nvme.c 40.2 KB
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/*
 * NVM Express device driver
 * Copyright (c) 2011, Intel Corporation.
 *
 * This program is free software; you can redistribute it and/or modify it
 * under the terms and conditions of the GNU General Public License,
 * version 2, as published by the Free Software Foundation.
 *
 * This program is distributed in the hope it will be useful, but WITHOUT
 * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
 * FITNESS FOR A PARTICULAR PURPOSE.  See the GNU General Public License for
 * more details.
 *
 * You should have received a copy of the GNU General Public License along with
 * this program; if not, write to the Free Software Foundation, Inc.,
 * 51 Franklin St - Fifth Floor, Boston, MA 02110-1301 USA.
 */

#include <linux/nvme.h>
#include <linux/bio.h>
#include <linux/blkdev.h>
#include <linux/errno.h>
#include <linux/fs.h>
#include <linux/genhd.h>
#include <linux/init.h>
#include <linux/interrupt.h>
#include <linux/io.h>
#include <linux/kdev_t.h>
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#include <linux/kthread.h>
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#include <linux/kernel.h>
#include <linux/mm.h>
#include <linux/module.h>
#include <linux/moduleparam.h>
#include <linux/pci.h>
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#include <linux/poison.h>
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#include <linux/sched.h>
#include <linux/slab.h>
#include <linux/types.h>
#include <linux/version.h>

#define NVME_Q_DEPTH 1024
#define SQ_SIZE(depth)		(depth * sizeof(struct nvme_command))
#define CQ_SIZE(depth)		(depth * sizeof(struct nvme_completion))
#define NVME_MINORS 64
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#define IO_TIMEOUT	(5 * HZ)
#define ADMIN_TIMEOUT	(60 * HZ)
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static int nvme_major;
module_param(nvme_major, int, 0);

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static int use_threaded_interrupts;
module_param(use_threaded_interrupts, int, 0);

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static DEFINE_SPINLOCK(dev_list_lock);
static LIST_HEAD(dev_list);
static struct task_struct *nvme_thread;

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/*
 * Represents an NVM Express device.  Each nvme_dev is a PCI function.
 */
struct nvme_dev {
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	struct list_head node;
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	struct nvme_queue **queues;
	u32 __iomem *dbs;
	struct pci_dev *pci_dev;
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	struct dma_pool *prp_page_pool;
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	struct dma_pool *prp_small_pool;
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	int instance;
	int queue_count;
	u32 ctrl_config;
	struct msix_entry *entry;
	struct nvme_bar __iomem *bar;
	struct list_head namespaces;
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	char serial[20];
	char model[40];
	char firmware_rev[8];
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};

/*
 * An NVM Express namespace is equivalent to a SCSI LUN
 */
struct nvme_ns {
	struct list_head list;

	struct nvme_dev *dev;
	struct request_queue *queue;
	struct gendisk *disk;

	int ns_id;
	int lba_shift;
};

/*
 * An NVM Express queue.  Each device has at least two (one for admin
 * commands and one for I/O commands).
 */
struct nvme_queue {
	struct device *q_dmadev;
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	struct nvme_dev *dev;
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	spinlock_t q_lock;
	struct nvme_command *sq_cmds;
	volatile struct nvme_completion *cqes;
	dma_addr_t sq_dma_addr;
	dma_addr_t cq_dma_addr;
	wait_queue_head_t sq_full;
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	wait_queue_t sq_cong_wait;
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	struct bio_list sq_cong;
	u32 __iomem *q_db;
	u16 q_depth;
	u16 cq_vector;
	u16 sq_head;
	u16 sq_tail;
	u16 cq_head;
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	u16 cq_phase;
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	unsigned long cmdid_data[];
};

/*
 * Check we didin't inadvertently grow the command struct
 */
static inline void _nvme_check_size(void)
{
	BUILD_BUG_ON(sizeof(struct nvme_rw_command) != 64);
	BUILD_BUG_ON(sizeof(struct nvme_create_cq) != 64);
	BUILD_BUG_ON(sizeof(struct nvme_create_sq) != 64);
	BUILD_BUG_ON(sizeof(struct nvme_delete_queue) != 64);
	BUILD_BUG_ON(sizeof(struct nvme_features) != 64);
	BUILD_BUG_ON(sizeof(struct nvme_command) != 64);
	BUILD_BUG_ON(sizeof(struct nvme_id_ctrl) != 4096);
	BUILD_BUG_ON(sizeof(struct nvme_id_ns) != 4096);
	BUILD_BUG_ON(sizeof(struct nvme_lba_range_type) != 64);
}

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struct nvme_cmd_info {
	unsigned long ctx;
	unsigned long timeout;
};

static struct nvme_cmd_info *nvme_cmd_info(struct nvme_queue *nvmeq)
{
	return (void *)&nvmeq->cmdid_data[BITS_TO_LONGS(nvmeq->q_depth)];
}

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/**
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 * alloc_cmdid() - Allocate a Command ID
 * @nvmeq: The queue that will be used for this command
 * @ctx: A pointer that will be passed to the handler
 * @handler: The ID of the handler to call
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 *
 * Allocate a Command ID for a queue.  The data passed in will
 * be passed to the completion handler.  This is implemented by using
 * the bottom two bits of the ctx pointer to store the handler ID.
 * Passing in a pointer that's not 4-byte aligned will cause a BUG.
 * We can change this if it becomes a problem.
 */
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static int alloc_cmdid(struct nvme_queue *nvmeq, void *ctx, int handler,
							unsigned timeout)
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{
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	int depth = nvmeq->q_depth - 1;
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	struct nvme_cmd_info *info = nvme_cmd_info(nvmeq);
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	int cmdid;

	BUG_ON((unsigned long)ctx & 3);

	do {
		cmdid = find_first_zero_bit(nvmeq->cmdid_data, depth);
		if (cmdid >= depth)
			return -EBUSY;
	} while (test_and_set_bit(cmdid, nvmeq->cmdid_data));

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	info[cmdid].ctx = (unsigned long)ctx | handler;
	info[cmdid].timeout = jiffies + timeout;
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	return cmdid;
}

static int alloc_cmdid_killable(struct nvme_queue *nvmeq, void *ctx,
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						int handler, unsigned timeout)
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{
	int cmdid;
	wait_event_killable(nvmeq->sq_full,
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		(cmdid = alloc_cmdid(nvmeq, ctx, handler, timeout)) >= 0);
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	return (cmdid < 0) ? -EINTR : cmdid;
}

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/*
 * If you need more than four handlers, you'll need to change how
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 * alloc_cmdid and nvme_process_cq work.  Consider using a special
 * CMD_CTX value instead, if that works for your situation.
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 */
enum {
	sync_completion_id = 0,
	bio_completion_id,
};

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/* Special values must be a multiple of 4, and less than 0x1000 */
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#define CMD_CTX_BASE		(POISON_POINTER_DELTA + sync_completion_id)
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#define CMD_CTX_CANCELLED	(0x30C + CMD_CTX_BASE)
#define CMD_CTX_COMPLETED	(0x310 + CMD_CTX_BASE)
#define CMD_CTX_INVALID		(0x314 + CMD_CTX_BASE)
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#define CMD_CTX_FLUSH		(0x318 + CMD_CTX_BASE)
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static unsigned long free_cmdid(struct nvme_queue *nvmeq, int cmdid)
{
	unsigned long data;
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	struct nvme_cmd_info *info = nvme_cmd_info(nvmeq);
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	if (cmdid >= nvmeq->q_depth)
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		return CMD_CTX_INVALID;
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	data = info[cmdid].ctx;
	info[cmdid].ctx = CMD_CTX_COMPLETED;
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	clear_bit(cmdid, nvmeq->cmdid_data);
	wake_up(&nvmeq->sq_full);
	return data;
}

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static void cancel_cmdid_data(struct nvme_queue *nvmeq, int cmdid)
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{
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	struct nvme_cmd_info *info = nvme_cmd_info(nvmeq);
	info[cmdid].ctx = CMD_CTX_CANCELLED;
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}

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static struct nvme_queue *get_nvmeq(struct nvme_ns *ns)
{
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	return ns->dev->queues[get_cpu() + 1];
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}

static void put_nvmeq(struct nvme_queue *nvmeq)
{
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	put_cpu();
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}

/**
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 * nvme_submit_cmd() - Copy a command into a queue and ring the doorbell
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 * @nvmeq: The queue to use
 * @cmd: The command to send
 *
 * Safe to use from interrupt context
 */
static int nvme_submit_cmd(struct nvme_queue *nvmeq, struct nvme_command *cmd)
{
	unsigned long flags;
	u16 tail;
	spin_lock_irqsave(&nvmeq->q_lock, flags);
	tail = nvmeq->sq_tail;
	memcpy(&nvmeq->sq_cmds[tail], cmd, sizeof(*cmd));
	if (++tail == nvmeq->q_depth)
		tail = 0;
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	writel(tail, nvmeq->q_db);
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	nvmeq->sq_tail = tail;
	spin_unlock_irqrestore(&nvmeq->q_lock, flags);

	return 0;
}

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struct nvme_prps {
	int npages;
	dma_addr_t first_dma;
	__le64 *list[0];
};

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static void nvme_free_prps(struct nvme_dev *dev, struct nvme_prps *prps)
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{
	const int last_prp = PAGE_SIZE / 8 - 1;
	int i;
	dma_addr_t prp_dma;

	if (!prps)
		return;

	prp_dma = prps->first_dma;
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	if (prps->npages == 0)
		dma_pool_free(dev->prp_small_pool, prps->list[0], prp_dma);
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	for (i = 0; i < prps->npages; i++) {
		__le64 *prp_list = prps->list[i];
		dma_addr_t next_prp_dma = le64_to_cpu(prp_list[last_prp]);
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		dma_pool_free(dev->prp_page_pool, prp_list, prp_dma);
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		prp_dma = next_prp_dma;
	}
	kfree(prps);
}

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struct nvme_bio {
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	struct bio *bio;
	int nents;
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	struct nvme_prps *prps;
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	struct scatterlist sg[0];
};

/* XXX: use a mempool */
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static struct nvme_bio *alloc_nbio(unsigned nseg, gfp_t gfp)
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{
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	return kzalloc(sizeof(struct nvme_bio) +
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			sizeof(struct scatterlist) * nseg, gfp);
}

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static void free_nbio(struct nvme_queue *nvmeq, struct nvme_bio *nbio)
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{
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	nvme_free_prps(nvmeq->dev, nbio->prps);
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	kfree(nbio);
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}

static void bio_completion(struct nvme_queue *nvmeq, void *ctx,
						struct nvme_completion *cqe)
{
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	struct nvme_bio *nbio = ctx;
	struct bio *bio = nbio->bio;
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	u16 status = le16_to_cpup(&cqe->status) >> 1;

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	dma_unmap_sg(nvmeq->q_dmadev, nbio->sg, nbio->nents,
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			bio_data_dir(bio) ? DMA_TO_DEVICE : DMA_FROM_DEVICE);
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	free_nbio(nvmeq, nbio);
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	if (status)
		bio_endio(bio, -EIO);
	if (bio->bi_vcnt > bio->bi_idx) {
		bio_list_add(&nvmeq->sq_cong, bio);
		wake_up_process(nvme_thread);
	} else {
		bio_endio(bio, 0);
	}
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}

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/* length is in bytes */
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static struct nvme_prps *nvme_setup_prps(struct nvme_dev *dev,
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					struct nvme_common_command *cmd,
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					struct scatterlist *sg, int length)
{
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	struct dma_pool *pool;
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	int dma_len = sg_dma_len(sg);
	u64 dma_addr = sg_dma_address(sg);
	int offset = offset_in_page(dma_addr);
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	__le64 *prp_list;
	dma_addr_t prp_dma;
	int nprps, npages, i, prp_page;
	struct nvme_prps *prps = NULL;
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	cmd->prp1 = cpu_to_le64(dma_addr);
	length -= (PAGE_SIZE - offset);
	if (length <= 0)
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		return prps;
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	dma_len -= (PAGE_SIZE - offset);
	if (dma_len) {
		dma_addr += (PAGE_SIZE - offset);
	} else {
		sg = sg_next(sg);
		dma_addr = sg_dma_address(sg);
		dma_len = sg_dma_len(sg);
	}

	if (length <= PAGE_SIZE) {
		cmd->prp2 = cpu_to_le64(dma_addr);
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		return prps;
	}

	nprps = DIV_ROUND_UP(length, PAGE_SIZE);
	npages = DIV_ROUND_UP(8 * nprps, PAGE_SIZE);
	prps = kmalloc(sizeof(*prps) + sizeof(__le64 *) * npages, GFP_ATOMIC);
	prp_page = 0;
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	if (nprps <= (256 / 8)) {
		pool = dev->prp_small_pool;
		prps->npages = 0;
	} else {
		pool = dev->prp_page_pool;
		prps->npages = npages;
	}

	prp_list = dma_pool_alloc(pool, GFP_ATOMIC, &prp_dma);
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	prps->list[prp_page++] = prp_list;
	prps->first_dma = prp_dma;
	cmd->prp2 = cpu_to_le64(prp_dma);
	i = 0;
	for (;;) {
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		if (i == PAGE_SIZE / 8) {
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			__le64 *old_prp_list = prp_list;
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			prp_list = dma_pool_alloc(pool, GFP_ATOMIC, &prp_dma);
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			prps->list[prp_page++] = prp_list;
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			prp_list[0] = old_prp_list[i - 1];
			old_prp_list[i - 1] = cpu_to_le64(prp_dma);
			i = 1;
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		}
		prp_list[i++] = cpu_to_le64(dma_addr);
		dma_len -= PAGE_SIZE;
		dma_addr += PAGE_SIZE;
		length -= PAGE_SIZE;
		if (length <= 0)
			break;
		if (dma_len > 0)
			continue;
		BUG_ON(dma_len < 0);
		sg = sg_next(sg);
		dma_addr = sg_dma_address(sg);
		dma_len = sg_dma_len(sg);
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	}

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	return prps;
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}

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/* NVMe scatterlists require no holes in the virtual address */
#define BIOVEC_NOT_VIRT_MERGEABLE(vec1, vec2)	((vec2)->bv_offset || \
			(((vec1)->bv_offset + (vec1)->bv_len) % PAGE_SIZE))

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static int nvme_map_bio(struct device *dev, struct nvme_bio *nbio,
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		struct bio *bio, enum dma_data_direction dma_dir, int psegs)
{
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	struct bio_vec *bvec, *bvprv = NULL;
	struct scatterlist *sg = NULL;
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	int i, old_idx, length = 0, nsegs = 0;
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	sg_init_table(nbio->sg, psegs);
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	old_idx = bio->bi_idx;
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	bio_for_each_segment(bvec, bio, i) {
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		if (bvprv && BIOVEC_PHYS_MERGEABLE(bvprv, bvec)) {
			sg->length += bvec->bv_len;
		} else {
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			if (bvprv && BIOVEC_NOT_VIRT_MERGEABLE(bvprv, bvec))
				break;
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			sg = sg ? sg + 1 : nbio->sg;
			sg_set_page(sg, bvec->bv_page, bvec->bv_len,
							bvec->bv_offset);
			nsegs++;
		}
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		length += bvec->bv_len;
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		bvprv = bvec;
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	}
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	bio->bi_idx = i;
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	nbio->nents = nsegs;
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	sg_mark_end(sg);
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	if (dma_map_sg(dev, nbio->sg, nbio->nents, dma_dir) == 0) {
		bio->bi_idx = old_idx;
		return -ENOMEM;
	}
	return length;
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}

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static int nvme_submit_flush(struct nvme_queue *nvmeq, struct nvme_ns *ns,
								int cmdid)
{
	struct nvme_command *cmnd = &nvmeq->sq_cmds[nvmeq->sq_tail];

	memset(cmnd, 0, sizeof(*cmnd));
	cmnd->common.opcode = nvme_cmd_flush;
	cmnd->common.command_id = cmdid;
	cmnd->common.nsid = cpu_to_le32(ns->ns_id);

	if (++nvmeq->sq_tail == nvmeq->q_depth)
		nvmeq->sq_tail = 0;
	writel(nvmeq->sq_tail, nvmeq->q_db);

	return 0;
}

static int nvme_submit_flush_data(struct nvme_queue *nvmeq, struct nvme_ns *ns)
{
	int cmdid = alloc_cmdid(nvmeq, (void *)CMD_CTX_FLUSH,
						sync_completion_id, IO_TIMEOUT);
	if (unlikely(cmdid < 0))
		return cmdid;

	return nvme_submit_flush(nvmeq, ns, cmdid);
}

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static int nvme_submit_bio_queue(struct nvme_queue *nvmeq, struct nvme_ns *ns,
								struct bio *bio)
{
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	struct nvme_command *cmnd;
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	struct nvme_bio *nbio;
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	enum dma_data_direction dma_dir;
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	int cmdid, length, result = -ENOMEM;
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	u16 control;
	u32 dsmgmt;
	int psegs = bio_phys_segments(ns->queue, bio);

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	if ((bio->bi_rw & REQ_FLUSH) && psegs) {
		result = nvme_submit_flush_data(nvmeq, ns);
		if (result)
			return result;
	}

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	nbio = alloc_nbio(psegs, GFP_ATOMIC);
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	if (!nbio)
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		goto nomem;
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	nbio->bio = bio;
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	result = -EBUSY;
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	cmdid = alloc_cmdid(nvmeq, nbio, bio_completion_id, IO_TIMEOUT);
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	if (unlikely(cmdid < 0))
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		goto free_nbio;
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	if ((bio->bi_rw & REQ_FLUSH) && !psegs)
		return nvme_submit_flush(nvmeq, ns, cmdid);

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	control = 0;
	if (bio->bi_rw & REQ_FUA)
		control |= NVME_RW_FUA;
	if (bio->bi_rw & (REQ_FAILFAST_DEV | REQ_RAHEAD))
		control |= NVME_RW_LR;

	dsmgmt = 0;
	if (bio->bi_rw & REQ_RAHEAD)
		dsmgmt |= NVME_RW_DSM_FREQ_PREFETCH;

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	cmnd = &nvmeq->sq_cmds[nvmeq->sq_tail];
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	memset(cmnd, 0, sizeof(*cmnd));
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	if (bio_data_dir(bio)) {
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		cmnd->rw.opcode = nvme_cmd_write;
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		dma_dir = DMA_TO_DEVICE;
	} else {
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		cmnd->rw.opcode = nvme_cmd_read;
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		dma_dir = DMA_FROM_DEVICE;
	}

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	result = nvme_map_bio(nvmeq->q_dmadev, nbio, bio, dma_dir, psegs);
	if (result < 0)
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		goto free_nbio;
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	length = result;
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	cmnd->rw.command_id = cmdid;
	cmnd->rw.nsid = cpu_to_le32(ns->ns_id);
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	nbio->prps = nvme_setup_prps(nvmeq->dev, &cmnd->common, nbio->sg,
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								length);
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	cmnd->rw.slba = cpu_to_le64(bio->bi_sector >> (ns->lba_shift - 9));
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	cmnd->rw.length = cpu_to_le16((length >> ns->lba_shift) - 1);
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	cmnd->rw.control = cpu_to_le16(control);
	cmnd->rw.dsmgmt = cpu_to_le32(dsmgmt);
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	bio->bi_sector += length >> 9;

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	if (++nvmeq->sq_tail == nvmeq->q_depth)
		nvmeq->sq_tail = 0;
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	writel(nvmeq->sq_tail, nvmeq->q_db);
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	return 0;

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 free_nbio:
	free_nbio(nvmeq, nbio);
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 nomem:
	return result;
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}

/*
 * NB: return value of non-zero would mean that we were a stacking driver.
 * make_request must always succeed.
 */
static int nvme_make_request(struct request_queue *q, struct bio *bio)
{
	struct nvme_ns *ns = q->queuedata;
	struct nvme_queue *nvmeq = get_nvmeq(ns);
550 551 552 553 554 555 556 557
	int result = -EBUSY;

	spin_lock_irq(&nvmeq->q_lock);
	if (bio_list_empty(&nvmeq->sq_cong))
		result = nvme_submit_bio_queue(nvmeq, ns, bio);
	if (unlikely(result)) {
		if (bio_list_empty(&nvmeq->sq_cong))
			add_wait_queue(&nvmeq->sq_full, &nvmeq->sq_cong_wait);
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		bio_list_add(&nvmeq->sq_cong, bio);
	}
560 561

	spin_unlock_irq(&nvmeq->q_lock);
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	put_nvmeq(nvmeq);

	return 0;
}

struct sync_cmd_info {
	struct task_struct *task;
	u32 result;
	int status;
};

static void sync_completion(struct nvme_queue *nvmeq, void *ctx,
						struct nvme_completion *cqe)
{
	struct sync_cmd_info *cmdinfo = ctx;
577
	if (unlikely((unsigned long)cmdinfo == CMD_CTX_CANCELLED))
578
		return;
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	if ((unsigned long)cmdinfo == CMD_CTX_FLUSH)
		return;
581 582 583 584 585 586
	if (unlikely((unsigned long)cmdinfo == CMD_CTX_COMPLETED)) {
		dev_warn(nvmeq->q_dmadev,
				"completed id %d twice on queue %d\n",
				cqe->command_id, le16_to_cpup(&cqe->sq_id));
		return;
	}
587 588 589 590 591 592
	if (unlikely((unsigned long)cmdinfo == CMD_CTX_INVALID)) {
		dev_warn(nvmeq->q_dmadev,
				"invalid id %d completed on queue %d\n",
				cqe->command_id, le16_to_cpup(&cqe->sq_id));
		return;
	}
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	cmdinfo->result = le32_to_cpup(&cqe->result);
	cmdinfo->status = le16_to_cpup(&cqe->status) >> 1;
	wake_up_process(cmdinfo->task);
}

typedef void (*completion_fn)(struct nvme_queue *, void *,
						struct nvme_completion *);

static irqreturn_t nvme_process_cq(struct nvme_queue *nvmeq)
{
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	u16 head, phase;
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	static const completion_fn completions[4] = {
		[sync_completion_id] = sync_completion,
		[bio_completion_id]  = bio_completion,
	};

	head = nvmeq->cq_head;
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	phase = nvmeq->cq_phase;
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	for (;;) {
		unsigned long data;
		void *ptr;
		unsigned char handler;
		struct nvme_completion cqe = nvmeq->cqes[head];
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		if ((le16_to_cpu(cqe.status) & 1) != phase)
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			break;
		nvmeq->sq_head = le16_to_cpu(cqe.sq_head);
		if (++head == nvmeq->q_depth) {
			head = 0;
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			phase = !phase;
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		}

		data = free_cmdid(nvmeq, cqe.command_id);
		handler = data & 3;
		ptr = (void *)(data & ~3UL);
		completions[handler](nvmeq, ptr, &cqe);
	}

	/* If the controller ignores the cq head doorbell and continuously
	 * writes to the queue, it is theoretically possible to wrap around
	 * the queue twice and mistakenly return IRQ_NONE.  Linux only
	 * requires that 0.1% of your interrupts are handled, so this isn't
	 * a big problem.
	 */
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	if (head == nvmeq->cq_head && phase == nvmeq->cq_phase)
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		return IRQ_NONE;

	writel(head, nvmeq->q_db + 1);
	nvmeq->cq_head = head;
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	nvmeq->cq_phase = phase;
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	return IRQ_HANDLED;
}

static irqreturn_t nvme_irq(int irq, void *data)
649 650 651 652 653 654 655 656 657 658 659 660 661 662 663 664 665 666
{
	irqreturn_t result;
	struct nvme_queue *nvmeq = data;
	spin_lock(&nvmeq->q_lock);
	result = nvme_process_cq(nvmeq);
	spin_unlock(&nvmeq->q_lock);
	return result;
}

static irqreturn_t nvme_irq_check(int irq, void *data)
{
	struct nvme_queue *nvmeq = data;
	struct nvme_completion cqe = nvmeq->cqes[nvmeq->cq_head];
	if ((le16_to_cpu(cqe.status) & 1) != nvmeq->cq_phase)
		return IRQ_NONE;
	return IRQ_WAKE_THREAD;
}

667 668 669
static void nvme_abort_command(struct nvme_queue *nvmeq, int cmdid)
{
	spin_lock_irq(&nvmeq->q_lock);
670
	cancel_cmdid_data(nvmeq, cmdid);
671 672 673
	spin_unlock_irq(&nvmeq->q_lock);
}

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/*
 * Returns 0 on success.  If the result is negative, it's a Linux error code;
 * if the result is positive, it's an NVM Express status code
 */
678
static int nvme_submit_sync_cmd(struct nvme_queue *nvmeq,
679
			struct nvme_command *cmd, u32 *result, unsigned timeout)
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{
	int cmdid;
	struct sync_cmd_info cmdinfo;

	cmdinfo.task = current;
	cmdinfo.status = -EINTR;

687 688
	cmdid = alloc_cmdid_killable(nvmeq, &cmdinfo, sync_completion_id,
								timeout);
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	if (cmdid < 0)
		return cmdid;
	cmd->common.command_id = cmdid;

693 694
	set_current_state(TASK_KILLABLE);
	nvme_submit_cmd(nvmeq, cmd);
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	schedule();

697 698 699 700 701
	if (cmdinfo.status == -EINTR) {
		nvme_abort_command(nvmeq, cmdid);
		return -EINTR;
	}

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	if (result)
		*result = cmdinfo.result;

	return cmdinfo.status;
}

static int nvme_submit_admin_cmd(struct nvme_dev *dev, struct nvme_command *cmd,
								u32 *result)
{
711
	return nvme_submit_sync_cmd(dev->queues[0], cmd, result, ADMIN_TIMEOUT);
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}

static int adapter_delete_queue(struct nvme_dev *dev, u8 opcode, u16 id)
{
	int status;
	struct nvme_command c;

	memset(&c, 0, sizeof(c));
	c.delete_queue.opcode = opcode;
	c.delete_queue.qid = cpu_to_le16(id);

	status = nvme_submit_admin_cmd(dev, &c, NULL);
	if (status)
		return -EIO;
	return 0;
}

static int adapter_alloc_cq(struct nvme_dev *dev, u16 qid,
						struct nvme_queue *nvmeq)
{
	int status;
	struct nvme_command c;
	int flags = NVME_QUEUE_PHYS_CONTIG | NVME_CQ_IRQ_ENABLED;

	memset(&c, 0, sizeof(c));
	c.create_cq.opcode = nvme_admin_create_cq;
	c.create_cq.prp1 = cpu_to_le64(nvmeq->cq_dma_addr);
	c.create_cq.cqid = cpu_to_le16(qid);
	c.create_cq.qsize = cpu_to_le16(nvmeq->q_depth - 1);
	c.create_cq.cq_flags = cpu_to_le16(flags);
	c.create_cq.irq_vector = cpu_to_le16(nvmeq->cq_vector);

	status = nvme_submit_admin_cmd(dev, &c, NULL);
	if (status)
		return -EIO;
	return 0;
}

static int adapter_alloc_sq(struct nvme_dev *dev, u16 qid,
						struct nvme_queue *nvmeq)
{
	int status;
	struct nvme_command c;
	int flags = NVME_QUEUE_PHYS_CONTIG | NVME_SQ_PRIO_MEDIUM;

	memset(&c, 0, sizeof(c));
	c.create_sq.opcode = nvme_admin_create_sq;
	c.create_sq.prp1 = cpu_to_le64(nvmeq->sq_dma_addr);
	c.create_sq.sqid = cpu_to_le16(qid);
	c.create_sq.qsize = cpu_to_le16(nvmeq->q_depth - 1);
	c.create_sq.sq_flags = cpu_to_le16(flags);
	c.create_sq.cqid = cpu_to_le16(qid);

	status = nvme_submit_admin_cmd(dev, &c, NULL);
	if (status)
		return -EIO;
	return 0;
}

static int adapter_delete_cq(struct nvme_dev *dev, u16 cqid)
{
	return adapter_delete_queue(dev, nvme_admin_delete_cq, cqid);
}

static int adapter_delete_sq(struct nvme_dev *dev, u16 sqid)
{
	return adapter_delete_queue(dev, nvme_admin_delete_sq, sqid);
}

static void nvme_free_queue(struct nvme_dev *dev, int qid)
{
	struct nvme_queue *nvmeq = dev->queues[qid];
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	int vector = dev->entry[nvmeq->cq_vector].vector;
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	irq_set_affinity_hint(vector, NULL);
	free_irq(vector, nvmeq);
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	/* Don't tell the adapter to delete the admin queue */
	if (qid) {
		adapter_delete_sq(dev, qid);
		adapter_delete_cq(dev, qid);
	}

	dma_free_coherent(nvmeq->q_dmadev, CQ_SIZE(nvmeq->q_depth),
				(void *)nvmeq->cqes, nvmeq->cq_dma_addr);
	dma_free_coherent(nvmeq->q_dmadev, SQ_SIZE(nvmeq->q_depth),
					nvmeq->sq_cmds, nvmeq->sq_dma_addr);
	kfree(nvmeq);
}

static struct nvme_queue *nvme_alloc_queue(struct nvme_dev *dev, int qid,
							int depth, int vector)
{
	struct device *dmadev = &dev->pci_dev->dev;
806
	unsigned extra = (depth / 8) + (depth * sizeof(struct nvme_cmd_info));
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	struct nvme_queue *nvmeq = kzalloc(sizeof(*nvmeq) + extra, GFP_KERNEL);
	if (!nvmeq)
		return NULL;

	nvmeq->cqes = dma_alloc_coherent(dmadev, CQ_SIZE(depth),
					&nvmeq->cq_dma_addr, GFP_KERNEL);
	if (!nvmeq->cqes)
		goto free_nvmeq;
	memset((void *)nvmeq->cqes, 0, CQ_SIZE(depth));

	nvmeq->sq_cmds = dma_alloc_coherent(dmadev, SQ_SIZE(depth),
					&nvmeq->sq_dma_addr, GFP_KERNEL);
	if (!nvmeq->sq_cmds)
		goto free_cqdma;

	nvmeq->q_dmadev = dmadev;
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	nvmeq->dev = dev;
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	spin_lock_init(&nvmeq->q_lock);
	nvmeq->cq_head = 0;
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	nvmeq->cq_phase = 1;
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	init_waitqueue_head(&nvmeq->sq_full);
828
	init_waitqueue_entry(&nvmeq->sq_cong_wait, nvme_thread);
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	bio_list_init(&nvmeq->sq_cong);
	nvmeq->q_db = &dev->dbs[qid * 2];
	nvmeq->q_depth = depth;
	nvmeq->cq_vector = vector;

	return nvmeq;

 free_cqdma:
	dma_free_coherent(dmadev, CQ_SIZE(nvmeq->q_depth), (void *)nvmeq->cqes,
							nvmeq->cq_dma_addr);
 free_nvmeq:
	kfree(nvmeq);
	return NULL;
}

844 845 846
static int queue_request_irq(struct nvme_dev *dev, struct nvme_queue *nvmeq,
							const char *name)
{
847 848
	if (use_threaded_interrupts)
		return request_threaded_irq(dev->entry[nvmeq->cq_vector].vector,
849
					nvme_irq_check, nvme_irq,
850 851
					IRQF_DISABLED | IRQF_SHARED,
					name, nvmeq);
852 853 854 855
	return request_irq(dev->entry[nvmeq->cq_vector].vector, nvme_irq,
				IRQF_DISABLED | IRQF_SHARED, name, nvmeq);
}

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static __devinit struct nvme_queue *nvme_create_queue(struct nvme_dev *dev,
					int qid, int cq_size, int vector)
{
	int result;
	struct nvme_queue *nvmeq = nvme_alloc_queue(dev, qid, cq_size, vector);

862 863 864
	if (!nvmeq)
		return NULL;

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	result = adapter_alloc_cq(dev, qid, nvmeq);
	if (result < 0)
		goto free_nvmeq;

	result = adapter_alloc_sq(dev, qid, nvmeq);
	if (result < 0)
		goto release_cq;

873
	result = queue_request_irq(dev, nvmeq, "nvme");
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	if (result < 0)
		goto release_sq;

	return nvmeq;

 release_sq:
	adapter_delete_sq(dev, qid);
 release_cq:
	adapter_delete_cq(dev, qid);
 free_nvmeq:
	dma_free_coherent(nvmeq->q_dmadev, CQ_SIZE(nvmeq->q_depth),
				(void *)nvmeq->cqes, nvmeq->cq_dma_addr);
	dma_free_coherent(nvmeq->q_dmadev, SQ_SIZE(nvmeq->q_depth),
					nvmeq->sq_cmds, nvmeq->sq_dma_addr);
	kfree(nvmeq);
	return NULL;
}

static int __devinit nvme_configure_admin_queue(struct nvme_dev *dev)
{
	int result;
	u32 aqa;
	struct nvme_queue *nvmeq;

	dev->dbs = ((void __iomem *)dev->bar) + 4096;

	nvmeq = nvme_alloc_queue(dev, 0, 64, 0);
901 902
	if (!nvmeq)
		return -ENOMEM;
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	aqa = nvmeq->q_depth - 1;
	aqa |= aqa << 16;

	dev->ctrl_config = NVME_CC_ENABLE | NVME_CC_CSS_NVM;
	dev->ctrl_config |= (PAGE_SHIFT - 12) << NVME_CC_MPS_SHIFT;
	dev->ctrl_config |= NVME_CC_ARB_RR | NVME_CC_SHN_NONE;
910
	dev->ctrl_config |= NVME_CC_IOSQES | NVME_CC_IOCQES;
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912
	writel(0, &dev->bar->cc);
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	writel(aqa, &dev->bar->aqa);
	writeq(nvmeq->sq_dma_addr, &dev->bar->asq);
	writeq(nvmeq->cq_dma_addr, &dev->bar->acq);
	writel(dev->ctrl_config, &dev->bar->cc);

	while (!(readl(&dev->bar->csts) & NVME_CSTS_RDY)) {
		msleep(100);
		if (fatal_signal_pending(current))
			return -EINTR;
	}

924
	result = queue_request_irq(dev, nvmeq, "nvme admin");
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	dev->queues[0] = nvmeq;
	return result;
}

929 930 931
static int nvme_map_user_pages(struct nvme_dev *dev, int write,
				unsigned long addr, unsigned length,
				struct scatterlist **sgp)
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{
933
	int i, err, count, nents, offset;
934 935
	struct scatterlist *sg;
	struct page **pages;
936 937 938

	if (addr & 3)
		return -EINVAL;
939 940 941
	if (!length)
		return -EINVAL;

942
	offset = offset_in_page(addr);
943 944
	count = DIV_ROUND_UP(offset + length, PAGE_SIZE);
	pages = kcalloc(count, sizeof(*pages), GFP_KERNEL);
945 946 947 948 949 950 951

	err = get_user_pages_fast(addr, count, 1, pages);
	if (err < count) {
		count = err;
		err = -EFAULT;
		goto put_pages;
	}
952 953

	sg = kcalloc(count, sizeof(*sg), GFP_KERNEL);
954
	sg_init_table(sg, count);
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	sg_set_page(&sg[0], pages[0], PAGE_SIZE - offset, offset);
956 957 958 959 960 961 962 963 964
	length -= (PAGE_SIZE - offset);
	for (i = 1; i < count; i++) {
		sg_set_page(&sg[i], pages[i], min_t(int, length, PAGE_SIZE), 0);
		length -= PAGE_SIZE;
	}

	err = -ENOMEM;
	nents = dma_map_sg(&dev->pci_dev->dev, sg, count,
				write ? DMA_TO_DEVICE : DMA_FROM_DEVICE);
965 966
	if (!nents)
		goto put_pages;
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968 969 970
	kfree(pages);
	*sgp = sg;
	return nents;
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972 973 974 975 976 977
 put_pages:
	for (i = 0; i < count; i++)
		put_page(pages[i]);
	kfree(pages);
	return err;
}
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979 980 981 982 983
static void nvme_unmap_user_pages(struct nvme_dev *dev, int write,
				unsigned long addr, int length,
				struct scatterlist *sg, int nents)
{
	int i, count;
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985
	count = DIV_ROUND_UP(offset_in_page(addr) + length, PAGE_SIZE);
986
	dma_unmap_sg(&dev->pci_dev->dev, sg, nents, DMA_FROM_DEVICE);
987

988
	for (i = 0; i < count; i++)
989 990
		put_page(sg_page(&sg[i]));
}
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992 993 994 995 996 997
static int nvme_submit_user_admin_command(struct nvme_dev *dev,
					unsigned long addr, unsigned length,
					struct nvme_command *cmd)
{
	int err, nents;
	struct scatterlist *sg;
998
	struct nvme_prps *prps;
999 1000 1001 1002

	nents = nvme_map_user_pages(dev, 0, addr, length, &sg);
	if (nents < 0)
		return nents;
1003
	prps = nvme_setup_prps(dev, &cmd->common, sg, length);
1004 1005
	err = nvme_submit_admin_cmd(dev, cmd, NULL);
	nvme_unmap_user_pages(dev, 0, addr, length, sg, nents);
1006
	nvme_free_prps(dev, prps);
1007
	return err ? -EIO : 0;
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}

1010
static int nvme_identify(struct nvme_ns *ns, unsigned long addr, int cns)
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{
	struct nvme_command c;

1014 1015 1016 1017 1018 1019 1020 1021 1022 1023 1024
	memset(&c, 0, sizeof(c));
	c.identify.opcode = nvme_admin_identify;
	c.identify.nsid = cns ? 0 : cpu_to_le32(ns->ns_id);
	c.identify.cns = cpu_to_le32(cns);

	return nvme_submit_user_admin_command(ns->dev, addr, 4096, &c);
}

static int nvme_get_range_type(struct nvme_ns *ns, unsigned long addr)
{
	struct nvme_command c;
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	memset(&c, 0, sizeof(c));
	c.features.opcode = nvme_admin_get_features;
	c.features.nsid = cpu_to_le32(ns->ns_id);
	c.features.fid = cpu_to_le32(NVME_FEAT_LBA_RANGE);

1031
	return nvme_submit_user_admin_command(ns->dev, addr, 4096, &c);
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1032 1033
}

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static int nvme_submit_io(struct nvme_ns *ns, struct nvme_user_io __user *uio)
{
	struct nvme_dev *dev = ns->dev;
	struct nvme_queue *nvmeq;
	struct nvme_user_io io;
	struct nvme_command c;
	unsigned length;
	int nents, status;
	struct scatterlist *sg;
1043
	struct nvme_prps *prps;
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1044 1045 1046

	if (copy_from_user(&io, uio, sizeof(io)))
		return -EFAULT;
1047 1048 1049 1050 1051 1052 1053 1054 1055 1056 1057
	length = (io.nblocks + 1) << ns->lba_shift;

	switch (io.opcode) {
	case nvme_cmd_write:
	case nvme_cmd_read:
		nents = nvme_map_user_pages(dev, io.opcode & 1, io.addr,
								length, &sg);
	default:
		return -EFAULT;
	}

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	if (nents < 0)
		return nents;

	memset(&c, 0, sizeof(c));
	c.rw.opcode = io.opcode;
	c.rw.flags = io.flags;
1064
	c.rw.nsid = cpu_to_le32(ns->ns_id);
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	c.rw.slba = cpu_to_le64(io.slba);
1066
	c.rw.length = cpu_to_le16(io.nblocks);
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	c.rw.control = cpu_to_le16(io.control);
	c.rw.dsmgmt = cpu_to_le16(io.dsmgmt);
1069 1070 1071
	c.rw.reftag = io.reftag;
	c.rw.apptag = io.apptag;
	c.rw.appmask = io.appmask;
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	/* XXX: metadata */
1073
	prps = nvme_setup_prps(dev, &c.common, sg, length);
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1075
	nvmeq = get_nvmeq(ns);
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	/*
	 * Since nvme_submit_sync_cmd sleeps, we can't keep preemption
1078 1079 1080 1081
	 * disabled.  We may be preempted at any point, and be rescheduled
	 * to a different CPU.  That will cause cacheline bouncing, but no
	 * additional races since q_lock already protects against other CPUs.
	 */
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	put_nvmeq(nvmeq);
1083
	status = nvme_submit_sync_cmd(nvmeq, &c, NULL, IO_TIMEOUT);
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1084 1085

	nvme_unmap_user_pages(dev, io.opcode & 1, io.addr, length, sg, nents);
1086
	nvme_free_prps(dev, prps);
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	return status;
}

1090 1091 1092 1093 1094 1095 1096 1097
static int nvme_download_firmware(struct nvme_ns *ns,
						struct nvme_dlfw __user *udlfw)
{
	struct nvme_dev *dev = ns->dev;
	struct nvme_dlfw dlfw;
	struct nvme_command c;
	int nents, status;
	struct scatterlist *sg;
1098
	struct nvme_prps *prps;
1099 1100 1101 1102 1103 1104 1105 1106 1107 1108 1109 1110 1111 1112

	if (copy_from_user(&dlfw, udlfw, sizeof(dlfw)))
		return -EFAULT;
	if (dlfw.length >= (1 << 30))
		return -EINVAL;

	nents = nvme_map_user_pages(dev, 1, dlfw.addr, dlfw.length * 4, &sg);
	if (nents < 0)
		return nents;

	memset(&c, 0, sizeof(c));
	c.dlfw.opcode = nvme_admin_download_fw;
	c.dlfw.numd = cpu_to_le32(dlfw.length);
	c.dlfw.offset = cpu_to_le32(dlfw.offset);
1113
	prps = nvme_setup_prps(dev, &c.common, sg, dlfw.length * 4);
1114 1115 1116

	status = nvme_submit_admin_cmd(dev, &c, NULL);
	nvme_unmap_user_pages(dev, 0, dlfw.addr, dlfw.length * 4, sg, nents);
1117
	nvme_free_prps(dev, prps);
1118 1119 1120 1121 1122 1123 1124 1125 1126 1127 1128 1129 1130 1131 1132
	return status;
}

static int nvme_activate_firmware(struct nvme_ns *ns, unsigned long arg)
{
	struct nvme_dev *dev = ns->dev;
	struct nvme_command c;

	memset(&c, 0, sizeof(c));
	c.common.opcode = nvme_admin_activate_fw;
	c.common.rsvd10[0] = cpu_to_le32(arg);

	return nvme_submit_admin_cmd(dev, &c, NULL);
}

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static int nvme_ioctl(struct block_device *bdev, fmode_t mode, unsigned int cmd,
							unsigned long arg)
{
	struct nvme_ns *ns = bdev->bd_disk->private_data;

	switch (cmd) {
	case NVME_IOCTL_IDENTIFY_NS:
1140
		return nvme_identify(ns, arg, 0);
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	case NVME_IOCTL_IDENTIFY_CTRL:
1142
		return nvme_identify(ns, arg, 1);
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	case NVME_IOCTL_GET_RANGE_TYPE:
1144
		return nvme_get_range_type(ns, arg);
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	case NVME_IOCTL_SUBMIT_IO:
		return nvme_submit_io(ns, (void __user *)arg);
1147 1148 1149 1150
	case NVME_IOCTL_DOWNLOAD_FW:
		return nvme_download_firmware(ns, (void __user *)arg);
	case NVME_IOCTL_ACTIVATE_FW:
		return nvme_activate_firmware(ns, arg);
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	default:
		return -ENOTTY;
	}
}

static const struct block_device_operations nvme_fops = {
	.owner		= THIS_MODULE,
	.ioctl		= nvme_ioctl,
M
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	.compat_ioctl	= nvme_ioctl,
M
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};

1162 1163 1164 1165 1166 1167 1168 1169 1170
static void nvme_resubmit_bios(struct nvme_queue *nvmeq)
{
	while (bio_list_peek(&nvmeq->sq_cong)) {
		struct bio *bio = bio_list_pop(&nvmeq->sq_cong);
		struct nvme_ns *ns = bio->bi_bdev->bd_disk->private_data;
		if (nvme_submit_bio_queue(nvmeq, ns, bio)) {
			bio_list_add_head(&nvmeq->sq_cong, bio);
			break;
		}
1171 1172 1173
		if (bio_list_empty(&nvmeq->sq_cong))
			remove_wait_queue(&nvmeq->sq_full,
							&nvmeq->sq_cong_wait);
1174 1175 1176 1177 1178 1179 1180 1181 1182 1183 1184 1185 1186 1187
	}
}

static int nvme_kthread(void *data)
{
	struct nvme_dev *dev;

	while (!kthread_should_stop()) {
		__set_current_state(TASK_RUNNING);
		spin_lock(&dev_list_lock);
		list_for_each_entry(dev, &dev_list, node) {
			int i;
			for (i = 0; i < dev->queue_count; i++) {
				struct nvme_queue *nvmeq = dev->queues[i];
1188 1189
				if (!nvmeq)
					continue;
1190 1191 1192 1193 1194 1195 1196 1197 1198 1199 1200 1201 1202 1203
				spin_lock_irq(&nvmeq->q_lock);
				if (nvme_process_cq(nvmeq))
					printk("process_cq did something\n");
				nvme_resubmit_bios(nvmeq);
				spin_unlock_irq(&nvmeq->q_lock);
			}
		}
		spin_unlock(&dev_list_lock);
		set_current_state(TASK_INTERRUPTIBLE);
		schedule_timeout(HZ);
	}
	return 0;
}

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1204 1205 1206 1207 1208 1209 1210 1211 1212 1213 1214 1215 1216 1217 1218 1219 1220 1221 1222 1223 1224 1225 1226 1227 1228 1229 1230 1231 1232 1233 1234 1235 1236 1237 1238 1239
static struct nvme_ns *nvme_alloc_ns(struct nvme_dev *dev, int index,
			struct nvme_id_ns *id, struct nvme_lba_range_type *rt)
{
	struct nvme_ns *ns;
	struct gendisk *disk;
	int lbaf;

	if (rt->attributes & NVME_LBART_ATTRIB_HIDE)
		return NULL;

	ns = kzalloc(sizeof(*ns), GFP_KERNEL);
	if (!ns)
		return NULL;
	ns->queue = blk_alloc_queue(GFP_KERNEL);
	if (!ns->queue)
		goto out_free_ns;
	ns->queue->queue_flags = QUEUE_FLAG_DEFAULT | QUEUE_FLAG_NOMERGES |
				QUEUE_FLAG_NONROT | QUEUE_FLAG_DISCARD;
	blk_queue_make_request(ns->queue, nvme_make_request);
	ns->dev = dev;
	ns->queue->queuedata = ns;

	disk = alloc_disk(NVME_MINORS);
	if (!disk)
		goto out_free_queue;
	ns->ns_id = index;
	ns->disk = disk;
	lbaf = id->flbas & 0xf;
	ns->lba_shift = id->lbaf[lbaf].ds;

	disk->major = nvme_major;
	disk->minors = NVME_MINORS;
	disk->first_minor = NVME_MINORS * index;
	disk->fops = &nvme_fops;
	disk->private_data = ns;
	disk->queue = ns->queue;
1240
	disk->driverfs_dev = &dev->pci_dev->dev;
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1241 1242 1243 1244 1245 1246 1247 1248 1249 1250 1251 1252 1253 1254 1255 1256 1257 1258 1259
	sprintf(disk->disk_name, "nvme%dn%d", dev->instance, index);
	set_capacity(disk, le64_to_cpup(&id->nsze) << (ns->lba_shift - 9));

	return ns;

 out_free_queue:
	blk_cleanup_queue(ns->queue);
 out_free_ns:
	kfree(ns);
	return NULL;
}

static void nvme_ns_free(struct nvme_ns *ns)
{
	put_disk(ns->disk);
	blk_cleanup_queue(ns->queue);
	kfree(ns);
}

1260
static int set_queue_count(struct nvme_dev *dev, int count)
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{
	int status;
	u32 result;
	struct nvme_command c;
1265
	u32 q_count = (count - 1) | ((count - 1) << 16);
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1266 1267 1268 1269 1270 1271 1272 1273 1274 1275 1276 1277 1278 1279

	memset(&c, 0, sizeof(c));
	c.features.opcode = nvme_admin_get_features;
	c.features.fid = cpu_to_le32(NVME_FEAT_NUM_QUEUES);
	c.features.dword11 = cpu_to_le32(q_count);

	status = nvme_submit_admin_cmd(dev, &c, &result);
	if (status)
		return -EIO;
	return min(result & 0xffff, result >> 16) + 1;
}

static int __devinit nvme_setup_io_queues(struct nvme_dev *dev)
{
1280
	int result, cpu, i, nr_io_queues;
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1282 1283
	nr_io_queues = num_online_cpus();
	result = set_queue_count(dev, nr_io_queues);
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	if (result < 0)
		return result;
1286 1287
	if (result < nr_io_queues)
		nr_io_queues = result;
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1288

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1289 1290 1291
	/* Deregister the admin queue's interrupt */
	free_irq(dev->entry[0].vector, dev->queues[0]);

1292
	for (i = 0; i < nr_io_queues; i++)
M
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1293 1294
		dev->entry[i].entry = i;
	for (;;) {
1295 1296
		result = pci_enable_msix(dev->pci_dev, dev->entry,
								nr_io_queues);
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		if (result == 0) {
			break;
		} else if (result > 0) {
1300
			nr_io_queues = result;
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			continue;
		} else {
1303
			nr_io_queues = 1;
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			break;
		}
	}

	result = queue_request_irq(dev, dev->queues[0], "nvme admin");
	/* XXX: handle failure here */

	cpu = cpumask_first(cpu_online_mask);
1312
	for (i = 0; i < nr_io_queues; i++) {
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		irq_set_affinity_hint(dev->entry[i].vector, get_cpu_mask(cpu));
		cpu = cpumask_next(cpu, cpu_online_mask);
	}

1317
	for (i = 0; i < nr_io_queues; i++) {
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1318 1319 1320 1321 1322 1323
		dev->queues[i + 1] = nvme_create_queue(dev, i + 1,
							NVME_Q_DEPTH, i);
		if (!dev->queues[i + 1])
			return -ENOMEM;
		dev->queue_count++;
	}
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1324

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1325 1326 1327 1328 1329
	for (; i < num_possible_cpus(); i++) {
		int target = i % rounddown_pow_of_two(dev->queue_count - 1);
		dev->queues[i + 1] = dev->queues[target + 1];
	}

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	return 0;
}

static void nvme_free_queues(struct nvme_dev *dev)
{
	int i;

	for (i = dev->queue_count - 1; i >= 0; i--)
		nvme_free_queue(dev, i);
}

static int __devinit nvme_dev_add(struct nvme_dev *dev)
{
	int res, nn, i;
	struct nvme_ns *ns, *next;
1345
	struct nvme_id_ctrl *ctrl;
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	void *id;
	dma_addr_t dma_addr;
	struct nvme_command cid, crt;

	res = nvme_setup_io_queues(dev);
	if (res)
		return res;

	/* XXX: Switch to a SG list once prp2 works */
	id = dma_alloc_coherent(&dev->pci_dev->dev, 8192, &dma_addr,
								GFP_KERNEL);

	memset(&cid, 0, sizeof(cid));
	cid.identify.opcode = nvme_admin_identify;
	cid.identify.nsid = 0;
	cid.identify.prp1 = cpu_to_le64(dma_addr);
	cid.identify.cns = cpu_to_le32(1);

	res = nvme_submit_admin_cmd(dev, &cid, NULL);
	if (res) {
		res = -EIO;
		goto out_free;
	}

1370 1371 1372 1373 1374
	ctrl = id;
	nn = le32_to_cpup(&ctrl->nn);
	memcpy(dev->serial, ctrl->sn, sizeof(ctrl->sn));
	memcpy(dev->model, ctrl->mn, sizeof(ctrl->mn));
	memcpy(dev->firmware_rev, ctrl->fr, sizeof(ctrl->fr));
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1375 1376 1377 1378 1379 1380 1381

	cid.identify.cns = 0;
	memset(&crt, 0, sizeof(crt));
	crt.features.opcode = nvme_admin_get_features;
	crt.features.prp1 = cpu_to_le64(dma_addr + 4096);
	crt.features.fid = cpu_to_le32(NVME_FEAT_LBA_RANGE);

1382
	for (i = 0; i <= nn; i++) {
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1383 1384 1385 1386 1387 1388 1389 1390 1391 1392 1393 1394 1395 1396 1397 1398 1399 1400 1401 1402 1403 1404 1405 1406 1407 1408 1409 1410 1411 1412 1413 1414 1415 1416 1417 1418 1419
		cid.identify.nsid = cpu_to_le32(i);
		res = nvme_submit_admin_cmd(dev, &cid, NULL);
		if (res)
			continue;

		if (((struct nvme_id_ns *)id)->ncap == 0)
			continue;

		crt.features.nsid = cpu_to_le32(i);
		res = nvme_submit_admin_cmd(dev, &crt, NULL);
		if (res)
			continue;

		ns = nvme_alloc_ns(dev, i, id, id + 4096);
		if (ns)
			list_add_tail(&ns->list, &dev->namespaces);
	}
	list_for_each_entry(ns, &dev->namespaces, list)
		add_disk(ns->disk);

	dma_free_coherent(&dev->pci_dev->dev, 4096, id, dma_addr);
	return 0;

 out_free:
	list_for_each_entry_safe(ns, next, &dev->namespaces, list) {
		list_del(&ns->list);
		nvme_ns_free(ns);
	}

	dma_free_coherent(&dev->pci_dev->dev, 4096, id, dma_addr);
	return res;
}

static int nvme_dev_remove(struct nvme_dev *dev)
{
	struct nvme_ns *ns, *next;

1420 1421 1422 1423
	spin_lock(&dev_list_lock);
	list_del(&dev->node);
	spin_unlock(&dev_list_lock);

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1424 1425 1426 1427 1428 1429 1430 1431 1432 1433 1434 1435 1436
	/* TODO: wait all I/O finished or cancel them */

	list_for_each_entry_safe(ns, next, &dev->namespaces, list) {
		list_del(&ns->list);
		del_gendisk(ns->disk);
		nvme_ns_free(ns);
	}

	nvme_free_queues(dev);

	return 0;
}

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1437 1438 1439 1440 1441 1442 1443 1444
static int nvme_setup_prp_pools(struct nvme_dev *dev)
{
	struct device *dmadev = &dev->pci_dev->dev;
	dev->prp_page_pool = dma_pool_create("prp list page", dmadev,
						PAGE_SIZE, PAGE_SIZE, 0);
	if (!dev->prp_page_pool)
		return -ENOMEM;

1445 1446 1447 1448 1449 1450 1451
	/* Optimisation for I/Os between 4k and 128k */
	dev->prp_small_pool = dma_pool_create("prp list 256", dmadev,
						256, 256, 0);
	if (!dev->prp_small_pool) {
		dma_pool_destroy(dev->prp_page_pool);
		return -ENOMEM;
	}
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1452 1453 1454 1455 1456 1457
	return 0;
}

static void nvme_release_prp_pools(struct nvme_dev *dev)
{
	dma_pool_destroy(dev->prp_page_pool);
1458
	dma_pool_destroy(dev->prp_small_pool);
M
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1459 1460
}

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1461 1462 1463 1464 1465 1466 1467 1468 1469 1470 1471 1472 1473 1474
/* XXX: Use an ida or something to let remove / add work correctly */
static void nvme_set_instance(struct nvme_dev *dev)
{
	static int instance;
	dev->instance = instance++;
}

static void nvme_release_instance(struct nvme_dev *dev)
{
}

static int __devinit nvme_probe(struct pci_dev *pdev,
						const struct pci_device_id *id)
{
M
Matthew Wilcox 已提交
1475
	int bars, result = -ENOMEM;
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Matthew Wilcox 已提交
1476 1477 1478 1479 1480 1481 1482 1483 1484
	struct nvme_dev *dev;

	dev = kzalloc(sizeof(*dev), GFP_KERNEL);
	if (!dev)
		return -ENOMEM;
	dev->entry = kcalloc(num_possible_cpus(), sizeof(*dev->entry),
								GFP_KERNEL);
	if (!dev->entry)
		goto free;
M
Matthew Wilcox 已提交
1485 1486
	dev->queues = kcalloc(num_possible_cpus() + 1, sizeof(void *),
								GFP_KERNEL);
M
Matthew Wilcox 已提交
1487 1488 1489
	if (!dev->queues)
		goto free;

1490 1491
	if (pci_enable_device_mem(pdev))
		goto free;
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Matthew Wilcox 已提交
1492
	pci_set_master(pdev);
M
Matthew Wilcox 已提交
1493 1494 1495
	bars = pci_select_bars(pdev, IORESOURCE_MEM);
	if (pci_request_selected_regions(pdev, bars, "nvme"))
		goto disable;
1496

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Matthew Wilcox 已提交
1497 1498 1499
	INIT_LIST_HEAD(&dev->namespaces);
	dev->pci_dev = pdev;
	pci_set_drvdata(pdev, dev);
1500 1501
	dma_set_mask(&pdev->dev, DMA_BIT_MASK(64));
	dma_set_coherent_mask(&pdev->dev, DMA_BIT_MASK(64));
M
Matthew Wilcox 已提交
1502
	nvme_set_instance(dev);
1503
	dev->entry[0].vector = pdev->irq;
M
Matthew Wilcox 已提交
1504

M
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1505 1506 1507 1508
	result = nvme_setup_prp_pools(dev);
	if (result)
		goto disable_msix;

M
Matthew Wilcox 已提交
1509 1510 1511
	dev->bar = ioremap(pci_resource_start(pdev, 0), 8192);
	if (!dev->bar) {
		result = -ENOMEM;
M
Matthew Wilcox 已提交
1512
		goto disable_msix;
M
Matthew Wilcox 已提交
1513 1514 1515 1516 1517 1518 1519
	}

	result = nvme_configure_admin_queue(dev);
	if (result)
		goto unmap;
	dev->queue_count++;

1520 1521 1522 1523
	spin_lock(&dev_list_lock);
	list_add(&dev->node, &dev_list);
	spin_unlock(&dev_list_lock);

1524 1525 1526 1527
	result = nvme_dev_add(dev);
	if (result)
		goto delete;

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1528 1529 1530
	return 0;

 delete:
1531 1532 1533 1534
	spin_lock(&dev_list_lock);
	list_del(&dev->node);
	spin_unlock(&dev_list_lock);

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1535 1536 1537
	nvme_free_queues(dev);
 unmap:
	iounmap(dev->bar);
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1538
 disable_msix:
M
Matthew Wilcox 已提交
1539 1540
	pci_disable_msix(pdev);
	nvme_release_instance(dev);
M
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1541
	nvme_release_prp_pools(dev);
M
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1542
 disable:
1543
	pci_disable_device(pdev);
M
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1544
	pci_release_regions(pdev);
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1545 1546 1547 1548 1549 1550 1551 1552 1553 1554 1555 1556 1557 1558
 free:
	kfree(dev->queues);
	kfree(dev->entry);
	kfree(dev);
	return result;
}

static void __devexit nvme_remove(struct pci_dev *pdev)
{
	struct nvme_dev *dev = pci_get_drvdata(pdev);
	nvme_dev_remove(dev);
	pci_disable_msix(pdev);
	iounmap(dev->bar);
	nvme_release_instance(dev);
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1559
	nvme_release_prp_pools(dev);
1560
	pci_disable_device(pdev);
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1561
	pci_release_regions(pdev);
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1562 1563 1564 1565 1566 1567 1568 1569 1570 1571 1572 1573 1574 1575 1576 1577 1578 1579 1580 1581 1582 1583 1584 1585 1586 1587 1588 1589 1590 1591 1592 1593 1594 1595 1596 1597 1598 1599 1600 1601 1602 1603 1604
	kfree(dev->queues);
	kfree(dev->entry);
	kfree(dev);
}

/* These functions are yet to be implemented */
#define nvme_error_detected NULL
#define nvme_dump_registers NULL
#define nvme_link_reset NULL
#define nvme_slot_reset NULL
#define nvme_error_resume NULL
#define nvme_suspend NULL
#define nvme_resume NULL

static struct pci_error_handlers nvme_err_handler = {
	.error_detected	= nvme_error_detected,
	.mmio_enabled	= nvme_dump_registers,
	.link_reset	= nvme_link_reset,
	.slot_reset	= nvme_slot_reset,
	.resume		= nvme_error_resume,
};

/* Move to pci_ids.h later */
#define PCI_CLASS_STORAGE_EXPRESS	0x010802

static DEFINE_PCI_DEVICE_TABLE(nvme_id_table) = {
	{ PCI_DEVICE_CLASS(PCI_CLASS_STORAGE_EXPRESS, 0xffffff) },
	{ 0, }
};
MODULE_DEVICE_TABLE(pci, nvme_id_table);

static struct pci_driver nvme_driver = {
	.name		= "nvme",
	.id_table	= nvme_id_table,
	.probe		= nvme_probe,
	.remove		= __devexit_p(nvme_remove),
	.suspend	= nvme_suspend,
	.resume		= nvme_resume,
	.err_handler	= &nvme_err_handler,
};

static int __init nvme_init(void)
{
1605 1606 1607 1608 1609
	int result = -EBUSY;

	nvme_thread = kthread_run(nvme_kthread, NULL, "nvme");
	if (IS_ERR(nvme_thread))
		return PTR_ERR(nvme_thread);
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1610 1611 1612

	nvme_major = register_blkdev(nvme_major, "nvme");
	if (nvme_major <= 0)
1613
		goto kill_kthread;
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1614 1615

	result = pci_register_driver(&nvme_driver);
1616 1617 1618
	if (result)
		goto unregister_blkdev;
	return 0;
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1619

1620
 unregister_blkdev:
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	unregister_blkdev(nvme_major, "nvme");
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 kill_kthread:
	kthread_stop(nvme_thread);
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	return result;
}

static void __exit nvme_exit(void)
{
	pci_unregister_driver(&nvme_driver);
	unregister_blkdev(nvme_major, "nvme");
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	kthread_stop(nvme_thread);
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}

MODULE_AUTHOR("Matthew Wilcox <willy@linux.intel.com>");
MODULE_LICENSE("GPL");
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MODULE_VERSION("0.5");
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module_init(nvme_init);
module_exit(nvme_exit);