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Previously, we had "one fault handler to rule them all", which used several branches to deal with all of the scenarios required by all of the various tests. In upcoming patches, I plan to add a new test, which has its own slightly different fault handling logic. Instead of continuing to add cruft to the existing fault handler, let's allow tests to define custom ones, separate from other tests. Link: https://lkml.kernel.org/r/20230707215540.2324998-8-axelrasmussen@google.com Signed-off-by: Axel Rasmussen <axelrasmussen@google.com> Acked-by: Peter Xu <peterx@redhat.com> Cc: Al Viro <viro@zeniv.linux.org.uk> Cc: Brian Geffon <bgeffon@google.com> Cc: Christian Brauner <brauner@kernel.org> Cc: David Hildenbrand <david@redhat.com> Cc: Gaosheng Cui <cuigaosheng1@huawei.com> Cc: Huang, Ying <ying.huang@intel.com> Cc: Hugh Dickins <hughd@google.com> Cc: James Houghton <jthoughton@google.com> Cc: Jan Alexander Steffens (heftig) <heftig@archlinux.org> Cc: Jiaqi Yan <jiaqiyan@google.com> Cc: Jonathan Corbet <corbet@lwn.net> Cc: Kefeng Wang <wangkefeng.wang@huawei.com> Cc: Liam R. Howlett <Liam.Howlett@oracle.com> Cc: Miaohe Lin <linmiaohe@huawei.com> Cc: Mike Kravetz <mike.kravetz@oracle.com> Cc: Mike Rapoport (IBM) <rppt@kernel.org> Cc: Muchun Song <muchun.song@linux.dev> Cc: Nadav Amit <namit@vmware.com> Cc: Naoya Horiguchi <naoya.horiguchi@nec.com> Cc: Ryan Roberts <ryan.roberts@arm.com> Cc: Shuah Khan <shuah@kernel.org> Cc: Suleiman Souhlal <suleiman@google.com> Cc: Suren Baghdasaryan <surenb@google.com> Cc: T.J. Alumbaugh <talumbau@google.com> Cc: Yu Zhao <yuzhao@google.com> Cc: ZhangPeng <zhangpeng362@huawei.com> Signed-off-by: Andrew Morton <akpm@linux-foundation.org>
472 lines
12 KiB
C
472 lines
12 KiB
C
// SPDX-License-Identifier: GPL-2.0-only
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/*
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* Stress userfaultfd syscall.
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*
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* Copyright (C) 2015 Red Hat, Inc.
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*
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* This test allocates two virtual areas and bounces the physical
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* memory across the two virtual areas (from area_src to area_dst)
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* using userfaultfd.
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*
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* There are three threads running per CPU:
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*
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* 1) one per-CPU thread takes a per-page pthread_mutex in a random
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* page of the area_dst (while the physical page may still be in
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* area_src), and increments a per-page counter in the same page,
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* and checks its value against a verification region.
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*
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* 2) another per-CPU thread handles the userfaults generated by
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* thread 1 above. userfaultfd blocking reads or poll() modes are
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* exercised interleaved.
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*
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* 3) one last per-CPU thread transfers the memory in the background
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* at maximum bandwidth (if not already transferred by thread
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* 2). Each cpu thread takes cares of transferring a portion of the
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* area.
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*
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* When all threads of type 3 completed the transfer, one bounce is
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* complete. area_src and area_dst are then swapped. All threads are
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* respawned and so the bounce is immediately restarted in the
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* opposite direction.
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*
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* per-CPU threads 1 by triggering userfaults inside
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* pthread_mutex_lock will also verify the atomicity of the memory
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* transfer (UFFDIO_COPY).
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*/
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#include "uffd-common.h"
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#ifdef __NR_userfaultfd
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#define BOUNCE_RANDOM (1<<0)
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#define BOUNCE_RACINGFAULTS (1<<1)
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#define BOUNCE_VERIFY (1<<2)
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#define BOUNCE_POLL (1<<3)
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static int bounces;
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/* exercise the test_uffdio_*_eexist every ALARM_INTERVAL_SECS */
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#define ALARM_INTERVAL_SECS 10
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static char *zeropage;
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pthread_attr_t attr;
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#define swap(a, b) \
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do { typeof(a) __tmp = (a); (a) = (b); (b) = __tmp; } while (0)
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const char *examples =
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"# Run anonymous memory test on 100MiB region with 99999 bounces:\n"
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"./userfaultfd anon 100 99999\n\n"
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"# Run share memory test on 1GiB region with 99 bounces:\n"
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"./userfaultfd shmem 1000 99\n\n"
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"# Run hugetlb memory test on 256MiB region with 50 bounces:\n"
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"./userfaultfd hugetlb 256 50\n\n"
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"# Run the same hugetlb test but using private file:\n"
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"./userfaultfd hugetlb-private 256 50\n\n"
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"# 10MiB-~6GiB 999 bounces anonymous test, "
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"continue forever unless an error triggers\n"
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"while ./userfaultfd anon $[RANDOM % 6000 + 10] 999; do true; done\n\n";
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static void usage(void)
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{
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fprintf(stderr, "\nUsage: ./userfaultfd <test type> <MiB> <bounces>\n\n");
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fprintf(stderr, "Supported <test type>: anon, hugetlb, "
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"hugetlb-private, shmem, shmem-private\n\n");
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fprintf(stderr, "Examples:\n\n");
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fprintf(stderr, "%s", examples);
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exit(1);
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}
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static void uffd_stats_reset(struct uffd_args *args, unsigned long n_cpus)
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{
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int i;
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for (i = 0; i < n_cpus; i++) {
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args[i].cpu = i;
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args[i].apply_wp = test_uffdio_wp;
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args[i].missing_faults = 0;
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args[i].wp_faults = 0;
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args[i].minor_faults = 0;
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}
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}
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static void *locking_thread(void *arg)
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{
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unsigned long cpu = (unsigned long) arg;
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unsigned long page_nr;
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unsigned long long count;
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if (!(bounces & BOUNCE_RANDOM)) {
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page_nr = -bounces;
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if (!(bounces & BOUNCE_RACINGFAULTS))
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page_nr += cpu * nr_pages_per_cpu;
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}
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while (!finished) {
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if (bounces & BOUNCE_RANDOM) {
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if (getrandom(&page_nr, sizeof(page_nr), 0) != sizeof(page_nr))
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err("getrandom failed");
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} else
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page_nr += 1;
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page_nr %= nr_pages;
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pthread_mutex_lock(area_mutex(area_dst, page_nr));
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count = *area_count(area_dst, page_nr);
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if (count != count_verify[page_nr])
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err("page_nr %lu memory corruption %llu %llu",
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page_nr, count, count_verify[page_nr]);
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count++;
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*area_count(area_dst, page_nr) = count_verify[page_nr] = count;
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pthread_mutex_unlock(area_mutex(area_dst, page_nr));
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}
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return NULL;
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}
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static int copy_page_retry(int ufd, unsigned long offset)
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{
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return __copy_page(ufd, offset, true, test_uffdio_wp);
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}
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pthread_mutex_t uffd_read_mutex = PTHREAD_MUTEX_INITIALIZER;
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static void *uffd_read_thread(void *arg)
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{
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struct uffd_args *args = (struct uffd_args *)arg;
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struct uffd_msg msg;
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pthread_mutex_unlock(&uffd_read_mutex);
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/* from here cancellation is ok */
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for (;;) {
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if (uffd_read_msg(uffd, &msg))
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continue;
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uffd_handle_page_fault(&msg, args);
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}
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return NULL;
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}
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static void *background_thread(void *arg)
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{
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unsigned long cpu = (unsigned long) arg;
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unsigned long page_nr, start_nr, mid_nr, end_nr;
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start_nr = cpu * nr_pages_per_cpu;
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end_nr = (cpu+1) * nr_pages_per_cpu;
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mid_nr = (start_nr + end_nr) / 2;
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/* Copy the first half of the pages */
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for (page_nr = start_nr; page_nr < mid_nr; page_nr++)
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copy_page_retry(uffd, page_nr * page_size);
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/*
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* If we need to test uffd-wp, set it up now. Then we'll have
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* at least the first half of the pages mapped already which
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* can be write-protected for testing
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*/
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if (test_uffdio_wp)
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wp_range(uffd, (unsigned long)area_dst + start_nr * page_size,
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nr_pages_per_cpu * page_size, true);
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/*
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* Continue the 2nd half of the page copying, handling write
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* protection faults if any
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*/
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for (page_nr = mid_nr; page_nr < end_nr; page_nr++)
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copy_page_retry(uffd, page_nr * page_size);
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return NULL;
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}
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static int stress(struct uffd_args *args)
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{
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unsigned long cpu;
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pthread_t locking_threads[nr_cpus];
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pthread_t uffd_threads[nr_cpus];
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pthread_t background_threads[nr_cpus];
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finished = 0;
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for (cpu = 0; cpu < nr_cpus; cpu++) {
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if (pthread_create(&locking_threads[cpu], &attr,
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locking_thread, (void *)cpu))
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return 1;
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if (bounces & BOUNCE_POLL) {
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if (pthread_create(&uffd_threads[cpu], &attr, uffd_poll_thread, &args[cpu]))
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err("uffd_poll_thread create");
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} else {
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if (pthread_create(&uffd_threads[cpu], &attr,
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uffd_read_thread,
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(void *)&args[cpu]))
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return 1;
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pthread_mutex_lock(&uffd_read_mutex);
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}
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if (pthread_create(&background_threads[cpu], &attr,
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background_thread, (void *)cpu))
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return 1;
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}
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for (cpu = 0; cpu < nr_cpus; cpu++)
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if (pthread_join(background_threads[cpu], NULL))
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return 1;
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/*
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* Be strict and immediately zap area_src, the whole area has
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* been transferred already by the background treads. The
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* area_src could then be faulted in a racy way by still
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* running uffdio_threads reading zeropages after we zapped
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* area_src (but they're guaranteed to get -EEXIST from
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* UFFDIO_COPY without writing zero pages into area_dst
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* because the background threads already completed).
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*/
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uffd_test_ops->release_pages(area_src);
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finished = 1;
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for (cpu = 0; cpu < nr_cpus; cpu++)
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if (pthread_join(locking_threads[cpu], NULL))
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return 1;
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for (cpu = 0; cpu < nr_cpus; cpu++) {
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char c;
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if (bounces & BOUNCE_POLL) {
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if (write(pipefd[cpu*2+1], &c, 1) != 1)
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err("pipefd write error");
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if (pthread_join(uffd_threads[cpu],
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(void *)&args[cpu]))
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return 1;
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} else {
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if (pthread_cancel(uffd_threads[cpu]))
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return 1;
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if (pthread_join(uffd_threads[cpu], NULL))
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return 1;
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}
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}
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return 0;
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}
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static int userfaultfd_stress(void)
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{
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void *area;
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unsigned long nr;
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struct uffd_args args[nr_cpus];
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uint64_t mem_size = nr_pages * page_size;
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memset(args, 0, sizeof(struct uffd_args) * nr_cpus);
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if (uffd_test_ctx_init(UFFD_FEATURE_WP_UNPOPULATED, NULL))
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err("context init failed");
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if (posix_memalign(&area, page_size, page_size))
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err("out of memory");
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zeropage = area;
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bzero(zeropage, page_size);
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pthread_mutex_lock(&uffd_read_mutex);
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pthread_attr_init(&attr);
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pthread_attr_setstacksize(&attr, 16*1024*1024);
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while (bounces--) {
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printf("bounces: %d, mode:", bounces);
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if (bounces & BOUNCE_RANDOM)
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printf(" rnd");
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if (bounces & BOUNCE_RACINGFAULTS)
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printf(" racing");
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if (bounces & BOUNCE_VERIFY)
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printf(" ver");
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if (bounces & BOUNCE_POLL)
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printf(" poll");
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else
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printf(" read");
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printf(", ");
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fflush(stdout);
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if (bounces & BOUNCE_POLL)
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fcntl(uffd, F_SETFL, uffd_flags | O_NONBLOCK);
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else
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fcntl(uffd, F_SETFL, uffd_flags & ~O_NONBLOCK);
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/* register */
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if (uffd_register(uffd, area_dst, mem_size,
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true, test_uffdio_wp, false))
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err("register failure");
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if (area_dst_alias) {
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if (uffd_register(uffd, area_dst_alias, mem_size,
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true, test_uffdio_wp, false))
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err("register failure alias");
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}
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/*
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* The madvise done previously isn't enough: some
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* uffd_thread could have read userfaults (one of
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* those already resolved by the background thread)
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* and it may be in the process of calling
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* UFFDIO_COPY. UFFDIO_COPY will read the zapped
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* area_src and it would map a zero page in it (of
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* course such a UFFDIO_COPY is perfectly safe as it'd
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* return -EEXIST). The problem comes at the next
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* bounce though: that racing UFFDIO_COPY would
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* generate zeropages in the area_src, so invalidating
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* the previous MADV_DONTNEED. Without this additional
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* MADV_DONTNEED those zeropages leftovers in the
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* area_src would lead to -EEXIST failure during the
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* next bounce, effectively leaving a zeropage in the
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* area_dst.
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*
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* Try to comment this out madvise to see the memory
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* corruption being caught pretty quick.
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*
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* khugepaged is also inhibited to collapse THP after
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* MADV_DONTNEED only after the UFFDIO_REGISTER, so it's
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* required to MADV_DONTNEED here.
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*/
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uffd_test_ops->release_pages(area_dst);
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uffd_stats_reset(args, nr_cpus);
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/* bounce pass */
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if (stress(args))
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return 1;
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/* Clear all the write protections if there is any */
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if (test_uffdio_wp)
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wp_range(uffd, (unsigned long)area_dst,
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nr_pages * page_size, false);
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/* unregister */
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if (uffd_unregister(uffd, area_dst, mem_size))
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err("unregister failure");
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if (area_dst_alias) {
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if (uffd_unregister(uffd, area_dst_alias, mem_size))
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err("unregister failure alias");
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}
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/* verification */
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if (bounces & BOUNCE_VERIFY)
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for (nr = 0; nr < nr_pages; nr++)
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if (*area_count(area_dst, nr) != count_verify[nr])
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err("error area_count %llu %llu %lu\n",
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*area_count(area_src, nr),
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count_verify[nr], nr);
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/* prepare next bounce */
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swap(area_src, area_dst);
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swap(area_src_alias, area_dst_alias);
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uffd_stats_report(args, nr_cpus);
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}
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return 0;
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}
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static void set_test_type(const char *type)
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{
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if (!strcmp(type, "anon")) {
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test_type = TEST_ANON;
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uffd_test_ops = &anon_uffd_test_ops;
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} else if (!strcmp(type, "hugetlb")) {
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test_type = TEST_HUGETLB;
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uffd_test_ops = &hugetlb_uffd_test_ops;
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map_shared = true;
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} else if (!strcmp(type, "hugetlb-private")) {
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test_type = TEST_HUGETLB;
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uffd_test_ops = &hugetlb_uffd_test_ops;
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} else if (!strcmp(type, "shmem")) {
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map_shared = true;
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test_type = TEST_SHMEM;
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uffd_test_ops = &shmem_uffd_test_ops;
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} else if (!strcmp(type, "shmem-private")) {
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test_type = TEST_SHMEM;
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uffd_test_ops = &shmem_uffd_test_ops;
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}
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}
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static void parse_test_type_arg(const char *raw_type)
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{
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uint64_t features = UFFD_API_FEATURES;
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set_test_type(raw_type);
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if (!test_type)
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err("failed to parse test type argument: '%s'", raw_type);
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if (test_type == TEST_HUGETLB)
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page_size = default_huge_page_size();
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else
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page_size = sysconf(_SC_PAGE_SIZE);
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if (!page_size)
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err("Unable to determine page size");
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if ((unsigned long) area_count(NULL, 0) + sizeof(unsigned long long) * 2
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> page_size)
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err("Impossible to run this test");
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/*
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* Whether we can test certain features depends not just on test type,
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* but also on whether or not this particular kernel supports the
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* feature.
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*/
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if (userfaultfd_open(&features))
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err("Userfaultfd open failed");
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test_uffdio_wp = test_uffdio_wp &&
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(features & UFFD_FEATURE_PAGEFAULT_FLAG_WP);
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close(uffd);
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uffd = -1;
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}
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static void sigalrm(int sig)
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{
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if (sig != SIGALRM)
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abort();
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test_uffdio_copy_eexist = true;
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alarm(ALARM_INTERVAL_SECS);
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}
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int main(int argc, char **argv)
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{
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size_t bytes;
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if (argc < 4)
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usage();
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if (signal(SIGALRM, sigalrm) == SIG_ERR)
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err("failed to arm SIGALRM");
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alarm(ALARM_INTERVAL_SECS);
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parse_test_type_arg(argv[1]);
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bytes = atol(argv[2]) * 1024 * 1024;
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nr_cpus = sysconf(_SC_NPROCESSORS_ONLN);
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nr_pages_per_cpu = bytes / page_size / nr_cpus;
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if (!nr_pages_per_cpu) {
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_err("invalid MiB");
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usage();
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}
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bounces = atoi(argv[3]);
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if (bounces <= 0) {
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_err("invalid bounces");
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usage();
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}
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nr_pages = nr_pages_per_cpu * nr_cpus;
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printf("nr_pages: %lu, nr_pages_per_cpu: %lu\n",
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nr_pages, nr_pages_per_cpu);
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return userfaultfd_stress();
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}
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#else /* __NR_userfaultfd */
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#warning "missing __NR_userfaultfd definition"
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|
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int main(void)
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|
{
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|
printf("skip: Skipping userfaultfd test (missing __NR_userfaultfd)\n");
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|
return KSFT_SKIP;
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|
}
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#endif /* __NR_userfaultfd */
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