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a322f70c
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1/*
2 * mdadm - manage Linux "md" devices aka RAID arrays.
3 *
e736b623 4 * Copyright (C) 2006-2009 Neil Brown <neilb@suse.de>
a322f70c
DW
5 *
6 *
7 * This program is free software; you can redistribute it and/or modify
8 * it under the terms of the GNU General Public License as published by
9 * the Free Software Foundation; either version 2 of the License, or
10 * (at your option) any later version.
11 *
12 * This program is distributed in the hope that it will be useful,
13 * but WITHOUT ANY WARRANTY; without even the implied warranty of
14 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
15 * GNU General Public License for more details.
16 *
17 * You should have received a copy of the GNU General Public License
18 * along with this program; if not, write to the Free Software
19 * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
20 *
21 * Author: Neil Brown
22 * Email: <neil@brown.name>
23 *
24 * Specifications for DDF takes from Common RAID DDF Specification Revision 1.2
25 * (July 28 2006). Reused by permission of SNIA.
26 */
27
28#define HAVE_STDINT_H 1
29#include "mdadm.h"
549e9569 30#include "mdmon.h"
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31#include "sha1.h"
32#include <values.h>
33
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DW
34/* a non-official T10 name for creation GUIDs */
35static char T10[] = "Linux-MD";
36
37/* DDF timestamps are 1980 based, so we need to add
38 * second-in-decade-of-seventies to convert to linux timestamps.
39 * 10 years with 2 leap years.
40 */
41#define DECADE (3600*24*(365*10+2))
42unsigned long crc32(
43 unsigned long crc,
44 const unsigned char *buf,
45 unsigned len);
46
47/* The DDF metadata handling.
48 * DDF metadata lives at the end of the device.
49 * The last 512 byte block provides an 'anchor' which is used to locate
50 * the rest of the metadata which usually lives immediately behind the anchor.
51 *
52 * Note:
53 * - all multibyte numeric fields are bigendian.
54 * - all strings are space padded.
55 *
56 */
57
58/* Primary Raid Level (PRL) */
59#define DDF_RAID0 0x00
60#define DDF_RAID1 0x01
61#define DDF_RAID3 0x03
62#define DDF_RAID4 0x04
63#define DDF_RAID5 0x05
64#define DDF_RAID1E 0x11
65#define DDF_JBOD 0x0f
66#define DDF_CONCAT 0x1f
67#define DDF_RAID5E 0x15
68#define DDF_RAID5EE 0x25
59e36268 69#define DDF_RAID6 0x06
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DW
70
71/* Raid Level Qualifier (RLQ) */
72#define DDF_RAID0_SIMPLE 0x00
73#define DDF_RAID1_SIMPLE 0x00 /* just 2 devices in this plex */
74#define DDF_RAID1_MULTI 0x01 /* exactly 3 devices in this plex */
75#define DDF_RAID3_0 0x00 /* parity in first extent */
76#define DDF_RAID3_N 0x01 /* parity in last extent */
77#define DDF_RAID4_0 0x00 /* parity in first extent */
78#define DDF_RAID4_N 0x01 /* parity in last extent */
79/* these apply to raid5e and raid5ee as well */
80#define DDF_RAID5_0_RESTART 0x00 /* same as 'right asymmetric' - layout 1 */
59e36268 81#define DDF_RAID6_0_RESTART 0x01 /* raid6 different from raid5 here!!! */
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DW
82#define DDF_RAID5_N_RESTART 0x02 /* same as 'left asymmetric' - layout 0 */
83#define DDF_RAID5_N_CONTINUE 0x03 /* same as 'left symmetric' - layout 2 */
84
85#define DDF_RAID1E_ADJACENT 0x00 /* raid10 nearcopies==2 */
86#define DDF_RAID1E_OFFSET 0x01 /* raid10 offsetcopies==2 */
87
88/* Secondary RAID Level (SRL) */
89#define DDF_2STRIPED 0x00 /* This is weirder than RAID0 !! */
90#define DDF_2MIRRORED 0x01
91#define DDF_2CONCAT 0x02
92#define DDF_2SPANNED 0x03 /* This is also weird - be careful */
93
94/* Magic numbers */
95#define DDF_HEADER_MAGIC __cpu_to_be32(0xDE11DE11)
96#define DDF_CONTROLLER_MAGIC __cpu_to_be32(0xAD111111)
97#define DDF_PHYS_RECORDS_MAGIC __cpu_to_be32(0x22222222)
98#define DDF_PHYS_DATA_MAGIC __cpu_to_be32(0x33333333)
99#define DDF_VIRT_RECORDS_MAGIC __cpu_to_be32(0xDDDDDDDD)
100#define DDF_VD_CONF_MAGIC __cpu_to_be32(0xEEEEEEEE)
101#define DDF_SPARE_ASSIGN_MAGIC __cpu_to_be32(0x55555555)
102#define DDF_VU_CONF_MAGIC __cpu_to_be32(0x88888888)
103#define DDF_VENDOR_LOG_MAGIC __cpu_to_be32(0x01dBEEF0)
104#define DDF_BBM_LOG_MAGIC __cpu_to_be32(0xABADB10C)
105
106#define DDF_GUID_LEN 24
59e36268
NB
107#define DDF_REVISION_0 "01.00.00"
108#define DDF_REVISION_2 "01.02.00"
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109
110struct ddf_header {
88c164f4 111 __u32 magic; /* DDF_HEADER_MAGIC */
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112 __u32 crc;
113 char guid[DDF_GUID_LEN];
59e36268 114 char revision[8]; /* 01.02.00 */
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115 __u32 seq; /* starts at '1' */
116 __u32 timestamp;
117 __u8 openflag;
118 __u8 foreignflag;
119 __u8 enforcegroups;
120 __u8 pad0; /* 0xff */
121 __u8 pad1[12]; /* 12 * 0xff */
122 /* 64 bytes so far */
123 __u8 header_ext[32]; /* reserved: fill with 0xff */
124 __u64 primary_lba;
125 __u64 secondary_lba;
126 __u8 type;
127 __u8 pad2[3]; /* 0xff */
128 __u32 workspace_len; /* sectors for vendor space -
129 * at least 32768(sectors) */
130 __u64 workspace_lba;
131 __u16 max_pd_entries; /* one of 15, 63, 255, 1023, 4095 */
132 __u16 max_vd_entries; /* 2^(4,6,8,10,12)-1 : i.e. as above */
133 __u16 max_partitions; /* i.e. max num of configuration
134 record entries per disk */
135 __u16 config_record_len; /* 1 +ROUNDUP(max_primary_element_entries
136 *12/512) */
137 __u16 max_primary_element_entries; /* 16, 64, 256, 1024, or 4096 */
138 __u8 pad3[54]; /* 0xff */
139 /* 192 bytes so far */
140 __u32 controller_section_offset;
141 __u32 controller_section_length;
142 __u32 phys_section_offset;
143 __u32 phys_section_length;
144 __u32 virt_section_offset;
145 __u32 virt_section_length;
146 __u32 config_section_offset;
147 __u32 config_section_length;
148 __u32 data_section_offset;
149 __u32 data_section_length;
150 __u32 bbm_section_offset;
151 __u32 bbm_section_length;
152 __u32 diag_space_offset;
153 __u32 diag_space_length;
154 __u32 vendor_offset;
155 __u32 vendor_length;
156 /* 256 bytes so far */
157 __u8 pad4[256]; /* 0xff */
158};
159
160/* type field */
161#define DDF_HEADER_ANCHOR 0x00
162#define DDF_HEADER_PRIMARY 0x01
163#define DDF_HEADER_SECONDARY 0x02
164
165/* The content of the 'controller section' - global scope */
166struct ddf_controller_data {
88c164f4 167 __u32 magic; /* DDF_CONTROLLER_MAGIC */
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168 __u32 crc;
169 char guid[DDF_GUID_LEN];
170 struct controller_type {
171 __u16 vendor_id;
172 __u16 device_id;
173 __u16 sub_vendor_id;
174 __u16 sub_device_id;
175 } type;
176 char product_id[16];
177 __u8 pad[8]; /* 0xff */
178 __u8 vendor_data[448];
179};
180
181/* The content of phys_section - global scope */
182struct phys_disk {
88c164f4 183 __u32 magic; /* DDF_PHYS_RECORDS_MAGIC */
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DW
184 __u32 crc;
185 __u16 used_pdes;
186 __u16 max_pdes;
187 __u8 pad[52];
188 struct phys_disk_entry {
189 char guid[DDF_GUID_LEN];
190 __u32 refnum;
191 __u16 type;
192 __u16 state;
193 __u64 config_size; /* DDF structures must be after here */
194 char path[18]; /* another horrible structure really */
195 __u8 pad[6];
196 } entries[0];
197};
198
199/* phys_disk_entry.type is a bitmap - bigendian remember */
200#define DDF_Forced_PD_GUID 1
201#define DDF_Active_in_VD 2
88c164f4 202#define DDF_Global_Spare 4 /* VD_CONF records are ignored */
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203#define DDF_Spare 8 /* overrides Global_spare */
204#define DDF_Foreign 16
205#define DDF_Legacy 32 /* no DDF on this device */
206
207#define DDF_Interface_mask 0xf00
208#define DDF_Interface_SCSI 0x100
209#define DDF_Interface_SAS 0x200
210#define DDF_Interface_SATA 0x300
211#define DDF_Interface_FC 0x400
212
213/* phys_disk_entry.state is a bigendian bitmap */
214#define DDF_Online 1
215#define DDF_Failed 2 /* overrides 1,4,8 */
216#define DDF_Rebuilding 4
217#define DDF_Transition 8
218#define DDF_SMART 16
219#define DDF_ReadErrors 32
220#define DDF_Missing 64
221
222/* The content of the virt_section global scope */
223struct virtual_disk {
88c164f4 224 __u32 magic; /* DDF_VIRT_RECORDS_MAGIC */
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225 __u32 crc;
226 __u16 populated_vdes;
227 __u16 max_vdes;
228 __u8 pad[52];
229 struct virtual_entry {
230 char guid[DDF_GUID_LEN];
231 __u16 unit;
232 __u16 pad0; /* 0xffff */
233 __u16 guid_crc;
234 __u16 type;
235 __u8 state;
236 __u8 init_state;
237 __u8 pad1[14];
238 char name[16];
239 } entries[0];
240};
241
242/* virtual_entry.type is a bitmap - bigendian */
243#define DDF_Shared 1
244#define DDF_Enforce_Groups 2
245#define DDF_Unicode 4
246#define DDF_Owner_Valid 8
247
248/* virtual_entry.state is a bigendian bitmap */
249#define DDF_state_mask 0x7
250#define DDF_state_optimal 0x0
251#define DDF_state_degraded 0x1
252#define DDF_state_deleted 0x2
253#define DDF_state_missing 0x3
254#define DDF_state_failed 0x4
7a7cc504 255#define DDF_state_part_optimal 0x5
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256
257#define DDF_state_morphing 0x8
258#define DDF_state_inconsistent 0x10
259
260/* virtual_entry.init_state is a bigendian bitmap */
261#define DDF_initstate_mask 0x03
262#define DDF_init_not 0x00
7a7cc504
NB
263#define DDF_init_quick 0x01 /* initialisation is progress.
264 * i.e. 'state_inconsistent' */
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DW
265#define DDF_init_full 0x02
266
267#define DDF_access_mask 0xc0
268#define DDF_access_rw 0x00
269#define DDF_access_ro 0x80
270#define DDF_access_blocked 0xc0
271
272/* The content of the config_section - local scope
273 * It has multiple records each config_record_len sectors
274 * They can be vd_config or spare_assign
275 */
276
277struct vd_config {
88c164f4 278 __u32 magic; /* DDF_VD_CONF_MAGIC */
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DW
279 __u32 crc;
280 char guid[DDF_GUID_LEN];
281 __u32 timestamp;
282 __u32 seqnum;
283 __u8 pad0[24];
284 __u16 prim_elmnt_count;
285 __u8 chunk_shift; /* 0 == 512, 1==1024 etc */
286 __u8 prl;
287 __u8 rlq;
288 __u8 sec_elmnt_count;
289 __u8 sec_elmnt_seq;
290 __u8 srl;
598f0d58
NB
291 __u64 blocks; /* blocks per component could be different
292 * on different component devices...(only
293 * for concat I hope) */
294 __u64 array_blocks; /* blocks in array */
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DW
295 __u8 pad1[8];
296 __u32 spare_refs[8];
297 __u8 cache_pol[8];
298 __u8 bg_rate;
299 __u8 pad2[3];
300 __u8 pad3[52];
301 __u8 pad4[192];
302 __u8 v0[32]; /* reserved- 0xff */
303 __u8 v1[32]; /* reserved- 0xff */
304 __u8 v2[16]; /* reserved- 0xff */
305 __u8 v3[16]; /* reserved- 0xff */
306 __u8 vendor[32];
307 __u32 phys_refnum[0]; /* refnum of each disk in sequence */
308 /*__u64 lba_offset[0]; LBA offset in each phys. Note extents in a
309 bvd are always the same size */
310};
311
312/* vd_config.cache_pol[7] is a bitmap */
313#define DDF_cache_writeback 1 /* else writethrough */
314#define DDF_cache_wadaptive 2 /* only applies if writeback */
315#define DDF_cache_readahead 4
316#define DDF_cache_radaptive 8 /* only if doing read-ahead */
317#define DDF_cache_ifnobatt 16 /* even to write cache if battery is poor */
318#define DDF_cache_wallowed 32 /* enable write caching */
319#define DDF_cache_rallowed 64 /* enable read caching */
320
321struct spare_assign {
88c164f4 322 __u32 magic; /* DDF_SPARE_ASSIGN_MAGIC */
a322f70c
DW
323 __u32 crc;
324 __u32 timestamp;
325 __u8 reserved[7];
326 __u8 type;
327 __u16 populated; /* SAEs used */
328 __u16 max; /* max SAEs */
329 __u8 pad[8];
330 struct spare_assign_entry {
331 char guid[DDF_GUID_LEN];
332 __u16 secondary_element;
333 __u8 pad[6];
334 } spare_ents[0];
335};
336/* spare_assign.type is a bitmap */
337#define DDF_spare_dedicated 0x1 /* else global */
338#define DDF_spare_revertible 0x2 /* else committable */
339#define DDF_spare_active 0x4 /* else not active */
340#define DDF_spare_affinity 0x8 /* enclosure affinity */
341
342/* The data_section contents - local scope */
343struct disk_data {
88c164f4 344 __u32 magic; /* DDF_PHYS_DATA_MAGIC */
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DW
345 __u32 crc;
346 char guid[DDF_GUID_LEN];
347 __u32 refnum; /* crc of some magic drive data ... */
348 __u8 forced_ref; /* set when above was not result of magic */
349 __u8 forced_guid; /* set if guid was forced rather than magic */
350 __u8 vendor[32];
351 __u8 pad[442];
352};
353
354/* bbm_section content */
355struct bad_block_log {
356 __u32 magic;
357 __u32 crc;
358 __u16 entry_count;
359 __u32 spare_count;
360 __u8 pad[10];
361 __u64 first_spare;
362 struct mapped_block {
363 __u64 defective_start;
364 __u32 replacement_start;
365 __u16 remap_count;
366 __u8 pad[2];
367 } entries[0];
368};
369
370/* Struct for internally holding ddf structures */
371/* The DDF structure stored on each device is potentially
372 * quite different, as some data is global and some is local.
373 * The global data is:
374 * - ddf header
375 * - controller_data
376 * - Physical disk records
377 * - Virtual disk records
378 * The local data is:
379 * - Configuration records
380 * - Physical Disk data section
381 * ( and Bad block and vendor which I don't care about yet).
382 *
383 * The local data is parsed into separate lists as it is read
384 * and reconstructed for writing. This means that we only need
385 * to make config changes once and they are automatically
386 * propagated to all devices.
387 * Note that the ddf_super has space of the conf and disk data
388 * for this disk and also for a list of all such data.
389 * The list is only used for the superblock that is being
390 * built in Create or Assemble to describe the whole array.
391 */
392struct ddf_super {
6416d527 393 struct ddf_header anchor, primary, secondary;
a322f70c 394 struct ddf_controller_data controller;
6416d527 395 struct ddf_header *active;
a322f70c
DW
396 struct phys_disk *phys;
397 struct virtual_disk *virt;
398 int pdsize, vdsize;
f21e18ca 399 unsigned int max_part, mppe, conf_rec_len;
d2ca6449 400 int currentdev;
18a2f463 401 int updates_pending;
a322f70c 402 struct vcl {
6416d527
NB
403 union {
404 char space[512];
405 struct {
406 struct vcl *next;
407 __u64 *lba_offset; /* location in 'conf' of
408 * the lba table */
f21e18ca 409 unsigned int vcnum; /* index into ->virt */
6416d527
NB
410 __u64 *block_sizes; /* NULL if all the same */
411 };
412 };
a322f70c 413 struct vd_config conf;
d2ca6449 414 } *conflist, *currentconf;
a322f70c 415 struct dl {
6416d527
NB
416 union {
417 char space[512];
418 struct {
419 struct dl *next;
420 int major, minor;
421 char *devname;
422 int fd;
423 unsigned long long size; /* sectors */
424 int pdnum; /* index in ->phys */
425 struct spare_assign *spare;
8592f29d
N
426 void *mdupdate; /* hold metadata update */
427
428 /* These fields used by auto-layout */
429 int raiddisk; /* slot to fill in autolayout */
430 __u64 esize;
6416d527
NB
431 };
432 };
a322f70c 433 struct disk_data disk;
b2280677 434 struct vcl *vlist[0]; /* max_part in size */
2cc2983d 435 } *dlist, *add_list;
a322f70c
DW
436};
437
438#ifndef offsetof
439#define offsetof(t,f) ((size_t)&(((t*)0)->f))
440#endif
441
a322f70c 442
f21e18ca 443static unsigned int calc_crc(void *buf, int len)
a322f70c
DW
444{
445 /* crcs are always at the same place as in the ddf_header */
446 struct ddf_header *ddf = buf;
447 __u32 oldcrc = ddf->crc;
448 __u32 newcrc;
449 ddf->crc = 0xffffffff;
450
451 newcrc = crc32(0, buf, len);
452 ddf->crc = oldcrc;
4abe6b70
N
453 /* The crc is store (like everything) bigendian, so convert
454 * here for simplicity
455 */
456 return __cpu_to_be32(newcrc);
a322f70c
DW
457}
458
459static int load_ddf_header(int fd, unsigned long long lba,
460 unsigned long long size,
461 int type,
462 struct ddf_header *hdr, struct ddf_header *anchor)
463{
464 /* read a ddf header (primary or secondary) from fd/lba
465 * and check that it is consistent with anchor
466 * Need to check:
467 * magic, crc, guid, rev, and LBA's header_type, and
468 * everything after header_type must be the same
469 */
470 if (lba >= size-1)
471 return 0;
472
473 if (lseek64(fd, lba<<9, 0) < 0)
474 return 0;
475
476 if (read(fd, hdr, 512) != 512)
477 return 0;
478
479 if (hdr->magic != DDF_HEADER_MAGIC)
480 return 0;
481 if (calc_crc(hdr, 512) != hdr->crc)
482 return 0;
483 if (memcmp(anchor->guid, hdr->guid, DDF_GUID_LEN) != 0 ||
484 memcmp(anchor->revision, hdr->revision, 8) != 0 ||
485 anchor->primary_lba != hdr->primary_lba ||
486 anchor->secondary_lba != hdr->secondary_lba ||
487 hdr->type != type ||
488 memcmp(anchor->pad2, hdr->pad2, 512 -
489 offsetof(struct ddf_header, pad2)) != 0)
490 return 0;
491
492 /* Looks good enough to me... */
493 return 1;
494}
495
496static void *load_section(int fd, struct ddf_super *super, void *buf,
497 __u32 offset_be, __u32 len_be, int check)
498{
499 unsigned long long offset = __be32_to_cpu(offset_be);
500 unsigned long long len = __be32_to_cpu(len_be);
501 int dofree = (buf == NULL);
502
503 if (check)
504 if (len != 2 && len != 8 && len != 32
505 && len != 128 && len != 512)
506 return NULL;
507
508 if (len > 1024)
509 return NULL;
510 if (buf) {
511 /* All pre-allocated sections are a single block */
512 if (len != 1)
513 return NULL;
3d2c4fc7
DW
514 } else if (posix_memalign(&buf, 512, len<<9) != 0)
515 buf = NULL;
6416d527 516
a322f70c
DW
517 if (!buf)
518 return NULL;
519
520 if (super->active->type == 1)
521 offset += __be64_to_cpu(super->active->primary_lba);
522 else
523 offset += __be64_to_cpu(super->active->secondary_lba);
524
f21e18ca 525 if ((unsigned long long)lseek64(fd, offset<<9, 0) != (offset<<9)) {
a322f70c
DW
526 if (dofree)
527 free(buf);
528 return NULL;
529 }
f21e18ca 530 if ((unsigned long long)read(fd, buf, len<<9) != (len<<9)) {
a322f70c
DW
531 if (dofree)
532 free(buf);
533 return NULL;
534 }
535 return buf;
536}
537
538static int load_ddf_headers(int fd, struct ddf_super *super, char *devname)
539{
540 unsigned long long dsize;
541
542 get_dev_size(fd, NULL, &dsize);
543
544 if (lseek64(fd, dsize-512, 0) < 0) {
545 if (devname)
e7b84f9d
N
546 pr_err("Cannot seek to anchor block on %s: %s\n",
547 devname, strerror(errno));
a322f70c
DW
548 return 1;
549 }
550 if (read(fd, &super->anchor, 512) != 512) {
551 if (devname)
e7b84f9d
N
552 pr_err("Cannot read anchor block on %s: %s\n",
553 devname, strerror(errno));
a322f70c
DW
554 return 1;
555 }
556 if (super->anchor.magic != DDF_HEADER_MAGIC) {
557 if (devname)
e7b84f9d 558 pr_err("no DDF anchor found on %s\n",
a322f70c
DW
559 devname);
560 return 2;
561 }
562 if (calc_crc(&super->anchor, 512) != super->anchor.crc) {
563 if (devname)
e7b84f9d 564 pr_err("bad CRC on anchor on %s\n",
a322f70c
DW
565 devname);
566 return 2;
567 }
59e36268
NB
568 if (memcmp(super->anchor.revision, DDF_REVISION_0, 8) != 0 &&
569 memcmp(super->anchor.revision, DDF_REVISION_2, 8) != 0) {
a322f70c 570 if (devname)
e7b84f9d 571 pr_err("can only support super revision"
59e36268
NB
572 " %.8s and earlier, not %.8s on %s\n",
573 DDF_REVISION_2, super->anchor.revision,devname);
a322f70c
DW
574 return 2;
575 }
576 if (load_ddf_header(fd, __be64_to_cpu(super->anchor.primary_lba),
577 dsize >> 9, 1,
578 &super->primary, &super->anchor) == 0) {
579 if (devname)
e7b84f9d
N
580 pr_err("Failed to load primary DDF header "
581 "on %s\n", devname);
a322f70c
DW
582 return 2;
583 }
584 super->active = &super->primary;
585 if (load_ddf_header(fd, __be64_to_cpu(super->anchor.secondary_lba),
586 dsize >> 9, 2,
587 &super->secondary, &super->anchor)) {
588 if ((__be32_to_cpu(super->primary.seq)
589 < __be32_to_cpu(super->secondary.seq) &&
590 !super->secondary.openflag)
591 || (__be32_to_cpu(super->primary.seq)
592 == __be32_to_cpu(super->secondary.seq) &&
593 super->primary.openflag && !super->secondary.openflag)
594 )
595 super->active = &super->secondary;
596 }
597 return 0;
598}
599
600static int load_ddf_global(int fd, struct ddf_super *super, char *devname)
601{
602 void *ok;
603 ok = load_section(fd, super, &super->controller,
604 super->active->controller_section_offset,
605 super->active->controller_section_length,
606 0);
607 super->phys = load_section(fd, super, NULL,
608 super->active->phys_section_offset,
609 super->active->phys_section_length,
610 1);
611 super->pdsize = __be32_to_cpu(super->active->phys_section_length) * 512;
612
613 super->virt = load_section(fd, super, NULL,
614 super->active->virt_section_offset,
615 super->active->virt_section_length,
616 1);
617 super->vdsize = __be32_to_cpu(super->active->virt_section_length) * 512;
618 if (!ok ||
619 !super->phys ||
620 !super->virt) {
621 free(super->phys);
622 free(super->virt);
a2349791
NB
623 super->phys = NULL;
624 super->virt = NULL;
a322f70c
DW
625 return 2;
626 }
627 super->conflist = NULL;
628 super->dlist = NULL;
8c3b8c2c
NB
629
630 super->max_part = __be16_to_cpu(super->active->max_partitions);
631 super->mppe = __be16_to_cpu(super->active->max_primary_element_entries);
632 super->conf_rec_len = __be16_to_cpu(super->active->config_record_len);
a322f70c
DW
633 return 0;
634}
635
636static int load_ddf_local(int fd, struct ddf_super *super,
637 char *devname, int keep)
638{
639 struct dl *dl;
640 struct stat stb;
641 char *conf;
f21e18ca
N
642 unsigned int i;
643 unsigned int confsec;
b2280677 644 int vnum;
f21e18ca 645 unsigned int max_virt_disks = __be16_to_cpu(super->active->max_vd_entries);
d2ca6449 646 unsigned long long dsize;
a322f70c
DW
647
648 /* First the local disk info */
3d2c4fc7 649 if (posix_memalign((void**)&dl, 512,
6416d527 650 sizeof(*dl) +
3d2c4fc7 651 (super->max_part) * sizeof(dl->vlist[0])) != 0) {
e7b84f9d 652 pr_err("%s could not allocate disk info buffer\n",
3d2c4fc7
DW
653 __func__);
654 return 1;
655 }
a322f70c
DW
656
657 load_section(fd, super, &dl->disk,
658 super->active->data_section_offset,
659 super->active->data_section_length,
660 0);
661 dl->devname = devname ? strdup(devname) : NULL;
598f0d58 662
a322f70c
DW
663 fstat(fd, &stb);
664 dl->major = major(stb.st_rdev);
665 dl->minor = minor(stb.st_rdev);
666 dl->next = super->dlist;
667 dl->fd = keep ? fd : -1;
d2ca6449
NB
668
669 dl->size = 0;
670 if (get_dev_size(fd, devname, &dsize))
671 dl->size = dsize >> 9;
b2280677 672 dl->spare = NULL;
f21e18ca 673 for (i = 0 ; i < super->max_part ; i++)
a322f70c
DW
674 dl->vlist[i] = NULL;
675 super->dlist = dl;
59e36268 676 dl->pdnum = -1;
f21e18ca 677 for (i = 0; i < __be16_to_cpu(super->active->max_pd_entries); i++)
5575e7d9
NB
678 if (memcmp(super->phys->entries[i].guid,
679 dl->disk.guid, DDF_GUID_LEN) == 0)
680 dl->pdnum = i;
681
a322f70c
DW
682 /* Now the config list. */
683 /* 'conf' is an array of config entries, some of which are
684 * probably invalid. Those which are good need to be copied into
685 * the conflist
686 */
a322f70c
DW
687
688 conf = load_section(fd, super, NULL,
689 super->active->config_section_offset,
690 super->active->config_section_length,
691 0);
692
b2280677 693 vnum = 0;
e223334f
N
694 for (confsec = 0;
695 confsec < __be32_to_cpu(super->active->config_section_length);
696 confsec += super->conf_rec_len) {
a322f70c 697 struct vd_config *vd =
e223334f 698 (struct vd_config *)((char*)conf + confsec*512);
a322f70c
DW
699 struct vcl *vcl;
700
b2280677
NB
701 if (vd->magic == DDF_SPARE_ASSIGN_MAGIC) {
702 if (dl->spare)
703 continue;
3d2c4fc7
DW
704 if (posix_memalign((void**)&dl->spare, 512,
705 super->conf_rec_len*512) != 0) {
e7b84f9d
N
706 pr_err("%s could not allocate spare info buf\n",
707 __func__);
3d2c4fc7
DW
708 return 1;
709 }
710
b2280677
NB
711 memcpy(dl->spare, vd, super->conf_rec_len*512);
712 continue;
713 }
a322f70c
DW
714 if (vd->magic != DDF_VD_CONF_MAGIC)
715 continue;
716 for (vcl = super->conflist; vcl; vcl = vcl->next) {
717 if (memcmp(vcl->conf.guid,
718 vd->guid, DDF_GUID_LEN) == 0)
719 break;
720 }
721
722 if (vcl) {
b2280677 723 dl->vlist[vnum++] = vcl;
a322f70c
DW
724 if (__be32_to_cpu(vd->seqnum) <=
725 __be32_to_cpu(vcl->conf.seqnum))
726 continue;
59e36268 727 } else {
3d2c4fc7 728 if (posix_memalign((void**)&vcl, 512,
6416d527 729 (super->conf_rec_len*512 +
3d2c4fc7 730 offsetof(struct vcl, conf))) != 0) {
e7b84f9d
N
731 pr_err("%s could not allocate vcl buf\n",
732 __func__);
3d2c4fc7
DW
733 return 1;
734 }
a322f70c 735 vcl->next = super->conflist;
59e36268 736 vcl->block_sizes = NULL; /* FIXME not for CONCAT */
a322f70c 737 super->conflist = vcl;
b2280677 738 dl->vlist[vnum++] = vcl;
a322f70c 739 }
8c3b8c2c 740 memcpy(&vcl->conf, vd, super->conf_rec_len*512);
a322f70c 741 vcl->lba_offset = (__u64*)
8c3b8c2c 742 &vcl->conf.phys_refnum[super->mppe];
59e36268
NB
743
744 for (i=0; i < max_virt_disks ; i++)
745 if (memcmp(super->virt->entries[i].guid,
746 vcl->conf.guid, DDF_GUID_LEN)==0)
747 break;
748 if (i < max_virt_disks)
749 vcl->vcnum = i;
a322f70c
DW
750 }
751 free(conf);
752
753 return 0;
754}
755
756#ifndef MDASSEMBLE
757static int load_super_ddf_all(struct supertype *st, int fd,
e1902a7b 758 void **sbp, char *devname);
a322f70c 759#endif
37424f13
DW
760
761static void free_super_ddf(struct supertype *st);
762
a322f70c
DW
763static int load_super_ddf(struct supertype *st, int fd,
764 char *devname)
765{
766 unsigned long long dsize;
767 struct ddf_super *super;
768 int rv;
769
a322f70c
DW
770 if (get_dev_size(fd, devname, &dsize) == 0)
771 return 1;
772
691c6ee1
N
773 if (test_partition(fd))
774 /* DDF is not allowed on partitions */
775 return 1;
776
a322f70c
DW
777 /* 32M is a lower bound */
778 if (dsize <= 32*1024*1024) {
97320d7c 779 if (devname)
e7b84f9d
N
780 pr_err("%s is too small for ddf: "
781 "size is %llu sectors.\n",
782 devname, dsize>>9);
97320d7c 783 return 1;
a322f70c
DW
784 }
785 if (dsize & 511) {
97320d7c 786 if (devname)
e7b84f9d
N
787 pr_err("%s is an odd size for ddf: "
788 "size is %llu bytes.\n",
789 devname, dsize);
97320d7c 790 return 1;
a322f70c
DW
791 }
792
37424f13
DW
793 free_super_ddf(st);
794
6416d527 795 if (posix_memalign((void**)&super, 512, sizeof(*super))!= 0) {
e7b84f9d 796 pr_err("malloc of %zu failed.\n",
a322f70c
DW
797 sizeof(*super));
798 return 1;
799 }
a2349791 800 memset(super, 0, sizeof(*super));
a322f70c
DW
801
802 rv = load_ddf_headers(fd, super, devname);
803 if (rv) {
804 free(super);
805 return rv;
806 }
807
808 /* Have valid headers and have chosen the best. Let's read in the rest*/
809
810 rv = load_ddf_global(fd, super, devname);
811
812 if (rv) {
813 if (devname)
e7b84f9d
N
814 pr_err("Failed to load all information "
815 "sections on %s\n", devname);
a322f70c
DW
816 free(super);
817 return rv;
818 }
819
3d2c4fc7
DW
820 rv = load_ddf_local(fd, super, devname, 0);
821
822 if (rv) {
823 if (devname)
e7b84f9d
N
824 pr_err("Failed to load all information "
825 "sections on %s\n", devname);
3d2c4fc7
DW
826 free(super);
827 return rv;
828 }
a322f70c
DW
829
830 /* Should possibly check the sections .... */
831
832 st->sb = super;
833 if (st->ss == NULL) {
834 st->ss = &super_ddf;
835 st->minor_version = 0;
836 st->max_devs = 512;
837 }
838 return 0;
839
840}
841
842static void free_super_ddf(struct supertype *st)
843{
844 struct ddf_super *ddf = st->sb;
845 if (ddf == NULL)
846 return;
847 free(ddf->phys);
848 free(ddf->virt);
849 while (ddf->conflist) {
850 struct vcl *v = ddf->conflist;
851 ddf->conflist = v->next;
59e36268
NB
852 if (v->block_sizes)
853 free(v->block_sizes);
a322f70c
DW
854 free(v);
855 }
856 while (ddf->dlist) {
857 struct dl *d = ddf->dlist;
858 ddf->dlist = d->next;
859 if (d->fd >= 0)
860 close(d->fd);
b2280677
NB
861 if (d->spare)
862 free(d->spare);
a322f70c
DW
863 free(d);
864 }
8a38cb04
N
865 while (ddf->add_list) {
866 struct dl *d = ddf->add_list;
867 ddf->add_list = d->next;
868 if (d->fd >= 0)
869 close(d->fd);
870 if (d->spare)
871 free(d->spare);
872 free(d);
873 }
a322f70c
DW
874 free(ddf);
875 st->sb = NULL;
876}
877
878static struct supertype *match_metadata_desc_ddf(char *arg)
879{
880 /* 'ddf' only support containers */
881 struct supertype *st;
882 if (strcmp(arg, "ddf") != 0 &&
883 strcmp(arg, "default") != 0
884 )
885 return NULL;
886
887 st = malloc(sizeof(*st));
ef609477 888 memset(st, 0, sizeof(*st));
d1d599ea 889 st->container_dev = NoMdDev;
a322f70c
DW
890 st->ss = &super_ddf;
891 st->max_devs = 512;
892 st->minor_version = 0;
893 st->sb = NULL;
894 return st;
895}
896
a322f70c
DW
897
898#ifndef MDASSEMBLE
899
900static mapping_t ddf_state[] = {
901 { "Optimal", 0},
902 { "Degraded", 1},
903 { "Deleted", 2},
904 { "Missing", 3},
905 { "Failed", 4},
906 { "Partially Optimal", 5},
907 { "-reserved-", 6},
908 { "-reserved-", 7},
909 { NULL, 0}
910};
911
912static mapping_t ddf_init_state[] = {
913 { "Not Initialised", 0},
914 { "QuickInit in Progress", 1},
915 { "Fully Initialised", 2},
916 { "*UNKNOWN*", 3},
917 { NULL, 0}
918};
919static mapping_t ddf_access[] = {
920 { "Read/Write", 0},
921 { "Reserved", 1},
922 { "Read Only", 2},
923 { "Blocked (no access)", 3},
924 { NULL ,0}
925};
926
927static mapping_t ddf_level[] = {
928 { "RAID0", DDF_RAID0},
929 { "RAID1", DDF_RAID1},
930 { "RAID3", DDF_RAID3},
931 { "RAID4", DDF_RAID4},
932 { "RAID5", DDF_RAID5},
933 { "RAID1E",DDF_RAID1E},
934 { "JBOD", DDF_JBOD},
935 { "CONCAT",DDF_CONCAT},
936 { "RAID5E",DDF_RAID5E},
937 { "RAID5EE",DDF_RAID5EE},
938 { "RAID6", DDF_RAID6},
939 { NULL, 0}
940};
941static mapping_t ddf_sec_level[] = {
942 { "Striped", DDF_2STRIPED},
943 { "Mirrored", DDF_2MIRRORED},
944 { "Concat", DDF_2CONCAT},
945 { "Spanned", DDF_2SPANNED},
946 { NULL, 0}
947};
948#endif
949
950struct num_mapping {
951 int num1, num2;
952};
953static struct num_mapping ddf_level_num[] = {
954 { DDF_RAID0, 0 },
955 { DDF_RAID1, 1 },
956 { DDF_RAID3, LEVEL_UNSUPPORTED },
60f18132
NB
957 { DDF_RAID4, 4 },
958 { DDF_RAID5, 5 },
a322f70c
DW
959 { DDF_RAID1E, LEVEL_UNSUPPORTED },
960 { DDF_JBOD, LEVEL_UNSUPPORTED },
961 { DDF_CONCAT, LEVEL_LINEAR },
962 { DDF_RAID5E, LEVEL_UNSUPPORTED },
963 { DDF_RAID5EE, LEVEL_UNSUPPORTED },
964 { DDF_RAID6, 6},
965 { MAXINT, MAXINT }
966};
967
968static int map_num1(struct num_mapping *map, int num)
969{
970 int i;
971 for (i=0 ; map[i].num1 != MAXINT; i++)
972 if (map[i].num1 == num)
973 break;
974 return map[i].num2;
975}
976
42dc2744
N
977static int all_ff(char *guid)
978{
979 int i;
980 for (i = 0; i < DDF_GUID_LEN; i++)
981 if (guid[i] != (char)0xff)
982 return 0;
983 return 1;
984}
985
a322f70c
DW
986#ifndef MDASSEMBLE
987static void print_guid(char *guid, int tstamp)
988{
989 /* A GUIDs are part (or all) ASCII and part binary.
990 * They tend to be space padded.
59e36268
NB
991 * We print the GUID in HEX, then in parentheses add
992 * any initial ASCII sequence, and a possible
993 * time stamp from bytes 16-19
a322f70c
DW
994 */
995 int l = DDF_GUID_LEN;
996 int i;
59e36268
NB
997
998 for (i=0 ; i<DDF_GUID_LEN ; i++) {
999 if ((i&3)==0 && i != 0) printf(":");
1000 printf("%02X", guid[i]&255);
1001 }
1002
cfccea8c 1003 printf("\n (");
a322f70c
DW
1004 while (l && guid[l-1] == ' ')
1005 l--;
1006 for (i=0 ; i<l ; i++) {
1007 if (guid[i] >= 0x20 && guid[i] < 0x7f)
1008 fputc(guid[i], stdout);
1009 else
59e36268 1010 break;
a322f70c
DW
1011 }
1012 if (tstamp) {
1013 time_t then = __be32_to_cpu(*(__u32*)(guid+16)) + DECADE;
1014 char tbuf[100];
1015 struct tm *tm;
1016 tm = localtime(&then);
59e36268 1017 strftime(tbuf, 100, " %D %T",tm);
a322f70c
DW
1018 fputs(tbuf, stdout);
1019 }
59e36268 1020 printf(")");
a322f70c
DW
1021}
1022
1023static void examine_vd(int n, struct ddf_super *sb, char *guid)
1024{
8c3b8c2c 1025 int crl = sb->conf_rec_len;
a322f70c
DW
1026 struct vcl *vcl;
1027
1028 for (vcl = sb->conflist ; vcl ; vcl = vcl->next) {
f21e18ca 1029 unsigned int i;
a322f70c
DW
1030 struct vd_config *vc = &vcl->conf;
1031
1032 if (calc_crc(vc, crl*512) != vc->crc)
1033 continue;
1034 if (memcmp(vc->guid, guid, DDF_GUID_LEN) != 0)
1035 continue;
1036
1037 /* Ok, we know about this VD, let's give more details */
b06e3095 1038 printf(" Raid Devices[%d] : %d (", n,
a322f70c 1039 __be16_to_cpu(vc->prim_elmnt_count));
f21e18ca 1040 for (i = 0; i < __be16_to_cpu(vc->prim_elmnt_count); i++) {
b06e3095
N
1041 int j;
1042 int cnt = __be16_to_cpu(sb->phys->used_pdes);
1043 for (j=0; j<cnt; j++)
1044 if (vc->phys_refnum[i] == sb->phys->entries[j].refnum)
1045 break;
1046 if (i) printf(" ");
1047 if (j < cnt)
1048 printf("%d", j);
1049 else
1050 printf("--");
1051 }
1052 printf(")\n");
1053 if (vc->chunk_shift != 255)
a322f70c
DW
1054 printf(" Chunk Size[%d] : %d sectors\n", n,
1055 1 << vc->chunk_shift);
1056 printf(" Raid Level[%d] : %s\n", n,
1057 map_num(ddf_level, vc->prl)?:"-unknown-");
1058 if (vc->sec_elmnt_count != 1) {
1059 printf(" Secondary Position[%d] : %d of %d\n", n,
1060 vc->sec_elmnt_seq, vc->sec_elmnt_count);
1061 printf(" Secondary Level[%d] : %s\n", n,
1062 map_num(ddf_sec_level, vc->srl) ?: "-unknown-");
1063 }
1064 printf(" Device Size[%d] : %llu\n", n,
c9b6907b 1065 (unsigned long long)__be64_to_cpu(vc->blocks)/2);
a322f70c 1066 printf(" Array Size[%d] : %llu\n", n,
c9b6907b 1067 (unsigned long long)__be64_to_cpu(vc->array_blocks)/2);
a322f70c
DW
1068 }
1069}
1070
1071static void examine_vds(struct ddf_super *sb)
1072{
1073 int cnt = __be16_to_cpu(sb->virt->populated_vdes);
1074 int i;
1075 printf(" Virtual Disks : %d\n", cnt);
1076
1077 for (i=0; i<cnt; i++) {
1078 struct virtual_entry *ve = &sb->virt->entries[i];
b06e3095 1079 printf("\n");
a322f70c
DW
1080 printf(" VD GUID[%d] : ", i); print_guid(ve->guid, 1);
1081 printf("\n");
1082 printf(" unit[%d] : %d\n", i, __be16_to_cpu(ve->unit));
1083 printf(" state[%d] : %s, %s%s\n", i,
1084 map_num(ddf_state, ve->state & 7),
1085 (ve->state & 8) ? "Morphing, ": "",
1086 (ve->state & 16)? "Not Consistent" : "Consistent");
1087 printf(" init state[%d] : %s\n", i,
1088 map_num(ddf_init_state, ve->init_state&3));
1089 printf(" access[%d] : %s\n", i,
1090 map_num(ddf_access, (ve->init_state>>6) & 3));
1091 printf(" Name[%d] : %.16s\n", i, ve->name);
1092 examine_vd(i, sb, ve->guid);
1093 }
1094 if (cnt) printf("\n");
1095}
1096
1097static void examine_pds(struct ddf_super *sb)
1098{
1099 int cnt = __be16_to_cpu(sb->phys->used_pdes);
1100 int i;
1101 struct dl *dl;
1102 printf(" Physical Disks : %d\n", cnt);
962371a5 1103 printf(" Number RefNo Size Device Type/State\n");
a322f70c
DW
1104
1105 for (i=0 ; i<cnt ; i++) {
1106 struct phys_disk_entry *pd = &sb->phys->entries[i];
1107 int type = __be16_to_cpu(pd->type);
1108 int state = __be16_to_cpu(pd->state);
1109
b06e3095
N
1110 //printf(" PD GUID[%d] : ", i); print_guid(pd->guid, 0);
1111 //printf("\n");
1112 printf(" %3d %08x ", i,
a322f70c 1113 __be32_to_cpu(pd->refnum));
c9b6907b
DL
1114 printf("%8lluK ",
1115 (unsigned long long)__be64_to_cpu(pd->config_size)>>1);
b06e3095
N
1116 for (dl = sb->dlist; dl ; dl = dl->next) {
1117 if (dl->disk.refnum == pd->refnum) {
1118 char *dv = map_dev(dl->major, dl->minor, 0);
1119 if (dv) {
962371a5 1120 printf("%-15s", dv);
b06e3095
N
1121 break;
1122 }
1123 }
1124 }
1125 if (!dl)
962371a5 1126 printf("%15s","");
b06e3095 1127 printf(" %s%s%s%s%s",
a322f70c 1128 (type&2) ? "active":"",
b06e3095 1129 (type&4) ? "Global-Spare":"",
a322f70c
DW
1130 (type&8) ? "spare" : "",
1131 (type&16)? ", foreign" : "",
1132 (type&32)? "pass-through" : "");
18cb4496
N
1133 if (state & DDF_Failed)
1134 /* This over-rides these three */
1135 state &= ~(DDF_Online|DDF_Rebuilding|DDF_Transition);
b06e3095 1136 printf("/%s%s%s%s%s%s%s",
a322f70c
DW
1137 (state&1)? "Online": "Offline",
1138 (state&2)? ", Failed": "",
1139 (state&4)? ", Rebuilding": "",
1140 (state&8)? ", in-transition": "",
b06e3095
N
1141 (state&16)? ", SMART-errors": "",
1142 (state&32)? ", Unrecovered-Read-Errors": "",
a322f70c 1143 (state&64)? ", Missing" : "");
a322f70c
DW
1144 printf("\n");
1145 }
1146}
1147
1148static void examine_super_ddf(struct supertype *st, char *homehost)
1149{
1150 struct ddf_super *sb = st->sb;
1151
1152 printf(" Magic : %08x\n", __be32_to_cpu(sb->anchor.magic));
1153 printf(" Version : %.8s\n", sb->anchor.revision);
598f0d58
NB
1154 printf("Controller GUID : "); print_guid(sb->controller.guid, 0);
1155 printf("\n");
1156 printf(" Container GUID : "); print_guid(sb->anchor.guid, 1);
a322f70c
DW
1157 printf("\n");
1158 printf(" Seq : %08x\n", __be32_to_cpu(sb->active->seq));
1159 printf(" Redundant hdr : %s\n", sb->secondary.magic == DDF_HEADER_MAGIC
1160 ?"yes" : "no");
1161 examine_vds(sb);
1162 examine_pds(sb);
1163}
1164
a5d85af7 1165static void getinfo_super_ddf(struct supertype *st, struct mdinfo *info, char *map);
ff54de6e 1166
42dc2744 1167static void uuid_from_super_ddf(struct supertype *st, int uuid[4]);
ff54de6e 1168
061f2c6a 1169static void brief_examine_super_ddf(struct supertype *st, int verbose)
4737ae25
N
1170{
1171 /* We just write a generic DDF ARRAY entry
1172 */
1173 struct mdinfo info;
1174 char nbuf[64];
a5d85af7 1175 getinfo_super_ddf(st, &info, NULL);
4737ae25
N
1176 fname_from_uuid(st, &info, nbuf, ':');
1177
1178 printf("ARRAY metadata=ddf UUID=%s\n", nbuf + 5);
1179}
1180
1181static void brief_examine_subarrays_ddf(struct supertype *st, int verbose)
a322f70c
DW
1182{
1183 /* We just write a generic DDF ARRAY entry
a322f70c 1184 */
42dc2744 1185 struct ddf_super *ddf = st->sb;
ff54de6e 1186 struct mdinfo info;
f21e18ca 1187 unsigned int i;
ff54de6e 1188 char nbuf[64];
a5d85af7 1189 getinfo_super_ddf(st, &info, NULL);
ff54de6e 1190 fname_from_uuid(st, &info, nbuf, ':');
42dc2744 1191
f21e18ca 1192 for (i = 0; i < __be16_to_cpu(ddf->virt->max_vdes); i++) {
42dc2744
N
1193 struct virtual_entry *ve = &ddf->virt->entries[i];
1194 struct vcl vcl;
1195 char nbuf1[64];
1196 if (all_ff(ve->guid))
1197 continue;
1198 memcpy(vcl.conf.guid, ve->guid, DDF_GUID_LEN);
1199 ddf->currentconf =&vcl;
1200 uuid_from_super_ddf(st, info.uuid);
1201 fname_from_uuid(st, &info, nbuf1, ':');
1202 printf("ARRAY container=%s member=%d UUID=%s\n",
1203 nbuf+5, i, nbuf1+5);
1204 }
a322f70c
DW
1205}
1206
bceedeec
N
1207static void export_examine_super_ddf(struct supertype *st)
1208{
1209 struct mdinfo info;
1210 char nbuf[64];
a5d85af7 1211 getinfo_super_ddf(st, &info, NULL);
bceedeec
N
1212 fname_from_uuid(st, &info, nbuf, ':');
1213 printf("MD_METADATA=ddf\n");
1214 printf("MD_LEVEL=container\n");
1215 printf("MD_UUID=%s\n", nbuf+5);
1216}
1217
1218
a322f70c
DW
1219static void detail_super_ddf(struct supertype *st, char *homehost)
1220{
1221 /* FIXME later
1222 * Could print DDF GUID
1223 * Need to find which array
1224 * If whole, briefly list all arrays
1225 * If one, give name
1226 */
1227}
1228
1229static void brief_detail_super_ddf(struct supertype *st)
1230{
1231 /* FIXME I really need to know which array we are detailing.
1232 * Can that be stored in ddf_super??
1233 */
1234// struct ddf_super *ddf = st->sb;
ff54de6e
N
1235 struct mdinfo info;
1236 char nbuf[64];
a5d85af7 1237 getinfo_super_ddf(st, &info, NULL);
ff54de6e
N
1238 fname_from_uuid(st, &info, nbuf,':');
1239 printf(" UUID=%s", nbuf + 5);
a322f70c 1240}
a322f70c
DW
1241#endif
1242
1243static int match_home_ddf(struct supertype *st, char *homehost)
1244{
1245 /* It matches 'this' host if the controller is a
1246 * Linux-MD controller with vendor_data matching
1247 * the hostname
1248 */
1249 struct ddf_super *ddf = st->sb;
f21e18ca 1250 unsigned int len;
d1d3482b
N
1251
1252 if (!homehost)
1253 return 0;
1254 len = strlen(homehost);
a322f70c
DW
1255
1256 return (memcmp(ddf->controller.guid, T10, 8) == 0 &&
1257 len < sizeof(ddf->controller.vendor_data) &&
1258 memcmp(ddf->controller.vendor_data, homehost,len) == 0 &&
1259 ddf->controller.vendor_data[len] == 0);
1260}
1261
0e600426 1262#ifndef MDASSEMBLE
f21e18ca 1263static struct vd_config *find_vdcr(struct ddf_super *ddf, unsigned int inst)
a322f70c 1264{
7a7cc504 1265 struct vcl *v;
59e36268 1266
7a7cc504 1267 for (v = ddf->conflist; v; v = v->next)
59e36268 1268 if (inst == v->vcnum)
7a7cc504
NB
1269 return &v->conf;
1270 return NULL;
1271}
0e600426 1272#endif
7a7cc504
NB
1273
1274static int find_phys(struct ddf_super *ddf, __u32 phys_refnum)
1275{
1276 /* Find the entry in phys_disk which has the given refnum
1277 * and return it's index
1278 */
f21e18ca
N
1279 unsigned int i;
1280 for (i = 0; i < __be16_to_cpu(ddf->phys->max_pdes); i++)
7a7cc504
NB
1281 if (ddf->phys->entries[i].refnum == phys_refnum)
1282 return i;
1283 return -1;
a322f70c
DW
1284}
1285
1286static void uuid_from_super_ddf(struct supertype *st, int uuid[4])
1287{
1288 /* The uuid returned here is used for:
1289 * uuid to put into bitmap file (Create, Grow)
1290 * uuid for backup header when saving critical section (Grow)
1291 * comparing uuids when re-adding a device into an array
51006d85
N
1292 * In these cases the uuid required is that of the data-array,
1293 * not the device-set.
1294 * uuid to recognise same set when adding a missing device back
1295 * to an array. This is a uuid for the device-set.
1296 *
a322f70c
DW
1297 * For each of these we can make do with a truncated
1298 * or hashed uuid rather than the original, as long as
1299 * everyone agrees.
a322f70c
DW
1300 * In the case of SVD we assume the BVD is of interest,
1301 * though that might be the case if a bitmap were made for
1302 * a mirrored SVD - worry about that later.
1303 * So we need to find the VD configuration record for the
1304 * relevant BVD and extract the GUID and Secondary_Element_Seq.
1305 * The first 16 bytes of the sha1 of these is used.
1306 */
1307 struct ddf_super *ddf = st->sb;
d2ca6449 1308 struct vcl *vcl = ddf->currentconf;
c5afc314
N
1309 char *guid;
1310 char buf[20];
1311 struct sha1_ctx ctx;
a322f70c 1312
c5afc314
N
1313 if (vcl)
1314 guid = vcl->conf.guid;
1315 else
1316 guid = ddf->anchor.guid;
1317
1318 sha1_init_ctx(&ctx);
1319 sha1_process_bytes(guid, DDF_GUID_LEN, &ctx);
c5afc314
N
1320 sha1_finish_ctx(&ctx, buf);
1321 memcpy(uuid, buf, 4*4);
a322f70c
DW
1322}
1323
a5d85af7 1324static void getinfo_super_ddf_bvd(struct supertype *st, struct mdinfo *info, char *map);
78e44928 1325
a5d85af7 1326static void getinfo_super_ddf(struct supertype *st, struct mdinfo *info, char *map)
a322f70c
DW
1327{
1328 struct ddf_super *ddf = st->sb;
a5d85af7 1329 int map_disks = info->array.raid_disks;
90fa1a29 1330 __u32 *cptr;
a322f70c 1331
78e44928 1332 if (ddf->currentconf) {
a5d85af7 1333 getinfo_super_ddf_bvd(st, info, map);
78e44928
NB
1334 return;
1335 }
95eeceeb 1336 memset(info, 0, sizeof(*info));
78e44928 1337
a322f70c
DW
1338 info->array.raid_disks = __be16_to_cpu(ddf->phys->used_pdes);
1339 info->array.level = LEVEL_CONTAINER;
1340 info->array.layout = 0;
1341 info->array.md_minor = -1;
90fa1a29
JS
1342 cptr = (__u32 *)(ddf->anchor.guid + 16);
1343 info->array.ctime = DECADE + __be32_to_cpu(*cptr);
1344
a322f70c
DW
1345 info->array.utime = 0;
1346 info->array.chunk_size = 0;
510242aa 1347 info->container_enough = 1;
a322f70c 1348
a322f70c
DW
1349
1350 info->disk.major = 0;
1351 info->disk.minor = 0;
cba0191b
NB
1352 if (ddf->dlist) {
1353 info->disk.number = __be32_to_cpu(ddf->dlist->disk.refnum);
59e36268 1354 info->disk.raid_disk = find_phys(ddf, ddf->dlist->disk.refnum);
d2ca6449
NB
1355
1356 info->data_offset = __be64_to_cpu(ddf->phys->
1357 entries[info->disk.raid_disk].
1358 config_size);
1359 info->component_size = ddf->dlist->size - info->data_offset;
cba0191b
NB
1360 } else {
1361 info->disk.number = -1;
661dce36 1362 info->disk.raid_disk = -1;
cba0191b
NB
1363// info->disk.raid_disk = find refnum in the table and use index;
1364 }
f22385f9 1365 info->disk.state = (1 << MD_DISK_SYNC) | (1 << MD_DISK_ACTIVE);
a19c88b8 1366
d2ca6449 1367
921d9e16 1368 info->recovery_start = MaxSector;
a19c88b8 1369 info->reshape_active = 0;
6e75048b 1370 info->recovery_blocked = 0;
c5afc314 1371 info->name[0] = 0;
a322f70c 1372
f35f2525
N
1373 info->array.major_version = -1;
1374 info->array.minor_version = -2;
159c3a1a 1375 strcpy(info->text_version, "ddf");
a67dd8cc 1376 info->safe_mode_delay = 0;
159c3a1a 1377
c5afc314 1378 uuid_from_super_ddf(st, info->uuid);
a322f70c 1379
a5d85af7
N
1380 if (map) {
1381 int i;
1382 for (i = 0 ; i < map_disks; i++) {
1383 if (i < info->array.raid_disks &&
1384 (__be16_to_cpu(ddf->phys->entries[i].state) & DDF_Online) &&
1385 !(__be16_to_cpu(ddf->phys->entries[i].state) & DDF_Failed))
1386 map[i] = 1;
1387 else
1388 map[i] = 0;
1389 }
1390 }
a322f70c
DW
1391}
1392
598f0d58
NB
1393static int rlq_to_layout(int rlq, int prl, int raiddisks);
1394
a5d85af7 1395static void getinfo_super_ddf_bvd(struct supertype *st, struct mdinfo *info, char *map)
a322f70c
DW
1396{
1397 struct ddf_super *ddf = st->sb;
d2ca6449
NB
1398 struct vcl *vc = ddf->currentconf;
1399 int cd = ddf->currentdev;
db42fa9b 1400 int j;
8592f29d 1401 struct dl *dl;
a5d85af7 1402 int map_disks = info->array.raid_disks;
90fa1a29 1403 __u32 *cptr;
a322f70c 1404
95eeceeb 1405 memset(info, 0, sizeof(*info));
a322f70c
DW
1406 /* FIXME this returns BVD info - what if we want SVD ?? */
1407
d2ca6449
NB
1408 info->array.raid_disks = __be16_to_cpu(vc->conf.prim_elmnt_count);
1409 info->array.level = map_num1(ddf_level_num, vc->conf.prl);
1410 info->array.layout = rlq_to_layout(vc->conf.rlq, vc->conf.prl,
598f0d58 1411 info->array.raid_disks);
a322f70c 1412 info->array.md_minor = -1;
90fa1a29
JS
1413 cptr = (__u32 *)(vc->conf.guid + 16);
1414 info->array.ctime = DECADE + __be32_to_cpu(*cptr);
d2ca6449
NB
1415 info->array.utime = DECADE + __be32_to_cpu(vc->conf.timestamp);
1416 info->array.chunk_size = 512 << vc->conf.chunk_shift;
da9b4a62 1417 info->custom_array_size = 0;
d2ca6449 1418
f21e18ca 1419 if (cd >= 0 && (unsigned)cd < ddf->mppe) {
d2ca6449
NB
1420 info->data_offset = __be64_to_cpu(vc->lba_offset[cd]);
1421 if (vc->block_sizes)
1422 info->component_size = vc->block_sizes[cd];
1423 else
1424 info->component_size = __be64_to_cpu(vc->conf.blocks);
1425 }
a322f70c 1426
fb204fb2
N
1427 for (dl = ddf->dlist; dl ; dl = dl->next)
1428 if (dl->raiddisk == ddf->currentdev)
1429 break;
1430
a322f70c
DW
1431 info->disk.major = 0;
1432 info->disk.minor = 0;
fb204fb2 1433 info->disk.state = 0;
8592f29d
N
1434 if (dl) {
1435 info->disk.major = dl->major;
1436 info->disk.minor = dl->minor;
fb204fb2
N
1437 info->disk.raid_disk = dl->raiddisk;
1438 info->disk.number = dl->pdnum;
1439 info->disk.state = (1<<MD_DISK_SYNC)|(1<<MD_DISK_ACTIVE);
8592f29d 1440 }
a322f70c 1441
103f2410
NB
1442 info->container_member = ddf->currentconf->vcnum;
1443
921d9e16 1444 info->recovery_start = MaxSector;
80d26cb2 1445 info->resync_start = 0;
624c5ad4 1446 info->reshape_active = 0;
6e75048b 1447 info->recovery_blocked = 0;
80d26cb2
NB
1448 if (!(ddf->virt->entries[info->container_member].state
1449 & DDF_state_inconsistent) &&
1450 (ddf->virt->entries[info->container_member].init_state
1451 & DDF_initstate_mask)
1452 == DDF_init_full)
b7528a20 1453 info->resync_start = MaxSector;
80d26cb2 1454
a322f70c
DW
1455 uuid_from_super_ddf(st, info->uuid);
1456
f35f2525
N
1457 info->array.major_version = -1;
1458 info->array.minor_version = -2;
9b63e648 1459 sprintf(info->text_version, "/%s/%d",
159c3a1a 1460 devnum2devname(st->container_dev),
9b63e648 1461 info->container_member);
a67dd8cc 1462 info->safe_mode_delay = 200;
159c3a1a 1463
db42fa9b
N
1464 memcpy(info->name, ddf->virt->entries[info->container_member].name, 16);
1465 info->name[16]=0;
1466 for(j=0; j<16; j++)
1467 if (info->name[j] == ' ')
1468 info->name[j] = 0;
a5d85af7
N
1469
1470 if (map)
1471 for (j = 0; j < map_disks; j++) {
1472 map[j] = 0;
1473 if (j < info->array.raid_disks) {
1474 int i = find_phys(ddf, vc->conf.phys_refnum[j]);
1475 if (i >= 0 &&
1476 (__be16_to_cpu(ddf->phys->entries[i].state) & DDF_Online) &&
1477 !(__be16_to_cpu(ddf->phys->entries[i].state) & DDF_Failed))
1478 map[i] = 1;
1479 }
1480 }
a322f70c
DW
1481}
1482
598f0d58 1483
a322f70c
DW
1484static int update_super_ddf(struct supertype *st, struct mdinfo *info,
1485 char *update,
1486 char *devname, int verbose,
1487 int uuid_set, char *homehost)
1488{
1489 /* For 'assemble' and 'force' we need to return non-zero if any
1490 * change was made. For others, the return value is ignored.
1491 * Update options are:
1492 * force-one : This device looks a bit old but needs to be included,
1493 * update age info appropriately.
1494 * assemble: clear any 'faulty' flag to allow this device to
1495 * be assembled.
1496 * force-array: Array is degraded but being forced, mark it clean
1497 * if that will be needed to assemble it.
1498 *
1499 * newdev: not used ????
1500 * grow: Array has gained a new device - this is currently for
1501 * linear only
1502 * resync: mark as dirty so a resync will happen.
59e36268 1503 * uuid: Change the uuid of the array to match what is given
a322f70c
DW
1504 * homehost: update the recorded homehost
1505 * name: update the name - preserving the homehost
1506 * _reshape_progress: record new reshape_progress position.
1507 *
1508 * Following are not relevant for this version:
1509 * sparc2.2 : update from old dodgey metadata
1510 * super-minor: change the preferred_minor number
1511 * summaries: update redundant counters.
1512 */
1513 int rv = 0;
1514// struct ddf_super *ddf = st->sb;
7a7cc504 1515// struct vd_config *vd = find_vdcr(ddf, info->container_member);
a322f70c
DW
1516// struct virtual_entry *ve = find_ve(ddf);
1517
a322f70c
DW
1518 /* we don't need to handle "force-*" or "assemble" as
1519 * there is no need to 'trick' the kernel. We the metadata is
1520 * first updated to activate the array, all the implied modifications
1521 * will just happen.
1522 */
1523
1524 if (strcmp(update, "grow") == 0) {
1525 /* FIXME */
1e2b2765 1526 } else if (strcmp(update, "resync") == 0) {
a322f70c 1527// info->resync_checkpoint = 0;
1e2b2765 1528 } else if (strcmp(update, "homehost") == 0) {
a322f70c
DW
1529 /* homehost is stored in controller->vendor_data,
1530 * or it is when we are the vendor
1531 */
1532// if (info->vendor_is_local)
1533// strcpy(ddf->controller.vendor_data, homehost);
1e2b2765 1534 rv = -1;
f49208ec 1535 } else if (strcmp(update, "name") == 0) {
a322f70c
DW
1536 /* name is stored in virtual_entry->name */
1537// memset(ve->name, ' ', 16);
1538// strncpy(ve->name, info->name, 16);
1e2b2765 1539 rv = -1;
f49208ec 1540 } else if (strcmp(update, "_reshape_progress") == 0) {
a322f70c 1541 /* We don't support reshape yet */
f49208ec
N
1542 } else if (strcmp(update, "assemble") == 0 ) {
1543 /* Do nothing, just succeed */
1544 rv = 0;
1e2b2765
N
1545 } else
1546 rv = -1;
a322f70c
DW
1547
1548// update_all_csum(ddf);
1549
1550 return rv;
1551}
1552
5f8097be
NB
1553static void make_header_guid(char *guid)
1554{
1555 __u32 stamp;
5f8097be
NB
1556 /* Create a DDF Header of Virtual Disk GUID */
1557
1558 /* 24 bytes of fiction required.
1559 * first 8 are a 'vendor-id' - "Linux-MD"
1560 * next 8 are controller type.. how about 0X DEAD BEEF 0000 0000
1561 * Remaining 8 random number plus timestamp
1562 */
1563 memcpy(guid, T10, sizeof(T10));
1564 stamp = __cpu_to_be32(0xdeadbeef);
1565 memcpy(guid+8, &stamp, 4);
1566 stamp = __cpu_to_be32(0);
1567 memcpy(guid+12, &stamp, 4);
1568 stamp = __cpu_to_be32(time(0) - DECADE);
1569 memcpy(guid+16, &stamp, 4);
bfb7ea78 1570 stamp = random32();
5f8097be 1571 memcpy(guid+20, &stamp, 4);
5f8097be 1572}
59e36268 1573
78e44928
NB
1574static int init_super_ddf_bvd(struct supertype *st,
1575 mdu_array_info_t *info,
1576 unsigned long long size,
1577 char *name, char *homehost,
1578 int *uuid);
1579
a322f70c
DW
1580static int init_super_ddf(struct supertype *st,
1581 mdu_array_info_t *info,
1582 unsigned long long size, char *name, char *homehost,
1583 int *uuid)
1584{
1585 /* This is primarily called by Create when creating a new array.
1586 * We will then get add_to_super called for each component, and then
1587 * write_init_super called to write it out to each device.
1588 * For DDF, Create can create on fresh devices or on a pre-existing
1589 * array.
1590 * To create on a pre-existing array a different method will be called.
1591 * This one is just for fresh drives.
1592 *
1593 * We need to create the entire 'ddf' structure which includes:
1594 * DDF headers - these are easy.
1595 * Controller data - a Sector describing this controller .. not that
1596 * this is a controller exactly.
1597 * Physical Disk Record - one entry per device, so
1598 * leave plenty of space.
1599 * Virtual Disk Records - again, just leave plenty of space.
1600 * This just lists VDs, doesn't give details
1601 * Config records - describes the VDs that use this disk
1602 * DiskData - describes 'this' device.
1603 * BadBlockManagement - empty
1604 * Diag Space - empty
1605 * Vendor Logs - Could we put bitmaps here?
1606 *
1607 */
1608 struct ddf_super *ddf;
1609 char hostname[17];
1610 int hostlen;
a322f70c
DW
1611 int max_phys_disks, max_virt_disks;
1612 unsigned long long sector;
1613 int clen;
1614 int i;
1615 int pdsize, vdsize;
1616 struct phys_disk *pd;
1617 struct virtual_disk *vd;
1618
78e44928 1619 if (st->sb)
955e9ea1 1620 return init_super_ddf_bvd(st, info, size, name, homehost, uuid);
ba7eb04f 1621
3d2c4fc7 1622 if (posix_memalign((void**)&ddf, 512, sizeof(*ddf)) != 0) {
e7b84f9d 1623 pr_err("%s could not allocate superblock\n", __func__);
3d2c4fc7
DW
1624 return 0;
1625 }
6264b437 1626 memset(ddf, 0, sizeof(*ddf));
a322f70c
DW
1627 ddf->dlist = NULL; /* no physical disks yet */
1628 ddf->conflist = NULL; /* No virtual disks yet */
955e9ea1
DW
1629 st->sb = ddf;
1630
1631 if (info == NULL) {
1632 /* zeroing superblock */
1633 return 0;
1634 }
a322f70c
DW
1635
1636 /* At least 32MB *must* be reserved for the ddf. So let's just
1637 * start 32MB from the end, and put the primary header there.
1638 * Don't do secondary for now.
1639 * We don't know exactly where that will be yet as it could be
1640 * different on each device. To just set up the lengths.
1641 *
1642 */
1643
1644 ddf->anchor.magic = DDF_HEADER_MAGIC;
5f8097be 1645 make_header_guid(ddf->anchor.guid);
a322f70c 1646
59e36268 1647 memcpy(ddf->anchor.revision, DDF_REVISION_2, 8);
a322f70c
DW
1648 ddf->anchor.seq = __cpu_to_be32(1);
1649 ddf->anchor.timestamp = __cpu_to_be32(time(0) - DECADE);
1650 ddf->anchor.openflag = 0xFF;
1651 ddf->anchor.foreignflag = 0;
1652 ddf->anchor.enforcegroups = 0; /* Is this best?? */
1653 ddf->anchor.pad0 = 0xff;
1654 memset(ddf->anchor.pad1, 0xff, 12);
1655 memset(ddf->anchor.header_ext, 0xff, 32);
1656 ddf->anchor.primary_lba = ~(__u64)0;
1657 ddf->anchor.secondary_lba = ~(__u64)0;
1658 ddf->anchor.type = DDF_HEADER_ANCHOR;
1659 memset(ddf->anchor.pad2, 0xff, 3);
1660 ddf->anchor.workspace_len = __cpu_to_be32(32768); /* Must be reserved */
1661 ddf->anchor.workspace_lba = ~(__u64)0; /* Put this at bottom
1662 of 32M reserved.. */
1663 max_phys_disks = 1023; /* Should be enough */
1664 ddf->anchor.max_pd_entries = __cpu_to_be16(max_phys_disks);
1665 max_virt_disks = 255;
1666 ddf->anchor.max_vd_entries = __cpu_to_be16(max_virt_disks); /* ?? */
1667 ddf->anchor.max_partitions = __cpu_to_be16(64); /* ?? */
1668 ddf->max_part = 64;
8c3b8c2c 1669 ddf->mppe = 256;
59e36268
NB
1670 ddf->conf_rec_len = 1 + ROUND_UP(ddf->mppe * (4+8), 512)/512;
1671 ddf->anchor.config_record_len = __cpu_to_be16(ddf->conf_rec_len);
1672 ddf->anchor.max_primary_element_entries = __cpu_to_be16(ddf->mppe);
a322f70c 1673 memset(ddf->anchor.pad3, 0xff, 54);
a322f70c
DW
1674 /* controller sections is one sector long immediately
1675 * after the ddf header */
1676 sector = 1;
1677 ddf->anchor.controller_section_offset = __cpu_to_be32(sector);
1678 ddf->anchor.controller_section_length = __cpu_to_be32(1);
1679 sector += 1;
1680
1681 /* phys is 8 sectors after that */
1682 pdsize = ROUND_UP(sizeof(struct phys_disk) +
1683 sizeof(struct phys_disk_entry)*max_phys_disks,
1684 512);
1685 switch(pdsize/512) {
1686 case 2: case 8: case 32: case 128: case 512: break;
1687 default: abort();
1688 }
1689 ddf->anchor.phys_section_offset = __cpu_to_be32(sector);
1690 ddf->anchor.phys_section_length =
1691 __cpu_to_be32(pdsize/512); /* max_primary_element_entries/8 */
1692 sector += pdsize/512;
1693
1694 /* virt is another 32 sectors */
1695 vdsize = ROUND_UP(sizeof(struct virtual_disk) +
1696 sizeof(struct virtual_entry) * max_virt_disks,
1697 512);
1698 switch(vdsize/512) {
1699 case 2: case 8: case 32: case 128: case 512: break;
1700 default: abort();
1701 }
1702 ddf->anchor.virt_section_offset = __cpu_to_be32(sector);
1703 ddf->anchor.virt_section_length =
1704 __cpu_to_be32(vdsize/512); /* max_vd_entries/8 */
1705 sector += vdsize/512;
1706
59e36268 1707 clen = ddf->conf_rec_len * (ddf->max_part+1);
a322f70c
DW
1708 ddf->anchor.config_section_offset = __cpu_to_be32(sector);
1709 ddf->anchor.config_section_length = __cpu_to_be32(clen);
1710 sector += clen;
1711
1712 ddf->anchor.data_section_offset = __cpu_to_be32(sector);
1713 ddf->anchor.data_section_length = __cpu_to_be32(1);
1714 sector += 1;
1715
1716 ddf->anchor.bbm_section_length = __cpu_to_be32(0);
1717 ddf->anchor.bbm_section_offset = __cpu_to_be32(0xFFFFFFFF);
1718 ddf->anchor.diag_space_length = __cpu_to_be32(0);
1719 ddf->anchor.diag_space_offset = __cpu_to_be32(0xFFFFFFFF);
1720 ddf->anchor.vendor_length = __cpu_to_be32(0);
1721 ddf->anchor.vendor_offset = __cpu_to_be32(0xFFFFFFFF);
1722
1723 memset(ddf->anchor.pad4, 0xff, 256);
1724
1725 memcpy(&ddf->primary, &ddf->anchor, 512);
1726 memcpy(&ddf->secondary, &ddf->anchor, 512);
1727
1728 ddf->primary.openflag = 1; /* I guess.. */
1729 ddf->primary.type = DDF_HEADER_PRIMARY;
1730
1731 ddf->secondary.openflag = 1; /* I guess.. */
1732 ddf->secondary.type = DDF_HEADER_SECONDARY;
1733
1734 ddf->active = &ddf->primary;
1735
1736 ddf->controller.magic = DDF_CONTROLLER_MAGIC;
1737
1738 /* 24 more bytes of fiction required.
1739 * first 8 are a 'vendor-id' - "Linux-MD"
1740 * Remaining 16 are serial number.... maybe a hostname would do?
1741 */
1742 memcpy(ddf->controller.guid, T10, sizeof(T10));
1ba6bff9
DW
1743 gethostname(hostname, sizeof(hostname));
1744 hostname[sizeof(hostname) - 1] = 0;
a322f70c
DW
1745 hostlen = strlen(hostname);
1746 memcpy(ddf->controller.guid + 24 - hostlen, hostname, hostlen);
1747 for (i = strlen(T10) ; i+hostlen < 24; i++)
1748 ddf->controller.guid[i] = ' ';
1749
1750 ddf->controller.type.vendor_id = __cpu_to_be16(0xDEAD);
1751 ddf->controller.type.device_id = __cpu_to_be16(0xBEEF);
1752 ddf->controller.type.sub_vendor_id = 0;
1753 ddf->controller.type.sub_device_id = 0;
1754 memcpy(ddf->controller.product_id, "What Is My PID??", 16);
1755 memset(ddf->controller.pad, 0xff, 8);
1756 memset(ddf->controller.vendor_data, 0xff, 448);
a9e1c11d
N
1757 if (homehost && strlen(homehost) < 440)
1758 strcpy((char*)ddf->controller.vendor_data, homehost);
a322f70c 1759
3d2c4fc7 1760 if (posix_memalign((void**)&pd, 512, pdsize) != 0) {
e7b84f9d 1761 pr_err("%s could not allocate pd\n", __func__);
3d2c4fc7
DW
1762 return 0;
1763 }
6416d527 1764 ddf->phys = pd;
a322f70c
DW
1765 ddf->pdsize = pdsize;
1766
1767 memset(pd, 0xff, pdsize);
1768 memset(pd, 0, sizeof(*pd));
076515ba 1769 pd->magic = DDF_PHYS_RECORDS_MAGIC;
a322f70c
DW
1770 pd->used_pdes = __cpu_to_be16(0);
1771 pd->max_pdes = __cpu_to_be16(max_phys_disks);
1772 memset(pd->pad, 0xff, 52);
1773
3d2c4fc7 1774 if (posix_memalign((void**)&vd, 512, vdsize) != 0) {
e7b84f9d 1775 pr_err("%s could not allocate vd\n", __func__);
3d2c4fc7
DW
1776 return 0;
1777 }
6416d527 1778 ddf->virt = vd;
a322f70c
DW
1779 ddf->vdsize = vdsize;
1780 memset(vd, 0, vdsize);
1781 vd->magic = DDF_VIRT_RECORDS_MAGIC;
1782 vd->populated_vdes = __cpu_to_be16(0);
1783 vd->max_vdes = __cpu_to_be16(max_virt_disks);
1784 memset(vd->pad, 0xff, 52);
1785
5f8097be
NB
1786 for (i=0; i<max_virt_disks; i++)
1787 memset(&vd->entries[i], 0xff, sizeof(struct virtual_entry));
1788
a322f70c 1789 st->sb = ddf;
18a2f463 1790 ddf->updates_pending = 1;
a322f70c
DW
1791 return 1;
1792}
1793
5f8097be
NB
1794static int chunk_to_shift(int chunksize)
1795{
1796 return ffs(chunksize/512)-1;
1797}
1798
1799static int level_to_prl(int level)
1800{
1801 switch (level) {
1802 case LEVEL_LINEAR: return DDF_CONCAT;
1803 case 0: return DDF_RAID0;
1804 case 1: return DDF_RAID1;
1805 case 4: return DDF_RAID4;
1806 case 5: return DDF_RAID5;
1807 case 6: return DDF_RAID6;
1808 default: return -1;
1809 }
1810}
1811static int layout_to_rlq(int level, int layout, int raiddisks)
1812{
1813 switch(level) {
1814 case 0:
1815 return DDF_RAID0_SIMPLE;
1816 case 1:
1817 switch(raiddisks) {
1818 case 2: return DDF_RAID1_SIMPLE;
1819 case 3: return DDF_RAID1_MULTI;
1820 default: return -1;
1821 }
1822 case 4:
1823 switch(layout) {
1824 case 0: return DDF_RAID4_N;
1825 }
1826 break;
1827 case 5:
5f8097be
NB
1828 switch(layout) {
1829 case ALGORITHM_LEFT_ASYMMETRIC:
1830 return DDF_RAID5_N_RESTART;
1831 case ALGORITHM_RIGHT_ASYMMETRIC:
b640a252 1832 return DDF_RAID5_0_RESTART;
5f8097be
NB
1833 case ALGORITHM_LEFT_SYMMETRIC:
1834 return DDF_RAID5_N_CONTINUE;
1835 case ALGORITHM_RIGHT_SYMMETRIC:
1836 return -1; /* not mentioned in standard */
1837 }
b640a252
N
1838 case 6:
1839 switch(layout) {
1840 case ALGORITHM_ROTATING_N_RESTART:
1841 return DDF_RAID5_N_RESTART;
1842 case ALGORITHM_ROTATING_ZERO_RESTART:
1843 return DDF_RAID6_0_RESTART;
1844 case ALGORITHM_ROTATING_N_CONTINUE:
1845 return DDF_RAID5_N_CONTINUE;
1846 }
5f8097be
NB
1847 }
1848 return -1;
1849}
1850
598f0d58
NB
1851static int rlq_to_layout(int rlq, int prl, int raiddisks)
1852{
1853 switch(prl) {
1854 case DDF_RAID0:
1855 return 0; /* hopefully rlq == DDF_RAID0_SIMPLE */
1856 case DDF_RAID1:
1857 return 0; /* hopefully rlq == SIMPLE or MULTI depending
1858 on raiddisks*/
1859 case DDF_RAID4:
1860 switch(rlq) {
1861 case DDF_RAID4_N:
1862 return 0;
1863 default:
1864 /* not supported */
1865 return -1; /* FIXME this isn't checked */
1866 }
1867 case DDF_RAID5:
598f0d58
NB
1868 switch(rlq) {
1869 case DDF_RAID5_N_RESTART:
1870 return ALGORITHM_LEFT_ASYMMETRIC;
1871 case DDF_RAID5_0_RESTART:
1872 return ALGORITHM_RIGHT_ASYMMETRIC;
1873 case DDF_RAID5_N_CONTINUE:
1874 return ALGORITHM_LEFT_SYMMETRIC;
1875 default:
1876 return -1;
1877 }
59e36268
NB
1878 case DDF_RAID6:
1879 switch(rlq) {
1880 case DDF_RAID5_N_RESTART:
b640a252 1881 return ALGORITHM_ROTATING_N_RESTART;
59e36268 1882 case DDF_RAID6_0_RESTART:
b640a252 1883 return ALGORITHM_ROTATING_ZERO_RESTART;
59e36268 1884 case DDF_RAID5_N_CONTINUE:
b640a252 1885 return ALGORITHM_ROTATING_N_CONTINUE;
59e36268
NB
1886 default:
1887 return -1;
1888 }
598f0d58
NB
1889 }
1890 return -1;
1891}
1892
0e600426 1893#ifndef MDASSEMBLE
59e36268
NB
1894struct extent {
1895 unsigned long long start, size;
1896};
78e44928 1897static int cmp_extent(const void *av, const void *bv)
59e36268
NB
1898{
1899 const struct extent *a = av;
1900 const struct extent *b = bv;
1901 if (a->start < b->start)
1902 return -1;
1903 if (a->start > b->start)
1904 return 1;
1905 return 0;
1906}
1907
78e44928 1908static struct extent *get_extents(struct ddf_super *ddf, struct dl *dl)
59e36268
NB
1909{
1910 /* find a list of used extents on the give physical device
1911 * (dnum) of the given ddf.
1912 * Return a malloced array of 'struct extent'
1913
1914FIXME ignore DDF_Legacy devices?
1915
1916 */
1917 struct extent *rv;
1918 int n = 0;
f21e18ca 1919 unsigned int i, j;
59e36268
NB
1920
1921 rv = malloc(sizeof(struct extent) * (ddf->max_part + 2));
1922 if (!rv)
1923 return NULL;
1924
1925 for (i = 0; i < ddf->max_part; i++) {
1926 struct vcl *v = dl->vlist[i];
1927 if (v == NULL)
1928 continue;
f21e18ca 1929 for (j = 0; j < v->conf.prim_elmnt_count; j++)
59e36268
NB
1930 if (v->conf.phys_refnum[j] == dl->disk.refnum) {
1931 /* This device plays role 'j' in 'v'. */
1932 rv[n].start = __be64_to_cpu(v->lba_offset[j]);
1933 rv[n].size = __be64_to_cpu(v->conf.blocks);
1934 n++;
1935 break;
1936 }
1937 }
1938 qsort(rv, n, sizeof(*rv), cmp_extent);
1939
1940 rv[n].start = __be64_to_cpu(ddf->phys->entries[dl->pdnum].config_size);
1941 rv[n].size = 0;
1942 return rv;
1943}
0e600426 1944#endif
59e36268 1945
5f8097be
NB
1946static int init_super_ddf_bvd(struct supertype *st,
1947 mdu_array_info_t *info,
1948 unsigned long long size,
1949 char *name, char *homehost,
1950 int *uuid)
1951{
1952 /* We are creating a BVD inside a pre-existing container.
1953 * so st->sb is already set.
1954 * We need to create a new vd_config and a new virtual_entry
1955 */
1956 struct ddf_super *ddf = st->sb;
f21e18ca 1957 unsigned int venum;
5f8097be
NB
1958 struct virtual_entry *ve;
1959 struct vcl *vcl;
1960 struct vd_config *vc;
5f8097be
NB
1961
1962 if (__be16_to_cpu(ddf->virt->populated_vdes)
1963 >= __be16_to_cpu(ddf->virt->max_vdes)) {
e7b84f9d
N
1964 pr_err("This ddf already has the "
1965 "maximum of %d virtual devices\n",
1966 __be16_to_cpu(ddf->virt->max_vdes));
5f8097be
NB
1967 return 0;
1968 }
1969
97c9c100
N
1970 if (name)
1971 for (venum = 0; venum < __be16_to_cpu(ddf->virt->max_vdes); venum++)
1972 if (!all_ff(ddf->virt->entries[venum].guid)) {
1973 char *n = ddf->virt->entries[venum].name;
1974
1975 if (strncmp(name, n, 16) == 0) {
e7b84f9d
N
1976 pr_err("This ddf already"
1977 " has an array called %s\n",
1978 name);
97c9c100
N
1979 return 0;
1980 }
1981 }
1982
5f8097be
NB
1983 for (venum = 0; venum < __be16_to_cpu(ddf->virt->max_vdes); venum++)
1984 if (all_ff(ddf->virt->entries[venum].guid))
1985 break;
1986 if (venum == __be16_to_cpu(ddf->virt->max_vdes)) {
e7b84f9d 1987 pr_err("Cannot find spare slot for "
5f8097be
NB
1988 "virtual disk - DDF is corrupt\n");
1989 return 0;
1990 }
1991 ve = &ddf->virt->entries[venum];
1992
1993 /* A Virtual Disk GUID contains the T10 Vendor ID, controller type,
1994 * timestamp, random number
1995 */
1996 make_header_guid(ve->guid);
1997 ve->unit = __cpu_to_be16(info->md_minor);
1998 ve->pad0 = 0xFFFF;
1999 ve->guid_crc = crc32(0, (unsigned char*)ddf->anchor.guid, DDF_GUID_LEN);
2000 ve->type = 0;
7a7cc504
NB
2001 ve->state = DDF_state_degraded; /* Will be modified as devices are added */
2002 if (info->state & 1) /* clean */
2003 ve->init_state = DDF_init_full;
2004 else
2005 ve->init_state = DDF_init_not;
2006
5f8097be
NB
2007 memset(ve->pad1, 0xff, 14);
2008 memset(ve->name, ' ', 16);
2009 if (name)
2010 strncpy(ve->name, name, 16);
2011 ddf->virt->populated_vdes =
2012 __cpu_to_be16(__be16_to_cpu(ddf->virt->populated_vdes)+1);
2013
2014 /* Now create a new vd_config */
3d2c4fc7
DW
2015 if (posix_memalign((void**)&vcl, 512,
2016 (offsetof(struct vcl, conf) + ddf->conf_rec_len * 512)) != 0) {
e7b84f9d 2017 pr_err("%s could not allocate vd_config\n", __func__);
3d2c4fc7
DW
2018 return 0;
2019 }
8c3b8c2c 2020 vcl->lba_offset = (__u64*) &vcl->conf.phys_refnum[ddf->mppe];
59e36268
NB
2021 vcl->vcnum = venum;
2022 vcl->block_sizes = NULL; /* FIXME not for CONCAT */
5f8097be
NB
2023
2024 vc = &vcl->conf;
2025
2026 vc->magic = DDF_VD_CONF_MAGIC;
2027 memcpy(vc->guid, ve->guid, DDF_GUID_LEN);
2028 vc->timestamp = __cpu_to_be32(time(0)-DECADE);
2029 vc->seqnum = __cpu_to_be32(1);
2030 memset(vc->pad0, 0xff, 24);
2031 vc->prim_elmnt_count = __cpu_to_be16(info->raid_disks);
2032 vc->chunk_shift = chunk_to_shift(info->chunk_size);
2033 vc->prl = level_to_prl(info->level);
2034 vc->rlq = layout_to_rlq(info->level, info->layout, info->raid_disks);
2035 vc->sec_elmnt_count = 1;
2036 vc->sec_elmnt_seq = 0;
2037 vc->srl = 0;
2038 vc->blocks = __cpu_to_be64(info->size * 2);
2039 vc->array_blocks = __cpu_to_be64(
2040 calc_array_size(info->level, info->raid_disks, info->layout,
2041 info->chunk_size, info->size*2));
2042 memset(vc->pad1, 0xff, 8);
2043 vc->spare_refs[0] = 0xffffffff;
2044 vc->spare_refs[1] = 0xffffffff;
2045 vc->spare_refs[2] = 0xffffffff;
2046 vc->spare_refs[3] = 0xffffffff;
2047 vc->spare_refs[4] = 0xffffffff;
2048 vc->spare_refs[5] = 0xffffffff;
2049 vc->spare_refs[6] = 0xffffffff;
2050 vc->spare_refs[7] = 0xffffffff;
2051 memset(vc->cache_pol, 0, 8);
2052 vc->bg_rate = 0x80;
2053 memset(vc->pad2, 0xff, 3);
2054 memset(vc->pad3, 0xff, 52);
2055 memset(vc->pad4, 0xff, 192);
2056 memset(vc->v0, 0xff, 32);
2057 memset(vc->v1, 0xff, 32);
2058 memset(vc->v2, 0xff, 16);
2059 memset(vc->v3, 0xff, 16);
2060 memset(vc->vendor, 0xff, 32);
598f0d58 2061
8c3b8c2c 2062 memset(vc->phys_refnum, 0xff, 4*ddf->mppe);
e5a2a3cf 2063 memset(vc->phys_refnum+ddf->mppe, 0x00, 8*ddf->mppe);
5f8097be
NB
2064
2065 vcl->next = ddf->conflist;
2066 ddf->conflist = vcl;
d2ca6449 2067 ddf->currentconf = vcl;
18a2f463 2068 ddf->updates_pending = 1;
5f8097be
NB
2069 return 1;
2070}
2071
0e600426 2072#ifndef MDASSEMBLE
5f8097be
NB
2073static void add_to_super_ddf_bvd(struct supertype *st,
2074 mdu_disk_info_t *dk, int fd, char *devname)
2075{
2076 /* fd and devname identify a device with-in the ddf container (st).
2077 * dk identifies a location in the new BVD.
2078 * We need to find suitable free space in that device and update
2079 * the phys_refnum and lba_offset for the newly created vd_config.
2080 * We might also want to update the type in the phys_disk
5575e7d9 2081 * section.
8592f29d
N
2082 *
2083 * Alternately: fd == -1 and we have already chosen which device to
2084 * use and recorded in dlist->raid_disk;
5f8097be
NB
2085 */
2086 struct dl *dl;
2087 struct ddf_super *ddf = st->sb;
2088 struct vd_config *vc;
2089 __u64 *lba_offset;
f21e18ca
N
2090 unsigned int working;
2091 unsigned int i;
59e36268
NB
2092 unsigned long long blocks, pos, esize;
2093 struct extent *ex;
5f8097be 2094
8592f29d
N
2095 if (fd == -1) {
2096 for (dl = ddf->dlist; dl ; dl = dl->next)
2097 if (dl->raiddisk == dk->raid_disk)
2098 break;
2099 } else {
2100 for (dl = ddf->dlist; dl ; dl = dl->next)
2101 if (dl->major == dk->major &&
2102 dl->minor == dk->minor)
2103 break;
2104 }
5f8097be
NB
2105 if (!dl || ! (dk->state & (1<<MD_DISK_SYNC)))
2106 return;
2107
d2ca6449
NB
2108 vc = &ddf->currentconf->conf;
2109 lba_offset = ddf->currentconf->lba_offset;
59e36268
NB
2110
2111 ex = get_extents(ddf, dl);
2112 if (!ex)
2113 return;
2114
2115 i = 0; pos = 0;
2116 blocks = __be64_to_cpu(vc->blocks);
d2ca6449
NB
2117 if (ddf->currentconf->block_sizes)
2118 blocks = ddf->currentconf->block_sizes[dk->raid_disk];
59e36268
NB
2119
2120 do {
2121 esize = ex[i].start - pos;
2122 if (esize >= blocks)
2123 break;
2124 pos = ex[i].start + ex[i].size;
2125 i++;
2126 } while (ex[i-1].size);
2127
2128 free(ex);
2129 if (esize < blocks)
2130 return;
2131
d2ca6449 2132 ddf->currentdev = dk->raid_disk;
5f8097be 2133 vc->phys_refnum[dk->raid_disk] = dl->disk.refnum;
59e36268 2134 lba_offset[dk->raid_disk] = __cpu_to_be64(pos);
5f8097be 2135
f21e18ca 2136 for (i = 0; i < ddf->max_part ; i++)
5575e7d9
NB
2137 if (dl->vlist[i] == NULL)
2138 break;
2139 if (i == ddf->max_part)
2140 return;
d2ca6449 2141 dl->vlist[i] = ddf->currentconf;
5f8097be 2142
8592f29d
N
2143 if (fd >= 0)
2144 dl->fd = fd;
2145 if (devname)
2146 dl->devname = devname;
7a7cc504
NB
2147
2148 /* Check how many working raid_disks, and if we can mark
2149 * array as optimal yet
2150 */
2151 working = 0;
5575e7d9 2152
f21e18ca 2153 for (i = 0; i < __be16_to_cpu(vc->prim_elmnt_count); i++)
7a7cc504
NB
2154 if (vc->phys_refnum[i] != 0xffffffff)
2155 working++;
59e36268 2156
5575e7d9 2157 /* Find which virtual_entry */
d2ca6449 2158 i = ddf->currentconf->vcnum;
7a7cc504 2159 if (working == __be16_to_cpu(vc->prim_elmnt_count))
5575e7d9
NB
2160 ddf->virt->entries[i].state =
2161 (ddf->virt->entries[i].state & ~DDF_state_mask)
7a7cc504
NB
2162 | DDF_state_optimal;
2163
2164 if (vc->prl == DDF_RAID6 &&
2165 working+1 == __be16_to_cpu(vc->prim_elmnt_count))
5575e7d9
NB
2166 ddf->virt->entries[i].state =
2167 (ddf->virt->entries[i].state & ~DDF_state_mask)
7a7cc504 2168 | DDF_state_part_optimal;
5575e7d9
NB
2169
2170 ddf->phys->entries[dl->pdnum].type &= ~__cpu_to_be16(DDF_Global_Spare);
2171 ddf->phys->entries[dl->pdnum].type |= __cpu_to_be16(DDF_Active_in_VD);
18a2f463 2172 ddf->updates_pending = 1;
5f8097be
NB
2173}
2174
a322f70c
DW
2175/* add a device to a container, either while creating it or while
2176 * expanding a pre-existing container
2177 */
f20c3968 2178static int add_to_super_ddf(struct supertype *st,
a322f70c
DW
2179 mdu_disk_info_t *dk, int fd, char *devname)
2180{
2181 struct ddf_super *ddf = st->sb;
2182 struct dl *dd;
2183 time_t now;
2184 struct tm *tm;
2185 unsigned long long size;
2186 struct phys_disk_entry *pde;
f21e18ca 2187 unsigned int n, i;
a322f70c 2188 struct stat stb;
90fa1a29 2189 __u32 *tptr;
a322f70c 2190
78e44928
NB
2191 if (ddf->currentconf) {
2192 add_to_super_ddf_bvd(st, dk, fd, devname);
f20c3968 2193 return 0;
78e44928
NB
2194 }
2195
a322f70c
DW
2196 /* This is device numbered dk->number. We need to create
2197 * a phys_disk entry and a more detailed disk_data entry.
2198 */
2199 fstat(fd, &stb);
3d2c4fc7
DW
2200 if (posix_memalign((void**)&dd, 512,
2201 sizeof(*dd) + sizeof(dd->vlist[0]) * ddf->max_part) != 0) {
e7b84f9d
N
2202 pr_err("%s could allocate buffer for new disk, aborting\n",
2203 __func__);
f20c3968 2204 return 1;
3d2c4fc7 2205 }
a322f70c
DW
2206 dd->major = major(stb.st_rdev);
2207 dd->minor = minor(stb.st_rdev);
2208 dd->devname = devname;
a322f70c 2209 dd->fd = fd;
b2280677 2210 dd->spare = NULL;
a322f70c
DW
2211
2212 dd->disk.magic = DDF_PHYS_DATA_MAGIC;
2213 now = time(0);
2214 tm = localtime(&now);
2215 sprintf(dd->disk.guid, "%8s%04d%02d%02d",
2216 T10, tm->tm_year+1900, tm->tm_mon+1, tm->tm_mday);
90fa1a29
JS
2217 tptr = (__u32 *)(dd->disk.guid + 16);
2218 *tptr++ = random32();
2219 *tptr = random32();
a322f70c 2220
59e36268
NB
2221 do {
2222 /* Cannot be bothered finding a CRC of some irrelevant details*/
bfb7ea78 2223 dd->disk.refnum = random32();
f21e18ca
N
2224 for (i = __be16_to_cpu(ddf->active->max_pd_entries);
2225 i > 0; i--)
2226 if (ddf->phys->entries[i-1].refnum == dd->disk.refnum)
59e36268 2227 break;
f21e18ca 2228 } while (i > 0);
59e36268 2229
a322f70c
DW
2230 dd->disk.forced_ref = 1;
2231 dd->disk.forced_guid = 1;
2232 memset(dd->disk.vendor, ' ', 32);
2233 memcpy(dd->disk.vendor, "Linux", 5);
2234 memset(dd->disk.pad, 0xff, 442);
b2280677 2235 for (i = 0; i < ddf->max_part ; i++)
a322f70c
DW
2236 dd->vlist[i] = NULL;
2237
2238 n = __be16_to_cpu(ddf->phys->used_pdes);
2239 pde = &ddf->phys->entries[n];
5575e7d9
NB
2240 dd->pdnum = n;
2241
2cc2983d
N
2242 if (st->update_tail) {
2243 int len = (sizeof(struct phys_disk) +
2244 sizeof(struct phys_disk_entry));
2245 struct phys_disk *pd;
2246
2247 pd = malloc(len);
2248 pd->magic = DDF_PHYS_RECORDS_MAGIC;
2249 pd->used_pdes = __cpu_to_be16(n);
2250 pde = &pd->entries[0];
2251 dd->mdupdate = pd;
2252 } else {
2253 n++;
2254 ddf->phys->used_pdes = __cpu_to_be16(n);
2255 }
a322f70c
DW
2256
2257 memcpy(pde->guid, dd->disk.guid, DDF_GUID_LEN);
2258 pde->refnum = dd->disk.refnum;
5575e7d9 2259 pde->type = __cpu_to_be16(DDF_Forced_PD_GUID | DDF_Global_Spare);
a322f70c
DW
2260 pde->state = __cpu_to_be16(DDF_Online);
2261 get_dev_size(fd, NULL, &size);
2262 /* We are required to reserve 32Meg, and record the size in sectors */
2263 pde->config_size = __cpu_to_be64( (size - 32*1024*1024) / 512);
2264 sprintf(pde->path, "%17.17s","Information: nil") ;
2265 memset(pde->pad, 0xff, 6);
2266
d2ca6449 2267 dd->size = size >> 9;
2cc2983d
N
2268 if (st->update_tail) {
2269 dd->next = ddf->add_list;
2270 ddf->add_list = dd;
2271 } else {
2272 dd->next = ddf->dlist;
2273 ddf->dlist = dd;
2274 ddf->updates_pending = 1;
2275 }
f20c3968
DW
2276
2277 return 0;
a322f70c
DW
2278}
2279
4dd968cc
N
2280static int remove_from_super_ddf(struct supertype *st, mdu_disk_info_t *dk)
2281{
2282 struct ddf_super *ddf = st->sb;
2283 struct dl *dl;
2284
2285 /* mdmon has noticed that this disk (dk->major/dk->minor) has
2286 * disappeared from the container.
2287 * We need to arrange that it disappears from the metadata and
2288 * internal data structures too.
2289 * Most of the work is done by ddf_process_update which edits
2290 * the metadata and closes the file handle and attaches the memory
2291 * where free_updates will free it.
2292 */
2293 for (dl = ddf->dlist; dl ; dl = dl->next)
2294 if (dl->major == dk->major &&
2295 dl->minor == dk->minor)
2296 break;
2297 if (!dl)
2298 return -1;
2299
2300 if (st->update_tail) {
2301 int len = (sizeof(struct phys_disk) +
2302 sizeof(struct phys_disk_entry));
2303 struct phys_disk *pd;
2304
2305 pd = malloc(len);
2306 pd->magic = DDF_PHYS_RECORDS_MAGIC;
2307 pd->used_pdes = __cpu_to_be16(dl->pdnum);
2308 pd->entries[0].state = __cpu_to_be16(DDF_Missing);
2309 append_metadata_update(st, pd, len);
2310 }
2311 return 0;
2312}
2313
a322f70c
DW
2314/*
2315 * This is the write_init_super method for a ddf container. It is
2316 * called when creating a container or adding another device to a
2317 * container.
2318 */
42d5dfd9 2319#define NULL_CONF_SZ 4096
18a2f463 2320
1cc7f4fe 2321static int __write_init_super_ddf(struct supertype *st)
a322f70c
DW
2322{
2323
2324 struct ddf_super *ddf = st->sb;
2325 int i;
2326 struct dl *d;
2327 int n_config;
2328 int conf_size;
175593bf
DW
2329 int attempts = 0;
2330 int successes = 0;
a322f70c 2331 unsigned long long size, sector;
42d5dfd9
JS
2332 char *null_aligned;
2333
2334 if (posix_memalign((void**)&null_aligned, 4096, NULL_CONF_SZ) != 0) {
2335 return -ENOMEM;
2336 }
2337 memset(null_aligned, 0xff, NULL_CONF_SZ);
a322f70c 2338
175593bf
DW
2339 /* try to write updated metadata,
2340 * if we catch a failure move on to the next disk
2341 */
a322f70c
DW
2342 for (d = ddf->dlist; d; d=d->next) {
2343 int fd = d->fd;
2344
2345 if (fd < 0)
2346 continue;
2347
175593bf 2348 attempts++;
a322f70c
DW
2349 /* We need to fill in the primary, (secondary) and workspace
2350 * lba's in the headers, set their checksums,
2351 * Also checksum phys, virt....
2352 *
2353 * Then write everything out, finally the anchor is written.
2354 */
2355 get_dev_size(fd, NULL, &size);
2356 size /= 512;
2357 ddf->anchor.workspace_lba = __cpu_to_be64(size - 32*1024*2);
2358 ddf->anchor.primary_lba = __cpu_to_be64(size - 16*1024*2);
2359 ddf->anchor.seq = __cpu_to_be32(1);
2360 memcpy(&ddf->primary, &ddf->anchor, 512);
2361 memcpy(&ddf->secondary, &ddf->anchor, 512);
2362
2363 ddf->anchor.openflag = 0xFF; /* 'open' means nothing */
2364 ddf->anchor.seq = 0xFFFFFFFF; /* no sequencing in anchor */
2365 ddf->anchor.crc = calc_crc(&ddf->anchor, 512);
2366
2367 ddf->primary.openflag = 0;
2368 ddf->primary.type = DDF_HEADER_PRIMARY;
2369
2370 ddf->secondary.openflag = 0;
2371 ddf->secondary.type = DDF_HEADER_SECONDARY;
2372
2373 ddf->primary.crc = calc_crc(&ddf->primary, 512);
2374 ddf->secondary.crc = calc_crc(&ddf->secondary, 512);
2375
2376 sector = size - 16*1024*2;
2377 lseek64(fd, sector<<9, 0);
175593bf
DW
2378 if (write(fd, &ddf->primary, 512) < 0)
2379 continue;
a322f70c
DW
2380
2381 ddf->controller.crc = calc_crc(&ddf->controller, 512);
175593bf
DW
2382 if (write(fd, &ddf->controller, 512) < 0)
2383 continue;
a322f70c
DW
2384
2385 ddf->phys->crc = calc_crc(ddf->phys, ddf->pdsize);
2386
175593bf
DW
2387 if (write(fd, ddf->phys, ddf->pdsize) < 0)
2388 continue;
a322f70c
DW
2389
2390 ddf->virt->crc = calc_crc(ddf->virt, ddf->vdsize);
175593bf
DW
2391 if (write(fd, ddf->virt, ddf->vdsize) < 0)
2392 continue;
a322f70c
DW
2393
2394 /* Now write lots of config records. */
8c3b8c2c
NB
2395 n_config = ddf->max_part;
2396 conf_size = ddf->conf_rec_len * 512;
a322f70c
DW
2397 for (i = 0 ; i <= n_config ; i++) {
2398 struct vcl *c = d->vlist[i];
b2280677
NB
2399 if (i == n_config)
2400 c = (struct vcl*)d->spare;
a322f70c
DW
2401
2402 if (c) {
2403 c->conf.crc = calc_crc(&c->conf, conf_size);
175593bf
DW
2404 if (write(fd, &c->conf, conf_size) < 0)
2405 break;
a322f70c 2406 } else {
f21e18ca 2407 unsigned int togo = conf_size;
42d5dfd9
JS
2408 while (togo > NULL_CONF_SZ) {
2409 if (write(fd, null_aligned, NULL_CONF_SZ) < 0)
175593bf 2410 break;
42d5dfd9 2411 togo -= NULL_CONF_SZ;
18a2f463 2412 }
175593bf
DW
2413 if (write(fd, null_aligned, togo) < 0)
2414 break;
a322f70c
DW
2415 }
2416 }
175593bf
DW
2417 if (i <= n_config)
2418 continue;
a322f70c 2419 d->disk.crc = calc_crc(&d->disk, 512);
175593bf
DW
2420 if (write(fd, &d->disk, 512) < 0)
2421 continue;
a322f70c
DW
2422
2423 /* Maybe do the same for secondary */
2424
2425 lseek64(fd, (size-1)*512, SEEK_SET);
175593bf
DW
2426 if (write(fd, &ddf->anchor, 512) < 0)
2427 continue;
2428 successes++;
2429 }
42d5dfd9 2430 free(null_aligned);
175593bf 2431
175593bf 2432 return attempts != successes;
a322f70c 2433}
7a7cc504
NB
2434
2435static int write_init_super_ddf(struct supertype *st)
2436{
9b1fb677
DW
2437 struct ddf_super *ddf = st->sb;
2438 struct vcl *currentconf = ddf->currentconf;
2439
2440 /* we are done with currentconf reset it to point st at the container */
2441 ddf->currentconf = NULL;
edd8d13c
NB
2442
2443 if (st->update_tail) {
2444 /* queue the virtual_disk and vd_config as metadata updates */
2445 struct virtual_disk *vd;
2446 struct vd_config *vc;
edd8d13c
NB
2447 int len;
2448
9b1fb677 2449 if (!currentconf) {
2cc2983d
N
2450 int len = (sizeof(struct phys_disk) +
2451 sizeof(struct phys_disk_entry));
2452
2453 /* adding a disk to the container. */
2454 if (!ddf->add_list)
2455 return 0;
2456
2457 append_metadata_update(st, ddf->add_list->mdupdate, len);
2458 ddf->add_list->mdupdate = NULL;
2459 return 0;
2460 }
2461
2462 /* Newly created VD */
2463
edd8d13c
NB
2464 /* First the virtual disk. We have a slightly fake header */
2465 len = sizeof(struct virtual_disk) + sizeof(struct virtual_entry);
2466 vd = malloc(len);
2467 *vd = *ddf->virt;
9b1fb677
DW
2468 vd->entries[0] = ddf->virt->entries[currentconf->vcnum];
2469 vd->populated_vdes = __cpu_to_be16(currentconf->vcnum);
edd8d13c
NB
2470 append_metadata_update(st, vd, len);
2471
2472 /* Then the vd_config */
2473 len = ddf->conf_rec_len * 512;
2474 vc = malloc(len);
9b1fb677 2475 memcpy(vc, &currentconf->conf, len);
edd8d13c
NB
2476 append_metadata_update(st, vc, len);
2477
2478 /* FIXME I need to close the fds! */
2479 return 0;
d682f344
N
2480 } else {
2481 struct dl *d;
2482 for (d = ddf->dlist; d; d=d->next)
2483 while (Kill(d->devname, NULL, 0, 1, 1) == 0);
1cc7f4fe 2484 return __write_init_super_ddf(st);
d682f344 2485 }
7a7cc504
NB
2486}
2487
a322f70c
DW
2488#endif
2489
2490static __u64 avail_size_ddf(struct supertype *st, __u64 devsize)
2491{
2492 /* We must reserve the last 32Meg */
2493 if (devsize <= 32*1024*2)
2494 return 0;
2495 return devsize - 32*1024*2;
2496}
2497
2498#ifndef MDASSEMBLE
8592f29d
N
2499
2500static int reserve_space(struct supertype *st, int raiddisks,
2501 unsigned long long size, int chunk,
2502 unsigned long long *freesize)
2503{
2504 /* Find 'raiddisks' spare extents at least 'size' big (but
2505 * only caring about multiples of 'chunk') and remember
2506 * them.
2507 * If the cannot be found, fail.
2508 */
2509 struct dl *dl;
2510 struct ddf_super *ddf = st->sb;
2511 int cnt = 0;
2512
2513 for (dl = ddf->dlist; dl ; dl=dl->next) {
2514 dl->raiddisk = -1;
2515 dl->esize = 0;
2516 }
2517 /* Now find largest extent on each device */
2518 for (dl = ddf->dlist ; dl ; dl=dl->next) {
2519 struct extent *e = get_extents(ddf, dl);
2520 unsigned long long pos = 0;
2521 int i = 0;
2522 int found = 0;
2523 unsigned long long minsize = size;
2524
2525 if (size == 0)
2526 minsize = chunk;
2527
2528 if (!e)
2529 continue;
2530 do {
2531 unsigned long long esize;
2532 esize = e[i].start - pos;
2533 if (esize >= minsize) {
2534 found = 1;
2535 minsize = esize;
2536 }
2537 pos = e[i].start + e[i].size;
2538 i++;
2539 } while (e[i-1].size);
2540 if (found) {
2541 cnt++;
2542 dl->esize = minsize;
2543 }
2544 free(e);
2545 }
2546 if (cnt < raiddisks) {
e7b84f9d 2547 pr_err("not enough devices with space to create array.\n");
8592f29d
N
2548 return 0; /* No enough free spaces large enough */
2549 }
2550 if (size == 0) {
2551 /* choose the largest size of which there are at least 'raiddisk' */
2552 for (dl = ddf->dlist ; dl ; dl=dl->next) {
2553 struct dl *dl2;
2554 if (dl->esize <= size)
2555 continue;
2556 /* This is bigger than 'size', see if there are enough */
2557 cnt = 0;
7b80ad6a 2558 for (dl2 = ddf->dlist; dl2 ; dl2=dl2->next)
8592f29d
N
2559 if (dl2->esize >= dl->esize)
2560 cnt++;
2561 if (cnt >= raiddisks)
2562 size = dl->esize;
2563 }
2564 if (chunk) {
2565 size = size / chunk;
2566 size *= chunk;
2567 }
2568 *freesize = size;
2569 if (size < 32) {
e7b84f9d 2570 pr_err("not enough spare devices to create array.\n");
8592f29d
N
2571 return 0;
2572 }
2573 }
2574 /* We have a 'size' of which there are enough spaces.
2575 * We simply do a first-fit */
2576 cnt = 0;
2577 for (dl = ddf->dlist ; dl && cnt < raiddisks ; dl=dl->next) {
2578 if (dl->esize < size)
2579 continue;
2580
2581 dl->raiddisk = cnt;
2582 cnt++;
2583 }
2584 return 1;
2585}
2586
2587
2588
2c514b71
NB
2589static int
2590validate_geometry_ddf_container(struct supertype *st,
2591 int level, int layout, int raiddisks,
2592 int chunk, unsigned long long size,
2593 char *dev, unsigned long long *freesize,
2594 int verbose);
78e44928
NB
2595
2596static int validate_geometry_ddf_bvd(struct supertype *st,
2597 int level, int layout, int raiddisks,
c21e737b 2598 int *chunk, unsigned long long size,
2c514b71
NB
2599 char *dev, unsigned long long *freesize,
2600 int verbose);
78e44928
NB
2601
2602static int validate_geometry_ddf(struct supertype *st,
2c514b71 2603 int level, int layout, int raiddisks,
c21e737b 2604 int *chunk, unsigned long long size,
2c514b71
NB
2605 char *dev, unsigned long long *freesize,
2606 int verbose)
a322f70c
DW
2607{
2608 int fd;
2609 struct mdinfo *sra;
2610 int cfd;
2611
2612 /* ddf potentially supports lots of things, but it depends on
2613 * what devices are offered (and maybe kernel version?)
2614 * If given unused devices, we will make a container.
2615 * If given devices in a container, we will make a BVD.
2616 * If given BVDs, we make an SVD, changing all the GUIDs in the process.
2617 */
2618
bb7295f1
N
2619 if (chunk && *chunk == UnSet)
2620 *chunk = DEFAULT_CHUNK;
2621
2622
a322f70c 2623 if (level == LEVEL_CONTAINER) {
78e44928
NB
2624 /* Must be a fresh device to add to a container */
2625 return validate_geometry_ddf_container(st, level, layout,
c21e737b 2626 raiddisks, chunk?*chunk:0,
2c514b71
NB
2627 size, dev, freesize,
2628 verbose);
5f8097be
NB
2629 }
2630
78e44928
NB
2631 if (!dev) {
2632 /* Initial sanity check. Exclude illegal levels. */
2633 int i;
2634 for (i=0; ddf_level_num[i].num1 != MAXINT; i++)
2635 if (ddf_level_num[i].num2 == level)
2636 break;
b42f577a
N
2637 if (ddf_level_num[i].num1 == MAXINT) {
2638 if (verbose)
e7b84f9d 2639 pr_err("DDF does not support level %d arrays\n",
b42f577a 2640 level);
78e44928 2641 return 0;
b42f577a 2642 }
78e44928 2643 /* Should check layout? etc */
8592f29d
N
2644
2645 if (st->sb && freesize) {
2646 /* --create was given a container to create in.
2647 * So we need to check that there are enough
2648 * free spaces and return the amount of space.
2649 * We may as well remember which drives were
2650 * chosen so that add_to_super/getinfo_super
2651 * can return them.
2652 */
c21e737b 2653 return reserve_space(st, raiddisks, size, chunk?*chunk:0, freesize);
8592f29d 2654 }
a322f70c 2655 return 1;
78e44928 2656 }
a322f70c 2657
8592f29d
N
2658 if (st->sb) {
2659 /* A container has already been opened, so we are
2660 * creating in there. Maybe a BVD, maybe an SVD.
2661 * Should make a distinction one day.
2662 */
2663 return validate_geometry_ddf_bvd(st, level, layout, raiddisks,
2664 chunk, size, dev, freesize,
2665 verbose);
2666 }
78e44928
NB
2667 /* This is the first device for the array.
2668 * If it is a container, we read it in and do automagic allocations,
2669 * no other devices should be given.
2670 * Otherwise it must be a member device of a container, and we
2671 * do manual allocation.
2672 * Later we should check for a BVD and make an SVD.
a322f70c 2673 */
a322f70c
DW
2674 fd = open(dev, O_RDONLY|O_EXCL, 0);
2675 if (fd >= 0) {
2676 sra = sysfs_read(fd, 0, GET_VERSION);
2677 close(fd);
2678 if (sra && sra->array.major_version == -1 &&
78e44928
NB
2679 strcmp(sra->text_version, "ddf") == 0) {
2680
2681 /* load super */
2682 /* find space for 'n' devices. */
2683 /* remember the devices */
2684 /* Somehow return the fact that we have enough */
a322f70c
DW
2685 }
2686
2c514b71 2687 if (verbose)
e7b84f9d
N
2688 pr_err("ddf: Cannot create this array "
2689 "on device %s - a container is required.\n",
2690 dev);
a322f70c
DW
2691 return 0;
2692 }
2693 if (errno != EBUSY || (fd = open(dev, O_RDONLY, 0)) < 0) {
2c514b71 2694 if (verbose)
e7b84f9d 2695 pr_err("ddf: Cannot open %s: %s\n",
2c514b71 2696 dev, strerror(errno));
a322f70c
DW
2697 return 0;
2698 }
2699 /* Well, it is in use by someone, maybe a 'ddf' container. */
2700 cfd = open_container(fd);
2701 if (cfd < 0) {
2702 close(fd);
2c514b71 2703 if (verbose)
e7b84f9d 2704 pr_err("ddf: Cannot use %s: %s\n",
2c514b71 2705 dev, strerror(EBUSY));
a322f70c
DW
2706 return 0;
2707 }
2708 sra = sysfs_read(cfd, 0, GET_VERSION);
2709 close(fd);
2710 if (sra && sra->array.major_version == -1 &&
2711 strcmp(sra->text_version, "ddf") == 0) {
2712 /* This is a member of a ddf container. Load the container
2713 * and try to create a bvd
2714 */
2715 struct ddf_super *ddf;
e1902a7b 2716 if (load_super_ddf_all(st, cfd, (void **)&ddf, NULL) == 0) {
5f8097be 2717 st->sb = ddf;
2f6079dc 2718 st->container_dev = fd2devnum(cfd);
a322f70c 2719 close(cfd);
78e44928 2720 return validate_geometry_ddf_bvd(st, level, layout,
a322f70c 2721 raiddisks, chunk, size,
2c514b71
NB
2722 dev, freesize,
2723 verbose);
a322f70c
DW
2724 }
2725 close(cfd);
c42ec1ed
DW
2726 } else /* device may belong to a different container */
2727 return 0;
2728
a322f70c
DW
2729 return 1;
2730}
2731
2c514b71
NB
2732static int
2733validate_geometry_ddf_container(struct supertype *st,
2734 int level, int layout, int raiddisks,
2735 int chunk, unsigned long long size,
2736 char *dev, unsigned long long *freesize,
2737 int verbose)
a322f70c
DW
2738{
2739 int fd;
2740 unsigned long long ldsize;
2741
2742 if (level != LEVEL_CONTAINER)
2743 return 0;
2744 if (!dev)
2745 return 1;
2746
2747 fd = open(dev, O_RDONLY|O_EXCL, 0);
2748 if (fd < 0) {
2c514b71 2749 if (verbose)
e7b84f9d 2750 pr_err("ddf: Cannot open %s: %s\n",
2c514b71 2751 dev, strerror(errno));
a322f70c
DW
2752 return 0;
2753 }
2754 if (!get_dev_size(fd, dev, &ldsize)) {
2755 close(fd);
2756 return 0;
2757 }
2758 close(fd);
2759
56aca704 2760 *freesize = avail_size_ddf(st, ldsize >> 9);
ea17e7aa
N
2761 if (*freesize == 0)
2762 return 0;
a322f70c
DW
2763
2764 return 1;
2765}
2766
78e44928
NB
2767static int validate_geometry_ddf_bvd(struct supertype *st,
2768 int level, int layout, int raiddisks,
c21e737b 2769 int *chunk, unsigned long long size,
2c514b71
NB
2770 char *dev, unsigned long long *freesize,
2771 int verbose)
a322f70c
DW
2772{
2773 struct stat stb;
2774 struct ddf_super *ddf = st->sb;
2775 struct dl *dl;
5f8097be
NB
2776 unsigned long long pos = 0;
2777 unsigned long long maxsize;
2778 struct extent *e;
2779 int i;
a322f70c 2780 /* ddf/bvd supports lots of things, but not containers */
b42f577a
N
2781 if (level == LEVEL_CONTAINER) {
2782 if (verbose)
e7b84f9d 2783 pr_err("DDF cannot create a container within an container\n");
a322f70c 2784 return 0;
b42f577a 2785 }
a322f70c
DW
2786 /* We must have the container info already read in. */
2787 if (!ddf)
2788 return 0;
2789
5f8097be
NB
2790 if (!dev) {
2791 /* General test: make sure there is space for
2792 * 'raiddisks' device extents of size 'size'.
2793 */
2794 unsigned long long minsize = size;
2795 int dcnt = 0;
2796 if (minsize == 0)
2797 minsize = 8;
2798 for (dl = ddf->dlist; dl ; dl = dl->next)
2799 {
2800 int found = 0;
7e1432fb 2801 pos = 0;
5f8097be
NB
2802
2803 i = 0;
2804 e = get_extents(ddf, dl);
2805 if (!e) continue;
2806 do {
2807 unsigned long long esize;
2808 esize = e[i].start - pos;
2809 if (esize >= minsize)
2810 found = 1;
2811 pos = e[i].start + e[i].size;
2812 i++;
2813 } while (e[i-1].size);
2814 if (found)
2815 dcnt++;
2816 free(e);
2817 }
2818 if (dcnt < raiddisks) {
2c514b71 2819 if (verbose)
e7b84f9d
N
2820 pr_err("ddf: Not enough devices with "
2821 "space for this array (%d < %d)\n",
2822 dcnt, raiddisks);
5f8097be
NB
2823 return 0;
2824 }
2825 return 1;
2826 }
a322f70c
DW
2827 /* This device must be a member of the set */
2828 if (stat(dev, &stb) < 0)
2829 return 0;
2830 if ((S_IFMT & stb.st_mode) != S_IFBLK)
2831 return 0;
2832 for (dl = ddf->dlist ; dl ; dl = dl->next) {
f21e18ca
N
2833 if (dl->major == (int)major(stb.st_rdev) &&
2834 dl->minor == (int)minor(stb.st_rdev))
a322f70c
DW
2835 break;
2836 }
5f8097be 2837 if (!dl) {
2c514b71 2838 if (verbose)
e7b84f9d 2839 pr_err("ddf: %s is not in the "
2c514b71
NB
2840 "same DDF set\n",
2841 dev);
5f8097be
NB
2842 return 0;
2843 }
2844 e = get_extents(ddf, dl);
2845 maxsize = 0;
2846 i = 0;
2847 if (e) do {
2848 unsigned long long esize;
2849 esize = e[i].start - pos;
2850 if (esize >= maxsize)
2851 maxsize = esize;
2852 pos = e[i].start + e[i].size;
2853 i++;
2854 } while (e[i-1].size);
2855 *freesize = maxsize;
a322f70c
DW
2856 // FIXME here I am
2857
2858 return 1;
2859}
59e36268 2860
a322f70c 2861static int load_super_ddf_all(struct supertype *st, int fd,
e1902a7b 2862 void **sbp, char *devname)
a322f70c
DW
2863{
2864 struct mdinfo *sra;
2865 struct ddf_super *super;
2866 struct mdinfo *sd, *best = NULL;
2867 int bestseq = 0;
2868 int seq;
2869 char nm[20];
2870 int dfd;
2871
b526e52d 2872 sra = sysfs_read(fd, 0, GET_LEVEL|GET_VERSION|GET_DEVS|GET_STATE);
a322f70c
DW
2873 if (!sra)
2874 return 1;
2875 if (sra->array.major_version != -1 ||
2876 sra->array.minor_version != -2 ||
2877 strcmp(sra->text_version, "ddf") != 0)
2878 return 1;
2879
6416d527 2880 if (posix_memalign((void**)&super, 512, sizeof(*super)) != 0)
a322f70c 2881 return 1;
a2349791 2882 memset(super, 0, sizeof(*super));
a322f70c
DW
2883
2884 /* first, try each device, and choose the best ddf */
2885 for (sd = sra->devs ; sd ; sd = sd->next) {
2886 int rv;
2887 sprintf(nm, "%d:%d", sd->disk.major, sd->disk.minor);
7a7cc504
NB
2888 dfd = dev_open(nm, O_RDONLY);
2889 if (dfd < 0)
a322f70c
DW
2890 return 2;
2891 rv = load_ddf_headers(dfd, super, NULL);
7a7cc504 2892 close(dfd);
a322f70c
DW
2893 if (rv == 0) {
2894 seq = __be32_to_cpu(super->active->seq);
2895 if (super->active->openflag)
2896 seq--;
2897 if (!best || seq > bestseq) {
2898 bestseq = seq;
2899 best = sd;
2900 }
2901 }
2902 }
2903 if (!best)
2904 return 1;
2905 /* OK, load this ddf */
2906 sprintf(nm, "%d:%d", best->disk.major, best->disk.minor);
2907 dfd = dev_open(nm, O_RDONLY);
7a7cc504 2908 if (dfd < 0)
a322f70c
DW
2909 return 1;
2910 load_ddf_headers(dfd, super, NULL);
2911 load_ddf_global(dfd, super, NULL);
2912 close(dfd);
2913 /* Now we need the device-local bits */
2914 for (sd = sra->devs ; sd ; sd = sd->next) {
3d2c4fc7
DW
2915 int rv;
2916
a322f70c 2917 sprintf(nm, "%d:%d", sd->disk.major, sd->disk.minor);
e1902a7b 2918 dfd = dev_open(nm, O_RDWR);
7a7cc504 2919 if (dfd < 0)
a322f70c 2920 return 2;
3d2c4fc7
DW
2921 rv = load_ddf_headers(dfd, super, NULL);
2922 if (rv == 0)
e1902a7b 2923 rv = load_ddf_local(dfd, super, NULL, 1);
3d2c4fc7
DW
2924 if (rv)
2925 return 1;
a322f70c 2926 }
33414a01 2927
a322f70c
DW
2928 *sbp = super;
2929 if (st->ss == NULL) {
78e44928 2930 st->ss = &super_ddf;
a322f70c
DW
2931 st->minor_version = 0;
2932 st->max_devs = 512;
2933 }
47c74f3f 2934 st->container_dev = fd2devnum(fd);
a322f70c
DW
2935 return 0;
2936}
2b959fbf
N
2937
2938static int load_container_ddf(struct supertype *st, int fd,
2939 char *devname)
2940{
2941 return load_super_ddf_all(st, fd, &st->sb, devname);
2942}
2943
0e600426 2944#endif /* MDASSEMBLE */
a322f70c 2945
00bbdbda 2946static struct mdinfo *container_content_ddf(struct supertype *st, char *subarray)
598f0d58
NB
2947{
2948 /* Given a container loaded by load_super_ddf_all,
2949 * extract information about all the arrays into
2950 * an mdinfo tree.
2951 *
2952 * For each vcl in conflist: create an mdinfo, fill it in,
2953 * then look for matching devices (phys_refnum) in dlist
2954 * and create appropriate device mdinfo.
2955 */
2956 struct ddf_super *ddf = st->sb;
2957 struct mdinfo *rest = NULL;
2958 struct vcl *vc;
2959
2960 for (vc = ddf->conflist ; vc ; vc=vc->next)
2961 {
f21e18ca
N
2962 unsigned int i;
2963 unsigned int j;
598f0d58 2964 struct mdinfo *this;
00bbdbda 2965 char *ep;
90fa1a29 2966 __u32 *cptr;
00bbdbda
N
2967
2968 if (subarray &&
2969 (strtoul(subarray, &ep, 10) != vc->vcnum ||
2970 *ep != '\0'))
2971 continue;
2972
598f0d58
NB
2973 this = malloc(sizeof(*this));
2974 memset(this, 0, sizeof(*this));
2975 this->next = rest;
2976 rest = this;
2977
598f0d58
NB
2978 this->array.level = map_num1(ddf_level_num, vc->conf.prl);
2979 this->array.raid_disks =
2980 __be16_to_cpu(vc->conf.prim_elmnt_count);
60f18132
NB
2981 this->array.layout = rlq_to_layout(vc->conf.rlq, vc->conf.prl,
2982 this->array.raid_disks);
598f0d58 2983 this->array.md_minor = -1;
f35f2525
N
2984 this->array.major_version = -1;
2985 this->array.minor_version = -2;
90fa1a29
JS
2986 cptr = (__u32 *)(vc->conf.guid + 16);
2987 this->array.ctime = DECADE + __be32_to_cpu(*cptr);
598f0d58
NB
2988 this->array.utime = DECADE +
2989 __be32_to_cpu(vc->conf.timestamp);
2990 this->array.chunk_size = 512 << vc->conf.chunk_shift;
2991
59e36268 2992 i = vc->vcnum;
7a7cc504
NB
2993 if ((ddf->virt->entries[i].state & DDF_state_inconsistent) ||
2994 (ddf->virt->entries[i].init_state & DDF_initstate_mask) !=
ed9d66aa 2995 DDF_init_full) {
598f0d58 2996 this->array.state = 0;
ed9d66aa
NB
2997 this->resync_start = 0;
2998 } else {
598f0d58 2999 this->array.state = 1;
b7528a20 3000 this->resync_start = MaxSector;
ed9d66aa 3001 }
db42fa9b
N
3002 memcpy(this->name, ddf->virt->entries[i].name, 16);
3003 this->name[16]=0;
3004 for(j=0; j<16; j++)
3005 if (this->name[j] == ' ')
3006 this->name[j] = 0;
598f0d58
NB
3007
3008 memset(this->uuid, 0, sizeof(this->uuid));
3009 this->component_size = __be64_to_cpu(vc->conf.blocks);
3010 this->array.size = this->component_size / 2;
5f2aace8 3011 this->container_member = i;
598f0d58 3012
c5afc314
N
3013 ddf->currentconf = vc;
3014 uuid_from_super_ddf(st, this->uuid);
3015 ddf->currentconf = NULL;
3016
60f18132
NB
3017 sprintf(this->text_version, "/%s/%d",
3018 devnum2devname(st->container_dev),
3019 this->container_member);
3020
f21e18ca 3021 for (i = 0 ; i < ddf->mppe ; i++) {
598f0d58
NB
3022 struct mdinfo *dev;
3023 struct dl *d;
fa033bec 3024 int stt;
0cf5ef67 3025 int pd;
598f0d58
NB
3026
3027 if (vc->conf.phys_refnum[i] == 0xFFFFFFFF)
3028 continue;
3029
0cf5ef67
N
3030 for (pd = __be16_to_cpu(ddf->phys->used_pdes);
3031 pd--;)
3032 if (ddf->phys->entries[pd].refnum
3033 == vc->conf.phys_refnum[i])
598f0d58 3034 break;
0cf5ef67 3035 if (pd < 0)
bc17324f 3036 continue;
0cf5ef67
N
3037
3038 stt = __be16_to_cpu(ddf->phys->entries[pd].state);
fa033bec
N
3039 if ((stt & (DDF_Online|DDF_Failed|DDF_Rebuilding))
3040 != DDF_Online)
3041 continue;
3042
3043 this->array.working_disks++;
bc17324f 3044
0cf5ef67
N
3045 for (d = ddf->dlist; d ; d=d->next)
3046 if (d->disk.refnum == vc->conf.phys_refnum[i])
3047 break;
3048 if (d == NULL)
3049 /* Haven't found that one yet, maybe there are others */
3050 continue;
3051
598f0d58
NB
3052 dev = malloc(sizeof(*dev));
3053 memset(dev, 0, sizeof(*dev));
3054 dev->next = this->devs;
3055 this->devs = dev;
3056
3057 dev->disk.number = __be32_to_cpu(d->disk.refnum);
3058 dev->disk.major = d->major;
3059 dev->disk.minor = d->minor;
3060 dev->disk.raid_disk = i;
3061 dev->disk.state = (1<<MD_DISK_SYNC)|(1<<MD_DISK_ACTIVE);
d23534e4 3062 dev->recovery_start = MaxSector;
598f0d58 3063
120f7677
NB
3064 dev->events = __be32_to_cpu(ddf->primary.seq);
3065 dev->data_offset = __be64_to_cpu(vc->lba_offset[i]);
598f0d58
NB
3066 dev->component_size = __be64_to_cpu(vc->conf.blocks);
3067 if (d->devname)
3068 strcpy(dev->name, d->devname);
3069 }
3070 }
3071 return rest;
3072}
3073
955e9ea1 3074static int store_super_ddf(struct supertype *st, int fd)
a322f70c 3075{
955e9ea1 3076 struct ddf_super *ddf = st->sb;
a322f70c 3077 unsigned long long dsize;
6416d527 3078 void *buf;
3d2c4fc7 3079 int rc;
a322f70c 3080
955e9ea1
DW
3081 if (!ddf)
3082 return 1;
3083
3084 /* ->dlist and ->conflist will be set for updates, currently not
3085 * supported
3086 */
3087 if (ddf->dlist || ddf->conflist)
3088 return 1;
3089
a322f70c
DW
3090 if (!get_dev_size(fd, NULL, &dsize))
3091 return 1;
3092
3d2c4fc7
DW
3093 if (posix_memalign(&buf, 512, 512) != 0)
3094 return 1;
6416d527
NB
3095 memset(buf, 0, 512);
3096
a322f70c 3097 lseek64(fd, dsize-512, 0);
3d2c4fc7 3098 rc = write(fd, buf, 512);
6416d527 3099 free(buf);
3d2c4fc7
DW
3100 if (rc < 0)
3101 return 1;
a322f70c
DW
3102 return 0;
3103}
3104
a19c88b8
NB
3105static int compare_super_ddf(struct supertype *st, struct supertype *tst)
3106{
3107 /*
3108 * return:
3109 * 0 same, or first was empty, and second was copied
3110 * 1 second had wrong number
3111 * 2 wrong uuid
3112 * 3 wrong other info
3113 */
3114 struct ddf_super *first = st->sb;
3115 struct ddf_super *second = tst->sb;
3116
3117 if (!first) {
3118 st->sb = tst->sb;
3119 tst->sb = NULL;
3120 return 0;
3121 }
3122
3123 if (memcmp(first->anchor.guid, second->anchor.guid, DDF_GUID_LEN) != 0)
3124 return 2;
3125
3126 /* FIXME should I look at anything else? */
3127 return 0;
3128}
3129
0e600426 3130#ifndef MDASSEMBLE
4e5528c6
NB
3131/*
3132 * A new array 'a' has been started which claims to be instance 'inst'
3133 * within container 'c'.
3134 * We need to confirm that the array matches the metadata in 'c' so
3135 * that we don't corrupt any metadata.
3136 */
cba0191b 3137static int ddf_open_new(struct supertype *c, struct active_array *a, char *inst)
549e9569 3138{
2c514b71 3139 dprintf("ddf: open_new %s\n", inst);
cba0191b 3140 a->info.container_member = atoi(inst);
549e9569
NB
3141 return 0;
3142}
3143
4e5528c6
NB
3144/*
3145 * The array 'a' is to be marked clean in the metadata.
ed9d66aa 3146 * If '->resync_start' is not ~(unsigned long long)0, then the array is only
4e5528c6
NB
3147 * clean up to the point (in sectors). If that cannot be recorded in the
3148 * metadata, then leave it as dirty.
3149 *
3150 * For DDF, we need to clear the DDF_state_inconsistent bit in the
3151 * !global! virtual_disk.virtual_entry structure.
3152 */
01f157d7 3153static int ddf_set_array_state(struct active_array *a, int consistent)
549e9569 3154{
4e5528c6
NB
3155 struct ddf_super *ddf = a->container->sb;
3156 int inst = a->info.container_member;
18a2f463 3157 int old = ddf->virt->entries[inst].state;
01f157d7
N
3158 if (consistent == 2) {
3159 /* Should check if a recovery should be started FIXME */
3160 consistent = 1;
b7941fd6 3161 if (!is_resync_complete(&a->info))
01f157d7
N
3162 consistent = 0;
3163 }
ed9d66aa
NB
3164 if (consistent)
3165 ddf->virt->entries[inst].state &= ~DDF_state_inconsistent;
3166 else
4e5528c6 3167 ddf->virt->entries[inst].state |= DDF_state_inconsistent;
18a2f463
NB
3168 if (old != ddf->virt->entries[inst].state)
3169 ddf->updates_pending = 1;
3170
3171 old = ddf->virt->entries[inst].init_state;
ed9d66aa 3172 ddf->virt->entries[inst].init_state &= ~DDF_initstate_mask;
b7941fd6 3173 if (is_resync_complete(&a->info))
ed9d66aa 3174 ddf->virt->entries[inst].init_state |= DDF_init_full;
b7941fd6 3175 else if (a->info.resync_start == 0)
ed9d66aa 3176 ddf->virt->entries[inst].init_state |= DDF_init_not;
4e5528c6 3177 else
ed9d66aa 3178 ddf->virt->entries[inst].init_state |= DDF_init_quick;
18a2f463
NB
3179 if (old != ddf->virt->entries[inst].init_state)
3180 ddf->updates_pending = 1;
ed9d66aa 3181
2c514b71 3182 dprintf("ddf mark %d %s %llu\n", inst, consistent?"clean":"dirty",
b7941fd6 3183 a->info.resync_start);
01f157d7 3184 return consistent;
fd7cde1b
DW
3185}
3186
e1316fab
N
3187#define container_of(ptr, type, member) ({ \
3188 const typeof( ((type *)0)->member ) *__mptr = (ptr); \
3189 (type *)( (char *)__mptr - offsetof(type,member) );})
7a7cc504
NB
3190/*
3191 * The state of each disk is stored in the global phys_disk structure
3192 * in phys_disk.entries[n].state.
3193 * This makes various combinations awkward.
3194 * - When a device fails in any array, it must be failed in all arrays
3195 * that include a part of this device.
3196 * - When a component is rebuilding, we cannot include it officially in the
3197 * array unless this is the only array that uses the device.
3198 *
3199 * So: when transitioning:
3200 * Online -> failed, just set failed flag. monitor will propagate
3201 * spare -> online, the device might need to be added to the array.
3202 * spare -> failed, just set failed. Don't worry if in array or not.
3203 */
8d45d196 3204static void ddf_set_disk(struct active_array *a, int n, int state)
549e9569 3205{
7a7cc504 3206 struct ddf_super *ddf = a->container->sb;
f21e18ca 3207 unsigned int inst = a->info.container_member;
7a7cc504
NB
3208 struct vd_config *vc = find_vdcr(ddf, inst);
3209 int pd = find_phys(ddf, vc->phys_refnum[n]);
3210 int i, st, working;
e1316fab
N
3211 struct mdinfo *mdi;
3212 struct dl *dl;
7a7cc504
NB
3213
3214 if (vc == NULL) {
2c514b71 3215 dprintf("ddf: cannot find instance %d!!\n", inst);
7a7cc504
NB
3216 return;
3217 }
e1316fab
N
3218 /* Find the matching slot in 'info'. */
3219 for (mdi = a->info.devs; mdi; mdi = mdi->next)
3220 if (mdi->disk.raid_disk == n)
3221 break;
3222 if (!mdi)
3223 return;
3224
3225 /* and find the 'dl' entry corresponding to that. */
3226 for (dl = ddf->dlist; dl; dl = dl->next)
77632af9
N
3227 if (mdi->state_fd >= 0 &&
3228 mdi->disk.major == dl->major &&
e1316fab
N
3229 mdi->disk.minor == dl->minor)
3230 break;
3231 if (!dl)
3232 return;
3233
3234 if (pd < 0 || pd != dl->pdnum) {
3235 /* disk doesn't currently exist or has changed.
3236 * If it is now in_sync, insert it. */
7a7cc504 3237 if ((state & DS_INSYNC) && ! (state & DS_FAULTY)) {
e1316fab
N
3238 struct vcl *vcl;
3239 pd = dl->pdnum;
3240 vc->phys_refnum[n] = dl->disk.refnum;
3241 vcl = container_of(vc, struct vcl, conf);
3242 vcl->lba_offset[n] = mdi->data_offset;
3243 ddf->phys->entries[pd].type &=
3244 ~__cpu_to_be16(DDF_Global_Spare);
3245 ddf->phys->entries[pd].type |=
3246 __cpu_to_be16(DDF_Active_in_VD);
3247 ddf->updates_pending = 1;
7a7cc504
NB
3248 }
3249 } else {
18a2f463 3250 int old = ddf->phys->entries[pd].state;
7a7cc504
NB
3251 if (state & DS_FAULTY)
3252 ddf->phys->entries[pd].state |= __cpu_to_be16(DDF_Failed);
3253 if (state & DS_INSYNC) {
3254 ddf->phys->entries[pd].state |= __cpu_to_be16(DDF_Online);
3255 ddf->phys->entries[pd].state &= __cpu_to_be16(~DDF_Rebuilding);
3256 }
18a2f463
NB
3257 if (old != ddf->phys->entries[pd].state)
3258 ddf->updates_pending = 1;
7a7cc504
NB
3259 }
3260
2c514b71 3261 dprintf("ddf: set_disk %d to %x\n", n, state);
7e1432fb 3262
7a7cc504
NB
3263 /* Now we need to check the state of the array and update
3264 * virtual_disk.entries[n].state.
3265 * It needs to be one of "optimal", "degraded", "failed".
3266 * I don't understand 'deleted' or 'missing'.
3267 */
3268 working = 0;
3269 for (i=0; i < a->info.array.raid_disks; i++) {
3270 pd = find_phys(ddf, vc->phys_refnum[i]);
3271 if (pd < 0)
3272 continue;
57632f4a
NB
3273 st = __be16_to_cpu(ddf->phys->entries[pd].state);
3274 if ((st & (DDF_Online|DDF_Failed|DDF_Rebuilding))
7a7cc504
NB
3275 == DDF_Online)
3276 working++;
3277 }
3278 state = DDF_state_degraded;
3279 if (working == a->info.array.raid_disks)
3280 state = DDF_state_optimal;
3281 else switch(vc->prl) {
3282 case DDF_RAID0:
3283 case DDF_CONCAT:
3284 case DDF_JBOD:
3285 state = DDF_state_failed;
3286 break;
3287 case DDF_RAID1:
3288 if (working == 0)
3289 state = DDF_state_failed;
33b0edd7
N
3290 else if (working == 2 && state == DDF_state_degraded)
3291 state = DDF_state_part_optimal;
7a7cc504
NB
3292 break;
3293 case DDF_RAID4:
3294 case DDF_RAID5:
3295 if (working < a->info.array.raid_disks-1)
3296 state = DDF_state_failed;
3297 break;
3298 case DDF_RAID6:
3299 if (working < a->info.array.raid_disks-2)
3300 state = DDF_state_failed;
3301 else if (working == a->info.array.raid_disks-1)
3302 state = DDF_state_part_optimal;
3303 break;
3304 }
3305
18a2f463
NB
3306 if (ddf->virt->entries[inst].state !=
3307 ((ddf->virt->entries[inst].state & ~DDF_state_mask)
3308 | state)) {
3309
3310 ddf->virt->entries[inst].state =
3311 (ddf->virt->entries[inst].state & ~DDF_state_mask)
3312 | state;
3313 ddf->updates_pending = 1;
3314 }
7a7cc504 3315
549e9569
NB
3316}
3317
2e735d19 3318static void ddf_sync_metadata(struct supertype *st)
549e9569 3319{
7a7cc504
NB
3320
3321 /*
3322 * Write all data to all devices.
3323 * Later, we might be able to track whether only local changes
3324 * have been made, or whether any global data has been changed,
3325 * but ddf is sufficiently weird that it probably always
3326 * changes global data ....
3327 */
18a2f463
NB
3328 struct ddf_super *ddf = st->sb;
3329 if (!ddf->updates_pending)
3330 return;
3331 ddf->updates_pending = 0;
1cc7f4fe 3332 __write_init_super_ddf(st);
2c514b71 3333 dprintf("ddf: sync_metadata\n");
549e9569
NB
3334}
3335
88c164f4
NB
3336static void ddf_process_update(struct supertype *st,
3337 struct metadata_update *update)
3338{
3339 /* Apply this update to the metadata.
3340 * The first 4 bytes are a DDF_*_MAGIC which guides
3341 * our actions.
3342 * Possible update are:
3343 * DDF_PHYS_RECORDS_MAGIC
4dd968cc
N
3344 * Add a new physical device or remove an old one.
3345 * Changes to this record only happen implicitly.
88c164f4
NB
3346 * used_pdes is the device number.
3347 * DDF_VIRT_RECORDS_MAGIC
3348 * Add a new VD. Possibly also change the 'access' bits.
3349 * populated_vdes is the entry number.
3350 * DDF_VD_CONF_MAGIC
3351 * New or updated VD. the VIRT_RECORD must already
3352 * exist. For an update, phys_refnum and lba_offset
3353 * (at least) are updated, and the VD_CONF must
3354 * be written to precisely those devices listed with
3355 * a phys_refnum.
3356 * DDF_SPARE_ASSIGN_MAGIC
3357 * replacement Spare Assignment Record... but for which device?
3358 *
3359 * So, e.g.:
3360 * - to create a new array, we send a VIRT_RECORD and
3361 * a VD_CONF. Then assemble and start the array.
3362 * - to activate a spare we send a VD_CONF to add the phys_refnum
3363 * and offset. This will also mark the spare as active with
3364 * a spare-assignment record.
3365 */
3366 struct ddf_super *ddf = st->sb;
3367 __u32 *magic = (__u32*)update->buf;
3368 struct phys_disk *pd;
3369 struct virtual_disk *vd;
3370 struct vd_config *vc;
3371 struct vcl *vcl;
3372 struct dl *dl;
f21e18ca
N
3373 unsigned int mppe;
3374 unsigned int ent;
c7079c84 3375 unsigned int pdnum, pd2;
88c164f4 3376
2c514b71 3377 dprintf("Process update %x\n", *magic);
7e1432fb 3378
88c164f4
NB
3379 switch (*magic) {
3380 case DDF_PHYS_RECORDS_MAGIC:
3381
3382 if (update->len != (sizeof(struct phys_disk) +
3383 sizeof(struct phys_disk_entry)))
3384 return;
3385 pd = (struct phys_disk*)update->buf;
3386
3387 ent = __be16_to_cpu(pd->used_pdes);
3388 if (ent >= __be16_to_cpu(ddf->phys->max_pdes))
3389 return;
4dd968cc
N
3390 if (pd->entries[0].state & __cpu_to_be16(DDF_Missing)) {
3391 struct dl **dlp;
3392 /* removing this disk. */
3393 ddf->phys->entries[ent].state |= __cpu_to_be16(DDF_Missing);
3394 for (dlp = &ddf->dlist; *dlp; dlp = &(*dlp)->next) {
3395 struct dl *dl = *dlp;
3396 if (dl->pdnum == (signed)ent) {
3397 close(dl->fd);
3398 dl->fd = -1;
3399 /* FIXME this doesn't free
3400 * dl->devname */
3401 update->space = dl;
3402 *dlp = dl->next;
3403 break;
3404 }
3405 }
3406 ddf->updates_pending = 1;
3407 return;
3408 }
88c164f4
NB
3409 if (!all_ff(ddf->phys->entries[ent].guid))
3410 return;
3411 ddf->phys->entries[ent] = pd->entries[0];
3412 ddf->phys->used_pdes = __cpu_to_be16(1 +
3413 __be16_to_cpu(ddf->phys->used_pdes));
18a2f463 3414 ddf->updates_pending = 1;
2cc2983d
N
3415 if (ddf->add_list) {
3416 struct active_array *a;
3417 struct dl *al = ddf->add_list;
3418 ddf->add_list = al->next;
3419
3420 al->next = ddf->dlist;
3421 ddf->dlist = al;
3422
3423 /* As a device has been added, we should check
3424 * for any degraded devices that might make
3425 * use of this spare */
3426 for (a = st->arrays ; a; a=a->next)
3427 a->check_degraded = 1;
3428 }
88c164f4
NB
3429 break;
3430
3431 case DDF_VIRT_RECORDS_MAGIC:
3432
3433 if (update->len != (sizeof(struct virtual_disk) +
3434 sizeof(struct virtual_entry)))
3435 return;
3436 vd = (struct virtual_disk*)update->buf;
3437
3438 ent = __be16_to_cpu(vd->populated_vdes);
3439 if (ent >= __be16_to_cpu(ddf->virt->max_vdes))
3440 return;
3441 if (!all_ff(ddf->virt->entries[ent].guid))
3442 return;
3443 ddf->virt->entries[ent] = vd->entries[0];
3444 ddf->virt->populated_vdes = __cpu_to_be16(1 +
3445 __be16_to_cpu(ddf->virt->populated_vdes));
18a2f463 3446 ddf->updates_pending = 1;
88c164f4
NB
3447 break;
3448
3449 case DDF_VD_CONF_MAGIC:
2c514b71 3450 dprintf("len %d %d\n", update->len, ddf->conf_rec_len);
88c164f4
NB
3451
3452 mppe = __be16_to_cpu(ddf->anchor.max_primary_element_entries);
f21e18ca 3453 if ((unsigned)update->len != ddf->conf_rec_len * 512)
88c164f4
NB
3454 return;
3455 vc = (struct vd_config*)update->buf;
3456 for (vcl = ddf->conflist; vcl ; vcl = vcl->next)
3457 if (memcmp(vcl->conf.guid, vc->guid, DDF_GUID_LEN) == 0)
3458 break;
2c514b71 3459 dprintf("vcl = %p\n", vcl);
88c164f4
NB
3460 if (vcl) {
3461 /* An update, just copy the phys_refnum and lba_offset
3462 * fields
3463 */
3464 memcpy(vcl->conf.phys_refnum, vc->phys_refnum,
3465 mppe * (sizeof(__u32) + sizeof(__u64)));
3466 } else {
3467 /* A new VD_CONF */
e6b9548d
DW
3468 if (!update->space)
3469 return;
88c164f4
NB
3470 vcl = update->space;
3471 update->space = NULL;
3472 vcl->next = ddf->conflist;
edd8d13c 3473 memcpy(&vcl->conf, vc, update->len);
88c164f4
NB
3474 vcl->lba_offset = (__u64*)
3475 &vcl->conf.phys_refnum[mppe];
1502a43a
N
3476 for (ent = 0;
3477 ent < __be16_to_cpu(ddf->virt->populated_vdes);
3478 ent++)
3479 if (memcmp(vc->guid, ddf->virt->entries[ent].guid,
3480 DDF_GUID_LEN) == 0) {
3481 vcl->vcnum = ent;
3482 break;
3483 }
88c164f4
NB
3484 ddf->conflist = vcl;
3485 }
c7079c84
N
3486 /* Set DDF_Transition on all Failed devices - to help
3487 * us detect those that are no longer in use
3488 */
3489 for (pdnum = 0; pdnum < __be16_to_cpu(ddf->phys->used_pdes); pdnum++)
3490 if (ddf->phys->entries[pdnum].state
3491 & __be16_to_cpu(DDF_Failed))
3492 ddf->phys->entries[pdnum].state
3493 |= __be16_to_cpu(DDF_Transition);
88c164f4
NB
3494 /* Now make sure vlist is correct for each dl. */
3495 for (dl = ddf->dlist; dl; dl = dl->next) {
f21e18ca
N
3496 unsigned int dn;
3497 unsigned int vn = 0;
8401644c 3498 int in_degraded = 0;
88c164f4
NB
3499 for (vcl = ddf->conflist; vcl ; vcl = vcl->next)
3500 for (dn=0; dn < ddf->mppe ; dn++)
3501 if (vcl->conf.phys_refnum[dn] ==
3502 dl->disk.refnum) {
8401644c 3503 int vstate;
2c514b71
NB
3504 dprintf("dev %d has %p at %d\n",
3505 dl->pdnum, vcl, vn);
c7079c84
N
3506 /* Clear the Transition flag */
3507 if (ddf->phys->entries[dl->pdnum].state
3508 & __be16_to_cpu(DDF_Failed))
3509 ddf->phys->entries[dl->pdnum].state &=
3510 ~__be16_to_cpu(DDF_Transition);
3511
88c164f4 3512 dl->vlist[vn++] = vcl;
8401644c
N
3513 vstate = ddf->virt->entries[vcl->vcnum].state
3514 & DDF_state_mask;
3515 if (vstate == DDF_state_degraded ||
3516 vstate == DDF_state_part_optimal)
3517 in_degraded = 1;
88c164f4
NB
3518 break;
3519 }
3520 while (vn < ddf->max_part)
3521 dl->vlist[vn++] = NULL;
7e1432fb
NB
3522 if (dl->vlist[0]) {
3523 ddf->phys->entries[dl->pdnum].type &=
3524 ~__cpu_to_be16(DDF_Global_Spare);
8401644c
N
3525 if (!(ddf->phys->entries[dl->pdnum].type &
3526 __cpu_to_be16(DDF_Active_in_VD))) {
3527 ddf->phys->entries[dl->pdnum].type |=
3528 __cpu_to_be16(DDF_Active_in_VD);
3529 if (in_degraded)
3530 ddf->phys->entries[dl->pdnum].state |=
3531 __cpu_to_be16(DDF_Rebuilding);
3532 }
7e1432fb
NB
3533 }
3534 if (dl->spare) {
3535 ddf->phys->entries[dl->pdnum].type &=
3536 ~__cpu_to_be16(DDF_Global_Spare);
3537 ddf->phys->entries[dl->pdnum].type |=
3538 __cpu_to_be16(DDF_Spare);
3539 }
3540 if (!dl->vlist[0] && !dl->spare) {
3541 ddf->phys->entries[dl->pdnum].type |=
3542 __cpu_to_be16(DDF_Global_Spare);
3543 ddf->phys->entries[dl->pdnum].type &=
3544 ~__cpu_to_be16(DDF_Spare |
3545 DDF_Active_in_VD);
3546 }
88c164f4 3547 }
c7079c84
N
3548
3549 /* Now remove any 'Failed' devices that are not part
3550 * of any VD. They will have the Transition flag set.
3551 * Once done, we need to update all dl->pdnum numbers.
3552 */
3553 pd2 = 0;
3554 for (pdnum = 0; pdnum < __be16_to_cpu(ddf->phys->used_pdes); pdnum++)
3555 if ((ddf->phys->entries[pdnum].state
3556 & __be16_to_cpu(DDF_Failed))
3557 && (ddf->phys->entries[pdnum].state
3558 & __be16_to_cpu(DDF_Transition)))
3559 /* skip this one */;
3560 else if (pdnum == pd2)
3561 pd2++;
3562 else {
3563 ddf->phys->entries[pd2] = ddf->phys->entries[pdnum];
3564 for (dl = ddf->dlist; dl; dl = dl->next)
3565 if (dl->pdnum == (int)pdnum)
3566 dl->pdnum = pd2;
3567 pd2++;
3568 }
3569 ddf->phys->used_pdes = __cpu_to_be16(pd2);
3570 while (pd2 < pdnum) {
3571 memset(ddf->phys->entries[pd2].guid, 0xff, DDF_GUID_LEN);
3572 pd2++;
3573 }
3574
18a2f463 3575 ddf->updates_pending = 1;
88c164f4
NB
3576 break;
3577 case DDF_SPARE_ASSIGN_MAGIC:
3578 default: break;
3579 }
3580}
3581
edd8d13c
NB
3582static void ddf_prepare_update(struct supertype *st,
3583 struct metadata_update *update)
3584{
3585 /* This update arrived at managemon.
3586 * We are about to pass it to monitor.
3587 * If a malloc is needed, do it here.
3588 */
3589 struct ddf_super *ddf = st->sb;
3590 __u32 *magic = (__u32*)update->buf;
3591 if (*magic == DDF_VD_CONF_MAGIC)
e6b9548d 3592 if (posix_memalign(&update->space, 512,
6416d527 3593 offsetof(struct vcl, conf)
e6b9548d
DW
3594 + ddf->conf_rec_len * 512) != 0)
3595 update->space = NULL;
edd8d13c
NB
3596}
3597
7e1432fb
NB
3598/*
3599 * Check if the array 'a' is degraded but not failed.
3600 * If it is, find as many spares as are available and needed and
3601 * arrange for their inclusion.
3602 * We only choose devices which are not already in the array,
3603 * and prefer those with a spare-assignment to this array.
3604 * otherwise we choose global spares - assuming always that
3605 * there is enough room.
3606 * For each spare that we assign, we return an 'mdinfo' which
3607 * describes the position for the device in the array.
3608 * We also add to 'updates' a DDF_VD_CONF_MAGIC update with
3609 * the new phys_refnum and lba_offset values.
3610 *
3611 * Only worry about BVDs at the moment.
3612 */
3613static struct mdinfo *ddf_activate_spare(struct active_array *a,
3614 struct metadata_update **updates)
3615{
3616 int working = 0;
3617 struct mdinfo *d;
3618 struct ddf_super *ddf = a->container->sb;
3619 int global_ok = 0;
3620 struct mdinfo *rv = NULL;
3621 struct mdinfo *di;
3622 struct metadata_update *mu;
3623 struct dl *dl;
3624 int i;
3625 struct vd_config *vc;
3626 __u64 *lba;
3627
7e1432fb
NB
3628 for (d = a->info.devs ; d ; d = d->next) {
3629 if ((d->curr_state & DS_FAULTY) &&
3630 d->state_fd >= 0)
3631 /* wait for Removal to happen */
3632 return NULL;
3633 if (d->state_fd >= 0)
3634 working ++;
3635 }
3636
2c514b71
NB
3637 dprintf("ddf_activate: working=%d (%d) level=%d\n", working, a->info.array.raid_disks,
3638 a->info.array.level);
7e1432fb
NB
3639 if (working == a->info.array.raid_disks)
3640 return NULL; /* array not degraded */
3641 switch (a->info.array.level) {
3642 case 1:
3643 if (working == 0)
3644 return NULL; /* failed */
3645 break;
3646 case 4:
3647 case 5:
3648 if (working < a->info.array.raid_disks - 1)
3649 return NULL; /* failed */
3650 break;
3651 case 6:
3652 if (working < a->info.array.raid_disks - 2)
3653 return NULL; /* failed */
3654 break;
3655 default: /* concat or stripe */
3656 return NULL; /* failed */
3657 }
3658
3659 /* For each slot, if it is not working, find a spare */
3660 dl = ddf->dlist;
3661 for (i = 0; i < a->info.array.raid_disks; i++) {
3662 for (d = a->info.devs ; d ; d = d->next)
3663 if (d->disk.raid_disk == i)
3664 break;
2c514b71 3665 dprintf("found %d: %p %x\n", i, d, d?d->curr_state:0);
7e1432fb
NB
3666 if (d && (d->state_fd >= 0))
3667 continue;
3668
3669 /* OK, this device needs recovery. Find a spare */
3670 again:
3671 for ( ; dl ; dl = dl->next) {
3672 unsigned long long esize;
3673 unsigned long long pos;
3674 struct mdinfo *d2;
3675 int is_global = 0;
3676 int is_dedicated = 0;
3677 struct extent *ex;
f21e18ca 3678 unsigned int j;
7e1432fb
NB
3679 /* If in this array, skip */
3680 for (d2 = a->info.devs ; d2 ; d2 = d2->next)
7590d562
N
3681 if (d2->state_fd >= 0 &&
3682 d2->disk.major == dl->major &&
7e1432fb 3683 d2->disk.minor == dl->minor) {
2c514b71 3684 dprintf("%x:%x already in array\n", dl->major, dl->minor);
7e1432fb
NB
3685 break;
3686 }
3687 if (d2)
3688 continue;
3689 if (ddf->phys->entries[dl->pdnum].type &
3690 __cpu_to_be16(DDF_Spare)) {
3691 /* Check spare assign record */
3692 if (dl->spare) {
3693 if (dl->spare->type & DDF_spare_dedicated) {
3694 /* check spare_ents for guid */
3695 for (j = 0 ;
3696 j < __be16_to_cpu(dl->spare->populated);
3697 j++) {
3698 if (memcmp(dl->spare->spare_ents[j].guid,
3699 ddf->virt->entries[a->info.container_member].guid,
3700 DDF_GUID_LEN) == 0)
3701 is_dedicated = 1;
3702 }
3703 } else
3704 is_global = 1;
3705 }
3706 } else if (ddf->phys->entries[dl->pdnum].type &
3707 __cpu_to_be16(DDF_Global_Spare)) {
3708 is_global = 1;
3709 }
3710 if ( ! (is_dedicated ||
3711 (is_global && global_ok))) {
2c514b71 3712 dprintf("%x:%x not suitable: %d %d\n", dl->major, dl->minor,
7e1432fb
NB
3713 is_dedicated, is_global);
3714 continue;
3715 }
3716
3717 /* We are allowed to use this device - is there space?
3718 * We need a->info.component_size sectors */
3719 ex = get_extents(ddf, dl);
3720 if (!ex) {
2c514b71 3721 dprintf("cannot get extents\n");
7e1432fb
NB
3722 continue;
3723 }
3724 j = 0; pos = 0;
3725 esize = 0;
3726
3727 do {
3728 esize = ex[j].start - pos;
3729 if (esize >= a->info.component_size)
3730 break;
e5cc7d46
N
3731 pos = ex[j].start + ex[j].size;
3732 j++;
3733 } while (ex[j-1].size);
7e1432fb
NB
3734
3735 free(ex);
3736 if (esize < a->info.component_size) {
e5cc7d46
N
3737 dprintf("%x:%x has no room: %llu %llu\n",
3738 dl->major, dl->minor,
2c514b71 3739 esize, a->info.component_size);
7e1432fb
NB
3740 /* No room */
3741 continue;
3742 }
3743
3744 /* Cool, we have a device with some space at pos */
3745 di = malloc(sizeof(*di));
79244939
DW
3746 if (!di)
3747 continue;
7e1432fb
NB
3748 memset(di, 0, sizeof(*di));
3749 di->disk.number = i;
3750 di->disk.raid_disk = i;
3751 di->disk.major = dl->major;
3752 di->disk.minor = dl->minor;
3753 di->disk.state = 0;
d23534e4 3754 di->recovery_start = 0;
7e1432fb
NB
3755 di->data_offset = pos;
3756 di->component_size = a->info.component_size;
3757 di->container_member = dl->pdnum;
3758 di->next = rv;
3759 rv = di;
2c514b71
NB
3760 dprintf("%x:%x to be %d at %llu\n", dl->major, dl->minor,
3761 i, pos);
7e1432fb
NB
3762
3763 break;
3764 }
3765 if (!dl && ! global_ok) {
3766 /* not enough dedicated spares, try global */
3767 global_ok = 1;
3768 dl = ddf->dlist;
3769 goto again;
3770 }
3771 }
3772
3773 if (!rv)
3774 /* No spares found */
3775 return rv;
3776 /* Now 'rv' has a list of devices to return.
3777 * Create a metadata_update record to update the
3778 * phys_refnum and lba_offset values
3779 */
904c1ef7 3780 mu = malloc(sizeof(*mu));
79244939
DW
3781 if (mu && posix_memalign(&mu->space, 512, sizeof(struct vcl)) != 0) {
3782 free(mu);
3783 mu = NULL;
3784 }
3785 if (!mu) {
3786 while (rv) {
3787 struct mdinfo *n = rv->next;
3788
3789 free(rv);
3790 rv = n;
3791 }
3792 return NULL;
3793 }
3794
904c1ef7 3795 mu->buf = malloc(ddf->conf_rec_len * 512);
7590d562
N
3796 mu->len = ddf->conf_rec_len * 512;
3797 mu->space = NULL;
f50ae22e 3798 mu->space_list = NULL;
7e1432fb
NB
3799 mu->next = *updates;
3800 vc = find_vdcr(ddf, a->info.container_member);
3801 memcpy(mu->buf, vc, ddf->conf_rec_len * 512);
3802
3803 vc = (struct vd_config*)mu->buf;
3804 lba = (__u64*)&vc->phys_refnum[ddf->mppe];
3805 for (di = rv ; di ; di = di->next) {
3806 vc->phys_refnum[di->disk.raid_disk] =
3807 ddf->phys->entries[dl->pdnum].refnum;
3808 lba[di->disk.raid_disk] = di->data_offset;
3809 }
3810 *updates = mu;
3811 return rv;
3812}
0e600426 3813#endif /* MDASSEMBLE */
7e1432fb 3814
b640a252
N
3815static int ddf_level_to_layout(int level)
3816{
3817 switch(level) {
3818 case 0:
3819 case 1:
3820 return 0;
3821 case 5:
3822 return ALGORITHM_LEFT_SYMMETRIC;
3823 case 6:
3824 return ALGORITHM_ROTATING_N_CONTINUE;
3825 case 10:
3826 return 0x102;
3827 default:
3828 return UnSet;
3829 }
3830}
3831
30f58b22
DW
3832static void default_geometry_ddf(struct supertype *st, int *level, int *layout, int *chunk)
3833{
3834 if (level && *level == UnSet)
3835 *level = LEVEL_CONTAINER;
3836
3837 if (level && layout && *layout == UnSet)
3838 *layout = ddf_level_to_layout(*level);
3839}
3840
a322f70c
DW
3841struct superswitch super_ddf = {
3842#ifndef MDASSEMBLE
3843 .examine_super = examine_super_ddf,
3844 .brief_examine_super = brief_examine_super_ddf,
4737ae25 3845 .brief_examine_subarrays = brief_examine_subarrays_ddf,
bceedeec 3846 .export_examine_super = export_examine_super_ddf,
a322f70c
DW
3847 .detail_super = detail_super_ddf,
3848 .brief_detail_super = brief_detail_super_ddf,
3849 .validate_geometry = validate_geometry_ddf,
78e44928 3850 .write_init_super = write_init_super_ddf,
0e600426 3851 .add_to_super = add_to_super_ddf,
4dd968cc 3852 .remove_from_super = remove_from_super_ddf,
2b959fbf 3853 .load_container = load_container_ddf,
a322f70c
DW
3854#endif
3855 .match_home = match_home_ddf,
3856 .uuid_from_super= uuid_from_super_ddf,
3857 .getinfo_super = getinfo_super_ddf,
3858 .update_super = update_super_ddf,
3859
3860 .avail_size = avail_size_ddf,
3861
a19c88b8
NB
3862 .compare_super = compare_super_ddf,
3863
a322f70c 3864 .load_super = load_super_ddf,
ba7eb04f 3865 .init_super = init_super_ddf,
955e9ea1 3866 .store_super = store_super_ddf,
a322f70c
DW
3867 .free_super = free_super_ddf,
3868 .match_metadata_desc = match_metadata_desc_ddf,
78e44928 3869 .container_content = container_content_ddf,
30f58b22 3870 .default_geometry = default_geometry_ddf,
a322f70c 3871
a322f70c 3872 .external = 1,
549e9569 3873
0e600426 3874#ifndef MDASSEMBLE
549e9569
NB
3875/* for mdmon */
3876 .open_new = ddf_open_new,
ed9d66aa 3877 .set_array_state= ddf_set_array_state,
549e9569
NB
3878 .set_disk = ddf_set_disk,
3879 .sync_metadata = ddf_sync_metadata,
88c164f4 3880 .process_update = ddf_process_update,
edd8d13c 3881 .prepare_update = ddf_prepare_update,
7e1432fb 3882 .activate_spare = ddf_activate_spare,
0e600426 3883#endif
4cce4069 3884 .name = "ddf",
a322f70c 3885};