aba6f4f2e6
Just about all of these have been converted to __func__, so convert the last uses. Signed-off-by: Joe Perches <joe@perches.com> Signed-off-by: Benjamin Herrenschmidt <benh@kernel.crashing.org>
902 lines
23 KiB
C
902 lines
23 KiB
C
/*
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* c 2001 PPC 64 Team, IBM Corp
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*
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* This program is free software; you can redistribute it and/or
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* modify it under the terms of the GNU General Public License
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* as published by the Free Software Foundation; either version
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* 2 of the License, or (at your option) any later version.
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*
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* /dev/nvram driver for PPC64
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*
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* This perhaps should live in drivers/char
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*/
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#include <linux/types.h>
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#include <linux/errno.h>
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#include <linux/init.h>
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#include <linux/spinlock.h>
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#include <linux/slab.h>
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#include <linux/kmsg_dump.h>
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#include <linux/pstore.h>
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#include <linux/ctype.h>
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#include <linux/zlib.h>
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#include <asm/uaccess.h>
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#include <asm/nvram.h>
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#include <asm/rtas.h>
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#include <asm/prom.h>
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#include <asm/machdep.h>
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/* Max bytes to read/write in one go */
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#define NVRW_CNT 0x20
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/*
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* Set oops header version to distinguish between old and new format header.
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* lnx,oops-log partition max size is 4000, header version > 4000 will
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* help in identifying new header.
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*/
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#define OOPS_HDR_VERSION 5000
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static unsigned int nvram_size;
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static int nvram_fetch, nvram_store;
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static char nvram_buf[NVRW_CNT]; /* assume this is in the first 4GB */
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static DEFINE_SPINLOCK(nvram_lock);
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struct err_log_info {
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__be32 error_type;
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__be32 seq_num;
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};
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struct nvram_os_partition {
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const char *name;
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int req_size; /* desired size, in bytes */
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int min_size; /* minimum acceptable size (0 means req_size) */
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long size; /* size of data portion (excluding err_log_info) */
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long index; /* offset of data portion of partition */
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bool os_partition; /* partition initialized by OS, not FW */
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};
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static struct nvram_os_partition rtas_log_partition = {
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.name = "ibm,rtas-log",
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.req_size = 2079,
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.min_size = 1055,
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.index = -1,
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.os_partition = true
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};
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static struct nvram_os_partition oops_log_partition = {
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.name = "lnx,oops-log",
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.req_size = 4000,
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.min_size = 2000,
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.index = -1,
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.os_partition = true
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};
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static const char *pseries_nvram_os_partitions[] = {
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"ibm,rtas-log",
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"lnx,oops-log",
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NULL
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};
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struct oops_log_info {
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__be16 version;
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__be16 report_length;
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__be64 timestamp;
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} __attribute__((packed));
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static void oops_to_nvram(struct kmsg_dumper *dumper,
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enum kmsg_dump_reason reason);
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static struct kmsg_dumper nvram_kmsg_dumper = {
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.dump = oops_to_nvram
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};
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/* See clobbering_unread_rtas_event() */
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#define NVRAM_RTAS_READ_TIMEOUT 5 /* seconds */
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static unsigned long last_unread_rtas_event; /* timestamp */
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/*
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* For capturing and compressing an oops or panic report...
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* big_oops_buf[] holds the uncompressed text we're capturing.
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*
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* oops_buf[] holds the compressed text, preceded by a oops header.
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* oops header has u16 holding the version of oops header (to differentiate
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* between old and new format header) followed by u16 holding the length of
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* the compressed* text (*Or uncompressed, if compression fails.) and u64
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* holding the timestamp. oops_buf[] gets written to NVRAM.
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*
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* oops_log_info points to the header. oops_data points to the compressed text.
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*
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* +- oops_buf
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* | +- oops_data
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* v v
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* +-----------+-----------+-----------+------------------------+
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* | version | length | timestamp | text |
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* | (2 bytes) | (2 bytes) | (8 bytes) | (oops_data_sz bytes) |
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* +-----------+-----------+-----------+------------------------+
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* ^
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* +- oops_log_info
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*
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* We preallocate these buffers during init to avoid kmalloc during oops/panic.
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*/
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static size_t big_oops_buf_sz;
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static char *big_oops_buf, *oops_buf;
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static char *oops_data;
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static size_t oops_data_sz;
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/* Compression parameters */
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#define COMPR_LEVEL 6
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#define WINDOW_BITS 12
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#define MEM_LEVEL 4
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static struct z_stream_s stream;
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#ifdef CONFIG_PSTORE
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static struct nvram_os_partition of_config_partition = {
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.name = "of-config",
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.index = -1,
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.os_partition = false
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};
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static struct nvram_os_partition common_partition = {
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.name = "common",
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.index = -1,
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.os_partition = false
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};
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static enum pstore_type_id nvram_type_ids[] = {
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PSTORE_TYPE_DMESG,
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PSTORE_TYPE_PPC_RTAS,
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PSTORE_TYPE_PPC_OF,
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PSTORE_TYPE_PPC_COMMON,
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-1
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};
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static int read_type;
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static unsigned long last_rtas_event;
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#endif
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static ssize_t pSeries_nvram_read(char *buf, size_t count, loff_t *index)
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{
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unsigned int i;
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unsigned long len;
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int done;
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unsigned long flags;
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char *p = buf;
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if (nvram_size == 0 || nvram_fetch == RTAS_UNKNOWN_SERVICE)
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return -ENODEV;
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if (*index >= nvram_size)
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return 0;
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i = *index;
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if (i + count > nvram_size)
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count = nvram_size - i;
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spin_lock_irqsave(&nvram_lock, flags);
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for (; count != 0; count -= len) {
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len = count;
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if (len > NVRW_CNT)
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len = NVRW_CNT;
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if ((rtas_call(nvram_fetch, 3, 2, &done, i, __pa(nvram_buf),
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len) != 0) || len != done) {
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spin_unlock_irqrestore(&nvram_lock, flags);
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return -EIO;
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}
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memcpy(p, nvram_buf, len);
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p += len;
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i += len;
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}
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spin_unlock_irqrestore(&nvram_lock, flags);
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*index = i;
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return p - buf;
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}
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static ssize_t pSeries_nvram_write(char *buf, size_t count, loff_t *index)
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{
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unsigned int i;
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unsigned long len;
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int done;
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unsigned long flags;
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const char *p = buf;
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if (nvram_size == 0 || nvram_store == RTAS_UNKNOWN_SERVICE)
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return -ENODEV;
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if (*index >= nvram_size)
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return 0;
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i = *index;
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if (i + count > nvram_size)
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count = nvram_size - i;
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spin_lock_irqsave(&nvram_lock, flags);
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for (; count != 0; count -= len) {
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len = count;
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if (len > NVRW_CNT)
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len = NVRW_CNT;
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memcpy(nvram_buf, p, len);
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if ((rtas_call(nvram_store, 3, 2, &done, i, __pa(nvram_buf),
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len) != 0) || len != done) {
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spin_unlock_irqrestore(&nvram_lock, flags);
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return -EIO;
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}
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p += len;
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i += len;
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}
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spin_unlock_irqrestore(&nvram_lock, flags);
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*index = i;
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return p - buf;
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}
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static ssize_t pSeries_nvram_get_size(void)
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{
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return nvram_size ? nvram_size : -ENODEV;
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}
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/* nvram_write_os_partition, nvram_write_error_log
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*
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* We need to buffer the error logs into nvram to ensure that we have
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* the failure information to decode. If we have a severe error there
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* is no way to guarantee that the OS or the machine is in a state to
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* get back to user land and write the error to disk. For example if
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* the SCSI device driver causes a Machine Check by writing to a bad
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* IO address, there is no way of guaranteeing that the device driver
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* is in any state that is would also be able to write the error data
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* captured to disk, thus we buffer it in NVRAM for analysis on the
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* next boot.
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*
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* In NVRAM the partition containing the error log buffer will looks like:
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* Header (in bytes):
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* +-----------+----------+--------+------------+------------------+
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* | signature | checksum | length | name | data |
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* |0 |1 |2 3|4 15|16 length-1|
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* +-----------+----------+--------+------------+------------------+
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*
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* The 'data' section would look like (in bytes):
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* +--------------+------------+-----------------------------------+
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* | event_logged | sequence # | error log |
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* |0 3|4 7|8 error_log_size-1|
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* +--------------+------------+-----------------------------------+
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*
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* event_logged: 0 if event has not been logged to syslog, 1 if it has
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* sequence #: The unique sequence # for each event. (until it wraps)
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* error log: The error log from event_scan
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*/
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int nvram_write_os_partition(struct nvram_os_partition *part, char * buff,
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int length, unsigned int err_type, unsigned int error_log_cnt)
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{
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int rc;
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loff_t tmp_index;
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struct err_log_info info;
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if (part->index == -1) {
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return -ESPIPE;
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}
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if (length > part->size) {
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length = part->size;
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}
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info.error_type = cpu_to_be32(err_type);
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info.seq_num = cpu_to_be32(error_log_cnt);
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tmp_index = part->index;
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rc = ppc_md.nvram_write((char *)&info, sizeof(struct err_log_info), &tmp_index);
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if (rc <= 0) {
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pr_err("%s: Failed nvram_write (%d)\n", __func__, rc);
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return rc;
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}
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rc = ppc_md.nvram_write(buff, length, &tmp_index);
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if (rc <= 0) {
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pr_err("%s: Failed nvram_write (%d)\n", __func__, rc);
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return rc;
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}
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return 0;
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}
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int nvram_write_error_log(char * buff, int length,
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unsigned int err_type, unsigned int error_log_cnt)
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{
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int rc = nvram_write_os_partition(&rtas_log_partition, buff, length,
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err_type, error_log_cnt);
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if (!rc) {
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last_unread_rtas_event = get_seconds();
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#ifdef CONFIG_PSTORE
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last_rtas_event = get_seconds();
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#endif
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}
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return rc;
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}
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/* nvram_read_partition
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*
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* Reads nvram partition for at most 'length'
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*/
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int nvram_read_partition(struct nvram_os_partition *part, char *buff,
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int length, unsigned int *err_type,
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unsigned int *error_log_cnt)
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{
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int rc;
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loff_t tmp_index;
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struct err_log_info info;
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if (part->index == -1)
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return -1;
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if (length > part->size)
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length = part->size;
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tmp_index = part->index;
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if (part->os_partition) {
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rc = ppc_md.nvram_read((char *)&info,
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sizeof(struct err_log_info),
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&tmp_index);
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if (rc <= 0) {
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pr_err("%s: Failed nvram_read (%d)\n", __func__, rc);
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return rc;
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}
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}
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rc = ppc_md.nvram_read(buff, length, &tmp_index);
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if (rc <= 0) {
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pr_err("%s: Failed nvram_read (%d)\n", __func__, rc);
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return rc;
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}
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if (part->os_partition) {
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*error_log_cnt = be32_to_cpu(info.seq_num);
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*err_type = be32_to_cpu(info.error_type);
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}
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return 0;
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}
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/* nvram_read_error_log
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*
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* Reads nvram for error log for at most 'length'
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*/
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int nvram_read_error_log(char *buff, int length,
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unsigned int *err_type, unsigned int *error_log_cnt)
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{
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return nvram_read_partition(&rtas_log_partition, buff, length,
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err_type, error_log_cnt);
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}
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/* This doesn't actually zero anything, but it sets the event_logged
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* word to tell that this event is safely in syslog.
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*/
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int nvram_clear_error_log(void)
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{
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loff_t tmp_index;
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int clear_word = ERR_FLAG_ALREADY_LOGGED;
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int rc;
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if (rtas_log_partition.index == -1)
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return -1;
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tmp_index = rtas_log_partition.index;
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rc = ppc_md.nvram_write((char *)&clear_word, sizeof(int), &tmp_index);
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if (rc <= 0) {
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printk(KERN_ERR "nvram_clear_error_log: Failed nvram_write (%d)\n", rc);
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return rc;
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}
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last_unread_rtas_event = 0;
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return 0;
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}
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/* pseries_nvram_init_os_partition
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*
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* This sets up a partition with an "OS" signature.
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*
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* The general strategy is the following:
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* 1.) If a partition with the indicated name already exists...
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* - If it's large enough, use it.
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* - Otherwise, recycle it and keep going.
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* 2.) Search for a free partition that is large enough.
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* 3.) If there's not a free partition large enough, recycle any obsolete
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* OS partitions and try again.
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* 4.) Will first try getting a chunk that will satisfy the requested size.
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* 5.) If a chunk of the requested size cannot be allocated, then try finding
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* a chunk that will satisfy the minum needed.
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*
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* Returns 0 on success, else -1.
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*/
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static int __init pseries_nvram_init_os_partition(struct nvram_os_partition
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*part)
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{
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loff_t p;
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int size;
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/* Look for ours */
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p = nvram_find_partition(part->name, NVRAM_SIG_OS, &size);
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/* Found one but too small, remove it */
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if (p && size < part->min_size) {
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pr_info("nvram: Found too small %s partition,"
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" removing it...\n", part->name);
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nvram_remove_partition(part->name, NVRAM_SIG_OS, NULL);
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p = 0;
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}
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/* Create one if we didn't find */
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if (!p) {
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p = nvram_create_partition(part->name, NVRAM_SIG_OS,
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part->req_size, part->min_size);
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if (p == -ENOSPC) {
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pr_info("nvram: No room to create %s partition, "
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"deleting any obsolete OS partitions...\n",
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part->name);
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nvram_remove_partition(NULL, NVRAM_SIG_OS,
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pseries_nvram_os_partitions);
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p = nvram_create_partition(part->name, NVRAM_SIG_OS,
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part->req_size, part->min_size);
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}
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}
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if (p <= 0) {
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pr_err("nvram: Failed to find or create %s"
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" partition, err %d\n", part->name, (int)p);
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return -1;
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}
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part->index = p;
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part->size = nvram_get_partition_size(p) - sizeof(struct err_log_info);
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return 0;
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}
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/*
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* Are we using the ibm,rtas-log for oops/panic reports? And if so,
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* would logging this oops/panic overwrite an RTAS event that rtas_errd
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* hasn't had a chance to read and process? Return 1 if so, else 0.
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*
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* We assume that if rtas_errd hasn't read the RTAS event in
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* NVRAM_RTAS_READ_TIMEOUT seconds, it's probably not going to.
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*/
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static int clobbering_unread_rtas_event(void)
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{
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return (oops_log_partition.index == rtas_log_partition.index
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&& last_unread_rtas_event
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&& get_seconds() - last_unread_rtas_event <=
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NVRAM_RTAS_READ_TIMEOUT);
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}
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/* Derived from logfs_compress() */
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static int nvram_compress(const void *in, void *out, size_t inlen,
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size_t outlen)
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{
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int err, ret;
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ret = -EIO;
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err = zlib_deflateInit2(&stream, COMPR_LEVEL, Z_DEFLATED, WINDOW_BITS,
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MEM_LEVEL, Z_DEFAULT_STRATEGY);
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if (err != Z_OK)
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goto error;
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stream.next_in = in;
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stream.avail_in = inlen;
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stream.total_in = 0;
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stream.next_out = out;
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stream.avail_out = outlen;
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stream.total_out = 0;
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err = zlib_deflate(&stream, Z_FINISH);
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if (err != Z_STREAM_END)
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goto error;
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err = zlib_deflateEnd(&stream);
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if (err != Z_OK)
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goto error;
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if (stream.total_out >= stream.total_in)
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goto error;
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ret = stream.total_out;
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error:
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return ret;
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}
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/* Compress the text from big_oops_buf into oops_buf. */
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static int zip_oops(size_t text_len)
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{
|
|
struct oops_log_info *oops_hdr = (struct oops_log_info *)oops_buf;
|
|
int zipped_len = nvram_compress(big_oops_buf, oops_data, text_len,
|
|
oops_data_sz);
|
|
if (zipped_len < 0) {
|
|
pr_err("nvram: compression failed; returned %d\n", zipped_len);
|
|
pr_err("nvram: logging uncompressed oops/panic report\n");
|
|
return -1;
|
|
}
|
|
oops_hdr->version = cpu_to_be16(OOPS_HDR_VERSION);
|
|
oops_hdr->report_length = cpu_to_be16(zipped_len);
|
|
oops_hdr->timestamp = cpu_to_be64(get_seconds());
|
|
return 0;
|
|
}
|
|
|
|
#ifdef CONFIG_PSTORE
|
|
static int nvram_pstore_open(struct pstore_info *psi)
|
|
{
|
|
/* Reset the iterator to start reading partitions again */
|
|
read_type = -1;
|
|
return 0;
|
|
}
|
|
|
|
/**
|
|
* nvram_pstore_write - pstore write callback for nvram
|
|
* @type: Type of message logged
|
|
* @reason: reason behind dump (oops/panic)
|
|
* @id: identifier to indicate the write performed
|
|
* @part: pstore writes data to registered buffer in parts,
|
|
* part number will indicate the same.
|
|
* @count: Indicates oops count
|
|
* @compressed: Flag to indicate the log is compressed
|
|
* @size: number of bytes written to the registered buffer
|
|
* @psi: registered pstore_info structure
|
|
*
|
|
* Called by pstore_dump() when an oops or panic report is logged in the
|
|
* printk buffer.
|
|
* Returns 0 on successful write.
|
|
*/
|
|
static int nvram_pstore_write(enum pstore_type_id type,
|
|
enum kmsg_dump_reason reason,
|
|
u64 *id, unsigned int part, int count,
|
|
bool compressed, size_t size,
|
|
struct pstore_info *psi)
|
|
{
|
|
int rc;
|
|
unsigned int err_type = ERR_TYPE_KERNEL_PANIC;
|
|
struct oops_log_info *oops_hdr = (struct oops_log_info *) oops_buf;
|
|
|
|
/* part 1 has the recent messages from printk buffer */
|
|
if (part > 1 || type != PSTORE_TYPE_DMESG ||
|
|
clobbering_unread_rtas_event())
|
|
return -1;
|
|
|
|
oops_hdr->version = cpu_to_be16(OOPS_HDR_VERSION);
|
|
oops_hdr->report_length = cpu_to_be16(size);
|
|
oops_hdr->timestamp = cpu_to_be64(get_seconds());
|
|
|
|
if (compressed)
|
|
err_type = ERR_TYPE_KERNEL_PANIC_GZ;
|
|
|
|
rc = nvram_write_os_partition(&oops_log_partition, oops_buf,
|
|
(int) (sizeof(*oops_hdr) + size), err_type, count);
|
|
|
|
if (rc != 0)
|
|
return rc;
|
|
|
|
*id = part;
|
|
return 0;
|
|
}
|
|
|
|
/*
|
|
* Reads the oops/panic report, rtas, of-config and common partition.
|
|
* Returns the length of the data we read from each partition.
|
|
* Returns 0 if we've been called before.
|
|
*/
|
|
static ssize_t nvram_pstore_read(u64 *id, enum pstore_type_id *type,
|
|
int *count, struct timespec *time, char **buf,
|
|
bool *compressed, struct pstore_info *psi)
|
|
{
|
|
struct oops_log_info *oops_hdr;
|
|
unsigned int err_type, id_no, size = 0;
|
|
struct nvram_os_partition *part = NULL;
|
|
char *buff = NULL;
|
|
int sig = 0;
|
|
loff_t p;
|
|
|
|
read_type++;
|
|
|
|
switch (nvram_type_ids[read_type]) {
|
|
case PSTORE_TYPE_DMESG:
|
|
part = &oops_log_partition;
|
|
*type = PSTORE_TYPE_DMESG;
|
|
break;
|
|
case PSTORE_TYPE_PPC_RTAS:
|
|
part = &rtas_log_partition;
|
|
*type = PSTORE_TYPE_PPC_RTAS;
|
|
time->tv_sec = last_rtas_event;
|
|
time->tv_nsec = 0;
|
|
break;
|
|
case PSTORE_TYPE_PPC_OF:
|
|
sig = NVRAM_SIG_OF;
|
|
part = &of_config_partition;
|
|
*type = PSTORE_TYPE_PPC_OF;
|
|
*id = PSTORE_TYPE_PPC_OF;
|
|
time->tv_sec = 0;
|
|
time->tv_nsec = 0;
|
|
break;
|
|
case PSTORE_TYPE_PPC_COMMON:
|
|
sig = NVRAM_SIG_SYS;
|
|
part = &common_partition;
|
|
*type = PSTORE_TYPE_PPC_COMMON;
|
|
*id = PSTORE_TYPE_PPC_COMMON;
|
|
time->tv_sec = 0;
|
|
time->tv_nsec = 0;
|
|
break;
|
|
default:
|
|
return 0;
|
|
}
|
|
|
|
if (!part->os_partition) {
|
|
p = nvram_find_partition(part->name, sig, &size);
|
|
if (p <= 0) {
|
|
pr_err("nvram: Failed to find partition %s, "
|
|
"err %d\n", part->name, (int)p);
|
|
return 0;
|
|
}
|
|
part->index = p;
|
|
part->size = size;
|
|
}
|
|
|
|
buff = kmalloc(part->size, GFP_KERNEL);
|
|
|
|
if (!buff)
|
|
return -ENOMEM;
|
|
|
|
if (nvram_read_partition(part, buff, part->size, &err_type, &id_no)) {
|
|
kfree(buff);
|
|
return 0;
|
|
}
|
|
|
|
*count = 0;
|
|
|
|
if (part->os_partition)
|
|
*id = id_no;
|
|
|
|
if (nvram_type_ids[read_type] == PSTORE_TYPE_DMESG) {
|
|
size_t length, hdr_size;
|
|
|
|
oops_hdr = (struct oops_log_info *)buff;
|
|
if (be16_to_cpu(oops_hdr->version) < OOPS_HDR_VERSION) {
|
|
/* Old format oops header had 2-byte record size */
|
|
hdr_size = sizeof(u16);
|
|
length = be16_to_cpu(oops_hdr->version);
|
|
time->tv_sec = 0;
|
|
time->tv_nsec = 0;
|
|
} else {
|
|
hdr_size = sizeof(*oops_hdr);
|
|
length = be16_to_cpu(oops_hdr->report_length);
|
|
time->tv_sec = be64_to_cpu(oops_hdr->timestamp);
|
|
time->tv_nsec = 0;
|
|
}
|
|
*buf = kmalloc(length, GFP_KERNEL);
|
|
if (*buf == NULL)
|
|
return -ENOMEM;
|
|
memcpy(*buf, buff + hdr_size, length);
|
|
kfree(buff);
|
|
|
|
if (err_type == ERR_TYPE_KERNEL_PANIC_GZ)
|
|
*compressed = true;
|
|
else
|
|
*compressed = false;
|
|
return length;
|
|
}
|
|
|
|
*buf = buff;
|
|
return part->size;
|
|
}
|
|
|
|
static struct pstore_info nvram_pstore_info = {
|
|
.owner = THIS_MODULE,
|
|
.name = "nvram",
|
|
.open = nvram_pstore_open,
|
|
.read = nvram_pstore_read,
|
|
.write = nvram_pstore_write,
|
|
};
|
|
|
|
static int nvram_pstore_init(void)
|
|
{
|
|
int rc = 0;
|
|
|
|
nvram_pstore_info.buf = oops_data;
|
|
nvram_pstore_info.bufsize = oops_data_sz;
|
|
|
|
rc = pstore_register(&nvram_pstore_info);
|
|
if (rc != 0)
|
|
pr_err("nvram: pstore_register() failed, defaults to "
|
|
"kmsg_dump; returned %d\n", rc);
|
|
|
|
return rc;
|
|
}
|
|
#else
|
|
static int nvram_pstore_init(void)
|
|
{
|
|
return -1;
|
|
}
|
|
#endif
|
|
|
|
static void __init nvram_init_oops_partition(int rtas_partition_exists)
|
|
{
|
|
int rc;
|
|
|
|
rc = pseries_nvram_init_os_partition(&oops_log_partition);
|
|
if (rc != 0) {
|
|
if (!rtas_partition_exists)
|
|
return;
|
|
pr_notice("nvram: Using %s partition to log both"
|
|
" RTAS errors and oops/panic reports\n",
|
|
rtas_log_partition.name);
|
|
memcpy(&oops_log_partition, &rtas_log_partition,
|
|
sizeof(rtas_log_partition));
|
|
}
|
|
oops_buf = kmalloc(oops_log_partition.size, GFP_KERNEL);
|
|
if (!oops_buf) {
|
|
pr_err("nvram: No memory for %s partition\n",
|
|
oops_log_partition.name);
|
|
return;
|
|
}
|
|
oops_data = oops_buf + sizeof(struct oops_log_info);
|
|
oops_data_sz = oops_log_partition.size - sizeof(struct oops_log_info);
|
|
|
|
rc = nvram_pstore_init();
|
|
|
|
if (!rc)
|
|
return;
|
|
|
|
/*
|
|
* Figure compression (preceded by elimination of each line's <n>
|
|
* severity prefix) will reduce the oops/panic report to at most
|
|
* 45% of its original size.
|
|
*/
|
|
big_oops_buf_sz = (oops_data_sz * 100) / 45;
|
|
big_oops_buf = kmalloc(big_oops_buf_sz, GFP_KERNEL);
|
|
if (big_oops_buf) {
|
|
stream.workspace = kmalloc(zlib_deflate_workspacesize(
|
|
WINDOW_BITS, MEM_LEVEL), GFP_KERNEL);
|
|
if (!stream.workspace) {
|
|
pr_err("nvram: No memory for compression workspace; "
|
|
"skipping compression of %s partition data\n",
|
|
oops_log_partition.name);
|
|
kfree(big_oops_buf);
|
|
big_oops_buf = NULL;
|
|
}
|
|
} else {
|
|
pr_err("No memory for uncompressed %s data; "
|
|
"skipping compression\n", oops_log_partition.name);
|
|
stream.workspace = NULL;
|
|
}
|
|
|
|
rc = kmsg_dump_register(&nvram_kmsg_dumper);
|
|
if (rc != 0) {
|
|
pr_err("nvram: kmsg_dump_register() failed; returned %d\n", rc);
|
|
kfree(oops_buf);
|
|
kfree(big_oops_buf);
|
|
kfree(stream.workspace);
|
|
}
|
|
}
|
|
|
|
static int __init pseries_nvram_init_log_partitions(void)
|
|
{
|
|
int rc;
|
|
|
|
/* Scan nvram for partitions */
|
|
nvram_scan_partitions();
|
|
|
|
rc = pseries_nvram_init_os_partition(&rtas_log_partition);
|
|
nvram_init_oops_partition(rc == 0);
|
|
return 0;
|
|
}
|
|
machine_arch_initcall(pseries, pseries_nvram_init_log_partitions);
|
|
|
|
int __init pSeries_nvram_init(void)
|
|
{
|
|
struct device_node *nvram;
|
|
const __be32 *nbytes_p;
|
|
unsigned int proplen;
|
|
|
|
nvram = of_find_node_by_type(NULL, "nvram");
|
|
if (nvram == NULL)
|
|
return -ENODEV;
|
|
|
|
nbytes_p = of_get_property(nvram, "#bytes", &proplen);
|
|
if (nbytes_p == NULL || proplen != sizeof(unsigned int)) {
|
|
of_node_put(nvram);
|
|
return -EIO;
|
|
}
|
|
|
|
nvram_size = be32_to_cpup(nbytes_p);
|
|
|
|
nvram_fetch = rtas_token("nvram-fetch");
|
|
nvram_store = rtas_token("nvram-store");
|
|
printk(KERN_INFO "PPC64 nvram contains %d bytes\n", nvram_size);
|
|
of_node_put(nvram);
|
|
|
|
ppc_md.nvram_read = pSeries_nvram_read;
|
|
ppc_md.nvram_write = pSeries_nvram_write;
|
|
ppc_md.nvram_size = pSeries_nvram_get_size;
|
|
|
|
return 0;
|
|
}
|
|
|
|
|
|
/*
|
|
* This is our kmsg_dump callback, called after an oops or panic report
|
|
* has been written to the printk buffer. We want to capture as much
|
|
* of the printk buffer as possible. First, capture as much as we can
|
|
* that we think will compress sufficiently to fit in the lnx,oops-log
|
|
* partition. If that's too much, go back and capture uncompressed text.
|
|
*/
|
|
static void oops_to_nvram(struct kmsg_dumper *dumper,
|
|
enum kmsg_dump_reason reason)
|
|
{
|
|
struct oops_log_info *oops_hdr = (struct oops_log_info *)oops_buf;
|
|
static unsigned int oops_count = 0;
|
|
static bool panicking = false;
|
|
static DEFINE_SPINLOCK(lock);
|
|
unsigned long flags;
|
|
size_t text_len;
|
|
unsigned int err_type = ERR_TYPE_KERNEL_PANIC_GZ;
|
|
int rc = -1;
|
|
|
|
switch (reason) {
|
|
case KMSG_DUMP_RESTART:
|
|
case KMSG_DUMP_HALT:
|
|
case KMSG_DUMP_POWEROFF:
|
|
/* These are almost always orderly shutdowns. */
|
|
return;
|
|
case KMSG_DUMP_OOPS:
|
|
break;
|
|
case KMSG_DUMP_PANIC:
|
|
panicking = true;
|
|
break;
|
|
case KMSG_DUMP_EMERG:
|
|
if (panicking)
|
|
/* Panic report already captured. */
|
|
return;
|
|
break;
|
|
default:
|
|
pr_err("%s: ignoring unrecognized KMSG_DUMP_* reason %d\n",
|
|
__func__, (int) reason);
|
|
return;
|
|
}
|
|
|
|
if (clobbering_unread_rtas_event())
|
|
return;
|
|
|
|
if (!spin_trylock_irqsave(&lock, flags))
|
|
return;
|
|
|
|
if (big_oops_buf) {
|
|
kmsg_dump_get_buffer(dumper, false,
|
|
big_oops_buf, big_oops_buf_sz, &text_len);
|
|
rc = zip_oops(text_len);
|
|
}
|
|
if (rc != 0) {
|
|
kmsg_dump_rewind(dumper);
|
|
kmsg_dump_get_buffer(dumper, false,
|
|
oops_data, oops_data_sz, &text_len);
|
|
err_type = ERR_TYPE_KERNEL_PANIC;
|
|
oops_hdr->version = cpu_to_be16(OOPS_HDR_VERSION);
|
|
oops_hdr->report_length = cpu_to_be16(text_len);
|
|
oops_hdr->timestamp = cpu_to_be64(get_seconds());
|
|
}
|
|
|
|
(void) nvram_write_os_partition(&oops_log_partition, oops_buf,
|
|
(int) (sizeof(*oops_hdr) + text_len), err_type,
|
|
++oops_count);
|
|
|
|
spin_unlock_irqrestore(&lock, flags);
|
|
}
|