vnic_dev.c 22.1 KB
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/*
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Vasanthy Kolluri 已提交
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 * Copyright 2008-2010 Cisco Systems, Inc.  All rights reserved.
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 * Copyright 2007 Nuova Systems, Inc.  All rights reserved.
 *
 * This program is free software; you may redistribute it and/or modify
 * it under the terms of the GNU General Public License as published by
 * the Free Software Foundation; version 2 of the License.
 *
 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND,
 * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF
 * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND
 * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS
 * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN
 * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN
 * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE
 * SOFTWARE.
 *
 */

#include <linux/kernel.h>
#include <linux/errno.h>
#include <linux/types.h>
#include <linux/pci.h>
#include <linux/delay.h>
#include <linux/if_ether.h>

#include "vnic_resource.h"
#include "vnic_devcmd.h"
#include "vnic_dev.h"
#include "vnic_stats.h"

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enum vnic_proxy_type {
	PROXY_NONE,
	PROXY_BY_BDF,
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	PROXY_BY_INDEX,
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};

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struct vnic_res {
	void __iomem *vaddr;
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	dma_addr_t bus_addr;
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	unsigned int count;
};

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struct vnic_intr_coal_timer_info {
	u32 mul;
	u32 div;
	u32 max_usec;
};

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struct vnic_dev {
	void *priv;
	struct pci_dev *pdev;
	struct vnic_res res[RES_TYPE_MAX];
	enum vnic_dev_intr_mode intr_mode;
	struct vnic_devcmd __iomem *devcmd;
	struct vnic_devcmd_notify *notify;
	struct vnic_devcmd_notify notify_copy;
	dma_addr_t notify_pa;
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	u32 notify_sz;
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	dma_addr_t linkstatus_pa;
	struct vnic_stats *stats;
	dma_addr_t stats_pa;
	struct vnic_devcmd_fw_info *fw_info;
	dma_addr_t fw_info_pa;
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	enum vnic_proxy_type proxy;
	u32 proxy_index;
	u64 args[VNIC_DEVCMD_NARGS];
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	struct vnic_intr_coal_timer_info intr_coal_timer_info;
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};

#define VNIC_MAX_RES_HDR_SIZE \
	(sizeof(struct vnic_resource_header) + \
	sizeof(struct vnic_resource) * RES_TYPE_MAX)
#define VNIC_RES_STRIDE	128

void *vnic_dev_priv(struct vnic_dev *vdev)
{
	return vdev->priv;
}

static int vnic_dev_discover_res(struct vnic_dev *vdev,
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	struct vnic_dev_bar *bar, unsigned int num_bars)
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{
	struct vnic_resource_header __iomem *rh;
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	struct mgmt_barmap_hdr __iomem *mrh;
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	struct vnic_resource __iomem *r;
	u8 type;

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	if (num_bars == 0)
		return -EINVAL;

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	if (bar->len < VNIC_MAX_RES_HDR_SIZE) {
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		pr_err("vNIC BAR0 res hdr length error\n");
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		return -EINVAL;
	}

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	rh  = bar->vaddr;
	mrh = bar->vaddr;
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	if (!rh) {
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		pr_err("vNIC BAR0 res hdr not mem-mapped\n");
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		return -EINVAL;
	}

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	/* Check for mgmt vnic in addition to normal vnic */
	if ((ioread32(&rh->magic) != VNIC_RES_MAGIC) ||
		(ioread32(&rh->version) != VNIC_RES_VERSION)) {
		if ((ioread32(&mrh->magic) != MGMTVNIC_MAGIC) ||
			(ioread32(&mrh->version) != MGMTVNIC_VERSION)) {
			pr_err("vNIC BAR0 res magic/version error "
			"exp (%lx/%lx) or (%lx/%lx), curr (%x/%x)\n",
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			VNIC_RES_MAGIC, VNIC_RES_VERSION,
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			MGMTVNIC_MAGIC, MGMTVNIC_VERSION,
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			ioread32(&rh->magic), ioread32(&rh->version));
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			return -EINVAL;
		}
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	}

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	if (ioread32(&mrh->magic) == MGMTVNIC_MAGIC)
		r = (struct vnic_resource __iomem *)(mrh + 1);
	else
		r = (struct vnic_resource __iomem *)(rh + 1);

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	while ((type = ioread8(&r->type)) != RES_TYPE_EOL) {

		u8 bar_num = ioread8(&r->bar);
		u32 bar_offset = ioread32(&r->bar_offset);
		u32 count = ioread32(&r->count);
		u32 len;

		r++;

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		if (bar_num >= num_bars)
			continue;

		if (!bar[bar_num].len || !bar[bar_num].vaddr)
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			continue;

		switch (type) {
		case RES_TYPE_WQ:
		case RES_TYPE_RQ:
		case RES_TYPE_CQ:
		case RES_TYPE_INTR_CTRL:
			/* each count is stride bytes long */
			len = count * VNIC_RES_STRIDE;
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			if (len + bar_offset > bar[bar_num].len) {
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				pr_err("vNIC BAR0 resource %d "
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					"out-of-bounds, offset 0x%x + "
					"size 0x%x > bar len 0x%lx\n",
					type, bar_offset,
					len,
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					bar[bar_num].len);
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				return -EINVAL;
			}
			break;
		case RES_TYPE_INTR_PBA_LEGACY:
		case RES_TYPE_DEVCMD:
			len = count;
			break;
		default:
			continue;
		}

		vdev->res[type].count = count;
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		vdev->res[type].vaddr = (char __iomem *)bar[bar_num].vaddr +
			bar_offset;
		vdev->res[type].bus_addr = bar[bar_num].bus_addr + bar_offset;
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	}

	return 0;
}

unsigned int vnic_dev_get_res_count(struct vnic_dev *vdev,
	enum vnic_res_type type)
{
	return vdev->res[type].count;
}

void __iomem *vnic_dev_get_res(struct vnic_dev *vdev, enum vnic_res_type type,
	unsigned int index)
{
	if (!vdev->res[type].vaddr)
		return NULL;

	switch (type) {
	case RES_TYPE_WQ:
	case RES_TYPE_RQ:
	case RES_TYPE_CQ:
	case RES_TYPE_INTR_CTRL:
		return (char __iomem *)vdev->res[type].vaddr +
			index * VNIC_RES_STRIDE;
	default:
		return (char __iomem *)vdev->res[type].vaddr;
	}
}

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static unsigned int vnic_dev_desc_ring_size(struct vnic_dev_ring *ring,
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	unsigned int desc_count, unsigned int desc_size)
{
	/* The base address of the desc rings must be 512 byte aligned.
	 * Descriptor count is aligned to groups of 32 descriptors.  A
	 * count of 0 means the maximum 4096 descriptors.  Descriptor
	 * size is aligned to 16 bytes.
	 */

	unsigned int count_align = 32;
	unsigned int desc_align = 16;

	ring->base_align = 512;

	if (desc_count == 0)
		desc_count = 4096;

	ring->desc_count = ALIGN(desc_count, count_align);

	ring->desc_size = ALIGN(desc_size, desc_align);

	ring->size = ring->desc_count * ring->desc_size;
	ring->size_unaligned = ring->size + ring->base_align;

	return ring->size_unaligned;
}

void vnic_dev_clear_desc_ring(struct vnic_dev_ring *ring)
{
	memset(ring->descs, 0, ring->size);
}

int vnic_dev_alloc_desc_ring(struct vnic_dev *vdev, struct vnic_dev_ring *ring,
	unsigned int desc_count, unsigned int desc_size)
{
	vnic_dev_desc_ring_size(ring, desc_count, desc_size);

	ring->descs_unaligned = pci_alloc_consistent(vdev->pdev,
		ring->size_unaligned,
		&ring->base_addr_unaligned);

	if (!ring->descs_unaligned) {
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		pr_err("Failed to allocate ring (size=%d), aborting\n",
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			(int)ring->size);
		return -ENOMEM;
	}

	ring->base_addr = ALIGN(ring->base_addr_unaligned,
		ring->base_align);
	ring->descs = (u8 *)ring->descs_unaligned +
		(ring->base_addr - ring->base_addr_unaligned);

	vnic_dev_clear_desc_ring(ring);

	ring->desc_avail = ring->desc_count - 1;

	return 0;
}

void vnic_dev_free_desc_ring(struct vnic_dev *vdev, struct vnic_dev_ring *ring)
{
	if (ring->descs) {
		pci_free_consistent(vdev->pdev,
			ring->size_unaligned,
			ring->descs_unaligned,
			ring->base_addr_unaligned);
		ring->descs = NULL;
	}
}

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static int _vnic_dev_cmd(struct vnic_dev *vdev, enum vnic_devcmd_cmd cmd,
	int wait)
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{
	struct vnic_devcmd __iomem *devcmd = vdev->devcmd;
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	unsigned int i;
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	int delay;
	u32 status;
	int err;

	status = ioread32(&devcmd->status);
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	if (status == 0xFFFFFFFF) {
		/* PCI-e target device is gone */
		return -ENODEV;
	}
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	if (status & STAT_BUSY) {
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		pr_err("Busy devcmd %d\n", _CMD_N(cmd));
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		return -EBUSY;
	}

	if (_CMD_DIR(cmd) & _CMD_DIR_WRITE) {
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		for (i = 0; i < VNIC_DEVCMD_NARGS; i++)
			writeq(vdev->args[i], &devcmd->args[i]);
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		wmb();
	}

	iowrite32(cmd, &devcmd->cmd);

	if ((_CMD_FLAGS(cmd) & _CMD_FLAGS_NOWAIT))
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		return 0;
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	for (delay = 0; delay < wait; delay++) {

		udelay(100);

		status = ioread32(&devcmd->status);
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		if (status == 0xFFFFFFFF) {
			/* PCI-e target device is gone */
			return -ENODEV;
		}
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		if (!(status & STAT_BUSY)) {

			if (status & STAT_ERROR) {
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				err = (int)readq(&devcmd->args[0]);
				if (err != ERR_ECMDUNKNOWN ||
				    cmd != CMD_CAPABILITY)
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					pr_err("Error %d devcmd %d\n",
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						err, _CMD_N(cmd));
				return err;
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			}

			if (_CMD_DIR(cmd) & _CMD_DIR_READ) {
				rmb();
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				for (i = 0; i < VNIC_DEVCMD_NARGS; i++)
					vdev->args[i] = readq(&devcmd->args[i]);
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			}

			return 0;
		}
	}

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	pr_err("Timedout devcmd %d\n", _CMD_N(cmd));
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	return -ETIMEDOUT;
}

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static int vnic_dev_cmd_proxy(struct vnic_dev *vdev,
	enum vnic_devcmd_cmd proxy_cmd, enum vnic_devcmd_cmd cmd,
	u64 *a0, u64 *a1, int wait)
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{
	u32 status;
	int err;

	memset(vdev->args, 0, sizeof(vdev->args));

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	vdev->args[0] = vdev->proxy_index;
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	vdev->args[1] = cmd;
	vdev->args[2] = *a0;
	vdev->args[3] = *a1;

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	err = _vnic_dev_cmd(vdev, proxy_cmd, wait);
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	if (err)
		return err;

	status = (u32)vdev->args[0];
	if (status & STAT_ERROR) {
		err = (int)vdev->args[1];
		if (err != ERR_ECMDUNKNOWN ||
		    cmd != CMD_CAPABILITY)
			pr_err("Error %d proxy devcmd %d\n", err, _CMD_N(cmd));
		return err;
	}

	*a0 = vdev->args[1];
	*a1 = vdev->args[2];

	return 0;
}

static int vnic_dev_cmd_no_proxy(struct vnic_dev *vdev,
	enum vnic_devcmd_cmd cmd, u64 *a0, u64 *a1, int wait)
{
	int err;

	vdev->args[0] = *a0;
	vdev->args[1] = *a1;

	err = _vnic_dev_cmd(vdev, cmd, wait);

	*a0 = vdev->args[0];
	*a1 = vdev->args[1];

	return err;
}

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void vnic_dev_cmd_proxy_by_index_start(struct vnic_dev *vdev, u16 index)
{
	vdev->proxy = PROXY_BY_INDEX;
	vdev->proxy_index = index;
}

void vnic_dev_cmd_proxy_end(struct vnic_dev *vdev)
{
	vdev->proxy = PROXY_NONE;
	vdev->proxy_index = 0;
}

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int vnic_dev_cmd(struct vnic_dev *vdev, enum vnic_devcmd_cmd cmd,
	u64 *a0, u64 *a1, int wait)
{
	memset(vdev->args, 0, sizeof(vdev->args));

	switch (vdev->proxy) {
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	case PROXY_BY_INDEX:
		return vnic_dev_cmd_proxy(vdev, CMD_PROXY_BY_INDEX, cmd,
				a0, a1, wait);
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	case PROXY_BY_BDF:
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		return vnic_dev_cmd_proxy(vdev, CMD_PROXY_BY_BDF, cmd,
				a0, a1, wait);
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	case PROXY_NONE:
	default:
		return vnic_dev_cmd_no_proxy(vdev, cmd, a0, a1, wait);
	}
}

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static int vnic_dev_capable(struct vnic_dev *vdev, enum vnic_devcmd_cmd cmd)
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{
	u64 a0 = (u32)cmd, a1 = 0;
	int wait = 1000;
	int err;

	err = vnic_dev_cmd(vdev, CMD_CAPABILITY, &a0, &a1, wait);

	return !(err || a0);
}

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int vnic_dev_fw_info(struct vnic_dev *vdev,
	struct vnic_devcmd_fw_info **fw_info)
{
	u64 a0, a1 = 0;
	int wait = 1000;
	int err = 0;

	if (!vdev->fw_info) {
		vdev->fw_info = pci_alloc_consistent(vdev->pdev,
			sizeof(struct vnic_devcmd_fw_info),
			&vdev->fw_info_pa);
		if (!vdev->fw_info)
			return -ENOMEM;

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		memset(vdev->fw_info, 0, sizeof(struct vnic_devcmd_fw_info));

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		a0 = vdev->fw_info_pa;
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		a1 = sizeof(struct vnic_devcmd_fw_info);
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		/* only get fw_info once and cache it */
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		if (vnic_dev_capable(vdev, CMD_MCPU_FW_INFO))
			err = vnic_dev_cmd(vdev, CMD_MCPU_FW_INFO,
				&a0, &a1, wait);
		else
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			err = vnic_dev_cmd(vdev, CMD_MCPU_FW_INFO_OLD,
				&a0, &a1, wait);
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	}

	*fw_info = vdev->fw_info;

	return err;
}

int vnic_dev_spec(struct vnic_dev *vdev, unsigned int offset, unsigned int size,
	void *value)
{
	u64 a0, a1;
	int wait = 1000;
	int err;

	a0 = offset;
	a1 = size;

	err = vnic_dev_cmd(vdev, CMD_DEV_SPEC, &a0, &a1, wait);

	switch (size) {
	case 1: *(u8 *)value = (u8)a0; break;
	case 2: *(u16 *)value = (u16)a0; break;
	case 4: *(u32 *)value = (u32)a0; break;
	case 8: *(u64 *)value = a0; break;
	default: BUG(); break;
	}

	return err;
}

int vnic_dev_stats_dump(struct vnic_dev *vdev, struct vnic_stats **stats)
{
	u64 a0, a1;
	int wait = 1000;

	if (!vdev->stats) {
		vdev->stats = pci_alloc_consistent(vdev->pdev,
			sizeof(struct vnic_stats), &vdev->stats_pa);
		if (!vdev->stats)
			return -ENOMEM;
	}

	*stats = vdev->stats;
	a0 = vdev->stats_pa;
	a1 = sizeof(struct vnic_stats);

	return vnic_dev_cmd(vdev, CMD_STATS_DUMP, &a0, &a1, wait);
}

int vnic_dev_close(struct vnic_dev *vdev)
{
	u64 a0 = 0, a1 = 0;
	int wait = 1000;
	return vnic_dev_cmd(vdev, CMD_CLOSE, &a0, &a1, wait);
}

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int vnic_dev_enable_wait(struct vnic_dev *vdev)
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{
	u64 a0 = 0, a1 = 0;
	int wait = 1000;
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	if (vnic_dev_capable(vdev, CMD_ENABLE_WAIT))
		return vnic_dev_cmd(vdev, CMD_ENABLE_WAIT, &a0, &a1, wait);
	else
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		return vnic_dev_cmd(vdev, CMD_ENABLE, &a0, &a1, wait);
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}

int vnic_dev_disable(struct vnic_dev *vdev)
{
	u64 a0 = 0, a1 = 0;
	int wait = 1000;
	return vnic_dev_cmd(vdev, CMD_DISABLE, &a0, &a1, wait);
}

int vnic_dev_open(struct vnic_dev *vdev, int arg)
{
	u64 a0 = (u32)arg, a1 = 0;
	int wait = 1000;
	return vnic_dev_cmd(vdev, CMD_OPEN, &a0, &a1, wait);
}

int vnic_dev_open_done(struct vnic_dev *vdev, int *done)
{
	u64 a0 = 0, a1 = 0;
	int wait = 1000;
	int err;

	*done = 0;

	err = vnic_dev_cmd(vdev, CMD_OPEN_STATUS, &a0, &a1, wait);
	if (err)
		return err;

	*done = (a0 == 0);

	return 0;
}

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static int vnic_dev_soft_reset(struct vnic_dev *vdev, int arg)
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{
	u64 a0 = (u32)arg, a1 = 0;
	int wait = 1000;
	return vnic_dev_cmd(vdev, CMD_SOFT_RESET, &a0, &a1, wait);
}

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static int vnic_dev_soft_reset_done(struct vnic_dev *vdev, int *done)
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{
	u64 a0 = 0, a1 = 0;
	int wait = 1000;
	int err;

	*done = 0;

	err = vnic_dev_cmd(vdev, CMD_SOFT_RESET_STATUS, &a0, &a1, wait);
	if (err)
		return err;

	*done = (a0 == 0);

	return 0;
}

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int vnic_dev_hang_reset(struct vnic_dev *vdev, int arg)
{
	u64 a0 = (u32)arg, a1 = 0;
	int wait = 1000;
	int err;

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	if (vnic_dev_capable(vdev, CMD_HANG_RESET)) {
		return vnic_dev_cmd(vdev, CMD_HANG_RESET,
				&a0, &a1, wait);
	} else {
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		err = vnic_dev_soft_reset(vdev, arg);
		if (err)
			return err;
		return vnic_dev_init(vdev, 0);
	}
}

int vnic_dev_hang_reset_done(struct vnic_dev *vdev, int *done)
{
	u64 a0 = 0, a1 = 0;
	int wait = 1000;
	int err;

	*done = 0;

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	if (vnic_dev_capable(vdev, CMD_HANG_RESET_STATUS)) {
		err = vnic_dev_cmd(vdev, CMD_HANG_RESET_STATUS,
				&a0, &a1, wait);
		if (err)
			return err;
	} else {
		return vnic_dev_soft_reset_done(vdev, done);
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	}

	*done = (a0 == 0);

	return 0;
}

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int vnic_dev_hang_notify(struct vnic_dev *vdev)
{
	u64 a0, a1;
	int wait = 1000;
	return vnic_dev_cmd(vdev, CMD_HANG_NOTIFY, &a0, &a1, wait);
}

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int vnic_dev_get_mac_addr(struct vnic_dev *vdev, u8 *mac_addr)
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{
	u64 a0, a1;
	int wait = 1000;
	int err, i;

	for (i = 0; i < ETH_ALEN; i++)
		mac_addr[i] = 0;

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	err = vnic_dev_cmd(vdev, CMD_GET_MAC_ADDR, &a0, &a1, wait);
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	if (err)
		return err;

	for (i = 0; i < ETH_ALEN; i++)
		mac_addr[i] = ((u8 *)&a0)[i];

	return 0;
}

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int vnic_dev_packet_filter(struct vnic_dev *vdev, int directed, int multicast,
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	int broadcast, int promisc, int allmulti)
{
	u64 a0, a1 = 0;
	int wait = 1000;
	int err;

	a0 = (directed ? CMD_PFILTER_DIRECTED : 0) |
	     (multicast ? CMD_PFILTER_MULTICAST : 0) |
	     (broadcast ? CMD_PFILTER_BROADCAST : 0) |
	     (promisc ? CMD_PFILTER_PROMISCUOUS : 0) |
	     (allmulti ? CMD_PFILTER_ALL_MULTICAST : 0);

	err = vnic_dev_cmd(vdev, CMD_PACKET_FILTER, &a0, &a1, wait);
	if (err)
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		pr_err("Can't set packet filter\n");
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	return err;
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}

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int vnic_dev_add_addr(struct vnic_dev *vdev, u8 *addr)
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{
	u64 a0 = 0, a1 = 0;
	int wait = 1000;
	int err;
	int i;

	for (i = 0; i < ETH_ALEN; i++)
		((u8 *)&a0)[i] = addr[i];

	err = vnic_dev_cmd(vdev, CMD_ADDR_ADD, &a0, &a1, wait);
	if (err)
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		pr_err("Can't add addr [%pM], %d\n", addr, err);
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	return err;
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}

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int vnic_dev_del_addr(struct vnic_dev *vdev, u8 *addr)
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{
	u64 a0 = 0, a1 = 0;
	int wait = 1000;
	int err;
	int i;

	for (i = 0; i < ETH_ALEN; i++)
		((u8 *)&a0)[i] = addr[i];

	err = vnic_dev_cmd(vdev, CMD_ADDR_DEL, &a0, &a1, wait);
	if (err)
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		pr_err("Can't del addr [%pM], %d\n", addr, err);
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	return err;
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}

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int vnic_dev_set_ig_vlan_rewrite_mode(struct vnic_dev *vdev,
	u8 ig_vlan_rewrite_mode)
{
	u64 a0 = ig_vlan_rewrite_mode, a1 = 0;
	int wait = 1000;

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	if (vnic_dev_capable(vdev, CMD_IG_VLAN_REWRITE_MODE))
		return vnic_dev_cmd(vdev, CMD_IG_VLAN_REWRITE_MODE,
				&a0, &a1, wait);
	else
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		return 0;
}

702
static int vnic_dev_notify_setcmd(struct vnic_dev *vdev,
703
	void *notify_addr, dma_addr_t notify_pa, u16 intr)
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{
	u64 a0, a1;
	int wait = 1000;
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	int r;
708

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	memset(notify_addr, 0, sizeof(struct vnic_devcmd_notify));
	vdev->notify = notify_addr;
	vdev->notify_pa = notify_pa;
712

713
	a0 = (u64)notify_pa;
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	a1 = ((u64)intr << 32) & 0x0000ffff00000000ULL;
	a1 += sizeof(struct vnic_devcmd_notify);

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	r = vnic_dev_cmd(vdev, CMD_NOTIFY, &a0, &a1, wait);
	vdev->notify_sz = (r == 0) ? (u32)a1 : 0;
	return r;
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}

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int vnic_dev_notify_set(struct vnic_dev *vdev, u16 intr)
{
	void *notify_addr;
	dma_addr_t notify_pa;

	if (vdev->notify || vdev->notify_pa) {
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		pr_err("notify block %p still allocated", vdev->notify);
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		return -EINVAL;
	}

	notify_addr = pci_alloc_consistent(vdev->pdev,
			sizeof(struct vnic_devcmd_notify),
			&notify_pa);
	if (!notify_addr)
		return -ENOMEM;

	return vnic_dev_notify_setcmd(vdev, notify_addr, notify_pa, intr);
}

741
static int vnic_dev_notify_unsetcmd(struct vnic_dev *vdev)
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{
	u64 a0, a1;
	int wait = 1000;
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	int err;
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	a0 = 0;  /* paddr = 0 to unset notify buffer */
	a1 = 0x0000ffff00000000ULL; /* intr num = -1 to unreg for intr */
	a1 += sizeof(struct vnic_devcmd_notify);

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	err = vnic_dev_cmd(vdev, CMD_NOTIFY, &a0, &a1, wait);
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	vdev->notify = NULL;
	vdev->notify_pa = 0;
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	vdev->notify_sz = 0;
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	return err;
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}

759
int vnic_dev_notify_unset(struct vnic_dev *vdev)
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{
	if (vdev->notify) {
		pci_free_consistent(vdev->pdev,
			sizeof(struct vnic_devcmd_notify),
			vdev->notify,
			vdev->notify_pa);
	}

768
	return vnic_dev_notify_unsetcmd(vdev);
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}

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static int vnic_dev_notify_ready(struct vnic_dev *vdev)
{
	u32 *words;
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	unsigned int nwords = vdev->notify_sz / 4;
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	unsigned int i;
	u32 csum;

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	if (!vdev->notify || !vdev->notify_sz)
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		return 0;

	do {
		csum = 0;
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		memcpy(&vdev->notify_copy, vdev->notify, vdev->notify_sz);
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		words = (u32 *)&vdev->notify_copy;
		for (i = 1; i < nwords; i++)
			csum += words[i];
	} while (csum != words[0]);

	return 1;
}

int vnic_dev_init(struct vnic_dev *vdev, int arg)
{
	u64 a0 = (u32)arg, a1 = 0;
	int wait = 1000;
796
	int r = 0;
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	if (vnic_dev_capable(vdev, CMD_INIT))
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		r = vnic_dev_cmd(vdev, CMD_INIT, &a0, &a1, wait);
	else {
		vnic_dev_cmd(vdev, CMD_INIT_v1, &a0, &a1, wait);
		if (a0 & CMD_INITF_DEFAULT_MAC) {
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			/* Emulate these for old CMD_INIT_v1 which
			 * didn't pass a0 so no CMD_INITF_*.
			 */
806
			vnic_dev_cmd(vdev, CMD_GET_MAC_ADDR, &a0, &a1, wait);
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			vnic_dev_cmd(vdev, CMD_ADDR_ADD, &a0, &a1, wait);
		}
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	}
	return r;
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}

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int vnic_dev_deinit(struct vnic_dev *vdev)
{
	u64 a0 = 0, a1 = 0;
	int wait = 1000;

	return vnic_dev_cmd(vdev, CMD_DEINIT, &a0, &a1, wait);
}

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void vnic_dev_intr_coal_timer_info_default(struct vnic_dev *vdev)
{
	/* Default: hardware intr coal timer is in units of 1.5 usecs */
	vdev->intr_coal_timer_info.mul = 2;
	vdev->intr_coal_timer_info.div = 3;
	vdev->intr_coal_timer_info.max_usec =
		vnic_dev_intr_coal_timer_hw_to_usec(vdev, 0xffff);
}

int vnic_dev_intr_coal_timer_info(struct vnic_dev *vdev)
{
	int wait = 1000;
	int err;

	memset(vdev->args, 0, sizeof(vdev->args));

837 838 839 840
	if (vnic_dev_capable(vdev, CMD_INTR_COAL_CONVERT))
		err = _vnic_dev_cmd(vdev, CMD_INTR_COAL_CONVERT, wait);
	else
		err = ERR_ECMDUNKNOWN;
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	/* Use defaults when firmware doesn't support the devcmd at all or
	 * supports it for only specific hardware
	 */
	if ((err == ERR_ECMDUNKNOWN) ||
		(!err && !(vdev->args[0] && vdev->args[1] && vdev->args[2]))) {
		pr_warning("Using default conversion factor for "
			"interrupt coalesce timer\n");
		vnic_dev_intr_coal_timer_info_default(vdev);
		return 0;
	}

853 854 855 856 857
	if (!err) {
		vdev->intr_coal_timer_info.mul = (u32) vdev->args[0];
		vdev->intr_coal_timer_info.div = (u32) vdev->args[1];
		vdev->intr_coal_timer_info.max_usec = (u32) vdev->args[2];
	}
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	return err;
}

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int vnic_dev_link_status(struct vnic_dev *vdev)
{
	if (!vnic_dev_notify_ready(vdev))
		return 0;

	return vdev->notify_copy.link_state;
}

u32 vnic_dev_port_speed(struct vnic_dev *vdev)
{
	if (!vnic_dev_notify_ready(vdev))
		return 0;

	return vdev->notify_copy.port_speed;
}

u32 vnic_dev_msg_lvl(struct vnic_dev *vdev)
{
	if (!vnic_dev_notify_ready(vdev))
		return 0;

	return vdev->notify_copy.msglvl;
}

u32 vnic_dev_mtu(struct vnic_dev *vdev)
{
	if (!vnic_dev_notify_ready(vdev))
		return 0;

	return vdev->notify_copy.mtu;
}

void vnic_dev_set_intr_mode(struct vnic_dev *vdev,
	enum vnic_dev_intr_mode intr_mode)
{
	vdev->intr_mode = intr_mode;
}

enum vnic_dev_intr_mode vnic_dev_get_intr_mode(
	struct vnic_dev *vdev)
{
	return vdev->intr_mode;
}

906 907 908 909 910 911 912 913 914 915 916 917 918 919 920 921 922
u32 vnic_dev_intr_coal_timer_usec_to_hw(struct vnic_dev *vdev, u32 usec)
{
	return (usec * vdev->intr_coal_timer_info.mul) /
		vdev->intr_coal_timer_info.div;
}

u32 vnic_dev_intr_coal_timer_hw_to_usec(struct vnic_dev *vdev, u32 hw_cycles)
{
	return (hw_cycles * vdev->intr_coal_timer_info.div) /
		vdev->intr_coal_timer_info.mul;
}

u32 vnic_dev_get_intr_coal_timer_max(struct vnic_dev *vdev)
{
	return vdev->intr_coal_timer_info.max_usec;
}

923 924 925 926 927 928 929 930 931 932
void vnic_dev_unregister(struct vnic_dev *vdev)
{
	if (vdev) {
		if (vdev->notify)
			pci_free_consistent(vdev->pdev,
				sizeof(struct vnic_devcmd_notify),
				vdev->notify,
				vdev->notify_pa);
		if (vdev->stats)
			pci_free_consistent(vdev->pdev,
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				sizeof(struct vnic_stats),
934 935 936 937 938 939 940 941 942 943
				vdev->stats, vdev->stats_pa);
		if (vdev->fw_info)
			pci_free_consistent(vdev->pdev,
				sizeof(struct vnic_devcmd_fw_info),
				vdev->fw_info, vdev->fw_info_pa);
		kfree(vdev);
	}
}

struct vnic_dev *vnic_dev_register(struct vnic_dev *vdev,
944 945
	void *priv, struct pci_dev *pdev, struct vnic_dev_bar *bar,
	unsigned int num_bars)
946 947 948 949 950 951 952 953 954 955
{
	if (!vdev) {
		vdev = kzalloc(sizeof(struct vnic_dev), GFP_ATOMIC);
		if (!vdev)
			return NULL;
	}

	vdev->priv = priv;
	vdev->pdev = pdev;

956
	if (vnic_dev_discover_res(vdev, bar, num_bars))
957 958 959 960 961 962 963 964 965 966 967 968 969
		goto err_out;

	vdev->devcmd = vnic_dev_get_res(vdev, RES_TYPE_DEVCMD, 0);
	if (!vdev->devcmd)
		goto err_out;

	return vdev;

err_out:
	vnic_dev_unregister(vdev);
	return NULL;
}

970 971 972 973 974 975 976 977 978 979 980
int vnic_dev_init_prov2(struct vnic_dev *vdev, u8 *buf, u32 len)
{
	u64 a0, a1 = len;
	int wait = 1000;
	dma_addr_t prov_pa;
	void *prov_buf;
	int ret;

	prov_buf = pci_alloc_consistent(vdev->pdev, len, &prov_pa);
	if (!prov_buf)
		return -ENOMEM;
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982 983 984 985 986 987 988 989 990 991 992 993 994 995 996 997 998 999 1000 1001 1002 1003 1004 1005 1006 1007 1008 1009 1010 1011 1012 1013 1014 1015 1016 1017 1018 1019 1020 1021 1022 1023 1024 1025
	memcpy(prov_buf, buf, len);

	a0 = prov_pa;

	ret = vnic_dev_cmd(vdev, CMD_INIT_PROV_INFO2, &a0, &a1, wait);

	pci_free_consistent(vdev->pdev, len, prov_buf, prov_pa);

	return ret;
}

int vnic_dev_enable2(struct vnic_dev *vdev, int active)
{
	u64 a0, a1 = 0;
	int wait = 1000;

	a0 = (active ? CMD_ENABLE2_ACTIVE : 0);

	return vnic_dev_cmd(vdev, CMD_ENABLE2, &a0, &a1, wait);
}

static int vnic_dev_cmd_status(struct vnic_dev *vdev, enum vnic_devcmd_cmd cmd,
	int *status)
{
	u64 a0 = cmd, a1 = 0;
	int wait = 1000;
	int ret;

	ret = vnic_dev_cmd(vdev, CMD_STATUS, &a0, &a1, wait);
	if (!ret)
		*status = (int)a0;

	return ret;
}

int vnic_dev_enable2_done(struct vnic_dev *vdev, int *status)
{
	return vnic_dev_cmd_status(vdev, CMD_ENABLE2, status);
}

int vnic_dev_deinit_done(struct vnic_dev *vdev, int *status)
{
	return vnic_dev_cmd_status(vdev, CMD_DEINIT, status);
}
1026 1027 1028 1029 1030 1031 1032 1033 1034 1035 1036 1037

int vnic_dev_set_mac_addr(struct vnic_dev *vdev, u8 *mac_addr)
{
	u64 a0, a1;
	int wait = 1000;
	int i;

	for (i = 0; i < ETH_ALEN; i++)
		((u8 *)&a0)[i] = mac_addr[i];

	return vnic_dev_cmd(vdev, CMD_SET_MAC_ADDR, &a0, &a1, wait);
}