xref: /libpciaccess/src/linux_sysfs.c (revision b2fbe63b)
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 void pci_device_linux_sysfs_enable(struct pci_device *dev);
59 
60 static int pci_device_linux_sysfs_read_rom( struct pci_device * dev,
61     void * buffer );
62 
63 static int pci_device_linux_sysfs_probe( struct pci_device * dev );
64 
65 static int pci_device_linux_sysfs_map_range(struct pci_device *dev,
66     struct pci_device_mapping *map);
67 
68 static int pci_device_linux_sysfs_unmap_range(struct pci_device *dev,
69     struct pci_device_mapping *map);
70 
71 static int pci_device_linux_sysfs_read( struct pci_device * dev, void * data,
72     pciaddr_t offset, pciaddr_t size, pciaddr_t * bytes_read );
73 
74 static int pci_device_linux_sysfs_write( struct pci_device * dev,
75     const void * data, pciaddr_t offset, pciaddr_t size,
76     pciaddr_t * bytes_written );
77 
78 static int pci_device_linux_sysfs_boot_vga( struct pci_device * dev );
79 static int pci_device_linux_sysfs_has_kernel_driver(struct pci_device *dev);
80 
81 static const struct pci_system_methods linux_sysfs_methods = {
82     .destroy = NULL,
83     .destroy_device = NULL,
84     .read_rom = pci_device_linux_sysfs_read_rom,
85     .probe = pci_device_linux_sysfs_probe,
86     .map_range = pci_device_linux_sysfs_map_range,
87     .unmap_range = pci_device_linux_sysfs_unmap_range,
88 
89     .read = pci_device_linux_sysfs_read,
90     .write = pci_device_linux_sysfs_write,
91 
92     .fill_capabilities = pci_fill_capabilities_generic,
93     .enable = pci_device_linux_sysfs_enable,
94     .boot_vga = pci_device_linux_sysfs_boot_vga,
95     .has_kernel_driver = pci_device_linux_sysfs_has_kernel_driver,
96 };
97 
98 #define SYS_BUS_PCI "/sys/bus/pci/devices"
99 
100 
101 static int populate_entries(struct pci_system * pci_sys);
102 
103 
104 /**
105  * Attempt to access PCI subsystem using Linux's sysfs interface.
106  */
107 _pci_hidden int
108 pci_system_linux_sysfs_create( void )
109 {
110     int err = 0;
111     struct stat st;
112 
113 
114     /* If the directory "/sys/bus/pci/devices" exists, then the PCI subsystem
115      * can be accessed using this interface.
116      */
117 
118     if ( stat( SYS_BUS_PCI, & st ) == 0 ) {
119 	pci_sys = calloc( 1, sizeof( struct pci_system ) );
120 	if ( pci_sys != NULL ) {
121 	    pci_sys->methods = & linux_sysfs_methods;
122 #ifdef HAVE_MTRR
123 	    pci_sys->mtrr_fd = open("/proc/mtrr", O_WRONLY);
124 #endif
125 	    err = populate_entries(pci_sys);
126 	}
127 	else {
128 	    err = ENOMEM;
129 	}
130     }
131     else {
132 	err = errno;
133     }
134 
135     return err;
136 }
137 
138 
139 /**
140  * Filter out the names "." and ".." from the scanned sysfs entries.
141  *
142  * \param d  Directory entry being processed by \c scandir.
143  *
144  * \return
145  * Zero if the entry name matches either "." or "..", non-zero otherwise.
146  *
147  * \sa scandir, populate_entries
148  */
149 static int
150 scan_sys_pci_filter( const struct dirent * d )
151 {
152     return !((strcmp( d->d_name, "." ) == 0)
153 	     || (strcmp( d->d_name, ".." ) == 0));
154 }
155 
156 
157 int
158 populate_entries( struct pci_system * p )
159 {
160     struct dirent ** devices;
161     int n;
162     int i;
163     int err = 0;
164 
165 
166     n = scandir( SYS_BUS_PCI, & devices, scan_sys_pci_filter, alphasort );
167     if ( n > 0 ) {
168 	p->num_devices = n;
169 	p->devices = calloc( n, sizeof( struct pci_device_private ) );
170 
171 	if (p->devices != NULL) {
172 	    for (i = 0 ; i < n ; i++) {
173 		uint8_t config[48];
174 		pciaddr_t bytes;
175 		unsigned dom, bus, dev, func;
176 		struct pci_device_private *device =
177 			(struct pci_device_private *) &p->devices[i];
178 
179 
180 		sscanf(devices[i]->d_name, "%04x:%02x:%02x.%1u",
181 		       & dom, & bus, & dev, & func);
182 
183 		device->base.domain = dom;
184 		device->base.bus = bus;
185 		device->base.dev = dev;
186 		device->base.func = func;
187 
188 
189 		err = pci_device_linux_sysfs_read(& device->base, config, 0,
190 						  48, & bytes);
191 		if ((bytes == 48) && !err) {
192 		    device->base.vendor_id = (uint16_t)config[0]
193 			+ ((uint16_t)config[1] << 8);
194 		    device->base.device_id = (uint16_t)config[2]
195 			+ ((uint16_t)config[3] << 8);
196 		    device->base.device_class = (uint32_t)config[9]
197 			+ ((uint32_t)config[10] << 8)
198 			+ ((uint32_t)config[11] << 16);
199 		    device->base.revision = config[8];
200 		    device->base.subvendor_id = (uint16_t)config[44]
201 			+ ((uint16_t)config[45] << 8);
202 		    device->base.subdevice_id = (uint16_t)config[46]
203 			+ ((uint16_t)config[47] << 8);
204 		}
205 
206 		if (err) {
207 		    break;
208 		}
209 	    }
210 	}
211 	else {
212 	    err = ENOMEM;
213 	}
214     }
215 
216     for (i = 0; i < n; i++)
217 	free(devices[i]);
218     free(devices);
219 
220     if (err) {
221 	free(p->devices);
222 	p->devices = NULL;
223     }
224 
225     return err;
226 }
227 
228 
229 static int
230 pci_device_linux_sysfs_probe( struct pci_device * dev )
231 {
232     char     name[256];
233     uint8_t  config[256];
234     char     resource[512];
235     int fd;
236     pciaddr_t bytes;
237     unsigned i;
238     int err;
239 
240 
241     err = pci_device_linux_sysfs_read( dev, config, 0, 256, & bytes );
242     if ( bytes >= 64 ) {
243 	struct pci_device_private *priv = (struct pci_device_private *) dev;
244 
245 	dev->irq = config[60];
246 	priv->header_type = config[14];
247 
248 
249 	/* The PCI config registers can be used to obtain information
250 	 * about the memory and I/O regions for the device.  However,
251 	 * doing so requires some tricky parsing (to correctly handle
252 	 * 64-bit memory regions) and requires writing to the config
253 	 * registers.  Since we'd like to avoid having to deal with the
254 	 * parsing issues and non-root users can write to PCI config
255 	 * registers, we use a different file in the device's sysfs
256 	 * directory called "resource".
257 	 *
258 	 * The resource file contains all of the needed information in
259 	 * a format that is consistent across all platforms.  Each BAR
260 	 * and the expansion ROM have a single line of data containing
261 	 * 3, 64-bit hex values:  the first address in the region,
262 	 * the last address in the region, and the region's flags.
263 	 */
264 	snprintf( name, 255, "%s/%04x:%02x:%02x.%1u/resource",
265 		  SYS_BUS_PCI,
266 		  dev->domain,
267 		  dev->bus,
268 		  dev->dev,
269 		  dev->func );
270 	fd = open( name, O_RDONLY );
271 	if ( fd != -1 ) {
272 	    char * next;
273 	    pciaddr_t  low_addr;
274 	    pciaddr_t  high_addr;
275 	    pciaddr_t  flags;
276 
277 
278 	    bytes = read( fd, resource, 512 );
279 	    resource[511] = '\0';
280 
281 	    close( fd );
282 
283 	    next = resource;
284 	    for ( i = 0 ; i < 6 ; i++ ) {
285 
286 		dev->regions[i].base_addr = strtoull( next, & next, 16 );
287 		high_addr = strtoull( next, & next, 16 );
288 		flags = strtoull( next, & next, 16 );
289 
290 		if ( dev->regions[i].base_addr != 0 ) {
291 		    dev->regions[i].size = (high_addr
292 					    - dev->regions[i].base_addr) + 1;
293 
294 		    dev->regions[i].is_IO = (flags & 0x01);
295 		    dev->regions[i].is_64 = (flags & 0x04);
296 		    dev->regions[i].is_prefetchable = (flags & 0x08);
297 		}
298 	    }
299 
300 	    low_addr = strtoull( next, & next, 16 );
301 	    high_addr = strtoull( next, & next, 16 );
302 	    flags = strtoull( next, & next, 16 );
303 	    if ( low_addr != 0 ) {
304 		priv->rom_base = low_addr;
305 		dev->rom_size = (high_addr - low_addr) + 1;
306 	    }
307 	}
308     }
309 
310     return err;
311 }
312 
313 
314 static int
315 pci_device_linux_sysfs_read_rom( struct pci_device * dev, void * buffer )
316 {
317     char name[256];
318     int fd;
319     struct stat  st;
320     int err = 0;
321     size_t rom_size;
322     size_t total_bytes;
323 
324 
325     snprintf( name, 255, "%s/%04x:%02x:%02x.%1u/rom",
326 	      SYS_BUS_PCI,
327 	      dev->domain,
328 	      dev->bus,
329 	      dev->dev,
330 	      dev->func );
331 
332     fd = open( name, O_RDWR );
333     if ( fd == -1 ) {
334 #ifdef LINUX_ROM
335 	/* If reading the ROM using sysfs fails, fall back to the old
336 	 * /dev/mem based interface.
337 	 * disable this for newer kernels using configure
338 	 */
339 	return pci_device_linux_devmem_read_rom(dev, buffer);
340 #else
341 	return errno;
342 #endif
343     }
344 
345 
346     if ( fstat( fd, & st ) == -1 ) {
347 	close( fd );
348 	return errno;
349     }
350 
351     rom_size = st.st_size;
352     if ( rom_size == 0 )
353 	rom_size = 0x10000;
354 
355     /* This is a quirky thing on Linux.  Even though the ROM and the file
356      * for the ROM in sysfs are read-only, the string "1" must be written to
357      * the file to enable the ROM.  After the data has been read, "0" must be
358      * written to the file to disable the ROM.
359      */
360     write( fd, "1", 1 );
361     lseek( fd, 0, SEEK_SET );
362 
363     for ( total_bytes = 0 ; total_bytes < rom_size ; /* empty */ ) {
364 	const int bytes = read( fd, (char *) buffer + total_bytes,
365 				rom_size - total_bytes );
366 	if ( bytes == -1 ) {
367 	    err = errno;
368 	    break;
369 	}
370 	else if ( bytes == 0 ) {
371 	    break;
372 	}
373 
374 	total_bytes += bytes;
375     }
376 
377 
378     lseek( fd, 0, SEEK_SET );
379     write( fd, "0", 1 );
380 
381     close( fd );
382     return err;
383 }
384 
385 
386 static int
387 pci_device_linux_sysfs_read( struct pci_device * dev, void * data,
388 			     pciaddr_t offset, pciaddr_t size,
389 			     pciaddr_t * bytes_read )
390 {
391     char name[256];
392     pciaddr_t temp_size = size;
393     int err = 0;
394     int fd;
395     char *data_bytes = data;
396 
397     if ( bytes_read != NULL ) {
398 	*bytes_read = 0;
399     }
400 
401     /* Each device has a directory under sysfs.  Within that directory there
402      * is a file named "config".  This file used to access the PCI config
403      * space.  It is used here to obtain most of the information about the
404      * device.
405      */
406     snprintf( name, 255, "%s/%04x:%02x:%02x.%1u/config",
407 	      SYS_BUS_PCI,
408 	      dev->domain,
409 	      dev->bus,
410 	      dev->dev,
411 	      dev->func );
412 
413     fd = open( name, O_RDONLY );
414     if ( fd == -1 ) {
415 	return errno;
416     }
417 
418 
419     while ( temp_size > 0 ) {
420 	const ssize_t bytes = pread64( fd, data_bytes, temp_size, offset );
421 
422 	/* If zero bytes were read, then we assume it's the end of the
423 	 * config file.
424 	 */
425 	if ( bytes <= 0 ) {
426 	    err = errno;
427 	    break;
428 	}
429 
430 	temp_size -= bytes;
431 	offset += bytes;
432 	data_bytes += bytes;
433     }
434 
435     if ( bytes_read != NULL ) {
436 	*bytes_read = size - temp_size;
437     }
438 
439     close( fd );
440     return err;
441 }
442 
443 
444 static int
445 pci_device_linux_sysfs_write( struct pci_device * dev, const void * data,
446 			     pciaddr_t offset, pciaddr_t size,
447 			     pciaddr_t * bytes_written )
448 {
449     char name[256];
450     pciaddr_t temp_size = size;
451     int err = 0;
452     int fd;
453     const char *data_bytes = data;
454 
455     if ( bytes_written != NULL ) {
456 	*bytes_written = 0;
457     }
458 
459     /* Each device has a directory under sysfs.  Within that directory there
460      * is a file named "config".  This file used to access the PCI config
461      * space.  It is used here to obtain most of the information about the
462      * device.
463      */
464     snprintf( name, 255, "%s/%04x:%02x:%02x.%1u/config",
465 	      SYS_BUS_PCI,
466 	      dev->domain,
467 	      dev->bus,
468 	      dev->dev,
469 	      dev->func );
470 
471     fd = open( name, O_WRONLY );
472     if ( fd == -1 ) {
473 	return errno;
474     }
475 
476 
477     while ( temp_size > 0 ) {
478 	const ssize_t bytes = pwrite64( fd, data_bytes, temp_size, offset );
479 
480 	/* If zero bytes were written, then we assume it's the end of the
481 	 * config file.
482 	 */
483 	if ( bytes <= 0 ) {
484 	    err = errno;
485 	    break;
486 	}
487 
488 	temp_size -= bytes;
489 	offset += bytes;
490 	data_bytes += bytes;
491     }
492 
493     if ( bytes_written != NULL ) {
494 	*bytes_written = size - temp_size;
495     }
496 
497     close( fd );
498     return err;
499 }
500 
501 static int
502 pci_device_linux_sysfs_map_range_wc(struct pci_device *dev,
503 				    struct pci_device_mapping *map)
504 {
505     char name[256];
506     int fd;
507     const int prot = ((map->flags & PCI_DEV_MAP_FLAG_WRITABLE) != 0)
508         ? (PROT_READ | PROT_WRITE) : PROT_READ;
509     const int open_flags = ((map->flags & PCI_DEV_MAP_FLAG_WRITABLE) != 0)
510         ? O_RDWR : O_RDONLY;
511     const off_t offset = map->base - dev->regions[map->region].base_addr;
512 
513     snprintf(name, 255, "%s/%04x:%02x:%02x.%1u/resource%u_wc",
514 	     SYS_BUS_PCI,
515 	     dev->domain,
516 	     dev->bus,
517 	     dev->dev,
518 	     dev->func,
519 	     map->region);
520     fd = open(name, open_flags);
521     if (fd == -1)
522 	    return errno;
523 
524     map->memory = mmap(NULL, map->size, prot, MAP_SHARED, fd, offset);
525     if (map->memory == MAP_FAILED) {
526         map->memory = NULL;
527 	close(fd);
528 	return errno;
529     }
530 
531     close(fd);
532 
533     return 0;
534 }
535 
536 /**
537  * Map a memory region for a device using the Linux sysfs interface.
538  *
539  * \param dev   Device whose memory region is to be mapped.
540  * \param map   Parameters of the mapping that is to be created.
541  *
542  * \return
543  * Zero on success or an \c errno value on failure.
544  *
545  * \sa pci_device_map_rrange, pci_device_linux_sysfs_unmap_range
546  *
547  * \todo
548  * Some older 2.6.x kernels don't implement the resourceN files.  On those
549  * systems /dev/mem must be used.  On these systems it is also possible that
550  * \c mmap64 may need to be used.
551  */
552 static int
553 pci_device_linux_sysfs_map_range(struct pci_device *dev,
554                                  struct pci_device_mapping *map)
555 {
556     char name[256];
557     int fd;
558     int err = 0;
559     const int prot = ((map->flags & PCI_DEV_MAP_FLAG_WRITABLE) != 0)
560         ? (PROT_READ | PROT_WRITE) : PROT_READ;
561     const int open_flags = ((map->flags & PCI_DEV_MAP_FLAG_WRITABLE) != 0)
562         ? O_RDWR : O_RDONLY;
563     const off_t offset = map->base - dev->regions[map->region].base_addr;
564 #ifdef HAVE_MTRR
565     struct mtrr_sentry sentry = {
566 	.base = map->base,
567         .size = map->size,
568 	.type = MTRR_TYPE_UNCACHABLE
569     };
570 #endif
571 
572     /* For WC mappings, try sysfs resourceN_wc file first */
573     if ((map->flags & PCI_DEV_MAP_FLAG_WRITE_COMBINE) &&
574 	!pci_device_linux_sysfs_map_range_wc(dev, map))
575 	    return 0;
576 
577     snprintf(name, 255, "%s/%04x:%02x:%02x.%1u/resource%u",
578              SYS_BUS_PCI,
579              dev->domain,
580              dev->bus,
581              dev->dev,
582              dev->func,
583              map->region);
584 
585     fd = open(name, open_flags);
586     if (fd == -1) {
587         return errno;
588     }
589 
590 
591     map->memory = mmap(NULL, map->size, prot, MAP_SHARED, fd, offset);
592     if (map->memory == MAP_FAILED) {
593         map->memory = NULL;
594 	close(fd);
595 	return errno;
596     }
597 
598 #ifdef HAVE_MTRR
599     if ((map->flags & PCI_DEV_MAP_FLAG_CACHABLE) != 0) {
600         sentry.type = MTRR_TYPE_WRBACK;
601     } else if ((map->flags & PCI_DEV_MAP_FLAG_WRITE_COMBINE) != 0) {
602         sentry.type = MTRR_TYPE_WRCOMB;
603     }
604 
605     if (pci_sys->mtrr_fd != -1 && sentry.type != MTRR_TYPE_UNCACHABLE) {
606 	if (ioctl(pci_sys->mtrr_fd, MTRRIOC_ADD_ENTRY, &sentry) < 0) {
607 	    /* FIXME: Should we report an error in this case?
608 	     */
609 	    fprintf(stderr, "error setting MTRR "
610 		    "(base = 0x%08lx, size = 0x%08x, type = %u) %s (%d)\n",
611 		    sentry.base, sentry.size, sentry.type,
612 		    strerror(errno), errno);
613 /*            err = errno;*/
614 	}
615 	/* KLUDGE ALERT -- rewrite the PTEs to turn off the CD and WT bits */
616 	mprotect (map->memory, map->size, PROT_NONE);
617 	err = mprotect (map->memory, map->size, PROT_READ|PROT_WRITE);
618 
619 	if (err != 0) {
620 	    fprintf(stderr, "mprotect(PROT_READ | PROT_WRITE) failed: %s\n",
621 		    strerror(errno));
622 	    fprintf(stderr, "remapping without mprotect performance kludge.\n");
623 
624 	    munmap(map->memory, map->size);
625 	    map->memory = mmap(NULL, map->size, prot, MAP_SHARED, fd, offset);
626 	    if (map->memory == MAP_FAILED) {
627 		map->memory = NULL;
628 		close(fd);
629 		return errno;
630 	    }
631 	}
632     }
633 #endif
634 
635     close(fd);
636 
637     return 0;
638 }
639 
640 /**
641  * Unmap a memory region for a device using the Linux sysfs interface.
642  *
643  * \param dev   Device whose memory region is to be unmapped.
644  * \param map   Parameters of the mapping that is to be destroyed.
645  *
646  * \return
647  * Zero on success or an \c errno value on failure.
648  *
649  * \sa pci_device_map_rrange, pci_device_linux_sysfs_map_range
650  *
651  * \todo
652  * Some older 2.6.x kernels don't implement the resourceN files.  On those
653  * systems /dev/mem must be used.  On these systems it is also possible that
654  * \c mmap64 may need to be used.
655  */
656 static int
657 pci_device_linux_sysfs_unmap_range(struct pci_device *dev,
658 				   struct pci_device_mapping *map)
659 {
660     int err = 0;
661 #ifdef HAVE_MTRR
662     struct mtrr_sentry sentry = {
663 	.base = map->base,
664         .size = map->size,
665 	.type = MTRR_TYPE_UNCACHABLE
666     };
667 #endif
668 
669     err = pci_device_generic_unmap_range (dev, map);
670     if (err)
671 	return err;
672 
673 #ifdef HAVE_MTRR
674     if ((map->flags & PCI_DEV_MAP_FLAG_CACHABLE) != 0) {
675         sentry.type = MTRR_TYPE_WRBACK;
676     } else if ((map->flags & PCI_DEV_MAP_FLAG_WRITE_COMBINE) != 0) {
677         sentry.type = MTRR_TYPE_WRCOMB;
678     }
679 
680     if (pci_sys->mtrr_fd != -1 && sentry.type != MTRR_TYPE_UNCACHABLE) {
681 	if (ioctl(pci_sys->mtrr_fd, MTRRIOC_DEL_ENTRY, &sentry) < 0) {
682 	    /* FIXME: Should we report an error in this case?
683 	     */
684 	    fprintf(stderr, "error setting MTRR "
685 		    "(base = 0x%08lx, size = 0x%08x, type = %u) %s (%d)\n",
686 		    sentry.base, sentry.size, sentry.type,
687 		    strerror(errno), errno);
688 /*            err = errno;*/
689 	}
690     }
691 #endif
692 
693     return err;
694 }
695 
696 static void pci_device_linux_sysfs_enable(struct pci_device *dev)
697 {
698     char name[256];
699     int fd;
700 
701     snprintf( name, 255, "%s/%04x:%02x:%02x.%1u/enable",
702 	      SYS_BUS_PCI,
703 	      dev->domain,
704 	      dev->bus,
705 	      dev->dev,
706 	      dev->func );
707 
708     fd = open( name, O_RDWR );
709     if (fd == -1)
710        return;
711 
712     write( fd, "1", 1 );
713     close(fd);
714 }
715 
716 static int pci_device_linux_sysfs_boot_vga(struct pci_device *dev)
717 {
718     char name[256];
719     char reply[3];
720     int fd, bytes_read;
721     int ret = 0;
722 
723     snprintf( name, 255, "%s/%04x:%02x:%02x.%1u/boot_vga",
724 	      SYS_BUS_PCI,
725 	      dev->domain,
726 	      dev->bus,
727 	      dev->dev,
728 	      dev->func );
729 
730     fd = open( name, O_RDONLY );
731     if (fd == -1)
732        return 0;
733 
734     bytes_read = read(fd, reply, 1);
735     if (bytes_read != 1)
736 	goto out;
737     if (reply[0] == '1')
738 	ret = 1;
739 out:
740     close(fd);
741     return ret;
742 }
743 
744 static int pci_device_linux_sysfs_has_kernel_driver(struct pci_device *dev)
745 {
746     char name[256];
747     struct stat dummy;
748     int ret;
749 
750     snprintf( name, 255, "%s/%04x:%02x:%02x.%1u/driver",
751 	      SYS_BUS_PCI,
752 	      dev->domain,
753 	      dev->bus,
754 	      dev->dev,
755 	      dev->func );
756 
757     ret = stat(name, &dummy);
758     if (ret < 0)
759 	return 0;
760     return 1;
761 }
762