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module: put modules in list much earlier.
Prarit's excellent bug report:
> In recent Fedora releases (F17 & F18) some users have reported seeing
> messages similar to
>
> [ 15.478160] kvm: Could not allocate 304 bytes percpu data
> [ 15.478174] PERCPU: allocation failed, size=304 align=32, alloc from
> reserved chunk failed
>
> during system boot. In some cases, users have also reported seeing this
> message along with a failed load of other modules.
>
> What is happening is systemd is loading an instance of the kvm module for
> each cpu found (see commit e9bda3b
). When the module load occurs the kernel
> currently allocates the modules percpu data area prior to checking to see
> if the module is already loaded or is in the process of being loaded. If
> the module is already loaded, or finishes load, the module loading code
> releases the current instance's module's percpu data.
Now we have a new state MODULE_STATE_UNFORMED, we can insert the
module into the list (and thus guarantee its uniqueness) before we
allocate the per-cpu region.
Reported-by: Prarit Bhargava <prarit@redhat.com>
Signed-off-by: Rusty Russell <rusty@rustcorp.com.au>
Tested-by: Prarit Bhargava <prarit@redhat.com>
This commit is contained in:
parent
0d21b0e347
commit
1fb9341ac3
@ -3017,7 +3017,7 @@ static bool finished_loading(const char *name)
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bool ret;
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mutex_lock(&module_mutex);
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mod = find_module(name);
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mod = find_module_all(name, true);
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ret = !mod || mod->state == MODULE_STATE_LIVE
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|| mod->state == MODULE_STATE_GOING;
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mutex_unlock(&module_mutex);
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@ -3141,6 +3141,32 @@ static int load_module(struct load_info *info, const char __user *uargs,
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goto free_copy;
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}
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/*
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* We try to place it in the list now to make sure it's unique
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* before we dedicate too many resources. In particular,
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* temporary percpu memory exhaustion.
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*/
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mod->state = MODULE_STATE_UNFORMED;
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again:
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mutex_lock(&module_mutex);
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if ((old = find_module_all(mod->name, true)) != NULL) {
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if (old->state == MODULE_STATE_COMING
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|| old->state == MODULE_STATE_UNFORMED) {
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/* Wait in case it fails to load. */
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mutex_unlock(&module_mutex);
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err = wait_event_interruptible(module_wq,
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finished_loading(mod->name));
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if (err)
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goto free_module;
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goto again;
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}
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err = -EEXIST;
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mutex_unlock(&module_mutex);
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goto free_module;
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}
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list_add_rcu(&mod->list, &modules);
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mutex_unlock(&module_mutex);
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#ifdef CONFIG_MODULE_SIG
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mod->sig_ok = info->sig_ok;
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if (!mod->sig_ok)
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@ -3150,7 +3176,7 @@ static int load_module(struct load_info *info, const char __user *uargs,
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/* Now module is in final location, initialize linked lists, etc. */
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err = module_unload_init(mod);
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if (err)
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goto free_module;
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goto unlink_mod;
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/* Now we've got everything in the final locations, we can
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* find optional sections. */
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@ -3185,54 +3211,33 @@ static int load_module(struct load_info *info, const char __user *uargs,
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goto free_arch_cleanup;
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}
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/* Mark state as coming so strong_try_module_get() ignores us. */
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mod->state = MODULE_STATE_COMING;
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/* Now sew it into the lists so we can get lockdep and oops
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* info during argument parsing. No one should access us, since
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* strong_try_module_get() will fail.
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* lockdep/oops can run asynchronous, so use the RCU list insertion
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* function to insert in a way safe to concurrent readers.
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* The mutex protects against concurrent writers.
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*/
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again:
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mutex_lock(&module_mutex);
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if ((old = find_module(mod->name)) != NULL) {
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if (old->state == MODULE_STATE_COMING) {
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/* Wait in case it fails to load. */
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mutex_unlock(&module_mutex);
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err = wait_event_interruptible(module_wq,
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finished_loading(mod->name));
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if (err)
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goto free_arch_cleanup;
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goto again;
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}
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err = -EEXIST;
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goto unlock;
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}
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/* This has to be done once we're sure module name is unique. */
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dynamic_debug_setup(info->debug, info->num_debug);
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/* Find duplicate symbols */
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mutex_lock(&module_mutex);
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/* Find duplicate symbols (must be called under lock). */
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err = verify_export_symbols(mod);
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if (err < 0)
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goto ddebug;
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goto ddebug_cleanup;
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/* This relies on module_mutex for list integrity. */
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module_bug_finalize(info->hdr, info->sechdrs, mod);
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list_add_rcu(&mod->list, &modules);
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/* Mark state as coming so strong_try_module_get() ignores us,
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* but kallsyms etc. can see us. */
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mod->state = MODULE_STATE_COMING;
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mutex_unlock(&module_mutex);
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/* Module is ready to execute: parsing args may do that. */
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err = parse_args(mod->name, mod->args, mod->kp, mod->num_kp,
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-32768, 32767, &ddebug_dyndbg_module_param_cb);
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if (err < 0)
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goto unlink;
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goto bug_cleanup;
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/* Link in to syfs. */
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err = mod_sysfs_setup(mod, info, mod->kp, mod->num_kp);
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if (err < 0)
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goto unlink;
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goto bug_cleanup;
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/* Get rid of temporary copy. */
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free_copy(info);
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@ -3242,16 +3247,13 @@ again:
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return do_init_module(mod);
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unlink:
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bug_cleanup:
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/* module_bug_cleanup needs module_mutex protection */
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mutex_lock(&module_mutex);
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/* Unlink carefully: kallsyms could be walking list. */
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list_del_rcu(&mod->list);
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module_bug_cleanup(mod);
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wake_up_all(&module_wq);
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ddebug:
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dynamic_debug_remove(info->debug);
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unlock:
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mutex_unlock(&module_mutex);
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ddebug_cleanup:
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dynamic_debug_remove(info->debug);
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synchronize_sched();
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kfree(mod->args);
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free_arch_cleanup:
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@ -3260,6 +3262,12 @@ again:
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free_modinfo(mod);
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free_unload:
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module_unload_free(mod);
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unlink_mod:
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mutex_lock(&module_mutex);
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/* Unlink carefully: kallsyms could be walking list. */
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list_del_rcu(&mod->list);
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wake_up_all(&module_wq);
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mutex_unlock(&module_mutex);
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free_module:
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module_deallocate(mod, info);
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free_copy:
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