efiblock.c revision 1.14 1 1.14 jmcneill /* $NetBSD: efiblock.c,v 1.14 2021/06/21 21:18:47 jmcneill Exp $ */
2 1.1 jmcneill
3 1.1 jmcneill /*-
4 1.1 jmcneill * Copyright (c) 2016 Kimihiro Nonaka <nonaka (at) netbsd.org>
5 1.1 jmcneill * Copyright (c) 2018 Jared McNeill <jmcneill (at) invisible.ca>
6 1.1 jmcneill * All rights reserved.
7 1.1 jmcneill *
8 1.1 jmcneill * Redistribution and use in source and binary forms, with or without
9 1.1 jmcneill * modification, are permitted provided that the following conditions
10 1.1 jmcneill * are met:
11 1.1 jmcneill * 1. Redistributions of source code must retain the above copyright
12 1.1 jmcneill * notice, this list of conditions and the following disclaimer.
13 1.1 jmcneill * 2. Redistributions in binary form must reproduce the above copyright
14 1.1 jmcneill * notice, this list of conditions and the following disclaimer in the
15 1.1 jmcneill * documentation and/or other materials provided with the distribution.
16 1.1 jmcneill *
17 1.1 jmcneill * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
18 1.1 jmcneill * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
19 1.1 jmcneill * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
20 1.1 jmcneill * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
21 1.1 jmcneill * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
22 1.1 jmcneill * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
23 1.1 jmcneill * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
24 1.1 jmcneill * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
25 1.1 jmcneill * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
26 1.1 jmcneill * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
27 1.1 jmcneill * SUCH DAMAGE.
28 1.1 jmcneill */
29 1.1 jmcneill
30 1.1 jmcneill #define FSTYPENAMES
31 1.1 jmcneill
32 1.1 jmcneill #include <sys/param.h>
33 1.2 jmcneill #include <sys/md5.h>
34 1.4 jmcneill #include <sys/uuid.h>
35 1.1 jmcneill
36 1.8 jmcneill #include <fs/cd9660/iso.h>
37 1.8 jmcneill
38 1.1 jmcneill #include "efiboot.h"
39 1.1 jmcneill #include "efiblock.h"
40 1.1 jmcneill
41 1.14 jmcneill #define EFI_BLOCK_READAHEAD (64 * 1024)
42 1.12 jmcneill #define EFI_BLOCK_TIMEOUT 120
43 1.12 jmcneill #define EFI_BLOCK_TIMEOUT_CODE 0x810c0000
44 1.12 jmcneill
45 1.11 mrg /*
46 1.11 mrg * The raidframe support is basic. Ideally, it should be expanded to
47 1.11 mrg * consider raid volumes a first-class citizen like the x86 efiboot does,
48 1.11 mrg * but for now, we simply assume each RAID is potentially bootable.
49 1.11 mrg */
50 1.11 mrg #define RF_PROTECTED_SECTORS 64 /* XXX refer to <.../rf_optnames.h> */
51 1.11 mrg
52 1.1 jmcneill static EFI_HANDLE *efi_block;
53 1.1 jmcneill static UINTN efi_nblock;
54 1.2 jmcneill static struct efi_block_part *efi_block_booted = NULL;
55 1.1 jmcneill
56 1.14 jmcneill static bool efi_ra_enable = false;
57 1.14 jmcneill static UINT8 *efi_ra_buffer = NULL;
58 1.14 jmcneill static UINT32 efi_ra_media_id;
59 1.14 jmcneill static UINT64 efi_ra_start = 0;
60 1.14 jmcneill static UINT64 efi_ra_length = 0;
61 1.14 jmcneill
62 1.1 jmcneill static TAILQ_HEAD(, efi_block_dev) efi_block_devs = TAILQ_HEAD_INITIALIZER(efi_block_devs);
63 1.1 jmcneill
64 1.1 jmcneill static int
65 1.1 jmcneill efi_block_parse(const char *fname, struct efi_block_part **pbpart, char **pfile)
66 1.1 jmcneill {
67 1.1 jmcneill struct efi_block_dev *bdev;
68 1.1 jmcneill struct efi_block_part *bpart;
69 1.1 jmcneill char pathbuf[PATH_MAX], *default_device, *ep = NULL;
70 1.1 jmcneill const char *full_path;
71 1.1 jmcneill intmax_t dev;
72 1.1 jmcneill int part;
73 1.1 jmcneill
74 1.1 jmcneill default_device = get_default_device();
75 1.1 jmcneill if (strchr(fname, ':') == NULL) {
76 1.1 jmcneill if (strlen(default_device) > 0) {
77 1.1 jmcneill snprintf(pathbuf, sizeof(pathbuf), "%s:%s", default_device, fname);
78 1.1 jmcneill full_path = pathbuf;
79 1.1 jmcneill *pfile = __UNCONST(fname);
80 1.1 jmcneill } else {
81 1.1 jmcneill return EINVAL;
82 1.1 jmcneill }
83 1.1 jmcneill } else {
84 1.1 jmcneill full_path = fname;
85 1.1 jmcneill *pfile = strchr(fname, ':') + 1;
86 1.1 jmcneill }
87 1.1 jmcneill
88 1.1 jmcneill if (strncasecmp(full_path, "hd", 2) != 0)
89 1.1 jmcneill return EINVAL;
90 1.1 jmcneill dev = strtoimax(full_path + 2, &ep, 10);
91 1.1 jmcneill if (dev < 0 || dev >= efi_nblock)
92 1.1 jmcneill return ENXIO;
93 1.1 jmcneill if (ep[0] < 'a' || ep[0] >= 'a' + MAXPARTITIONS || ep[1] != ':')
94 1.1 jmcneill return EINVAL;
95 1.1 jmcneill part = ep[0] - 'a';
96 1.1 jmcneill TAILQ_FOREACH(bdev, &efi_block_devs, entries) {
97 1.1 jmcneill if (bdev->index == dev) {
98 1.1 jmcneill TAILQ_FOREACH(bpart, &bdev->partitions, entries) {
99 1.1 jmcneill if (bpart->index == part) {
100 1.1 jmcneill *pbpart = bpart;
101 1.1 jmcneill return 0;
102 1.1 jmcneill }
103 1.1 jmcneill }
104 1.1 jmcneill }
105 1.1 jmcneill }
106 1.1 jmcneill
107 1.1 jmcneill return ENOENT;
108 1.1 jmcneill }
109 1.1 jmcneill
110 1.2 jmcneill static void
111 1.2 jmcneill efi_block_generate_hash_mbr(struct efi_block_part *bpart, struct mbr_sector *mbr)
112 1.2 jmcneill {
113 1.2 jmcneill MD5_CTX md5ctx;
114 1.2 jmcneill
115 1.2 jmcneill MD5Init(&md5ctx);
116 1.2 jmcneill MD5Update(&md5ctx, (void *)mbr, sizeof(*mbr));
117 1.2 jmcneill MD5Final(bpart->hash, &md5ctx);
118 1.2 jmcneill }
119 1.2 jmcneill
120 1.13 jmcneill static EFI_STATUS
121 1.14 jmcneill efi_block_disk_readahead(struct efi_block_dev *bdev, UINT64 off, void *buf,
122 1.14 jmcneill UINTN bufsize)
123 1.14 jmcneill {
124 1.14 jmcneill EFI_STATUS status;
125 1.14 jmcneill UINT64 mediasize, len;
126 1.14 jmcneill
127 1.14 jmcneill if (efi_ra_buffer == NULL) {
128 1.14 jmcneill efi_ra_buffer = AllocatePool(EFI_BLOCK_READAHEAD);
129 1.14 jmcneill if (efi_ra_buffer == NULL) {
130 1.14 jmcneill return EFI_OUT_OF_RESOURCES;
131 1.14 jmcneill }
132 1.14 jmcneill }
133 1.14 jmcneill
134 1.14 jmcneill if (bdev->media_id != efi_ra_media_id ||
135 1.14 jmcneill off < efi_ra_start ||
136 1.14 jmcneill off + bufsize > efi_ra_start + efi_ra_length) {
137 1.14 jmcneill mediasize = bdev->bio->Media->BlockSize *
138 1.14 jmcneill (bdev->bio->Media->LastBlock + 1);
139 1.14 jmcneill len = EFI_BLOCK_READAHEAD;
140 1.14 jmcneill if (len > mediasize - off) {
141 1.14 jmcneill len = mediasize - off;
142 1.14 jmcneill }
143 1.14 jmcneill status = uefi_call_wrapper(bdev->dio->ReadDisk, 5, bdev->dio,
144 1.14 jmcneill bdev->media_id, off, len, efi_ra_buffer);
145 1.14 jmcneill if (EFI_ERROR(status)) {
146 1.14 jmcneill efi_ra_start = efi_ra_length = 0;
147 1.14 jmcneill return status;
148 1.14 jmcneill }
149 1.14 jmcneill efi_ra_start = off;
150 1.14 jmcneill efi_ra_length = len;
151 1.14 jmcneill efi_ra_media_id = bdev->media_id;
152 1.14 jmcneill }
153 1.14 jmcneill
154 1.14 jmcneill memcpy(buf, &efi_ra_buffer[off - efi_ra_start], bufsize);
155 1.14 jmcneill return EFI_SUCCESS;
156 1.14 jmcneill }
157 1.14 jmcneill
158 1.14 jmcneill static EFI_STATUS
159 1.13 jmcneill efi_block_disk_read(struct efi_block_dev *bdev, UINT64 off, void *buf,
160 1.13 jmcneill UINTN bufsize)
161 1.6 jmcneill {
162 1.14 jmcneill if (efi_ra_enable) {
163 1.14 jmcneill return efi_block_disk_readahead(bdev, off, buf, bufsize);
164 1.14 jmcneill }
165 1.14 jmcneill
166 1.13 jmcneill return uefi_call_wrapper(bdev->dio->ReadDisk, 5, bdev->dio,
167 1.13 jmcneill bdev->media_id, off, bufsize, buf);
168 1.6 jmcneill }
169 1.6 jmcneill
170 1.1 jmcneill static int
171 1.8 jmcneill efi_block_find_partitions_cd9660(struct efi_block_dev *bdev)
172 1.8 jmcneill {
173 1.8 jmcneill struct efi_block_part *bpart;
174 1.13 jmcneill struct iso_primary_descriptor vd;
175 1.8 jmcneill EFI_STATUS status;
176 1.8 jmcneill EFI_LBA lba;
177 1.8 jmcneill
178 1.8 jmcneill for (lba = 16;; lba++) {
179 1.13 jmcneill status = efi_block_disk_read(bdev,
180 1.13 jmcneill lba * ISO_DEFAULT_BLOCK_SIZE, &vd, sizeof(vd));
181 1.10 jmcneill if (EFI_ERROR(status)) {
182 1.8 jmcneill goto io_error;
183 1.10 jmcneill }
184 1.8 jmcneill
185 1.13 jmcneill if (memcmp(vd.id, ISO_STANDARD_ID, sizeof vd.id) != 0) {
186 1.8 jmcneill goto io_error;
187 1.10 jmcneill }
188 1.13 jmcneill if (isonum_711(vd.type) == ISO_VD_END) {
189 1.8 jmcneill goto io_error;
190 1.10 jmcneill }
191 1.13 jmcneill if (isonum_711(vd.type) == ISO_VD_PRIMARY) {
192 1.8 jmcneill break;
193 1.10 jmcneill }
194 1.8 jmcneill }
195 1.8 jmcneill
196 1.13 jmcneill if (isonum_723(vd.logical_block_size) != ISO_DEFAULT_BLOCK_SIZE) {
197 1.8 jmcneill goto io_error;
198 1.10 jmcneill }
199 1.8 jmcneill
200 1.8 jmcneill bpart = alloc(sizeof(*bpart));
201 1.8 jmcneill bpart->index = 0;
202 1.8 jmcneill bpart->bdev = bdev;
203 1.8 jmcneill bpart->type = EFI_BLOCK_PART_CD9660;
204 1.8 jmcneill TAILQ_INSERT_TAIL(&bdev->partitions, bpart, entries);
205 1.8 jmcneill
206 1.8 jmcneill return 0;
207 1.8 jmcneill
208 1.8 jmcneill io_error:
209 1.8 jmcneill return EIO;
210 1.8 jmcneill }
211 1.8 jmcneill
212 1.8 jmcneill static int
213 1.13 jmcneill efi_block_find_partitions_disklabel(struct efi_block_dev *bdev,
214 1.13 jmcneill struct mbr_sector *mbr, uint32_t start, uint32_t size)
215 1.1 jmcneill {
216 1.1 jmcneill struct efi_block_part *bpart;
217 1.13 jmcneill char buf[DEV_BSIZE];
218 1.1 jmcneill struct disklabel d;
219 1.1 jmcneill struct partition *p;
220 1.1 jmcneill EFI_STATUS status;
221 1.1 jmcneill int n;
222 1.1 jmcneill
223 1.13 jmcneill status = efi_block_disk_read(bdev,
224 1.13 jmcneill ((EFI_LBA)start + LABELSECTOR) * DEV_BSIZE, buf, sizeof(buf));
225 1.13 jmcneill if (EFI_ERROR(status) || getdisklabel(buf, &d) != NULL) {
226 1.1 jmcneill FreePool(buf);
227 1.1 jmcneill return EIO;
228 1.1 jmcneill }
229 1.1 jmcneill
230 1.1 jmcneill if (le32toh(d.d_magic) != DISKMAGIC || le32toh(d.d_magic2) != DISKMAGIC)
231 1.1 jmcneill return EINVAL;
232 1.1 jmcneill if (le16toh(d.d_npartitions) > MAXPARTITIONS)
233 1.1 jmcneill return EINVAL;
234 1.1 jmcneill
235 1.1 jmcneill for (n = 0; n < le16toh(d.d_npartitions); n++) {
236 1.1 jmcneill p = &d.d_partitions[n];
237 1.1 jmcneill switch (p->p_fstype) {
238 1.1 jmcneill case FS_BSDFFS:
239 1.1 jmcneill case FS_MSDOS:
240 1.1 jmcneill case FS_BSDLFS:
241 1.1 jmcneill break;
242 1.11 mrg case FS_RAID:
243 1.11 mrg p->p_size -= RF_PROTECTED_SECTORS;
244 1.11 mrg p->p_offset += RF_PROTECTED_SECTORS;
245 1.11 mrg break;
246 1.1 jmcneill default:
247 1.1 jmcneill continue;
248 1.1 jmcneill }
249 1.1 jmcneill
250 1.1 jmcneill bpart = alloc(sizeof(*bpart));
251 1.1 jmcneill bpart->index = n;
252 1.1 jmcneill bpart->bdev = bdev;
253 1.1 jmcneill bpart->type = EFI_BLOCK_PART_DISKLABEL;
254 1.11 mrg bpart->disklabel.secsize = d.d_secsize;
255 1.1 jmcneill bpart->disklabel.part = *p;
256 1.2 jmcneill efi_block_generate_hash_mbr(bpart, mbr);
257 1.1 jmcneill TAILQ_INSERT_TAIL(&bdev->partitions, bpart, entries);
258 1.1 jmcneill }
259 1.1 jmcneill
260 1.1 jmcneill return 0;
261 1.1 jmcneill }
262 1.1 jmcneill
263 1.1 jmcneill static int
264 1.1 jmcneill efi_block_find_partitions_mbr(struct efi_block_dev *bdev)
265 1.1 jmcneill {
266 1.1 jmcneill struct mbr_sector mbr;
267 1.1 jmcneill struct mbr_partition *mbr_part;
268 1.1 jmcneill EFI_STATUS status;
269 1.1 jmcneill int n;
270 1.1 jmcneill
271 1.13 jmcneill status = efi_block_disk_read(bdev, 0, &mbr, sizeof(mbr));
272 1.13 jmcneill if (EFI_ERROR(status))
273 1.1 jmcneill return EIO;
274 1.1 jmcneill
275 1.1 jmcneill if (le32toh(mbr.mbr_magic) != MBR_MAGIC)
276 1.1 jmcneill return ENOENT;
277 1.1 jmcneill
278 1.1 jmcneill for (n = 0; n < MBR_PART_COUNT; n++) {
279 1.1 jmcneill mbr_part = &mbr.mbr_parts[n];
280 1.1 jmcneill if (le32toh(mbr_part->mbrp_size) == 0)
281 1.1 jmcneill continue;
282 1.1 jmcneill if (mbr_part->mbrp_type == MBR_PTYPE_NETBSD) {
283 1.13 jmcneill efi_block_find_partitions_disklabel(bdev, &mbr,
284 1.13 jmcneill le32toh(mbr_part->mbrp_start),
285 1.13 jmcneill le32toh(mbr_part->mbrp_size));
286 1.1 jmcneill break;
287 1.1 jmcneill }
288 1.1 jmcneill }
289 1.1 jmcneill
290 1.1 jmcneill return 0;
291 1.1 jmcneill }
292 1.1 jmcneill
293 1.4 jmcneill static const struct {
294 1.4 jmcneill struct uuid guid;
295 1.4 jmcneill uint8_t fstype;
296 1.4 jmcneill } gpt_guid_to_str[] = {
297 1.4 jmcneill { GPT_ENT_TYPE_NETBSD_FFS, FS_BSDFFS },
298 1.4 jmcneill { GPT_ENT_TYPE_NETBSD_LFS, FS_BSDLFS },
299 1.4 jmcneill { GPT_ENT_TYPE_NETBSD_RAIDFRAME, FS_RAID },
300 1.4 jmcneill { GPT_ENT_TYPE_NETBSD_CCD, FS_CCD },
301 1.4 jmcneill { GPT_ENT_TYPE_NETBSD_CGD, FS_CGD },
302 1.4 jmcneill { GPT_ENT_TYPE_MS_BASIC_DATA, FS_MSDOS }, /* or NTFS? ambiguous */
303 1.9 tnn { GPT_ENT_TYPE_EFI, FS_MSDOS },
304 1.4 jmcneill };
305 1.4 jmcneill
306 1.4 jmcneill static int
307 1.13 jmcneill efi_block_find_partitions_gpt_entry(struct efi_block_dev *bdev,
308 1.13 jmcneill struct gpt_hdr *hdr, struct gpt_ent *ent, UINT32 index)
309 1.4 jmcneill {
310 1.4 jmcneill struct efi_block_part *bpart;
311 1.4 jmcneill uint8_t fstype = FS_UNUSED;
312 1.4 jmcneill struct uuid uuid;
313 1.4 jmcneill int n;
314 1.4 jmcneill
315 1.4 jmcneill memcpy(&uuid, ent->ent_type, sizeof(uuid));
316 1.4 jmcneill for (n = 0; n < __arraycount(gpt_guid_to_str); n++)
317 1.13 jmcneill if (memcmp(ent->ent_type, &gpt_guid_to_str[n].guid,
318 1.13 jmcneill sizeof(ent->ent_type)) == 0) {
319 1.4 jmcneill fstype = gpt_guid_to_str[n].fstype;
320 1.4 jmcneill break;
321 1.4 jmcneill }
322 1.4 jmcneill if (fstype == FS_UNUSED)
323 1.4 jmcneill return 0;
324 1.4 jmcneill
325 1.4 jmcneill bpart = alloc(sizeof(*bpart));
326 1.4 jmcneill bpart->index = index;
327 1.4 jmcneill bpart->bdev = bdev;
328 1.4 jmcneill bpart->type = EFI_BLOCK_PART_GPT;
329 1.4 jmcneill bpart->gpt.fstype = fstype;
330 1.4 jmcneill bpart->gpt.ent = *ent;
331 1.11 mrg if (fstype == FS_RAID) {
332 1.11 mrg bpart->gpt.ent.ent_lba_start += RF_PROTECTED_SECTORS;
333 1.11 mrg bpart->gpt.ent.ent_lba_end -= RF_PROTECTED_SECTORS;
334 1.11 mrg }
335 1.4 jmcneill memcpy(bpart->hash, ent->ent_guid, sizeof(bpart->hash));
336 1.4 jmcneill TAILQ_INSERT_TAIL(&bdev->partitions, bpart, entries);
337 1.4 jmcneill
338 1.4 jmcneill return 0;
339 1.4 jmcneill }
340 1.4 jmcneill
341 1.4 jmcneill static int
342 1.4 jmcneill efi_block_find_partitions_gpt(struct efi_block_dev *bdev)
343 1.4 jmcneill {
344 1.4 jmcneill struct gpt_hdr hdr;
345 1.4 jmcneill struct gpt_ent ent;
346 1.4 jmcneill EFI_STATUS status;
347 1.13 jmcneill UINT32 entry;
348 1.13 jmcneill void *buf;
349 1.13 jmcneill UINTN sz;
350 1.4 jmcneill
351 1.13 jmcneill status = efi_block_disk_read(bdev, GPT_HDR_BLKNO * DEV_BSIZE, &hdr,
352 1.13 jmcneill sizeof(hdr));
353 1.4 jmcneill if (EFI_ERROR(status)) {
354 1.4 jmcneill return EIO;
355 1.4 jmcneill }
356 1.4 jmcneill
357 1.4 jmcneill if (memcmp(hdr.hdr_sig, GPT_HDR_SIG, sizeof(hdr.hdr_sig)) != 0)
358 1.4 jmcneill return ENOENT;
359 1.4 jmcneill if (le32toh(hdr.hdr_entsz) < sizeof(ent))
360 1.4 jmcneill return EINVAL;
361 1.4 jmcneill
362 1.13 jmcneill sz = le32toh(hdr.hdr_entsz) * le32toh(hdr.hdr_entries);
363 1.13 jmcneill buf = AllocatePool(sz);
364 1.13 jmcneill if (buf == NULL)
365 1.4 jmcneill return ENOMEM;
366 1.4 jmcneill
367 1.13 jmcneill status = efi_block_disk_read(bdev,
368 1.13 jmcneill le64toh(hdr.hdr_lba_table) * DEV_BSIZE, buf, sz);
369 1.4 jmcneill if (EFI_ERROR(status)) {
370 1.4 jmcneill FreePool(buf);
371 1.4 jmcneill return EIO;
372 1.4 jmcneill }
373 1.4 jmcneill
374 1.4 jmcneill for (entry = 0; entry < le32toh(hdr.hdr_entries); entry++) {
375 1.13 jmcneill memcpy(&ent, buf + (entry * le32toh(hdr.hdr_entsz)),
376 1.6 jmcneill sizeof(ent));
377 1.4 jmcneill efi_block_find_partitions_gpt_entry(bdev, &hdr, &ent, entry);
378 1.4 jmcneill }
379 1.4 jmcneill
380 1.4 jmcneill FreePool(buf);
381 1.4 jmcneill
382 1.4 jmcneill return 0;
383 1.4 jmcneill }
384 1.4 jmcneill
385 1.1 jmcneill static int
386 1.1 jmcneill efi_block_find_partitions(struct efi_block_dev *bdev)
387 1.1 jmcneill {
388 1.4 jmcneill int error;
389 1.4 jmcneill
390 1.4 jmcneill error = efi_block_find_partitions_gpt(bdev);
391 1.4 jmcneill if (error)
392 1.4 jmcneill error = efi_block_find_partitions_mbr(bdev);
393 1.8 jmcneill if (error)
394 1.8 jmcneill error = efi_block_find_partitions_cd9660(bdev);
395 1.4 jmcneill
396 1.4 jmcneill return error;
397 1.1 jmcneill }
398 1.1 jmcneill
399 1.1 jmcneill void
400 1.1 jmcneill efi_block_probe(void)
401 1.1 jmcneill {
402 1.1 jmcneill struct efi_block_dev *bdev;
403 1.4 jmcneill struct efi_block_part *bpart;
404 1.1 jmcneill EFI_BLOCK_IO *bio;
405 1.13 jmcneill EFI_DISK_IO *dio;
406 1.1 jmcneill EFI_STATUS status;
407 1.1 jmcneill uint16_t devindex = 0;
408 1.1 jmcneill int depth = -1;
409 1.1 jmcneill int n;
410 1.1 jmcneill
411 1.1 jmcneill status = LibLocateHandle(ByProtocol, &BlockIoProtocol, NULL, &efi_nblock, &efi_block);
412 1.1 jmcneill if (EFI_ERROR(status))
413 1.1 jmcneill return;
414 1.1 jmcneill
415 1.1 jmcneill if (efi_bootdp) {
416 1.1 jmcneill depth = efi_device_path_depth(efi_bootdp, MEDIA_DEVICE_PATH);
417 1.1 jmcneill if (depth == 0)
418 1.1 jmcneill depth = 1;
419 1.5 jmcneill else if (depth == -1)
420 1.5 jmcneill depth = 2;
421 1.1 jmcneill }
422 1.1 jmcneill
423 1.1 jmcneill for (n = 0; n < efi_nblock; n++) {
424 1.13 jmcneill status = uefi_call_wrapper(BS->HandleProtocol, 3, efi_block[n],
425 1.13 jmcneill &BlockIoProtocol, (void **)&bio);
426 1.1 jmcneill if (EFI_ERROR(status) || !bio->Media->MediaPresent)
427 1.1 jmcneill continue;
428 1.1 jmcneill
429 1.1 jmcneill if (bio->Media->LogicalPartition)
430 1.1 jmcneill continue;
431 1.1 jmcneill
432 1.13 jmcneill status = uefi_call_wrapper(BS->HandleProtocol, 3, efi_block[n],
433 1.13 jmcneill &DiskIoProtocol, (void **)&dio);
434 1.13 jmcneill if (EFI_ERROR(status))
435 1.13 jmcneill continue;
436 1.13 jmcneill
437 1.1 jmcneill bdev = alloc(sizeof(*bdev));
438 1.1 jmcneill bdev->index = devindex++;
439 1.1 jmcneill bdev->bio = bio;
440 1.13 jmcneill bdev->dio = dio;
441 1.1 jmcneill bdev->media_id = bio->Media->MediaId;
442 1.1 jmcneill bdev->path = DevicePathFromHandle(efi_block[n]);
443 1.1 jmcneill TAILQ_INIT(&bdev->partitions);
444 1.1 jmcneill TAILQ_INSERT_TAIL(&efi_block_devs, bdev, entries);
445 1.1 jmcneill
446 1.4 jmcneill efi_block_find_partitions(bdev);
447 1.4 jmcneill
448 1.1 jmcneill if (depth > 0 && efi_device_path_ncmp(efi_bootdp, DevicePathFromHandle(efi_block[n]), depth) == 0) {
449 1.4 jmcneill TAILQ_FOREACH(bpart, &bdev->partitions, entries) {
450 1.4 jmcneill uint8_t fstype = FS_UNUSED;
451 1.4 jmcneill switch (bpart->type) {
452 1.4 jmcneill case EFI_BLOCK_PART_DISKLABEL:
453 1.4 jmcneill fstype = bpart->disklabel.part.p_fstype;
454 1.4 jmcneill break;
455 1.4 jmcneill case EFI_BLOCK_PART_GPT:
456 1.4 jmcneill fstype = bpart->gpt.fstype;
457 1.4 jmcneill break;
458 1.8 jmcneill case EFI_BLOCK_PART_CD9660:
459 1.8 jmcneill fstype = FS_ISO9660;
460 1.8 jmcneill break;
461 1.4 jmcneill }
462 1.11 mrg if (fstype == FS_BSDFFS || fstype == FS_ISO9660 || fstype == FS_RAID) {
463 1.4 jmcneill char devname[9];
464 1.4 jmcneill snprintf(devname, sizeof(devname), "hd%u%c", bdev->index, bpart->index + 'a');
465 1.4 jmcneill set_default_device(devname);
466 1.8 jmcneill set_default_fstype(fstype);
467 1.4 jmcneill break;
468 1.4 jmcneill }
469 1.4 jmcneill }
470 1.1 jmcneill }
471 1.4 jmcneill }
472 1.4 jmcneill }
473 1.1 jmcneill
474 1.4 jmcneill static void
475 1.4 jmcneill print_guid(const uint8_t *guid)
476 1.4 jmcneill {
477 1.4 jmcneill const int index[] = { 3, 2, 1, 0, 5, 4, 7, 6, 8, 9, 10, 11, 12, 13, 14, 15 };
478 1.4 jmcneill int i;
479 1.4 jmcneill
480 1.4 jmcneill for (i = 0; i < 16; i++) {
481 1.4 jmcneill printf("%02x", guid[index[i]]);
482 1.4 jmcneill if (i == 3 || i == 5 || i == 7 || i == 9)
483 1.4 jmcneill printf("-");
484 1.1 jmcneill }
485 1.1 jmcneill }
486 1.1 jmcneill
487 1.1 jmcneill void
488 1.1 jmcneill efi_block_show(void)
489 1.1 jmcneill {
490 1.1 jmcneill struct efi_block_dev *bdev;
491 1.1 jmcneill struct efi_block_part *bpart;
492 1.1 jmcneill uint64_t size;
493 1.1 jmcneill CHAR16 *path;
494 1.1 jmcneill
495 1.1 jmcneill TAILQ_FOREACH(bdev, &efi_block_devs, entries) {
496 1.1 jmcneill printf("hd%u (", bdev->index);
497 1.1 jmcneill
498 1.1 jmcneill /* Size in MB */
499 1.1 jmcneill size = ((bdev->bio->Media->LastBlock + 1) * bdev->bio->Media->BlockSize) / (1024 * 1024);
500 1.1 jmcneill if (size >= 10000)
501 1.1 jmcneill printf("%"PRIu64" GB", size / 1024);
502 1.1 jmcneill else
503 1.1 jmcneill printf("%"PRIu64" MB", size);
504 1.1 jmcneill printf("): ");
505 1.1 jmcneill
506 1.1 jmcneill path = DevicePathToStr(bdev->path);
507 1.1 jmcneill Print(L"%s", path);
508 1.1 jmcneill FreePool(path);
509 1.1 jmcneill
510 1.1 jmcneill printf("\n");
511 1.1 jmcneill
512 1.1 jmcneill TAILQ_FOREACH(bpart, &bdev->partitions, entries) {
513 1.1 jmcneill switch (bpart->type) {
514 1.1 jmcneill case EFI_BLOCK_PART_DISKLABEL:
515 1.1 jmcneill printf(" hd%u%c (", bdev->index, bpart->index + 'a');
516 1.1 jmcneill
517 1.1 jmcneill /* Size in MB */
518 1.1 jmcneill size = ((uint64_t)bpart->disklabel.secsize * bpart->disklabel.part.p_size) / (1024 * 1024);
519 1.1 jmcneill if (size >= 10000)
520 1.1 jmcneill printf("%"PRIu64" GB", size / 1024);
521 1.1 jmcneill else
522 1.1 jmcneill printf("%"PRIu64" MB", size);
523 1.1 jmcneill printf("): ");
524 1.1 jmcneill
525 1.1 jmcneill printf("%s\n", fstypenames[bpart->disklabel.part.p_fstype]);
526 1.1 jmcneill break;
527 1.4 jmcneill case EFI_BLOCK_PART_GPT:
528 1.4 jmcneill printf(" hd%u%c ", bdev->index, bpart->index + 'a');
529 1.4 jmcneill
530 1.4 jmcneill if (bpart->gpt.ent.ent_name[0] == 0x0000) {
531 1.4 jmcneill printf("\"");
532 1.4 jmcneill print_guid(bpart->gpt.ent.ent_guid);
533 1.4 jmcneill printf("\"");
534 1.4 jmcneill } else {
535 1.4 jmcneill Print(L"\"%s\"", bpart->gpt.ent.ent_name);
536 1.4 jmcneill }
537 1.13 jmcneill
538 1.4 jmcneill /* Size in MB */
539 1.4 jmcneill size = (le64toh(bpart->gpt.ent.ent_lba_end) - le64toh(bpart->gpt.ent.ent_lba_start)) * bdev->bio->Media->BlockSize;
540 1.4 jmcneill size /= (1024 * 1024);
541 1.4 jmcneill if (size >= 10000)
542 1.4 jmcneill printf(" (%"PRIu64" GB): ", size / 1024);
543 1.4 jmcneill else
544 1.4 jmcneill printf(" (%"PRIu64" MB): ", size);
545 1.4 jmcneill
546 1.4 jmcneill printf("%s\n", fstypenames[bpart->gpt.fstype]);
547 1.4 jmcneill break;
548 1.8 jmcneill case EFI_BLOCK_PART_CD9660:
549 1.8 jmcneill printf(" hd%u%c %s\n", bdev->index, bpart->index + 'a', fstypenames[FS_ISO9660]);
550 1.8 jmcneill break;
551 1.1 jmcneill default:
552 1.1 jmcneill break;
553 1.1 jmcneill }
554 1.1 jmcneill }
555 1.1 jmcneill }
556 1.1 jmcneill }
557 1.1 jmcneill
558 1.2 jmcneill struct efi_block_part *
559 1.2 jmcneill efi_block_boot_part(void)
560 1.2 jmcneill {
561 1.2 jmcneill return efi_block_booted;
562 1.2 jmcneill }
563 1.2 jmcneill
564 1.1 jmcneill int
565 1.1 jmcneill efi_block_open(struct open_file *f, ...)
566 1.1 jmcneill {
567 1.1 jmcneill struct efi_block_part *bpart;
568 1.1 jmcneill const char *fname;
569 1.1 jmcneill char **file;
570 1.1 jmcneill char *path;
571 1.1 jmcneill va_list ap;
572 1.1 jmcneill int rv, n;
573 1.13 jmcneill
574 1.1 jmcneill va_start(ap, f);
575 1.1 jmcneill fname = va_arg(ap, const char *);
576 1.1 jmcneill file = va_arg(ap, char **);
577 1.1 jmcneill va_end(ap);
578 1.1 jmcneill
579 1.1 jmcneill rv = efi_block_parse(fname, &bpart, &path);
580 1.1 jmcneill if (rv != 0)
581 1.1 jmcneill return rv;
582 1.1 jmcneill
583 1.1 jmcneill for (n = 0; n < ndevs; n++)
584 1.1 jmcneill if (strcmp(DEV_NAME(&devsw[n]), "efiblock") == 0) {
585 1.1 jmcneill f->f_dev = &devsw[n];
586 1.1 jmcneill break;
587 1.1 jmcneill }
588 1.1 jmcneill if (n == ndevs)
589 1.1 jmcneill return ENXIO;
590 1.1 jmcneill
591 1.1 jmcneill f->f_devdata = bpart;
592 1.1 jmcneill
593 1.1 jmcneill *file = path;
594 1.1 jmcneill
595 1.2 jmcneill efi_block_booted = bpart;
596 1.2 jmcneill
597 1.1 jmcneill return 0;
598 1.1 jmcneill }
599 1.1 jmcneill
600 1.1 jmcneill int
601 1.1 jmcneill efi_block_close(struct open_file *f)
602 1.1 jmcneill {
603 1.1 jmcneill return 0;
604 1.1 jmcneill }
605 1.1 jmcneill
606 1.1 jmcneill int
607 1.1 jmcneill efi_block_strategy(void *devdata, int rw, daddr_t dblk, size_t size, void *buf, size_t *rsize)
608 1.1 jmcneill {
609 1.1 jmcneill struct efi_block_part *bpart = devdata;
610 1.1 jmcneill EFI_STATUS status;
611 1.13 jmcneill UINT64 off;
612 1.1 jmcneill
613 1.1 jmcneill if (rw != F_READ)
614 1.1 jmcneill return EROFS;
615 1.1 jmcneill
616 1.12 jmcneill efi_set_watchdog(EFI_BLOCK_TIMEOUT, EFI_BLOCK_TIMEOUT_CODE);
617 1.12 jmcneill
618 1.1 jmcneill switch (bpart->type) {
619 1.1 jmcneill case EFI_BLOCK_PART_DISKLABEL:
620 1.13 jmcneill off = (dblk + bpart->disklabel.part.p_offset) * DEV_BSIZE;
621 1.1 jmcneill break;
622 1.4 jmcneill case EFI_BLOCK_PART_GPT:
623 1.13 jmcneill off = (dblk + le64toh(bpart->gpt.ent.ent_lba_start)) * DEV_BSIZE;
624 1.4 jmcneill break;
625 1.8 jmcneill case EFI_BLOCK_PART_CD9660:
626 1.13 jmcneill off = dblk * ISO_DEFAULT_BLOCK_SIZE;
627 1.8 jmcneill break;
628 1.1 jmcneill default:
629 1.1 jmcneill return EINVAL;
630 1.1 jmcneill }
631 1.1 jmcneill
632 1.13 jmcneill status = efi_block_disk_read(bpart->bdev, off, buf, size);
633 1.13 jmcneill if (EFI_ERROR(status))
634 1.1 jmcneill return EIO;
635 1.1 jmcneill
636 1.1 jmcneill *rsize = size;
637 1.1 jmcneill
638 1.1 jmcneill return 0;
639 1.1 jmcneill }
640 1.14 jmcneill
641 1.14 jmcneill void
642 1.14 jmcneill efi_block_set_readahead(bool onoff)
643 1.14 jmcneill {
644 1.14 jmcneill efi_ra_enable = onoff;
645 1.14 jmcneill }
646