This patch is to add the support of periodically running poller. A setting is added for the increased time so that the poller on that thread can be running or not depending on the required setting. UT code also added for this new functionality. Change-Id: I0d012ddb18c9b0f6ae8aa877a30d214d6ba34946 Signed-off-by: GangCao <gang.cao@intel.com> Reviewed-on: https://review.gerrithub.io/398359 Tested-by: SPDK Automated Test System <sys_sgsw@intel.com> Reviewed-by: Jim Harris <james.r.harris@intel.com> Reviewed-by: Shuhei Matsumoto <shuhei.matsumoto.xt@hitachi.com> Reviewed-by: Daniel Verkamp <daniel.verkamp@intel.com>
793 lines
21 KiB
C
793 lines
21 KiB
C
/*-
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* BSD LICENSE
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*
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* Copyright (c) Intel Corporation.
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* All rights reserved.
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*
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* Redistribution and use in source and binary forms, with or without
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* modification, are permitted provided that the following conditions
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* are met:
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*
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* * Redistributions of source code must retain the above copyright
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* notice, this list of conditions and the following disclaimer.
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* * Redistributions in binary form must reproduce the above copyright
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* notice, this list of conditions and the following disclaimer in
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* the documentation and/or other materials provided with the
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* distribution.
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* * Neither the name of Intel Corporation nor the names of its
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* contributors may be used to endorse or promote products derived
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* from this software without specific prior written permission.
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*
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* THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
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* "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
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* LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR
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* A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT
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* OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
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* SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT
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* LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
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* DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
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* THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
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* (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE
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* OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
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*/
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#include "spdk_cunit.h"
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#include "lib/test_env.c"
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#include "lib/ut_multithread.c"
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/* HACK: disable VTune integration so the unit test doesn't need VTune headers and libs to build */
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#undef SPDK_CONFIG_VTUNE
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#include "bdev/bdev.c"
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#define BDEV_UT_NUM_THREADS 3
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DEFINE_STUB_V(spdk_scsi_nvme_translate, (const struct spdk_bdev_io *bdev_io,
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int *sc, int *sk, int *asc, int *ascq));
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struct ut_bdev {
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struct spdk_bdev bdev;
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void *io_target;
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};
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struct ut_bdev_channel {
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TAILQ_HEAD(, spdk_bdev_io) outstanding_io;
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uint32_t outstanding_cnt;
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uint32_t avail_cnt;
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};
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int g_io_device;
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struct ut_bdev g_bdev;
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struct spdk_bdev_desc *g_desc;
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bool g_teardown_done = false;
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bool g_get_io_channel = true;
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bool g_create_ch = true;
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static int
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stub_create_ch(void *io_device, void *ctx_buf)
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{
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struct ut_bdev_channel *ch = ctx_buf;
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if (g_create_ch == false) {
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return -1;
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}
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TAILQ_INIT(&ch->outstanding_io);
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ch->outstanding_cnt = 0;
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/*
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* When avail gets to 0, the submit_request function will return ENOMEM.
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* Most tests to not want ENOMEM to occur, so by default set this to a
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* big value that won't get hit. The ENOMEM tests can then override this
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* value to something much smaller to induce ENOMEM conditions.
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*/
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ch->avail_cnt = 2048;
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return 0;
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}
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static void
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stub_destroy_ch(void *io_device, void *ctx_buf)
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{
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}
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static struct spdk_io_channel *
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stub_get_io_channel(void *ctx)
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{
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struct ut_bdev *ut_bdev = ctx;
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if (g_get_io_channel == true) {
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return spdk_get_io_channel(ut_bdev->io_target);
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} else {
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return NULL;
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}
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}
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static int
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stub_destruct(void *ctx)
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{
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return 0;
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}
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static void
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stub_submit_request(struct spdk_io_channel *_ch, struct spdk_bdev_io *bdev_io)
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{
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struct ut_bdev_channel *ch = spdk_io_channel_get_ctx(_ch);
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if (bdev_io->type == SPDK_BDEV_IO_TYPE_RESET) {
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struct spdk_bdev_io *io;
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while (!TAILQ_EMPTY(&ch->outstanding_io)) {
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io = TAILQ_FIRST(&ch->outstanding_io);
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TAILQ_REMOVE(&ch->outstanding_io, io, module_link);
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ch->outstanding_cnt--;
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spdk_bdev_io_complete(io, SPDK_BDEV_IO_STATUS_FAILED);
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ch->avail_cnt++;
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}
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}
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if (ch->avail_cnt > 0) {
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TAILQ_INSERT_TAIL(&ch->outstanding_io, bdev_io, module_link);
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ch->outstanding_cnt++;
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ch->avail_cnt--;
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} else {
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spdk_bdev_io_complete(bdev_io, SPDK_BDEV_IO_STATUS_NOMEM);
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}
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}
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static uint32_t
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stub_complete_io(void *io_target, uint32_t num_to_complete)
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{
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struct spdk_io_channel *_ch = spdk_get_io_channel(io_target);
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struct ut_bdev_channel *ch = spdk_io_channel_get_ctx(_ch);
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struct spdk_bdev_io *io;
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bool complete_all = (num_to_complete == 0);
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uint32_t num_completed = 0;
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while (complete_all || num_completed < num_to_complete) {
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if (TAILQ_EMPTY(&ch->outstanding_io)) {
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break;
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}
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io = TAILQ_FIRST(&ch->outstanding_io);
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TAILQ_REMOVE(&ch->outstanding_io, io, module_link);
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ch->outstanding_cnt--;
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spdk_bdev_io_complete(io, SPDK_BDEV_IO_STATUS_SUCCESS);
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ch->avail_cnt++;
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num_completed++;
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}
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spdk_put_io_channel(_ch);
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return num_completed;
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}
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static struct spdk_bdev_fn_table fn_table = {
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.get_io_channel = stub_get_io_channel,
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.destruct = stub_destruct,
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.submit_request = stub_submit_request,
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};
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static int
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module_init(void)
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{
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return 0;
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}
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static void
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module_fini(void)
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{
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}
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SPDK_BDEV_MODULE_REGISTER(bdev_ut, module_init, module_fini, NULL, NULL, NULL)
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static void
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register_bdev(struct ut_bdev *ut_bdev, char *name, void *io_target)
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{
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memset(ut_bdev, 0, sizeof(*ut_bdev));
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ut_bdev->io_target = io_target;
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ut_bdev->bdev.ctxt = ut_bdev;
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ut_bdev->bdev.name = name;
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ut_bdev->bdev.fn_table = &fn_table;
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ut_bdev->bdev.module = SPDK_GET_BDEV_MODULE(bdev_ut);
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ut_bdev->bdev.blocklen = 4096;
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ut_bdev->bdev.blockcnt = 1024;
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spdk_bdev_register(&ut_bdev->bdev);
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}
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static void
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unregister_bdev(struct ut_bdev *ut_bdev)
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{
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/* Handle any deferred messages. */
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poll_threads();
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spdk_bdev_unregister(&ut_bdev->bdev, NULL, NULL);
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memset(ut_bdev, 0, sizeof(*ut_bdev));
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}
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static void
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bdev_init_cb(void *done, int rc)
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{
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CU_ASSERT(rc == 0);
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*(bool *)done = true;
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}
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static void
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setup_test(void)
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{
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bool done = false;
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allocate_threads(BDEV_UT_NUM_THREADS);
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spdk_bdev_initialize(bdev_init_cb, &done);
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spdk_io_device_register(&g_io_device, stub_create_ch, stub_destroy_ch,
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sizeof(struct ut_bdev_channel));
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register_bdev(&g_bdev, "ut_bdev", &g_io_device);
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spdk_bdev_open(&g_bdev.bdev, true, NULL, NULL, &g_desc);
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}
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static void
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finish_cb(void *cb_arg)
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{
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g_teardown_done = true;
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}
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static void
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teardown_test(void)
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{
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g_teardown_done = false;
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spdk_bdev_close(g_desc);
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g_desc = NULL;
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unregister_bdev(&g_bdev);
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spdk_io_device_unregister(&g_io_device, NULL);
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spdk_bdev_finish(finish_cb, NULL);
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poll_threads();
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CU_ASSERT(g_teardown_done == true);
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g_teardown_done = false;
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free_threads();
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}
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static void
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basic(void)
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{
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setup_test();
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set_thread(0);
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g_get_io_channel = false;
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g_ut_threads[0].ch = spdk_bdev_get_io_channel(g_desc);
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CU_ASSERT(g_ut_threads[0].ch == NULL);
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g_get_io_channel = true;
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g_create_ch = false;
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g_ut_threads[0].ch = spdk_bdev_get_io_channel(g_desc);
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CU_ASSERT(g_ut_threads[0].ch == NULL);
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g_get_io_channel = true;
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g_create_ch = true;
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g_ut_threads[0].ch = spdk_bdev_get_io_channel(g_desc);
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CU_ASSERT(g_ut_threads[0].ch != NULL);
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spdk_put_io_channel(g_ut_threads[0].ch);
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teardown_test();
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}
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static void
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poller_run_done(void *ctx)
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{
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bool *poller_run = ctx;
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*poller_run = true;
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}
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static void
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poller_run_times_done(void *ctx)
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{
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int *poller_run_times = ctx;
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(*poller_run_times)++;
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}
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static void
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basic_poller(void)
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{
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struct spdk_poller *poller = NULL;
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bool poller_run = false;
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int poller_run_times = 0;
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setup_test();
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set_thread(0);
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reset_time();
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/* Register a poller with no-wait time and test execution */
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poller = spdk_poller_register(poller_run_done, &poller_run, 0);
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CU_ASSERT(poller != NULL);
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poll_threads();
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CU_ASSERT(poller_run == true);
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spdk_poller_unregister(&poller);
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CU_ASSERT(poller == NULL);
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/* Register a poller with 1000us wait time and test single execution */
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poller_run = false;
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poller = spdk_poller_register(poller_run_done, &poller_run, 1000);
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CU_ASSERT(poller != NULL);
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poll_threads();
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CU_ASSERT(poller_run == false);
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increment_time(1000);
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poll_threads();
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CU_ASSERT(poller_run == true);
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reset_time();
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poller_run = false;
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poll_threads();
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CU_ASSERT(poller_run == false);
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increment_time(1000);
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poll_threads();
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CU_ASSERT(poller_run == true);
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spdk_poller_unregister(&poller);
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CU_ASSERT(poller == NULL);
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reset_time();
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/* Register a poller with 1000us wait time and test multiple execution */
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poller = spdk_poller_register(poller_run_times_done, &poller_run_times, 1000);
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CU_ASSERT(poller != NULL);
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poll_threads();
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CU_ASSERT(poller_run_times == 0);
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increment_time(1000);
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poll_threads();
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CU_ASSERT(poller_run_times == 1);
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poller_run_times = 0;
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increment_time(2000);
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poll_threads();
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CU_ASSERT(poller_run_times == 2);
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spdk_poller_unregister(&poller);
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CU_ASSERT(poller == NULL);
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teardown_test();
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}
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static void
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reset_done(struct spdk_bdev_io *bdev_io, bool success, void *cb_arg)
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{
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bool *done = cb_arg;
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CU_ASSERT(success == true);
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*done = true;
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spdk_bdev_free_io(bdev_io);
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}
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static void
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put_channel_during_reset(void)
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{
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struct spdk_io_channel *io_ch;
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bool done = false;
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setup_test();
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set_thread(0);
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io_ch = spdk_bdev_get_io_channel(g_desc);
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CU_ASSERT(io_ch != NULL);
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/*
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* Start a reset, but then put the I/O channel before
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* the deferred messages for the reset get a chance to
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* execute.
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*/
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spdk_bdev_reset(g_desc, io_ch, reset_done, &done);
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spdk_put_io_channel(io_ch);
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poll_threads();
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stub_complete_io(g_bdev.io_target, 0);
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teardown_test();
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}
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static void
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aborted_reset_done(struct spdk_bdev_io *bdev_io, bool success, void *cb_arg)
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{
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enum spdk_bdev_io_status *status = cb_arg;
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*status = success ? SPDK_BDEV_IO_STATUS_SUCCESS : SPDK_BDEV_IO_STATUS_FAILED;
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spdk_bdev_free_io(bdev_io);
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}
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static void
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aborted_reset(void)
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{
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struct spdk_io_channel *io_ch[2];
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enum spdk_bdev_io_status status1, status2;
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setup_test();
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set_thread(0);
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io_ch[0] = spdk_bdev_get_io_channel(g_desc);
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CU_ASSERT(io_ch[0] != NULL);
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spdk_bdev_reset(g_desc, io_ch[0], aborted_reset_done, &status1);
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poll_threads();
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CU_ASSERT(g_bdev.bdev.reset_in_progress != NULL);
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/*
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* First reset has been submitted on ch0. Now submit a second
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* reset on ch1 which will get queued since there is already a
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* reset in progress.
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*/
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set_thread(1);
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io_ch[1] = spdk_bdev_get_io_channel(g_desc);
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CU_ASSERT(io_ch[1] != NULL);
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spdk_bdev_reset(g_desc, io_ch[1], aborted_reset_done, &status2);
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poll_threads();
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CU_ASSERT(g_bdev.bdev.reset_in_progress != NULL);
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/*
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* Now destroy ch1. This will abort the queued reset. Check that
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* the second reset was completed with failed status. Also check
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* that bdev->reset_in_progress != NULL, since the original reset
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* has not been completed yet. This ensures that the bdev code is
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* correctly noticing that the failed reset is *not* the one that
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* had been submitted to the bdev module.
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*/
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set_thread(1);
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spdk_put_io_channel(io_ch[1]);
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poll_threads();
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CU_ASSERT(status2 == SPDK_BDEV_IO_STATUS_FAILED);
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CU_ASSERT(g_bdev.bdev.reset_in_progress != NULL);
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/*
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* Now complete the first reset, verify that it completed with SUCCESS
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* status and that bdev->reset_in_progress is also set back to NULL.
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*/
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set_thread(0);
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spdk_put_io_channel(io_ch[0]);
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stub_complete_io(g_bdev.io_target, 0);
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poll_threads();
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CU_ASSERT(status1 == SPDK_BDEV_IO_STATUS_SUCCESS);
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CU_ASSERT(g_bdev.bdev.reset_in_progress == NULL);
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teardown_test();
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}
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static void
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io_during_reset_done(struct spdk_bdev_io *bdev_io, bool success, void *cb_arg)
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{
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enum spdk_bdev_io_status *status = cb_arg;
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*status = success ? SPDK_BDEV_IO_STATUS_SUCCESS : SPDK_BDEV_IO_STATUS_FAILED;
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spdk_bdev_free_io(bdev_io);
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}
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static void
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io_during_reset(void)
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{
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struct spdk_io_channel *io_ch[2];
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struct spdk_bdev_channel *bdev_ch[2];
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enum spdk_bdev_io_status status0, status1, status_reset;
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int rc;
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setup_test();
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/*
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* First test normal case - submit an I/O on each of two channels (with no resets)
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* and verify they complete successfully.
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*/
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set_thread(0);
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io_ch[0] = spdk_bdev_get_io_channel(g_desc);
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bdev_ch[0] = spdk_io_channel_get_ctx(io_ch[0]);
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CU_ASSERT(bdev_ch[0]->flags == 0);
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status0 = SPDK_BDEV_IO_STATUS_PENDING;
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rc = spdk_bdev_read_blocks(g_desc, io_ch[0], NULL, 0, 1, io_during_reset_done, &status0);
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CU_ASSERT(rc == 0);
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set_thread(1);
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io_ch[1] = spdk_bdev_get_io_channel(g_desc);
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bdev_ch[1] = spdk_io_channel_get_ctx(io_ch[1]);
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CU_ASSERT(bdev_ch[1]->flags == 0);
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status1 = SPDK_BDEV_IO_STATUS_PENDING;
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rc = spdk_bdev_read_blocks(g_desc, io_ch[1], NULL, 0, 1, io_during_reset_done, &status1);
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CU_ASSERT(rc == 0);
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poll_threads();
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CU_ASSERT(status0 == SPDK_BDEV_IO_STATUS_PENDING);
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CU_ASSERT(status1 == SPDK_BDEV_IO_STATUS_PENDING);
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set_thread(0);
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|
stub_complete_io(g_bdev.io_target, 0);
|
|
CU_ASSERT(status0 == SPDK_BDEV_IO_STATUS_SUCCESS);
|
|
|
|
set_thread(1);
|
|
stub_complete_io(g_bdev.io_target, 0);
|
|
CU_ASSERT(status1 == SPDK_BDEV_IO_STATUS_SUCCESS);
|
|
|
|
/*
|
|
* Now submit a reset, and leave it pending while we submit I/O on two different
|
|
* channels. These I/O should be failed by the bdev layer since the reset is in
|
|
* progress.
|
|
*/
|
|
set_thread(0);
|
|
status_reset = SPDK_BDEV_IO_STATUS_PENDING;
|
|
rc = spdk_bdev_reset(g_desc, io_ch[0], io_during_reset_done, &status_reset);
|
|
CU_ASSERT(rc == 0);
|
|
|
|
CU_ASSERT(bdev_ch[0]->flags == 0);
|
|
CU_ASSERT(bdev_ch[1]->flags == 0);
|
|
poll_threads();
|
|
CU_ASSERT(bdev_ch[0]->flags == BDEV_CH_RESET_IN_PROGRESS);
|
|
CU_ASSERT(bdev_ch[1]->flags == BDEV_CH_RESET_IN_PROGRESS);
|
|
|
|
set_thread(0);
|
|
status0 = SPDK_BDEV_IO_STATUS_PENDING;
|
|
rc = spdk_bdev_read_blocks(g_desc, io_ch[0], NULL, 0, 1, io_during_reset_done, &status0);
|
|
CU_ASSERT(rc == 0);
|
|
|
|
set_thread(1);
|
|
status1 = SPDK_BDEV_IO_STATUS_PENDING;
|
|
rc = spdk_bdev_read_blocks(g_desc, io_ch[1], NULL, 0, 1, io_during_reset_done, &status1);
|
|
CU_ASSERT(rc == 0);
|
|
|
|
/*
|
|
* A reset is in progress so these read I/O should complete with failure. Note that we
|
|
* need to poll_threads() since I/O completed inline have their completion deferred.
|
|
*/
|
|
poll_threads();
|
|
CU_ASSERT(status_reset == SPDK_BDEV_IO_STATUS_PENDING);
|
|
CU_ASSERT(status0 == SPDK_BDEV_IO_STATUS_FAILED);
|
|
CU_ASSERT(status1 == SPDK_BDEV_IO_STATUS_FAILED);
|
|
|
|
/*
|
|
* Complete the reset
|
|
*/
|
|
set_thread(0);
|
|
stub_complete_io(g_bdev.io_target, 0);
|
|
|
|
/*
|
|
* Only poll thread 0. We should not get a completion.
|
|
*/
|
|
poll_thread(0);
|
|
CU_ASSERT(status_reset == SPDK_BDEV_IO_STATUS_PENDING);
|
|
|
|
/*
|
|
* Poll both thread 0 and 1 so the messages can propagate and we
|
|
* get a completion.
|
|
*/
|
|
poll_threads();
|
|
CU_ASSERT(status_reset == SPDK_BDEV_IO_STATUS_SUCCESS);
|
|
|
|
spdk_put_io_channel(io_ch[0]);
|
|
set_thread(1);
|
|
spdk_put_io_channel(io_ch[1]);
|
|
poll_threads();
|
|
|
|
teardown_test();
|
|
}
|
|
|
|
static void
|
|
enomem_done(struct spdk_bdev_io *bdev_io, bool success, void *cb_arg)
|
|
{
|
|
enum spdk_bdev_io_status *status = cb_arg;
|
|
|
|
*status = success ? SPDK_BDEV_IO_STATUS_SUCCESS : SPDK_BDEV_IO_STATUS_FAILED;
|
|
spdk_bdev_free_io(bdev_io);
|
|
}
|
|
|
|
static uint32_t
|
|
bdev_io_tailq_cnt(bdev_io_tailq_t *tailq)
|
|
{
|
|
struct spdk_bdev_io *io;
|
|
uint32_t cnt = 0;
|
|
|
|
TAILQ_FOREACH(io, tailq, link) {
|
|
cnt++;
|
|
}
|
|
|
|
return cnt;
|
|
}
|
|
|
|
static void
|
|
enomem(void)
|
|
{
|
|
struct spdk_io_channel *io_ch;
|
|
struct spdk_bdev_channel *bdev_ch;
|
|
struct spdk_bdev_module_channel *module_ch;
|
|
struct ut_bdev_channel *ut_ch;
|
|
const uint32_t IO_ARRAY_SIZE = 64;
|
|
const uint32_t AVAIL = 20;
|
|
enum spdk_bdev_io_status status[IO_ARRAY_SIZE], status_reset;
|
|
uint32_t nomem_cnt, i;
|
|
struct spdk_bdev_io *first_io;
|
|
int rc;
|
|
|
|
setup_test();
|
|
|
|
set_thread(0);
|
|
io_ch = spdk_bdev_get_io_channel(g_desc);
|
|
bdev_ch = spdk_io_channel_get_ctx(io_ch);
|
|
module_ch = bdev_ch->module_ch;
|
|
ut_ch = spdk_io_channel_get_ctx(bdev_ch->channel);
|
|
ut_ch->avail_cnt = AVAIL;
|
|
|
|
/* First submit a number of IOs equal to what the channel can support. */
|
|
for (i = 0; i < AVAIL; i++) {
|
|
status[i] = SPDK_BDEV_IO_STATUS_PENDING;
|
|
rc = spdk_bdev_read_blocks(g_desc, io_ch, NULL, 0, 1, enomem_done, &status[i]);
|
|
CU_ASSERT(rc == 0);
|
|
}
|
|
CU_ASSERT(TAILQ_EMPTY(&module_ch->nomem_io));
|
|
|
|
/*
|
|
* Next, submit one additional I/O. This one should fail with ENOMEM and then go onto
|
|
* the enomem_io list.
|
|
*/
|
|
status[AVAIL] = SPDK_BDEV_IO_STATUS_PENDING;
|
|
rc = spdk_bdev_read_blocks(g_desc, io_ch, NULL, 0, 1, enomem_done, &status[AVAIL]);
|
|
CU_ASSERT(rc == 0);
|
|
SPDK_CU_ASSERT_FATAL(!TAILQ_EMPTY(&module_ch->nomem_io));
|
|
first_io = TAILQ_FIRST(&module_ch->nomem_io);
|
|
|
|
/*
|
|
* Now submit a bunch more I/O. These should all fail with ENOMEM and get queued behind
|
|
* the first_io above.
|
|
*/
|
|
for (i = AVAIL + 1; i < IO_ARRAY_SIZE; i++) {
|
|
status[i] = SPDK_BDEV_IO_STATUS_PENDING;
|
|
rc = spdk_bdev_read_blocks(g_desc, io_ch, NULL, 0, 1, enomem_done, &status[i]);
|
|
CU_ASSERT(rc == 0);
|
|
}
|
|
|
|
/* Assert that first_io is still at the head of the list. */
|
|
CU_ASSERT(TAILQ_FIRST(&module_ch->nomem_io) == first_io);
|
|
CU_ASSERT(bdev_io_tailq_cnt(&module_ch->nomem_io) == (IO_ARRAY_SIZE - AVAIL));
|
|
nomem_cnt = bdev_io_tailq_cnt(&module_ch->nomem_io);
|
|
CU_ASSERT(module_ch->nomem_threshold == (AVAIL - NOMEM_THRESHOLD_COUNT));
|
|
|
|
/*
|
|
* Complete 1 I/O only. The key check here is bdev_io_tailq_cnt - this should not have
|
|
* changed since completing just 1 I/O should not trigger retrying the queued nomem_io
|
|
* list.
|
|
*/
|
|
stub_complete_io(g_bdev.io_target, 1);
|
|
CU_ASSERT(bdev_io_tailq_cnt(&module_ch->nomem_io) == nomem_cnt);
|
|
|
|
/*
|
|
* Complete enough I/O to hit the nomem_theshold. This should trigger retrying nomem_io,
|
|
* and we should see I/O get resubmitted to the test bdev module.
|
|
*/
|
|
stub_complete_io(g_bdev.io_target, NOMEM_THRESHOLD_COUNT - 1);
|
|
CU_ASSERT(bdev_io_tailq_cnt(&module_ch->nomem_io) < nomem_cnt);
|
|
nomem_cnt = bdev_io_tailq_cnt(&module_ch->nomem_io);
|
|
|
|
/* Complete 1 I/O only. This should not trigger retrying the queued nomem_io. */
|
|
stub_complete_io(g_bdev.io_target, 1);
|
|
CU_ASSERT(bdev_io_tailq_cnt(&module_ch->nomem_io) == nomem_cnt);
|
|
|
|
/*
|
|
* Send a reset and confirm that all I/O are completed, including the ones that
|
|
* were queued on the nomem_io list.
|
|
*/
|
|
status_reset = SPDK_BDEV_IO_STATUS_PENDING;
|
|
rc = spdk_bdev_reset(g_desc, io_ch, enomem_done, &status_reset);
|
|
poll_threads();
|
|
CU_ASSERT(rc == 0);
|
|
/* This will complete the reset. */
|
|
stub_complete_io(g_bdev.io_target, 0);
|
|
|
|
CU_ASSERT(bdev_io_tailq_cnt(&module_ch->nomem_io) == 0);
|
|
CU_ASSERT(module_ch->io_outstanding == 0);
|
|
|
|
spdk_put_io_channel(io_ch);
|
|
poll_threads();
|
|
teardown_test();
|
|
}
|
|
|
|
static void
|
|
enomem_multi_bdev(void)
|
|
{
|
|
struct spdk_io_channel *io_ch;
|
|
struct spdk_bdev_channel *bdev_ch;
|
|
struct spdk_bdev_module_channel *module_ch;
|
|
struct ut_bdev_channel *ut_ch;
|
|
const uint32_t IO_ARRAY_SIZE = 64;
|
|
const uint32_t AVAIL = 20;
|
|
enum spdk_bdev_io_status status[IO_ARRAY_SIZE];
|
|
uint32_t i;
|
|
struct ut_bdev *second_bdev;
|
|
struct spdk_bdev_desc *second_desc;
|
|
struct spdk_bdev_channel *second_bdev_ch;
|
|
struct spdk_io_channel *second_ch;
|
|
int rc;
|
|
|
|
setup_test();
|
|
|
|
/* Register second bdev with the same io_target */
|
|
second_bdev = calloc(1, sizeof(*second_bdev));
|
|
SPDK_CU_ASSERT_FATAL(second_bdev != NULL);
|
|
register_bdev(second_bdev, "ut_bdev2", g_bdev.io_target);
|
|
spdk_bdev_open(&second_bdev->bdev, true, NULL, NULL, &second_desc);
|
|
|
|
set_thread(0);
|
|
io_ch = spdk_bdev_get_io_channel(g_desc);
|
|
bdev_ch = spdk_io_channel_get_ctx(io_ch);
|
|
module_ch = bdev_ch->module_ch;
|
|
ut_ch = spdk_io_channel_get_ctx(bdev_ch->channel);
|
|
ut_ch->avail_cnt = AVAIL;
|
|
|
|
second_ch = spdk_bdev_get_io_channel(second_desc);
|
|
second_bdev_ch = spdk_io_channel_get_ctx(second_ch);
|
|
SPDK_CU_ASSERT_FATAL(module_ch == second_bdev_ch->module_ch);
|
|
|
|
/* Saturate io_target through bdev A. */
|
|
for (i = 0; i < AVAIL; i++) {
|
|
status[i] = SPDK_BDEV_IO_STATUS_PENDING;
|
|
rc = spdk_bdev_read_blocks(g_desc, io_ch, NULL, 0, 1, enomem_done, &status[i]);
|
|
CU_ASSERT(rc == 0);
|
|
}
|
|
CU_ASSERT(TAILQ_EMPTY(&module_ch->nomem_io));
|
|
|
|
/*
|
|
* Now submit I/O through the second bdev. This should fail with ENOMEM
|
|
* and then go onto the nomem_io list.
|
|
*/
|
|
status[AVAIL] = SPDK_BDEV_IO_STATUS_PENDING;
|
|
rc = spdk_bdev_read_blocks(second_desc, second_ch, NULL, 0, 1, enomem_done, &status[AVAIL]);
|
|
CU_ASSERT(rc == 0);
|
|
SPDK_CU_ASSERT_FATAL(!TAILQ_EMPTY(&module_ch->nomem_io));
|
|
|
|
/* Complete first bdev's I/O. This should retry sending second bdev's nomem_io */
|
|
stub_complete_io(g_bdev.io_target, AVAIL);
|
|
|
|
SPDK_CU_ASSERT_FATAL(TAILQ_EMPTY(&module_ch->nomem_io));
|
|
CU_ASSERT(module_ch->io_outstanding == 1);
|
|
|
|
/* Now complete our retried I/O */
|
|
stub_complete_io(g_bdev.io_target, 1);
|
|
SPDK_CU_ASSERT_FATAL(module_ch->io_outstanding == 0);
|
|
|
|
spdk_put_io_channel(io_ch);
|
|
spdk_put_io_channel(second_ch);
|
|
spdk_bdev_close(second_desc);
|
|
unregister_bdev(second_bdev);
|
|
free(second_bdev);
|
|
poll_threads();
|
|
teardown_test();
|
|
}
|
|
|
|
int
|
|
main(int argc, char **argv)
|
|
{
|
|
CU_pSuite suite = NULL;
|
|
unsigned int num_failures;
|
|
|
|
if (CU_initialize_registry() != CUE_SUCCESS) {
|
|
return CU_get_error();
|
|
}
|
|
|
|
suite = CU_add_suite("bdev", NULL, NULL);
|
|
if (suite == NULL) {
|
|
CU_cleanup_registry();
|
|
return CU_get_error();
|
|
}
|
|
|
|
if (
|
|
CU_add_test(suite, "basic", basic) == NULL ||
|
|
CU_add_test(suite, "basic_poller", basic_poller) == NULL ||
|
|
CU_add_test(suite, "put_channel_during_reset", put_channel_during_reset) == NULL ||
|
|
CU_add_test(suite, "aborted_reset", aborted_reset) == NULL ||
|
|
CU_add_test(suite, "io_during_reset", io_during_reset) == NULL ||
|
|
CU_add_test(suite, "enomem", enomem) == NULL ||
|
|
CU_add_test(suite, "enomem_multi_bdev", enomem_multi_bdev) == NULL
|
|
) {
|
|
CU_cleanup_registry();
|
|
return CU_get_error();
|
|
}
|
|
|
|
CU_basic_set_mode(CU_BRM_VERBOSE);
|
|
CU_basic_run_tests();
|
|
num_failures = CU_get_number_of_failures();
|
|
CU_cleanup_registry();
|
|
return num_failures;
|
|
}
|