edac_mc.c 33.3 KB
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/*
 * edac_mc kernel module
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 * (C) 2005, 2006 Linux Networx (http://lnxi.com)
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 * This file may be distributed under the terms of the
 * GNU General Public License.
 *
 * Written by Thayne Harbaugh
 * Based on work by Dan Hollis <goemon at anime dot net> and others.
 *	http://www.anime.net/~goemon/linux-ecc/
 *
 * Modified by Dave Peterson and Doug Thompson
 *
 */

#include <linux/module.h>
#include <linux/proc_fs.h>
#include <linux/kernel.h>
#include <linux/types.h>
#include <linux/smp.h>
#include <linux/init.h>
#include <linux/sysctl.h>
#include <linux/highmem.h>
#include <linux/timer.h>
#include <linux/slab.h>
#include <linux/jiffies.h>
#include <linux/spinlock.h>
#include <linux/list.h>
#include <linux/ctype.h>
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#include <linux/edac.h>
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#include <linux/bitops.h>
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#include <asm/uaccess.h>
#include <asm/page.h>
#include <asm/edac.h>
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#include "edac_core.h"
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#include "edac_module.h"
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#define CREATE_TRACE_POINTS
#define TRACE_INCLUDE_PATH ../../include/ras
#include <ras/ras_event.h>

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/* lock to memory controller's control array */
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static DEFINE_MUTEX(mem_ctls_mutex);
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static LIST_HEAD(mc_devices);
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/*
 * Used to lock EDAC MC to just one module, avoiding two drivers e. g.
 *	apei/ghes and i7core_edac to be used at the same time.
 */
static void const *edac_mc_owner;

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unsigned edac_dimm_info_location(struct dimm_info *dimm, char *buf,
			         unsigned len)
{
	struct mem_ctl_info *mci = dimm->mci;
	int i, n, count = 0;
	char *p = buf;

	for (i = 0; i < mci->n_layers; i++) {
		n = snprintf(p, len, "%s %d ",
			      edac_layer_name[mci->layers[i].type],
			      dimm->location[i]);
		p += n;
		len -= n;
		count += n;
		if (!len)
			break;
	}

	return count;
}

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#ifdef CONFIG_EDAC_DEBUG

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static void edac_mc_dump_channel(struct rank_info *chan)
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{
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	edac_dbg(4, "  channel->chan_idx = %d\n", chan->chan_idx);
	edac_dbg(4, "    channel = %p\n", chan);
	edac_dbg(4, "    channel->csrow = %p\n", chan->csrow);
	edac_dbg(4, "    channel->dimm = %p\n", chan->dimm);
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}

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static void edac_mc_dump_dimm(struct dimm_info *dimm, int number)
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{
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	char location[80];

	edac_dimm_info_location(dimm, location, sizeof(location));

	edac_dbg(4, "%s%i: %smapped as virtual row %d, chan %d\n",
		 dimm->mci->mem_is_per_rank ? "rank" : "dimm",
		 number, location, dimm->csrow, dimm->cschannel);
	edac_dbg(4, "  dimm = %p\n", dimm);
	edac_dbg(4, "  dimm->label = '%s'\n", dimm->label);
	edac_dbg(4, "  dimm->nr_pages = 0x%x\n", dimm->nr_pages);
	edac_dbg(4, "  dimm->grain = %d\n", dimm->grain);
	edac_dbg(4, "  dimm->nr_pages = 0x%x\n", dimm->nr_pages);
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}

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static void edac_mc_dump_csrow(struct csrow_info *csrow)
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{
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	edac_dbg(4, "csrow->csrow_idx = %d\n", csrow->csrow_idx);
	edac_dbg(4, "  csrow = %p\n", csrow);
	edac_dbg(4, "  csrow->first_page = 0x%lx\n", csrow->first_page);
	edac_dbg(4, "  csrow->last_page = 0x%lx\n", csrow->last_page);
	edac_dbg(4, "  csrow->page_mask = 0x%lx\n", csrow->page_mask);
	edac_dbg(4, "  csrow->nr_channels = %d\n", csrow->nr_channels);
	edac_dbg(4, "  csrow->channels = %p\n", csrow->channels);
	edac_dbg(4, "  csrow->mci = %p\n", csrow->mci);
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}

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static void edac_mc_dump_mci(struct mem_ctl_info *mci)
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{
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	edac_dbg(3, "\tmci = %p\n", mci);
	edac_dbg(3, "\tmci->mtype_cap = %lx\n", mci->mtype_cap);
	edac_dbg(3, "\tmci->edac_ctl_cap = %lx\n", mci->edac_ctl_cap);
	edac_dbg(3, "\tmci->edac_cap = %lx\n", mci->edac_cap);
	edac_dbg(4, "\tmci->edac_check = %p\n", mci->edac_check);
	edac_dbg(3, "\tmci->nr_csrows = %d, csrows = %p\n",
		 mci->nr_csrows, mci->csrows);
	edac_dbg(3, "\tmci->nr_dimms = %d, dimms = %p\n",
		 mci->tot_dimms, mci->dimms);
	edac_dbg(3, "\tdev = %p\n", mci->pdev);
	edac_dbg(3, "\tmod_name:ctl_name = %s:%s\n",
		 mci->mod_name, mci->ctl_name);
	edac_dbg(3, "\tpvt_info = %p\n\n", mci->pvt_info);
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}

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#endif				/* CONFIG_EDAC_DEBUG */

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/*
 * keep those in sync with the enum mem_type
 */
const char *edac_mem_types[] = {
	"Empty csrow",
	"Reserved csrow type",
	"Unknown csrow type",
	"Fast page mode RAM",
	"Extended data out RAM",
	"Burst Extended data out RAM",
	"Single data rate SDRAM",
	"Registered single data rate SDRAM",
	"Double data rate SDRAM",
	"Registered Double data rate SDRAM",
	"Rambus DRAM",
	"Unbuffered DDR2 RAM",
	"Fully buffered DDR2",
	"Registered DDR2 RAM",
	"Rambus XDR",
	"Unbuffered DDR3 RAM",
	"Registered DDR3 RAM",
};
EXPORT_SYMBOL_GPL(edac_mem_types);

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/**
 * edac_align_ptr - Prepares the pointer offsets for a single-shot allocation
 * @p:		pointer to a pointer with the memory offset to be used. At
 *		return, this will be incremented to point to the next offset
 * @size:	Size of the data structure to be reserved
 * @n_elems:	Number of elements that should be reserved
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 *
 * If 'size' is a constant, the compiler will optimize this whole function
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 * down to either a no-op or the addition of a constant to the value of '*p'.
 *
 * The 'p' pointer is absolutely needed to keep the proper advancing
 * further in memory to the proper offsets when allocating the struct along
 * with its embedded structs, as edac_device_alloc_ctl_info() does it
 * above, for example.
 *
 * At return, the pointer 'p' will be incremented to be used on a next call
 * to this function.
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 */
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void *edac_align_ptr(void **p, unsigned size, int n_elems)
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{
	unsigned align, r;
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	void *ptr = *p;
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	*p += size * n_elems;

	/*
	 * 'p' can possibly be an unaligned item X such that sizeof(X) is
	 * 'size'.  Adjust 'p' so that its alignment is at least as
	 * stringent as what the compiler would provide for X and return
	 * the aligned result.
	 * Here we assume that the alignment of a "long long" is the most
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	 * stringent alignment that the compiler will ever provide by default.
	 * As far as I know, this is a reasonable assumption.
	 */
	if (size > sizeof(long))
		align = sizeof(long long);
	else if (size > sizeof(int))
		align = sizeof(long);
	else if (size > sizeof(short))
		align = sizeof(int);
	else if (size > sizeof(char))
		align = sizeof(short);
	else
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		return (char *)ptr;
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	r = (unsigned long)p % align;
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	if (r == 0)
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		return (char *)ptr;
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	*p += align - r;

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	return (void *)(((unsigned long)ptr) + align - r);
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}

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static void _edac_mc_free(struct mem_ctl_info *mci)
{
	int i, chn, row;
	struct csrow_info *csr;
	const unsigned int tot_dimms = mci->tot_dimms;
	const unsigned int tot_channels = mci->num_cschannel;
	const unsigned int tot_csrows = mci->nr_csrows;

	if (mci->dimms) {
		for (i = 0; i < tot_dimms; i++)
			kfree(mci->dimms[i]);
		kfree(mci->dimms);
	}
	if (mci->csrows) {
		for (row = 0; row < tot_csrows; row++) {
			csr = mci->csrows[row];
			if (csr) {
				if (csr->channels) {
					for (chn = 0; chn < tot_channels; chn++)
						kfree(csr->channels[chn]);
					kfree(csr->channels);
				}
				kfree(csr);
			}
		}
		kfree(mci->csrows);
	}
	kfree(mci);
}

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/**
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 * edac_mc_alloc: Allocate and partially fill a struct mem_ctl_info structure
 * @mc_num:		Memory controller number
 * @n_layers:		Number of MC hierarchy layers
 * layers:		Describes each layer as seen by the Memory Controller
 * @size_pvt:		size of private storage needed
 *
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 *
 * Everything is kmalloc'ed as one big chunk - more efficient.
 * Only can be used if all structures have the same lifetime - otherwise
 * you have to allocate and initialize your own structures.
 *
 * Use edac_mc_free() to free mc structures allocated by this function.
 *
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 * NOTE: drivers handle multi-rank memories in different ways: in some
 * drivers, one multi-rank memory stick is mapped as one entry, while, in
 * others, a single multi-rank memory stick would be mapped into several
 * entries. Currently, this function will allocate multiple struct dimm_info
 * on such scenarios, as grouping the multiple ranks require drivers change.
 *
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 * Returns:
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 *	On failure: NULL
 *	On success: struct mem_ctl_info pointer
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 */
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struct mem_ctl_info *edac_mc_alloc(unsigned mc_num,
				   unsigned n_layers,
				   struct edac_mc_layer *layers,
				   unsigned sz_pvt)
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{
	struct mem_ctl_info *mci;
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	struct edac_mc_layer *layer;
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	struct csrow_info *csr;
	struct rank_info *chan;
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	struct dimm_info *dimm;
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	u32 *ce_per_layer[EDAC_MAX_LAYERS], *ue_per_layer[EDAC_MAX_LAYERS];
	unsigned pos[EDAC_MAX_LAYERS];
	unsigned size, tot_dimms = 1, count = 1;
	unsigned tot_csrows = 1, tot_channels = 1, tot_errcount = 0;
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	void *pvt, *p, *ptr = NULL;
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	int i, j, row, chn, n, len, off;
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	bool per_rank = false;

	BUG_ON(n_layers > EDAC_MAX_LAYERS || n_layers == 0);
	/*
	 * Calculate the total amount of dimms and csrows/cschannels while
	 * in the old API emulation mode
	 */
	for (i = 0; i < n_layers; i++) {
		tot_dimms *= layers[i].size;
		if (layers[i].is_virt_csrow)
			tot_csrows *= layers[i].size;
		else
			tot_channels *= layers[i].size;

		if (layers[i].type == EDAC_MC_LAYER_CHIP_SELECT)
			per_rank = true;
	}
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	/* Figure out the offsets of the various items from the start of an mc
	 * structure.  We want the alignment of each item to be at least as
	 * stringent as what the compiler would provide if we could simply
	 * hardcode everything into a single struct.
	 */
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	mci = edac_align_ptr(&ptr, sizeof(*mci), 1);
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	layer = edac_align_ptr(&ptr, sizeof(*layer), n_layers);
	for (i = 0; i < n_layers; i++) {
		count *= layers[i].size;
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		edac_dbg(4, "errcount layer %d size %d\n", i, count);
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		ce_per_layer[i] = edac_align_ptr(&ptr, sizeof(u32), count);
		ue_per_layer[i] = edac_align_ptr(&ptr, sizeof(u32), count);
		tot_errcount += 2 * count;
	}

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	edac_dbg(4, "allocating %d error counters\n", tot_errcount);
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	pvt = edac_align_ptr(&ptr, sz_pvt, 1);
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	size = ((unsigned long)pvt) + sz_pvt;
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	edac_dbg(1, "allocating %u bytes for mci data (%d %s, %d csrows/channels)\n",
		 size,
		 tot_dimms,
		 per_rank ? "ranks" : "dimms",
		 tot_csrows * tot_channels);
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	mci = kzalloc(size, GFP_KERNEL);
	if (mci == NULL)
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		return NULL;

	/* Adjust pointers so they point within the memory we just allocated
	 * rather than an imaginary chunk of memory located at address 0.
	 */
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	layer = (struct edac_mc_layer *)(((char *)mci) + ((unsigned long)layer));
	for (i = 0; i < n_layers; i++) {
		mci->ce_per_layer[i] = (u32 *)((char *)mci + ((unsigned long)ce_per_layer[i]));
		mci->ue_per_layer[i] = (u32 *)((char *)mci + ((unsigned long)ue_per_layer[i]));
	}
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	pvt = sz_pvt ? (((char *)mci) + ((unsigned long)pvt)) : NULL;
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	/* setup index and various internal pointers */
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	mci->mc_idx = mc_num;
	mci->tot_dimms = tot_dimms;
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	mci->pvt_info = pvt;
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	mci->n_layers = n_layers;
	mci->layers = layer;
	memcpy(mci->layers, layers, sizeof(*layer) * n_layers);
	mci->nr_csrows = tot_csrows;
	mci->num_cschannel = tot_channels;
	mci->mem_is_per_rank = per_rank;
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	/*
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	 * Alocate and fill the csrow/channels structs
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	 */
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	mci->csrows = kcalloc(tot_csrows, sizeof(*mci->csrows), GFP_KERNEL);
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	if (!mci->csrows)
		goto error;
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	for (row = 0; row < tot_csrows; row++) {
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		csr = kzalloc(sizeof(**mci->csrows), GFP_KERNEL);
		if (!csr)
			goto error;
		mci->csrows[row] = csr;
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		csr->csrow_idx = row;
		csr->mci = mci;
		csr->nr_channels = tot_channels;
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		csr->channels = kcalloc(tot_channels, sizeof(*csr->channels),
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					GFP_KERNEL);
		if (!csr->channels)
			goto error;
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		for (chn = 0; chn < tot_channels; chn++) {
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			chan = kzalloc(sizeof(**csr->channels), GFP_KERNEL);
			if (!chan)
				goto error;
			csr->channels[chn] = chan;
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			chan->chan_idx = chn;
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			chan->csrow = csr;
		}
	}

	/*
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	 * Allocate and fill the dimm structs
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	 */
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	mci->dimms  = kcalloc(tot_dimms, sizeof(*mci->dimms), GFP_KERNEL);
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	if (!mci->dimms)
		goto error;

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	memset(&pos, 0, sizeof(pos));
	row = 0;
	chn = 0;
	for (i = 0; i < tot_dimms; i++) {
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		chan = mci->csrows[row]->channels[chn];
		off = EDAC_DIMM_OFF(layer, n_layers, pos[0], pos[1], pos[2]);
		if (off < 0 || off >= tot_dimms) {
			edac_mc_printk(mci, KERN_ERR, "EDAC core bug: EDAC_DIMM_OFF is trying to do an illegal data access\n");
			goto error;
		}
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		dimm = kzalloc(sizeof(**mci->dimms), GFP_KERNEL);
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		if (!dimm)
			goto error;
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		mci->dimms[off] = dimm;
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		dimm->mci = mci;

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		/*
		 * Copy DIMM location and initialize it.
		 */
		len = sizeof(dimm->label);
		p = dimm->label;
		n = snprintf(p, len, "mc#%u", mc_num);
		p += n;
		len -= n;
		for (j = 0; j < n_layers; j++) {
			n = snprintf(p, len, "%s#%u",
				     edac_layer_name[layers[j].type],
				     pos[j]);
			p += n;
			len -= n;
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			dimm->location[j] = pos[j];

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			if (len <= 0)
				break;
		}

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		/* Link it to the csrows old API data */
		chan->dimm = dimm;
		dimm->csrow = row;
		dimm->cschannel = chn;

		/* Increment csrow location */
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		if (layers[0].is_virt_csrow) {
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			chn++;
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			if (chn == tot_channels) {
				chn = 0;
				row++;
			}
		} else {
			row++;
			if (row == tot_csrows) {
				row = 0;
				chn++;
			}
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		}
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		/* Increment dimm location */
		for (j = n_layers - 1; j >= 0; j--) {
			pos[j]++;
			if (pos[j] < layers[j].size)
				break;
			pos[j] = 0;
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		}
	}

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	mci->op_state = OP_ALLOC;
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	return mci;
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error:
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	_edac_mc_free(mci);
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	return NULL;
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}
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EXPORT_SYMBOL_GPL(edac_mc_alloc);
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/**
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 * edac_mc_free
 *	'Free' a previously allocated 'mci' structure
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 * @mci: pointer to a struct mem_ctl_info structure
 */
void edac_mc_free(struct mem_ctl_info *mci)
{
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	edac_dbg(1, "\n");
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	/* If we're not yet registered with sysfs free only what was allocated
	 * in edac_mc_alloc().
	 */
	if (!device_is_registered(&mci->dev)) {
		_edac_mc_free(mci);
		return;
	}

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	/* the mci instance is freed here, when the sysfs object is dropped */
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	edac_unregister_sysfs(mci);
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}
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EXPORT_SYMBOL_GPL(edac_mc_free);
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/**
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 * find_mci_by_dev
 *
 *	scan list of controllers looking for the one that manages
 *	the 'dev' device
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 * @dev: pointer to a struct device related with the MCI
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 */
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struct mem_ctl_info *find_mci_by_dev(struct device *dev)
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{
	struct mem_ctl_info *mci;
	struct list_head *item;

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	edac_dbg(3, "\n");
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	list_for_each(item, &mc_devices) {
		mci = list_entry(item, struct mem_ctl_info, link);

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		if (mci->pdev == dev)
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			return mci;
	}

	return NULL;
}
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EXPORT_SYMBOL_GPL(find_mci_by_dev);
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/*
 * handler for EDAC to check if NMI type handler has asserted interrupt
 */
static int edac_mc_assert_error_check_and_clear(void)
{
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	int old_state;
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	if (edac_op_state == EDAC_OPSTATE_POLL)
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		return 1;

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	old_state = edac_err_assert;
	edac_err_assert = 0;
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	return old_state;
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}

/*
 * edac_mc_workq_function
 *	performs the operation scheduled by a workq request
 */
static void edac_mc_workq_function(struct work_struct *work_req)
{
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	struct delayed_work *d_work = to_delayed_work(work_req);
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	struct mem_ctl_info *mci = to_edac_mem_ctl_work(d_work);

	mutex_lock(&mem_ctls_mutex);

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	/* if this control struct has movd to offline state, we are done */
	if (mci->op_state == OP_OFFLINE) {
		mutex_unlock(&mem_ctls_mutex);
		return;
	}

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	/* Only poll controllers that are running polled and have a check */
	if (edac_mc_assert_error_check_and_clear() && (mci->edac_check != NULL))
		mci->edac_check(mci);

	mutex_unlock(&mem_ctls_mutex);

	/* Reschedule */
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	queue_delayed_work(edac_workqueue, &mci->work,
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			msecs_to_jiffies(edac_mc_get_poll_msec()));
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}

/*
 * edac_mc_workq_setup
 *	initialize a workq item for this mci
 *	passing in the new delay period in msec
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 *
 *	locking model:
 *
 *		called with the mem_ctls_mutex held
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 */
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static void edac_mc_workq_setup(struct mem_ctl_info *mci, unsigned msec)
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{
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	edac_dbg(0, "\n");
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	/* if this instance is not in the POLL state, then simply return */
	if (mci->op_state != OP_RUNNING_POLL)
		return;

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	INIT_DELAYED_WORK(&mci->work, edac_mc_workq_function);
569
	mod_delayed_work(edac_workqueue, &mci->work, msecs_to_jiffies(msec));
570 571 572 573 574
}

/*
 * edac_mc_workq_teardown
 *	stop the workq processing on this mci
575 576 577 578
 *
 *	locking model:
 *
 *		called WITHOUT lock held
579
 */
580
static void edac_mc_workq_teardown(struct mem_ctl_info *mci)
581 582 583
{
	int status;

584 585 586
	if (mci->op_state != OP_RUNNING_POLL)
		return;

587 588
	status = cancel_delayed_work(&mci->work);
	if (status == 0) {
589
		edac_dbg(0, "not canceled, flush the queue\n");
590

591 592
		/* workq instance might be running, wait for it */
		flush_workqueue(edac_workqueue);
593 594 595 596
	}
}

/*
597 598 599 600
 * edac_mc_reset_delay_period(unsigned long value)
 *
 *	user space has updated our poll period value, need to
 *	reset our workq delays
601
 */
602
void edac_mc_reset_delay_period(int value)
603
{
604 605 606 607 608 609 610 611 612 613
	struct mem_ctl_info *mci;
	struct list_head *item;

	mutex_lock(&mem_ctls_mutex);

	list_for_each(item, &mc_devices) {
		mci = list_entry(item, struct mem_ctl_info, link);

		edac_mc_workq_setup(mci, (unsigned long) value);
	}
614 615 616 617

	mutex_unlock(&mem_ctls_mutex);
}

618 619


620 621 622
/* Return 0 on success, 1 on failure.
 * Before calling this function, caller must
 * assign a unique value to mci->mc_idx.
623 624 625 626
 *
 *	locking model:
 *
 *		called with the mem_ctls_mutex lock held
627
 */
628
static int add_mc_to_global_list(struct mem_ctl_info *mci)
A
Alan Cox 已提交
629 630 631 632
{
	struct list_head *item, *insert_before;
	struct mem_ctl_info *p;

633
	insert_before = &mc_devices;
A
Alan Cox 已提交
634

635
	p = find_mci_by_dev(mci->pdev);
636
	if (unlikely(p != NULL))
637
		goto fail0;
A
Alan Cox 已提交
638

639 640
	list_for_each(item, &mc_devices) {
		p = list_entry(item, struct mem_ctl_info, link);
A
Alan Cox 已提交
641

642 643 644
		if (p->mc_idx >= mci->mc_idx) {
			if (unlikely(p->mc_idx == mci->mc_idx))
				goto fail1;
A
Alan Cox 已提交
645

646 647
			insert_before = item;
			break;
A
Alan Cox 已提交
648 649 650 651
		}
	}

	list_add_tail_rcu(&mci->link, insert_before);
D
Dave Jiang 已提交
652
	atomic_inc(&edac_handlers);
A
Alan Cox 已提交
653
	return 0;
654

655
fail0:
656
	edac_printk(KERN_WARNING, EDAC_MC,
657
		"%s (%s) %s %s already assigned %d\n", dev_name(p->pdev),
658
		edac_dev_name(mci), p->mod_name, p->ctl_name, p->mc_idx);
659 660
	return 1;

661
fail1:
662
	edac_printk(KERN_WARNING, EDAC_MC,
663 664
		"bug in low-level driver: attempt to assign\n"
		"    duplicate mc_idx %d in %s()\n", p->mc_idx, __func__);
665
	return 1;
A
Alan Cox 已提交
666 667
}

668
static int del_mc_from_global_list(struct mem_ctl_info *mci)
669
{
670
	int handlers = atomic_dec_return(&edac_handlers);
671
	list_del_rcu(&mci->link);
672 673 674 675 676 677

	/* these are for safe removal of devices from global list while
	 * NMI handlers may be traversing list
	 */
	synchronize_rcu();
	INIT_LIST_HEAD(&mci->link);
678 679

	return handlers;
680 681
}

682 683 684 685 686 687 688 689
/**
 * edac_mc_find: Search for a mem_ctl_info structure whose index is 'idx'.
 *
 * If found, return a pointer to the structure.
 * Else return NULL.
 *
 * Caller must hold mem_ctls_mutex.
 */
690
struct mem_ctl_info *edac_mc_find(int idx)
691 692 693 694 695 696 697 698 699 700 701 702 703 704 705 706 707 708 709
{
	struct list_head *item;
	struct mem_ctl_info *mci;

	list_for_each(item, &mc_devices) {
		mci = list_entry(item, struct mem_ctl_info, link);

		if (mci->mc_idx >= idx) {
			if (mci->mc_idx == idx)
				return mci;

			break;
		}
	}

	return NULL;
}
EXPORT_SYMBOL(edac_mc_find);

A
Alan Cox 已提交
710
/**
711 712
 * edac_mc_add_mc: Insert the 'mci' structure into the mci global list and
 *                 create sysfs entries associated with mci structure
A
Alan Cox 已提交
713 714 715 716 717 718 719 720
 * @mci: pointer to the mci structure to be added to the list
 *
 * Return:
 *	0	Success
 *	!0	Failure
 */

/* FIXME - should a warning be printed if no error detection? correction? */
721
int edac_mc_add_mc(struct mem_ctl_info *mci)
A
Alan Cox 已提交
722
{
723
	int ret = -EINVAL;
724
	edac_dbg(0, "\n");
725

A
Alan Cox 已提交
726 727 728
#ifdef CONFIG_EDAC_DEBUG
	if (edac_debug_level >= 3)
		edac_mc_dump_mci(mci);
D
Dave Peterson 已提交
729

A
Alan Cox 已提交
730 731 732 733
	if (edac_debug_level >= 4) {
		int i;

		for (i = 0; i < mci->nr_csrows; i++) {
734 735
			struct csrow_info *csrow = mci->csrows[i];
			u32 nr_pages = 0;
A
Alan Cox 已提交
736
			int j;
D
Dave Peterson 已提交
737

738 739 740 741 742 743 744 745
			for (j = 0; j < csrow->nr_channels; j++)
				nr_pages += csrow->channels[j]->dimm->nr_pages;
			if (!nr_pages)
				continue;
			edac_mc_dump_csrow(csrow);
			for (j = 0; j < csrow->nr_channels; j++)
				if (csrow->channels[j]->dimm->nr_pages)
					edac_mc_dump_channel(csrow->channels[j]);
A
Alan Cox 已提交
746
		}
747
		for (i = 0; i < mci->tot_dimms; i++)
748 749
			if (mci->dimms[i]->nr_pages)
				edac_mc_dump_dimm(mci->dimms[i], i);
A
Alan Cox 已提交
750 751
	}
#endif
752
	mutex_lock(&mem_ctls_mutex);
A
Alan Cox 已提交
753

754 755 756 757 758
	if (edac_mc_owner && edac_mc_owner != mci->mod_name) {
		ret = -EPERM;
		goto fail0;
	}

A
Alan Cox 已提交
759
	if (add_mc_to_global_list(mci))
760
		goto fail0;
A
Alan Cox 已提交
761 762 763 764

	/* set load time so that error rate can be tracked */
	mci->start_time = jiffies;

765 766
	if (edac_create_sysfs_mci_device(mci)) {
		edac_mc_printk(mci, KERN_WARNING,
767
			"failed to create sysfs device\n");
768 769
		goto fail1;
	}
A
Alan Cox 已提交
770

771 772 773 774 775 776 777 778 779 780
	/* If there IS a check routine, then we are running POLLED */
	if (mci->edac_check != NULL) {
		/* This instance is NOW RUNNING */
		mci->op_state = OP_RUNNING_POLL;

		edac_mc_workq_setup(mci, edac_mc_get_poll_msec());
	} else {
		mci->op_state = OP_RUNNING_INTERRUPT;
	}

A
Alan Cox 已提交
781
	/* Report action taken */
782
	edac_mc_printk(mci, KERN_INFO, "Giving out device to '%s' '%s':"
783
		" DEV %s\n", mci->mod_name, mci->ctl_name, edac_dev_name(mci));
A
Alan Cox 已提交
784

785 786
	edac_mc_owner = mci->mod_name;

787
	mutex_unlock(&mem_ctls_mutex);
788
	return 0;
A
Alan Cox 已提交
789

790
fail1:
791 792
	del_mc_from_global_list(mci);

793
fail0:
794
	mutex_unlock(&mem_ctls_mutex);
795
	return ret;
A
Alan Cox 已提交
796
}
797
EXPORT_SYMBOL_GPL(edac_mc_add_mc);
A
Alan Cox 已提交
798 799

/**
800 801
 * edac_mc_del_mc: Remove sysfs entries for specified mci structure and
 *                 remove mci structure from global list
802
 * @pdev: Pointer to 'struct device' representing mci structure to remove.
A
Alan Cox 已提交
803
 *
804
 * Return pointer to removed mci structure, or NULL if device not found.
A
Alan Cox 已提交
805
 */
806
struct mem_ctl_info *edac_mc_del_mc(struct device *dev)
A
Alan Cox 已提交
807
{
808
	struct mem_ctl_info *mci;
A
Alan Cox 已提交
809

810
	edac_dbg(0, "\n");
811

812
	mutex_lock(&mem_ctls_mutex);
813

814 815 816
	/* find the requested mci struct in the global list */
	mci = find_mci_by_dev(dev);
	if (mci == NULL) {
817
		mutex_unlock(&mem_ctls_mutex);
818 819 820
		return NULL;
	}

821 822
	if (!del_mc_from_global_list(mci))
		edac_mc_owner = NULL;
823
	mutex_unlock(&mem_ctls_mutex);
824

825
	/* flush workq processes */
826
	edac_mc_workq_teardown(mci);
827 828 829 830 831

	/* marking MCI offline */
	mci->op_state = OP_OFFLINE;

	/* remove from sysfs */
832 833
	edac_remove_sysfs_mci_device(mci);

D
Dave Peterson 已提交
834
	edac_printk(KERN_INFO, EDAC_MC,
835
		"Removed device %d for %s %s: DEV %s\n", mci->mc_idx,
836
		mci->mod_name, mci->ctl_name, edac_dev_name(mci));
837

838
	return mci;
A
Alan Cox 已提交
839
}
840
EXPORT_SYMBOL_GPL(edac_mc_del_mc);
A
Alan Cox 已提交
841

842 843
static void edac_mc_scrub_block(unsigned long page, unsigned long offset,
				u32 size)
A
Alan Cox 已提交
844 845 846 847 848
{
	struct page *pg;
	void *virt_addr;
	unsigned long flags = 0;

849
	edac_dbg(3, "\n");
A
Alan Cox 已提交
850 851

	/* ECC error page was not in our memory. Ignore it. */
852
	if (!pfn_valid(page))
A
Alan Cox 已提交
853 854 855 856 857 858 859 860
		return;

	/* Find the actual page structure then map it and fix */
	pg = pfn_to_page(page);

	if (PageHighMem(pg))
		local_irq_save(flags);

861
	virt_addr = kmap_atomic(pg);
A
Alan Cox 已提交
862 863 864 865 866

	/* Perform architecture specific atomic scrub operation */
	atomic_scrub(virt_addr + offset, size);

	/* Unmap and complete */
867
	kunmap_atomic(virt_addr);
A
Alan Cox 已提交
868 869 870 871 872 873

	if (PageHighMem(pg))
		local_irq_restore(flags);
}

/* FIXME - should return -1 */
D
Dave Peterson 已提交
874
int edac_mc_find_csrow_by_page(struct mem_ctl_info *mci, unsigned long page)
A
Alan Cox 已提交
875
{
876
	struct csrow_info **csrows = mci->csrows;
877
	int row, i, j, n;
A
Alan Cox 已提交
878

879
	edac_dbg(1, "MC%d: 0x%lx\n", mci->mc_idx, page);
A
Alan Cox 已提交
880 881 882
	row = -1;

	for (i = 0; i < mci->nr_csrows; i++) {
883
		struct csrow_info *csrow = csrows[i];
884 885
		n = 0;
		for (j = 0; j < csrow->nr_channels; j++) {
886
			struct dimm_info *dimm = csrow->channels[j]->dimm;
887 888 889
			n += dimm->nr_pages;
		}
		if (n == 0)
A
Alan Cox 已提交
890 891
			continue;

892 893 894 895
		edac_dbg(3, "MC%d: first(0x%lx) page(0x%lx) last(0x%lx) mask(0x%lx)\n",
			 mci->mc_idx,
			 csrow->first_page, page, csrow->last_page,
			 csrow->page_mask);
A
Alan Cox 已提交
896 897 898 899 900 901 902 903 904 905 906

		if ((page >= csrow->first_page) &&
		    (page <= csrow->last_page) &&
		    ((page & csrow->page_mask) ==
		     (csrow->first_page & csrow->page_mask))) {
			row = i;
			break;
		}
	}

	if (row == -1)
D
Dave Peterson 已提交
907
		edac_mc_printk(mci, KERN_ERR,
908 909
			"could not look up page error address %lx\n",
			(unsigned long)page);
A
Alan Cox 已提交
910 911 912

	return row;
}
913
EXPORT_SYMBOL_GPL(edac_mc_find_csrow_by_page);
A
Alan Cox 已提交
914

915 916 917 918 919
const char *edac_layer_name[] = {
	[EDAC_MC_LAYER_BRANCH] = "branch",
	[EDAC_MC_LAYER_CHANNEL] = "channel",
	[EDAC_MC_LAYER_SLOT] = "slot",
	[EDAC_MC_LAYER_CHIP_SELECT] = "csrow",
920
	[EDAC_MC_LAYER_ALL_MEM] = "memory",
921 922 923 924
};
EXPORT_SYMBOL_GPL(edac_layer_name);

static void edac_inc_ce_error(struct mem_ctl_info *mci,
925 926 927
			      bool enable_per_layer_report,
			      const int pos[EDAC_MAX_LAYERS],
			      const u16 count)
A
Alan Cox 已提交
928
{
929
	int i, index = 0;
A
Alan Cox 已提交
930

931
	mci->ce_mc += count;
A
Alan Cox 已提交
932

933
	if (!enable_per_layer_report) {
934
		mci->ce_noinfo_count += count;
A
Alan Cox 已提交
935 936
		return;
	}
D
Dave Peterson 已提交
937

938 939 940 941
	for (i = 0; i < mci->n_layers; i++) {
		if (pos[i] < 0)
			break;
		index += pos[i];
942
		mci->ce_per_layer[i][index] += count;
943 944 945 946 947 948 949 950

		if (i < mci->n_layers - 1)
			index *= mci->layers[i + 1].size;
	}
}

static void edac_inc_ue_error(struct mem_ctl_info *mci,
				    bool enable_per_layer_report,
951 952
				    const int pos[EDAC_MAX_LAYERS],
				    const u16 count)
953 954 955
{
	int i, index = 0;

956
	mci->ue_mc += count;
957 958

	if (!enable_per_layer_report) {
959
		mci->ce_noinfo_count += count;
A
Alan Cox 已提交
960 961 962
		return;
	}

963 964 965 966
	for (i = 0; i < mci->n_layers; i++) {
		if (pos[i] < 0)
			break;
		index += pos[i];
967
		mci->ue_per_layer[i][index] += count;
968

969 970 971 972
		if (i < mci->n_layers - 1)
			index *= mci->layers[i + 1].size;
	}
}
A
Alan Cox 已提交
973

974
static void edac_ce_error(struct mem_ctl_info *mci,
975
			  const u16 error_count,
976 977 978 979 980 981 982 983 984
			  const int pos[EDAC_MAX_LAYERS],
			  const char *msg,
			  const char *location,
			  const char *label,
			  const char *detail,
			  const char *other_detail,
			  const bool enable_per_layer_report,
			  const unsigned long page_frame_number,
			  const unsigned long offset_in_page,
985
			  long grain)
986 987
{
	unsigned long remapped_page;
988 989 990 991
	char *msg_aux = "";

	if (*msg)
		msg_aux = " ";
992 993 994 995

	if (edac_mc_get_log_ce()) {
		if (other_detail && *other_detail)
			edac_mc_printk(mci, KERN_WARNING,
996 997 998
				       "%d CE %s%son %s (%s %s - %s)\n",
				       error_count, msg, msg_aux, label,
				       location, detail, other_detail);
999 1000
		else
			edac_mc_printk(mci, KERN_WARNING,
1001 1002 1003
				       "%d CE %s%son %s (%s %s)\n",
				       error_count, msg, msg_aux, label,
				       location, detail);
1004
	}
1005
	edac_inc_ce_error(mci, enable_per_layer_report, pos, error_count);
A
Alan Cox 已提交
1006 1007 1008

	if (mci->scrub_mode & SCRUB_SW_SRC) {
		/*
1009 1010 1011 1012 1013 1014 1015 1016 1017 1018
			* Some memory controllers (called MCs below) can remap
			* memory so that it is still available at a different
			* address when PCI devices map into memory.
			* MC's that can't do this, lose the memory where PCI
			* devices are mapped. This mapping is MC-dependent
			* and so we call back into the MC driver for it to
			* map the MC page to a physical (CPU) page which can
			* then be mapped to a virtual page - which can then
			* be scrubbed.
			*/
A
Alan Cox 已提交
1019
		remapped_page = mci->ctl_page_to_phys ?
1020 1021
			mci->ctl_page_to_phys(mci, page_frame_number) :
			page_frame_number;
A
Alan Cox 已提交
1022

1023 1024
		edac_mc_scrub_block(remapped_page,
					offset_in_page, grain);
A
Alan Cox 已提交
1025 1026 1027
	}
}

1028
static void edac_ue_error(struct mem_ctl_info *mci,
1029
			  const u16 error_count,
1030 1031 1032 1033 1034 1035 1036
			  const int pos[EDAC_MAX_LAYERS],
			  const char *msg,
			  const char *location,
			  const char *label,
			  const char *detail,
			  const char *other_detail,
			  const bool enable_per_layer_report)
A
Alan Cox 已提交
1037
{
1038 1039 1040 1041 1042
	char *msg_aux = "";

	if (*msg)
		msg_aux = " ";

1043 1044 1045
	if (edac_mc_get_log_ue()) {
		if (other_detail && *other_detail)
			edac_mc_printk(mci, KERN_WARNING,
1046 1047 1048
				       "%d UE %s%son %s (%s %s - %s)\n",
				       error_count, msg, msg_aux, label,
				       location, detail, other_detail);
1049 1050
		else
			edac_mc_printk(mci, KERN_WARNING,
1051 1052 1053
				       "%d UE %s%son %s (%s %s)\n",
				       error_count, msg, msg_aux, label,
				       location, detail);
1054
	}
D
Dave Peterson 已提交
1055

1056 1057
	if (edac_mc_get_panic_on_ue()) {
		if (other_detail && *other_detail)
1058 1059
			panic("UE %s%son %s (%s%s - %s)\n",
			      msg, msg_aux, label, location, detail, other_detail);
1060
		else
1061 1062
			panic("UE %s%son %s (%s%s)\n",
			      msg, msg_aux, label, location, detail);
1063 1064
	}

1065
	edac_inc_ue_error(mci, enable_per_layer_report, pos, error_count);
A
Alan Cox 已提交
1066 1067
}

1068 1069 1070 1071 1072 1073 1074 1075 1076 1077 1078 1079 1080 1081 1082 1083 1084 1085 1086 1087 1088 1089 1090 1091 1092 1093 1094 1095 1096 1097 1098 1099 1100 1101 1102 1103 1104 1105 1106 1107
/**
 * edac_raw_mc_handle_error - reports a memory event to userspace without doing
 *			      anything to discover the error location
 *
 * @type:		severity of the error (CE/UE/Fatal)
 * @mci:		a struct mem_ctl_info pointer
 * @e:			error description
 *
 * This raw function is used internally by edac_mc_handle_error(). It should
 * only be called directly when the hardware error come directly from BIOS,
 * like in the case of APEI GHES driver.
 */
void edac_raw_mc_handle_error(const enum hw_event_mc_err_type type,
			      struct mem_ctl_info *mci,
			      struct edac_raw_error_desc *e)
{
	char detail[80];
	int pos[EDAC_MAX_LAYERS] = { e->top_layer, e->mid_layer, e->low_layer };

	/* Memory type dependent details about the error */
	if (type == HW_EVENT_ERR_CORRECTED) {
		snprintf(detail, sizeof(detail),
			"page:0x%lx offset:0x%lx grain:%ld syndrome:0x%lx",
			e->page_frame_number, e->offset_in_page,
			e->grain, e->syndrome);
		edac_ce_error(mci, e->error_count, pos, e->msg, e->location, e->label,
			      detail, e->other_detail, e->enable_per_layer_report,
			      e->page_frame_number, e->offset_in_page, e->grain);
	} else {
		snprintf(detail, sizeof(detail),
			"page:0x%lx offset:0x%lx grain:%ld",
			e->page_frame_number, e->offset_in_page, e->grain);

		edac_ue_error(mci, e->error_count, pos, e->msg, e->location, e->label,
			      detail, e->other_detail, e->enable_per_layer_report);
	}


}
EXPORT_SYMBOL_GPL(edac_raw_mc_handle_error);
1108 1109 1110 1111 1112 1113

/**
 * edac_mc_handle_error - reports a memory event to userspace
 *
 * @type:		severity of the error (CE/UE/Fatal)
 * @mci:		a struct mem_ctl_info pointer
1114
 * @error_count:	Number of errors of the same type
1115 1116 1117 1118 1119 1120 1121 1122 1123 1124 1125 1126
 * @page_frame_number:	mem page where the error occurred
 * @offset_in_page:	offset of the error inside the page
 * @syndrome:		ECC syndrome
 * @top_layer:		Memory layer[0] position
 * @mid_layer:		Memory layer[1] position
 * @low_layer:		Memory layer[2] position
 * @msg:		Message meaningful to the end users that
 *			explains the event
 * @other_detail:	Technical details about the event that
 *			may help hardware manufacturers and
 *			EDAC developers to analyse the event
 */
1127 1128
void edac_mc_handle_error(const enum hw_event_mc_err_type type,
			  struct mem_ctl_info *mci,
1129
			  const u16 error_count,
1130 1131 1132
			  const unsigned long page_frame_number,
			  const unsigned long offset_in_page,
			  const unsigned long syndrome,
1133 1134 1135
			  const int top_layer,
			  const int mid_layer,
			  const int low_layer,
1136
			  const char *msg,
1137
			  const char *other_detail)
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{
1139 1140
	char *p;
	int row = -1, chan = -1;
1141
	int pos[EDAC_MAX_LAYERS] = { top_layer, mid_layer, low_layer };
1142
	int i, n_labels = 0;
1143
	u8 grain_bits;
1144
	struct edac_raw_error_desc *e = &mci->error_desc;
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Alan Cox 已提交
1145

1146
	edac_dbg(3, "MC%d\n", mci->mc_idx);
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1148 1149 1150 1151 1152 1153 1154 1155 1156 1157 1158 1159
	/* Fills the error report buffer */
	memset(e, 0, sizeof (*e));
	e->error_count = error_count;
	e->top_layer = top_layer;
	e->mid_layer = mid_layer;
	e->low_layer = low_layer;
	e->page_frame_number = page_frame_number;
	e->offset_in_page = offset_in_page;
	e->syndrome = syndrome;
	e->msg = msg;
	e->other_detail = other_detail;

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	/*
	 * Check if the event report is consistent and if the memory
	 * location is known. If it is known, enable_per_layer_report will be
	 * true, the DIMM(s) label info will be filled and the per-layer
	 * error counters will be incremented.
	 */
	for (i = 0; i < mci->n_layers; i++) {
		if (pos[i] >= (int)mci->layers[i].size) {

			edac_mc_printk(mci, KERN_ERR,
				       "INTERNAL ERROR: %s value is out of range (%d >= %d)\n",
				       edac_layer_name[mci->layers[i].type],
				       pos[i], mci->layers[i].size);
			/*
			 * Instead of just returning it, let's use what's
			 * known about the error. The increment routines and
			 * the DIMM filter logic will do the right thing by
			 * pointing the likely damaged DIMMs.
			 */
			pos[i] = -1;
		}
		if (pos[i] >= 0)
1182
			e->enable_per_layer_report = true;
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	}

1185 1186 1187 1188 1189 1190 1191 1192 1193 1194 1195
	/*
	 * Get the dimm label/grain that applies to the match criteria.
	 * As the error algorithm may not be able to point to just one memory
	 * stick, the logic here will get all possible labels that could
	 * pottentially be affected by the error.
	 * On FB-DIMM memory controllers, for uncorrected errors, it is common
	 * to have only the MC channel and the MC dimm (also called "branch")
	 * but the channel is not known, as the memory is arranged in pairs,
	 * where each memory belongs to a separate channel within the same
	 * branch.
	 */
1196
	p = e->label;
1197
	*p = '\0';
1198

1199
	for (i = 0; i < mci->tot_dimms; i++) {
1200
		struct dimm_info *dimm = mci->dimms[i];
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1201

1202
		if (top_layer >= 0 && top_layer != dimm->location[0])
1203
			continue;
1204
		if (mid_layer >= 0 && mid_layer != dimm->location[1])
1205
			continue;
1206
		if (low_layer >= 0 && low_layer != dimm->location[2])
1207
			continue;
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1208

1209
		/* get the max grain, over the error match range */
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		if (dimm->grain > e->grain)
			e->grain = dimm->grain;
1212

1213 1214 1215 1216 1217 1218
		/*
		 * If the error is memory-controller wide, there's no need to
		 * seek for the affected DIMMs because the whole
		 * channel/memory controller/...  may be affected.
		 * Also, don't show errors for empty DIMM slots.
		 */
1219 1220 1221 1222 1223 1224 1225
		if (e->enable_per_layer_report && dimm->nr_pages) {
			if (n_labels >= EDAC_MAX_LABELS) {
				e->enable_per_layer_report = false;
				break;
			}
			n_labels++;
			if (p != e->label) {
1226 1227 1228 1229 1230 1231 1232 1233 1234 1235 1236
				strcpy(p, OTHER_LABEL);
				p += strlen(OTHER_LABEL);
			}
			strcpy(p, dimm->label);
			p += strlen(p);
			*p = '\0';

			/*
			 * get csrow/channel of the DIMM, in order to allow
			 * incrementing the compat API counters
			 */
1237 1238 1239
			edac_dbg(4, "%s csrows map: (%d,%d)\n",
				 mci->mem_is_per_rank ? "rank" : "dimm",
				 dimm->csrow, dimm->cschannel);
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			if (row == -1)
				row = dimm->csrow;
			else if (row >= 0 && row != dimm->csrow)
				row = -2;

			if (chan == -1)
				chan = dimm->cschannel;
			else if (chan >= 0 && chan != dimm->cschannel)
				chan = -2;
		}
1250 1251
	}

1252 1253
	if (!e->enable_per_layer_report) {
		strcpy(e->label, "any memory");
1254
	} else {
1255
		edac_dbg(4, "csrow/channel to increment: (%d,%d)\n", row, chan);
1256 1257
		if (p == e->label)
			strcpy(e->label, "unknown memory");
1258 1259
		if (type == HW_EVENT_ERR_CORRECTED) {
			if (row >= 0) {
1260
				mci->csrows[row]->ce_count += error_count;
1261
				if (chan >= 0)
1262
					mci->csrows[row]->channels[chan]->ce_count += error_count;
1263 1264 1265
			}
		} else
			if (row >= 0)
1266
				mci->csrows[row]->ue_count += error_count;
1267 1268
	}

1269
	/* Fill the RAM location data */
1270
	p = e->location;
1271

1272 1273 1274
	for (i = 0; i < mci->n_layers; i++) {
		if (pos[i] < 0)
			continue;
1275

1276 1277 1278
		p += sprintf(p, "%s:%d ",
			     edac_layer_name[mci->layers[i].type],
			     pos[i]);
1279
	}
1280
	if (p > e->location)
1281 1282 1283
		*(p - 1) = '\0';

	/* Report the error via the trace interface */
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	grain_bits = fls_long(e->grain) + 1;
	trace_mc_event(type, e->msg, e->label, e->error_count,
		       mci->mc_idx, e->top_layer, e->mid_layer, e->low_layer,
		       PAGES_TO_MiB(e->page_frame_number) | e->offset_in_page,
1288
		       grain_bits, e->syndrome, e->other_detail);
1289

1290
	edac_raw_mc_handle_error(type, mci, e);
1291
}
1292
EXPORT_SYMBOL_GPL(edac_mc_handle_error);