1 // SPDX-License-Identifier: GPL-2.0-only
2 #include <linux/types.h>
3 #include <linux/string.h>
4 #include <linux/init.h>
5 #include <linux/module.h>
6 #include <linux/ctype.h>
9 #include <linux/memblock.h>
10 #include <linux/random.h>
12 #include <asm/unaligned.h>
14 struct kobject *dmi_kobj;
15 EXPORT_SYMBOL_GPL(dmi_kobj);
18 * DMI stands for "Desktop Management Interface". It is part
19 * of and an antecedent to, SMBIOS, which stands for System
20 * Management BIOS. See further: http://www.dmtf.org/standards
22 static const char dmi_empty_string[] = "";
24 static u32 dmi_ver __initdata;
27 static u8 smbios_entry_point[32];
28 static int smbios_entry_point_size;
30 /* DMI system identification string used during boot */
31 static char dmi_ids_string[128] __initdata;
33 static struct dmi_memdev_info {
39 static int dmi_memdev_nr;
41 static const char * __init dmi_string_nosave(const struct dmi_header *dm, u8 s)
43 const u8 *bp = ((u8 *) dm) + dm->length;
47 while (--s > 0 && *bp)
50 /* Strings containing only spaces are considered empty */
58 return dmi_empty_string;
61 static const char * __init dmi_string(const struct dmi_header *dm, u8 s)
63 const char *bp = dmi_string_nosave(dm, s);
67 if (bp == dmi_empty_string)
68 return dmi_empty_string;
79 * We have to be cautious here. We have seen BIOSes with DMI pointers
80 * pointing to completely the wrong place for example
82 static void dmi_decode_table(u8 *buf,
83 void (*decode)(const struct dmi_header *, void *),
90 * Stop when we have seen all the items the table claimed to have
91 * (SMBIOS < 3.0 only) OR we reach an end-of-table marker (SMBIOS
92 * >= 3.0 only) OR we run off the end of the table (should never
93 * happen but sometimes does on bogus implementations.)
95 while ((!dmi_num || i < dmi_num) &&
96 (data - buf + sizeof(struct dmi_header)) <= dmi_len) {
97 const struct dmi_header *dm = (const struct dmi_header *)data;
100 * We want to know the total length (formatted area and
101 * strings) before decoding to make sure we won't run off the
102 * table in dmi_decode or dmi_string
105 while ((data - buf < dmi_len - 1) && (data[0] || data[1]))
107 if (data - buf < dmi_len - 1)
108 decode(dm, private_data);
114 * 7.45 End-of-Table (Type 127) [SMBIOS reference spec v3.0.0]
115 * For tables behind a 64-bit entry point, we have no item
116 * count and no exact table length, so stop on end-of-table
117 * marker. For tables behind a 32-bit entry point, we have
118 * seen OEM structures behind the end-of-table marker on
119 * some systems, so don't trust it.
121 if (!dmi_num && dm->type == DMI_ENTRY_END_OF_TABLE)
125 /* Trim DMI table length if needed */
126 if (dmi_len > data - buf)
127 dmi_len = data - buf;
130 static phys_addr_t dmi_base;
132 static int __init dmi_walk_early(void (*decode)(const struct dmi_header *,
136 u32 orig_dmi_len = dmi_len;
138 buf = dmi_early_remap(dmi_base, orig_dmi_len);
142 dmi_decode_table(buf, decode, NULL);
144 add_device_randomness(buf, dmi_len);
146 dmi_early_unmap(buf, orig_dmi_len);
150 static int __init dmi_checksum(const u8 *buf, u8 len)
155 for (a = 0; a < len; a++)
161 static const char *dmi_ident[DMI_STRING_MAX];
162 static LIST_HEAD(dmi_devices);
168 static void __init dmi_save_ident(const struct dmi_header *dm, int slot,
171 const char *d = (const char *) dm;
174 if (dmi_ident[slot] || dm->length <= string)
177 p = dmi_string(dm, d[string]);
184 static void __init dmi_save_uuid(const struct dmi_header *dm, int slot,
189 int is_ff = 1, is_00 = 1, i;
191 if (dmi_ident[slot] || dm->length < index + 16)
194 d = (u8 *) dm + index;
195 for (i = 0; i < 16 && (is_ff || is_00); i++) {
205 s = dmi_alloc(16*2+4+1);
210 * As of version 2.6 of the SMBIOS specification, the first 3 fields of
211 * the UUID are supposed to be little-endian encoded. The specification
212 * says that this is the defacto standard.
214 if (dmi_ver >= 0x020600)
215 sprintf(s, "%pUl", d);
217 sprintf(s, "%pUb", d);
222 static void __init dmi_save_type(const struct dmi_header *dm, int slot,
228 if (dmi_ident[slot] || dm->length <= index)
235 d = (u8 *) dm + index;
236 sprintf(s, "%u", *d & 0x7F);
240 static void __init dmi_save_one_device(int type, const char *name)
242 struct dmi_device *dev;
244 /* No duplicate device */
245 if (dmi_find_device(type, name, NULL))
248 dev = dmi_alloc(sizeof(*dev) + strlen(name) + 1);
253 strcpy((char *)(dev + 1), name);
254 dev->name = (char *)(dev + 1);
255 dev->device_data = NULL;
256 list_add(&dev->list, &dmi_devices);
259 static void __init dmi_save_devices(const struct dmi_header *dm)
261 int i, count = (dm->length - sizeof(struct dmi_header)) / 2;
263 for (i = 0; i < count; i++) {
264 const char *d = (char *)(dm + 1) + (i * 2);
266 /* Skip disabled device */
267 if ((*d & 0x80) == 0)
270 dmi_save_one_device(*d & 0x7f, dmi_string_nosave(dm, *(d + 1)));
274 static void __init dmi_save_oem_strings_devices(const struct dmi_header *dm)
277 struct dmi_device *dev;
279 if (dm->length < 0x05)
282 count = *(u8 *)(dm + 1);
283 for (i = 1; i <= count; i++) {
284 const char *devname = dmi_string(dm, i);
286 if (devname == dmi_empty_string)
289 dev = dmi_alloc(sizeof(*dev));
293 dev->type = DMI_DEV_TYPE_OEM_STRING;
295 dev->device_data = NULL;
297 list_add(&dev->list, &dmi_devices);
301 static void __init dmi_save_ipmi_device(const struct dmi_header *dm)
303 struct dmi_device *dev;
306 data = dmi_alloc(dm->length);
310 memcpy(data, dm, dm->length);
312 dev = dmi_alloc(sizeof(*dev));
316 dev->type = DMI_DEV_TYPE_IPMI;
317 dev->name = "IPMI controller";
318 dev->device_data = data;
320 list_add_tail(&dev->list, &dmi_devices);
323 static void __init dmi_save_dev_pciaddr(int instance, int segment, int bus,
324 int devfn, const char *name, int type)
326 struct dmi_dev_onboard *dev;
328 /* Ignore invalid values */
329 if (type == DMI_DEV_TYPE_DEV_SLOT &&
330 segment == 0xFFFF && bus == 0xFF && devfn == 0xFF)
333 dev = dmi_alloc(sizeof(*dev) + strlen(name) + 1);
337 dev->instance = instance;
338 dev->segment = segment;
342 strcpy((char *)&dev[1], name);
343 dev->dev.type = type;
344 dev->dev.name = (char *)&dev[1];
345 dev->dev.device_data = dev;
347 list_add(&dev->dev.list, &dmi_devices);
350 static void __init dmi_save_extended_devices(const struct dmi_header *dm)
353 const u8 *d = (u8 *)dm;
355 if (dm->length < 0x0B)
358 /* Skip disabled device */
359 if ((d[0x5] & 0x80) == 0)
362 name = dmi_string_nosave(dm, d[0x4]);
363 dmi_save_dev_pciaddr(d[0x6], *(u16 *)(d + 0x7), d[0x9], d[0xA], name,
364 DMI_DEV_TYPE_DEV_ONBOARD);
365 dmi_save_one_device(d[0x5] & 0x7f, name);
368 static void __init dmi_save_system_slot(const struct dmi_header *dm)
370 const u8 *d = (u8 *)dm;
372 /* Need SMBIOS 2.6+ structure */
373 if (dm->length < 0x11)
375 dmi_save_dev_pciaddr(*(u16 *)(d + 0x9), *(u16 *)(d + 0xD), d[0xF],
376 d[0x10], dmi_string_nosave(dm, d[0x4]),
377 DMI_DEV_TYPE_DEV_SLOT);
380 static void __init count_mem_devices(const struct dmi_header *dm, void *v)
382 if (dm->type != DMI_ENTRY_MEM_DEVICE)
387 static void __init save_mem_devices(const struct dmi_header *dm, void *v)
389 const char *d = (const char *)dm;
394 if (dm->type != DMI_ENTRY_MEM_DEVICE || dm->length < 0x12)
396 if (nr >= dmi_memdev_nr) {
397 pr_warn(FW_BUG "Too many DIMM entries in SMBIOS table\n");
400 dmi_memdev[nr].handle = get_unaligned(&dm->handle);
401 dmi_memdev[nr].device = dmi_string(dm, d[0x10]);
402 dmi_memdev[nr].bank = dmi_string(dm, d[0x11]);
404 size = get_unaligned((u16 *)&d[0xC]);
407 else if (size == 0xffff)
409 else if (size & 0x8000)
410 bytes = (u64)(size & 0x7fff) << 10;
411 else if (size != 0x7fff)
412 bytes = (u64)size << 20;
414 bytes = (u64)get_unaligned((u32 *)&d[0x1C]) << 20;
416 dmi_memdev[nr].size = bytes;
420 static void __init dmi_memdev_walk(void)
422 if (dmi_walk_early(count_mem_devices) == 0 && dmi_memdev_nr) {
423 dmi_memdev = dmi_alloc(sizeof(*dmi_memdev) * dmi_memdev_nr);
425 dmi_walk_early(save_mem_devices);
430 * Process a DMI table entry. Right now all we care about are the BIOS
431 * and machine entries. For 2.5 we should pull the smbus controller info
434 static void __init dmi_decode(const struct dmi_header *dm, void *dummy)
437 case 0: /* BIOS Information */
438 dmi_save_ident(dm, DMI_BIOS_VENDOR, 4);
439 dmi_save_ident(dm, DMI_BIOS_VERSION, 5);
440 dmi_save_ident(dm, DMI_BIOS_DATE, 8);
442 case 1: /* System Information */
443 dmi_save_ident(dm, DMI_SYS_VENDOR, 4);
444 dmi_save_ident(dm, DMI_PRODUCT_NAME, 5);
445 dmi_save_ident(dm, DMI_PRODUCT_VERSION, 6);
446 dmi_save_ident(dm, DMI_PRODUCT_SERIAL, 7);
447 dmi_save_uuid(dm, DMI_PRODUCT_UUID, 8);
448 dmi_save_ident(dm, DMI_PRODUCT_SKU, 25);
449 dmi_save_ident(dm, DMI_PRODUCT_FAMILY, 26);
451 case 2: /* Base Board Information */
452 dmi_save_ident(dm, DMI_BOARD_VENDOR, 4);
453 dmi_save_ident(dm, DMI_BOARD_NAME, 5);
454 dmi_save_ident(dm, DMI_BOARD_VERSION, 6);
455 dmi_save_ident(dm, DMI_BOARD_SERIAL, 7);
456 dmi_save_ident(dm, DMI_BOARD_ASSET_TAG, 8);
458 case 3: /* Chassis Information */
459 dmi_save_ident(dm, DMI_CHASSIS_VENDOR, 4);
460 dmi_save_type(dm, DMI_CHASSIS_TYPE, 5);
461 dmi_save_ident(dm, DMI_CHASSIS_VERSION, 6);
462 dmi_save_ident(dm, DMI_CHASSIS_SERIAL, 7);
463 dmi_save_ident(dm, DMI_CHASSIS_ASSET_TAG, 8);
465 case 9: /* System Slots */
466 dmi_save_system_slot(dm);
468 case 10: /* Onboard Devices Information */
469 dmi_save_devices(dm);
471 case 11: /* OEM Strings */
472 dmi_save_oem_strings_devices(dm);
474 case 38: /* IPMI Device Information */
475 dmi_save_ipmi_device(dm);
477 case 41: /* Onboard Devices Extended Information */
478 dmi_save_extended_devices(dm);
482 static int __init print_filtered(char *buf, size_t len, const char *info)
490 for (p = info; *p; p++)
492 c += scnprintf(buf + c, len - c, "%c", *p);
494 c += scnprintf(buf + c, len - c, "\\x%02x", *p & 0xff);
498 static void __init dmi_format_ids(char *buf, size_t len)
501 const char *board; /* Board Name is optional */
503 c += print_filtered(buf + c, len - c,
504 dmi_get_system_info(DMI_SYS_VENDOR));
505 c += scnprintf(buf + c, len - c, " ");
506 c += print_filtered(buf + c, len - c,
507 dmi_get_system_info(DMI_PRODUCT_NAME));
509 board = dmi_get_system_info(DMI_BOARD_NAME);
511 c += scnprintf(buf + c, len - c, "/");
512 c += print_filtered(buf + c, len - c, board);
514 c += scnprintf(buf + c, len - c, ", BIOS ");
515 c += print_filtered(buf + c, len - c,
516 dmi_get_system_info(DMI_BIOS_VERSION));
517 c += scnprintf(buf + c, len - c, " ");
518 c += print_filtered(buf + c, len - c,
519 dmi_get_system_info(DMI_BIOS_DATE));
523 * Check for DMI/SMBIOS headers in the system firmware image. Any
524 * SMBIOS header must start 16 bytes before the DMI header, so take a
525 * 32 byte buffer and check for DMI at offset 16 and SMBIOS at offset
526 * 0. If the DMI header is present, set dmi_ver accordingly (SMBIOS
527 * takes precedence) and return 0. Otherwise return 1.
529 static int __init dmi_present(const u8 *buf)
533 if (memcmp(buf, "_SM_", 4) == 0 &&
534 buf[5] < 32 && dmi_checksum(buf, buf[5])) {
535 smbios_ver = get_unaligned_be16(buf + 6);
536 smbios_entry_point_size = buf[5];
537 memcpy(smbios_entry_point, buf, smbios_entry_point_size);
539 /* Some BIOS report weird SMBIOS version, fix that up */
540 switch (smbios_ver) {
543 pr_debug("SMBIOS version fixup (2.%d->2.%d)\n",
544 smbios_ver & 0xFF, 3);
548 pr_debug("SMBIOS version fixup (2.%d->2.%d)\n", 51, 6);
558 if (memcmp(buf, "_DMI_", 5) == 0 && dmi_checksum(buf, 15)) {
560 dmi_ver = smbios_ver;
562 dmi_ver = (buf[14] & 0xF0) << 4 | (buf[14] & 0x0F);
564 dmi_num = get_unaligned_le16(buf + 12);
565 dmi_len = get_unaligned_le16(buf + 6);
566 dmi_base = get_unaligned_le32(buf + 8);
568 if (dmi_walk_early(dmi_decode) == 0) {
570 pr_info("SMBIOS %d.%d present.\n",
571 dmi_ver >> 16, (dmi_ver >> 8) & 0xFF);
573 smbios_entry_point_size = 15;
574 memcpy(smbios_entry_point, buf,
575 smbios_entry_point_size);
576 pr_info("Legacy DMI %d.%d present.\n",
577 dmi_ver >> 16, (dmi_ver >> 8) & 0xFF);
579 dmi_format_ids(dmi_ids_string, sizeof(dmi_ids_string));
580 pr_info("DMI: %s\n", dmi_ids_string);
589 * Check for the SMBIOS 3.0 64-bit entry point signature. Unlike the legacy
590 * 32-bit entry point, there is no embedded DMI header (_DMI_) in here.
592 static int __init dmi_smbios3_present(const u8 *buf)
594 if (memcmp(buf, "_SM3_", 5) == 0 &&
595 buf[6] < 32 && dmi_checksum(buf, buf[6])) {
596 dmi_ver = get_unaligned_be32(buf + 6) & 0xFFFFFF;
597 dmi_num = 0; /* No longer specified */
598 dmi_len = get_unaligned_le32(buf + 12);
599 dmi_base = get_unaligned_le64(buf + 16);
600 smbios_entry_point_size = buf[6];
601 memcpy(smbios_entry_point, buf, smbios_entry_point_size);
603 if (dmi_walk_early(dmi_decode) == 0) {
604 pr_info("SMBIOS %d.%d.%d present.\n",
605 dmi_ver >> 16, (dmi_ver >> 8) & 0xFF,
607 dmi_format_ids(dmi_ids_string, sizeof(dmi_ids_string));
608 pr_info("DMI: %s\n", dmi_ids_string);
615 static void __init dmi_scan_machine(void)
620 if (efi_enabled(EFI_CONFIG_TABLES)) {
622 * According to the DMTF SMBIOS reference spec v3.0.0, it is
623 * allowed to define both the 64-bit entry point (smbios3) and
624 * the 32-bit entry point (smbios), in which case they should
625 * either both point to the same SMBIOS structure table, or the
626 * table pointed to by the 64-bit entry point should contain a
627 * superset of the table contents pointed to by the 32-bit entry
628 * point (section 5.2)
629 * This implies that the 64-bit entry point should have
630 * precedence if it is defined and supported by the OS. If we
631 * have the 64-bit entry point, but fail to decode it, fall
632 * back to the legacy one (if available)
634 if (efi.smbios3 != EFI_INVALID_TABLE_ADDR) {
635 p = dmi_early_remap(efi.smbios3, 32);
638 memcpy_fromio(buf, p, 32);
639 dmi_early_unmap(p, 32);
641 if (!dmi_smbios3_present(buf)) {
646 if (efi.smbios == EFI_INVALID_TABLE_ADDR)
649 /* This is called as a core_initcall() because it isn't
650 * needed during early boot. This also means we can
651 * iounmap the space when we're done with it.
653 p = dmi_early_remap(efi.smbios, 32);
656 memcpy_fromio(buf, p, 32);
657 dmi_early_unmap(p, 32);
659 if (!dmi_present(buf)) {
663 } else if (IS_ENABLED(CONFIG_DMI_SCAN_MACHINE_NON_EFI_FALLBACK)) {
664 p = dmi_early_remap(0xF0000, 0x10000);
669 * Same logic as above, look for a 64-bit entry point
670 * first, and if not found, fall back to 32-bit entry point.
672 memcpy_fromio(buf, p, 16);
673 for (q = p + 16; q < p + 0x10000; q += 16) {
674 memcpy_fromio(buf + 16, q, 16);
675 if (!dmi_smbios3_present(buf)) {
677 dmi_early_unmap(p, 0x10000);
680 memcpy(buf, buf + 16, 16);
684 * Iterate over all possible DMI header addresses q.
685 * Maintain the 32 bytes around q in buf. On the
686 * first iteration, substitute zero for the
687 * out-of-range bytes so there is no chance of falsely
688 * detecting an SMBIOS header.
691 for (q = p; q < p + 0x10000; q += 16) {
692 memcpy_fromio(buf + 16, q, 16);
693 if (!dmi_present(buf)) {
695 dmi_early_unmap(p, 0x10000);
698 memcpy(buf, buf + 16, 16);
700 dmi_early_unmap(p, 0x10000);
703 pr_info("DMI not present or invalid.\n");
706 static ssize_t raw_table_read(struct file *file, struct kobject *kobj,
707 struct bin_attribute *attr, char *buf,
708 loff_t pos, size_t count)
710 memcpy(buf, attr->private + pos, count);
714 static BIN_ATTR(smbios_entry_point, S_IRUSR, raw_table_read, NULL, 0);
715 static BIN_ATTR(DMI, S_IRUSR, raw_table_read, NULL, 0);
717 static int __init dmi_init(void)
719 struct kobject *tables_kobj;
727 * Set up dmi directory at /sys/firmware/dmi. This entry should stay
728 * even after farther error, as it can be used by other modules like
731 dmi_kobj = kobject_create_and_add("dmi", firmware_kobj);
735 tables_kobj = kobject_create_and_add("tables", dmi_kobj);
739 dmi_table = dmi_remap(dmi_base, dmi_len);
743 bin_attr_smbios_entry_point.size = smbios_entry_point_size;
744 bin_attr_smbios_entry_point.private = smbios_entry_point;
745 ret = sysfs_create_bin_file(tables_kobj, &bin_attr_smbios_entry_point);
749 bin_attr_DMI.size = dmi_len;
750 bin_attr_DMI.private = dmi_table;
751 ret = sysfs_create_bin_file(tables_kobj, &bin_attr_DMI);
755 sysfs_remove_bin_file(tables_kobj,
756 &bin_attr_smbios_entry_point);
758 dmi_unmap(dmi_table);
760 kobject_del(tables_kobj);
761 kobject_put(tables_kobj);
763 pr_err("dmi: Firmware registration failed.\n");
767 subsys_initcall(dmi_init);
770 * dmi_setup - scan and setup DMI system information
772 * Scan the DMI system information. This setups DMI identifiers
773 * (dmi_system_id) for printing it out on task dumps and prepares
774 * DIMM entry information (dmi_memdev_info) from the SMBIOS table
775 * for using this when reporting memory errors.
777 void __init dmi_setup(void)
784 dump_stack_set_arch_desc("%s", dmi_ids_string);
788 * dmi_matches - check if dmi_system_id structure matches system DMI data
789 * @dmi: pointer to the dmi_system_id structure to check
791 static bool dmi_matches(const struct dmi_system_id *dmi)
795 for (i = 0; i < ARRAY_SIZE(dmi->matches); i++) {
796 int s = dmi->matches[i].slot;
799 if (s == DMI_OEM_STRING) {
800 /* DMI_OEM_STRING must be exact match */
801 const struct dmi_device *valid;
803 valid = dmi_find_device(DMI_DEV_TYPE_OEM_STRING,
804 dmi->matches[i].substr, NULL);
807 } else if (dmi_ident[s]) {
808 if (dmi->matches[i].exact_match) {
809 if (!strcmp(dmi_ident[s],
810 dmi->matches[i].substr))
813 if (strstr(dmi_ident[s],
814 dmi->matches[i].substr))
826 * dmi_is_end_of_table - check for end-of-table marker
827 * @dmi: pointer to the dmi_system_id structure to check
829 static bool dmi_is_end_of_table(const struct dmi_system_id *dmi)
831 return dmi->matches[0].slot == DMI_NONE;
835 * dmi_check_system - check system DMI data
836 * @list: array of dmi_system_id structures to match against
837 * All non-null elements of the list must match
838 * their slot's (field index's) data (i.e., each
839 * list string must be a substring of the specified
840 * DMI slot's string data) to be considered a
843 * Walk the blacklist table running matching functions until someone
844 * returns non zero or we hit the end. Callback function is called for
845 * each successful match. Returns the number of matches.
847 * dmi_setup must be called before this function is called.
849 int dmi_check_system(const struct dmi_system_id *list)
852 const struct dmi_system_id *d;
854 for (d = list; !dmi_is_end_of_table(d); d++)
855 if (dmi_matches(d)) {
857 if (d->callback && d->callback(d))
863 EXPORT_SYMBOL(dmi_check_system);
866 * dmi_first_match - find dmi_system_id structure matching system DMI data
867 * @list: array of dmi_system_id structures to match against
868 * All non-null elements of the list must match
869 * their slot's (field index's) data (i.e., each
870 * list string must be a substring of the specified
871 * DMI slot's string data) to be considered a
874 * Walk the blacklist table until the first match is found. Return the
875 * pointer to the matching entry or NULL if there's no match.
877 * dmi_setup must be called before this function is called.
879 const struct dmi_system_id *dmi_first_match(const struct dmi_system_id *list)
881 const struct dmi_system_id *d;
883 for (d = list; !dmi_is_end_of_table(d); d++)
889 EXPORT_SYMBOL(dmi_first_match);
892 * dmi_get_system_info - return DMI data value
893 * @field: data index (see enum dmi_field)
895 * Returns one DMI data value, can be used to perform
896 * complex DMI data checks.
898 const char *dmi_get_system_info(int field)
900 return dmi_ident[field];
902 EXPORT_SYMBOL(dmi_get_system_info);
905 * dmi_name_in_serial - Check if string is in the DMI product serial information
906 * @str: string to check for
908 int dmi_name_in_serial(const char *str)
910 int f = DMI_PRODUCT_SERIAL;
911 if (dmi_ident[f] && strstr(dmi_ident[f], str))
917 * dmi_name_in_vendors - Check if string is in the DMI system or board vendor name
918 * @str: Case sensitive Name
920 int dmi_name_in_vendors(const char *str)
922 static int fields[] = { DMI_SYS_VENDOR, DMI_BOARD_VENDOR, DMI_NONE };
924 for (i = 0; fields[i] != DMI_NONE; i++) {
926 if (dmi_ident[f] && strstr(dmi_ident[f], str))
931 EXPORT_SYMBOL(dmi_name_in_vendors);
934 * dmi_find_device - find onboard device by type/name
935 * @type: device type or %DMI_DEV_TYPE_ANY to match all device types
936 * @name: device name string or %NULL to match all
937 * @from: previous device found in search, or %NULL for new search.
939 * Iterates through the list of known onboard devices. If a device is
940 * found with a matching @type and @name, a pointer to its device
941 * structure is returned. Otherwise, %NULL is returned.
942 * A new search is initiated by passing %NULL as the @from argument.
943 * If @from is not %NULL, searches continue from next device.
945 const struct dmi_device *dmi_find_device(int type, const char *name,
946 const struct dmi_device *from)
948 const struct list_head *head = from ? &from->list : &dmi_devices;
951 for (d = head->next; d != &dmi_devices; d = d->next) {
952 const struct dmi_device *dev =
953 list_entry(d, struct dmi_device, list);
955 if (((type == DMI_DEV_TYPE_ANY) || (dev->type == type)) &&
956 ((name == NULL) || (strcmp(dev->name, name) == 0)))
962 EXPORT_SYMBOL(dmi_find_device);
965 * dmi_get_date - parse a DMI date
966 * @field: data index (see enum dmi_field)
967 * @yearp: optional out parameter for the year
968 * @monthp: optional out parameter for the month
969 * @dayp: optional out parameter for the day
971 * The date field is assumed to be in the form resembling
972 * [mm[/dd]]/yy[yy] and the result is stored in the out
973 * parameters any or all of which can be omitted.
975 * If the field doesn't exist, all out parameters are set to zero
976 * and false is returned. Otherwise, true is returned with any
977 * invalid part of date set to zero.
979 * On return, year, month and day are guaranteed to be in the
980 * range of [0,9999], [0,12] and [0,31] respectively.
982 bool dmi_get_date(int field, int *yearp, int *monthp, int *dayp)
984 int year = 0, month = 0, day = 0;
989 s = dmi_get_system_info(field);
995 * Determine year first. We assume the date string resembles
996 * mm/dd/yy[yy] but the original code extracted only the year
997 * from the end. Keep the behavior in the spirit of no
1000 y = strrchr(s, '/');
1005 year = simple_strtoul(y, &e, 10);
1006 if (y != e && year < 100) { /* 2-digit year */
1008 if (year < 1996) /* no dates < spec 1.0 */
1011 if (year > 9999) /* year should fit in %04d */
1014 /* parse the mm and dd */
1015 month = simple_strtoul(s, &e, 10);
1016 if (s == e || *e != '/' || !month || month > 12) {
1022 day = simple_strtoul(s, &e, 10);
1023 if (s == y || s == e || *e != '/' || day > 31)
1034 EXPORT_SYMBOL(dmi_get_date);
1037 * dmi_get_bios_year - get a year out of DMI_BIOS_DATE field
1039 * Returns year on success, -ENXIO if DMI is not selected,
1040 * or a different negative error code if DMI field is not present
1043 int dmi_get_bios_year(void)
1048 exists = dmi_get_date(DMI_BIOS_DATE, &year, NULL, NULL);
1052 return year ? year : -ERANGE;
1054 EXPORT_SYMBOL(dmi_get_bios_year);
1057 * dmi_walk - Walk the DMI table and get called back for every record
1058 * @decode: Callback function
1059 * @private_data: Private data to be passed to the callback function
1061 * Returns 0 on success, -ENXIO if DMI is not selected or not present,
1062 * or a different negative error code if DMI walking fails.
1064 int dmi_walk(void (*decode)(const struct dmi_header *, void *),
1072 buf = dmi_remap(dmi_base, dmi_len);
1076 dmi_decode_table(buf, decode, private_data);
1081 EXPORT_SYMBOL_GPL(dmi_walk);
1084 * dmi_match - compare a string to the dmi field (if exists)
1085 * @f: DMI field identifier
1086 * @str: string to compare the DMI field to
1088 * Returns true if the requested field equals to the str (including NULL).
1090 bool dmi_match(enum dmi_field f, const char *str)
1092 const char *info = dmi_get_system_info(f);
1094 if (info == NULL || str == NULL)
1097 return !strcmp(info, str);
1099 EXPORT_SYMBOL_GPL(dmi_match);
1101 void dmi_memdev_name(u16 handle, const char **bank, const char **device)
1105 if (dmi_memdev == NULL)
1108 for (n = 0; n < dmi_memdev_nr; n++) {
1109 if (handle == dmi_memdev[n].handle) {
1110 *bank = dmi_memdev[n].bank;
1111 *device = dmi_memdev[n].device;
1116 EXPORT_SYMBOL_GPL(dmi_memdev_name);
1118 u64 dmi_memdev_size(u16 handle)
1123 for (n = 0; n < dmi_memdev_nr; n++) {
1124 if (handle == dmi_memdev[n].handle)
1125 return dmi_memdev[n].size;
1130 EXPORT_SYMBOL_GPL(dmi_memdev_size);