Replace <asm/uaccess.h> with <linux/uaccess.h> globally
[linux-2.6-block.git] / arch / powerpc / kernel / nvram_64.c
CommitLineData
1da177e4
LT
1/*
2 * c 2001 PPC 64 Team, IBM Corp
3 *
4 * This program is free software; you can redistribute it and/or
5 * modify it under the terms of the GNU General Public License
6 * as published by the Free Software Foundation; either version
7 * 2 of the License, or (at your option) any later version.
8 *
9 * /dev/nvram driver for PPC64
10 *
11 * This perhaps should live in drivers/char
12 *
13 * TODO: Split the /dev/nvram part (that one can use
14 * drivers/char/generic_nvram.c) from the arch & partition
15 * parsing code.
16 */
17
1da177e4
LT
18#include <linux/types.h>
19#include <linux/errno.h>
20#include <linux/fs.h>
21#include <linux/miscdevice.h>
22#include <linux/fcntl.h>
23#include <linux/nvram.h>
24#include <linux/init.h>
25#include <linux/slab.h>
26#include <linux/spinlock.h>
78989f0a 27#include <linux/kmsg_dump.h>
b808b1d6 28#include <linux/pagemap.h>
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HB
29#include <linux/pstore.h>
30#include <linux/zlib.h>
7c0f6ba6 31#include <linux/uaccess.h>
1da177e4
LT
32#include <asm/nvram.h>
33#include <asm/rtas.h>
34#include <asm/prom.h>
35#include <asm/machdep.h>
1da177e4
LT
36
37#undef DEBUG_NVRAM
38
36673307
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39#define NVRAM_HEADER_LEN sizeof(struct nvram_header)
40#define NVRAM_BLOCK_LEN NVRAM_HEADER_LEN
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41
42/* If change this size, then change the size of NVNAME_LEN */
43struct nvram_header {
44 unsigned char signature;
45 unsigned char checksum;
46 unsigned short length;
6024ede9 47 /* Terminating null required only for names < 12 chars. */
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BH
48 char name[12];
49};
50
51struct nvram_partition {
52 struct list_head partition;
53 struct nvram_header header;
54 unsigned int index;
55};
56
690d1a9b 57static LIST_HEAD(nvram_partitions);
1da177e4 58
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HB
59#ifdef CONFIG_PPC_PSERIES
60struct nvram_os_partition rtas_log_partition = {
61 .name = "ibm,rtas-log",
62 .req_size = 2079,
63 .min_size = 1055,
64 .index = -1,
65 .os_partition = true
66};
67#endif
68
69struct nvram_os_partition oops_log_partition = {
70 .name = "lnx,oops-log",
71 .req_size = 4000,
72 .min_size = 2000,
73 .index = -1,
74 .os_partition = true
75};
76
77static const char *nvram_os_partitions[] = {
78#ifdef CONFIG_PPC_PSERIES
79 "ibm,rtas-log",
80#endif
81 "lnx,oops-log",
82 NULL
83};
84
85static void oops_to_nvram(struct kmsg_dumper *dumper,
86 enum kmsg_dump_reason reason);
87
88static struct kmsg_dumper nvram_kmsg_dumper = {
89 .dump = oops_to_nvram
90};
91
92/*
93 * For capturing and compressing an oops or panic report...
94
95 * big_oops_buf[] holds the uncompressed text we're capturing.
96 *
97 * oops_buf[] holds the compressed text, preceded by a oops header.
98 * oops header has u16 holding the version of oops header (to differentiate
99 * between old and new format header) followed by u16 holding the length of
100 * the compressed* text (*Or uncompressed, if compression fails.) and u64
101 * holding the timestamp. oops_buf[] gets written to NVRAM.
102 *
103 * oops_log_info points to the header. oops_data points to the compressed text.
104 *
105 * +- oops_buf
106 * | +- oops_data
107 * v v
108 * +-----------+-----------+-----------+------------------------+
109 * | version | length | timestamp | text |
110 * | (2 bytes) | (2 bytes) | (8 bytes) | (oops_data_sz bytes) |
111 * +-----------+-----------+-----------+------------------------+
112 * ^
113 * +- oops_log_info
114 *
115 * We preallocate these buffers during init to avoid kmalloc during oops/panic.
116 */
117static size_t big_oops_buf_sz;
118static char *big_oops_buf, *oops_buf;
119static char *oops_data;
120static size_t oops_data_sz;
121
122/* Compression parameters */
123#define COMPR_LEVEL 6
124#define WINDOW_BITS 12
125#define MEM_LEVEL 4
126static struct z_stream_s stream;
127
128#ifdef CONFIG_PSTORE
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129#ifdef CONFIG_PPC_POWERNV
130static struct nvram_os_partition skiboot_partition = {
131 .name = "ibm,skiboot",
132 .index = -1,
133 .os_partition = false
134};
135#endif
136
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137#ifdef CONFIG_PPC_PSERIES
138static struct nvram_os_partition of_config_partition = {
139 .name = "of-config",
140 .index = -1,
141 .os_partition = false
142};
143#endif
144
145static struct nvram_os_partition common_partition = {
146 .name = "common",
147 .index = -1,
148 .os_partition = false
149};
150
151static enum pstore_type_id nvram_type_ids[] = {
152 PSTORE_TYPE_DMESG,
153 PSTORE_TYPE_PPC_COMMON,
154 -1,
155 -1,
156 -1
157};
158static int read_type;
159#endif
160
161/* nvram_write_os_partition
162 *
163 * We need to buffer the error logs into nvram to ensure that we have
164 * the failure information to decode. If we have a severe error there
165 * is no way to guarantee that the OS or the machine is in a state to
166 * get back to user land and write the error to disk. For example if
167 * the SCSI device driver causes a Machine Check by writing to a bad
168 * IO address, there is no way of guaranteeing that the device driver
169 * is in any state that is would also be able to write the error data
170 * captured to disk, thus we buffer it in NVRAM for analysis on the
171 * next boot.
172 *
173 * In NVRAM the partition containing the error log buffer will looks like:
174 * Header (in bytes):
175 * +-----------+----------+--------+------------+------------------+
176 * | signature | checksum | length | name | data |
177 * |0 |1 |2 3|4 15|16 length-1|
178 * +-----------+----------+--------+------------+------------------+
179 *
180 * The 'data' section would look like (in bytes):
181 * +--------------+------------+-----------------------------------+
182 * | event_logged | sequence # | error log |
183 * |0 3|4 7|8 error_log_size-1|
184 * +--------------+------------+-----------------------------------+
185 *
186 * event_logged: 0 if event has not been logged to syslog, 1 if it has
187 * sequence #: The unique sequence # for each event. (until it wraps)
188 * error log: The error log from event_scan
189 */
190int nvram_write_os_partition(struct nvram_os_partition *part,
191 char *buff, int length,
192 unsigned int err_type,
193 unsigned int error_log_cnt)
194{
195 int rc;
196 loff_t tmp_index;
197 struct err_log_info info;
198
199 if (part->index == -1)
200 return -ESPIPE;
201
202 if (length > part->size)
203 length = part->size;
204
205 info.error_type = cpu_to_be32(err_type);
206 info.seq_num = cpu_to_be32(error_log_cnt);
207
208 tmp_index = part->index;
209
210 rc = ppc_md.nvram_write((char *)&info, sizeof(struct err_log_info),
211 &tmp_index);
212 if (rc <= 0) {
213 pr_err("%s: Failed nvram_write (%d)\n", __func__, rc);
214 return rc;
215 }
216
217 rc = ppc_md.nvram_write(buff, length, &tmp_index);
218 if (rc <= 0) {
219 pr_err("%s: Failed nvram_write (%d)\n", __func__, rc);
220 return rc;
221 }
222
223 return 0;
224}
225
226/* nvram_read_partition
227 *
228 * Reads nvram partition for at most 'length'
229 */
230int nvram_read_partition(struct nvram_os_partition *part, char *buff,
231 int length, unsigned int *err_type,
232 unsigned int *error_log_cnt)
233{
234 int rc;
235 loff_t tmp_index;
236 struct err_log_info info;
237
238 if (part->index == -1)
239 return -1;
240
241 if (length > part->size)
242 length = part->size;
243
244 tmp_index = part->index;
245
246 if (part->os_partition) {
247 rc = ppc_md.nvram_read((char *)&info,
248 sizeof(struct err_log_info),
249 &tmp_index);
250 if (rc <= 0) {
251 pr_err("%s: Failed nvram_read (%d)\n", __func__, rc);
252 return rc;
253 }
254 }
255
256 rc = ppc_md.nvram_read(buff, length, &tmp_index);
257 if (rc <= 0) {
258 pr_err("%s: Failed nvram_read (%d)\n", __func__, rc);
259 return rc;
260 }
261
262 if (part->os_partition) {
263 *error_log_cnt = be32_to_cpu(info.seq_num);
264 *err_type = be32_to_cpu(info.error_type);
265 }
266
267 return 0;
268}
269
270/* nvram_init_os_partition
271 *
272 * This sets up a partition with an "OS" signature.
273 *
274 * The general strategy is the following:
275 * 1.) If a partition with the indicated name already exists...
276 * - If it's large enough, use it.
277 * - Otherwise, recycle it and keep going.
278 * 2.) Search for a free partition that is large enough.
279 * 3.) If there's not a free partition large enough, recycle any obsolete
280 * OS partitions and try again.
281 * 4.) Will first try getting a chunk that will satisfy the requested size.
282 * 5.) If a chunk of the requested size cannot be allocated, then try finding
283 * a chunk that will satisfy the minum needed.
284 *
285 * Returns 0 on success, else -1.
286 */
287int __init nvram_init_os_partition(struct nvram_os_partition *part)
288{
289 loff_t p;
290 int size;
291
292 /* Look for ours */
293 p = nvram_find_partition(part->name, NVRAM_SIG_OS, &size);
294
295 /* Found one but too small, remove it */
296 if (p && size < part->min_size) {
297 pr_info("nvram: Found too small %s partition,"
298 " removing it...\n", part->name);
299 nvram_remove_partition(part->name, NVRAM_SIG_OS, NULL);
300 p = 0;
301 }
302
303 /* Create one if we didn't find */
304 if (!p) {
305 p = nvram_create_partition(part->name, NVRAM_SIG_OS,
306 part->req_size, part->min_size);
307 if (p == -ENOSPC) {
308 pr_info("nvram: No room to create %s partition, "
309 "deleting any obsolete OS partitions...\n",
310 part->name);
311 nvram_remove_partition(NULL, NVRAM_SIG_OS,
312 nvram_os_partitions);
313 p = nvram_create_partition(part->name, NVRAM_SIG_OS,
314 part->req_size, part->min_size);
315 }
316 }
317
318 if (p <= 0) {
319 pr_err("nvram: Failed to find or create %s"
320 " partition, err %d\n", part->name, (int)p);
321 return -1;
322 }
323
324 part->index = p;
325 part->size = nvram_get_partition_size(p) - sizeof(struct err_log_info);
326
327 return 0;
328}
329
330/* Derived from logfs_compress() */
331static int nvram_compress(const void *in, void *out, size_t inlen,
332 size_t outlen)
333{
334 int err, ret;
335
336 ret = -EIO;
337 err = zlib_deflateInit2(&stream, COMPR_LEVEL, Z_DEFLATED, WINDOW_BITS,
338 MEM_LEVEL, Z_DEFAULT_STRATEGY);
339 if (err != Z_OK)
340 goto error;
341
342 stream.next_in = in;
343 stream.avail_in = inlen;
344 stream.total_in = 0;
345 stream.next_out = out;
346 stream.avail_out = outlen;
347 stream.total_out = 0;
348
349 err = zlib_deflate(&stream, Z_FINISH);
350 if (err != Z_STREAM_END)
351 goto error;
352
353 err = zlib_deflateEnd(&stream);
354 if (err != Z_OK)
355 goto error;
356
357 if (stream.total_out >= stream.total_in)
358 goto error;
359
360 ret = stream.total_out;
361error:
362 return ret;
363}
364
365/* Compress the text from big_oops_buf into oops_buf. */
366static int zip_oops(size_t text_len)
367{
368 struct oops_log_info *oops_hdr = (struct oops_log_info *)oops_buf;
369 int zipped_len = nvram_compress(big_oops_buf, oops_data, text_len,
370 oops_data_sz);
371 if (zipped_len < 0) {
372 pr_err("nvram: compression failed; returned %d\n", zipped_len);
373 pr_err("nvram: logging uncompressed oops/panic report\n");
374 return -1;
375 }
376 oops_hdr->version = cpu_to_be16(OOPS_HDR_VERSION);
377 oops_hdr->report_length = cpu_to_be16(zipped_len);
e4a9616c 378 oops_hdr->timestamp = cpu_to_be64(ktime_get_real_seconds());
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HB
379 return 0;
380}
381
382#ifdef CONFIG_PSTORE
383static int nvram_pstore_open(struct pstore_info *psi)
384{
385 /* Reset the iterator to start reading partitions again */
386 read_type = -1;
387 return 0;
388}
389
390/**
391 * nvram_pstore_write - pstore write callback for nvram
392 * @type: Type of message logged
393 * @reason: reason behind dump (oops/panic)
394 * @id: identifier to indicate the write performed
395 * @part: pstore writes data to registered buffer in parts,
396 * part number will indicate the same.
397 * @count: Indicates oops count
398 * @compressed: Flag to indicate the log is compressed
399 * @size: number of bytes written to the registered buffer
400 * @psi: registered pstore_info structure
401 *
402 * Called by pstore_dump() when an oops or panic report is logged in the
403 * printk buffer.
404 * Returns 0 on successful write.
405 */
406static int nvram_pstore_write(enum pstore_type_id type,
407 enum kmsg_dump_reason reason,
408 u64 *id, unsigned int part, int count,
409 bool compressed, size_t size,
410 struct pstore_info *psi)
411{
412 int rc;
413 unsigned int err_type = ERR_TYPE_KERNEL_PANIC;
414 struct oops_log_info *oops_hdr = (struct oops_log_info *) oops_buf;
415
416 /* part 1 has the recent messages from printk buffer */
417 if (part > 1 || (type != PSTORE_TYPE_DMESG))
418 return -1;
419
420 if (clobbering_unread_rtas_event())
421 return -1;
422
423 oops_hdr->version = cpu_to_be16(OOPS_HDR_VERSION);
424 oops_hdr->report_length = cpu_to_be16(size);
e4a9616c 425 oops_hdr->timestamp = cpu_to_be64(ktime_get_real_seconds());
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HB
426
427 if (compressed)
428 err_type = ERR_TYPE_KERNEL_PANIC_GZ;
429
430 rc = nvram_write_os_partition(&oops_log_partition, oops_buf,
431 (int) (sizeof(*oops_hdr) + size), err_type, count);
432
433 if (rc != 0)
434 return rc;
435
436 *id = part;
437 return 0;
438}
439
440/*
441 * Reads the oops/panic report, rtas, of-config and common partition.
442 * Returns the length of the data we read from each partition.
443 * Returns 0 if we've been called before.
444 */
445static ssize_t nvram_pstore_read(u64 *id, enum pstore_type_id *type,
446 int *count, struct timespec *time, char **buf,
8cfc8ddc
GT
447 bool *compressed, ssize_t *ecc_notice_size,
448 struct pstore_info *psi)
78989f0a
HB
449{
450 struct oops_log_info *oops_hdr;
451 unsigned int err_type, id_no, size = 0;
452 struct nvram_os_partition *part = NULL;
453 char *buff = NULL;
454 int sig = 0;
455 loff_t p;
456
457 read_type++;
458
459 switch (nvram_type_ids[read_type]) {
460 case PSTORE_TYPE_DMESG:
461 part = &oops_log_partition;
462 *type = PSTORE_TYPE_DMESG;
463 break;
464 case PSTORE_TYPE_PPC_COMMON:
465 sig = NVRAM_SIG_SYS;
466 part = &common_partition;
467 *type = PSTORE_TYPE_PPC_COMMON;
468 *id = PSTORE_TYPE_PPC_COMMON;
469 time->tv_sec = 0;
470 time->tv_nsec = 0;
471 break;
472#ifdef CONFIG_PPC_PSERIES
473 case PSTORE_TYPE_PPC_RTAS:
474 part = &rtas_log_partition;
475 *type = PSTORE_TYPE_PPC_RTAS;
476 time->tv_sec = last_rtas_event;
477 time->tv_nsec = 0;
478 break;
479 case PSTORE_TYPE_PPC_OF:
480 sig = NVRAM_SIG_OF;
481 part = &of_config_partition;
482 *type = PSTORE_TYPE_PPC_OF;
483 *id = PSTORE_TYPE_PPC_OF;
484 time->tv_sec = 0;
485 time->tv_nsec = 0;
486 break;
f7618299
HB
487#endif
488#ifdef CONFIG_PPC_POWERNV
489 case PSTORE_TYPE_PPC_OPAL:
490 sig = NVRAM_SIG_FW;
491 part = &skiboot_partition;
492 *type = PSTORE_TYPE_PPC_OPAL;
493 *id = PSTORE_TYPE_PPC_OPAL;
494 time->tv_sec = 0;
495 time->tv_nsec = 0;
496 break;
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HB
497#endif
498 default:
499 return 0;
500 }
501
502 if (!part->os_partition) {
503 p = nvram_find_partition(part->name, sig, &size);
504 if (p <= 0) {
505 pr_err("nvram: Failed to find partition %s, "
506 "err %d\n", part->name, (int)p);
507 return 0;
508 }
509 part->index = p;
510 part->size = size;
511 }
512
513 buff = kmalloc(part->size, GFP_KERNEL);
514
515 if (!buff)
516 return -ENOMEM;
517
518 if (nvram_read_partition(part, buff, part->size, &err_type, &id_no)) {
519 kfree(buff);
520 return 0;
521 }
522
523 *count = 0;
524
525 if (part->os_partition)
526 *id = id_no;
527
528 if (nvram_type_ids[read_type] == PSTORE_TYPE_DMESG) {
529 size_t length, hdr_size;
530
531 oops_hdr = (struct oops_log_info *)buff;
532 if (be16_to_cpu(oops_hdr->version) < OOPS_HDR_VERSION) {
533 /* Old format oops header had 2-byte record size */
534 hdr_size = sizeof(u16);
535 length = be16_to_cpu(oops_hdr->version);
536 time->tv_sec = 0;
537 time->tv_nsec = 0;
538 } else {
539 hdr_size = sizeof(*oops_hdr);
540 length = be16_to_cpu(oops_hdr->report_length);
541 time->tv_sec = be64_to_cpu(oops_hdr->timestamp);
542 time->tv_nsec = 0;
543 }
fc9e9cbf 544 *buf = kmemdup(buff + hdr_size, length, GFP_KERNEL);
0d0fecc5 545 kfree(buff);
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HB
546 if (*buf == NULL)
547 return -ENOMEM;
78989f0a 548
8cfc8ddc 549 *ecc_notice_size = 0;
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HB
550 if (err_type == ERR_TYPE_KERNEL_PANIC_GZ)
551 *compressed = true;
552 else
553 *compressed = false;
554 return length;
555 }
556
557 *buf = buff;
558 return part->size;
559}
560
561static struct pstore_info nvram_pstore_info = {
562 .owner = THIS_MODULE,
563 .name = "nvram",
564 .open = nvram_pstore_open,
565 .read = nvram_pstore_read,
566 .write = nvram_pstore_write,
567};
568
569static int nvram_pstore_init(void)
570{
571 int rc = 0;
572
f7618299
HB
573 if (machine_is(pseries)) {
574 nvram_type_ids[2] = PSTORE_TYPE_PPC_RTAS;
575 nvram_type_ids[3] = PSTORE_TYPE_PPC_OF;
576 } else
577 nvram_type_ids[2] = PSTORE_TYPE_PPC_OPAL;
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HB
578
579 nvram_pstore_info.buf = oops_data;
580 nvram_pstore_info.bufsize = oops_data_sz;
581
582 spin_lock_init(&nvram_pstore_info.buf_lock);
583
584 rc = pstore_register(&nvram_pstore_info);
74943dab
HB
585 if (rc && (rc != -EPERM))
586 /* Print error only when pstore.backend == nvram */
587 pr_err("nvram: pstore_register() failed, returned %d. "
588 "Defaults to kmsg_dump\n", rc);
78989f0a
HB
589
590 return rc;
591}
592#else
593static int nvram_pstore_init(void)
594{
595 return -1;
596}
597#endif
598
599void __init nvram_init_oops_partition(int rtas_partition_exists)
600{
601 int rc;
602
603 rc = nvram_init_os_partition(&oops_log_partition);
604 if (rc != 0) {
605#ifdef CONFIG_PPC_PSERIES
606 if (!rtas_partition_exists) {
607 pr_err("nvram: Failed to initialize oops partition!");
608 return;
609 }
610 pr_notice("nvram: Using %s partition to log both"
611 " RTAS errors and oops/panic reports\n",
612 rtas_log_partition.name);
613 memcpy(&oops_log_partition, &rtas_log_partition,
614 sizeof(rtas_log_partition));
615#else
616 pr_err("nvram: Failed to initialize oops partition!");
617 return;
618#endif
619 }
620 oops_buf = kmalloc(oops_log_partition.size, GFP_KERNEL);
621 if (!oops_buf) {
622 pr_err("nvram: No memory for %s partition\n",
623 oops_log_partition.name);
624 return;
625 }
626 oops_data = oops_buf + sizeof(struct oops_log_info);
627 oops_data_sz = oops_log_partition.size - sizeof(struct oops_log_info);
628
629 rc = nvram_pstore_init();
630
631 if (!rc)
632 return;
633
634 /*
635 * Figure compression (preceded by elimination of each line's <n>
636 * severity prefix) will reduce the oops/panic report to at most
637 * 45% of its original size.
638 */
639 big_oops_buf_sz = (oops_data_sz * 100) / 45;
640 big_oops_buf = kmalloc(big_oops_buf_sz, GFP_KERNEL);
641 if (big_oops_buf) {
642 stream.workspace = kmalloc(zlib_deflate_workspacesize(
643 WINDOW_BITS, MEM_LEVEL), GFP_KERNEL);
644 if (!stream.workspace) {
645 pr_err("nvram: No memory for compression workspace; "
646 "skipping compression of %s partition data\n",
647 oops_log_partition.name);
648 kfree(big_oops_buf);
649 big_oops_buf = NULL;
650 }
651 } else {
652 pr_err("No memory for uncompressed %s data; "
653 "skipping compression\n", oops_log_partition.name);
654 stream.workspace = NULL;
655 }
656
657 rc = kmsg_dump_register(&nvram_kmsg_dumper);
658 if (rc != 0) {
659 pr_err("nvram: kmsg_dump_register() failed; returned %d\n", rc);
660 kfree(oops_buf);
661 kfree(big_oops_buf);
662 kfree(stream.workspace);
663 }
664}
665
666/*
667 * This is our kmsg_dump callback, called after an oops or panic report
668 * has been written to the printk buffer. We want to capture as much
669 * of the printk buffer as possible. First, capture as much as we can
670 * that we think will compress sufficiently to fit in the lnx,oops-log
671 * partition. If that's too much, go back and capture uncompressed text.
672 */
673static void oops_to_nvram(struct kmsg_dumper *dumper,
674 enum kmsg_dump_reason reason)
675{
676 struct oops_log_info *oops_hdr = (struct oops_log_info *)oops_buf;
677 static unsigned int oops_count = 0;
678 static bool panicking = false;
679 static DEFINE_SPINLOCK(lock);
680 unsigned long flags;
681 size_t text_len;
682 unsigned int err_type = ERR_TYPE_KERNEL_PANIC_GZ;
683 int rc = -1;
684
685 switch (reason) {
686 case KMSG_DUMP_RESTART:
687 case KMSG_DUMP_HALT:
688 case KMSG_DUMP_POWEROFF:
689 /* These are almost always orderly shutdowns. */
690 return;
691 case KMSG_DUMP_OOPS:
692 break;
693 case KMSG_DUMP_PANIC:
694 panicking = true;
695 break;
696 case KMSG_DUMP_EMERG:
697 if (panicking)
698 /* Panic report already captured. */
699 return;
700 break;
701 default:
702 pr_err("%s: ignoring unrecognized KMSG_DUMP_* reason %d\n",
703 __func__, (int) reason);
704 return;
705 }
706
707 if (clobbering_unread_rtas_event())
708 return;
709
710 if (!spin_trylock_irqsave(&lock, flags))
711 return;
712
713 if (big_oops_buf) {
714 kmsg_dump_get_buffer(dumper, false,
715 big_oops_buf, big_oops_buf_sz, &text_len);
716 rc = zip_oops(text_len);
717 }
718 if (rc != 0) {
719 kmsg_dump_rewind(dumper);
720 kmsg_dump_get_buffer(dumper, false,
721 oops_data, oops_data_sz, &text_len);
722 err_type = ERR_TYPE_KERNEL_PANIC;
723 oops_hdr->version = cpu_to_be16(OOPS_HDR_VERSION);
724 oops_hdr->report_length = cpu_to_be16(text_len);
e4a9616c 725 oops_hdr->timestamp = cpu_to_be64(ktime_get_real_seconds());
78989f0a
HB
726 }
727
728 (void) nvram_write_os_partition(&oops_log_partition, oops_buf,
729 (int) (sizeof(*oops_hdr) + text_len), err_type,
730 ++oops_count);
731
732 spin_unlock_irqrestore(&lock, flags);
733}
734
1da177e4
LT
735static loff_t dev_nvram_llseek(struct file *file, loff_t offset, int origin)
736{
1da177e4
LT
737 if (ppc_md.nvram_size == NULL)
738 return -ENODEV;
b808b1d6
AV
739 return generic_file_llseek_size(file, offset, origin, MAX_LFS_FILESIZE,
740 ppc_md.nvram_size());
1da177e4
LT
741}
742
743
744static ssize_t dev_nvram_read(struct file *file, char __user *buf,
745 size_t count, loff_t *ppos)
746{
f9ce299f
AB
747 ssize_t ret;
748 char *tmp = NULL;
749 ssize_t size;
1da177e4 750
7029705a
CG
751 if (!ppc_md.nvram_size) {
752 ret = -ENODEV;
f9ce299f 753 goto out;
7029705a 754 }
f9ce299f 755
1da177e4 756 size = ppc_md.nvram_size();
7029705a
CG
757 if (size < 0) {
758 ret = size;
f9ce299f 759 goto out;
7029705a
CG
760 }
761
762 if (*ppos >= size) {
763 ret = 0;
764 goto out;
765 }
1da177e4 766
f9ce299f
AB
767 count = min_t(size_t, count, size - *ppos);
768 count = min(count, PAGE_SIZE);
1da177e4 769
f9ce299f 770 tmp = kmalloc(count, GFP_KERNEL);
7029705a
CG
771 if (!tmp) {
772 ret = -ENOMEM;
f9ce299f 773 goto out;
7029705a 774 }
1da177e4 775
f9ce299f
AB
776 ret = ppc_md.nvram_read(tmp, count, ppos);
777 if (ret <= 0)
778 goto out;
779
780 if (copy_to_user(buf, tmp, ret))
781 ret = -EFAULT;
1da177e4 782
f9ce299f
AB
783out:
784 kfree(tmp);
785 return ret;
1da177e4
LT
786
787}
788
789static ssize_t dev_nvram_write(struct file *file, const char __user *buf,
f9ce299f 790 size_t count, loff_t *ppos)
1da177e4 791{
f9ce299f
AB
792 ssize_t ret;
793 char *tmp = NULL;
794 ssize_t size;
1da177e4 795
f9ce299f
AB
796 ret = -ENODEV;
797 if (!ppc_md.nvram_size)
798 goto out;
799
800 ret = 0;
1da177e4 801 size = ppc_md.nvram_size();
f9ce299f
AB
802 if (*ppos >= size || size < 0)
803 goto out;
1da177e4 804
f9ce299f
AB
805 count = min_t(size_t, count, size - *ppos);
806 count = min(count, PAGE_SIZE);
1da177e4 807
f9ce299f
AB
808 ret = -ENOMEM;
809 tmp = kmalloc(count, GFP_KERNEL);
810 if (!tmp)
811 goto out;
812
813 ret = -EFAULT;
814 if (copy_from_user(tmp, buf, count))
815 goto out;
816
817 ret = ppc_md.nvram_write(tmp, count, ppos);
818
819out:
820 kfree(tmp);
821 return ret;
1da177e4 822
1da177e4
LT
823}
824
3b03fecd
TG
825static long dev_nvram_ioctl(struct file *file, unsigned int cmd,
826 unsigned long arg)
1da177e4
LT
827{
828 switch(cmd) {
829#ifdef CONFIG_PPC_PMAC
830 case OBSOLETE_PMAC_NVRAM_GET_OFFSET:
831 printk(KERN_WARNING "nvram: Using obsolete PMAC_NVRAM_GET_OFFSET ioctl\n");
832 case IOC_NVRAM_GET_OFFSET: {
833 int part, offset;
834
e8222502 835 if (!machine_is(powermac))
1da177e4
LT
836 return -EINVAL;
837 if (copy_from_user(&part, (void __user*)arg, sizeof(part)) != 0)
838 return -EFAULT;
839 if (part < pmac_nvram_OF || part > pmac_nvram_NR)
840 return -EINVAL;
841 offset = pmac_get_partition(part);
842 if (offset < 0)
843 return offset;
844 if (copy_to_user((void __user*)arg, &offset, sizeof(offset)) != 0)
845 return -EFAULT;
846 return 0;
847 }
848#endif /* CONFIG_PPC_PMAC */
af308377
SR
849 default:
850 return -EINVAL;
1da177e4 851 }
1da177e4
LT
852}
853
7c98bd72 854static const struct file_operations nvram_fops = {
3b03fecd
TG
855 .owner = THIS_MODULE,
856 .llseek = dev_nvram_llseek,
857 .read = dev_nvram_read,
858 .write = dev_nvram_write,
859 .unlocked_ioctl = dev_nvram_ioctl,
1da177e4
LT
860};
861
862static struct miscdevice nvram_dev = {
863 NVRAM_MINOR,
864 "nvram",
865 &nvram_fops
866};
867
868
869#ifdef DEBUG_NVRAM
32c105c3 870static void __init nvram_print_partitions(char * label)
1da177e4 871{
1da177e4
LT
872 struct nvram_partition * tmp_part;
873
874 printk(KERN_WARNING "--------%s---------\n", label);
875 printk(KERN_WARNING "indx\t\tsig\tchks\tlen\tname\n");
690d1a9b 876 list_for_each_entry(tmp_part, &nvram_partitions, partition) {
e0513d9e 877 printk(KERN_WARNING "%4d \t%02x\t%02x\t%d\t%12.12s\n",
1da177e4
LT
878 tmp_part->index, tmp_part->header.signature,
879 tmp_part->header.checksum, tmp_part->header.length,
880 tmp_part->header.name);
881 }
882}
883#endif
884
885
32c105c3 886static int __init nvram_write_header(struct nvram_partition * part)
1da177e4
LT
887{
888 loff_t tmp_index;
889 int rc;
c81095a4
CLG
890 struct nvram_header phead;
891
892 memcpy(&phead, &part->header, NVRAM_HEADER_LEN);
893 phead.length = cpu_to_be16(phead.length);
894
1da177e4 895 tmp_index = part->index;
c81095a4 896 rc = ppc_md.nvram_write((char *)&phead, NVRAM_HEADER_LEN, &tmp_index);
1da177e4
LT
897
898 return rc;
899}
900
901
32c105c3 902static unsigned char __init nvram_checksum(struct nvram_header *p)
1da177e4
LT
903{
904 unsigned int c_sum, c_sum2;
905 unsigned short *sp = (unsigned short *)p->name; /* assume 6 shorts */
906 c_sum = p->signature + p->length + sp[0] + sp[1] + sp[2] + sp[3] + sp[4] + sp[5];
907
908 /* The sum may have spilled into the 3rd byte. Fold it back. */
909 c_sum = ((c_sum & 0xffff) + (c_sum >> 16)) & 0xffff;
910 /* The sum cannot exceed 2 bytes. Fold it into a checksum */
911 c_sum2 = (c_sum >> 8) + (c_sum << 8);
912 c_sum = ((c_sum + c_sum2) >> 8) & 0xff;
913 return c_sum;
914}
915
0f4ac132
JK
916/*
917 * Per the criteria passed via nvram_remove_partition(), should this
918 * partition be removed? 1=remove, 0=keep
919 */
920static int nvram_can_remove_partition(struct nvram_partition *part,
921 const char *name, int sig, const char *exceptions[])
922{
923 if (part->header.signature != sig)
924 return 0;
925 if (name) {
926 if (strncmp(name, part->header.name, 12))
927 return 0;
928 } else if (exceptions) {
929 const char **except;
930 for (except = exceptions; *except; except++) {
931 if (!strncmp(*except, part->header.name, 12))
932 return 0;
933 }
934 }
935 return 1;
936}
937
fa2b4e54
BH
938/**
939 * nvram_remove_partition - Remove one or more partitions in nvram
940 * @name: name of the partition to remove, or NULL for a
941 * signature only match
942 * @sig: signature of the partition(s) to remove
0f4ac132
JK
943 * @exceptions: When removing all partitions with a matching signature,
944 * leave these alone.
fa2b4e54
BH
945 */
946
0f4ac132
JK
947int __init nvram_remove_partition(const char *name, int sig,
948 const char *exceptions[])
1da177e4 949{
fa2b4e54 950 struct nvram_partition *part, *prev, *tmp;
1da177e4
LT
951 int rc;
952
690d1a9b 953 list_for_each_entry(part, &nvram_partitions, partition) {
0f4ac132 954 if (!nvram_can_remove_partition(part, name, sig, exceptions))
fa2b4e54
BH
955 continue;
956
957 /* Make partition a free partition */
1da177e4 958 part->header.signature = NVRAM_SIG_FREE;
11b7e154 959 memset(part->header.name, 'w', 12);
1da177e4 960 part->header.checksum = nvram_checksum(&part->header);
1da177e4
LT
961 rc = nvram_write_header(part);
962 if (rc <= 0) {
fa2b4e54 963 printk(KERN_ERR "nvram_remove_partition: nvram_write failed (%d)\n", rc);
1da177e4
LT
964 return rc;
965 }
fa2b4e54 966 }
1da177e4 967
fa2b4e54
BH
968 /* Merge contiguous ones */
969 prev = NULL;
690d1a9b 970 list_for_each_entry_safe(part, tmp, &nvram_partitions, partition) {
fa2b4e54
BH
971 if (part->header.signature != NVRAM_SIG_FREE) {
972 prev = NULL;
973 continue;
974 }
975 if (prev) {
976 prev->header.length += part->header.length;
11b7e154
PX
977 prev->header.checksum = nvram_checksum(&prev->header);
978 rc = nvram_write_header(prev);
fa2b4e54
BH
979 if (rc <= 0) {
980 printk(KERN_ERR "nvram_remove_partition: nvram_write failed (%d)\n", rc);
981 return rc;
982 }
983 list_del(&part->partition);
984 kfree(part);
985 } else
986 prev = part;
1da177e4
LT
987 }
988
989 return 0;
990}
991
4e7c77a3
BH
992/**
993 * nvram_create_partition - Create a partition in nvram
994 * @name: name of the partition to create
995 * @sig: signature of the partition to create
36673307 996 * @req_size: size of data to allocate in bytes
4e7c77a3 997 * @min_size: minimum acceptable size (0 means req_size)
e49e2e87
BH
998 *
999 * Returns a negative error code or a positive nvram index
1000 * of the beginning of the data area of the newly created
1001 * partition. If you provided a min_size smaller than req_size
1002 * you need to query for the actual size yourself after the
1003 * call using nvram_partition_get_size().
1da177e4 1004 */
edc79a2f
BH
1005loff_t __init nvram_create_partition(const char *name, int sig,
1006 int req_size, int min_size)
1da177e4 1007{
a341ad97
AB
1008 struct nvram_partition *part;
1009 struct nvram_partition *new_part;
0339ad77 1010 struct nvram_partition *free_part = NULL;
cef0d5ad 1011 static char nv_init_vals[16];
1da177e4
LT
1012 loff_t tmp_index;
1013 long size = 0;
1014 int rc;
4e7c77a3 1015
36673307
BH
1016 /* Convert sizes from bytes to blocks */
1017 req_size = _ALIGN_UP(req_size, NVRAM_BLOCK_LEN) / NVRAM_BLOCK_LEN;
1018 min_size = _ALIGN_UP(min_size, NVRAM_BLOCK_LEN) / NVRAM_BLOCK_LEN;
1019
4e7c77a3
BH
1020 /* If no minimum size specified, make it the same as the
1021 * requested size
1022 */
1023 if (min_size == 0)
1024 min_size = req_size;
e49e2e87
BH
1025 if (min_size > req_size)
1026 return -EINVAL;
4e7c77a3 1027
36673307
BH
1028 /* Now add one block to each for the header */
1029 req_size += 1;
1030 min_size += 1;
1031
1da177e4
LT
1032 /* Find a free partition that will give us the maximum needed size
1033 If can't find one that will give us the minimum size needed */
690d1a9b 1034 list_for_each_entry(part, &nvram_partitions, partition) {
1da177e4
LT
1035 if (part->header.signature != NVRAM_SIG_FREE)
1036 continue;
1037
4e7c77a3
BH
1038 if (part->header.length >= req_size) {
1039 size = req_size;
1da177e4
LT
1040 free_part = part;
1041 break;
1042 }
4e7c77a3
BH
1043 if (part->header.length > size &&
1044 part->header.length >= min_size) {
1045 size = part->header.length;
1da177e4
LT
1046 free_part = part;
1047 }
1048 }
0339ad77 1049 if (!size)
1da177e4 1050 return -ENOSPC;
1da177e4
LT
1051
1052 /* Create our OS partition */
0339ad77 1053 new_part = kmalloc(sizeof(*new_part), GFP_KERNEL);
1da177e4 1054 if (!new_part) {
b6080db4 1055 pr_err("%s: kmalloc failed\n", __func__);
1da177e4
LT
1056 return -ENOMEM;
1057 }
1058
1059 new_part->index = free_part->index;
4e7c77a3 1060 new_part->header.signature = sig;
1da177e4 1061 new_part->header.length = size;
4e7c77a3 1062 strncpy(new_part->header.name, name, 12);
1da177e4
LT
1063 new_part->header.checksum = nvram_checksum(&new_part->header);
1064
1065 rc = nvram_write_header(new_part);
1066 if (rc <= 0) {
b6080db4 1067 pr_err("%s: nvram_write_header failed (%d)\n", __func__, rc);
7d523187 1068 kfree(new_part);
1da177e4
LT
1069 return rc;
1070 }
e49e2e87
BH
1071 list_add_tail(&new_part->partition, &free_part->partition);
1072
1073 /* Adjust or remove the partition we stole the space from */
1074 if (free_part->header.length > size) {
1075 free_part->index += size * NVRAM_BLOCK_LEN;
1076 free_part->header.length -= size;
1077 free_part->header.checksum = nvram_checksum(&free_part->header);
1078 rc = nvram_write_header(free_part);
1079 if (rc <= 0) {
b6080db4
CJ
1080 pr_err("%s: nvram_write_header failed (%d)\n",
1081 __func__, rc);
e49e2e87
BH
1082 return rc;
1083 }
1084 } else {
1085 list_del(&free_part->partition);
1086 kfree(free_part);
1087 }
1da177e4 1088
e49e2e87 1089 /* Clear the new partition */
cef0d5ad
BH
1090 for (tmp_index = new_part->index + NVRAM_HEADER_LEN;
1091 tmp_index < ((size - 1) * NVRAM_BLOCK_LEN);
1092 tmp_index += NVRAM_BLOCK_LEN) {
1093 rc = ppc_md.nvram_write(nv_init_vals, NVRAM_BLOCK_LEN, &tmp_index);
1094 if (rc <= 0) {
b6080db4
CJ
1095 pr_err("%s: nvram_write failed (%d)\n",
1096 __func__, rc);
cef0d5ad
BH
1097 return rc;
1098 }
1da177e4 1099 }
b6080db4 1100
e49e2e87
BH
1101 return new_part->index + NVRAM_HEADER_LEN;
1102}
1da177e4 1103
e49e2e87
BH
1104/**
1105 * nvram_get_partition_size - Get the data size of an nvram partition
1106 * @data_index: This is the offset of the start of the data of
1107 * the partition. The same value that is returned by
1108 * nvram_create_partition().
1109 */
edc79a2f 1110int nvram_get_partition_size(loff_t data_index)
e49e2e87
BH
1111{
1112 struct nvram_partition *part;
1da177e4 1113
690d1a9b 1114 list_for_each_entry(part, &nvram_partitions, partition) {
e49e2e87
BH
1115 if (part->index + NVRAM_HEADER_LEN == data_index)
1116 return (part->header.length - 1) * NVRAM_BLOCK_LEN;
1da177e4 1117 }
e49e2e87 1118 return -1;
1da177e4
LT
1119}
1120
1121
cf5cbf9f
BH
1122/**
1123 * nvram_find_partition - Find an nvram partition by signature and name
1124 * @name: Name of the partition or NULL for any name
1125 * @sig: Signature to test against
1126 * @out_size: if non-NULL, returns the size of the data part of the partition
1127 */
1128loff_t nvram_find_partition(const char *name, int sig, int *out_size)
1129{
1130 struct nvram_partition *p;
1131
690d1a9b 1132 list_for_each_entry(p, &nvram_partitions, partition) {
cf5cbf9f
BH
1133 if (p->header.signature == sig &&
1134 (!name || !strncmp(p->header.name, name, 12))) {
1135 if (out_size)
1136 *out_size = (p->header.length - 1) *
1137 NVRAM_BLOCK_LEN;
1138 return p->index + NVRAM_HEADER_LEN;
1139 }
1140 }
1141 return 0;
1142}
1143
edc79a2f 1144int __init nvram_scan_partitions(void)
1da177e4
LT
1145{
1146 loff_t cur_index = 0;
1147 struct nvram_header phead;
1148 struct nvram_partition * tmp_part;
1149 unsigned char c_sum;
1150 char * header;
1151 int total_size;
1152 int err;
1153
edc79a2f 1154 if (ppc_md.nvram_size == NULL || ppc_md.nvram_size() <= 0)
1da177e4
LT
1155 return -ENODEV;
1156 total_size = ppc_md.nvram_size();
1157
5cbded58 1158 header = kmalloc(NVRAM_HEADER_LEN, GFP_KERNEL);
1da177e4
LT
1159 if (!header) {
1160 printk(KERN_ERR "nvram_scan_partitions: Failed kmalloc\n");
1161 return -ENOMEM;
1162 }
1163
1164 while (cur_index < total_size) {
1165
1166 err = ppc_md.nvram_read(header, NVRAM_HEADER_LEN, &cur_index);
1167 if (err != NVRAM_HEADER_LEN) {
1168 printk(KERN_ERR "nvram_scan_partitions: Error parsing "
1169 "nvram partitions\n");
1170 goto out;
1171 }
1172
1173 cur_index -= NVRAM_HEADER_LEN; /* nvram_read will advance us */
1174
1175 memcpy(&phead, header, NVRAM_HEADER_LEN);
1176
c81095a4
CLG
1177 phead.length = be16_to_cpu(phead.length);
1178
1da177e4
LT
1179 err = 0;
1180 c_sum = nvram_checksum(&phead);
1181 if (c_sum != phead.checksum) {
1182 printk(KERN_WARNING "WARNING: nvram partition checksum"
1183 " was %02x, should be %02x!\n",
1184 phead.checksum, c_sum);
1185 printk(KERN_WARNING "Terminating nvram partition scan\n");
1186 goto out;
1187 }
1188 if (!phead.length) {
1189 printk(KERN_WARNING "WARNING: nvram corruption "
1190 "detected: 0-length partition\n");
1191 goto out;
1192 }
6e51c9ff 1193 tmp_part = kmalloc(sizeof(struct nvram_partition), GFP_KERNEL);
1da177e4
LT
1194 err = -ENOMEM;
1195 if (!tmp_part) {
1196 printk(KERN_ERR "nvram_scan_partitions: kmalloc failed\n");
1197 goto out;
1198 }
1199
1200 memcpy(&tmp_part->header, &phead, NVRAM_HEADER_LEN);
1201 tmp_part->index = cur_index;
690d1a9b 1202 list_add_tail(&tmp_part->partition, &nvram_partitions);
1da177e4
LT
1203
1204 cur_index += phead.length * NVRAM_BLOCK_LEN;
1205 }
1206 err = 0;
1207
edc79a2f
BH
1208#ifdef DEBUG_NVRAM
1209 nvram_print_partitions("NVRAM Partitions");
1210#endif
1211
1da177e4
LT
1212 out:
1213 kfree(header);
1214 return err;
1215}
1216
1217static int __init nvram_init(void)
1218{
1da177e4
LT
1219 int rc;
1220
578914cf
BH
1221 BUILD_BUG_ON(NVRAM_BLOCK_LEN != 16);
1222
1da177e4
LT
1223 if (ppc_md.nvram_size == NULL || ppc_md.nvram_size() <= 0)
1224 return -ENODEV;
1225
1226 rc = misc_register(&nvram_dev);
1227 if (rc != 0) {
1228 printk(KERN_ERR "nvram_init: failed to register device\n");
1229 return rc;
1230 }
1231
1da177e4
LT
1232 return rc;
1233}
c0c52389 1234device_initcall(nvram_init);