1415 1416 guard(mutex)(&iio_dev_opaque->mlock); 1417 1418 if (val > buffer->length) 1419 return -EINVAL; 1420 1421 if (iio_buffer_is_active(buffer)) 1422 return -EBUSY; 1423 1424 buffer->watermark = val; 1425 1426 return len; 1427 } 1428 1429 static ssize_t data_available_show(struct device *dev, 1430 struct device_attribute *attr, char *buf) 1431 { 1432 struct iio_buffer *buffer = to_iio_dev_attr(attr)->buffer; 1433 1434 return sysfs_emit(buf, "%zu\n", iio_buffer_data_available(buffer)); 1435 } 1436 1437 static ssize_t direction_show(struct device *dev, 1438 struct device_attribute *attr, 1439 char *buf) 1440 { 1441 struct iio_buffer *buffer = to_iio_dev_attr(attr)->buffer; 1442 1443 switch (buffer->direction) { 1444 case IIO_BUFFER_DIRECTION_IN: 1445 return sysfs_emit(buf, "in\n"); 1446 case IIO_BUFFER_DIRECTION_OUT: 1447 return sysfs_emit(buf, "out\n"); 1448 default: 1449 return -EINVAL; 1450 } 1451 } 1452 1453 static DEVICE_ATTR_RW(length); 1454 static struct device_attribute dev_attr_length_ro = __ATTR_RO(length); 1455 static DEVICE_ATTR_RW(enable); 1456 static DEVICE_ATTR_RW(watermark); 1457 static struct device_attribute dev_attr_watermark_ro = __ATTR_RO(watermark); 1458 static DEVICE_ATTR_RO(data_available); 1459 static DEVICE_ATTR_RO(direction); 1460 1461 /* 1462 * When adding new attributes here, put the at the end, at least until 1463 * the code that handles the length/length_ro & watermark/watermark_ro 1464 * assignments gets cleaned up. Otherwise these can create some weird 1465 * duplicate attributes errors under some setups. 1466 */ 1467 static struct attribute *iio_buffer_attrs[] = { 1468 &dev_attr_length.attr, 1469 &dev_attr_enable.attr, 1470 &dev_attr_watermark.attr, 1471 &dev_attr_data_available.attr, 1472 &dev_attr_direction.attr, 1473 }; 1474 1475 #define to_dev_attr(_attr) container_of(_attr, struct device_attribute, attr) 1476 1477 static struct attribute *iio_buffer_wrap_attr(struct iio_buffer *buffer, 1478 struct attribute *attr) 1479 { 1480 struct device_attribute *dattr = to_dev_attr(attr); 1481 struct iio_dev_attr *iio_attr; 1482 1483 iio_attr = kzalloc_obj(*iio_attr); 1484 if (!iio_attr) 1485 return NULL; 1486 1487 iio_attr->buffer = buffer; 1488 memcpy(&iio_attr->dev_attr, dattr, sizeof(iio_attr->dev_attr)); 1489 iio_attr->dev_attr.attr.name = kstrdup_const(attr->name, GFP_KERNEL); 1490 if (!iio_attr->dev_attr.attr.name) { 1491 kfree(iio_attr); 1492 return NULL; 1493 } 1494 1495 sysfs_attr_init(&iio_attr->dev_attr.attr); 1496 1497 list_add(&iio_attr->l, &buffer->buffer_attr_list); 1498 1499 return &iio_attr->dev_attr.attr; 1500 } 1501 1502 static int iio_buffer_register_legacy_sysfs_groups(struct iio_dev *indio_dev, 1503 struct attribute **buffer_attrs, 1504 int buffer_attrcount, 1505 int scan_el_attrcount) 1506 { 1507 struct iio_dev_opaque *iio_dev_opaque = to_iio_dev_opaque(indio_dev); 1508 struct attribute_group *group; 1509 struct attribute **attrs; 1510 int ret; 1511 1512 attrs = kzalloc_objs(*attrs, buffer_attrcount + 1); 1513 if (!attrs) 1514 return -ENOMEM; 1515 1516 memcpy(attrs, buffer_attrs, buffer_attrcount * sizeof(*attrs)); 1517 1518 group = &iio_dev_opaque->legacy_buffer_group; 1519 group->attrs = attrs; 1520 group->name = "buffer"; 1521 1522 ret = iio_device_register_sysfs_group(indio_dev, group); 1523 if (ret) 1524 goto error_free_buffer_attrs; 1525 1526 attrs = kzalloc_objs(*attrs, scan_el_attrcount + 1); 1527 if (!attrs) { 1528 ret = -ENOMEM; 1529 goto error_free_buffer_attrs; 1530 } 1531 1532 memcpy(attrs, &buffer_attrs[buffer_attrcount], 1533 scan_el_attrcount * sizeof(*attrs)); 1534 1535 group = &iio_dev_opaque->legacy_scan_el_group; 1536 group->attrs = attrs; 1537 group->name = "scan_elements"; 1538 1539 ret = iio_device_register_sysfs_group(indio_dev, group); 1540 if (ret) 1541 goto error_free_scan_el_attrs; 1542 1543 return 0; 1544 1545 error_free_scan_el_attrs: 1546 kfree(iio_dev_opaque->legacy_scan_el_group.attrs); 1547 error_free_buffer_attrs: 1548 kfree(iio_dev_opaque->legacy_buffer_group.attrs); 1549 1550 return ret; 1551 } 1552 1553 static void iio_buffer_unregister_legacy_sysfs_groups(struct iio_dev *indio_dev) 1554 { 1555 struct iio_dev_opaque *iio_dev_opaque = to_iio_dev_opaque(indio_dev); 1556 1557 kfree(iio_dev_opaque->legacy_buffer_group.attrs); 1558 kfree(iio_dev_opaque->legacy_scan_el_group.attrs); 1559 } 1560 1561 static void iio_buffer_dmabuf_release(struct kref *ref) 1562 { 1563 struct iio_dmabuf_priv *priv = container_of(ref, struct iio_dmabuf_priv, ref); 1564 struct dma_buf_attachment *attach = priv->attach; 1565 struct iio_buffer *buffer = priv->buffer; 1566 struct dma_buf *dmabuf = attach->dmabuf; 1567 1568 dma_buf_unmap_attachment_unlocked(attach, priv->sgt, priv->dir); 1569 1570 buffer->access->detach_dmabuf(buffer, priv->block); 1571 1572 dma_buf_detach(attach->dmabuf, attach); 1573 dma_buf_put(dmabuf); 1574 kfree(priv); 1575 } 1576 1577 static void iio_buffer_dmabuf_get(struct dma_buf_attachment *attach) 1578 { 1579 struct iio_dmabuf_priv *priv = attach->importer_priv; 1580 1581 kref_get(&priv->ref); 1582 } 1583 1584 static void iio_buffer_dmabuf_put(struct dma_buf_attachment *attach) 1585 { 1586 struct iio_dmabuf_priv *priv = attach->importer_priv; 1587 1588 kref_put(&priv->ref, iio_buffer_dmabuf_release); 1589 } 1590 1591 static int iio_buffer_chrdev_release(struct inode *inode, struct file *filep) 1592 { 1593 struct iio_dev_buffer_pair *ib = filep->private_data; 1594 struct iio_dev *indio_dev = ib->indio_dev; 1595 struct iio_buffer *buffer = ib->buffer; 1596 struct iio_dmabuf_priv *priv, *tmp; 1597 1598 wake_up(&buffer->pollq); 1599 1600 guard(mutex)(&buffer->dmabufs_mutex); 1601 1602 /* Close all attached DMABUFs */ 1603 list_for_each_entry_safe(priv, tmp, &buffer->dmabufs, entry) { 1604 list_del_init(&priv->entry); 1605 iio_buffer_dmabuf_put(priv->attach); 1606 } 1607 1608 kfree(ib); 1609 clear_bit(IIO_BUSY_BIT_POS, &buffer->flags); 1610 iio_device_put(indio_dev); 1611 1612 return 0; 1613 } 1614 1615 static int iio_dma_resv_lock(struct dma_buf *dmabuf, bool nonblock) 1616 { 1617 if (!nonblock) 1618 return dma_resv_lock_interruptible(dmabuf->resv, NULL); 1619 1620 if (!dma_resv_trylock(dmabuf->resv)) 1621 return -EBUSY; 1622 1623 return 0; 1624 } 1625 1626 static struct device *iio_buffer_get_dma_dev(const struct iio_dev *indio_dev, 1627 struct iio_buffer *buffer) 1628 { 1629 if (buffer->access->get_dma_dev) 1630 return buffer->access->get_dma_dev(buffer); 1631 1632 return indio_dev->dev.parent; 1633 } 1634 1635 static struct dma_buf_attachment * 1636 iio_buffer_find_attachment(struct iio_dev_buffer_pair *ib, 1637 struct dma_buf *dmabuf, bool nonblock) 1638 { 1639 struct iio_buffer *buffer = ib->buffer; 1640 struct device *dma_dev = iio_buffer_get_dma_dev(ib->indio_dev, buffer); 1641 struct dma_buf_attachment *attach = NULL; 1642 struct iio_dmabuf_priv *priv; 1643 1644 guard(mutex)(&buffer->dmabufs_mutex); 1645 1646 list_for_each_entry(priv, &buffer->dmabufs, entry) { 1647 if (priv->attach->dev == dma_dev 1648 && priv->attach->dmabuf == dmabuf) { 1649 attach = priv->attach; 1650 break; 1651 } 1652 } 1653 1654 if (attach) 1655 iio_buffer_dmabuf_get(attach); 1656 1657 return attach ?: ERR_PTR(-EPERM); 1658 } 1659 1660 static int iio_buffer_attach_dmabuf(struct iio_dev_buffer_pair *ib, 1661 int __user *user_fd, bool nonblock) 1662 { 1663 struct iio_dev *indio_dev = ib->indio_dev; 1664 struct iio_buffer *buffer = ib->buffer; 1665 struct device *dma_dev = iio_buffer_get_dma_dev(indio_dev, buffer); 1666 struct dma_buf_attachment *attach; 1667 struct iio_dmabuf_priv *priv, *each; 1668 struct dma_buf *dmabuf; 1669 int err, fd; 1670 1671 if (!buffer->access->attach_dmabuf 1672 || !buffer->access->detach_dmabuf 1673 || !buffer->access->enqueue_dmabuf) 1674 return -EPERM; 1675 1676 if (copy_from_user(&fd, user_fd, sizeof(fd))) 1677 return -EFAULT; 1678 1679 priv = kzalloc_obj(*priv); 1680 if (!priv) 1681 return -ENOMEM; 1682 1683 spin_lock_init(&priv->lock); 1684 priv->context = dma_fence_context_alloc(1); 1685 1686 dmabuf = dma_buf_get(fd); 1687 if (IS_ERR(dmabuf)) { 1688 err = PTR_ERR(dmabuf); 1689 goto err_free_priv; 1690 } 1691 1692 attach = dma_buf_attach(dmabuf, dma_dev); 1693 if (IS_ERR(attach)) { 1694 err = PTR_ERR(attach); 1695 goto err_dmabuf_put; 1696 } 1697 1698 err = iio_dma_resv_lock(dmabuf, nonblock); 1699 if (err) 1700 goto err_dmabuf_detach; 1701 1702 priv->dir = buffer->direction == IIO_BUFFER_DIRECTION_IN 1703 ? DMA_FROM_DEVICE : DMA_TO_DEVICE; 1704 1705 priv->sgt = dma_buf_map_attachment(attach, priv->dir); 1706 if (IS_ERR(priv->sgt)) { 1707 err = PTR_ERR(priv->sgt); 1708 dev_err(&indio_dev->dev, "Unable to map attachment: %d\n", err); 1709 goto err_resv_unlock; 1710 } 1711 1712 kref_init(&priv->ref); 1713 priv->buffer = buffer; 1714 priv->attach = attach; 1715 attach->importer_priv = priv; 1716 1717 priv->block = buffer->access->attach_dmabuf(buffer, attach); 1718 if (IS_ERR(priv->block)) { 1719 err = PTR_ERR(priv->block); 1720 goto err_dmabuf_unmap_attachment; 1721 } 1722 1723 dma_resv_unlock(dmabuf->resv); 1724 1725 mutex_lock(&buffer->dmabufs_mutex); 1726 1727 /* 1728 * Check whether we already have an attachment for this driver/DMABUF 1729 * combo. If we do, refuse to attach. 1730 */ 1731 list_for_each_entry(each, &buffer->dmabufs, entry) { 1732 if (each->attach->dev == dma_dev 1733 && each->attach->dmabuf == dmabuf) { 1734 /* 1735 * We unlocked the reservation object, so going through 1736 * the cleanup code would mean re-locking it first. 1737 * At this stage it is simpler to free the attachment 1738 * using iio_buffer_dma_put(). 1739 */ 1740 mutex_unlock(&buffer->dmabufs_mutex); 1741 iio_buffer_dmabuf_put(attach); 1742 return -EBUSY; 1743 } 1744 } 1745 1746 /* Otherwise, add the new attachment to our dmabufs list. */ 1747 list_add(&priv->entry, &buffer->dmabufs); 1748 mutex_unlock(&buffer->dmabufs_mutex); 1749 1750 return 0; 1751 1752 err_dmabuf_unmap_attachment: 1753 dma_buf_unmap_attachment(attach, priv->sgt, priv->dir); 1754 err_resv_unlock: 1755 dma_resv_unlock(dmabuf->resv); 1756 err_dmabuf_detach: 1757 dma_buf_detach(dmabuf, attach); 1758 err_dmabuf_put: 1759 dma_buf_put(dmabuf); 1760 err_free_priv: 1761 kfree(priv); 1762 1763 return err; 1764 } 1765 1766 static int iio_buffer_detach_dmabuf(struct iio_dev_buffer_pair *ib, 1767 int __user *user_req, bool nonblock) 1768 { 1769 struct iio_buffer *buffer = ib->buffer; 1770 struct iio_dev *indio_dev = ib->indio_dev; 1771 struct device *dma_dev = iio_buffer_get_dma_dev(indio_dev, buffer); 1772 struct iio_dmabuf_priv *priv; 1773 struct dma_buf *dmabuf; 1774 int dmabuf_fd, ret = -EPERM; 1775 1776 if (copy_from_user(&dmabuf_fd, user_req, sizeof(dmabuf_fd))) 1777 return -EFAULT; 1778 1779 dmabuf = dma_buf_get(dmabuf_fd); 1780 if (IS_ERR(dmabuf)) 1781 return PTR_ERR(dmabuf); 1782 1783 guard(mutex)(&buffer->dmabufs_mutex); 1784 1785 list_for_each_entry(priv, &buffer->dmabufs, entry) { 1786 if (priv->attach->dev == dma_dev 1787 && priv->attach->dmabuf == dmabuf) { 1788 list_del(&priv->entry); 1789 1790 /* Unref the reference from iio_buffer_attach_dmabuf() */ 1791 iio_buffer_dmabuf_put(priv->attach); 1792 ret = 0; 1793 break; 1794 } 1795 } 1796 1797 dma_buf_put(dmabuf); 1798 1799 return ret; 1800 } 1801 1802 static const char * 1803 iio_buffer_dma_fence_get_driver_name(struct dma_fence *fence) 1804 { 1805 return "iio"; 1806 } 1807 1808 static void iio_buffer_dma_fence_release(struct dma_fence *fence) 1809 { 1810 struct iio_dma_fence *iio_fence = 1811 container_of(fence, struct iio_dma_fence, base); 1812 1813 kfree(iio_fence); 1814 } 1815 1816 static const struct dma_fence_ops iio_buffer_dma_fence_ops = { 1817 .get_driver_name = iio_buffer_dma_fence_get_driver_name, 1818 .get_timeline_name = iio_buffer_dma_fence_get_driver_name, 1819 .release = iio_buffer_dma_fence_release, 1820 }; 1821 1822 static int iio_buffer_enqueue_dmabuf(struct iio_dev_buffer_pair *ib, 1823 struct iio_dmabuf __user *iio_dmabuf_req, 1824 bool nonblock) 1825 { 1826 struct iio_buffer *buffer = ib->buffer; 1827 struct iio_dmabuf iio_dmabuf; 1828 struct dma_buf_attachment *attach; 1829 struct iio_dmabuf_priv *priv; 1830 struct iio_dma_fence *fence; 1831 struct dma_buf *dmabuf; 1832 unsigned long timeout; 1833 bool cookie, cyclic, dma_to_ram; 1834 long retl; 1835 u32 seqno; 1836 int ret; 1837 1838 if (copy_from_user(&iio_dmabuf, iio_dmabuf_req, sizeof(iio_dmabuf))) 1839 return -EFAULT; 1840 1841 if (iio_dmabuf.flags & ~IIO_BUFFER_DMABUF_SUPPORTED_FLAGS) 1842 return -EINVAL; 1843 1844 cyclic = iio_dmabuf.flags & IIO_BUFFER_DMABUF_CYCLIC; 1845 1846 /* Cyclic flag is only supported on output buffers */ 1847 if (cyclic && buffer->direction != IIO_BUFFER_DIRECTION_OUT) 1848 return -EINVAL; 1849 1850 dmabuf = dma_buf_get(iio_dmabuf.fd); 1851 if (IS_ERR(dmabuf)) 1852 return PTR_ERR(dmabuf); 1853 1854 if (!iio_dmabuf.bytes_used || iio_dmabuf.bytes_used > dmabuf->size) { 1855 ret = -EINVAL; 1856 goto err_dmabuf_put; 1857 } 1858 1859 attach = iio_buffer_find_attachment(ib, dmabuf, nonblock); 1860 if (IS_ERR(attach)) { 1861 ret = PTR_ERR(attach); 1862 goto err_dmabuf_put; 1863 } 1864 1865 priv = attach->importer_priv; 1866 1867 fence = kmalloc_obj(*fence); 1868 if (!fence) { 1869 ret = -ENOMEM; 1870 goto err_attachment_put; 1871 } 1872 1873 fence->priv = priv; 1874 1875 seqno = atomic_add_return(1, &priv->seqno); 1876 1877 /* 1878 * The transfers are guaranteed to be processed in the order they are 1879 * enqueued, so we can use a simple incrementing sequence number for 1880 * the dma_fence. 1881 */ 1882 dma_fence_init(&fence->base, &iio_buffer_dma_fence_ops, 1883 &priv->lock, priv->context, seqno); 1884 1885 ret = iio_dma_resv_lock(dmabuf, nonblock); 1886 if (ret) 1887 goto err_fence_put; 1888 1889 timeout = nonblock ? 0 : msecs_to_jiffies(DMABUF_ENQUEUE_TIMEOUT_MS); 1890 dma_to_ram = buffer->direction == IIO_BUFFER_DIRECTION_IN; 1891 1892 /* Make sure we don't have writers */ 1893 retl = dma_resv_wait_timeout(dmabuf->resv, 1894 dma_resv_usage_rw(dma_to_ram), 1895 true, timeout); 1896 if (retl == 0) 1897 retl = -EBUSY; 1898 if (retl < 0) { 1899 ret = (int)retl; 1900 goto err_resv_unlock; 1901 } 1902 1903 if (buffer->access->lock_queue) 1904 buffer->access->lock_queue(buffer); 1905 1906 ret = dma_resv_reserve_fences(dmabuf->resv, 1); 1907 if (ret) 1908 goto err_queue_unlock; 1909 1910 dma_resv_add_fence(dmabuf->resv, &fence->base, 1911 dma_to_ram ? DMA_RESV_USAGE_WRITE : DMA_RESV_USAGE_READ); 1912 dma_fence_put(&fence->base); 1913 dma_resv_unlock(dmabuf->resv); 1914 1915 cookie = dma_fence_begin_signalling(); 1916 1917 ret = buffer->access->enqueue_dmabuf(buffer, priv->block, &fence->base, 1918 priv->sgt, iio_dmabuf.bytes_used, 1919 cyclic); 1920 if (ret) { 1921 /* 1922 * DMABUF enqueue failed, but we already added the fence. 1923 * Signal the error through the fence completion mechanism. 1924 */ 1925 iio_buffer_signal_dmabuf_done(&fence->base, ret); 1926 } 1927 1928 if (buffer->access->unlock_queue) 1929 buffer->access->unlock_queue(buffer); 1930 1931 dma_fence_end_signalling(cookie); 1932 dma_buf_put(dmabuf); 1933 1934 return ret; 1935 1936 err_queue_unlock: 1937 if (buffer->access->unlock_queue) 1938 buffer->access->unlock_queue(buffer); 1939 err_resv_unlock: 1940 dma_resv_unlock(dmabuf->resv); 1941 err_fence_put: 1942 dma_fence_put(&fence->base); 1943 err_attachment_put: 1944 iio_buffer_dmabuf_put(attach); 1945 err_dmabuf_put: 1946 dma_buf_put(dmabuf); 1947 1948 return ret; 1949 } 1950 1951 static void iio_buffer_cleanup(struct work_struct *work) 1952 { 1953 struct iio_dma_fence *fence = 1954 container_of(work, struct iio_dma_fence, work); 1955 struct iio_dmabuf_priv *priv = fence->priv; 1956 struct dma_buf_attachment *attach = priv->attach; 1957 1958 dma_fence_put(&fence->base); 1959 iio_buffer_dmabuf_put(attach); 1960 } 1961 1962 void iio_buffer_signal_dmabuf_done(struct dma_fence *fence, int ret) 1963 { 1964 struct iio_dma_fence *iio_fence = 1965 container_of(fence, struct iio_dma_fence, base); 1966 bool cookie = dma_fence_begin_signalling(); 1967 1968 /* 1969 * Get a reference to the fence, so that it's not freed as soon as 1970 * it's signaled. 1971 */ 1972 dma_fence_get(fence); 1973 1974 fence->error = ret; 1975 dma_fence_signal(fence); 1976 dma_fence_end_signalling(cookie); 1977 1978 /* 1979 * The fence will be unref'd in iio_buffer_cleanup. 1980 * It can't be done here, as the unref functions might try to lock the 1981 * resv object, which can deadlock. 1982 */ 1983 INIT_WORK(&iio_fence->work, iio_buffer_cleanup); 1984 schedule_work(&iio_fence->work); 1985 } 1986 EXPORT_SYMBOL_GPL(iio_buffer_signal_dmabuf_done); 1987 1988 static long iio_buffer_chrdev_ioctl(struct file *filp, 1989 unsigned int cmd, unsigned long arg) 1990 { 1991 struct iio_dev_buffer_pair *ib = filp->private_data; 1992 void __user *_arg = (void __user *)arg; 1993 bool nonblock = filp->f_flags & O_NONBLOCK; 1994 1995 switch (cmd) { 1996 case IIO_BUFFER_DMABUF_ATTACH_IOCTL: 1997 return iio_buffer_attach_dmabuf(ib, _arg, nonblock); 1998 case IIO_BUFFER_DMABUF_DETACH_IOCTL: 1999 return iio_buffer_detach_dmabuf(ib, _arg, nonblock); 2000 case IIO_BUFFER_DMABUF_ENQUEUE_IOCTL: 2001 return iio_buffer_enqueue_dmabuf(ib, _arg, nonblock); 2002 default: 2003 return -EINVAL; 2004 } 2005 } 2006 2007 static const struct file_operations iio_buffer_chrdev_fileops = { 2008 .owner = THIS_MODULE, 2009 .llseek = noop_llseek, 2010 .read = iio_buffer_read, 2011 .write = iio_buffer_write, 2012 .unlocked_ioctl = iio_buffer_chrdev_ioctl, 2013 .compat_ioctl = compat_ptr_ioctl, 2014 .poll = iio_buffer_poll, 2015 .release = iio_buffer_chrdev_release, 2016 }; 2017 2018 static long iio_device_buffer_getfd(struct iio_dev *indio_dev, unsigned long arg) 2019 { 2020 struct iio_dev_opaque *iio_dev_opaque = to_iio_dev_opaque(indio_dev); 2021 int __user *ival = (int __user *)arg; 2022 struct iio_dev_buffer_pair *ib; 2023 struct iio_buffer *buffer; 2024 int fd, idx, ret; 2025 2026 if (copy_from_user(&idx, ival, sizeof(idx))) 2027 return -EFAULT; 2028 2029 if (idx >= iio_dev_opaque->attached_buffers_cnt) 2030 return -ENODEV; 2031 2032 iio_device_get(indio_dev); 2033 2034 buffer = iio_dev_opaque->attached_buffers[idx]; 2035 2036 if (test_and_set_bit(IIO_BUSY_BIT_POS, &buffer->flags)) { 2037 ret = -EBUSY; 2038 goto error_iio_dev_put; 2039 } 2040 2041 ib = kzalloc_obj(*ib); 2042 if (!ib) { 2043 ret = -ENOMEM; 2044 goto error_clear_busy_bit; 2045 } 2046 2047 ib->indio_dev = indio_dev; 2048 ib->buffer = buffer; 2049 2050 fd = anon_inode_getfd("iio:buffer", &iio_buffer_chrdev_fileops, 2051 ib, O_RDWR | O_CLOEXEC); 2052 if (fd < 0) { 2053 ret = fd; 2054 goto error_free_ib; 2055 } 2056 2057 if (copy_to_user(ival, &fd, sizeof(fd))) { 2058 /* 2059 * "Leak" the fd, as there's not much we can do about this 2060 * anyway. 'fd' might have been closed already, as 2061 * anon_inode_getfd() called fd_install() on it, which made 2062 * it reachable by userland. 2063 * 2064 * Instead of allowing a malicious user to play tricks with 2065 * us, rely on the process exit path to do any necessary 2066 * cleanup, as in releasing the file, if still needed. 2067 */ 2068 return -EFAULT; 2069 } 2070 2071 return 0; 2072 2073 error_free_ib: 2074 kfree(ib); 2075 error_clear_busy_bit: 2076 clear_bit(IIO_BUSY_BIT_POS, &buffer->flags); 2077 error_iio_dev_put: 2078 iio_device_put(indio_dev); 2079 return ret; 2080 } 2081 2082 static long iio_device_buffer_ioctl(struct iio_dev *indio_dev, struct file *filp, 2083 unsigned int cmd, unsigned long arg) 2084 { 2085 switch (cmd) { 2086 case IIO_BUFFER_GET_FD_IOCTL: 2087 return iio_device_buffer_getfd(indio_dev, arg); 2088 default: 2089 return IIO_IOCTL_UNHANDLED; 2090 } 2091 } 2092 2093 static int iio_channel_validate_scan_type(struct device *dev, int ch, 2094 const struct iio_scan_type *scan_type) 2095 { 2096 /* Verify that sample bits fit into storage */ 2097 if (scan_type->storagebits < scan_type->realbits + scan_type->shift) { 2098 dev_err(dev, 2099 "Channel %d storagebits (%d) < shifted realbits (%d + %d)\n", 2100 ch, scan_type->storagebits, 2101 scan_type->realbits, 2102 scan_type->shift); 2103 return -EINVAL; 2104 } 2105 2106 return 0; 2107 } 2108 2109 static int __iio_buffer_alloc_sysfs_and_mask(struct iio_buffer *buffer, 2110 struct iio_dev *indio_dev, 2111 int index) 2112 { 2113 struct iio_dev_opaque *iio_dev_opaque = to_iio_dev_opaque(indio_dev); 2114 unsigned int masklength = iio_get_masklength(indio_dev); 2115 struct iio_dev_attr *p; 2116 const struct iio_dev_attr *id_attr; 2117 struct attribute **attr; 2118 int ret, i, attrn, scan_el_attrcount, buffer_attrcount; 2119 const struct iio_chan_spec *channels; 2120 2121 buffer_attrcount = 0; 2122 if (buffer->attrs) { 2123 while (buffer->attrs[buffer_attrcount]) 2124 buffer_attrcount++; 2125 } 2126 buffer_attrcount += ARRAY_SIZE(iio_buffer_attrs); 2127 2128 scan_el_attrcount = 0; 2129 INIT_LIST_HEAD(&buffer->buffer_attr_list); 2130 channels = indio_dev->channels; 2131 if (channels) { 2132 /* new magic */ 2133 for (i = 0; i < indio_dev->num_channels; i++) { 2134 const struct iio_scan_type *scan_type; 2135 2136 if (channels[i].scan_index < 0) 2137 continue; 2138 2139 if (channels[i].has_ext_scan_type) { 2140 int j; 2141 2142 /* 2143 * get_current_scan_type is required when using 2144 * extended scan types. 2145 */ 2146 if (!indio_dev->info->get_current_scan_type) { 2147 ret = -EINVAL; 2148 goto error_cleanup_dynamic; 2149 } 2150 2151 for (j = 0; j < channels[i].num_ext_scan_type; j++) { 2152 scan_type = &channels[i].ext_scan_type[j]; 2153 2154 ret = iio_channel_validate_scan_type( 2155 &indio_dev->dev, i, scan_type); 2156 if (ret) 2157 goto error_cleanup_dynamic; 2158 } 2159 } else { 2160 scan_type = &channels[i].scan_type; 2161 2162 ret = iio_channel_validate_scan_type( 2163 &indio_dev->dev, i, scan_type); 2164 if (ret) 2165 goto error_cleanup_dynamic; 2166 } 2167 2168 ret = iio_buffer_add_channel_sysfs(indio_dev, buffer, 2169 &channels[i]); 2170 if (ret < 0) 2171 goto error_cleanup_dynamic; 2172 scan_el_attrcount += ret; 2173 if (channels[i].type == IIO_TIMESTAMP) 2174 iio_dev_opaque->scan_index_timestamp = 2175 channels[i].scan_index; 2176 } 2177 if (masklength && !buffer->scan_mask) { 2178 buffer->scan_mask = bitmap_zalloc(masklength, 2179 GFP_KERNEL); 2180 if (!buffer->scan_mask) { 2181 ret = -ENOMEM; 2182 goto error_cleanup_dynamic; 2183 } 2184 } 2185 } 2186 2187 attrn = buffer_attrcount + scan_el_attrcount; 2188 attr = kzalloc_objs(*attr, attrn + 1); 2189 if (!attr) { 2190 ret = -ENOMEM; 2191 goto error_free_scan_mask; 2192 } 2193 2194 memcpy(attr, iio_buffer_attrs, sizeof(iio_buffer_attrs)); 2195 if (!buffer->access->set_length) 2196 attr[0] = &dev_attr_length_ro.attr; 2197 2198 if (buffer->access->flags & INDIO_BUFFER_FLAG_FIXED_WATERMARK) 2199 attr[2] = &dev_attr_watermark_ro.attr; 2200 2201 if (buffer->attrs) 2202 for (i = 0, id_attr = buffer->attrs[i]; 2203 (id_attr = buffer->attrs[i]); i++) 2204 attr[ARRAY_SIZE(iio_buffer_attrs) + i] = 2205 (struct attribute *)&id_attr->dev_attr.attr; 2206 2207 buffer->buffer_group.attrs = attr; 2208 2209 for (i = 0; i < buffer_attrcount; i++) { 2210 struct attribute *wrapped; 2211 2212 wrapped = iio_buffer_wrap_attr(buffer, attr[i]); 2213 if (!wrapped) { 2214 ret = -ENOMEM; 2215 goto error_free_buffer_attrs; 2216 } 2217 attr[i] = wrapped; 2218 } 2219 2220 attrn = 0; 2221 list_for_each_entry(p, &buffer->buffer_attr_list, l) 2222 attr[attrn++] = &p->dev_attr.attr; 2223 2224 buffer->buffer_group.name = kasprintf(GFP_KERNEL, "buffer%d", index); 2225 if (!buffer->buffer_group.name) { 2226 ret = -ENOMEM; 2227 goto error_free_buffer_attrs; 2228 } 2229 2230 ret = iio_device_register_sysfs_group(indio_dev, &buffer->buffer_group); 2231 if (ret) 2232 goto error_free_buffer_attr_group_name; 2233 2234 /* we only need to register the legacy groups for the first buffer */ 2235 if (index > 0) 2236 return 0; 2237 2238 ret = iio_buffer_register_legacy_sysfs_groups(indio_dev, attr, 2239 buffer_attrcount, 2240 scan_el_attrcount); 2241 if (ret) 2242 goto error_free_buffer_attr_group_name; 2243 2244 return 0; 2245 2246 error_free_buffer_attr_group_name: 2247 kfree(buffer->buffer_group.name); 2248 error_free_buffer_attrs: 2249 kfree(buffer->buffer_group.attrs); 2250 error_free_scan_mask: 2251 bitmap_free(buffer->scan_mask); 2252 error_cleanup_dynamic: 2253 iio_free_chan_devattr_list(&buffer->buffer_attr_list); 2254 2255 return ret; 2256 } 2257 2258 static void __iio_buffer_free_sysfs_and_mask(struct iio_buffer *buffer, 2259 struct iio_dev *indio_dev, 2260 int index) 2261 { 2262 if (index == 0) 2263 iio_buffer_unregister_legacy_sysfs_groups(indio_dev); 2264 bitmap_free(buffer->scan_mask); 2265 kfree(buffer->buffer_group.name); 2266 kfree(buffer->buffer_group.attrs); 2267 iio_free_chan_devattr_list(&buffer->buffer_attr_list); 2268 } 2269 2270 int iio_buffers_alloc_sysfs_and_mask(struct iio_dev *indio_dev) 2271 { 2272 struct iio_dev_opaque *iio_dev_opaque = to_iio_dev_opaque(indio_dev); 2273 const struct iio_chan_spec *channels; 2274 struct iio_buffer *buffer; 2275 int ret, i, idx; 2276 size_t sz; 2277 2278 channels = indio_dev->channels; 2279 if (channels) { 2280 int ml = 0; 2281 2282 for (i = 0; i < indio_dev->num_channels; i++) 2283 ml = max(ml, channels[i].scan_index + 1); 2284 ACCESS_PRIVATE(indio_dev, masklength) = ml; 2285 } 2286 2287 if (!iio_dev_opaque->attached_buffers_cnt) 2288 return 0; 2289 2290 for (idx = 0; idx < iio_dev_opaque->attached_buffers_cnt; idx++) { 2291 buffer = iio_dev_opaque->attached_buffers[idx]; 2292 ret = __iio_buffer_alloc_sysfs_and_mask(buffer, indio_dev, idx); 2293 if (ret) 2294 goto error_unwind_sysfs_and_mask; 2295 } 2296 2297 sz = sizeof(*iio_dev_opaque->buffer_ioctl_handler); 2298 iio_dev_opaque->buffer_ioctl_handler = kzalloc(sz, GFP_KERNEL); 2299 if (!iio_dev_opaque->buffer_ioctl_handler) { 2300 ret = -ENOMEM; 2301 goto error_unwind_sysfs_and_mask; 2302 } 2303 2304 iio_dev_opaque->buffer_ioctl_handler->ioctl = iio_device_buffer_ioctl; 2305 iio_device_ioctl_handler_register(indio_dev, 2306 iio_dev_opaque->buffer_ioctl_handler); 2307 2308 return 0; 2309 2310 error_unwind_sysfs_and_mask: 2311 while (idx--) { 2312 buffer = iio_dev_opaque->attached_buffers[idx]; 2313 __iio_buffer_free_sysfs_and_mask(buffer, indio_dev, idx); 2314 } 2315 return ret; 2316 } 2317 2318 void iio_buffers_free_sysfs_and_mask(struct iio_dev *indio_dev) 2319 { 2320 struct iio_dev_opaque *iio_dev_opaque = to_iio_dev_opaque(indio_dev); 2321 struct iio_buffer *buffer; 2322 int i; 2323 2324 if (!iio_dev_opaque->attached_buffers_cnt) 2325 return; 2326 2327 iio_device_ioctl_handler_unregister(iio_dev_opaque->buffer_ioctl_handler); 2328 kfree(iio_dev_opaque->buffer_ioctl_handler); 2329 2330 for (i = iio_dev_opaque->attached_buffers_cnt - 1; i >= 0; i--) { 2331 buffer = iio_dev_opaque->attached_buffers[i]; 2332 __iio_buffer_free_sysfs_and_mask(buffer, indio_dev, i); 2333 } 2334 } 2335 2336 /** 2337 * iio_validate_scan_mask_onehot() - Validates that exactly one channel is selected 2338 * @indio_dev: the iio device 2339 * @mask: scan mask to be checked 2340 * 2341 * Return true if exactly one bit is set in the scan mask, false otherwise. It 2342 * can be used for devices where only one channel can be active for sampling at 2343 * a time. 2344 */ 2345 bool iio_validate_scan_mask_onehot(struct iio_dev *indio_dev, 2346 const unsigned long *mask) 2347 { 2348 return bitmap_weight(mask, iio_get_masklength(indio_dev)) == 1; 2349 } 2350 EXPORT_SYMBOL_GPL(iio_validate_scan_mask_onehot); 2351 2352 static const void *iio_demux(struct iio_buffer *buffer, 2353 const void *datain) 2354 { 2355 struct iio_demux_table *t; 2356 2357 if (list_empty(&buffer->demux_list)) 2358 return datain; 2359 list_for_each_entry(t, &buffer->demux_list, l) 2360 memcpy(buffer->demux_bounce + t->to, 2361 datain + t->from, t->length); 2362 2363 return buffer->demux_bounce; 2364 } 2365 2366 static int iio_push_to_buffer(struct iio_buffer *buffer, const void *data) 2367 { 2368 const void *dataout = iio_demux(buffer, data); 2369 int ret; 2370 2371 ret = buffer->access->store_to(buffer, dataout); 2372 if (ret) 2373 return ret; 2374 2375 /* 2376 * We can't just test for watermark to decide if we wake the poll queue 2377 * because read may request less samples than the watermark. 2378 */ 2379 wake_up_interruptible_poll(&buffer->pollq, EPOLLIN | EPOLLRDNORM); 2380 return 0; 2381 } 2382 2383 /** 2384 * iio_push_to_buffers() - push to a registered buffer. 2385 * @indio_dev: iio_dev structure for device. 2386 * @data: Full scan. 2387 * 2388 * Context: Any context. 2389 * Return: 0 on success, negative error code on failure. 2390 */ 2391 int iio_push_to_buffers(struct iio_dev *indio_dev, const void *data) 2392 { 2393 struct iio_dev_opaque *iio_dev_opaque = to_iio_dev_opaque(indio_dev); 2394 int ret; 2395 struct iio_buffer *buf; 2396 2397 list_for_each_entry(buf, &iio_dev_opaque->buffer_list, buffer_list) { 2398 ret = iio_push_to_buffer(buf, data); 2399 if (ret < 0) 2400 return ret; 2401 } 2402 2403 return 0; 2404 } 2405 EXPORT_SYMBOL_GPL(iio_push_to_buffers); 2406 2407 /** 2408 * iio_push_to_buffers_with_ts_unaligned() - push to registered buffer, 2409 * no alignment or space requirements. 2410 * @indio_dev: iio_dev structure for device. 2411 * @data: channel data excluding the timestamp. 2412 * @data_sz: size of data. 2413 * @timestamp: timestamp for the sample data. 2414 * 2415 * This special variant of iio_push_to_buffers_with_timestamp() does 2416 * not require space for the timestamp, or 8 byte alignment of data. 2417 * It does however require an allocation on first call and additional 2418 * copies on all calls, so should be avoided if possible. 2419 * 2420 * Context: May sleep. 2421 * Return: 0 on success, negative error code on failure. 2422 */ 2423 int iio_push_to_buffers_with_ts_unaligned(struct iio_dev *indio_dev, 2424 const void *data, 2425 size_t data_sz, 2426 int64_t timestamp) 2427 { 2428 struct iio_dev_opaque *iio_dev_opaque = to_iio_dev_opaque(indio_dev); 2429 2430 might_sleep(); 2431 2432 /* 2433 * Conservative estimate - we can always safely copy the minimum 2434 * of either the data provided or the length of the destination buffer. 2435 * This relaxed limit allows the calling drivers to be lax about 2436 * tracking the size of the data they are pushing, at the cost of 2437 * unnecessary copying of padding. 2438 */ 2439 data_sz = min_t(size_t, indio_dev->scan_bytes, data_sz); 2440 if (iio_dev_opaque->bounce_buffer_size != indio_dev->scan_bytes) { 2441 void *bb; 2442 2443 bb = devm_krealloc(&indio_dev->dev, 2444 iio_dev_opaque->bounce_buffer, 2445 indio_dev->scan_bytes, GFP_KERNEL); 2446 if (!bb) 2447 return -ENOMEM; 2448 iio_dev_opaque->bounce_buffer = bb; 2449 iio_dev_opaque->bounce_buffer_size = indio_dev->scan_bytes; 2450 } 2451 memcpy(iio_dev_opaque->bounce_buffer, data, data_sz); 2452 return iio_push_to_buffers_with_timestamp(indio_dev, 2453 iio_dev_opaque->bounce_buffer, 2454 timestamp); 2455 } 2456 EXPORT_SYMBOL_GPL(iio_push_to_buffers_with_ts_unaligned); 2457 2458 /** 2459 * iio_buffer_release() - Free a buffer's resources 2460 * @ref: Pointer to the kref embedded in the iio_buffer struct 2461 * 2462 * This function is called when the last reference to the buffer has been 2463 * dropped. It will typically free all resources allocated by the buffer. Do not 2464 * call this function manually, always use iio_buffer_put() when done using a 2465 * buffer. 2466 */ 2467 static void iio_buffer_release(struct kref *ref) 2468 { 2469 struct iio_buffer *buffer = container_of(ref, struct iio_buffer, ref); 2470 2471 mutex_destroy(&buffer->dmabufs_mutex); 2472 buffer->access->release(buffer); 2473 } 2474 2475 /** 2476 * iio_buffer_get() - Grab a reference to the buffer 2477 * @buffer: The buffer to grab a reference for, may be NULL 2478 * 2479 * Returns the pointer to the buffer that was passed into the function. 2480 */ 2481 struct iio_buffer *iio_buffer_get(struct iio_buffer *buffer) 2482 { 2483 if (buffer) 2484 kref_get(&buffer->ref); 2485 2486 return buffer; 2487 } 2488 EXPORT_SYMBOL_GPL(iio_buffer_get); 2489 2490 /** 2491 * iio_buffer_put() - Release the reference to the buffer 2492 * @buffer: The buffer to release the reference for, may be NULL 2493 */ 2494 void iio_buffer_put(struct iio_buffer *buffer) 2495 { 2496 if (buffer) 2497 kref_put(&buffer->ref, iio_buffer_release); 2498 } 2499 EXPORT_SYMBOL_GPL(iio_buffer_put); 2500 2501 /** 2502 * iio_device_attach_buffer - Attach a buffer to a IIO device 2503 * @indio_dev: The device the buffer should be attached to 2504 * @buffer: The buffer to attach to the device 2505 * 2506 * Return 0 if successful, negative if error. 2507 * 2508 * This function attaches a buffer to a IIO device. The buffer stays attached to 2509 * the device until the device is freed. For legacy reasons, the first attached 2510 * buffer will also be assigned to 'indio_dev->buffer'. 2511 * The array allocated here, will be free'd via the iio_device_detach_buffers() 2512 * call which is handled by the iio_device_free(). 2513 */ 2514 int iio_device_attach_buffer(struct iio_dev *indio_dev, 2515 struct iio_buffer *buffer) 2516 { 2517 struct iio_dev_opaque *iio_dev_opaque = to_iio_dev_opaque(indio_dev); 2518 struct iio_buffer **new, **old = iio_dev_opaque->attached_buffers; 2519 unsigned int cnt = iio_dev_opaque->attached_buffers_cnt; 2520 2521 cnt++; 2522 2523 new = krealloc(old, sizeof(*new) * cnt, GFP_KERNEL); 2524 if (!new) 2525 return -ENOMEM; 2526 iio_dev_opaque->attached_buffers = new; 2527 2528 buffer = iio_buffer_get(buffer); 2529 2530 /* first buffer is legacy; attach it to the IIO device directly */ 2531 if (!indio_dev->buffer) 2532 indio_dev->buffer = buffer; 2533 2534 iio_dev_opaque->attached_buffers[cnt - 1] = buffer; 2535 iio_dev_opaque->attached_buffers_cnt = cnt; 2536 2537 return 0; 2538 } 2539 EXPORT_SYMBOL_GPL(iio_device_attach_buffer); 2540