ac1a511eff
Use the iteration hooks in the abstraction layers to perform the requested filtering on the internal device lists. Signed-off-by: Gaetan Rivet <gaetan.rivet@6wind.com>
569 lines
12 KiB
C
569 lines
12 KiB
C
/* SPDX-License-Identifier: BSD-3-Clause
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* Copyright(c) 2010-2014 Intel Corporation.
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* Copyright(c) 2014 6WIND S.A.
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*/
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#include <stdio.h>
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#include <string.h>
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#include <inttypes.h>
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#include <sys/queue.h>
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#include <rte_compat.h>
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#include <rte_bus.h>
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#include <rte_class.h>
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#include <rte_dev.h>
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#include <rte_devargs.h>
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#include <rte_debug.h>
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#include <rte_errno.h>
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#include <rte_kvargs.h>
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#include <rte_log.h>
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#include <rte_spinlock.h>
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#include <rte_malloc.h>
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#include "eal_private.h"
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/**
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* The device event callback description.
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*
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* It contains callback address to be registered by user application,
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* the pointer to the parameters for callback, and the device name.
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*/
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struct dev_event_callback {
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TAILQ_ENTRY(dev_event_callback) next; /**< Callbacks list */
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rte_dev_event_cb_fn cb_fn; /**< Callback address */
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void *cb_arg; /**< Callback parameter */
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char *dev_name; /**< Callback device name, NULL is for all device */
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uint32_t active; /**< Callback is executing */
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};
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/** @internal Structure to keep track of registered callbacks */
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TAILQ_HEAD(dev_event_cb_list, dev_event_callback);
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/* The device event callback list for all registered callbacks. */
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static struct dev_event_cb_list dev_event_cbs;
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/* spinlock for device callbacks */
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static rte_spinlock_t dev_event_lock = RTE_SPINLOCK_INITIALIZER;
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struct dev_next_ctx {
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struct rte_dev_iterator *it;
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const char *bus_str;
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const char *cls_str;
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};
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#define CTX(it, bus_str, cls_str) \
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(&(const struct dev_next_ctx){ \
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.it = it, \
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.bus_str = bus_str, \
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.cls_str = cls_str, \
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})
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#define ITCTX(ptr) \
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(((struct dev_next_ctx *)(intptr_t)ptr)->it)
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#define BUSCTX(ptr) \
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(((struct dev_next_ctx *)(intptr_t)ptr)->bus_str)
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#define CLSCTX(ptr) \
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(((struct dev_next_ctx *)(intptr_t)ptr)->cls_str)
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static int cmp_detached_dev_name(const struct rte_device *dev,
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const void *_name)
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{
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const char *name = _name;
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/* skip attached devices */
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if (dev->driver != NULL)
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return 1;
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return strcmp(dev->name, name);
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}
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static int cmp_dev_name(const struct rte_device *dev, const void *_name)
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{
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const char *name = _name;
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return strcmp(dev->name, name);
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}
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int rte_eal_dev_attach(const char *name, const char *devargs)
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{
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struct rte_bus *bus;
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if (name == NULL || devargs == NULL) {
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RTE_LOG(ERR, EAL, "Invalid device or arguments provided\n");
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return -EINVAL;
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}
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bus = rte_bus_find_by_device_name(name);
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if (bus == NULL) {
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RTE_LOG(ERR, EAL, "Unable to find a bus for the device '%s'\n",
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name);
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return -EINVAL;
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}
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if (strcmp(bus->name, "pci") == 0 || strcmp(bus->name, "vdev") == 0)
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return rte_eal_hotplug_add(bus->name, name, devargs);
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RTE_LOG(ERR, EAL,
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"Device attach is only supported for PCI and vdev devices.\n");
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return -ENOTSUP;
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}
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int rte_eal_dev_detach(struct rte_device *dev)
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{
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struct rte_bus *bus;
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int ret;
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if (dev == NULL) {
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RTE_LOG(ERR, EAL, "Invalid device provided.\n");
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return -EINVAL;
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}
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bus = rte_bus_find_by_device(dev);
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if (bus == NULL) {
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RTE_LOG(ERR, EAL, "Cannot find bus for device (%s)\n",
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dev->name);
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return -EINVAL;
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}
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if (bus->unplug == NULL) {
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RTE_LOG(ERR, EAL, "Bus function not supported\n");
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return -ENOTSUP;
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}
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ret = bus->unplug(dev);
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if (ret)
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RTE_LOG(ERR, EAL, "Driver cannot detach the device (%s)\n",
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dev->name);
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return ret;
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}
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int __rte_experimental rte_eal_hotplug_add(const char *busname, const char *devname,
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const char *devargs)
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{
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struct rte_bus *bus;
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struct rte_device *dev;
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struct rte_devargs *da;
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int ret;
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bus = rte_bus_find_by_name(busname);
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if (bus == NULL) {
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RTE_LOG(ERR, EAL, "Cannot find bus (%s)\n", busname);
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return -ENOENT;
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}
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if (bus->plug == NULL) {
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RTE_LOG(ERR, EAL, "Function plug not supported by bus (%s)\n",
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bus->name);
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return -ENOTSUP;
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}
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da = calloc(1, sizeof(*da));
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if (da == NULL)
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return -ENOMEM;
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ret = rte_devargs_parsef(da, "%s:%s,%s",
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busname, devname, devargs);
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if (ret)
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goto err_devarg;
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ret = rte_devargs_insert(da);
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if (ret)
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goto err_devarg;
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ret = bus->scan();
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if (ret)
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goto err_devarg;
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dev = bus->find_device(NULL, cmp_detached_dev_name, devname);
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if (dev == NULL) {
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RTE_LOG(ERR, EAL, "Cannot find unplugged device (%s)\n",
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devname);
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ret = -ENODEV;
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goto err_devarg;
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}
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ret = bus->plug(dev);
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if (ret) {
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RTE_LOG(ERR, EAL, "Driver cannot attach the device (%s)\n",
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dev->name);
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goto err_devarg;
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}
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return 0;
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err_devarg:
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if (rte_devargs_remove(busname, devname)) {
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free(da->args);
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free(da);
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}
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return ret;
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}
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int __rte_experimental
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rte_eal_hotplug_remove(const char *busname, const char *devname)
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{
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struct rte_bus *bus;
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struct rte_device *dev;
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int ret;
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bus = rte_bus_find_by_name(busname);
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if (bus == NULL) {
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RTE_LOG(ERR, EAL, "Cannot find bus (%s)\n", busname);
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return -ENOENT;
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}
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if (bus->unplug == NULL) {
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RTE_LOG(ERR, EAL, "Function unplug not supported by bus (%s)\n",
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bus->name);
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return -ENOTSUP;
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}
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dev = bus->find_device(NULL, cmp_dev_name, devname);
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if (dev == NULL) {
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RTE_LOG(ERR, EAL, "Cannot find plugged device (%s)\n", devname);
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return -EINVAL;
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}
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ret = bus->unplug(dev);
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if (ret)
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RTE_LOG(ERR, EAL, "Driver cannot detach the device (%s)\n",
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dev->name);
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rte_devargs_remove(busname, devname);
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return ret;
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}
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int __rte_experimental
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rte_dev_event_callback_register(const char *device_name,
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rte_dev_event_cb_fn cb_fn,
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void *cb_arg)
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{
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struct dev_event_callback *event_cb;
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int ret;
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if (!cb_fn)
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return -EINVAL;
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rte_spinlock_lock(&dev_event_lock);
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if (TAILQ_EMPTY(&dev_event_cbs))
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TAILQ_INIT(&dev_event_cbs);
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TAILQ_FOREACH(event_cb, &dev_event_cbs, next) {
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if (event_cb->cb_fn == cb_fn && event_cb->cb_arg == cb_arg) {
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if (device_name == NULL && event_cb->dev_name == NULL)
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break;
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if (device_name == NULL || event_cb->dev_name == NULL)
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continue;
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if (!strcmp(event_cb->dev_name, device_name))
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break;
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}
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}
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/* create a new callback. */
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if (event_cb == NULL) {
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event_cb = malloc(sizeof(struct dev_event_callback));
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if (event_cb != NULL) {
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event_cb->cb_fn = cb_fn;
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event_cb->cb_arg = cb_arg;
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event_cb->active = 0;
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if (!device_name) {
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event_cb->dev_name = NULL;
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} else {
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event_cb->dev_name = strdup(device_name);
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if (event_cb->dev_name == NULL) {
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ret = -ENOMEM;
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goto error;
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}
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}
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TAILQ_INSERT_TAIL(&dev_event_cbs, event_cb, next);
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} else {
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RTE_LOG(ERR, EAL,
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"Failed to allocate memory for device "
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"event callback.");
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ret = -ENOMEM;
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goto error;
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}
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} else {
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RTE_LOG(ERR, EAL,
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"The callback is already exist, no need "
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"to register again.\n");
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ret = -EEXIST;
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}
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rte_spinlock_unlock(&dev_event_lock);
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return 0;
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error:
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free(event_cb);
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rte_spinlock_unlock(&dev_event_lock);
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return ret;
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}
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int __rte_experimental
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rte_dev_event_callback_unregister(const char *device_name,
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rte_dev_event_cb_fn cb_fn,
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void *cb_arg)
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{
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int ret = 0;
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struct dev_event_callback *event_cb, *next;
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if (!cb_fn)
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return -EINVAL;
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rte_spinlock_lock(&dev_event_lock);
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/*walk through the callbacks and remove all that match. */
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for (event_cb = TAILQ_FIRST(&dev_event_cbs); event_cb != NULL;
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event_cb = next) {
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next = TAILQ_NEXT(event_cb, next);
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if (device_name != NULL && event_cb->dev_name != NULL) {
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if (!strcmp(event_cb->dev_name, device_name)) {
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if (event_cb->cb_fn != cb_fn ||
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(cb_arg != (void *)-1 &&
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event_cb->cb_arg != cb_arg))
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continue;
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}
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} else if (device_name != NULL) {
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continue;
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}
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/*
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* if this callback is not executing right now,
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* then remove it.
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*/
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if (event_cb->active == 0) {
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TAILQ_REMOVE(&dev_event_cbs, event_cb, next);
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free(event_cb);
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ret++;
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} else {
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continue;
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}
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}
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rte_spinlock_unlock(&dev_event_lock);
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return ret;
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}
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void
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dev_callback_process(char *device_name, enum rte_dev_event_type event)
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{
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struct dev_event_callback *cb_lst;
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if (device_name == NULL)
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return;
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rte_spinlock_lock(&dev_event_lock);
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TAILQ_FOREACH(cb_lst, &dev_event_cbs, next) {
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if (cb_lst->dev_name) {
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if (strcmp(cb_lst->dev_name, device_name))
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continue;
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}
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cb_lst->active = 1;
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rte_spinlock_unlock(&dev_event_lock);
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cb_lst->cb_fn(device_name, event,
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cb_lst->cb_arg);
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rte_spinlock_lock(&dev_event_lock);
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cb_lst->active = 0;
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}
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rte_spinlock_unlock(&dev_event_lock);
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}
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__rte_experimental
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int
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rte_dev_iterator_init(struct rte_dev_iterator *it,
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const char *dev_str)
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{
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struct rte_devargs devargs;
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struct rte_class *cls = NULL;
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struct rte_bus *bus = NULL;
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/* Having both bus_str and cls_str NULL is illegal,
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* marking this iterator as invalid unless
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* everything goes well.
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*/
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it->bus_str = NULL;
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it->cls_str = NULL;
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devargs.data = dev_str;
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if (rte_devargs_layers_parse(&devargs, dev_str))
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goto get_out;
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bus = devargs.bus;
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cls = devargs.cls;
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/* The string should have at least
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* one layer specified.
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*/
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if (bus == NULL && cls == NULL) {
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RTE_LOG(ERR, EAL,
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"Either bus or class must be specified.\n");
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rte_errno = EINVAL;
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goto get_out;
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}
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if (bus != NULL && bus->dev_iterate == NULL) {
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RTE_LOG(ERR, EAL, "Bus %s not supported\n", bus->name);
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rte_errno = ENOTSUP;
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goto get_out;
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}
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if (cls != NULL && cls->dev_iterate == NULL) {
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RTE_LOG(ERR, EAL, "Class %s not supported\n", cls->name);
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rte_errno = ENOTSUP;
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goto get_out;
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}
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it->bus_str = devargs.bus_str;
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it->cls_str = devargs.cls_str;
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it->dev_str = dev_str;
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it->bus = bus;
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it->cls = cls;
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it->device = NULL;
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it->class_device = NULL;
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get_out:
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return -rte_errno;
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}
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static char *
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dev_str_sane_copy(const char *str)
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{
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size_t end;
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char *copy;
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end = strcspn(str, ",/");
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if (str[end] == ',') {
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copy = strdup(&str[end + 1]);
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} else {
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/* '/' or '\0' */
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copy = strdup("");
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}
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if (copy == NULL) {
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rte_errno = ENOMEM;
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} else {
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char *slash;
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slash = strchr(copy, '/');
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if (slash != NULL)
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slash[0] = '\0';
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}
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return copy;
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}
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static int
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class_next_dev_cmp(const struct rte_class *cls,
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const void *ctx)
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{
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struct rte_dev_iterator *it;
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const char *cls_str = NULL;
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void *dev;
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if (cls->dev_iterate == NULL)
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return 1;
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it = ITCTX(ctx);
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cls_str = CLSCTX(ctx);
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dev = it->class_device;
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/* it->cls_str != NULL means a class
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* was specified in the devstr.
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*/
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if (it->cls_str != NULL && cls != it->cls)
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return 1;
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/* If an error occurred previously,
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* no need to test further.
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*/
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if (rte_errno != 0)
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return -1;
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dev = cls->dev_iterate(dev, cls_str, it);
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it->class_device = dev;
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return dev == NULL;
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}
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static int
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bus_next_dev_cmp(const struct rte_bus *bus,
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const void *ctx)
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{
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struct rte_device *dev = NULL;
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struct rte_class *cls = NULL;
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struct rte_dev_iterator *it;
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const char *bus_str = NULL;
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if (bus->dev_iterate == NULL)
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return 1;
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it = ITCTX(ctx);
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bus_str = BUSCTX(ctx);
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dev = it->device;
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/* it->bus_str != NULL means a bus
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* was specified in the devstr.
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*/
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if (it->bus_str != NULL && bus != it->bus)
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return 1;
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/* If an error occurred previously,
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* no need to test further.
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*/
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if (rte_errno != 0)
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return -1;
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if (it->cls_str == NULL) {
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dev = bus->dev_iterate(dev, bus_str, it);
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goto end;
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}
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/* cls_str != NULL */
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if (dev == NULL) {
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next_dev_on_bus:
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dev = bus->dev_iterate(dev, bus_str, it);
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it->device = dev;
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}
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if (dev == NULL)
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return 1;
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if (it->cls != NULL)
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cls = TAILQ_PREV(it->cls, rte_class_list, next);
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cls = rte_class_find(cls, class_next_dev_cmp, ctx);
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if (cls != NULL) {
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it->cls = cls;
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goto end;
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}
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goto next_dev_on_bus;
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end:
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it->device = dev;
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return dev == NULL;
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}
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__rte_experimental
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struct rte_device *
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rte_dev_iterator_next(struct rte_dev_iterator *it)
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{
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struct rte_bus *bus = NULL;
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int old_errno = rte_errno;
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char *bus_str = NULL;
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char *cls_str = NULL;
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rte_errno = 0;
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if (it->bus_str == NULL && it->cls_str == NULL) {
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/* Invalid iterator. */
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rte_errno = EINVAL;
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return NULL;
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}
|
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if (it->bus != NULL)
|
|
bus = TAILQ_PREV(it->bus, rte_bus_list, next);
|
|
if (it->bus_str != NULL) {
|
|
bus_str = dev_str_sane_copy(it->bus_str);
|
|
if (bus_str == NULL)
|
|
goto out;
|
|
}
|
|
if (it->cls_str != NULL) {
|
|
cls_str = dev_str_sane_copy(it->cls_str);
|
|
if (cls_str == NULL)
|
|
goto out;
|
|
}
|
|
while ((bus = rte_bus_find(bus, bus_next_dev_cmp,
|
|
CTX(it, bus_str, cls_str)))) {
|
|
if (it->device != NULL) {
|
|
it->bus = bus;
|
|
goto out;
|
|
}
|
|
if (it->bus_str != NULL ||
|
|
rte_errno != 0)
|
|
break;
|
|
}
|
|
if (rte_errno == 0)
|
|
rte_errno = old_errno;
|
|
out:
|
|
free(bus_str);
|
|
free(cls_str);
|
|
return it->device;
|
|
}
|