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[linux/fpc-iii.git] / arch / ia64 / kernel / salinfo.c
blob5313007d5423a23622192f00218399806b421844
1 /*
2 * salinfo.c
4 * Creates entries in /proc/sal for various system features.
6 * Copyright (c) 2003, 2006 Silicon Graphics, Inc. All rights reserved.
7 * Copyright (c) 2003 Hewlett-Packard Co
8 * Bjorn Helgaas <bjorn.helgaas@hp.com>
10 * 10/30/2001 jbarnes@sgi.com copied much of Stephane's palinfo
11 * code to create this file
12 * Oct 23 2003 kaos@sgi.com
13 * Replace IPI with set_cpus_allowed() to read a record from the required cpu.
14 * Redesign salinfo log processing to separate interrupt and user space
15 * contexts.
16 * Cache the record across multi-block reads from user space.
17 * Support > 64 cpus.
18 * Delete module_exit and MOD_INC/DEC_COUNT, salinfo cannot be a module.
20 * Jan 28 2004 kaos@sgi.com
21 * Periodically check for outstanding MCA or INIT records.
23 * Dec 5 2004 kaos@sgi.com
24 * Standardize which records are cleared automatically.
26 * Aug 18 2005 kaos@sgi.com
27 * mca.c may not pass a buffer, a NULL buffer just indicates that a new
28 * record is available in SAL.
29 * Replace some NR_CPUS by cpus_online, for hotplug cpu.
31 * Jan 5 2006 kaos@sgi.com
32 * Handle hotplug cpus coming online.
33 * Handle hotplug cpus going offline while they still have outstanding records.
34 * Use the cpu_* macros consistently.
35 * Replace the counting semaphore with a mutex and a test if the cpumask is non-empty.
36 * Modify the locking to make the test for "work to do" an atomic operation.
39 #include <linux/capability.h>
40 #include <linux/cpu.h>
41 #include <linux/types.h>
42 #include <linux/proc_fs.h>
43 #include <linux/seq_file.h>
44 #include <linux/module.h>
45 #include <linux/smp.h>
46 #include <linux/timer.h>
47 #include <linux/vmalloc.h>
48 #include <linux/semaphore.h>
50 #include <asm/sal.h>
51 #include <asm/uaccess.h>
53 MODULE_AUTHOR("Jesse Barnes <jbarnes@sgi.com>");
54 MODULE_DESCRIPTION("/proc interface to IA-64 SAL features");
55 MODULE_LICENSE("GPL");
57 static const struct file_operations proc_salinfo_fops;
59 typedef struct {
60 const char *name; /* name of the proc entry */
61 unsigned long feature; /* feature bit */
62 struct proc_dir_entry *entry; /* registered entry (removal) */
63 } salinfo_entry_t;
66 * List {name,feature} pairs for every entry in /proc/sal/<feature>
67 * that this module exports
69 static const salinfo_entry_t salinfo_entries[]={
70 { "bus_lock", IA64_SAL_PLATFORM_FEATURE_BUS_LOCK, },
71 { "irq_redirection", IA64_SAL_PLATFORM_FEATURE_IRQ_REDIR_HINT, },
72 { "ipi_redirection", IA64_SAL_PLATFORM_FEATURE_IPI_REDIR_HINT, },
73 { "itc_drift", IA64_SAL_PLATFORM_FEATURE_ITC_DRIFT, },
76 #define NR_SALINFO_ENTRIES ARRAY_SIZE(salinfo_entries)
78 static char *salinfo_log_name[] = {
79 "mca",
80 "init",
81 "cmc",
82 "cpe",
85 static struct proc_dir_entry *salinfo_proc_entries[
86 ARRAY_SIZE(salinfo_entries) + /* /proc/sal/bus_lock */
87 ARRAY_SIZE(salinfo_log_name) + /* /proc/sal/{mca,...} */
88 (2 * ARRAY_SIZE(salinfo_log_name)) + /* /proc/sal/mca/{event,data} */
89 1]; /* /proc/sal */
91 /* Some records we get ourselves, some are accessed as saved data in buffers
92 * that are owned by mca.c.
94 struct salinfo_data_saved {
95 u8* buffer;
96 u64 size;
97 u64 id;
98 int cpu;
101 /* State transitions. Actions are :-
102 * Write "read <cpunum>" to the data file.
103 * Write "clear <cpunum>" to the data file.
104 * Write "oemdata <cpunum> <offset> to the data file.
105 * Read from the data file.
106 * Close the data file.
108 * Start state is NO_DATA.
110 * NO_DATA
111 * write "read <cpunum>" -> NO_DATA or LOG_RECORD.
112 * write "clear <cpunum>" -> NO_DATA or LOG_RECORD.
113 * write "oemdata <cpunum> <offset> -> return -EINVAL.
114 * read data -> return EOF.
115 * close -> unchanged. Free record areas.
117 * LOG_RECORD
118 * write "read <cpunum>" -> NO_DATA or LOG_RECORD.
119 * write "clear <cpunum>" -> NO_DATA or LOG_RECORD.
120 * write "oemdata <cpunum> <offset> -> format the oem data, goto OEMDATA.
121 * read data -> return the INIT/MCA/CMC/CPE record.
122 * close -> unchanged. Keep record areas.
124 * OEMDATA
125 * write "read <cpunum>" -> NO_DATA or LOG_RECORD.
126 * write "clear <cpunum>" -> NO_DATA or LOG_RECORD.
127 * write "oemdata <cpunum> <offset> -> format the oem data, goto OEMDATA.
128 * read data -> return the formatted oemdata.
129 * close -> unchanged. Keep record areas.
131 * Closing the data file does not change the state. This allows shell scripts
132 * to manipulate salinfo data, each shell redirection opens the file, does one
133 * action then closes it again. The record areas are only freed at close when
134 * the state is NO_DATA.
136 enum salinfo_state {
137 STATE_NO_DATA,
138 STATE_LOG_RECORD,
139 STATE_OEMDATA,
142 struct salinfo_data {
143 cpumask_t cpu_event; /* which cpus have outstanding events */
144 wait_queue_head_t read_wait;
145 u8 *log_buffer;
146 u64 log_size;
147 u8 *oemdata; /* decoded oem data */
148 u64 oemdata_size;
149 int open; /* single-open to prevent races */
150 u8 type;
151 u8 saved_num; /* using a saved record? */
152 enum salinfo_state state :8; /* processing state */
153 u8 padding;
154 int cpu_check; /* next CPU to check */
155 struct salinfo_data_saved data_saved[5];/* save last 5 records from mca.c, must be < 255 */
158 static struct salinfo_data salinfo_data[ARRAY_SIZE(salinfo_log_name)];
160 static DEFINE_SPINLOCK(data_lock);
161 static DEFINE_SPINLOCK(data_saved_lock);
163 /** salinfo_platform_oemdata - optional callback to decode oemdata from an error
164 * record.
165 * @sect_header: pointer to the start of the section to decode.
166 * @oemdata: returns vmalloc area containing the decoded output.
167 * @oemdata_size: returns length of decoded output (strlen).
169 * Description: If user space asks for oem data to be decoded by the kernel
170 * and/or prom and the platform has set salinfo_platform_oemdata to the address
171 * of a platform specific routine then call that routine. salinfo_platform_oemdata
172 * vmalloc's and formats its output area, returning the address of the text
173 * and its strlen. Returns 0 for success, -ve for error. The callback is
174 * invoked on the cpu that generated the error record.
176 int (*salinfo_platform_oemdata)(const u8 *sect_header, u8 **oemdata, u64 *oemdata_size);
178 struct salinfo_platform_oemdata_parms {
179 const u8 *efi_guid;
180 u8 **oemdata;
181 u64 *oemdata_size;
182 int ret;
185 static void
186 salinfo_platform_oemdata_cpu(void *context)
188 struct salinfo_platform_oemdata_parms *parms = context;
189 parms->ret = salinfo_platform_oemdata(parms->efi_guid, parms->oemdata, parms->oemdata_size);
192 static void
193 shift1_data_saved (struct salinfo_data *data, int shift)
195 memcpy(data->data_saved+shift, data->data_saved+shift+1,
196 (ARRAY_SIZE(data->data_saved) - (shift+1)) * sizeof(data->data_saved[0]));
197 memset(data->data_saved + ARRAY_SIZE(data->data_saved) - 1, 0,
198 sizeof(data->data_saved[0]));
201 /* This routine is invoked in interrupt context. Note: mca.c enables
202 * interrupts before calling this code for CMC/CPE. MCA and INIT events are
203 * not irq safe, do not call any routines that use spinlocks, they may deadlock.
204 * MCA and INIT records are recorded, a timer event will look for any
205 * outstanding events and wake up the user space code.
207 * The buffer passed from mca.c points to the output from ia64_log_get. This is
208 * a persistent buffer but its contents can change between the interrupt and
209 * when user space processes the record. Save the record id to identify
210 * changes. If the buffer is NULL then just update the bitmap.
212 void
213 salinfo_log_wakeup(int type, u8 *buffer, u64 size, int irqsafe)
215 struct salinfo_data *data = salinfo_data + type;
216 struct salinfo_data_saved *data_saved;
217 unsigned long flags = 0;
218 int i;
219 int saved_size = ARRAY_SIZE(data->data_saved);
221 BUG_ON(type >= ARRAY_SIZE(salinfo_log_name));
223 if (irqsafe)
224 spin_lock_irqsave(&data_saved_lock, flags);
225 if (buffer) {
226 for (i = 0, data_saved = data->data_saved; i < saved_size; ++i, ++data_saved) {
227 if (!data_saved->buffer)
228 break;
230 if (i == saved_size) {
231 if (!data->saved_num) {
232 shift1_data_saved(data, 0);
233 data_saved = data->data_saved + saved_size - 1;
234 } else
235 data_saved = NULL;
237 if (data_saved) {
238 data_saved->cpu = smp_processor_id();
239 data_saved->id = ((sal_log_record_header_t *)buffer)->id;
240 data_saved->size = size;
241 data_saved->buffer = buffer;
244 cpumask_set_cpu(smp_processor_id(), &data->cpu_event);
245 if (irqsafe) {
246 wake_up_interruptible(&data->read_wait);
247 spin_unlock_irqrestore(&data_saved_lock, flags);
251 /* Check for outstanding MCA/INIT records every minute (arbitrary) */
252 #define SALINFO_TIMER_DELAY (60*HZ)
253 static struct timer_list salinfo_timer;
254 extern void ia64_mlogbuf_dump(void);
256 static void
257 salinfo_timeout_check(struct salinfo_data *data)
259 if (!data->open)
260 return;
261 if (!cpumask_empty(&data->cpu_event))
262 wake_up_interruptible(&data->read_wait);
265 static void
266 salinfo_timeout (unsigned long arg)
268 ia64_mlogbuf_dump();
269 salinfo_timeout_check(salinfo_data + SAL_INFO_TYPE_MCA);
270 salinfo_timeout_check(salinfo_data + SAL_INFO_TYPE_INIT);
271 salinfo_timer.expires = jiffies + SALINFO_TIMER_DELAY;
272 add_timer(&salinfo_timer);
275 static int
276 salinfo_event_open(struct inode *inode, struct file *file)
278 if (!capable(CAP_SYS_ADMIN))
279 return -EPERM;
280 return 0;
283 static ssize_t
284 salinfo_event_read(struct file *file, char __user *buffer, size_t count, loff_t *ppos)
286 struct salinfo_data *data = PDE_DATA(file_inode(file));
287 char cmd[32];
288 size_t size;
289 int i, n, cpu = -1;
291 retry:
292 if (cpumask_empty(&data->cpu_event)) {
293 if (file->f_flags & O_NONBLOCK)
294 return -EAGAIN;
295 if (wait_event_interruptible(data->read_wait,
296 !cpumask_empty(&data->cpu_event)))
297 return -EINTR;
300 n = data->cpu_check;
301 for (i = 0; i < nr_cpu_ids; i++) {
302 if (cpumask_test_cpu(n, &data->cpu_event)) {
303 if (!cpu_online(n)) {
304 cpumask_clear_cpu(n, &data->cpu_event);
305 continue;
307 cpu = n;
308 break;
310 if (++n == nr_cpu_ids)
311 n = 0;
314 if (cpu == -1)
315 goto retry;
317 ia64_mlogbuf_dump();
319 /* for next read, start checking at next CPU */
320 data->cpu_check = cpu;
321 if (++data->cpu_check == nr_cpu_ids)
322 data->cpu_check = 0;
324 snprintf(cmd, sizeof(cmd), "read %d\n", cpu);
326 size = strlen(cmd);
327 if (size > count)
328 size = count;
329 if (copy_to_user(buffer, cmd, size))
330 return -EFAULT;
332 return size;
335 static const struct file_operations salinfo_event_fops = {
336 .open = salinfo_event_open,
337 .read = salinfo_event_read,
338 .llseek = noop_llseek,
341 static int
342 salinfo_log_open(struct inode *inode, struct file *file)
344 struct salinfo_data *data = PDE_DATA(inode);
346 if (!capable(CAP_SYS_ADMIN))
347 return -EPERM;
349 spin_lock(&data_lock);
350 if (data->open) {
351 spin_unlock(&data_lock);
352 return -EBUSY;
354 data->open = 1;
355 spin_unlock(&data_lock);
357 if (data->state == STATE_NO_DATA &&
358 !(data->log_buffer = vmalloc(ia64_sal_get_state_info_size(data->type)))) {
359 data->open = 0;
360 return -ENOMEM;
363 return 0;
366 static int
367 salinfo_log_release(struct inode *inode, struct file *file)
369 struct salinfo_data *data = PDE_DATA(inode);
371 if (data->state == STATE_NO_DATA) {
372 vfree(data->log_buffer);
373 vfree(data->oemdata);
374 data->log_buffer = NULL;
375 data->oemdata = NULL;
377 spin_lock(&data_lock);
378 data->open = 0;
379 spin_unlock(&data_lock);
380 return 0;
383 static void
384 call_on_cpu(int cpu, void (*fn)(void *), void *arg)
386 cpumask_t save_cpus_allowed = current->cpus_allowed;
387 set_cpus_allowed_ptr(current, cpumask_of(cpu));
388 (*fn)(arg);
389 set_cpus_allowed_ptr(current, &save_cpus_allowed);
392 static void
393 salinfo_log_read_cpu(void *context)
395 struct salinfo_data *data = context;
396 sal_log_record_header_t *rh;
397 data->log_size = ia64_sal_get_state_info(data->type, (u64 *) data->log_buffer);
398 rh = (sal_log_record_header_t *)(data->log_buffer);
399 /* Clear corrected errors as they are read from SAL */
400 if (rh->severity == sal_log_severity_corrected)
401 ia64_sal_clear_state_info(data->type);
404 static void
405 salinfo_log_new_read(int cpu, struct salinfo_data *data)
407 struct salinfo_data_saved *data_saved;
408 unsigned long flags;
409 int i;
410 int saved_size = ARRAY_SIZE(data->data_saved);
412 data->saved_num = 0;
413 spin_lock_irqsave(&data_saved_lock, flags);
414 retry:
415 for (i = 0, data_saved = data->data_saved; i < saved_size; ++i, ++data_saved) {
416 if (data_saved->buffer && data_saved->cpu == cpu) {
417 sal_log_record_header_t *rh = (sal_log_record_header_t *)(data_saved->buffer);
418 data->log_size = data_saved->size;
419 memcpy(data->log_buffer, rh, data->log_size);
420 barrier(); /* id check must not be moved */
421 if (rh->id == data_saved->id) {
422 data->saved_num = i+1;
423 break;
425 /* saved record changed by mca.c since interrupt, discard it */
426 shift1_data_saved(data, i);
427 goto retry;
430 spin_unlock_irqrestore(&data_saved_lock, flags);
432 if (!data->saved_num)
433 call_on_cpu(cpu, salinfo_log_read_cpu, data);
434 if (!data->log_size) {
435 data->state = STATE_NO_DATA;
436 cpumask_clear_cpu(cpu, &data->cpu_event);
437 } else {
438 data->state = STATE_LOG_RECORD;
442 static ssize_t
443 salinfo_log_read(struct file *file, char __user *buffer, size_t count, loff_t *ppos)
445 struct salinfo_data *data = PDE_DATA(file_inode(file));
446 u8 *buf;
447 u64 bufsize;
449 if (data->state == STATE_LOG_RECORD) {
450 buf = data->log_buffer;
451 bufsize = data->log_size;
452 } else if (data->state == STATE_OEMDATA) {
453 buf = data->oemdata;
454 bufsize = data->oemdata_size;
455 } else {
456 buf = NULL;
457 bufsize = 0;
459 return simple_read_from_buffer(buffer, count, ppos, buf, bufsize);
462 static void
463 salinfo_log_clear_cpu(void *context)
465 struct salinfo_data *data = context;
466 ia64_sal_clear_state_info(data->type);
469 static int
470 salinfo_log_clear(struct salinfo_data *data, int cpu)
472 sal_log_record_header_t *rh;
473 unsigned long flags;
474 spin_lock_irqsave(&data_saved_lock, flags);
475 data->state = STATE_NO_DATA;
476 if (!cpumask_test_cpu(cpu, &data->cpu_event)) {
477 spin_unlock_irqrestore(&data_saved_lock, flags);
478 return 0;
480 cpumask_clear_cpu(cpu, &data->cpu_event);
481 if (data->saved_num) {
482 shift1_data_saved(data, data->saved_num - 1);
483 data->saved_num = 0;
485 spin_unlock_irqrestore(&data_saved_lock, flags);
486 rh = (sal_log_record_header_t *)(data->log_buffer);
487 /* Corrected errors have already been cleared from SAL */
488 if (rh->severity != sal_log_severity_corrected)
489 call_on_cpu(cpu, salinfo_log_clear_cpu, data);
490 /* clearing a record may make a new record visible */
491 salinfo_log_new_read(cpu, data);
492 if (data->state == STATE_LOG_RECORD) {
493 spin_lock_irqsave(&data_saved_lock, flags);
494 cpumask_set_cpu(cpu, &data->cpu_event);
495 wake_up_interruptible(&data->read_wait);
496 spin_unlock_irqrestore(&data_saved_lock, flags);
498 return 0;
501 static ssize_t
502 salinfo_log_write(struct file *file, const char __user *buffer, size_t count, loff_t *ppos)
504 struct salinfo_data *data = PDE_DATA(file_inode(file));
505 char cmd[32];
506 size_t size;
507 u32 offset;
508 int cpu;
510 size = sizeof(cmd);
511 if (count < size)
512 size = count;
513 if (copy_from_user(cmd, buffer, size))
514 return -EFAULT;
516 if (sscanf(cmd, "read %d", &cpu) == 1) {
517 salinfo_log_new_read(cpu, data);
518 } else if (sscanf(cmd, "clear %d", &cpu) == 1) {
519 int ret;
520 if ((ret = salinfo_log_clear(data, cpu)))
521 count = ret;
522 } else if (sscanf(cmd, "oemdata %d %d", &cpu, &offset) == 2) {
523 if (data->state != STATE_LOG_RECORD && data->state != STATE_OEMDATA)
524 return -EINVAL;
525 if (offset > data->log_size - sizeof(efi_guid_t))
526 return -EINVAL;
527 data->state = STATE_OEMDATA;
528 if (salinfo_platform_oemdata) {
529 struct salinfo_platform_oemdata_parms parms = {
530 .efi_guid = data->log_buffer + offset,
531 .oemdata = &data->oemdata,
532 .oemdata_size = &data->oemdata_size
534 call_on_cpu(cpu, salinfo_platform_oemdata_cpu, &parms);
535 if (parms.ret)
536 count = parms.ret;
537 } else
538 data->oemdata_size = 0;
539 } else
540 return -EINVAL;
542 return count;
545 static const struct file_operations salinfo_data_fops = {
546 .open = salinfo_log_open,
547 .release = salinfo_log_release,
548 .read = salinfo_log_read,
549 .write = salinfo_log_write,
550 .llseek = default_llseek,
553 static int
554 salinfo_cpu_callback(struct notifier_block *nb, unsigned long action, void *hcpu)
556 unsigned int i, cpu = (unsigned long)hcpu;
557 unsigned long flags;
558 struct salinfo_data *data;
559 switch (action) {
560 case CPU_ONLINE:
561 case CPU_ONLINE_FROZEN:
562 spin_lock_irqsave(&data_saved_lock, flags);
563 for (i = 0, data = salinfo_data;
564 i < ARRAY_SIZE(salinfo_data);
565 ++i, ++data) {
566 cpumask_set_cpu(cpu, &data->cpu_event);
567 wake_up_interruptible(&data->read_wait);
569 spin_unlock_irqrestore(&data_saved_lock, flags);
570 break;
571 case CPU_DEAD:
572 case CPU_DEAD_FROZEN:
573 spin_lock_irqsave(&data_saved_lock, flags);
574 for (i = 0, data = salinfo_data;
575 i < ARRAY_SIZE(salinfo_data);
576 ++i, ++data) {
577 struct salinfo_data_saved *data_saved;
578 int j;
579 for (j = ARRAY_SIZE(data->data_saved) - 1, data_saved = data->data_saved + j;
580 j >= 0;
581 --j, --data_saved) {
582 if (data_saved->buffer && data_saved->cpu == cpu) {
583 shift1_data_saved(data, j);
586 cpumask_clear_cpu(cpu, &data->cpu_event);
588 spin_unlock_irqrestore(&data_saved_lock, flags);
589 break;
591 return NOTIFY_OK;
594 static struct notifier_block salinfo_cpu_notifier =
596 .notifier_call = salinfo_cpu_callback,
597 .priority = 0,
600 static int __init
601 salinfo_init(void)
603 struct proc_dir_entry *salinfo_dir; /* /proc/sal dir entry */
604 struct proc_dir_entry **sdir = salinfo_proc_entries; /* keeps track of every entry */
605 struct proc_dir_entry *dir, *entry;
606 struct salinfo_data *data;
607 int i, j;
609 salinfo_dir = proc_mkdir("sal", NULL);
610 if (!salinfo_dir)
611 return 0;
613 for (i=0; i < NR_SALINFO_ENTRIES; i++) {
614 /* pass the feature bit in question as misc data */
615 *sdir++ = proc_create_data(salinfo_entries[i].name, 0, salinfo_dir,
616 &proc_salinfo_fops,
617 (void *)salinfo_entries[i].feature);
620 cpu_notifier_register_begin();
622 for (i = 0; i < ARRAY_SIZE(salinfo_log_name); i++) {
623 data = salinfo_data + i;
624 data->type = i;
625 init_waitqueue_head(&data->read_wait);
626 dir = proc_mkdir(salinfo_log_name[i], salinfo_dir);
627 if (!dir)
628 continue;
630 entry = proc_create_data("event", S_IRUSR, dir,
631 &salinfo_event_fops, data);
632 if (!entry)
633 continue;
634 *sdir++ = entry;
636 entry = proc_create_data("data", S_IRUSR | S_IWUSR, dir,
637 &salinfo_data_fops, data);
638 if (!entry)
639 continue;
640 *sdir++ = entry;
642 /* we missed any events before now */
643 for_each_online_cpu(j)
644 cpumask_set_cpu(j, &data->cpu_event);
646 *sdir++ = dir;
649 *sdir++ = salinfo_dir;
651 init_timer(&salinfo_timer);
652 salinfo_timer.expires = jiffies + SALINFO_TIMER_DELAY;
653 salinfo_timer.function = &salinfo_timeout;
654 add_timer(&salinfo_timer);
656 __register_hotcpu_notifier(&salinfo_cpu_notifier);
658 cpu_notifier_register_done();
660 return 0;
664 * 'data' contains an integer that corresponds to the feature we're
665 * testing
667 static int proc_salinfo_show(struct seq_file *m, void *v)
669 unsigned long data = (unsigned long)v;
670 seq_puts(m, (sal_platform_features & data) ? "1\n" : "0\n");
671 return 0;
674 static int proc_salinfo_open(struct inode *inode, struct file *file)
676 return single_open(file, proc_salinfo_show, PDE_DATA(inode));
679 static const struct file_operations proc_salinfo_fops = {
680 .open = proc_salinfo_open,
681 .read = seq_read,
682 .llseek = seq_lseek,
683 .release = single_release,
686 module_init(salinfo_init);