1 /* 2 * (C) Copyright IBM Corporation 2006 3 * All Rights Reserved. 4 * 5 * Permission is hereby granted, free of charge, to any person obtaining a 6 * copy of this software and associated documentation files (the "Software"), 7 * to deal in the Software without restriction, including without limitation 8 * on the rights to use, copy, modify, merge, publish, distribute, sub 9 * license, and/or sell copies of the Software, and to permit persons to whom 10 * the Software is furnished to do so, subject to the following conditions: 11 * 12 * The above copyright notice and this permission notice (including the next 13 * paragraph) shall be included in all copies or substantial portions of the 14 * Software. 15 * 16 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR 17 * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY, 18 * FITNESS FOR A PARTICULAR PURPOSE AND NON-INFRINGEMENT. IN NO EVENT SHALL 19 * IBM AND/OR THEIR SUPPLIERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER 20 * LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING 21 * FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER 22 * DEALINGS IN THE SOFTWARE. 23 */ 24 25 /** 26 * \file linux_sysfs.c 27 * Access PCI subsystem using Linux's sysfs interface. This interface is 28 * available starting somewhere in the late 2.5.x kernel phase, and is the 29 * preferred method on all 2.6.x kernels. 30 * 31 * \author Ian Romanick <[email protected]> 32 */ 33 34 #define _GNU_SOURCE 35 36 #include <stdlib.h> 37 #include <string.h> 38 #include <stdio.h> 39 #include <unistd.h> 40 #include <sys/types.h> 41 #include <sys/stat.h> 42 #include <fcntl.h> 43 #include <sys/mman.h> 44 #include <dirent.h> 45 #include <errno.h> 46 47 #include "config.h" 48 49 #ifdef HAVE_MTRR 50 #include <asm/mtrr.h> 51 #include <sys/ioctl.h> 52 #endif 53 54 #include "pciaccess.h" 55 #include "pciaccess_private.h" 56 #include "linux_devmem.h" 57 58 static const struct pci_system_methods linux_sysfs_methods; 59 60 #define SYS_BUS_PCI "/sys/bus/pci/devices" 61 62 static int 63 pci_device_linux_sysfs_read( struct pci_device * dev, void * data, 64 pciaddr_t offset, pciaddr_t size, 65 pciaddr_t * bytes_read ); 66 67 static int populate_entries(struct pci_system * pci_sys); 68 69 /** 70 * Attempt to access PCI subsystem using Linux's sysfs interface. 71 */ 72 _pci_hidden int 73 pci_system_linux_sysfs_create( void ) 74 { 75 int err = 0; 76 struct stat st; 77 78 79 /* If the directory "/sys/bus/pci/devices" exists, then the PCI subsystem 80 * can be accessed using this interface. 81 */ 82 83 if ( stat( SYS_BUS_PCI, & st ) == 0 ) { 84 pci_sys = calloc( 1, sizeof( struct pci_system ) ); 85 if ( pci_sys != NULL ) { 86 pci_sys->methods = & linux_sysfs_methods; 87 #ifdef HAVE_MTRR 88 pci_sys->mtrr_fd = open("/proc/mtrr", O_WRONLY); 89 #endif 90 err = populate_entries(pci_sys); 91 } 92 else { 93 err = ENOMEM; 94 } 95 } 96 else { 97 err = errno; 98 } 99 100 return err; 101 } 102 103 104 /** 105 * Filter out the names "." and ".." from the scanned sysfs entries. 106 * 107 * \param d Directory entry being processed by \c scandir. 108 * 109 * \return 110 * Zero if the entry name matches either "." or "..", non-zero otherwise. 111 * 112 * \sa scandir, populate_entries 113 */ 114 static int 115 scan_sys_pci_filter( const struct dirent * d ) 116 { 117 return !((strcmp( d->d_name, "." ) == 0) 118 || (strcmp( d->d_name, ".." ) == 0)); 119 } 120 121 122 int 123 populate_entries( struct pci_system * p ) 124 { 125 struct dirent ** devices = NULL; 126 int n; 127 int i; 128 int err = 0; 129 130 131 n = scandir( SYS_BUS_PCI, & devices, scan_sys_pci_filter, alphasort ); 132 if ( n > 0 ) { 133 p->num_devices = n; 134 p->devices = calloc( n, sizeof( struct pci_device_private ) ); 135 136 if (p->devices != NULL) { 137 for (i = 0 ; i < n ; i++) { 138 uint8_t config[48]; 139 pciaddr_t bytes; 140 unsigned dom, bus, dev, func; 141 struct pci_device_private *device = 142 (struct pci_device_private *) &p->devices[i]; 143 144 145 sscanf(devices[i]->d_name, "%04x:%02x:%02x.%1u", 146 & dom, & bus, & dev, & func); 147 148 device->base.domain = dom; 149 device->base.bus = bus; 150 device->base.dev = dev; 151 device->base.func = func; 152 153 154 err = pci_device_linux_sysfs_read(& device->base, config, 0, 155 48, & bytes); 156 if ((bytes == 48) && !err) { 157 device->base.vendor_id = (uint16_t)config[0] 158 + ((uint16_t)config[1] << 8); 159 device->base.device_id = (uint16_t)config[2] 160 + ((uint16_t)config[3] << 8); 161 device->base.device_class = (uint32_t)config[9] 162 + ((uint32_t)config[10] << 8) 163 + ((uint32_t)config[11] << 16); 164 device->base.revision = config[8]; 165 device->base.subvendor_id = (uint16_t)config[44] 166 + ((uint16_t)config[45] << 8); 167 device->base.subdevice_id = (uint16_t)config[46] 168 + ((uint16_t)config[47] << 8); 169 } 170 171 if (err) { 172 break; 173 } 174 } 175 } 176 else { 177 err = ENOMEM; 178 } 179 } 180 181 for (i = 0; i < n; i++) 182 free(devices[i]); 183 free(devices); 184 185 if (err) { 186 free(p->devices); 187 p->devices = NULL; 188 } 189 190 return err; 191 } 192 193 194 static int 195 pci_device_linux_sysfs_probe( struct pci_device * dev ) 196 { 197 char name[256]; 198 uint8_t config[256]; 199 char resource[512]; 200 int fd; 201 pciaddr_t bytes; 202 unsigned i; 203 int err; 204 205 206 err = pci_device_linux_sysfs_read( dev, config, 0, 256, & bytes ); 207 if ( bytes >= 64 ) { 208 struct pci_device_private *priv = (struct pci_device_private *) dev; 209 210 dev->irq = config[60]; 211 priv->header_type = config[14]; 212 213 214 /* The PCI config registers can be used to obtain information 215 * about the memory and I/O regions for the device. However, 216 * doing so requires some tricky parsing (to correctly handle 217 * 64-bit memory regions) and requires writing to the config 218 * registers. Since we'd like to avoid having to deal with the 219 * parsing issues and non-root users can write to PCI config 220 * registers, we use a different file in the device's sysfs 221 * directory called "resource". 222 * 223 * The resource file contains all of the needed information in 224 * a format that is consistent across all platforms. Each BAR 225 * and the expansion ROM have a single line of data containing 226 * 3, 64-bit hex values: the first address in the region, 227 * the last address in the region, and the region's flags. 228 */ 229 snprintf( name, 255, "%s/%04x:%02x:%02x.%1u/resource", 230 SYS_BUS_PCI, 231 dev->domain, 232 dev->bus, 233 dev->dev, 234 dev->func ); 235 fd = open( name, O_RDONLY ); 236 if ( fd != -1 ) { 237 char * next; 238 pciaddr_t low_addr; 239 pciaddr_t high_addr; 240 pciaddr_t flags; 241 242 243 bytes = read( fd, resource, 512 ); 244 resource[511] = '\0'; 245 246 close( fd ); 247 248 next = resource; 249 for ( i = 0 ; i < 6 ; i++ ) { 250 251 dev->regions[i].base_addr = strtoull( next, & next, 16 ); 252 high_addr = strtoull( next, & next, 16 ); 253 flags = strtoull( next, & next, 16 ); 254 255 if ( dev->regions[i].base_addr != 0 ) { 256 dev->regions[i].size = (high_addr 257 - dev->regions[i].base_addr) + 1; 258 259 dev->regions[i].is_IO = (flags & 0x01); 260 dev->regions[i].is_64 = (flags & 0x04); 261 dev->regions[i].is_prefetchable = (flags & 0x08); 262 } 263 } 264 265 low_addr = strtoull( next, & next, 16 ); 266 high_addr = strtoull( next, & next, 16 ); 267 flags = strtoull( next, & next, 16 ); 268 if ( low_addr != 0 ) { 269 priv->rom_base = low_addr; 270 dev->rom_size = (high_addr - low_addr) + 1; 271 } 272 } 273 } 274 275 return err; 276 } 277 278 279 static int 280 pci_device_linux_sysfs_read_rom( struct pci_device * dev, void * buffer ) 281 { 282 char name[256]; 283 int fd; 284 struct stat st; 285 int err = 0; 286 size_t rom_size; 287 size_t total_bytes; 288 289 290 snprintf( name, 255, "%s/%04x:%02x:%02x.%1u/rom", 291 SYS_BUS_PCI, 292 dev->domain, 293 dev->bus, 294 dev->dev, 295 dev->func ); 296 297 fd = open( name, O_RDWR ); 298 if ( fd == -1 ) { 299 #ifdef LINUX_ROM 300 /* If reading the ROM using sysfs fails, fall back to the old 301 * /dev/mem based interface. 302 * disable this for newer kernels using configure 303 */ 304 return pci_device_linux_devmem_read_rom(dev, buffer); 305 #else 306 return errno; 307 #endif 308 } 309 310 311 if ( fstat( fd, & st ) == -1 ) { 312 close( fd ); 313 return errno; 314 } 315 316 rom_size = st.st_size; 317 if ( rom_size == 0 ) 318 rom_size = 0x10000; 319 320 /* This is a quirky thing on Linux. Even though the ROM and the file 321 * for the ROM in sysfs are read-only, the string "1" must be written to 322 * the file to enable the ROM. After the data has been read, "0" must be 323 * written to the file to disable the ROM. 324 */ 325 write( fd, "1", 1 ); 326 lseek( fd, 0, SEEK_SET ); 327 328 for ( total_bytes = 0 ; total_bytes < rom_size ; /* empty */ ) { 329 const int bytes = read( fd, (char *) buffer + total_bytes, 330 rom_size - total_bytes ); 331 if ( bytes == -1 ) { 332 err = errno; 333 break; 334 } 335 else if ( bytes == 0 ) { 336 break; 337 } 338 339 total_bytes += bytes; 340 } 341 342 343 lseek( fd, 0, SEEK_SET ); 344 write( fd, "0", 1 ); 345 346 close( fd ); 347 return err; 348 } 349 350 351 static int 352 pci_device_linux_sysfs_read( struct pci_device * dev, void * data, 353 pciaddr_t offset, pciaddr_t size, 354 pciaddr_t * bytes_read ) 355 { 356 char name[256]; 357 pciaddr_t temp_size = size; 358 int err = 0; 359 int fd; 360 char *data_bytes = data; 361 362 if ( bytes_read != NULL ) { 363 *bytes_read = 0; 364 } 365 366 /* Each device has a directory under sysfs. Within that directory there 367 * is a file named "config". This file used to access the PCI config 368 * space. It is used here to obtain most of the information about the 369 * device. 370 */ 371 snprintf( name, 255, "%s/%04x:%02x:%02x.%1u/config", 372 SYS_BUS_PCI, 373 dev->domain, 374 dev->bus, 375 dev->dev, 376 dev->func ); 377 378 fd = open( name, O_RDONLY ); 379 if ( fd == -1 ) { 380 return errno; 381 } 382 383 384 while ( temp_size > 0 ) { 385 const ssize_t bytes = pread64( fd, data_bytes, temp_size, offset ); 386 387 /* If zero bytes were read, then we assume it's the end of the 388 * config file. 389 */ 390 if (bytes == 0) 391 break; 392 if ( bytes < 0 ) { 393 err = errno; 394 break; 395 } 396 397 temp_size -= bytes; 398 offset += bytes; 399 data_bytes += bytes; 400 } 401 402 if ( bytes_read != NULL ) { 403 *bytes_read = size - temp_size; 404 } 405 406 close( fd ); 407 return err; 408 } 409 410 411 static int 412 pci_device_linux_sysfs_write( struct pci_device * dev, const void * data, 413 pciaddr_t offset, pciaddr_t size, 414 pciaddr_t * bytes_written ) 415 { 416 char name[256]; 417 pciaddr_t temp_size = size; 418 int err = 0; 419 int fd; 420 const char *data_bytes = data; 421 422 if ( bytes_written != NULL ) { 423 *bytes_written = 0; 424 } 425 426 /* Each device has a directory under sysfs. Within that directory there 427 * is a file named "config". This file used to access the PCI config 428 * space. It is used here to obtain most of the information about the 429 * device. 430 */ 431 snprintf( name, 255, "%s/%04x:%02x:%02x.%1u/config", 432 SYS_BUS_PCI, 433 dev->domain, 434 dev->bus, 435 dev->dev, 436 dev->func ); 437 438 fd = open( name, O_WRONLY ); 439 if ( fd == -1 ) { 440 return errno; 441 } 442 443 444 while ( temp_size > 0 ) { 445 const ssize_t bytes = pwrite64( fd, data_bytes, temp_size, offset ); 446 447 /* If zero bytes were written, then we assume it's the end of the 448 * config file. 449 */ 450 if ( bytes == 0 ) 451 break; 452 if ( bytes < 0 ) { 453 err = errno; 454 break; 455 } 456 457 temp_size -= bytes; 458 offset += bytes; 459 data_bytes += bytes; 460 } 461 462 if ( bytes_written != NULL ) { 463 *bytes_written = size - temp_size; 464 } 465 466 close( fd ); 467 return err; 468 } 469 470 static int 471 pci_device_linux_sysfs_map_range_wc(struct pci_device *dev, 472 struct pci_device_mapping *map) 473 { 474 char name[256]; 475 int fd; 476 const int prot = ((map->flags & PCI_DEV_MAP_FLAG_WRITABLE) != 0) 477 ? (PROT_READ | PROT_WRITE) : PROT_READ; 478 const int open_flags = ((map->flags & PCI_DEV_MAP_FLAG_WRITABLE) != 0) 479 ? O_RDWR : O_RDONLY; 480 const off_t offset = map->base - dev->regions[map->region].base_addr; 481 482 snprintf(name, 255, "%s/%04x:%02x:%02x.%1u/resource%u_wc", 483 SYS_BUS_PCI, 484 dev->domain, 485 dev->bus, 486 dev->dev, 487 dev->func, 488 map->region); 489 fd = open(name, open_flags); 490 if (fd == -1) 491 return errno; 492 493 map->memory = mmap(NULL, map->size, prot, MAP_SHARED, fd, offset); 494 if (map->memory == MAP_FAILED) { 495 map->memory = NULL; 496 close(fd); 497 return errno; 498 } 499 500 close(fd); 501 502 return 0; 503 } 504 505 /** 506 * Map a memory region for a device using the Linux sysfs interface. 507 * 508 * \param dev Device whose memory region is to be mapped. 509 * \param map Parameters of the mapping that is to be created. 510 * 511 * \return 512 * Zero on success or an \c errno value on failure. 513 * 514 * \sa pci_device_map_rrange, pci_device_linux_sysfs_unmap_range 515 * 516 * \todo 517 * Some older 2.6.x kernels don't implement the resourceN files. On those 518 * systems /dev/mem must be used. On these systems it is also possible that 519 * \c mmap64 may need to be used. 520 */ 521 static int 522 pci_device_linux_sysfs_map_range(struct pci_device *dev, 523 struct pci_device_mapping *map) 524 { 525 char name[256]; 526 int fd; 527 int err = 0; 528 const int prot = ((map->flags & PCI_DEV_MAP_FLAG_WRITABLE) != 0) 529 ? (PROT_READ | PROT_WRITE) : PROT_READ; 530 const int open_flags = ((map->flags & PCI_DEV_MAP_FLAG_WRITABLE) != 0) 531 ? O_RDWR : O_RDONLY; 532 const off_t offset = map->base - dev->regions[map->region].base_addr; 533 #ifdef HAVE_MTRR 534 struct mtrr_sentry sentry = { 535 .base = map->base, 536 .size = map->size, 537 .type = MTRR_TYPE_UNCACHABLE 538 }; 539 #endif 540 541 /* For WC mappings, try sysfs resourceN_wc file first */ 542 if ((map->flags & PCI_DEV_MAP_FLAG_WRITE_COMBINE) && 543 !pci_device_linux_sysfs_map_range_wc(dev, map)) 544 return 0; 545 546 snprintf(name, 255, "%s/%04x:%02x:%02x.%1u/resource%u", 547 SYS_BUS_PCI, 548 dev->domain, 549 dev->bus, 550 dev->dev, 551 dev->func, 552 map->region); 553 554 fd = open(name, open_flags); 555 if (fd == -1) { 556 return errno; 557 } 558 559 560 map->memory = mmap(NULL, map->size, prot, MAP_SHARED, fd, offset); 561 if (map->memory == MAP_FAILED) { 562 map->memory = NULL; 563 close(fd); 564 return errno; 565 } 566 567 #ifdef HAVE_MTRR 568 if ((map->flags & PCI_DEV_MAP_FLAG_CACHABLE) != 0) { 569 sentry.type = MTRR_TYPE_WRBACK; 570 } else if ((map->flags & PCI_DEV_MAP_FLAG_WRITE_COMBINE) != 0) { 571 sentry.type = MTRR_TYPE_WRCOMB; 572 } 573 574 if (pci_sys->mtrr_fd != -1 && sentry.type != MTRR_TYPE_UNCACHABLE) { 575 if (ioctl(pci_sys->mtrr_fd, MTRRIOC_ADD_ENTRY, &sentry) < 0) { 576 /* FIXME: Should we report an error in this case? 577 */ 578 fprintf(stderr, "error setting MTRR " 579 "(base = 0x%08lx, size = 0x%08x, type = %u) %s (%d)\n", 580 sentry.base, sentry.size, sentry.type, 581 strerror(errno), errno); 582 /* err = errno;*/ 583 } 584 /* KLUDGE ALERT -- rewrite the PTEs to turn off the CD and WT bits */ 585 mprotect (map->memory, map->size, PROT_NONE); 586 err = mprotect (map->memory, map->size, PROT_READ|PROT_WRITE); 587 588 if (err != 0) { 589 fprintf(stderr, "mprotect(PROT_READ | PROT_WRITE) failed: %s\n", 590 strerror(errno)); 591 fprintf(stderr, "remapping without mprotect performance kludge.\n"); 592 593 munmap(map->memory, map->size); 594 map->memory = mmap(NULL, map->size, prot, MAP_SHARED, fd, offset); 595 if (map->memory == MAP_FAILED) { 596 map->memory = NULL; 597 close(fd); 598 return errno; 599 } 600 } 601 } 602 #endif 603 604 close(fd); 605 606 return 0; 607 } 608 609 /** 610 * Unmap a memory region for a device using the Linux sysfs interface. 611 * 612 * \param dev Device whose memory region is to be unmapped. 613 * \param map Parameters of the mapping that is to be destroyed. 614 * 615 * \return 616 * Zero on success or an \c errno value on failure. 617 * 618 * \sa pci_device_map_rrange, pci_device_linux_sysfs_map_range 619 * 620 * \todo 621 * Some older 2.6.x kernels don't implement the resourceN files. On those 622 * systems /dev/mem must be used. On these systems it is also possible that 623 * \c mmap64 may need to be used. 624 */ 625 static int 626 pci_device_linux_sysfs_unmap_range(struct pci_device *dev, 627 struct pci_device_mapping *map) 628 { 629 int err = 0; 630 #ifdef HAVE_MTRR 631 struct mtrr_sentry sentry = { 632 .base = map->base, 633 .size = map->size, 634 .type = MTRR_TYPE_UNCACHABLE 635 }; 636 #endif 637 638 err = pci_device_generic_unmap_range (dev, map); 639 if (err) 640 return err; 641 642 #ifdef HAVE_MTRR 643 if ((map->flags & PCI_DEV_MAP_FLAG_CACHABLE) != 0) { 644 sentry.type = MTRR_TYPE_WRBACK; 645 } else if ((map->flags & PCI_DEV_MAP_FLAG_WRITE_COMBINE) != 0) { 646 sentry.type = MTRR_TYPE_WRCOMB; 647 } 648 649 if (pci_sys->mtrr_fd != -1 && sentry.type != MTRR_TYPE_UNCACHABLE) { 650 if (ioctl(pci_sys->mtrr_fd, MTRRIOC_DEL_ENTRY, &sentry) < 0) { 651 /* FIXME: Should we report an error in this case? 652 */ 653 fprintf(stderr, "error setting MTRR " 654 "(base = 0x%08lx, size = 0x%08x, type = %u) %s (%d)\n", 655 sentry.base, sentry.size, sentry.type, 656 strerror(errno), errno); 657 /* err = errno;*/ 658 } 659 } 660 #endif 661 662 return err; 663 } 664 665 static void pci_device_linux_sysfs_enable(struct pci_device *dev) 666 { 667 char name[256]; 668 int fd; 669 670 snprintf( name, 255, "%s/%04x:%02x:%02x.%1u/enable", 671 SYS_BUS_PCI, 672 dev->domain, 673 dev->bus, 674 dev->dev, 675 dev->func ); 676 677 fd = open( name, O_RDWR ); 678 if (fd == -1) 679 return; 680 681 write( fd, "1", 1 ); 682 close(fd); 683 } 684 685 static int pci_device_linux_sysfs_boot_vga(struct pci_device *dev) 686 { 687 char name[256]; 688 char reply[3]; 689 int fd, bytes_read; 690 int ret = 0; 691 692 snprintf( name, 255, "%s/%04x:%02x:%02x.%1u/boot_vga", 693 SYS_BUS_PCI, 694 dev->domain, 695 dev->bus, 696 dev->dev, 697 dev->func ); 698 699 fd = open( name, O_RDONLY ); 700 if (fd == -1) 701 return 0; 702 703 bytes_read = read(fd, reply, 1); 704 if (bytes_read != 1) 705 goto out; 706 if (reply[0] == '1') 707 ret = 1; 708 out: 709 close(fd); 710 return ret; 711 } 712 713 static int pci_device_linux_sysfs_has_kernel_driver(struct pci_device *dev) 714 { 715 char name[256]; 716 struct stat dummy; 717 int ret; 718 719 snprintf( name, 255, "%s/%04x:%02x:%02x.%1u/driver", 720 SYS_BUS_PCI, 721 dev->domain, 722 dev->bus, 723 dev->dev, 724 dev->func ); 725 726 ret = stat(name, &dummy); 727 if (ret < 0) 728 return 0; 729 return 1; 730 } 731 732 static struct pci_io_handle * 733 pci_device_linux_sysfs_open_device_io(struct pci_io_handle *ret, 734 struct pci_device *dev, int bar, 735 pciaddr_t base, pciaddr_t size) 736 { 737 char name[PATH_MAX]; 738 739 snprintf(name, PATH_MAX, "%s/%04x:%02x:%02x.%1u/resource%d", 740 SYS_BUS_PCI, dev->domain, dev->bus, dev->dev, dev->func, bar); 741 742 ret->fd = open(name, O_RDWR); 743 744 if (ret->fd < 0) 745 return NULL; 746 747 ret->base = base; 748 ret->size = size; 749 750 return ret; 751 } 752 753 static struct pci_io_handle * 754 pci_device_linux_sysfs_open_legacy_io(struct pci_io_handle *ret, 755 struct pci_device *dev, pciaddr_t base, 756 pciaddr_t size) 757 { 758 char name[PATH_MAX]; 759 760 /* First check if there's a legacy io method for the device */ 761 while (dev) { 762 snprintf(name, PATH_MAX, "/sys/class/pci_bus/%04x:%02x/legacy_io", 763 dev->domain, dev->bus); 764 765 ret->fd = open(name, O_RDWR); 766 if (ret->fd >= 0) 767 break; 768 769 dev = pci_device_get_parent_bridge(dev); 770 } 771 772 /* If not, /dev/port is the best we can do */ 773 if (!dev) 774 ret->fd = open("/dev/port", O_RDWR); 775 776 if (ret->fd < 0) 777 return NULL; 778 779 ret->base = base; 780 ret->size = size; 781 782 return ret; 783 } 784 785 static void 786 pci_device_linux_sysfs_close_io(struct pci_device *dev, 787 struct pci_io_handle *handle) 788 { 789 close(handle->fd); 790 } 791 792 static uint32_t 793 pci_device_linux_sysfs_read32(struct pci_io_handle *handle, uint32_t port) 794 { 795 uint32_t ret; 796 797 pread(handle->fd, &ret, 4, port + handle->base); 798 799 return ret; 800 } 801 802 static uint16_t 803 pci_device_linux_sysfs_read16(struct pci_io_handle *handle, uint32_t port) 804 { 805 uint16_t ret; 806 807 pread(handle->fd, &ret, 2, port + handle->base); 808 809 return ret; 810 } 811 812 static uint8_t 813 pci_device_linux_sysfs_read8(struct pci_io_handle *handle, uint32_t port) 814 { 815 uint8_t ret; 816 817 pread(handle->fd, &ret, 1, port + handle->base); 818 819 return ret; 820 } 821 822 static void 823 pci_device_linux_sysfs_write32(struct pci_io_handle *handle, uint32_t port, 824 uint32_t data) 825 { 826 pwrite(handle->fd, &data, 4, port + handle->base); 827 } 828 829 static void 830 pci_device_linux_sysfs_write16(struct pci_io_handle *handle, uint32_t port, 831 uint16_t data) 832 { 833 pwrite(handle->fd, &data, 2, port + handle->base); 834 } 835 836 static void 837 pci_device_linux_sysfs_write8(struct pci_io_handle *handle, uint32_t port, 838 uint8_t data) 839 { 840 pwrite(handle->fd, &data, 1, port + handle->base); 841 } 842 843 static const struct pci_system_methods linux_sysfs_methods = { 844 .destroy = NULL, 845 .destroy_device = NULL, 846 .read_rom = pci_device_linux_sysfs_read_rom, 847 .probe = pci_device_linux_sysfs_probe, 848 .map_range = pci_device_linux_sysfs_map_range, 849 .unmap_range = pci_device_linux_sysfs_unmap_range, 850 851 .read = pci_device_linux_sysfs_read, 852 .write = pci_device_linux_sysfs_write, 853 854 .fill_capabilities = pci_fill_capabilities_generic, 855 .enable = pci_device_linux_sysfs_enable, 856 .boot_vga = pci_device_linux_sysfs_boot_vga, 857 .has_kernel_driver = pci_device_linux_sysfs_has_kernel_driver, 858 859 .open_device_io = pci_device_linux_sysfs_open_device_io, 860 .open_legacy_io = pci_device_linux_sysfs_open_legacy_io, 861 .close_io = pci_device_linux_sysfs_close_io, 862 .read32 = pci_device_linux_sysfs_read32, 863 .read16 = pci_device_linux_sysfs_read16, 864 .read8 = pci_device_linux_sysfs_read8, 865 .write32 = pci_device_linux_sysfs_write32, 866 .write16 = pci_device_linux_sysfs_write16, 867 .write8 = pci_device_linux_sysfs_write8, 868 }; 869