1 /**
2 * \file xf86drm.c
3 * User-level interface to DRM device
4 *
5 * \author Rickard E. (Rik) Faith <faith@valinux.com>
6 * \author Kevin E. Martin <martin@valinux.com>
7 */
8
9 /*
10 * Copyright 1999 Precision Insight, Inc., Cedar Park, Texas.
11 * Copyright 2000 VA Linux Systems, Inc., Sunnyvale, California.
12 * All Rights Reserved.
13 *
14 * Permission is hereby granted, free of charge, to any person obtaining a
15 * copy of this software and associated documentation files (the "Software"),
16 * to deal in the Software without restriction, including without limitation
17 * the rights to use, copy, modify, merge, publish, distribute, sublicense,
18 * and/or sell copies of the Software, and to permit persons to whom the
19 * Software is furnished to do so, subject to the following conditions:
20 *
21 * The above copyright notice and this permission notice (including the next
22 * paragraph) shall be included in all copies or substantial portions of the
23 * Software.
24 *
25 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
26 * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
27 * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL
28 * PRECISION INSIGHT AND/OR ITS SUPPLIERS BE LIABLE FOR ANY CLAIM, DAMAGES OR
29 * OTHER LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE,
30 * ARISING FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER
31 * DEALINGS IN THE SOFTWARE.
32 */
33
34 #include <stdio.h>
35 #include <stdlib.h>
36 #include <stdbool.h>
37 #include <unistd.h>
38 #include <string.h>
39 #include <strings.h>
40 #include <ctype.h>
41 #include <dirent.h>
42 #include <stddef.h>
43 #include <fcntl.h>
44 #include <errno.h>
45 #include <limits.h>
46 #include <signal.h>
47 #include <time.h>
48 #include <sys/types.h>
49 #include <sys/stat.h>
50 #define stat_t struct stat
51 #include <sys/ioctl.h>
52 #include <sys/time.h>
53 #include <stdarg.h>
54 #ifdef MAJOR_IN_MKDEV
55 #include <sys/mkdev.h>
56 #endif
57 #ifdef MAJOR_IN_SYSMACROS
58 #include <sys/sysmacros.h>
59 #endif
60 #if HAVE_SYS_SYSCTL_H
61 #include <sys/sysctl.h>
62 #endif
63 #include <math.h>
64
65 #if defined(__FreeBSD__)
66 #include <sys/param.h>
67 #include <sys/pciio.h>
68 #endif
69
70 #define ARRAY_SIZE(a) (sizeof(a) / sizeof((a)[0]))
71
72 /* Not all systems have MAP_FAILED defined */
73 #ifndef MAP_FAILED
74 #define MAP_FAILED ((void *)-1)
75 #endif
76
77 #include "xf86drm.h"
78 #include "libdrm_macros.h"
79
80 #include "util_math.h"
81
82 #ifdef __DragonFly__
83 #define DRM_MAJOR 145
84 #endif
85
86 #ifdef __NetBSD__
87 #define DRM_MAJOR 34
88 #endif
89
90 #ifdef __OpenBSD__
91 #ifdef __i386__
92 #define DRM_MAJOR 88
93 #else
94 #define DRM_MAJOR 87
95 #endif
96 #endif /* __OpenBSD__ */
97
98 #ifndef DRM_MAJOR
99 #define DRM_MAJOR 226 /* Linux */
100 #endif
101
102 #if defined(__OpenBSD__) || defined(__DragonFly__)
103 struct drm_pciinfo {
104 uint16_t domain;
105 uint8_t bus;
106 uint8_t dev;
107 uint8_t func;
108 uint16_t vendor_id;
109 uint16_t device_id;
110 uint16_t subvendor_id;
111 uint16_t subdevice_id;
112 uint8_t revision_id;
113 };
114
115 #define DRM_IOCTL_GET_PCIINFO DRM_IOR(0x15, struct drm_pciinfo)
116 #endif
117
118 #define DRM_MSG_VERBOSITY 3
119
120 #define memclear(s) memset(&s, 0, sizeof(s))
121
122 static drmServerInfoPtr drm_server_info;
123
124 static bool drmNodeIsDRM(int maj, int min);
125 static char *drmGetMinorNameForFD(int fd, int type);
126
log2_int(unsigned x)127 static unsigned log2_int(unsigned x)
128 {
129 unsigned l;
130
131 if (x < 2) {
132 return 0;
133 }
134 for (l = 2; ; l++) {
135 if ((unsigned)(1 << l) > x) {
136 return l - 1;
137 }
138 }
139 return 0;
140 }
141
142
drmSetServerInfo(drmServerInfoPtr info)143 drm_public void drmSetServerInfo(drmServerInfoPtr info)
144 {
145 drm_server_info = info;
146 }
147
148 /**
149 * Output a message to stderr.
150 *
151 * \param format printf() like format string.
152 *
153 * \internal
154 * This function is a wrapper around vfprintf().
155 */
156
157 static int DRM_PRINTFLIKE(1, 0)
drmDebugPrint(const char * format,va_list ap)158 drmDebugPrint(const char *format, va_list ap)
159 {
160 return vfprintf(stderr, format, ap);
161 }
162
163 drm_public void
drmMsg(const char * format,...)164 drmMsg(const char *format, ...)
165 {
166 va_list ap;
167 const char *env;
168 if (((env = getenv("LIBGL_DEBUG")) && strstr(env, "verbose")) ||
169 (drm_server_info && drm_server_info->debug_print))
170 {
171 va_start(ap, format);
172 if (drm_server_info) {
173 drm_server_info->debug_print(format,ap);
174 } else {
175 drmDebugPrint(format, ap);
176 }
177 va_end(ap);
178 }
179 }
180
181 static void *drmHashTable = NULL; /* Context switch callbacks */
182
drmGetHashTable(void)183 drm_public void *drmGetHashTable(void)
184 {
185 return drmHashTable;
186 }
187
drmMalloc(int size)188 drm_public void *drmMalloc(int size)
189 {
190 return calloc(1, size);
191 }
192
drmFree(void * pt)193 drm_public void drmFree(void *pt)
194 {
195 free(pt);
196 }
197
198 /**
199 * Call ioctl, restarting if it is interrupted
200 */
201 drm_public int
drmIoctl(int fd,unsigned long request,void * arg)202 drmIoctl(int fd, unsigned long request, void *arg)
203 {
204 int ret;
205
206 do {
207 ret = ioctl(fd, request, arg);
208 } while (ret == -1 && (errno == EINTR || errno == EAGAIN));
209 return ret;
210 }
211
drmGetKeyFromFd(int fd)212 static unsigned long drmGetKeyFromFd(int fd)
213 {
214 stat_t st;
215
216 st.st_rdev = 0;
217 fstat(fd, &st);
218 return st.st_rdev;
219 }
220
drmGetEntry(int fd)221 drm_public drmHashEntry *drmGetEntry(int fd)
222 {
223 unsigned long key = drmGetKeyFromFd(fd);
224 void *value;
225 drmHashEntry *entry;
226
227 if (!drmHashTable)
228 drmHashTable = drmHashCreate();
229
230 if (drmHashLookup(drmHashTable, key, &value)) {
231 entry = drmMalloc(sizeof(*entry));
232 entry->fd = fd;
233 entry->f = NULL;
234 entry->tagTable = drmHashCreate();
235 drmHashInsert(drmHashTable, key, entry);
236 } else {
237 entry = value;
238 }
239 return entry;
240 }
241
242 /**
243 * Compare two busid strings
244 *
245 * \param first
246 * \param second
247 *
248 * \return 1 if matched.
249 *
250 * \internal
251 * This function compares two bus ID strings. It understands the older
252 * PCI:b:d:f format and the newer pci:oooo:bb:dd.f format. In the format, o is
253 * domain, b is bus, d is device, f is function.
254 */
drmMatchBusID(const char * id1,const char * id2,int pci_domain_ok)255 static int drmMatchBusID(const char *id1, const char *id2, int pci_domain_ok)
256 {
257 /* First, check if the IDs are exactly the same */
258 if (strcasecmp(id1, id2) == 0)
259 return 1;
260
261 /* Try to match old/new-style PCI bus IDs. */
262 if (strncasecmp(id1, "pci", 3) == 0) {
263 unsigned int o1, b1, d1, f1;
264 unsigned int o2, b2, d2, f2;
265 int ret;
266
267 ret = sscanf(id1, "pci:%04x:%02x:%02x.%u", &o1, &b1, &d1, &f1);
268 if (ret != 4) {
269 o1 = 0;
270 ret = sscanf(id1, "PCI:%u:%u:%u", &b1, &d1, &f1);
271 if (ret != 3)
272 return 0;
273 }
274
275 ret = sscanf(id2, "pci:%04x:%02x:%02x.%u", &o2, &b2, &d2, &f2);
276 if (ret != 4) {
277 o2 = 0;
278 ret = sscanf(id2, "PCI:%u:%u:%u", &b2, &d2, &f2);
279 if (ret != 3)
280 return 0;
281 }
282
283 /* If domains aren't properly supported by the kernel interface,
284 * just ignore them, which sucks less than picking a totally random
285 * card with "open by name"
286 */
287 if (!pci_domain_ok)
288 o1 = o2 = 0;
289
290 if ((o1 != o2) || (b1 != b2) || (d1 != d2) || (f1 != f2))
291 return 0;
292 else
293 return 1;
294 }
295 return 0;
296 }
297
298 /**
299 * Handles error checking for chown call.
300 *
301 * \param path to file.
302 * \param id of the new owner.
303 * \param id of the new group.
304 *
305 * \return zero if success or -1 if failure.
306 *
307 * \internal
308 * Checks for failure. If failure was caused by signal call chown again.
309 * If any other failure happened then it will output error message using
310 * drmMsg() call.
311 */
312 #if !UDEV
chown_check_return(const char * path,uid_t owner,gid_t group)313 static int chown_check_return(const char *path, uid_t owner, gid_t group)
314 {
315 int rv;
316
317 do {
318 rv = chown(path, owner, group);
319 } while (rv != 0 && errno == EINTR);
320
321 if (rv == 0)
322 return 0;
323
324 drmMsg("Failed to change owner or group for file %s! %d: %s\n",
325 path, errno, strerror(errno));
326 return -1;
327 }
328 #endif
329
drmGetDeviceName(int type)330 static const char *drmGetDeviceName(int type)
331 {
332 switch (type) {
333 case DRM_NODE_PRIMARY:
334 return DRM_DEV_NAME;
335 case DRM_NODE_CONTROL:
336 return DRM_CONTROL_DEV_NAME;
337 case DRM_NODE_RENDER:
338 return DRM_RENDER_DEV_NAME;
339 }
340 return NULL;
341 }
342
343 /**
344 * Open the DRM device, creating it if necessary.
345 *
346 * \param dev major and minor numbers of the device.
347 * \param minor minor number of the device.
348 *
349 * \return a file descriptor on success, or a negative value on error.
350 *
351 * \internal
352 * Assembles the device name from \p minor and opens it, creating the device
353 * special file node with the major and minor numbers specified by \p dev and
354 * parent directory if necessary and was called by root.
355 */
drmOpenDevice(dev_t dev,int minor,int type)356 static int drmOpenDevice(dev_t dev, int minor, int type)
357 {
358 stat_t st;
359 const char *dev_name = drmGetDeviceName(type);
360 char buf[DRM_NODE_NAME_MAX];
361 int fd;
362 mode_t devmode = DRM_DEV_MODE, serv_mode;
363 gid_t serv_group;
364 #if !UDEV
365 int isroot = !geteuid();
366 uid_t user = DRM_DEV_UID;
367 gid_t group = DRM_DEV_GID;
368 #endif
369
370 if (!dev_name)
371 return -EINVAL;
372
373 sprintf(buf, dev_name, DRM_DIR_NAME, minor);
374 drmMsg("drmOpenDevice: node name is %s\n", buf);
375
376 if (drm_server_info && drm_server_info->get_perms) {
377 drm_server_info->get_perms(&serv_group, &serv_mode);
378 devmode = serv_mode ? serv_mode : DRM_DEV_MODE;
379 devmode &= ~(S_IXUSR|S_IXGRP|S_IXOTH);
380 }
381
382 #if !UDEV
383 if (stat(DRM_DIR_NAME, &st)) {
384 if (!isroot)
385 return DRM_ERR_NOT_ROOT;
386 mkdir(DRM_DIR_NAME, DRM_DEV_DIRMODE);
387 chown_check_return(DRM_DIR_NAME, 0, 0); /* root:root */
388 chmod(DRM_DIR_NAME, DRM_DEV_DIRMODE);
389 }
390
391 /* Check if the device node exists and create it if necessary. */
392 if (stat(buf, &st)) {
393 if (!isroot)
394 return DRM_ERR_NOT_ROOT;
395 remove(buf);
396 mknod(buf, S_IFCHR | devmode, dev);
397 }
398
399 if (drm_server_info && drm_server_info->get_perms) {
400 group = ((int)serv_group >= 0) ? serv_group : DRM_DEV_GID;
401 chown_check_return(buf, user, group);
402 chmod(buf, devmode);
403 }
404 #else
405 /* if we modprobed then wait for udev */
406 {
407 int udev_count = 0;
408 wait_for_udev:
409 if (stat(DRM_DIR_NAME, &st)) {
410 usleep(20);
411 udev_count++;
412
413 if (udev_count == 50)
414 return -1;
415 goto wait_for_udev;
416 }
417
418 if (stat(buf, &st)) {
419 usleep(20);
420 udev_count++;
421
422 if (udev_count == 50)
423 return -1;
424 goto wait_for_udev;
425 }
426 }
427 #endif
428
429 fd = open(buf, O_RDWR | O_CLOEXEC, 0);
430 drmMsg("drmOpenDevice: open result is %d, (%s)\n",
431 fd, fd < 0 ? strerror(errno) : "OK");
432 if (fd >= 0)
433 return fd;
434
435 #if !UDEV
436 /* Check if the device node is not what we expect it to be, and recreate it
437 * and try again if so.
438 */
439 if (st.st_rdev != dev) {
440 if (!isroot)
441 return DRM_ERR_NOT_ROOT;
442 remove(buf);
443 mknod(buf, S_IFCHR | devmode, dev);
444 if (drm_server_info && drm_server_info->get_perms) {
445 chown_check_return(buf, user, group);
446 chmod(buf, devmode);
447 }
448 }
449 fd = open(buf, O_RDWR | O_CLOEXEC, 0);
450 drmMsg("drmOpenDevice: open result is %d, (%s)\n",
451 fd, fd < 0 ? strerror(errno) : "OK");
452 if (fd >= 0)
453 return fd;
454
455 drmMsg("drmOpenDevice: Open failed\n");
456 remove(buf);
457 #endif
458 return -errno;
459 }
460
461
462 /**
463 * Open the DRM device
464 *
465 * \param minor device minor number.
466 * \param create allow to create the device if set.
467 *
468 * \return a file descriptor on success, or a negative value on error.
469 *
470 * \internal
471 * Calls drmOpenDevice() if \p create is set, otherwise assembles the device
472 * name from \p minor and opens it.
473 */
drmOpenMinor(int minor,int create,int type)474 static int drmOpenMinor(int minor, int create, int type)
475 {
476 int fd;
477 char buf[DRM_NODE_NAME_MAX];
478 const char *dev_name = drmGetDeviceName(type);
479
480 if (create)
481 return drmOpenDevice(makedev(DRM_MAJOR, minor), minor, type);
482
483 if (!dev_name)
484 return -EINVAL;
485
486 sprintf(buf, dev_name, DRM_DIR_NAME, minor);
487 if ((fd = open(buf, O_RDWR | O_CLOEXEC, 0)) >= 0)
488 return fd;
489 return -errno;
490 }
491
492
493 /**
494 * Determine whether the DRM kernel driver has been loaded.
495 *
496 * \return 1 if the DRM driver is loaded, 0 otherwise.
497 *
498 * \internal
499 * Determine the presence of the kernel driver by attempting to open the 0
500 * minor and get version information. For backward compatibility with older
501 * Linux implementations, /proc/dri is also checked.
502 */
drmAvailable(void)503 drm_public int drmAvailable(void)
504 {
505 drmVersionPtr version;
506 int retval = 0;
507 int fd;
508
509 if ((fd = drmOpenMinor(0, 1, DRM_NODE_PRIMARY)) < 0) {
510 #ifdef __linux__
511 /* Try proc for backward Linux compatibility */
512 if (!access("/proc/dri/0", R_OK))
513 return 1;
514 #endif
515 return 0;
516 }
517
518 if ((version = drmGetVersion(fd))) {
519 retval = 1;
520 drmFreeVersion(version);
521 }
522 close(fd);
523
524 return retval;
525 }
526
drmGetMinorBase(int type)527 static int drmGetMinorBase(int type)
528 {
529 switch (type) {
530 case DRM_NODE_PRIMARY:
531 return 0;
532 case DRM_NODE_CONTROL:
533 return 64;
534 case DRM_NODE_RENDER:
535 return 128;
536 default:
537 return -1;
538 };
539 }
540
drmGetMinorType(int major,int minor)541 static int drmGetMinorType(int major, int minor)
542 {
543 #ifdef __FreeBSD__
544 char name[SPECNAMELEN];
545 int id;
546
547 if (!devname_r(makedev(major, minor), S_IFCHR, name, sizeof(name)))
548 return -1;
549
550 if (sscanf(name, "drm/%d", &id) != 1) {
551 // If not in /dev/drm/ we have the type in the name
552 if (sscanf(name, "dri/card%d\n", &id) >= 1)
553 return DRM_NODE_PRIMARY;
554 else if (sscanf(name, "dri/control%d\n", &id) >= 1)
555 return DRM_NODE_CONTROL;
556 else if (sscanf(name, "dri/renderD%d\n", &id) >= 1)
557 return DRM_NODE_RENDER;
558 return -1;
559 }
560
561 minor = id;
562 #endif
563 int type = minor >> 6;
564
565 if (minor < 0)
566 return -1;
567
568 switch (type) {
569 case DRM_NODE_PRIMARY:
570 case DRM_NODE_CONTROL:
571 case DRM_NODE_RENDER:
572 return type;
573 default:
574 return -1;
575 }
576 }
577
drmGetMinorName(int type)578 static const char *drmGetMinorName(int type)
579 {
580 switch (type) {
581 case DRM_NODE_PRIMARY:
582 return DRM_PRIMARY_MINOR_NAME;
583 case DRM_NODE_CONTROL:
584 return DRM_CONTROL_MINOR_NAME;
585 case DRM_NODE_RENDER:
586 return DRM_RENDER_MINOR_NAME;
587 default:
588 return NULL;
589 }
590 }
591
592 /**
593 * Open the device by bus ID.
594 *
595 * \param busid bus ID.
596 * \param type device node type.
597 *
598 * \return a file descriptor on success, or a negative value on error.
599 *
600 * \internal
601 * This function attempts to open every possible minor (up to DRM_MAX_MINOR),
602 * comparing the device bus ID with the one supplied.
603 *
604 * \sa drmOpenMinor() and drmGetBusid().
605 */
drmOpenByBusid(const char * busid,int type)606 static int drmOpenByBusid(const char *busid, int type)
607 {
608 int i, pci_domain_ok = 1;
609 int fd;
610 const char *buf;
611 drmSetVersion sv;
612 int base = drmGetMinorBase(type);
613
614 if (base < 0)
615 return -1;
616
617 drmMsg("drmOpenByBusid: Searching for BusID %s\n", busid);
618 for (i = base; i < base + DRM_MAX_MINOR; i++) {
619 fd = drmOpenMinor(i, 1, type);
620 drmMsg("drmOpenByBusid: drmOpenMinor returns %d\n", fd);
621 if (fd >= 0) {
622 /* We need to try for 1.4 first for proper PCI domain support
623 * and if that fails, we know the kernel is busted
624 */
625 sv.drm_di_major = 1;
626 sv.drm_di_minor = 4;
627 sv.drm_dd_major = -1; /* Don't care */
628 sv.drm_dd_minor = -1; /* Don't care */
629 if (drmSetInterfaceVersion(fd, &sv)) {
630 #ifndef __alpha__
631 pci_domain_ok = 0;
632 #endif
633 sv.drm_di_major = 1;
634 sv.drm_di_minor = 1;
635 sv.drm_dd_major = -1; /* Don't care */
636 sv.drm_dd_minor = -1; /* Don't care */
637 drmMsg("drmOpenByBusid: Interface 1.4 failed, trying 1.1\n");
638 drmSetInterfaceVersion(fd, &sv);
639 }
640 buf = drmGetBusid(fd);
641 drmMsg("drmOpenByBusid: drmGetBusid reports %s\n", buf);
642 if (buf && drmMatchBusID(buf, busid, pci_domain_ok)) {
643 drmFreeBusid(buf);
644 return fd;
645 }
646 if (buf)
647 drmFreeBusid(buf);
648 close(fd);
649 }
650 }
651 return -1;
652 }
653
654
655 /**
656 * Open the device by name.
657 *
658 * \param name driver name.
659 * \param type the device node type.
660 *
661 * \return a file descriptor on success, or a negative value on error.
662 *
663 * \internal
664 * This function opens the first minor number that matches the driver name and
665 * isn't already in use. If it's in use it then it will already have a bus ID
666 * assigned.
667 *
668 * \sa drmOpenMinor(), drmGetVersion() and drmGetBusid().
669 */
drmOpenByName(const char * name,int type)670 static int drmOpenByName(const char *name, int type)
671 {
672 int i;
673 int fd;
674 drmVersionPtr version;
675 char * id;
676 int base = drmGetMinorBase(type);
677
678 if (base < 0)
679 return -1;
680
681 /*
682 * Open the first minor number that matches the driver name and isn't
683 * already in use. If it's in use it will have a busid assigned already.
684 */
685 for (i = base; i < base + DRM_MAX_MINOR; i++) {
686 if ((fd = drmOpenMinor(i, 1, type)) >= 0) {
687 if ((version = drmGetVersion(fd))) {
688 if (!strcmp(version->name, name)) {
689 drmFreeVersion(version);
690 id = drmGetBusid(fd);
691 drmMsg("drmGetBusid returned '%s'\n", id ? id : "NULL");
692 if (!id || !*id) {
693 if (id)
694 drmFreeBusid(id);
695 return fd;
696 } else {
697 drmFreeBusid(id);
698 }
699 } else {
700 drmFreeVersion(version);
701 }
702 }
703 close(fd);
704 }
705 }
706
707 #ifdef __linux__
708 /* Backward-compatibility /proc support */
709 for (i = 0; i < 8; i++) {
710 char proc_name[64], buf[512];
711 char *driver, *pt, *devstring;
712 int retcode;
713
714 sprintf(proc_name, "/proc/dri/%d/name", i);
715 if ((fd = open(proc_name, O_RDONLY, 0)) >= 0) {
716 retcode = read(fd, buf, sizeof(buf)-1);
717 close(fd);
718 if (retcode) {
719 buf[retcode-1] = '\0';
720 for (driver = pt = buf; *pt && *pt != ' '; ++pt)
721 ;
722 if (*pt) { /* Device is next */
723 *pt = '\0';
724 if (!strcmp(driver, name)) { /* Match */
725 for (devstring = ++pt; *pt && *pt != ' '; ++pt)
726 ;
727 if (*pt) { /* Found busid */
728 return drmOpenByBusid(++pt, type);
729 } else { /* No busid */
730 return drmOpenDevice(strtol(devstring, NULL, 0),i, type);
731 }
732 }
733 }
734 }
735 }
736 }
737 #endif
738
739 return -1;
740 }
741
742
743 /**
744 * Open the DRM device.
745 *
746 * Looks up the specified name and bus ID, and opens the device found. The
747 * entry in /dev/dri is created if necessary and if called by root.
748 *
749 * \param name driver name. Not referenced if bus ID is supplied.
750 * \param busid bus ID. Zero if not known.
751 *
752 * \return a file descriptor on success, or a negative value on error.
753 *
754 * \internal
755 * It calls drmOpenByBusid() if \p busid is specified or drmOpenByName()
756 * otherwise.
757 */
drmOpen(const char * name,const char * busid)758 drm_public int drmOpen(const char *name, const char *busid)
759 {
760 return drmOpenWithType(name, busid, DRM_NODE_PRIMARY);
761 }
762
763 /**
764 * Open the DRM device with specified type.
765 *
766 * Looks up the specified name and bus ID, and opens the device found. The
767 * entry in /dev/dri is created if necessary and if called by root.
768 *
769 * \param name driver name. Not referenced if bus ID is supplied.
770 * \param busid bus ID. Zero if not known.
771 * \param type the device node type to open, PRIMARY, CONTROL or RENDER
772 *
773 * \return a file descriptor on success, or a negative value on error.
774 *
775 * \internal
776 * It calls drmOpenByBusid() if \p busid is specified or drmOpenByName()
777 * otherwise.
778 */
drmOpenWithType(const char * name,const char * busid,int type)779 drm_public int drmOpenWithType(const char *name, const char *busid, int type)
780 {
781 if (name != NULL && drm_server_info &&
782 drm_server_info->load_module && !drmAvailable()) {
783 /* try to load the kernel module */
784 if (!drm_server_info->load_module(name)) {
785 drmMsg("[drm] failed to load kernel module \"%s\"\n", name);
786 return -1;
787 }
788 }
789
790 if (busid) {
791 int fd = drmOpenByBusid(busid, type);
792 if (fd >= 0)
793 return fd;
794 }
795
796 if (name)
797 return drmOpenByName(name, type);
798
799 return -1;
800 }
801
drmOpenControl(int minor)802 drm_public int drmOpenControl(int minor)
803 {
804 return drmOpenMinor(minor, 0, DRM_NODE_CONTROL);
805 }
806
drmOpenRender(int minor)807 drm_public int drmOpenRender(int minor)
808 {
809 return drmOpenMinor(minor, 0, DRM_NODE_RENDER);
810 }
811
812 /**
813 * Free the version information returned by drmGetVersion().
814 *
815 * \param v pointer to the version information.
816 *
817 * \internal
818 * It frees the memory pointed by \p %v as well as all the non-null strings
819 * pointers in it.
820 */
drmFreeVersion(drmVersionPtr v)821 drm_public void drmFreeVersion(drmVersionPtr v)
822 {
823 if (!v)
824 return;
825 drmFree(v->name);
826 drmFree(v->date);
827 drmFree(v->desc);
828 drmFree(v);
829 }
830
831
832 /**
833 * Free the non-public version information returned by the kernel.
834 *
835 * \param v pointer to the version information.
836 *
837 * \internal
838 * Used by drmGetVersion() to free the memory pointed by \p %v as well as all
839 * the non-null strings pointers in it.
840 */
drmFreeKernelVersion(drm_version_t * v)841 static void drmFreeKernelVersion(drm_version_t *v)
842 {
843 if (!v)
844 return;
845 drmFree(v->name);
846 drmFree(v->date);
847 drmFree(v->desc);
848 drmFree(v);
849 }
850
851
852 /**
853 * Copy version information.
854 *
855 * \param d destination pointer.
856 * \param s source pointer.
857 *
858 * \internal
859 * Used by drmGetVersion() to translate the information returned by the ioctl
860 * interface in a private structure into the public structure counterpart.
861 */
drmCopyVersion(drmVersionPtr d,const drm_version_t * s)862 static void drmCopyVersion(drmVersionPtr d, const drm_version_t *s)
863 {
864 d->version_major = s->version_major;
865 d->version_minor = s->version_minor;
866 d->version_patchlevel = s->version_patchlevel;
867 d->name_len = s->name_len;
868 d->name = strdup(s->name);
869 d->date_len = s->date_len;
870 d->date = strdup(s->date);
871 d->desc_len = s->desc_len;
872 d->desc = strdup(s->desc);
873 }
874
875
876 /**
877 * Query the driver version information.
878 *
879 * \param fd file descriptor.
880 *
881 * \return pointer to a drmVersion structure which should be freed with
882 * drmFreeVersion().
883 *
884 * \note Similar information is available via /proc/dri.
885 *
886 * \internal
887 * It gets the version information via successive DRM_IOCTL_VERSION ioctls,
888 * first with zeros to get the string lengths, and then the actually strings.
889 * It also null-terminates them since they might not be already.
890 */
drmGetVersion(int fd)891 drm_public drmVersionPtr drmGetVersion(int fd)
892 {
893 drmVersionPtr retval;
894 drm_version_t *version = drmMalloc(sizeof(*version));
895
896 if (drmIoctl(fd, DRM_IOCTL_VERSION, version)) {
897 drmFreeKernelVersion(version);
898 return NULL;
899 }
900
901 if (version->name_len)
902 version->name = drmMalloc(version->name_len + 1);
903 if (version->date_len)
904 version->date = drmMalloc(version->date_len + 1);
905 if (version->desc_len)
906 version->desc = drmMalloc(version->desc_len + 1);
907
908 if (drmIoctl(fd, DRM_IOCTL_VERSION, version)) {
909 drmMsg("DRM_IOCTL_VERSION: %s\n", strerror(errno));
910 drmFreeKernelVersion(version);
911 return NULL;
912 }
913
914 /* The results might not be null-terminated strings, so terminate them. */
915 if (version->name_len) version->name[version->name_len] = '\0';
916 if (version->date_len) version->date[version->date_len] = '\0';
917 if (version->desc_len) version->desc[version->desc_len] = '\0';
918
919 retval = drmMalloc(sizeof(*retval));
920 drmCopyVersion(retval, version);
921 drmFreeKernelVersion(version);
922 return retval;
923 }
924
925
926 /**
927 * Get version information for the DRM user space library.
928 *
929 * This version number is driver independent.
930 *
931 * \param fd file descriptor.
932 *
933 * \return version information.
934 *
935 * \internal
936 * This function allocates and fills a drm_version structure with a hard coded
937 * version number.
938 */
drmGetLibVersion(int fd)939 drm_public drmVersionPtr drmGetLibVersion(int fd)
940 {
941 drm_version_t *version = drmMalloc(sizeof(*version));
942
943 /* Version history:
944 * NOTE THIS MUST NOT GO ABOVE VERSION 1.X due to drivers needing it
945 * revision 1.0.x = original DRM interface with no drmGetLibVersion
946 * entry point and many drm<Device> extensions
947 * revision 1.1.x = added drmCommand entry points for device extensions
948 * added drmGetLibVersion to identify libdrm.a version
949 * revision 1.2.x = added drmSetInterfaceVersion
950 * modified drmOpen to handle both busid and name
951 * revision 1.3.x = added server + memory manager
952 */
953 version->version_major = 1;
954 version->version_minor = 3;
955 version->version_patchlevel = 0;
956
957 return (drmVersionPtr)version;
958 }
959
drmGetCap(int fd,uint64_t capability,uint64_t * value)960 drm_public int drmGetCap(int fd, uint64_t capability, uint64_t *value)
961 {
962 struct drm_get_cap cap;
963 int ret;
964
965 memclear(cap);
966 cap.capability = capability;
967
968 ret = drmIoctl(fd, DRM_IOCTL_GET_CAP, &cap);
969 if (ret)
970 return ret;
971
972 *value = cap.value;
973 return 0;
974 }
975
drmSetClientCap(int fd,uint64_t capability,uint64_t value)976 drm_public int drmSetClientCap(int fd, uint64_t capability, uint64_t value)
977 {
978 struct drm_set_client_cap cap;
979
980 memclear(cap);
981 cap.capability = capability;
982 cap.value = value;
983
984 return drmIoctl(fd, DRM_IOCTL_SET_CLIENT_CAP, &cap);
985 }
986
987 /**
988 * Free the bus ID information.
989 *
990 * \param busid bus ID information string as given by drmGetBusid().
991 *
992 * \internal
993 * This function is just frees the memory pointed by \p busid.
994 */
drmFreeBusid(const char * busid)995 drm_public void drmFreeBusid(const char *busid)
996 {
997 drmFree((void *)busid);
998 }
999
1000
1001 /**
1002 * Get the bus ID of the device.
1003 *
1004 * \param fd file descriptor.
1005 *
1006 * \return bus ID string.
1007 *
1008 * \internal
1009 * This function gets the bus ID via successive DRM_IOCTL_GET_UNIQUE ioctls to
1010 * get the string length and data, passing the arguments in a drm_unique
1011 * structure.
1012 */
drmGetBusid(int fd)1013 drm_public char *drmGetBusid(int fd)
1014 {
1015 drm_unique_t u;
1016
1017 memclear(u);
1018
1019 if (drmIoctl(fd, DRM_IOCTL_GET_UNIQUE, &u))
1020 return NULL;
1021 u.unique = drmMalloc(u.unique_len + 1);
1022 if (drmIoctl(fd, DRM_IOCTL_GET_UNIQUE, &u)) {
1023 drmFree(u.unique);
1024 return NULL;
1025 }
1026 u.unique[u.unique_len] = '\0';
1027
1028 return u.unique;
1029 }
1030
1031
1032 /**
1033 * Set the bus ID of the device.
1034 *
1035 * \param fd file descriptor.
1036 * \param busid bus ID string.
1037 *
1038 * \return zero on success, negative on failure.
1039 *
1040 * \internal
1041 * This function is a wrapper around the DRM_IOCTL_SET_UNIQUE ioctl, passing
1042 * the arguments in a drm_unique structure.
1043 */
drmSetBusid(int fd,const char * busid)1044 drm_public int drmSetBusid(int fd, const char *busid)
1045 {
1046 drm_unique_t u;
1047
1048 memclear(u);
1049 u.unique = (char *)busid;
1050 u.unique_len = strlen(busid);
1051
1052 if (drmIoctl(fd, DRM_IOCTL_SET_UNIQUE, &u)) {
1053 return -errno;
1054 }
1055 return 0;
1056 }
1057
drmGetMagic(int fd,drm_magic_t * magic)1058 drm_public int drmGetMagic(int fd, drm_magic_t * magic)
1059 {
1060 drm_auth_t auth;
1061
1062 memclear(auth);
1063
1064 *magic = 0;
1065 if (drmIoctl(fd, DRM_IOCTL_GET_MAGIC, &auth))
1066 return -errno;
1067 *magic = auth.magic;
1068 return 0;
1069 }
1070
drmAuthMagic(int fd,drm_magic_t magic)1071 drm_public int drmAuthMagic(int fd, drm_magic_t magic)
1072 {
1073 drm_auth_t auth;
1074
1075 memclear(auth);
1076 auth.magic = magic;
1077 if (drmIoctl(fd, DRM_IOCTL_AUTH_MAGIC, &auth))
1078 return -errno;
1079 return 0;
1080 }
1081
1082 /**
1083 * Specifies a range of memory that is available for mapping by a
1084 * non-root process.
1085 *
1086 * \param fd file descriptor.
1087 * \param offset usually the physical address. The actual meaning depends of
1088 * the \p type parameter. See below.
1089 * \param size of the memory in bytes.
1090 * \param type type of the memory to be mapped.
1091 * \param flags combination of several flags to modify the function actions.
1092 * \param handle will be set to a value that may be used as the offset
1093 * parameter for mmap().
1094 *
1095 * \return zero on success or a negative value on error.
1096 *
1097 * \par Mapping the frame buffer
1098 * For the frame buffer
1099 * - \p offset will be the physical address of the start of the frame buffer,
1100 * - \p size will be the size of the frame buffer in bytes, and
1101 * - \p type will be DRM_FRAME_BUFFER.
1102 *
1103 * \par
1104 * The area mapped will be uncached. If MTRR support is available in the
1105 * kernel, the frame buffer area will be set to write combining.
1106 *
1107 * \par Mapping the MMIO register area
1108 * For the MMIO register area,
1109 * - \p offset will be the physical address of the start of the register area,
1110 * - \p size will be the size of the register area bytes, and
1111 * - \p type will be DRM_REGISTERS.
1112 * \par
1113 * The area mapped will be uncached.
1114 *
1115 * \par Mapping the SAREA
1116 * For the SAREA,
1117 * - \p offset will be ignored and should be set to zero,
1118 * - \p size will be the desired size of the SAREA in bytes,
1119 * - \p type will be DRM_SHM.
1120 *
1121 * \par
1122 * A shared memory area of the requested size will be created and locked in
1123 * kernel memory. This area may be mapped into client-space by using the handle
1124 * returned.
1125 *
1126 * \note May only be called by root.
1127 *
1128 * \internal
1129 * This function is a wrapper around the DRM_IOCTL_ADD_MAP ioctl, passing
1130 * the arguments in a drm_map structure.
1131 */
drmAddMap(int fd,drm_handle_t offset,drmSize size,drmMapType type,drmMapFlags flags,drm_handle_t * handle)1132 drm_public int drmAddMap(int fd, drm_handle_t offset, drmSize size, drmMapType type,
1133 drmMapFlags flags, drm_handle_t *handle)
1134 {
1135 drm_map_t map;
1136
1137 memclear(map);
1138 map.offset = offset;
1139 map.size = size;
1140 map.type = type;
1141 map.flags = flags;
1142 if (drmIoctl(fd, DRM_IOCTL_ADD_MAP, &map))
1143 return -errno;
1144 if (handle)
1145 *handle = (drm_handle_t)(uintptr_t)map.handle;
1146 return 0;
1147 }
1148
drmRmMap(int fd,drm_handle_t handle)1149 drm_public int drmRmMap(int fd, drm_handle_t handle)
1150 {
1151 drm_map_t map;
1152
1153 memclear(map);
1154 map.handle = (void *)(uintptr_t)handle;
1155
1156 if(drmIoctl(fd, DRM_IOCTL_RM_MAP, &map))
1157 return -errno;
1158 return 0;
1159 }
1160
1161 /**
1162 * Make buffers available for DMA transfers.
1163 *
1164 * \param fd file descriptor.
1165 * \param count number of buffers.
1166 * \param size size of each buffer.
1167 * \param flags buffer allocation flags.
1168 * \param agp_offset offset in the AGP aperture
1169 *
1170 * \return number of buffers allocated, negative on error.
1171 *
1172 * \internal
1173 * This function is a wrapper around DRM_IOCTL_ADD_BUFS ioctl.
1174 *
1175 * \sa drm_buf_desc.
1176 */
drmAddBufs(int fd,int count,int size,drmBufDescFlags flags,int agp_offset)1177 drm_public int drmAddBufs(int fd, int count, int size, drmBufDescFlags flags,
1178 int agp_offset)
1179 {
1180 drm_buf_desc_t request;
1181
1182 memclear(request);
1183 request.count = count;
1184 request.size = size;
1185 request.flags = flags;
1186 request.agp_start = agp_offset;
1187
1188 if (drmIoctl(fd, DRM_IOCTL_ADD_BUFS, &request))
1189 return -errno;
1190 return request.count;
1191 }
1192
drmMarkBufs(int fd,double low,double high)1193 drm_public int drmMarkBufs(int fd, double low, double high)
1194 {
1195 drm_buf_info_t info;
1196 int i;
1197
1198 memclear(info);
1199
1200 if (drmIoctl(fd, DRM_IOCTL_INFO_BUFS, &info))
1201 return -EINVAL;
1202
1203 if (!info.count)
1204 return -EINVAL;
1205
1206 if (!(info.list = drmMalloc(info.count * sizeof(*info.list))))
1207 return -ENOMEM;
1208
1209 if (drmIoctl(fd, DRM_IOCTL_INFO_BUFS, &info)) {
1210 int retval = -errno;
1211 drmFree(info.list);
1212 return retval;
1213 }
1214
1215 for (i = 0; i < info.count; i++) {
1216 info.list[i].low_mark = low * info.list[i].count;
1217 info.list[i].high_mark = high * info.list[i].count;
1218 if (drmIoctl(fd, DRM_IOCTL_MARK_BUFS, &info.list[i])) {
1219 int retval = -errno;
1220 drmFree(info.list);
1221 return retval;
1222 }
1223 }
1224 drmFree(info.list);
1225
1226 return 0;
1227 }
1228
1229 /**
1230 * Free buffers.
1231 *
1232 * \param fd file descriptor.
1233 * \param count number of buffers to free.
1234 * \param list list of buffers to be freed.
1235 *
1236 * \return zero on success, or a negative value on failure.
1237 *
1238 * \note This function is primarily used for debugging.
1239 *
1240 * \internal
1241 * This function is a wrapper around the DRM_IOCTL_FREE_BUFS ioctl, passing
1242 * the arguments in a drm_buf_free structure.
1243 */
drmFreeBufs(int fd,int count,int * list)1244 drm_public int drmFreeBufs(int fd, int count, int *list)
1245 {
1246 drm_buf_free_t request;
1247
1248 memclear(request);
1249 request.count = count;
1250 request.list = list;
1251 if (drmIoctl(fd, DRM_IOCTL_FREE_BUFS, &request))
1252 return -errno;
1253 return 0;
1254 }
1255
1256
1257 /**
1258 * Close the device.
1259 *
1260 * \param fd file descriptor.
1261 *
1262 * \internal
1263 * This function closes the file descriptor.
1264 */
drmClose(int fd)1265 drm_public int drmClose(int fd)
1266 {
1267 unsigned long key = drmGetKeyFromFd(fd);
1268 drmHashEntry *entry = drmGetEntry(fd);
1269
1270 drmHashDestroy(entry->tagTable);
1271 entry->fd = 0;
1272 entry->f = NULL;
1273 entry->tagTable = NULL;
1274
1275 drmHashDelete(drmHashTable, key);
1276 drmFree(entry);
1277
1278 return close(fd);
1279 }
1280
1281
1282 /**
1283 * Map a region of memory.
1284 *
1285 * \param fd file descriptor.
1286 * \param handle handle returned by drmAddMap().
1287 * \param size size in bytes. Must match the size used by drmAddMap().
1288 * \param address will contain the user-space virtual address where the mapping
1289 * begins.
1290 *
1291 * \return zero on success, or a negative value on failure.
1292 *
1293 * \internal
1294 * This function is a wrapper for mmap().
1295 */
drmMap(int fd,drm_handle_t handle,drmSize size,drmAddressPtr address)1296 drm_public int drmMap(int fd, drm_handle_t handle, drmSize size,
1297 drmAddressPtr address)
1298 {
1299 static unsigned long pagesize_mask = 0;
1300
1301 if (fd < 0)
1302 return -EINVAL;
1303
1304 if (!pagesize_mask)
1305 pagesize_mask = getpagesize() - 1;
1306
1307 size = (size + pagesize_mask) & ~pagesize_mask;
1308
1309 *address = drm_mmap(0, size, PROT_READ|PROT_WRITE, MAP_SHARED, fd, handle);
1310 if (*address == MAP_FAILED)
1311 return -errno;
1312 return 0;
1313 }
1314
1315
1316 /**
1317 * Unmap mappings obtained with drmMap().
1318 *
1319 * \param address address as given by drmMap().
1320 * \param size size in bytes. Must match the size used by drmMap().
1321 *
1322 * \return zero on success, or a negative value on failure.
1323 *
1324 * \internal
1325 * This function is a wrapper for munmap().
1326 */
drmUnmap(drmAddress address,drmSize size)1327 drm_public int drmUnmap(drmAddress address, drmSize size)
1328 {
1329 return drm_munmap(address, size);
1330 }
1331
drmGetBufInfo(int fd)1332 drm_public drmBufInfoPtr drmGetBufInfo(int fd)
1333 {
1334 drm_buf_info_t info;
1335 drmBufInfoPtr retval;
1336 int i;
1337
1338 memclear(info);
1339
1340 if (drmIoctl(fd, DRM_IOCTL_INFO_BUFS, &info))
1341 return NULL;
1342
1343 if (info.count) {
1344 if (!(info.list = drmMalloc(info.count * sizeof(*info.list))))
1345 return NULL;
1346
1347 if (drmIoctl(fd, DRM_IOCTL_INFO_BUFS, &info)) {
1348 drmFree(info.list);
1349 return NULL;
1350 }
1351
1352 retval = drmMalloc(sizeof(*retval));
1353 retval->count = info.count;
1354 if (!(retval->list = drmMalloc(info.count * sizeof(*retval->list)))) {
1355 drmFree(retval);
1356 drmFree(info.list);
1357 return NULL;
1358 }
1359
1360 for (i = 0; i < info.count; i++) {
1361 retval->list[i].count = info.list[i].count;
1362 retval->list[i].size = info.list[i].size;
1363 retval->list[i].low_mark = info.list[i].low_mark;
1364 retval->list[i].high_mark = info.list[i].high_mark;
1365 }
1366 drmFree(info.list);
1367 return retval;
1368 }
1369 return NULL;
1370 }
1371
1372 /**
1373 * Map all DMA buffers into client-virtual space.
1374 *
1375 * \param fd file descriptor.
1376 *
1377 * \return a pointer to a ::drmBufMap structure.
1378 *
1379 * \note The client may not use these buffers until obtaining buffer indices
1380 * with drmDMA().
1381 *
1382 * \internal
1383 * This function calls the DRM_IOCTL_MAP_BUFS ioctl and copies the returned
1384 * information about the buffers in a drm_buf_map structure into the
1385 * client-visible data structures.
1386 */
drmMapBufs(int fd)1387 drm_public drmBufMapPtr drmMapBufs(int fd)
1388 {
1389 drm_buf_map_t bufs;
1390 drmBufMapPtr retval;
1391 int i;
1392
1393 memclear(bufs);
1394 if (drmIoctl(fd, DRM_IOCTL_MAP_BUFS, &bufs))
1395 return NULL;
1396
1397 if (!bufs.count)
1398 return NULL;
1399
1400 if (!(bufs.list = drmMalloc(bufs.count * sizeof(*bufs.list))))
1401 return NULL;
1402
1403 if (drmIoctl(fd, DRM_IOCTL_MAP_BUFS, &bufs)) {
1404 drmFree(bufs.list);
1405 return NULL;
1406 }
1407
1408 retval = drmMalloc(sizeof(*retval));
1409 retval->count = bufs.count;
1410 retval->list = drmMalloc(bufs.count * sizeof(*retval->list));
1411 for (i = 0; i < bufs.count; i++) {
1412 retval->list[i].idx = bufs.list[i].idx;
1413 retval->list[i].total = bufs.list[i].total;
1414 retval->list[i].used = 0;
1415 retval->list[i].address = bufs.list[i].address;
1416 }
1417
1418 drmFree(bufs.list);
1419 return retval;
1420 }
1421
1422
1423 /**
1424 * Unmap buffers allocated with drmMapBufs().
1425 *
1426 * \return zero on success, or negative value on failure.
1427 *
1428 * \internal
1429 * Calls munmap() for every buffer stored in \p bufs and frees the
1430 * memory allocated by drmMapBufs().
1431 */
drmUnmapBufs(drmBufMapPtr bufs)1432 drm_public int drmUnmapBufs(drmBufMapPtr bufs)
1433 {
1434 int i;
1435
1436 for (i = 0; i < bufs->count; i++) {
1437 drm_munmap(bufs->list[i].address, bufs->list[i].total);
1438 }
1439
1440 drmFree(bufs->list);
1441 drmFree(bufs);
1442 return 0;
1443 }
1444
1445
1446 #define DRM_DMA_RETRY 16
1447
1448 /**
1449 * Reserve DMA buffers.
1450 *
1451 * \param fd file descriptor.
1452 * \param request
1453 *
1454 * \return zero on success, or a negative value on failure.
1455 *
1456 * \internal
1457 * Assemble the arguments into a drm_dma structure and keeps issuing the
1458 * DRM_IOCTL_DMA ioctl until success or until maximum number of retries.
1459 */
drmDMA(int fd,drmDMAReqPtr request)1460 drm_public int drmDMA(int fd, drmDMAReqPtr request)
1461 {
1462 drm_dma_t dma;
1463 int ret, i = 0;
1464
1465 dma.context = request->context;
1466 dma.send_count = request->send_count;
1467 dma.send_indices = request->send_list;
1468 dma.send_sizes = request->send_sizes;
1469 dma.flags = request->flags;
1470 dma.request_count = request->request_count;
1471 dma.request_size = request->request_size;
1472 dma.request_indices = request->request_list;
1473 dma.request_sizes = request->request_sizes;
1474 dma.granted_count = 0;
1475
1476 do {
1477 ret = ioctl( fd, DRM_IOCTL_DMA, &dma );
1478 } while ( ret && errno == EAGAIN && i++ < DRM_DMA_RETRY );
1479
1480 if ( ret == 0 ) {
1481 request->granted_count = dma.granted_count;
1482 return 0;
1483 } else {
1484 return -errno;
1485 }
1486 }
1487
1488
1489 /**
1490 * Obtain heavyweight hardware lock.
1491 *
1492 * \param fd file descriptor.
1493 * \param context context.
1494 * \param flags flags that determine the state of the hardware when the function
1495 * returns.
1496 *
1497 * \return always zero.
1498 *
1499 * \internal
1500 * This function translates the arguments into a drm_lock structure and issue
1501 * the DRM_IOCTL_LOCK ioctl until the lock is successfully acquired.
1502 */
drmGetLock(int fd,drm_context_t context,drmLockFlags flags)1503 drm_public int drmGetLock(int fd, drm_context_t context, drmLockFlags flags)
1504 {
1505 drm_lock_t lock;
1506
1507 memclear(lock);
1508 lock.context = context;
1509 lock.flags = 0;
1510 if (flags & DRM_LOCK_READY) lock.flags |= _DRM_LOCK_READY;
1511 if (flags & DRM_LOCK_QUIESCENT) lock.flags |= _DRM_LOCK_QUIESCENT;
1512 if (flags & DRM_LOCK_FLUSH) lock.flags |= _DRM_LOCK_FLUSH;
1513 if (flags & DRM_LOCK_FLUSH_ALL) lock.flags |= _DRM_LOCK_FLUSH_ALL;
1514 if (flags & DRM_HALT_ALL_QUEUES) lock.flags |= _DRM_HALT_ALL_QUEUES;
1515 if (flags & DRM_HALT_CUR_QUEUES) lock.flags |= _DRM_HALT_CUR_QUEUES;
1516
1517 while (drmIoctl(fd, DRM_IOCTL_LOCK, &lock))
1518 ;
1519 return 0;
1520 }
1521
1522 /**
1523 * Release the hardware lock.
1524 *
1525 * \param fd file descriptor.
1526 * \param context context.
1527 *
1528 * \return zero on success, or a negative value on failure.
1529 *
1530 * \internal
1531 * This function is a wrapper around the DRM_IOCTL_UNLOCK ioctl, passing the
1532 * argument in a drm_lock structure.
1533 */
drmUnlock(int fd,drm_context_t context)1534 drm_public int drmUnlock(int fd, drm_context_t context)
1535 {
1536 drm_lock_t lock;
1537
1538 memclear(lock);
1539 lock.context = context;
1540 return drmIoctl(fd, DRM_IOCTL_UNLOCK, &lock);
1541 }
1542
drmGetReservedContextList(int fd,int * count)1543 drm_public drm_context_t *drmGetReservedContextList(int fd, int *count)
1544 {
1545 drm_ctx_res_t res;
1546 drm_ctx_t *list;
1547 drm_context_t * retval;
1548 int i;
1549
1550 memclear(res);
1551 if (drmIoctl(fd, DRM_IOCTL_RES_CTX, &res))
1552 return NULL;
1553
1554 if (!res.count)
1555 return NULL;
1556
1557 if (!(list = drmMalloc(res.count * sizeof(*list))))
1558 return NULL;
1559 if (!(retval = drmMalloc(res.count * sizeof(*retval))))
1560 goto err_free_list;
1561
1562 res.contexts = list;
1563 if (drmIoctl(fd, DRM_IOCTL_RES_CTX, &res))
1564 goto err_free_context;
1565
1566 for (i = 0; i < res.count; i++)
1567 retval[i] = list[i].handle;
1568 drmFree(list);
1569
1570 *count = res.count;
1571 return retval;
1572
1573 err_free_list:
1574 drmFree(list);
1575 err_free_context:
1576 drmFree(retval);
1577 return NULL;
1578 }
1579
drmFreeReservedContextList(drm_context_t * pt)1580 drm_public void drmFreeReservedContextList(drm_context_t *pt)
1581 {
1582 drmFree(pt);
1583 }
1584
1585 /**
1586 * Create context.
1587 *
1588 * Used by the X server during GLXContext initialization. This causes
1589 * per-context kernel-level resources to be allocated.
1590 *
1591 * \param fd file descriptor.
1592 * \param handle is set on success. To be used by the client when requesting DMA
1593 * dispatch with drmDMA().
1594 *
1595 * \return zero on success, or a negative value on failure.
1596 *
1597 * \note May only be called by root.
1598 *
1599 * \internal
1600 * This function is a wrapper around the DRM_IOCTL_ADD_CTX ioctl, passing the
1601 * argument in a drm_ctx structure.
1602 */
drmCreateContext(int fd,drm_context_t * handle)1603 drm_public int drmCreateContext(int fd, drm_context_t *handle)
1604 {
1605 drm_ctx_t ctx;
1606
1607 memclear(ctx);
1608 if (drmIoctl(fd, DRM_IOCTL_ADD_CTX, &ctx))
1609 return -errno;
1610 *handle = ctx.handle;
1611 return 0;
1612 }
1613
drmSwitchToContext(int fd,drm_context_t context)1614 drm_public int drmSwitchToContext(int fd, drm_context_t context)
1615 {
1616 drm_ctx_t ctx;
1617
1618 memclear(ctx);
1619 ctx.handle = context;
1620 if (drmIoctl(fd, DRM_IOCTL_SWITCH_CTX, &ctx))
1621 return -errno;
1622 return 0;
1623 }
1624
drmSetContextFlags(int fd,drm_context_t context,drm_context_tFlags flags)1625 drm_public int drmSetContextFlags(int fd, drm_context_t context,
1626 drm_context_tFlags flags)
1627 {
1628 drm_ctx_t ctx;
1629
1630 /*
1631 * Context preserving means that no context switches are done between DMA
1632 * buffers from one context and the next. This is suitable for use in the
1633 * X server (which promises to maintain hardware context), or in the
1634 * client-side library when buffers are swapped on behalf of two threads.
1635 */
1636 memclear(ctx);
1637 ctx.handle = context;
1638 if (flags & DRM_CONTEXT_PRESERVED)
1639 ctx.flags |= _DRM_CONTEXT_PRESERVED;
1640 if (flags & DRM_CONTEXT_2DONLY)
1641 ctx.flags |= _DRM_CONTEXT_2DONLY;
1642 if (drmIoctl(fd, DRM_IOCTL_MOD_CTX, &ctx))
1643 return -errno;
1644 return 0;
1645 }
1646
drmGetContextFlags(int fd,drm_context_t context,drm_context_tFlagsPtr flags)1647 drm_public int drmGetContextFlags(int fd, drm_context_t context,
1648 drm_context_tFlagsPtr flags)
1649 {
1650 drm_ctx_t ctx;
1651
1652 memclear(ctx);
1653 ctx.handle = context;
1654 if (drmIoctl(fd, DRM_IOCTL_GET_CTX, &ctx))
1655 return -errno;
1656 *flags = 0;
1657 if (ctx.flags & _DRM_CONTEXT_PRESERVED)
1658 *flags |= DRM_CONTEXT_PRESERVED;
1659 if (ctx.flags & _DRM_CONTEXT_2DONLY)
1660 *flags |= DRM_CONTEXT_2DONLY;
1661 return 0;
1662 }
1663
1664 /**
1665 * Destroy context.
1666 *
1667 * Free any kernel-level resources allocated with drmCreateContext() associated
1668 * with the context.
1669 *
1670 * \param fd file descriptor.
1671 * \param handle handle given by drmCreateContext().
1672 *
1673 * \return zero on success, or a negative value on failure.
1674 *
1675 * \note May only be called by root.
1676 *
1677 * \internal
1678 * This function is a wrapper around the DRM_IOCTL_RM_CTX ioctl, passing the
1679 * argument in a drm_ctx structure.
1680 */
drmDestroyContext(int fd,drm_context_t handle)1681 drm_public int drmDestroyContext(int fd, drm_context_t handle)
1682 {
1683 drm_ctx_t ctx;
1684
1685 memclear(ctx);
1686 ctx.handle = handle;
1687 if (drmIoctl(fd, DRM_IOCTL_RM_CTX, &ctx))
1688 return -errno;
1689 return 0;
1690 }
1691
drmCreateDrawable(int fd,drm_drawable_t * handle)1692 drm_public int drmCreateDrawable(int fd, drm_drawable_t *handle)
1693 {
1694 drm_draw_t draw;
1695
1696 memclear(draw);
1697 if (drmIoctl(fd, DRM_IOCTL_ADD_DRAW, &draw))
1698 return -errno;
1699 *handle = draw.handle;
1700 return 0;
1701 }
1702
drmDestroyDrawable(int fd,drm_drawable_t handle)1703 drm_public int drmDestroyDrawable(int fd, drm_drawable_t handle)
1704 {
1705 drm_draw_t draw;
1706
1707 memclear(draw);
1708 draw.handle = handle;
1709 if (drmIoctl(fd, DRM_IOCTL_RM_DRAW, &draw))
1710 return -errno;
1711 return 0;
1712 }
1713
drmUpdateDrawableInfo(int fd,drm_drawable_t handle,drm_drawable_info_type_t type,unsigned int num,void * data)1714 drm_public int drmUpdateDrawableInfo(int fd, drm_drawable_t handle,
1715 drm_drawable_info_type_t type,
1716 unsigned int num, void *data)
1717 {
1718 drm_update_draw_t update;
1719
1720 memclear(update);
1721 update.handle = handle;
1722 update.type = type;
1723 update.num = num;
1724 update.data = (unsigned long long)(unsigned long)data;
1725
1726 if (drmIoctl(fd, DRM_IOCTL_UPDATE_DRAW, &update))
1727 return -errno;
1728
1729 return 0;
1730 }
1731
drmCrtcGetSequence(int fd,uint32_t crtcId,uint64_t * sequence,uint64_t * ns)1732 drm_public int drmCrtcGetSequence(int fd, uint32_t crtcId, uint64_t *sequence,
1733 uint64_t *ns)
1734 {
1735 struct drm_crtc_get_sequence get_seq;
1736 int ret;
1737
1738 memclear(get_seq);
1739 get_seq.crtc_id = crtcId;
1740 ret = drmIoctl(fd, DRM_IOCTL_CRTC_GET_SEQUENCE, &get_seq);
1741 if (ret)
1742 return ret;
1743
1744 if (sequence)
1745 *sequence = get_seq.sequence;
1746 if (ns)
1747 *ns = get_seq.sequence_ns;
1748 return 0;
1749 }
1750
drmCrtcQueueSequence(int fd,uint32_t crtcId,uint32_t flags,uint64_t sequence,uint64_t * sequence_queued,uint64_t user_data)1751 drm_public int drmCrtcQueueSequence(int fd, uint32_t crtcId, uint32_t flags,
1752 uint64_t sequence,
1753 uint64_t *sequence_queued,
1754 uint64_t user_data)
1755 {
1756 struct drm_crtc_queue_sequence queue_seq;
1757 int ret;
1758
1759 memclear(queue_seq);
1760 queue_seq.crtc_id = crtcId;
1761 queue_seq.flags = flags;
1762 queue_seq.sequence = sequence;
1763 queue_seq.user_data = user_data;
1764
1765 ret = drmIoctl(fd, DRM_IOCTL_CRTC_QUEUE_SEQUENCE, &queue_seq);
1766 if (ret == 0 && sequence_queued)
1767 *sequence_queued = queue_seq.sequence;
1768
1769 return ret;
1770 }
1771
1772 /**
1773 * Acquire the AGP device.
1774 *
1775 * Must be called before any of the other AGP related calls.
1776 *
1777 * \param fd file descriptor.
1778 *
1779 * \return zero on success, or a negative value on failure.
1780 *
1781 * \internal
1782 * This function is a wrapper around the DRM_IOCTL_AGP_ACQUIRE ioctl.
1783 */
drmAgpAcquire(int fd)1784 drm_public int drmAgpAcquire(int fd)
1785 {
1786 if (drmIoctl(fd, DRM_IOCTL_AGP_ACQUIRE, NULL))
1787 return -errno;
1788 return 0;
1789 }
1790
1791
1792 /**
1793 * Release the AGP device.
1794 *
1795 * \param fd file descriptor.
1796 *
1797 * \return zero on success, or a negative value on failure.
1798 *
1799 * \internal
1800 * This function is a wrapper around the DRM_IOCTL_AGP_RELEASE ioctl.
1801 */
drmAgpRelease(int fd)1802 drm_public int drmAgpRelease(int fd)
1803 {
1804 if (drmIoctl(fd, DRM_IOCTL_AGP_RELEASE, NULL))
1805 return -errno;
1806 return 0;
1807 }
1808
1809
1810 /**
1811 * Set the AGP mode.
1812 *
1813 * \param fd file descriptor.
1814 * \param mode AGP mode.
1815 *
1816 * \return zero on success, or a negative value on failure.
1817 *
1818 * \internal
1819 * This function is a wrapper around the DRM_IOCTL_AGP_ENABLE ioctl, passing the
1820 * argument in a drm_agp_mode structure.
1821 */
drmAgpEnable(int fd,unsigned long mode)1822 drm_public int drmAgpEnable(int fd, unsigned long mode)
1823 {
1824 drm_agp_mode_t m;
1825
1826 memclear(m);
1827 m.mode = mode;
1828 if (drmIoctl(fd, DRM_IOCTL_AGP_ENABLE, &m))
1829 return -errno;
1830 return 0;
1831 }
1832
1833
1834 /**
1835 * Allocate a chunk of AGP memory.
1836 *
1837 * \param fd file descriptor.
1838 * \param size requested memory size in bytes. Will be rounded to page boundary.
1839 * \param type type of memory to allocate.
1840 * \param address if not zero, will be set to the physical address of the
1841 * allocated memory.
1842 * \param handle on success will be set to a handle of the allocated memory.
1843 *
1844 * \return zero on success, or a negative value on failure.
1845 *
1846 * \internal
1847 * This function is a wrapper around the DRM_IOCTL_AGP_ALLOC ioctl, passing the
1848 * arguments in a drm_agp_buffer structure.
1849 */
drmAgpAlloc(int fd,unsigned long size,unsigned long type,unsigned long * address,drm_handle_t * handle)1850 drm_public int drmAgpAlloc(int fd, unsigned long size, unsigned long type,
1851 unsigned long *address, drm_handle_t *handle)
1852 {
1853 drm_agp_buffer_t b;
1854
1855 memclear(b);
1856 *handle = DRM_AGP_NO_HANDLE;
1857 b.size = size;
1858 b.type = type;
1859 if (drmIoctl(fd, DRM_IOCTL_AGP_ALLOC, &b))
1860 return -errno;
1861 if (address != 0UL)
1862 *address = b.physical;
1863 *handle = b.handle;
1864 return 0;
1865 }
1866
1867
1868 /**
1869 * Free a chunk of AGP memory.
1870 *
1871 * \param fd file descriptor.
1872 * \param handle handle to the allocated memory, as given by drmAgpAllocate().
1873 *
1874 * \return zero on success, or a negative value on failure.
1875 *
1876 * \internal
1877 * This function is a wrapper around the DRM_IOCTL_AGP_FREE ioctl, passing the
1878 * argument in a drm_agp_buffer structure.
1879 */
drmAgpFree(int fd,drm_handle_t handle)1880 drm_public int drmAgpFree(int fd, drm_handle_t handle)
1881 {
1882 drm_agp_buffer_t b;
1883
1884 memclear(b);
1885 b.handle = handle;
1886 if (drmIoctl(fd, DRM_IOCTL_AGP_FREE, &b))
1887 return -errno;
1888 return 0;
1889 }
1890
1891
1892 /**
1893 * Bind a chunk of AGP memory.
1894 *
1895 * \param fd file descriptor.
1896 * \param handle handle to the allocated memory, as given by drmAgpAllocate().
1897 * \param offset offset in bytes. It will round to page boundary.
1898 *
1899 * \return zero on success, or a negative value on failure.
1900 *
1901 * \internal
1902 * This function is a wrapper around the DRM_IOCTL_AGP_BIND ioctl, passing the
1903 * argument in a drm_agp_binding structure.
1904 */
drmAgpBind(int fd,drm_handle_t handle,unsigned long offset)1905 drm_public int drmAgpBind(int fd, drm_handle_t handle, unsigned long offset)
1906 {
1907 drm_agp_binding_t b;
1908
1909 memclear(b);
1910 b.handle = handle;
1911 b.offset = offset;
1912 if (drmIoctl(fd, DRM_IOCTL_AGP_BIND, &b))
1913 return -errno;
1914 return 0;
1915 }
1916
1917
1918 /**
1919 * Unbind a chunk of AGP memory.
1920 *
1921 * \param fd file descriptor.
1922 * \param handle handle to the allocated memory, as given by drmAgpAllocate().
1923 *
1924 * \return zero on success, or a negative value on failure.
1925 *
1926 * \internal
1927 * This function is a wrapper around the DRM_IOCTL_AGP_UNBIND ioctl, passing
1928 * the argument in a drm_agp_binding structure.
1929 */
drmAgpUnbind(int fd,drm_handle_t handle)1930 drm_public int drmAgpUnbind(int fd, drm_handle_t handle)
1931 {
1932 drm_agp_binding_t b;
1933
1934 memclear(b);
1935 b.handle = handle;
1936 if (drmIoctl(fd, DRM_IOCTL_AGP_UNBIND, &b))
1937 return -errno;
1938 return 0;
1939 }
1940
1941
1942 /**
1943 * Get AGP driver major version number.
1944 *
1945 * \param fd file descriptor.
1946 *
1947 * \return major version number on success, or a negative value on failure..
1948 *
1949 * \internal
1950 * This function is a wrapper around the DRM_IOCTL_AGP_INFO ioctl, getting the
1951 * necessary information in a drm_agp_info structure.
1952 */
drmAgpVersionMajor(int fd)1953 drm_public int drmAgpVersionMajor(int fd)
1954 {
1955 drm_agp_info_t i;
1956
1957 memclear(i);
1958
1959 if (drmIoctl(fd, DRM_IOCTL_AGP_INFO, &i))
1960 return -errno;
1961 return i.agp_version_major;
1962 }
1963
1964
1965 /**
1966 * Get AGP driver minor version number.
1967 *
1968 * \param fd file descriptor.
1969 *
1970 * \return minor version number on success, or a negative value on failure.
1971 *
1972 * \internal
1973 * This function is a wrapper around the DRM_IOCTL_AGP_INFO ioctl, getting the
1974 * necessary information in a drm_agp_info structure.
1975 */
drmAgpVersionMinor(int fd)1976 drm_public int drmAgpVersionMinor(int fd)
1977 {
1978 drm_agp_info_t i;
1979
1980 memclear(i);
1981
1982 if (drmIoctl(fd, DRM_IOCTL_AGP_INFO, &i))
1983 return -errno;
1984 return i.agp_version_minor;
1985 }
1986
1987
1988 /**
1989 * Get AGP mode.
1990 *
1991 * \param fd file descriptor.
1992 *
1993 * \return mode on success, or zero on failure.
1994 *
1995 * \internal
1996 * This function is a wrapper around the DRM_IOCTL_AGP_INFO ioctl, getting the
1997 * necessary information in a drm_agp_info structure.
1998 */
drmAgpGetMode(int fd)1999 drm_public unsigned long drmAgpGetMode(int fd)
2000 {
2001 drm_agp_info_t i;
2002
2003 memclear(i);
2004
2005 if (drmIoctl(fd, DRM_IOCTL_AGP_INFO, &i))
2006 return 0;
2007 return i.mode;
2008 }
2009
2010
2011 /**
2012 * Get AGP aperture base.
2013 *
2014 * \param fd file descriptor.
2015 *
2016 * \return aperture base on success, zero on failure.
2017 *
2018 * \internal
2019 * This function is a wrapper around the DRM_IOCTL_AGP_INFO ioctl, getting the
2020 * necessary information in a drm_agp_info structure.
2021 */
drmAgpBase(int fd)2022 drm_public unsigned long drmAgpBase(int fd)
2023 {
2024 drm_agp_info_t i;
2025
2026 memclear(i);
2027
2028 if (drmIoctl(fd, DRM_IOCTL_AGP_INFO, &i))
2029 return 0;
2030 return i.aperture_base;
2031 }
2032
2033
2034 /**
2035 * Get AGP aperture size.
2036 *
2037 * \param fd file descriptor.
2038 *
2039 * \return aperture size on success, zero on failure.
2040 *
2041 * \internal
2042 * This function is a wrapper around the DRM_IOCTL_AGP_INFO ioctl, getting the
2043 * necessary information in a drm_agp_info structure.
2044 */
drmAgpSize(int fd)2045 drm_public unsigned long drmAgpSize(int fd)
2046 {
2047 drm_agp_info_t i;
2048
2049 memclear(i);
2050
2051 if (drmIoctl(fd, DRM_IOCTL_AGP_INFO, &i))
2052 return 0;
2053 return i.aperture_size;
2054 }
2055
2056
2057 /**
2058 * Get used AGP memory.
2059 *
2060 * \param fd file descriptor.
2061 *
2062 * \return memory used on success, or zero on failure.
2063 *
2064 * \internal
2065 * This function is a wrapper around the DRM_IOCTL_AGP_INFO ioctl, getting the
2066 * necessary information in a drm_agp_info structure.
2067 */
drmAgpMemoryUsed(int fd)2068 drm_public unsigned long drmAgpMemoryUsed(int fd)
2069 {
2070 drm_agp_info_t i;
2071
2072 memclear(i);
2073
2074 if (drmIoctl(fd, DRM_IOCTL_AGP_INFO, &i))
2075 return 0;
2076 return i.memory_used;
2077 }
2078
2079
2080 /**
2081 * Get available AGP memory.
2082 *
2083 * \param fd file descriptor.
2084 *
2085 * \return memory available on success, or zero on failure.
2086 *
2087 * \internal
2088 * This function is a wrapper around the DRM_IOCTL_AGP_INFO ioctl, getting the
2089 * necessary information in a drm_agp_info structure.
2090 */
drmAgpMemoryAvail(int fd)2091 drm_public unsigned long drmAgpMemoryAvail(int fd)
2092 {
2093 drm_agp_info_t i;
2094
2095 memclear(i);
2096
2097 if (drmIoctl(fd, DRM_IOCTL_AGP_INFO, &i))
2098 return 0;
2099 return i.memory_allowed;
2100 }
2101
2102
2103 /**
2104 * Get hardware vendor ID.
2105 *
2106 * \param fd file descriptor.
2107 *
2108 * \return vendor ID on success, or zero on failure.
2109 *
2110 * \internal
2111 * This function is a wrapper around the DRM_IOCTL_AGP_INFO ioctl, getting the
2112 * necessary information in a drm_agp_info structure.
2113 */
drmAgpVendorId(int fd)2114 drm_public unsigned int drmAgpVendorId(int fd)
2115 {
2116 drm_agp_info_t i;
2117
2118 memclear(i);
2119
2120 if (drmIoctl(fd, DRM_IOCTL_AGP_INFO, &i))
2121 return 0;
2122 return i.id_vendor;
2123 }
2124
2125
2126 /**
2127 * Get hardware device ID.
2128 *
2129 * \param fd file descriptor.
2130 *
2131 * \return zero on success, or zero on failure.
2132 *
2133 * \internal
2134 * This function is a wrapper around the DRM_IOCTL_AGP_INFO ioctl, getting the
2135 * necessary information in a drm_agp_info structure.
2136 */
drmAgpDeviceId(int fd)2137 drm_public unsigned int drmAgpDeviceId(int fd)
2138 {
2139 drm_agp_info_t i;
2140
2141 memclear(i);
2142
2143 if (drmIoctl(fd, DRM_IOCTL_AGP_INFO, &i))
2144 return 0;
2145 return i.id_device;
2146 }
2147
drmScatterGatherAlloc(int fd,unsigned long size,drm_handle_t * handle)2148 drm_public int drmScatterGatherAlloc(int fd, unsigned long size,
2149 drm_handle_t *handle)
2150 {
2151 drm_scatter_gather_t sg;
2152
2153 memclear(sg);
2154
2155 *handle = 0;
2156 sg.size = size;
2157 if (drmIoctl(fd, DRM_IOCTL_SG_ALLOC, &sg))
2158 return -errno;
2159 *handle = sg.handle;
2160 return 0;
2161 }
2162
drmScatterGatherFree(int fd,drm_handle_t handle)2163 drm_public int drmScatterGatherFree(int fd, drm_handle_t handle)
2164 {
2165 drm_scatter_gather_t sg;
2166
2167 memclear(sg);
2168 sg.handle = handle;
2169 if (drmIoctl(fd, DRM_IOCTL_SG_FREE, &sg))
2170 return -errno;
2171 return 0;
2172 }
2173
2174 /**
2175 * Wait for VBLANK.
2176 *
2177 * \param fd file descriptor.
2178 * \param vbl pointer to a drmVBlank structure.
2179 *
2180 * \return zero on success, or a negative value on failure.
2181 *
2182 * \internal
2183 * This function is a wrapper around the DRM_IOCTL_WAIT_VBLANK ioctl.
2184 */
drmWaitVBlank(int fd,drmVBlankPtr vbl)2185 drm_public int drmWaitVBlank(int fd, drmVBlankPtr vbl)
2186 {
2187 struct timespec timeout, cur;
2188 int ret;
2189
2190 ret = clock_gettime(CLOCK_MONOTONIC, &timeout);
2191 if (ret < 0) {
2192 fprintf(stderr, "clock_gettime failed: %s\n", strerror(errno));
2193 goto out;
2194 }
2195 timeout.tv_sec++;
2196
2197 do {
2198 ret = ioctl(fd, DRM_IOCTL_WAIT_VBLANK, vbl);
2199 vbl->request.type &= ~DRM_VBLANK_RELATIVE;
2200 if (ret && errno == EINTR) {
2201 clock_gettime(CLOCK_MONOTONIC, &cur);
2202 /* Timeout after 1s */
2203 if (cur.tv_sec > timeout.tv_sec + 1 ||
2204 (cur.tv_sec == timeout.tv_sec && cur.tv_nsec >=
2205 timeout.tv_nsec)) {
2206 errno = EBUSY;
2207 ret = -1;
2208 break;
2209 }
2210 }
2211 } while (ret && errno == EINTR);
2212
2213 out:
2214 return ret;
2215 }
2216
drmError(int err,const char * label)2217 drm_public int drmError(int err, const char *label)
2218 {
2219 switch (err) {
2220 case DRM_ERR_NO_DEVICE:
2221 fprintf(stderr, "%s: no device\n", label);
2222 break;
2223 case DRM_ERR_NO_ACCESS:
2224 fprintf(stderr, "%s: no access\n", label);
2225 break;
2226 case DRM_ERR_NOT_ROOT:
2227 fprintf(stderr, "%s: not root\n", label);
2228 break;
2229 case DRM_ERR_INVALID:
2230 fprintf(stderr, "%s: invalid args\n", label);
2231 break;
2232 default:
2233 if (err < 0)
2234 err = -err;
2235 fprintf( stderr, "%s: error %d (%s)\n", label, err, strerror(err) );
2236 break;
2237 }
2238
2239 return 1;
2240 }
2241
2242 /**
2243 * Install IRQ handler.
2244 *
2245 * \param fd file descriptor.
2246 * \param irq IRQ number.
2247 *
2248 * \return zero on success, or a negative value on failure.
2249 *
2250 * \internal
2251 * This function is a wrapper around the DRM_IOCTL_CONTROL ioctl, passing the
2252 * argument in a drm_control structure.
2253 */
drmCtlInstHandler(int fd,int irq)2254 drm_public int drmCtlInstHandler(int fd, int irq)
2255 {
2256 drm_control_t ctl;
2257
2258 memclear(ctl);
2259 ctl.func = DRM_INST_HANDLER;
2260 ctl.irq = irq;
2261 if (drmIoctl(fd, DRM_IOCTL_CONTROL, &ctl))
2262 return -errno;
2263 return 0;
2264 }
2265
2266
2267 /**
2268 * Uninstall IRQ handler.
2269 *
2270 * \param fd file descriptor.
2271 *
2272 * \return zero on success, or a negative value on failure.
2273 *
2274 * \internal
2275 * This function is a wrapper around the DRM_IOCTL_CONTROL ioctl, passing the
2276 * argument in a drm_control structure.
2277 */
drmCtlUninstHandler(int fd)2278 drm_public int drmCtlUninstHandler(int fd)
2279 {
2280 drm_control_t ctl;
2281
2282 memclear(ctl);
2283 ctl.func = DRM_UNINST_HANDLER;
2284 ctl.irq = 0;
2285 if (drmIoctl(fd, DRM_IOCTL_CONTROL, &ctl))
2286 return -errno;
2287 return 0;
2288 }
2289
drmFinish(int fd,int context,drmLockFlags flags)2290 drm_public int drmFinish(int fd, int context, drmLockFlags flags)
2291 {
2292 drm_lock_t lock;
2293
2294 memclear(lock);
2295 lock.context = context;
2296 if (flags & DRM_LOCK_READY) lock.flags |= _DRM_LOCK_READY;
2297 if (flags & DRM_LOCK_QUIESCENT) lock.flags |= _DRM_LOCK_QUIESCENT;
2298 if (flags & DRM_LOCK_FLUSH) lock.flags |= _DRM_LOCK_FLUSH;
2299 if (flags & DRM_LOCK_FLUSH_ALL) lock.flags |= _DRM_LOCK_FLUSH_ALL;
2300 if (flags & DRM_HALT_ALL_QUEUES) lock.flags |= _DRM_HALT_ALL_QUEUES;
2301 if (flags & DRM_HALT_CUR_QUEUES) lock.flags |= _DRM_HALT_CUR_QUEUES;
2302 if (drmIoctl(fd, DRM_IOCTL_FINISH, &lock))
2303 return -errno;
2304 return 0;
2305 }
2306
2307 /**
2308 * Get IRQ from bus ID.
2309 *
2310 * \param fd file descriptor.
2311 * \param busnum bus number.
2312 * \param devnum device number.
2313 * \param funcnum function number.
2314 *
2315 * \return IRQ number on success, or a negative value on failure.
2316 *
2317 * \internal
2318 * This function is a wrapper around the DRM_IOCTL_IRQ_BUSID ioctl, passing the
2319 * arguments in a drm_irq_busid structure.
2320 */
drmGetInterruptFromBusID(int fd,int busnum,int devnum,int funcnum)2321 drm_public int drmGetInterruptFromBusID(int fd, int busnum, int devnum,
2322 int funcnum)
2323 {
2324 drm_irq_busid_t p;
2325
2326 memclear(p);
2327 p.busnum = busnum;
2328 p.devnum = devnum;
2329 p.funcnum = funcnum;
2330 if (drmIoctl(fd, DRM_IOCTL_IRQ_BUSID, &p))
2331 return -errno;
2332 return p.irq;
2333 }
2334
drmAddContextTag(int fd,drm_context_t context,void * tag)2335 drm_public int drmAddContextTag(int fd, drm_context_t context, void *tag)
2336 {
2337 drmHashEntry *entry = drmGetEntry(fd);
2338
2339 if (drmHashInsert(entry->tagTable, context, tag)) {
2340 drmHashDelete(entry->tagTable, context);
2341 drmHashInsert(entry->tagTable, context, tag);
2342 }
2343 return 0;
2344 }
2345
drmDelContextTag(int fd,drm_context_t context)2346 drm_public int drmDelContextTag(int fd, drm_context_t context)
2347 {
2348 drmHashEntry *entry = drmGetEntry(fd);
2349
2350 return drmHashDelete(entry->tagTable, context);
2351 }
2352
drmGetContextTag(int fd,drm_context_t context)2353 drm_public void *drmGetContextTag(int fd, drm_context_t context)
2354 {
2355 drmHashEntry *entry = drmGetEntry(fd);
2356 void *value;
2357
2358 if (drmHashLookup(entry->tagTable, context, &value))
2359 return NULL;
2360
2361 return value;
2362 }
2363
drmAddContextPrivateMapping(int fd,drm_context_t ctx_id,drm_handle_t handle)2364 drm_public int drmAddContextPrivateMapping(int fd, drm_context_t ctx_id,
2365 drm_handle_t handle)
2366 {
2367 drm_ctx_priv_map_t map;
2368
2369 memclear(map);
2370 map.ctx_id = ctx_id;
2371 map.handle = (void *)(uintptr_t)handle;
2372
2373 if (drmIoctl(fd, DRM_IOCTL_SET_SAREA_CTX, &map))
2374 return -errno;
2375 return 0;
2376 }
2377
drmGetContextPrivateMapping(int fd,drm_context_t ctx_id,drm_handle_t * handle)2378 drm_public int drmGetContextPrivateMapping(int fd, drm_context_t ctx_id,
2379 drm_handle_t *handle)
2380 {
2381 drm_ctx_priv_map_t map;
2382
2383 memclear(map);
2384 map.ctx_id = ctx_id;
2385
2386 if (drmIoctl(fd, DRM_IOCTL_GET_SAREA_CTX, &map))
2387 return -errno;
2388 if (handle)
2389 *handle = (drm_handle_t)(uintptr_t)map.handle;
2390
2391 return 0;
2392 }
2393
drmGetMap(int fd,int idx,drm_handle_t * offset,drmSize * size,drmMapType * type,drmMapFlags * flags,drm_handle_t * handle,int * mtrr)2394 drm_public int drmGetMap(int fd, int idx, drm_handle_t *offset, drmSize *size,
2395 drmMapType *type, drmMapFlags *flags,
2396 drm_handle_t *handle, int *mtrr)
2397 {
2398 drm_map_t map;
2399
2400 memclear(map);
2401 map.offset = idx;
2402 if (drmIoctl(fd, DRM_IOCTL_GET_MAP, &map))
2403 return -errno;
2404 *offset = map.offset;
2405 *size = map.size;
2406 *type = map.type;
2407 *flags = map.flags;
2408 *handle = (unsigned long)map.handle;
2409 *mtrr = map.mtrr;
2410 return 0;
2411 }
2412
drmGetClient(int fd,int idx,int * auth,int * pid,int * uid,unsigned long * magic,unsigned long * iocs)2413 drm_public int drmGetClient(int fd, int idx, int *auth, int *pid, int *uid,
2414 unsigned long *magic, unsigned long *iocs)
2415 {
2416 drm_client_t client;
2417
2418 memclear(client);
2419 client.idx = idx;
2420 if (drmIoctl(fd, DRM_IOCTL_GET_CLIENT, &client))
2421 return -errno;
2422 *auth = client.auth;
2423 *pid = client.pid;
2424 *uid = client.uid;
2425 *magic = client.magic;
2426 *iocs = client.iocs;
2427 return 0;
2428 }
2429
drmGetStats(int fd,drmStatsT * stats)2430 drm_public int drmGetStats(int fd, drmStatsT *stats)
2431 {
2432 drm_stats_t s;
2433 unsigned i;
2434
2435 memclear(s);
2436 if (drmIoctl(fd, DRM_IOCTL_GET_STATS, &s))
2437 return -errno;
2438
2439 stats->count = 0;
2440 memset(stats, 0, sizeof(*stats));
2441 if (s.count > sizeof(stats->data)/sizeof(stats->data[0]))
2442 return -1;
2443
2444 #define SET_VALUE \
2445 stats->data[i].long_format = "%-20.20s"; \
2446 stats->data[i].rate_format = "%8.8s"; \
2447 stats->data[i].isvalue = 1; \
2448 stats->data[i].verbose = 0
2449
2450 #define SET_COUNT \
2451 stats->data[i].long_format = "%-20.20s"; \
2452 stats->data[i].rate_format = "%5.5s"; \
2453 stats->data[i].isvalue = 0; \
2454 stats->data[i].mult_names = "kgm"; \
2455 stats->data[i].mult = 1000; \
2456 stats->data[i].verbose = 0
2457
2458 #define SET_BYTE \
2459 stats->data[i].long_format = "%-20.20s"; \
2460 stats->data[i].rate_format = "%5.5s"; \
2461 stats->data[i].isvalue = 0; \
2462 stats->data[i].mult_names = "KGM"; \
2463 stats->data[i].mult = 1024; \
2464 stats->data[i].verbose = 0
2465
2466
2467 stats->count = s.count;
2468 for (i = 0; i < s.count; i++) {
2469 stats->data[i].value = s.data[i].value;
2470 switch (s.data[i].type) {
2471 case _DRM_STAT_LOCK:
2472 stats->data[i].long_name = "Lock";
2473 stats->data[i].rate_name = "Lock";
2474 SET_VALUE;
2475 break;
2476 case _DRM_STAT_OPENS:
2477 stats->data[i].long_name = "Opens";
2478 stats->data[i].rate_name = "O";
2479 SET_COUNT;
2480 stats->data[i].verbose = 1;
2481 break;
2482 case _DRM_STAT_CLOSES:
2483 stats->data[i].long_name = "Closes";
2484 stats->data[i].rate_name = "Lock";
2485 SET_COUNT;
2486 stats->data[i].verbose = 1;
2487 break;
2488 case _DRM_STAT_IOCTLS:
2489 stats->data[i].long_name = "Ioctls";
2490 stats->data[i].rate_name = "Ioc/s";
2491 SET_COUNT;
2492 break;
2493 case _DRM_STAT_LOCKS:
2494 stats->data[i].long_name = "Locks";
2495 stats->data[i].rate_name = "Lck/s";
2496 SET_COUNT;
2497 break;
2498 case _DRM_STAT_UNLOCKS:
2499 stats->data[i].long_name = "Unlocks";
2500 stats->data[i].rate_name = "Unl/s";
2501 SET_COUNT;
2502 break;
2503 case _DRM_STAT_IRQ:
2504 stats->data[i].long_name = "IRQs";
2505 stats->data[i].rate_name = "IRQ/s";
2506 SET_COUNT;
2507 break;
2508 case _DRM_STAT_PRIMARY:
2509 stats->data[i].long_name = "Primary Bytes";
2510 stats->data[i].rate_name = "PB/s";
2511 SET_BYTE;
2512 break;
2513 case _DRM_STAT_SECONDARY:
2514 stats->data[i].long_name = "Secondary Bytes";
2515 stats->data[i].rate_name = "SB/s";
2516 SET_BYTE;
2517 break;
2518 case _DRM_STAT_DMA:
2519 stats->data[i].long_name = "DMA";
2520 stats->data[i].rate_name = "DMA/s";
2521 SET_COUNT;
2522 break;
2523 case _DRM_STAT_SPECIAL:
2524 stats->data[i].long_name = "Special DMA";
2525 stats->data[i].rate_name = "dma/s";
2526 SET_COUNT;
2527 break;
2528 case _DRM_STAT_MISSED:
2529 stats->data[i].long_name = "Miss";
2530 stats->data[i].rate_name = "Ms/s";
2531 SET_COUNT;
2532 break;
2533 case _DRM_STAT_VALUE:
2534 stats->data[i].long_name = "Value";
2535 stats->data[i].rate_name = "Value";
2536 SET_VALUE;
2537 break;
2538 case _DRM_STAT_BYTE:
2539 stats->data[i].long_name = "Bytes";
2540 stats->data[i].rate_name = "B/s";
2541 SET_BYTE;
2542 break;
2543 case _DRM_STAT_COUNT:
2544 default:
2545 stats->data[i].long_name = "Count";
2546 stats->data[i].rate_name = "Cnt/s";
2547 SET_COUNT;
2548 break;
2549 }
2550 }
2551 return 0;
2552 }
2553
2554 /**
2555 * Issue a set-version ioctl.
2556 *
2557 * \param fd file descriptor.
2558 * \param drmCommandIndex command index
2559 * \param data source pointer of the data to be read and written.
2560 * \param size size of the data to be read and written.
2561 *
2562 * \return zero on success, or a negative value on failure.
2563 *
2564 * \internal
2565 * It issues a read-write ioctl given by
2566 * \code DRM_COMMAND_BASE + drmCommandIndex \endcode.
2567 */
drmSetInterfaceVersion(int fd,drmSetVersion * version)2568 drm_public int drmSetInterfaceVersion(int fd, drmSetVersion *version)
2569 {
2570 int retcode = 0;
2571 drm_set_version_t sv;
2572
2573 memclear(sv);
2574 sv.drm_di_major = version->drm_di_major;
2575 sv.drm_di_minor = version->drm_di_minor;
2576 sv.drm_dd_major = version->drm_dd_major;
2577 sv.drm_dd_minor = version->drm_dd_minor;
2578
2579 if (drmIoctl(fd, DRM_IOCTL_SET_VERSION, &sv)) {
2580 retcode = -errno;
2581 }
2582
2583 version->drm_di_major = sv.drm_di_major;
2584 version->drm_di_minor = sv.drm_di_minor;
2585 version->drm_dd_major = sv.drm_dd_major;
2586 version->drm_dd_minor = sv.drm_dd_minor;
2587
2588 return retcode;
2589 }
2590
2591 /**
2592 * Send a device-specific command.
2593 *
2594 * \param fd file descriptor.
2595 * \param drmCommandIndex command index
2596 *
2597 * \return zero on success, or a negative value on failure.
2598 *
2599 * \internal
2600 * It issues a ioctl given by
2601 * \code DRM_COMMAND_BASE + drmCommandIndex \endcode.
2602 */
drmCommandNone(int fd,unsigned long drmCommandIndex)2603 drm_public int drmCommandNone(int fd, unsigned long drmCommandIndex)
2604 {
2605 unsigned long request;
2606
2607 request = DRM_IO( DRM_COMMAND_BASE + drmCommandIndex);
2608
2609 if (drmIoctl(fd, request, NULL)) {
2610 return -errno;
2611 }
2612 return 0;
2613 }
2614
2615
2616 /**
2617 * Send a device-specific read command.
2618 *
2619 * \param fd file descriptor.
2620 * \param drmCommandIndex command index
2621 * \param data destination pointer of the data to be read.
2622 * \param size size of the data to be read.
2623 *
2624 * \return zero on success, or a negative value on failure.
2625 *
2626 * \internal
2627 * It issues a read ioctl given by
2628 * \code DRM_COMMAND_BASE + drmCommandIndex \endcode.
2629 */
drmCommandRead(int fd,unsigned long drmCommandIndex,void * data,unsigned long size)2630 drm_public int drmCommandRead(int fd, unsigned long drmCommandIndex,
2631 void *data, unsigned long size)
2632 {
2633 unsigned long request;
2634
2635 request = DRM_IOC( DRM_IOC_READ, DRM_IOCTL_BASE,
2636 DRM_COMMAND_BASE + drmCommandIndex, size);
2637
2638 if (drmIoctl(fd, request, data)) {
2639 return -errno;
2640 }
2641 return 0;
2642 }
2643
2644
2645 /**
2646 * Send a device-specific write command.
2647 *
2648 * \param fd file descriptor.
2649 * \param drmCommandIndex command index
2650 * \param data source pointer of the data to be written.
2651 * \param size size of the data to be written.
2652 *
2653 * \return zero on success, or a negative value on failure.
2654 *
2655 * \internal
2656 * It issues a write ioctl given by
2657 * \code DRM_COMMAND_BASE + drmCommandIndex \endcode.
2658 */
drmCommandWrite(int fd,unsigned long drmCommandIndex,void * data,unsigned long size)2659 drm_public int drmCommandWrite(int fd, unsigned long drmCommandIndex,
2660 void *data, unsigned long size)
2661 {
2662 unsigned long request;
2663
2664 request = DRM_IOC( DRM_IOC_WRITE, DRM_IOCTL_BASE,
2665 DRM_COMMAND_BASE + drmCommandIndex, size);
2666
2667 if (drmIoctl(fd, request, data)) {
2668 return -errno;
2669 }
2670 return 0;
2671 }
2672
2673
2674 /**
2675 * Send a device-specific read-write command.
2676 *
2677 * \param fd file descriptor.
2678 * \param drmCommandIndex command index
2679 * \param data source pointer of the data to be read and written.
2680 * \param size size of the data to be read and written.
2681 *
2682 * \return zero on success, or a negative value on failure.
2683 *
2684 * \internal
2685 * It issues a read-write ioctl given by
2686 * \code DRM_COMMAND_BASE + drmCommandIndex \endcode.
2687 */
drmCommandWriteRead(int fd,unsigned long drmCommandIndex,void * data,unsigned long size)2688 drm_public int drmCommandWriteRead(int fd, unsigned long drmCommandIndex,
2689 void *data, unsigned long size)
2690 {
2691 unsigned long request;
2692
2693 request = DRM_IOC( DRM_IOC_READ|DRM_IOC_WRITE, DRM_IOCTL_BASE,
2694 DRM_COMMAND_BASE + drmCommandIndex, size);
2695
2696 if (drmIoctl(fd, request, data))
2697 return -errno;
2698 return 0;
2699 }
2700
2701 #define DRM_MAX_FDS 16
2702 static struct {
2703 char *BusID;
2704 int fd;
2705 int refcount;
2706 int type;
2707 } connection[DRM_MAX_FDS];
2708
2709 static int nr_fds = 0;
2710
drmOpenOnce(void * unused,const char * BusID,int * newlyopened)2711 drm_public int drmOpenOnce(void *unused, const char *BusID, int *newlyopened)
2712 {
2713 return drmOpenOnceWithType(BusID, newlyopened, DRM_NODE_PRIMARY);
2714 }
2715
drmOpenOnceWithType(const char * BusID,int * newlyopened,int type)2716 drm_public int drmOpenOnceWithType(const char *BusID, int *newlyopened,
2717 int type)
2718 {
2719 int i;
2720 int fd;
2721
2722 for (i = 0; i < nr_fds; i++)
2723 if ((strcmp(BusID, connection[i].BusID) == 0) &&
2724 (connection[i].type == type)) {
2725 connection[i].refcount++;
2726 *newlyopened = 0;
2727 return connection[i].fd;
2728 }
2729
2730 fd = drmOpenWithType(NULL, BusID, type);
2731 if (fd < 0 || nr_fds == DRM_MAX_FDS)
2732 return fd;
2733
2734 connection[nr_fds].BusID = strdup(BusID);
2735 connection[nr_fds].fd = fd;
2736 connection[nr_fds].refcount = 1;
2737 connection[nr_fds].type = type;
2738 *newlyopened = 1;
2739
2740 if (0)
2741 fprintf(stderr, "saved connection %d for %s %d\n",
2742 nr_fds, connection[nr_fds].BusID,
2743 strcmp(BusID, connection[nr_fds].BusID));
2744
2745 nr_fds++;
2746
2747 return fd;
2748 }
2749
drmCloseOnce(int fd)2750 drm_public void drmCloseOnce(int fd)
2751 {
2752 int i;
2753
2754 for (i = 0; i < nr_fds; i++) {
2755 if (fd == connection[i].fd) {
2756 if (--connection[i].refcount == 0) {
2757 drmClose(connection[i].fd);
2758 free(connection[i].BusID);
2759
2760 if (i < --nr_fds)
2761 connection[i] = connection[nr_fds];
2762
2763 return;
2764 }
2765 }
2766 }
2767 }
2768
drmSetMaster(int fd)2769 drm_public int drmSetMaster(int fd)
2770 {
2771 return drmIoctl(fd, DRM_IOCTL_SET_MASTER, NULL);
2772 }
2773
drmDropMaster(int fd)2774 drm_public int drmDropMaster(int fd)
2775 {
2776 return drmIoctl(fd, DRM_IOCTL_DROP_MASTER, NULL);
2777 }
2778
drmIsMaster(int fd)2779 drm_public int drmIsMaster(int fd)
2780 {
2781 /* Detect master by attempting something that requires master.
2782 *
2783 * Authenticating magic tokens requires master and 0 is an
2784 * internal kernel detail which we could use. Attempting this on
2785 * a master fd would fail therefore fail with EINVAL because 0
2786 * is invalid.
2787 *
2788 * A non-master fd will fail with EACCES, as the kernel checks
2789 * for master before attempting to do anything else.
2790 *
2791 * Since we don't want to leak implementation details, use
2792 * EACCES.
2793 */
2794 return drmAuthMagic(fd, 0) != -EACCES;
2795 }
2796
drmGetDeviceNameFromFd(int fd)2797 drm_public char *drmGetDeviceNameFromFd(int fd)
2798 {
2799 #ifdef __FreeBSD__
2800 struct stat sbuf;
2801 int maj, min;
2802 int nodetype;
2803
2804 if (fstat(fd, &sbuf))
2805 return NULL;
2806
2807 maj = major(sbuf.st_rdev);
2808 min = minor(sbuf.st_rdev);
2809 nodetype = drmGetMinorType(maj, min);
2810 return drmGetMinorNameForFD(fd, nodetype);
2811 #else
2812 char name[128];
2813 struct stat sbuf;
2814 dev_t d;
2815 int i;
2816
2817 /* The whole drmOpen thing is a fiasco and we need to find a way
2818 * back to just using open(2). For now, however, lets just make
2819 * things worse with even more ad hoc directory walking code to
2820 * discover the device file name. */
2821
2822 fstat(fd, &sbuf);
2823 d = sbuf.st_rdev;
2824
2825 for (i = 0; i < DRM_MAX_MINOR; i++) {
2826 snprintf(name, sizeof name, DRM_DEV_NAME, DRM_DIR_NAME, i);
2827 if (stat(name, &sbuf) == 0 && sbuf.st_rdev == d)
2828 break;
2829 }
2830 if (i == DRM_MAX_MINOR)
2831 return NULL;
2832
2833 return strdup(name);
2834 #endif
2835 }
2836
drmNodeIsDRM(int maj,int min)2837 static bool drmNodeIsDRM(int maj, int min)
2838 {
2839 #ifdef __linux__
2840 char path[64];
2841 struct stat sbuf;
2842
2843 snprintf(path, sizeof(path), "/sys/dev/char/%d:%d/device/drm",
2844 maj, min);
2845 return stat(path, &sbuf) == 0;
2846 #elif defined(__FreeBSD__)
2847 char name[SPECNAMELEN];
2848
2849 if (!devname_r(makedev(maj, min), S_IFCHR, name, sizeof(name)))
2850 return 0;
2851 /* Handle drm/ and dri/ as both are present in different FreeBSD version
2852 * FreeBSD on amd64/i386/powerpc external kernel modules create node in
2853 * in /dev/drm/ and links in /dev/dri while a WIP in kernel driver creates
2854 * only device nodes in /dev/dri/ */
2855 return (!strncmp(name, "drm/", 4) || !strncmp(name, "dri/", 4));
2856 #else
2857 return maj == DRM_MAJOR;
2858 #endif
2859 }
2860
drmGetNodeTypeFromFd(int fd)2861 drm_public int drmGetNodeTypeFromFd(int fd)
2862 {
2863 struct stat sbuf;
2864 int maj, min, type;
2865
2866 if (fstat(fd, &sbuf))
2867 return -1;
2868
2869 maj = major(sbuf.st_rdev);
2870 min = minor(sbuf.st_rdev);
2871
2872 if (!drmNodeIsDRM(maj, min) || !S_ISCHR(sbuf.st_mode)) {
2873 errno = EINVAL;
2874 return -1;
2875 }
2876
2877 type = drmGetMinorType(maj, min);
2878 if (type == -1)
2879 errno = ENODEV;
2880 return type;
2881 }
2882
drmPrimeHandleToFD(int fd,uint32_t handle,uint32_t flags,int * prime_fd)2883 drm_public int drmPrimeHandleToFD(int fd, uint32_t handle, uint32_t flags,
2884 int *prime_fd)
2885 {
2886 struct drm_prime_handle args;
2887 int ret;
2888
2889 memclear(args);
2890 args.fd = -1;
2891 args.handle = handle;
2892 args.flags = flags;
2893 ret = drmIoctl(fd, DRM_IOCTL_PRIME_HANDLE_TO_FD, &args);
2894 if (ret)
2895 return ret;
2896
2897 *prime_fd = args.fd;
2898 return 0;
2899 }
2900
drmPrimeFDToHandle(int fd,int prime_fd,uint32_t * handle)2901 drm_public int drmPrimeFDToHandle(int fd, int prime_fd, uint32_t *handle)
2902 {
2903 struct drm_prime_handle args;
2904 int ret;
2905
2906 memclear(args);
2907 args.fd = prime_fd;
2908 ret = drmIoctl(fd, DRM_IOCTL_PRIME_FD_TO_HANDLE, &args);
2909 if (ret)
2910 return ret;
2911
2912 *handle = args.handle;
2913 return 0;
2914 }
2915
drmGetMinorNameForFD(int fd,int type)2916 static char *drmGetMinorNameForFD(int fd, int type)
2917 {
2918 #ifdef __linux__
2919 DIR *sysdir;
2920 struct dirent *ent;
2921 struct stat sbuf;
2922 const char *name = drmGetMinorName(type);
2923 int len;
2924 char dev_name[64], buf[64];
2925 int maj, min;
2926
2927 if (!name)
2928 return NULL;
2929
2930 len = strlen(name);
2931
2932 if (fstat(fd, &sbuf))
2933 return NULL;
2934
2935 maj = major(sbuf.st_rdev);
2936 min = minor(sbuf.st_rdev);
2937
2938 if (!drmNodeIsDRM(maj, min) || !S_ISCHR(sbuf.st_mode))
2939 return NULL;
2940
2941 snprintf(buf, sizeof(buf), "/sys/dev/char/%d:%d/device/drm", maj, min);
2942
2943 sysdir = opendir(buf);
2944 if (!sysdir)
2945 return NULL;
2946
2947 while ((ent = readdir(sysdir))) {
2948 if (strncmp(ent->d_name, name, len) == 0) {
2949 snprintf(dev_name, sizeof(dev_name), DRM_DIR_NAME "/%s",
2950 ent->d_name);
2951
2952 closedir(sysdir);
2953 return strdup(dev_name);
2954 }
2955 }
2956
2957 closedir(sysdir);
2958 return NULL;
2959 #elif defined(__FreeBSD__)
2960 struct stat sbuf;
2961 char dname[SPECNAMELEN];
2962 const char *mname;
2963 char name[SPECNAMELEN];
2964 int id, maj, min, nodetype, i;
2965
2966 if (fstat(fd, &sbuf))
2967 return NULL;
2968
2969 maj = major(sbuf.st_rdev);
2970 min = minor(sbuf.st_rdev);
2971
2972 if (!drmNodeIsDRM(maj, min) || !S_ISCHR(sbuf.st_mode))
2973 return NULL;
2974
2975 if (!devname_r(sbuf.st_rdev, S_IFCHR, dname, sizeof(dname)))
2976 return NULL;
2977
2978 /* Handle both /dev/drm and /dev/dri
2979 * FreeBSD on amd64/i386/powerpc external kernel modules create node in
2980 * in /dev/drm/ and links in /dev/dri while a WIP in kernel driver creates
2981 * only device nodes in /dev/dri/ */
2982
2983 /* Get the node type represented by fd so we can deduce the target name */
2984 nodetype = drmGetMinorType(maj, min);
2985 if (nodetype == -1)
2986 return (NULL);
2987 mname = drmGetMinorName(type);
2988
2989 for (i = 0; i < SPECNAMELEN; i++) {
2990 if (isalpha(dname[i]) == 0 && dname[i] != '/')
2991 break;
2992 }
2993 if (dname[i] == '\0')
2994 return (NULL);
2995
2996 id = (int)strtol(&dname[i], NULL, 10);
2997 id -= drmGetMinorBase(nodetype);
2998 snprintf(name, sizeof(name), DRM_DIR_NAME "/%s%d", mname,
2999 id + drmGetMinorBase(type));
3000
3001 return strdup(name);
3002 #else
3003 struct stat sbuf;
3004 char buf[PATH_MAX + 1];
3005 const char *dev_name = drmGetDeviceName(type);
3006 unsigned int maj, min;
3007 int n;
3008
3009 if (fstat(fd, &sbuf))
3010 return NULL;
3011
3012 maj = major(sbuf.st_rdev);
3013 min = minor(sbuf.st_rdev);
3014
3015 if (!drmNodeIsDRM(maj, min) || !S_ISCHR(sbuf.st_mode))
3016 return NULL;
3017
3018 if (!dev_name)
3019 return NULL;
3020
3021 n = snprintf(buf, sizeof(buf), dev_name, DRM_DIR_NAME, min);
3022 if (n == -1 || n >= sizeof(buf))
3023 return NULL;
3024
3025 return strdup(buf);
3026 #endif
3027 }
3028
drmGetPrimaryDeviceNameFromFd(int fd)3029 drm_public char *drmGetPrimaryDeviceNameFromFd(int fd)
3030 {
3031 return drmGetMinorNameForFD(fd, DRM_NODE_PRIMARY);
3032 }
3033
drmGetRenderDeviceNameFromFd(int fd)3034 drm_public char *drmGetRenderDeviceNameFromFd(int fd)
3035 {
3036 return drmGetMinorNameForFD(fd, DRM_NODE_RENDER);
3037 }
3038
3039 #ifdef __linux__
3040 static char * DRM_PRINTFLIKE(2, 3)
sysfs_uevent_get(const char * path,const char * fmt,...)3041 sysfs_uevent_get(const char *path, const char *fmt, ...)
3042 {
3043 char filename[PATH_MAX + 1], *key, *line = NULL, *value = NULL;
3044 size_t size = 0, len;
3045 ssize_t num;
3046 va_list ap;
3047 FILE *fp;
3048
3049 va_start(ap, fmt);
3050 num = vasprintf(&key, fmt, ap);
3051 va_end(ap);
3052 len = num;
3053
3054 snprintf(filename, sizeof(filename), "%s/uevent", path);
3055
3056 fp = fopen(filename, "r");
3057 if (!fp) {
3058 free(key);
3059 return NULL;
3060 }
3061
3062 while ((num = getline(&line, &size, fp)) >= 0) {
3063 if ((strncmp(line, key, len) == 0) && (line[len] == '=')) {
3064 char *start = line + len + 1, *end = line + num - 1;
3065
3066 if (*end != '\n')
3067 end++;
3068
3069 value = strndup(start, end - start);
3070 break;
3071 }
3072 }
3073
3074 free(line);
3075 fclose(fp);
3076
3077 free(key);
3078
3079 return value;
3080 }
3081 #endif
3082
3083 /* Little white lie to avoid major rework of the existing code */
3084 #define DRM_BUS_VIRTIO 0x10
3085
3086 #ifdef __linux__
get_subsystem_type(const char * device_path)3087 static int get_subsystem_type(const char *device_path)
3088 {
3089 char path[PATH_MAX + 1] = "";
3090 char link[PATH_MAX + 1] = "";
3091 char *name;
3092 struct {
3093 const char *name;
3094 int bus_type;
3095 } bus_types[] = {
3096 { "/pci", DRM_BUS_PCI },
3097 { "/usb", DRM_BUS_USB },
3098 { "/platform", DRM_BUS_PLATFORM },
3099 { "/spi", DRM_BUS_PLATFORM },
3100 { "/host1x", DRM_BUS_HOST1X },
3101 { "/virtio", DRM_BUS_VIRTIO },
3102 };
3103
3104 strncpy(path, device_path, PATH_MAX);
3105 strncat(path, "/subsystem", PATH_MAX);
3106
3107 if (readlink(path, link, PATH_MAX) < 0)
3108 return -errno;
3109
3110 name = strrchr(link, '/');
3111 if (!name)
3112 return -EINVAL;
3113
3114 for (unsigned i = 0; i < ARRAY_SIZE(bus_types); i++) {
3115 if (strncmp(name, bus_types[i].name, strlen(bus_types[i].name)) == 0)
3116 return bus_types[i].bus_type;
3117 }
3118
3119 return -EINVAL;
3120 }
3121 #endif
3122
drmParseSubsystemType(int maj,int min)3123 static int drmParseSubsystemType(int maj, int min)
3124 {
3125 #ifdef __linux__
3126 char path[PATH_MAX + 1] = "";
3127 char real_path[PATH_MAX + 1] = "";
3128 int subsystem_type;
3129
3130 snprintf(path, sizeof(path), "/sys/dev/char/%d:%d/device", maj, min);
3131
3132 subsystem_type = get_subsystem_type(path);
3133 /* Try to get the parent (underlying) device type */
3134 if (subsystem_type == DRM_BUS_VIRTIO) {
3135 /* Assume virtio-pci on error */
3136 if (!realpath(path, real_path))
3137 return DRM_BUS_VIRTIO;
3138 strncat(path, "/..", PATH_MAX);
3139 subsystem_type = get_subsystem_type(path);
3140 if (subsystem_type < 0)
3141 return DRM_BUS_VIRTIO;
3142 }
3143 return subsystem_type;
3144 #elif defined(__OpenBSD__) || defined(__DragonFly__) || defined(__FreeBSD__)
3145 return DRM_BUS_PCI;
3146 #else
3147 #warning "Missing implementation of drmParseSubsystemType"
3148 return -EINVAL;
3149 #endif
3150 }
3151
3152 #ifdef __linux__
3153 static void
get_pci_path(int maj,int min,char * pci_path)3154 get_pci_path(int maj, int min, char *pci_path)
3155 {
3156 char path[PATH_MAX + 1], *term;
3157
3158 snprintf(path, sizeof(path), "/sys/dev/char/%d:%d/device", maj, min);
3159 if (!realpath(path, pci_path)) {
3160 strcpy(pci_path, path);
3161 return;
3162 }
3163
3164 term = strrchr(pci_path, '/');
3165 if (term && strncmp(term, "/virtio", 7) == 0)
3166 *term = 0;
3167 }
3168 #endif
3169
3170 #ifdef __FreeBSD__
get_sysctl_pci_bus_info(int maj,int min,drmPciBusInfoPtr info)3171 static int get_sysctl_pci_bus_info(int maj, int min, drmPciBusInfoPtr info)
3172 {
3173 char dname[SPECNAMELEN];
3174 char sysctl_name[16];
3175 char sysctl_val[256];
3176 size_t sysctl_len;
3177 int id, type, nelem;
3178 unsigned int rdev, majmin, domain, bus, dev, func;
3179
3180 rdev = makedev(maj, min);
3181 if (!devname_r(rdev, S_IFCHR, dname, sizeof(dname)))
3182 return -EINVAL;
3183
3184 if (sscanf(dname, "drm/%d\n", &id) != 1)
3185 return -EINVAL;
3186 type = drmGetMinorType(maj, min);
3187 if (type == -1)
3188 return -EINVAL;
3189
3190 /* BUG: This above section is iffy, since it mandates that a driver will
3191 * create both card and render node.
3192 * If it does not, the next DRM device will create card#X and
3193 * renderD#(128+X)-1.
3194 * This is a possibility in FreeBSD but for now there is no good way for
3195 * obtaining the info.
3196 */
3197 switch (type) {
3198 case DRM_NODE_PRIMARY:
3199 break;
3200 case DRM_NODE_CONTROL:
3201 id -= 64;
3202 break;
3203 case DRM_NODE_RENDER:
3204 id -= 128;
3205 break;
3206 }
3207 if (id < 0)
3208 return -EINVAL;
3209
3210 if (snprintf(sysctl_name, sizeof(sysctl_name), "hw.dri.%d.busid", id) <= 0)
3211 return -EINVAL;
3212 sysctl_len = sizeof(sysctl_val);
3213 if (sysctlbyname(sysctl_name, sysctl_val, &sysctl_len, NULL, 0))
3214 return -EINVAL;
3215
3216 #define bus_fmt "pci:%04x:%02x:%02x.%u"
3217
3218 nelem = sscanf(sysctl_val, bus_fmt, &domain, &bus, &dev, &func);
3219 if (nelem != 4)
3220 return -EINVAL;
3221 info->domain = domain;
3222 info->bus = bus;
3223 info->dev = dev;
3224 info->func = func;
3225
3226 return 0;
3227 }
3228 #endif
3229
drmParsePciBusInfo(int maj,int min,drmPciBusInfoPtr info)3230 static int drmParsePciBusInfo(int maj, int min, drmPciBusInfoPtr info)
3231 {
3232 #ifdef __linux__
3233 unsigned int domain, bus, dev, func;
3234 char pci_path[PATH_MAX + 1], *value;
3235 int num;
3236
3237 get_pci_path(maj, min, pci_path);
3238
3239 value = sysfs_uevent_get(pci_path, "PCI_SLOT_NAME");
3240 if (!value)
3241 return -ENOENT;
3242
3243 num = sscanf(value, "%04x:%02x:%02x.%1u", &domain, &bus, &dev, &func);
3244 free(value);
3245
3246 if (num != 4)
3247 return -EINVAL;
3248
3249 info->domain = domain;
3250 info->bus = bus;
3251 info->dev = dev;
3252 info->func = func;
3253
3254 return 0;
3255 #elif defined(__OpenBSD__) || defined(__DragonFly__)
3256 struct drm_pciinfo pinfo;
3257 int fd, type;
3258
3259 type = drmGetMinorType(maj, min);
3260 if (type == -1)
3261 return -ENODEV;
3262
3263 fd = drmOpenMinor(min, 0, type);
3264 if (fd < 0)
3265 return -errno;
3266
3267 if (drmIoctl(fd, DRM_IOCTL_GET_PCIINFO, &pinfo)) {
3268 close(fd);
3269 return -errno;
3270 }
3271 close(fd);
3272
3273 info->domain = pinfo.domain;
3274 info->bus = pinfo.bus;
3275 info->dev = pinfo.dev;
3276 info->func = pinfo.func;
3277
3278 return 0;
3279 #elif defined(__FreeBSD__)
3280 return get_sysctl_pci_bus_info(maj, min, info);
3281 #else
3282 #warning "Missing implementation of drmParsePciBusInfo"
3283 return -EINVAL;
3284 #endif
3285 }
3286
drmDevicesEqual(drmDevicePtr a,drmDevicePtr b)3287 drm_public int drmDevicesEqual(drmDevicePtr a, drmDevicePtr b)
3288 {
3289 if (a == NULL || b == NULL)
3290 return 0;
3291
3292 if (a->bustype != b->bustype)
3293 return 0;
3294
3295 switch (a->bustype) {
3296 case DRM_BUS_PCI:
3297 return memcmp(a->businfo.pci, b->businfo.pci, sizeof(drmPciBusInfo)) == 0;
3298
3299 case DRM_BUS_USB:
3300 return memcmp(a->businfo.usb, b->businfo.usb, sizeof(drmUsbBusInfo)) == 0;
3301
3302 case DRM_BUS_PLATFORM:
3303 return memcmp(a->businfo.platform, b->businfo.platform, sizeof(drmPlatformBusInfo)) == 0;
3304
3305 case DRM_BUS_HOST1X:
3306 return memcmp(a->businfo.host1x, b->businfo.host1x, sizeof(drmHost1xBusInfo)) == 0;
3307
3308 default:
3309 break;
3310 }
3311
3312 return 0;
3313 }
3314
drmGetNodeType(const char * name)3315 static int drmGetNodeType(const char *name)
3316 {
3317 if (strncmp(name, DRM_CONTROL_MINOR_NAME,
3318 sizeof(DRM_CONTROL_MINOR_NAME ) - 1) == 0)
3319 return DRM_NODE_CONTROL;
3320
3321 if (strncmp(name, DRM_RENDER_MINOR_NAME,
3322 sizeof(DRM_RENDER_MINOR_NAME) - 1) == 0)
3323 return DRM_NODE_RENDER;
3324
3325 if (strncmp(name, DRM_PRIMARY_MINOR_NAME,
3326 sizeof(DRM_PRIMARY_MINOR_NAME) - 1) == 0)
3327 return DRM_NODE_PRIMARY;
3328
3329 return -EINVAL;
3330 }
3331
drmGetMaxNodeName(void)3332 static int drmGetMaxNodeName(void)
3333 {
3334 return sizeof(DRM_DIR_NAME) +
3335 MAX3(sizeof(DRM_PRIMARY_MINOR_NAME),
3336 sizeof(DRM_CONTROL_MINOR_NAME),
3337 sizeof(DRM_RENDER_MINOR_NAME)) +
3338 3 /* length of the node number */;
3339 }
3340
3341 #ifdef __linux__
parse_separate_sysfs_files(int maj,int min,drmPciDeviceInfoPtr device,bool ignore_revision)3342 static int parse_separate_sysfs_files(int maj, int min,
3343 drmPciDeviceInfoPtr device,
3344 bool ignore_revision)
3345 {
3346 static const char *attrs[] = {
3347 "revision", /* Older kernels are missing the file, so check for it first */
3348 "vendor",
3349 "device",
3350 "subsystem_vendor",
3351 "subsystem_device",
3352 };
3353 char path[PATH_MAX + 1], pci_path[PATH_MAX + 1];
3354 unsigned int data[ARRAY_SIZE(attrs)];
3355 FILE *fp;
3356 int ret;
3357
3358 get_pci_path(maj, min, pci_path);
3359
3360 for (unsigned i = ignore_revision ? 1 : 0; i < ARRAY_SIZE(attrs); i++) {
3361 snprintf(path, PATH_MAX, "%s/%s", pci_path, attrs[i]);
3362 fp = fopen(path, "r");
3363 if (!fp)
3364 return -errno;
3365
3366 ret = fscanf(fp, "%x", &data[i]);
3367 fclose(fp);
3368 if (ret != 1)
3369 return -errno;
3370
3371 }
3372
3373 device->revision_id = ignore_revision ? 0xff : data[0] & 0xff;
3374 device->vendor_id = data[1] & 0xffff;
3375 device->device_id = data[2] & 0xffff;
3376 device->subvendor_id = data[3] & 0xffff;
3377 device->subdevice_id = data[4] & 0xffff;
3378
3379 return 0;
3380 }
3381
parse_config_sysfs_file(int maj,int min,drmPciDeviceInfoPtr device)3382 static int parse_config_sysfs_file(int maj, int min,
3383 drmPciDeviceInfoPtr device)
3384 {
3385 char path[PATH_MAX + 1], pci_path[PATH_MAX + 1];
3386 unsigned char config[64];
3387 int fd, ret;
3388
3389 get_pci_path(maj, min, pci_path);
3390
3391 snprintf(path, PATH_MAX, "%s/config", pci_path);
3392 fd = open(path, O_RDONLY);
3393 if (fd < 0)
3394 return -errno;
3395
3396 ret = read(fd, config, sizeof(config));
3397 close(fd);
3398 if (ret < 0)
3399 return -errno;
3400
3401 device->vendor_id = config[0] | (config[1] << 8);
3402 device->device_id = config[2] | (config[3] << 8);
3403 device->revision_id = config[8];
3404 device->subvendor_id = config[44] | (config[45] << 8);
3405 device->subdevice_id = config[46] | (config[47] << 8);
3406
3407 return 0;
3408 }
3409 #endif
3410
drmParsePciDeviceInfo(int maj,int min,drmPciDeviceInfoPtr device,uint32_t flags)3411 static int drmParsePciDeviceInfo(int maj, int min,
3412 drmPciDeviceInfoPtr device,
3413 uint32_t flags)
3414 {
3415 #ifdef __linux__
3416 if (!(flags & DRM_DEVICE_GET_PCI_REVISION))
3417 return parse_separate_sysfs_files(maj, min, device, true);
3418
3419 if (parse_separate_sysfs_files(maj, min, device, false))
3420 return parse_config_sysfs_file(maj, min, device);
3421
3422 return 0;
3423 #elif defined(__OpenBSD__) || defined(__DragonFly__)
3424 struct drm_pciinfo pinfo;
3425 int fd, type;
3426
3427 type = drmGetMinorType(maj, min);
3428 if (type == -1)
3429 return -ENODEV;
3430
3431 fd = drmOpenMinor(min, 0, type);
3432 if (fd < 0)
3433 return -errno;
3434
3435 if (drmIoctl(fd, DRM_IOCTL_GET_PCIINFO, &pinfo)) {
3436 close(fd);
3437 return -errno;
3438 }
3439 close(fd);
3440
3441 device->vendor_id = pinfo.vendor_id;
3442 device->device_id = pinfo.device_id;
3443 device->revision_id = pinfo.revision_id;
3444 device->subvendor_id = pinfo.subvendor_id;
3445 device->subdevice_id = pinfo.subdevice_id;
3446
3447 return 0;
3448 #elif defined(__FreeBSD__)
3449 drmPciBusInfo info;
3450 struct pci_conf_io pc;
3451 struct pci_match_conf patterns[1];
3452 struct pci_conf results[1];
3453 int fd, error;
3454
3455 if (get_sysctl_pci_bus_info(maj, min, &info) != 0)
3456 return -EINVAL;
3457
3458 fd = open("/dev/pci", O_RDONLY, 0);
3459 if (fd < 0)
3460 return -errno;
3461
3462 bzero(&patterns, sizeof(patterns));
3463 patterns[0].pc_sel.pc_domain = info.domain;
3464 patterns[0].pc_sel.pc_bus = info.bus;
3465 patterns[0].pc_sel.pc_dev = info.dev;
3466 patterns[0].pc_sel.pc_func = info.func;
3467 patterns[0].flags = PCI_GETCONF_MATCH_DOMAIN | PCI_GETCONF_MATCH_BUS
3468 | PCI_GETCONF_MATCH_DEV | PCI_GETCONF_MATCH_FUNC;
3469 bzero(&pc, sizeof(struct pci_conf_io));
3470 pc.num_patterns = 1;
3471 pc.pat_buf_len = sizeof(patterns);
3472 pc.patterns = patterns;
3473 pc.match_buf_len = sizeof(results);
3474 pc.matches = results;
3475
3476 if (ioctl(fd, PCIOCGETCONF, &pc) || pc.status == PCI_GETCONF_ERROR) {
3477 error = errno;
3478 close(fd);
3479 return -error;
3480 }
3481 close(fd);
3482
3483 device->vendor_id = results[0].pc_vendor;
3484 device->device_id = results[0].pc_device;
3485 device->subvendor_id = results[0].pc_subvendor;
3486 device->subdevice_id = results[0].pc_subdevice;
3487 device->revision_id = results[0].pc_revid;
3488
3489 return 0;
3490 #else
3491 #warning "Missing implementation of drmParsePciDeviceInfo"
3492 return -EINVAL;
3493 #endif
3494 }
3495
drmFreePlatformDevice(drmDevicePtr device)3496 static void drmFreePlatformDevice(drmDevicePtr device)
3497 {
3498 if (device->deviceinfo.platform) {
3499 if (device->deviceinfo.platform->compatible) {
3500 char **compatible = device->deviceinfo.platform->compatible;
3501
3502 while (*compatible) {
3503 free(*compatible);
3504 compatible++;
3505 }
3506
3507 free(device->deviceinfo.platform->compatible);
3508 }
3509 }
3510 }
3511
drmFreeHost1xDevice(drmDevicePtr device)3512 static void drmFreeHost1xDevice(drmDevicePtr device)
3513 {
3514 if (device->deviceinfo.host1x) {
3515 if (device->deviceinfo.host1x->compatible) {
3516 char **compatible = device->deviceinfo.host1x->compatible;
3517
3518 while (*compatible) {
3519 free(*compatible);
3520 compatible++;
3521 }
3522
3523 free(device->deviceinfo.host1x->compatible);
3524 }
3525 }
3526 }
3527
drmFreeDevice(drmDevicePtr * device)3528 drm_public void drmFreeDevice(drmDevicePtr *device)
3529 {
3530 if (device == NULL)
3531 return;
3532
3533 if (*device) {
3534 switch ((*device)->bustype) {
3535 case DRM_BUS_PLATFORM:
3536 drmFreePlatformDevice(*device);
3537 break;
3538
3539 case DRM_BUS_HOST1X:
3540 drmFreeHost1xDevice(*device);
3541 break;
3542 }
3543 }
3544
3545 free(*device);
3546 *device = NULL;
3547 }
3548
drmFreeDevices(drmDevicePtr devices[],int count)3549 drm_public void drmFreeDevices(drmDevicePtr devices[], int count)
3550 {
3551 int i;
3552
3553 if (devices == NULL)
3554 return;
3555
3556 for (i = 0; i < count; i++)
3557 if (devices[i])
3558 drmFreeDevice(&devices[i]);
3559 }
3560
drmDeviceAlloc(unsigned int type,const char * node,size_t bus_size,size_t device_size,char ** ptrp)3561 static drmDevicePtr drmDeviceAlloc(unsigned int type, const char *node,
3562 size_t bus_size, size_t device_size,
3563 char **ptrp)
3564 {
3565 size_t max_node_length, extra, size;
3566 drmDevicePtr device;
3567 unsigned int i;
3568 char *ptr;
3569
3570 max_node_length = ALIGN(drmGetMaxNodeName(), sizeof(void *));
3571 extra = DRM_NODE_MAX * (sizeof(void *) + max_node_length);
3572
3573 size = sizeof(*device) + extra + bus_size + device_size;
3574
3575 device = calloc(1, size);
3576 if (!device)
3577 return NULL;
3578
3579 device->available_nodes = 1 << type;
3580
3581 ptr = (char *)device + sizeof(*device);
3582 device->nodes = (char **)ptr;
3583
3584 ptr += DRM_NODE_MAX * sizeof(void *);
3585
3586 for (i = 0; i < DRM_NODE_MAX; i++) {
3587 device->nodes[i] = ptr;
3588 ptr += max_node_length;
3589 }
3590
3591 memcpy(device->nodes[type], node, max_node_length);
3592
3593 *ptrp = ptr;
3594
3595 return device;
3596 }
3597
drmProcessPciDevice(drmDevicePtr * device,const char * node,int node_type,int maj,int min,bool fetch_deviceinfo,uint32_t flags)3598 static int drmProcessPciDevice(drmDevicePtr *device,
3599 const char *node, int node_type,
3600 int maj, int min, bool fetch_deviceinfo,
3601 uint32_t flags)
3602 {
3603 drmDevicePtr dev;
3604 char *addr;
3605 int ret;
3606
3607 dev = drmDeviceAlloc(node_type, node, sizeof(drmPciBusInfo),
3608 sizeof(drmPciDeviceInfo), &addr);
3609 if (!dev)
3610 return -ENOMEM;
3611
3612 dev->bustype = DRM_BUS_PCI;
3613
3614 dev->businfo.pci = (drmPciBusInfoPtr)addr;
3615
3616 ret = drmParsePciBusInfo(maj, min, dev->businfo.pci);
3617 if (ret)
3618 goto free_device;
3619
3620 // Fetch the device info if the user has requested it
3621 if (fetch_deviceinfo) {
3622 addr += sizeof(drmPciBusInfo);
3623 dev->deviceinfo.pci = (drmPciDeviceInfoPtr)addr;
3624
3625 ret = drmParsePciDeviceInfo(maj, min, dev->deviceinfo.pci, flags);
3626 if (ret)
3627 goto free_device;
3628 }
3629
3630 *device = dev;
3631
3632 return 0;
3633
3634 free_device:
3635 free(dev);
3636 return ret;
3637 }
3638
3639 #ifdef __linux__
drm_usb_dev_path(int maj,int min,char * path,size_t len)3640 static int drm_usb_dev_path(int maj, int min, char *path, size_t len)
3641 {
3642 char *value, *tmp_path, *slash;
3643
3644 snprintf(path, len, "/sys/dev/char/%d:%d/device", maj, min);
3645
3646 value = sysfs_uevent_get(path, "DEVTYPE");
3647 if (!value)
3648 return -ENOENT;
3649
3650 if (strcmp(value, "usb_device") == 0)
3651 return 0;
3652 if (strcmp(value, "usb_interface") != 0)
3653 return -ENOTSUP;
3654
3655 /* The parent of a usb_interface is a usb_device */
3656
3657 tmp_path = realpath(path, NULL);
3658 if (!tmp_path)
3659 return -errno;
3660
3661 slash = strrchr(tmp_path, '/');
3662 if (!slash) {
3663 free(tmp_path);
3664 return -EINVAL;
3665 }
3666
3667 *slash = '\0';
3668
3669 if (snprintf(path, len, "%s", tmp_path) >= (int)len) {
3670 free(tmp_path);
3671 return -EINVAL;
3672 }
3673
3674 free(tmp_path);
3675 return 0;
3676 }
3677 #endif
3678
drmParseUsbBusInfo(int maj,int min,drmUsbBusInfoPtr info)3679 static int drmParseUsbBusInfo(int maj, int min, drmUsbBusInfoPtr info)
3680 {
3681 #ifdef __linux__
3682 char path[PATH_MAX + 1], *value;
3683 unsigned int bus, dev;
3684 int ret;
3685
3686 ret = drm_usb_dev_path(maj, min, path, sizeof(path));
3687 if (ret < 0)
3688 return ret;
3689
3690 value = sysfs_uevent_get(path, "BUSNUM");
3691 if (!value)
3692 return -ENOENT;
3693
3694 ret = sscanf(value, "%03u", &bus);
3695 free(value);
3696
3697 if (ret <= 0)
3698 return -errno;
3699
3700 value = sysfs_uevent_get(path, "DEVNUM");
3701 if (!value)
3702 return -ENOENT;
3703
3704 ret = sscanf(value, "%03u", &dev);
3705 free(value);
3706
3707 if (ret <= 0)
3708 return -errno;
3709
3710 info->bus = bus;
3711 info->dev = dev;
3712
3713 return 0;
3714 #else
3715 #warning "Missing implementation of drmParseUsbBusInfo"
3716 return -EINVAL;
3717 #endif
3718 }
3719
drmParseUsbDeviceInfo(int maj,int min,drmUsbDeviceInfoPtr info)3720 static int drmParseUsbDeviceInfo(int maj, int min, drmUsbDeviceInfoPtr info)
3721 {
3722 #ifdef __linux__
3723 char path[PATH_MAX + 1], *value;
3724 unsigned int vendor, product;
3725 int ret;
3726
3727 ret = drm_usb_dev_path(maj, min, path, sizeof(path));
3728 if (ret < 0)
3729 return ret;
3730
3731 value = sysfs_uevent_get(path, "PRODUCT");
3732 if (!value)
3733 return -ENOENT;
3734
3735 ret = sscanf(value, "%x/%x", &vendor, &product);
3736 free(value);
3737
3738 if (ret <= 0)
3739 return -errno;
3740
3741 info->vendor = vendor;
3742 info->product = product;
3743
3744 return 0;
3745 #else
3746 #warning "Missing implementation of drmParseUsbDeviceInfo"
3747 return -EINVAL;
3748 #endif
3749 }
3750
drmProcessUsbDevice(drmDevicePtr * device,const char * node,int node_type,int maj,int min,bool fetch_deviceinfo,uint32_t flags)3751 static int drmProcessUsbDevice(drmDevicePtr *device, const char *node,
3752 int node_type, int maj, int min,
3753 bool fetch_deviceinfo, uint32_t flags)
3754 {
3755 drmDevicePtr dev;
3756 char *ptr;
3757 int ret;
3758
3759 dev = drmDeviceAlloc(node_type, node, sizeof(drmUsbBusInfo),
3760 sizeof(drmUsbDeviceInfo), &ptr);
3761 if (!dev)
3762 return -ENOMEM;
3763
3764 dev->bustype = DRM_BUS_USB;
3765
3766 dev->businfo.usb = (drmUsbBusInfoPtr)ptr;
3767
3768 ret = drmParseUsbBusInfo(maj, min, dev->businfo.usb);
3769 if (ret < 0)
3770 goto free_device;
3771
3772 if (fetch_deviceinfo) {
3773 ptr += sizeof(drmUsbBusInfo);
3774 dev->deviceinfo.usb = (drmUsbDeviceInfoPtr)ptr;
3775
3776 ret = drmParseUsbDeviceInfo(maj, min, dev->deviceinfo.usb);
3777 if (ret < 0)
3778 goto free_device;
3779 }
3780
3781 *device = dev;
3782
3783 return 0;
3784
3785 free_device:
3786 free(dev);
3787 return ret;
3788 }
3789
drmParseOFBusInfo(int maj,int min,char * fullname)3790 static int drmParseOFBusInfo(int maj, int min, char *fullname)
3791 {
3792 #ifdef __linux__
3793 char path[PATH_MAX + 1], *name, *tmp_name;
3794
3795 snprintf(path, sizeof(path), "/sys/dev/char/%d:%d/device", maj, min);
3796
3797 name = sysfs_uevent_get(path, "OF_FULLNAME");
3798 tmp_name = name;
3799 if (!name) {
3800 /* If the device lacks OF data, pick the MODALIAS info */
3801 name = sysfs_uevent_get(path, "MODALIAS");
3802 if (!name)
3803 return -ENOENT;
3804
3805 /* .. and strip the MODALIAS=[platform,usb...]: part. */
3806 tmp_name = strrchr(name, ':');
3807 if (!tmp_name) {
3808 free(name);
3809 return -ENOENT;
3810 }
3811 tmp_name++;
3812 }
3813
3814 strncpy(fullname, tmp_name, DRM_PLATFORM_DEVICE_NAME_LEN);
3815 fullname[DRM_PLATFORM_DEVICE_NAME_LEN - 1] = '\0';
3816 free(name);
3817
3818 return 0;
3819 #else
3820 #warning "Missing implementation of drmParseOFBusInfo"
3821 return -EINVAL;
3822 #endif
3823 }
3824
drmParseOFDeviceInfo(int maj,int min,char *** compatible)3825 static int drmParseOFDeviceInfo(int maj, int min, char ***compatible)
3826 {
3827 #ifdef __linux__
3828 char path[PATH_MAX + 1], *value, *tmp_name;
3829 unsigned int count, i;
3830 int err;
3831
3832 snprintf(path, sizeof(path), "/sys/dev/char/%d:%d/device", maj, min);
3833
3834 value = sysfs_uevent_get(path, "OF_COMPATIBLE_N");
3835 if (value) {
3836 sscanf(value, "%u", &count);
3837 free(value);
3838 } else {
3839 /* Assume one entry if the device lack OF data */
3840 count = 1;
3841 }
3842
3843 *compatible = calloc(count + 1, sizeof(char *));
3844 if (!*compatible)
3845 return -ENOMEM;
3846
3847 for (i = 0; i < count; i++) {
3848 value = sysfs_uevent_get(path, "OF_COMPATIBLE_%u", i);
3849 tmp_name = value;
3850 if (!value) {
3851 /* If the device lacks OF data, pick the MODALIAS info */
3852 value = sysfs_uevent_get(path, "MODALIAS");
3853 if (!value) {
3854 err = -ENOENT;
3855 goto free;
3856 }
3857
3858 /* .. and strip the MODALIAS=[platform,usb...]: part. */
3859 tmp_name = strrchr(value, ':');
3860 if (!tmp_name) {
3861 free(value);
3862 return -ENOENT;
3863 }
3864 tmp_name = strdup(tmp_name + 1);
3865 free(value);
3866 }
3867
3868 (*compatible)[i] = tmp_name;
3869 }
3870
3871 return 0;
3872
3873 free:
3874 while (i--)
3875 free((*compatible)[i]);
3876
3877 free(*compatible);
3878 return err;
3879 #else
3880 #warning "Missing implementation of drmParseOFDeviceInfo"
3881 return -EINVAL;
3882 #endif
3883 }
3884
drmProcessPlatformDevice(drmDevicePtr * device,const char * node,int node_type,int maj,int min,bool fetch_deviceinfo,uint32_t flags)3885 static int drmProcessPlatformDevice(drmDevicePtr *device,
3886 const char *node, int node_type,
3887 int maj, int min, bool fetch_deviceinfo,
3888 uint32_t flags)
3889 {
3890 drmDevicePtr dev;
3891 char *ptr;
3892 int ret;
3893
3894 dev = drmDeviceAlloc(node_type, node, sizeof(drmPlatformBusInfo),
3895 sizeof(drmPlatformDeviceInfo), &ptr);
3896 if (!dev)
3897 return -ENOMEM;
3898
3899 dev->bustype = DRM_BUS_PLATFORM;
3900
3901 dev->businfo.platform = (drmPlatformBusInfoPtr)ptr;
3902
3903 ret = drmParseOFBusInfo(maj, min, dev->businfo.platform->fullname);
3904 if (ret < 0)
3905 goto free_device;
3906
3907 if (fetch_deviceinfo) {
3908 ptr += sizeof(drmPlatformBusInfo);
3909 dev->deviceinfo.platform = (drmPlatformDeviceInfoPtr)ptr;
3910
3911 ret = drmParseOFDeviceInfo(maj, min, &dev->deviceinfo.platform->compatible);
3912 if (ret < 0)
3913 goto free_device;
3914 }
3915
3916 *device = dev;
3917
3918 return 0;
3919
3920 free_device:
3921 free(dev);
3922 return ret;
3923 }
3924
drmProcessHost1xDevice(drmDevicePtr * device,const char * node,int node_type,int maj,int min,bool fetch_deviceinfo,uint32_t flags)3925 static int drmProcessHost1xDevice(drmDevicePtr *device,
3926 const char *node, int node_type,
3927 int maj, int min, bool fetch_deviceinfo,
3928 uint32_t flags)
3929 {
3930 drmDevicePtr dev;
3931 char *ptr;
3932 int ret;
3933
3934 dev = drmDeviceAlloc(node_type, node, sizeof(drmHost1xBusInfo),
3935 sizeof(drmHost1xDeviceInfo), &ptr);
3936 if (!dev)
3937 return -ENOMEM;
3938
3939 dev->bustype = DRM_BUS_HOST1X;
3940
3941 dev->businfo.host1x = (drmHost1xBusInfoPtr)ptr;
3942
3943 ret = drmParseOFBusInfo(maj, min, dev->businfo.host1x->fullname);
3944 if (ret < 0)
3945 goto free_device;
3946
3947 if (fetch_deviceinfo) {
3948 ptr += sizeof(drmHost1xBusInfo);
3949 dev->deviceinfo.host1x = (drmHost1xDeviceInfoPtr)ptr;
3950
3951 ret = drmParseOFDeviceInfo(maj, min, &dev->deviceinfo.host1x->compatible);
3952 if (ret < 0)
3953 goto free_device;
3954 }
3955
3956 *device = dev;
3957
3958 return 0;
3959
3960 free_device:
3961 free(dev);
3962 return ret;
3963 }
3964
3965 static int
process_device(drmDevicePtr * device,const char * d_name,int req_subsystem_type,bool fetch_deviceinfo,uint32_t flags)3966 process_device(drmDevicePtr *device, const char *d_name,
3967 int req_subsystem_type,
3968 bool fetch_deviceinfo, uint32_t flags)
3969 {
3970 struct stat sbuf;
3971 char node[PATH_MAX + 1];
3972 int node_type, subsystem_type;
3973 unsigned int maj, min;
3974
3975 node_type = drmGetNodeType(d_name);
3976 if (node_type < 0)
3977 return -1;
3978
3979 snprintf(node, PATH_MAX, "%s/%s", DRM_DIR_NAME, d_name);
3980 if (stat(node, &sbuf))
3981 return -1;
3982
3983 maj = major(sbuf.st_rdev);
3984 min = minor(sbuf.st_rdev);
3985
3986 if (!drmNodeIsDRM(maj, min) || !S_ISCHR(sbuf.st_mode))
3987 return -1;
3988
3989 subsystem_type = drmParseSubsystemType(maj, min);
3990 if (req_subsystem_type != -1 && req_subsystem_type != subsystem_type)
3991 return -1;
3992
3993 switch (subsystem_type) {
3994 case DRM_BUS_PCI:
3995 case DRM_BUS_VIRTIO:
3996 return drmProcessPciDevice(device, node, node_type, maj, min,
3997 fetch_deviceinfo, flags);
3998 case DRM_BUS_USB:
3999 return drmProcessUsbDevice(device, node, node_type, maj, min,
4000 fetch_deviceinfo, flags);
4001 case DRM_BUS_PLATFORM:
4002 return drmProcessPlatformDevice(device, node, node_type, maj, min,
4003 fetch_deviceinfo, flags);
4004 case DRM_BUS_HOST1X:
4005 return drmProcessHost1xDevice(device, node, node_type, maj, min,
4006 fetch_deviceinfo, flags);
4007 default:
4008 return -1;
4009 }
4010 }
4011
4012 /* Consider devices located on the same bus as duplicate and fold the respective
4013 * entries into a single one.
4014 *
4015 * Note: this leaves "gaps" in the array, while preserving the length.
4016 */
drmFoldDuplicatedDevices(drmDevicePtr local_devices[],int count)4017 static void drmFoldDuplicatedDevices(drmDevicePtr local_devices[], int count)
4018 {
4019 int node_type, i, j;
4020
4021 for (i = 0; i < count; i++) {
4022 for (j = i + 1; j < count; j++) {
4023 if (drmDevicesEqual(local_devices[i], local_devices[j])) {
4024 local_devices[i]->available_nodes |= local_devices[j]->available_nodes;
4025 node_type = log2_int(local_devices[j]->available_nodes);
4026 memcpy(local_devices[i]->nodes[node_type],
4027 local_devices[j]->nodes[node_type], drmGetMaxNodeName());
4028 drmFreeDevice(&local_devices[j]);
4029 }
4030 }
4031 }
4032 }
4033
4034 /* Check that the given flags are valid returning 0 on success */
4035 static int
drm_device_validate_flags(uint32_t flags)4036 drm_device_validate_flags(uint32_t flags)
4037 {
4038 return (flags & ~DRM_DEVICE_GET_PCI_REVISION);
4039 }
4040
4041 static bool
drm_device_has_rdev(drmDevicePtr device,dev_t find_rdev)4042 drm_device_has_rdev(drmDevicePtr device, dev_t find_rdev)
4043 {
4044 struct stat sbuf;
4045
4046 for (int i = 0; i < DRM_NODE_MAX; i++) {
4047 if (device->available_nodes & 1 << i) {
4048 if (stat(device->nodes[i], &sbuf) == 0 &&
4049 sbuf.st_rdev == find_rdev)
4050 return true;
4051 }
4052 }
4053 return false;
4054 }
4055
4056 /*
4057 * The kernel drm core has a number of places that assume maximum of
4058 * 3x64 devices nodes. That's 64 for each of primary, control and
4059 * render nodes. Rounded it up to 256 for simplicity.
4060 */
4061 #define MAX_DRM_NODES 256
4062
4063 /**
4064 * Get information about the opened drm device
4065 *
4066 * \param fd file descriptor of the drm device
4067 * \param flags feature/behaviour bitmask
4068 * \param device the address of a drmDevicePtr where the information
4069 * will be allocated in stored
4070 *
4071 * \return zero on success, negative error code otherwise.
4072 *
4073 * \note Unlike drmGetDevice it does not retrieve the pci device revision field
4074 * unless the DRM_DEVICE_GET_PCI_REVISION \p flag is set.
4075 */
drmGetDevice2(int fd,uint32_t flags,drmDevicePtr * device)4076 drm_public int drmGetDevice2(int fd, uint32_t flags, drmDevicePtr *device)
4077 {
4078 #ifdef __OpenBSD__
4079 /*
4080 * DRI device nodes on OpenBSD are not in their own directory, they reside
4081 * in /dev along with a large number of statically generated /dev nodes.
4082 * Avoid stat'ing all of /dev needlessly by implementing this custom path.
4083 */
4084 drmDevicePtr d;
4085 struct stat sbuf;
4086 char node[PATH_MAX + 1];
4087 const char *dev_name;
4088 int node_type, subsystem_type;
4089 int maj, min, n, ret;
4090
4091 if (fd == -1 || device == NULL)
4092 return -EINVAL;
4093
4094 if (fstat(fd, &sbuf))
4095 return -errno;
4096
4097 maj = major(sbuf.st_rdev);
4098 min = minor(sbuf.st_rdev);
4099
4100 if (!drmNodeIsDRM(maj, min) || !S_ISCHR(sbuf.st_mode))
4101 return -EINVAL;
4102
4103 node_type = drmGetMinorType(maj, min);
4104 if (node_type == -1)
4105 return -ENODEV;
4106
4107 dev_name = drmGetDeviceName(node_type);
4108 if (!dev_name)
4109 return -EINVAL;
4110
4111 n = snprintf(node, PATH_MAX, dev_name, DRM_DIR_NAME, min);
4112 if (n == -1 || n >= PATH_MAX)
4113 return -errno;
4114 if (stat(node, &sbuf))
4115 return -EINVAL;
4116
4117 subsystem_type = drmParseSubsystemType(maj, min);
4118 if (subsystem_type != DRM_BUS_PCI)
4119 return -ENODEV;
4120
4121 ret = drmProcessPciDevice(&d, node, node_type, maj, min, true, flags);
4122 if (ret)
4123 return ret;
4124
4125 *device = d;
4126
4127 return 0;
4128 #else
4129 drmDevicePtr local_devices[MAX_DRM_NODES];
4130 drmDevicePtr d;
4131 DIR *sysdir;
4132 struct dirent *dent;
4133 struct stat sbuf;
4134 int subsystem_type;
4135 int maj, min;
4136 int ret, i, node_count;
4137 dev_t find_rdev;
4138
4139 if (drm_device_validate_flags(flags))
4140 return -EINVAL;
4141
4142 if (fd == -1 || device == NULL)
4143 return -EINVAL;
4144
4145 if (fstat(fd, &sbuf))
4146 return -errno;
4147
4148 find_rdev = sbuf.st_rdev;
4149 maj = major(sbuf.st_rdev);
4150 min = minor(sbuf.st_rdev);
4151
4152 if (!drmNodeIsDRM(maj, min) || !S_ISCHR(sbuf.st_mode))
4153 return -EINVAL;
4154
4155 subsystem_type = drmParseSubsystemType(maj, min);
4156 if (subsystem_type < 0)
4157 return subsystem_type;
4158
4159 sysdir = opendir(DRM_DIR_NAME);
4160 if (!sysdir)
4161 return -errno;
4162
4163 i = 0;
4164 while ((dent = readdir(sysdir))) {
4165 ret = process_device(&d, dent->d_name, subsystem_type, true, flags);
4166 if (ret)
4167 continue;
4168
4169 if (i >= MAX_DRM_NODES) {
4170 fprintf(stderr, "More than %d drm nodes detected. "
4171 "Please report a bug - that should not happen.\n"
4172 "Skipping extra nodes\n", MAX_DRM_NODES);
4173 break;
4174 }
4175 local_devices[i] = d;
4176 i++;
4177 }
4178 node_count = i;
4179
4180 drmFoldDuplicatedDevices(local_devices, node_count);
4181
4182 *device = NULL;
4183
4184 for (i = 0; i < node_count; i++) {
4185 if (!local_devices[i])
4186 continue;
4187
4188 if (drm_device_has_rdev(local_devices[i], find_rdev))
4189 *device = local_devices[i];
4190 else
4191 drmFreeDevice(&local_devices[i]);
4192 }
4193
4194 closedir(sysdir);
4195 if (*device == NULL)
4196 return -ENODEV;
4197 return 0;
4198 #endif
4199 }
4200
4201 /**
4202 * Get information about the opened drm device
4203 *
4204 * \param fd file descriptor of the drm device
4205 * \param device the address of a drmDevicePtr where the information
4206 * will be allocated in stored
4207 *
4208 * \return zero on success, negative error code otherwise.
4209 */
drmGetDevice(int fd,drmDevicePtr * device)4210 drm_public int drmGetDevice(int fd, drmDevicePtr *device)
4211 {
4212 return drmGetDevice2(fd, DRM_DEVICE_GET_PCI_REVISION, device);
4213 }
4214
4215 /**
4216 * Get drm devices on the system
4217 *
4218 * \param flags feature/behaviour bitmask
4219 * \param devices the array of devices with drmDevicePtr elements
4220 * can be NULL to get the device number first
4221 * \param max_devices the maximum number of devices for the array
4222 *
4223 * \return on error - negative error code,
4224 * if devices is NULL - total number of devices available on the system,
4225 * alternatively the number of devices stored in devices[], which is
4226 * capped by the max_devices.
4227 *
4228 * \note Unlike drmGetDevices it does not retrieve the pci device revision field
4229 * unless the DRM_DEVICE_GET_PCI_REVISION \p flag is set.
4230 */
drmGetDevices2(uint32_t flags,drmDevicePtr devices[],int max_devices)4231 drm_public int drmGetDevices2(uint32_t flags, drmDevicePtr devices[],
4232 int max_devices)
4233 {
4234 drmDevicePtr local_devices[MAX_DRM_NODES];
4235 drmDevicePtr device;
4236 DIR *sysdir;
4237 struct dirent *dent;
4238 int ret, i, node_count, device_count;
4239
4240 if (drm_device_validate_flags(flags))
4241 return -EINVAL;
4242
4243 sysdir = opendir(DRM_DIR_NAME);
4244 if (!sysdir)
4245 return -errno;
4246
4247 i = 0;
4248 while ((dent = readdir(sysdir))) {
4249 ret = process_device(&device, dent->d_name, -1, devices != NULL, flags);
4250 if (ret)
4251 continue;
4252
4253 if (i >= MAX_DRM_NODES) {
4254 fprintf(stderr, "More than %d drm nodes detected. "
4255 "Please report a bug - that should not happen.\n"
4256 "Skipping extra nodes\n", MAX_DRM_NODES);
4257 break;
4258 }
4259 local_devices[i] = device;
4260 i++;
4261 }
4262 node_count = i;
4263
4264 drmFoldDuplicatedDevices(local_devices, node_count);
4265
4266 device_count = 0;
4267 for (i = 0; i < node_count; i++) {
4268 if (!local_devices[i])
4269 continue;
4270
4271 if ((devices != NULL) && (device_count < max_devices))
4272 devices[device_count] = local_devices[i];
4273 else
4274 drmFreeDevice(&local_devices[i]);
4275
4276 device_count++;
4277 }
4278
4279 closedir(sysdir);
4280
4281 if (devices != NULL)
4282 return MIN2(device_count, max_devices);
4283
4284 return device_count;
4285 }
4286
4287 /**
4288 * Get drm devices on the system
4289 *
4290 * \param devices the array of devices with drmDevicePtr elements
4291 * can be NULL to get the device number first
4292 * \param max_devices the maximum number of devices for the array
4293 *
4294 * \return on error - negative error code,
4295 * if devices is NULL - total number of devices available on the system,
4296 * alternatively the number of devices stored in devices[], which is
4297 * capped by the max_devices.
4298 */
drmGetDevices(drmDevicePtr devices[],int max_devices)4299 drm_public int drmGetDevices(drmDevicePtr devices[], int max_devices)
4300 {
4301 return drmGetDevices2(DRM_DEVICE_GET_PCI_REVISION, devices, max_devices);
4302 }
4303
drmGetDeviceNameFromFd2(int fd)4304 drm_public char *drmGetDeviceNameFromFd2(int fd)
4305 {
4306 #ifdef __linux__
4307 struct stat sbuf;
4308 char path[PATH_MAX + 1], *value;
4309 unsigned int maj, min;
4310
4311 if (fstat(fd, &sbuf))
4312 return NULL;
4313
4314 maj = major(sbuf.st_rdev);
4315 min = minor(sbuf.st_rdev);
4316
4317 if (!drmNodeIsDRM(maj, min) || !S_ISCHR(sbuf.st_mode))
4318 return NULL;
4319
4320 snprintf(path, sizeof(path), "/sys/dev/char/%d:%d", maj, min);
4321
4322 value = sysfs_uevent_get(path, "DEVNAME");
4323 if (!value)
4324 return NULL;
4325
4326 snprintf(path, sizeof(path), "/dev/%s", value);
4327 free(value);
4328
4329 return strdup(path);
4330 #elif defined(__FreeBSD__)
4331 return drmGetDeviceNameFromFd(fd);
4332 #else
4333 struct stat sbuf;
4334 char node[PATH_MAX + 1];
4335 const char *dev_name;
4336 int node_type;
4337 int maj, min, n;
4338
4339 if (fstat(fd, &sbuf))
4340 return NULL;
4341
4342 maj = major(sbuf.st_rdev);
4343 min = minor(sbuf.st_rdev);
4344
4345 if (!drmNodeIsDRM(maj, min) || !S_ISCHR(sbuf.st_mode))
4346 return NULL;
4347
4348 node_type = drmGetMinorType(maj, min);
4349 if (node_type == -1)
4350 return NULL;
4351
4352 dev_name = drmGetDeviceName(node_type);
4353 if (!dev_name)
4354 return NULL;
4355
4356 n = snprintf(node, PATH_MAX, dev_name, DRM_DIR_NAME, min);
4357 if (n == -1 || n >= PATH_MAX)
4358 return NULL;
4359
4360 return strdup(node);
4361 #endif
4362 }
4363
drmSyncobjCreate(int fd,uint32_t flags,uint32_t * handle)4364 drm_public int drmSyncobjCreate(int fd, uint32_t flags, uint32_t *handle)
4365 {
4366 struct drm_syncobj_create args;
4367 int ret;
4368
4369 memclear(args);
4370 args.flags = flags;
4371 args.handle = 0;
4372 ret = drmIoctl(fd, DRM_IOCTL_SYNCOBJ_CREATE, &args);
4373 if (ret)
4374 return ret;
4375 *handle = args.handle;
4376 return 0;
4377 }
4378
drmSyncobjDestroy(int fd,uint32_t handle)4379 drm_public int drmSyncobjDestroy(int fd, uint32_t handle)
4380 {
4381 struct drm_syncobj_destroy args;
4382
4383 memclear(args);
4384 args.handle = handle;
4385 return drmIoctl(fd, DRM_IOCTL_SYNCOBJ_DESTROY, &args);
4386 }
4387
drmSyncobjHandleToFD(int fd,uint32_t handle,int * obj_fd)4388 drm_public int drmSyncobjHandleToFD(int fd, uint32_t handle, int *obj_fd)
4389 {
4390 struct drm_syncobj_handle args;
4391 int ret;
4392
4393 memclear(args);
4394 args.fd = -1;
4395 args.handle = handle;
4396 ret = drmIoctl(fd, DRM_IOCTL_SYNCOBJ_HANDLE_TO_FD, &args);
4397 if (ret)
4398 return ret;
4399 *obj_fd = args.fd;
4400 return 0;
4401 }
4402
drmSyncobjFDToHandle(int fd,int obj_fd,uint32_t * handle)4403 drm_public int drmSyncobjFDToHandle(int fd, int obj_fd, uint32_t *handle)
4404 {
4405 struct drm_syncobj_handle args;
4406 int ret;
4407
4408 memclear(args);
4409 args.fd = obj_fd;
4410 args.handle = 0;
4411 ret = drmIoctl(fd, DRM_IOCTL_SYNCOBJ_FD_TO_HANDLE, &args);
4412 if (ret)
4413 return ret;
4414 *handle = args.handle;
4415 return 0;
4416 }
4417
drmSyncobjImportSyncFile(int fd,uint32_t handle,int sync_file_fd)4418 drm_public int drmSyncobjImportSyncFile(int fd, uint32_t handle,
4419 int sync_file_fd)
4420 {
4421 struct drm_syncobj_handle args;
4422
4423 memclear(args);
4424 args.fd = sync_file_fd;
4425 args.handle = handle;
4426 args.flags = DRM_SYNCOBJ_FD_TO_HANDLE_FLAGS_IMPORT_SYNC_FILE;
4427 return drmIoctl(fd, DRM_IOCTL_SYNCOBJ_FD_TO_HANDLE, &args);
4428 }
4429
drmSyncobjExportSyncFile(int fd,uint32_t handle,int * sync_file_fd)4430 drm_public int drmSyncobjExportSyncFile(int fd, uint32_t handle,
4431 int *sync_file_fd)
4432 {
4433 struct drm_syncobj_handle args;
4434 int ret;
4435
4436 memclear(args);
4437 args.fd = -1;
4438 args.handle = handle;
4439 args.flags = DRM_SYNCOBJ_HANDLE_TO_FD_FLAGS_EXPORT_SYNC_FILE;
4440 ret = drmIoctl(fd, DRM_IOCTL_SYNCOBJ_HANDLE_TO_FD, &args);
4441 if (ret)
4442 return ret;
4443 *sync_file_fd = args.fd;
4444 return 0;
4445 }
4446
drmSyncobjWait(int fd,uint32_t * handles,unsigned num_handles,int64_t timeout_nsec,unsigned flags,uint32_t * first_signaled)4447 drm_public int drmSyncobjWait(int fd, uint32_t *handles, unsigned num_handles,
4448 int64_t timeout_nsec, unsigned flags,
4449 uint32_t *first_signaled)
4450 {
4451 struct drm_syncobj_wait args;
4452 int ret;
4453
4454 memclear(args);
4455 args.handles = (uintptr_t)handles;
4456 args.timeout_nsec = timeout_nsec;
4457 args.count_handles = num_handles;
4458 args.flags = flags;
4459
4460 ret = drmIoctl(fd, DRM_IOCTL_SYNCOBJ_WAIT, &args);
4461 if (ret < 0)
4462 return -errno;
4463
4464 if (first_signaled)
4465 *first_signaled = args.first_signaled;
4466 return ret;
4467 }
4468
drmSyncobjReset(int fd,const uint32_t * handles,uint32_t handle_count)4469 drm_public int drmSyncobjReset(int fd, const uint32_t *handles,
4470 uint32_t handle_count)
4471 {
4472 struct drm_syncobj_array args;
4473 int ret;
4474
4475 memclear(args);
4476 args.handles = (uintptr_t)handles;
4477 args.count_handles = handle_count;
4478
4479 ret = drmIoctl(fd, DRM_IOCTL_SYNCOBJ_RESET, &args);
4480 return ret;
4481 }
4482
drmSyncobjSignal(int fd,const uint32_t * handles,uint32_t handle_count)4483 drm_public int drmSyncobjSignal(int fd, const uint32_t *handles,
4484 uint32_t handle_count)
4485 {
4486 struct drm_syncobj_array args;
4487 int ret;
4488
4489 memclear(args);
4490 args.handles = (uintptr_t)handles;
4491 args.count_handles = handle_count;
4492
4493 ret = drmIoctl(fd, DRM_IOCTL_SYNCOBJ_SIGNAL, &args);
4494 return ret;
4495 }
4496
drmSyncobjTimelineSignal(int fd,const uint32_t * handles,uint64_t * points,uint32_t handle_count)4497 drm_public int drmSyncobjTimelineSignal(int fd, const uint32_t *handles,
4498 uint64_t *points, uint32_t handle_count)
4499 {
4500 struct drm_syncobj_timeline_array args;
4501 int ret;
4502
4503 memclear(args);
4504 args.handles = (uintptr_t)handles;
4505 args.points = (uintptr_t)points;
4506 args.count_handles = handle_count;
4507
4508 ret = drmIoctl(fd, DRM_IOCTL_SYNCOBJ_TIMELINE_SIGNAL, &args);
4509 return ret;
4510 }
4511
drmSyncobjTimelineWait(int fd,uint32_t * handles,uint64_t * points,unsigned num_handles,int64_t timeout_nsec,unsigned flags,uint32_t * first_signaled)4512 drm_public int drmSyncobjTimelineWait(int fd, uint32_t *handles, uint64_t *points,
4513 unsigned num_handles,
4514 int64_t timeout_nsec, unsigned flags,
4515 uint32_t *first_signaled)
4516 {
4517 struct drm_syncobj_timeline_wait args;
4518 int ret;
4519
4520 memclear(args);
4521 args.handles = (uintptr_t)handles;
4522 args.points = (uintptr_t)points;
4523 args.timeout_nsec = timeout_nsec;
4524 args.count_handles = num_handles;
4525 args.flags = flags;
4526
4527 ret = drmIoctl(fd, DRM_IOCTL_SYNCOBJ_TIMELINE_WAIT, &args);
4528 if (ret < 0)
4529 return -errno;
4530
4531 if (first_signaled)
4532 *first_signaled = args.first_signaled;
4533 return ret;
4534 }
4535
4536
drmSyncobjQuery(int fd,uint32_t * handles,uint64_t * points,uint32_t handle_count)4537 drm_public int drmSyncobjQuery(int fd, uint32_t *handles, uint64_t *points,
4538 uint32_t handle_count)
4539 {
4540 struct drm_syncobj_timeline_array args;
4541 int ret;
4542
4543 memclear(args);
4544 args.handles = (uintptr_t)handles;
4545 args.points = (uintptr_t)points;
4546 args.count_handles = handle_count;
4547
4548 ret = drmIoctl(fd, DRM_IOCTL_SYNCOBJ_QUERY, &args);
4549 if (ret)
4550 return ret;
4551 return 0;
4552 }
4553
drmSyncobjQuery2(int fd,uint32_t * handles,uint64_t * points,uint32_t handle_count,uint32_t flags)4554 drm_public int drmSyncobjQuery2(int fd, uint32_t *handles, uint64_t *points,
4555 uint32_t handle_count, uint32_t flags)
4556 {
4557 struct drm_syncobj_timeline_array args;
4558
4559 memclear(args);
4560 args.handles = (uintptr_t)handles;
4561 args.points = (uintptr_t)points;
4562 args.count_handles = handle_count;
4563 args.flags = flags;
4564
4565 return drmIoctl(fd, DRM_IOCTL_SYNCOBJ_QUERY, &args);
4566 }
4567
4568
drmSyncobjTransfer(int fd,uint32_t dst_handle,uint64_t dst_point,uint32_t src_handle,uint64_t src_point,uint32_t flags)4569 drm_public int drmSyncobjTransfer(int fd,
4570 uint32_t dst_handle, uint64_t dst_point,
4571 uint32_t src_handle, uint64_t src_point,
4572 uint32_t flags)
4573 {
4574 struct drm_syncobj_transfer args;
4575 int ret;
4576
4577 memclear(args);
4578 args.src_handle = src_handle;
4579 args.dst_handle = dst_handle;
4580 args.src_point = src_point;
4581 args.dst_point = dst_point;
4582 args.flags = flags;
4583
4584 ret = drmIoctl(fd, DRM_IOCTL_SYNCOBJ_TRANSFER, &args);
4585
4586 return ret;
4587 }
4588