intel_rdt_rdtgroup.c 49 KB

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  1. /*
  2. * User interface for Resource Alloction in Resource Director Technology(RDT)
  3. *
  4. * Copyright (C) 2016 Intel Corporation
  5. *
  6. * Author: Fenghua Yu <fenghua.yu@intel.com>
  7. *
  8. * This program is free software; you can redistribute it and/or modify it
  9. * under the terms and conditions of the GNU General Public License,
  10. * version 2, as published by the Free Software Foundation.
  11. *
  12. * This program is distributed in the hope it will be useful, but WITHOUT
  13. * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
  14. * FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License for
  15. * more details.
  16. *
  17. * More information about RDT be found in the Intel (R) x86 Architecture
  18. * Software Developer Manual.
  19. */
  20. #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
  21. #include <linux/cpu.h>
  22. #include <linux/fs.h>
  23. #include <linux/sysfs.h>
  24. #include <linux/kernfs.h>
  25. #include <linux/seq_buf.h>
  26. #include <linux/seq_file.h>
  27. #include <linux/sched/signal.h>
  28. #include <linux/sched/task.h>
  29. #include <linux/slab.h>
  30. #include <linux/task_work.h>
  31. #include <uapi/linux/magic.h>
  32. #include <asm/intel_rdt_sched.h>
  33. #include "intel_rdt.h"
  34. DEFINE_STATIC_KEY_FALSE(rdt_enable_key);
  35. DEFINE_STATIC_KEY_FALSE(rdt_mon_enable_key);
  36. DEFINE_STATIC_KEY_FALSE(rdt_alloc_enable_key);
  37. static struct kernfs_root *rdt_root;
  38. struct rdtgroup rdtgroup_default;
  39. LIST_HEAD(rdt_all_groups);
  40. /* Kernel fs node for "info" directory under root */
  41. static struct kernfs_node *kn_info;
  42. /* Kernel fs node for "mon_groups" directory under root */
  43. static struct kernfs_node *kn_mongrp;
  44. /* Kernel fs node for "mon_data" directory under root */
  45. static struct kernfs_node *kn_mondata;
  46. static struct seq_buf last_cmd_status;
  47. static char last_cmd_status_buf[512];
  48. void rdt_last_cmd_clear(void)
  49. {
  50. lockdep_assert_held(&rdtgroup_mutex);
  51. seq_buf_clear(&last_cmd_status);
  52. }
  53. void rdt_last_cmd_puts(const char *s)
  54. {
  55. lockdep_assert_held(&rdtgroup_mutex);
  56. seq_buf_puts(&last_cmd_status, s);
  57. }
  58. void rdt_last_cmd_printf(const char *fmt, ...)
  59. {
  60. va_list ap;
  61. va_start(ap, fmt);
  62. lockdep_assert_held(&rdtgroup_mutex);
  63. seq_buf_vprintf(&last_cmd_status, fmt, ap);
  64. va_end(ap);
  65. }
  66. /*
  67. * Trivial allocator for CLOSIDs. Since h/w only supports a small number,
  68. * we can keep a bitmap of free CLOSIDs in a single integer.
  69. *
  70. * Using a global CLOSID across all resources has some advantages and
  71. * some drawbacks:
  72. * + We can simply set "current->closid" to assign a task to a resource
  73. * group.
  74. * + Context switch code can avoid extra memory references deciding which
  75. * CLOSID to load into the PQR_ASSOC MSR
  76. * - We give up some options in configuring resource groups across multi-socket
  77. * systems.
  78. * - Our choices on how to configure each resource become progressively more
  79. * limited as the number of resources grows.
  80. */
  81. static int closid_free_map;
  82. static void closid_init(void)
  83. {
  84. struct rdt_resource *r;
  85. int rdt_min_closid = 32;
  86. /* Compute rdt_min_closid across all resources */
  87. for_each_alloc_enabled_rdt_resource(r)
  88. rdt_min_closid = min(rdt_min_closid, r->num_closid);
  89. closid_free_map = BIT_MASK(rdt_min_closid) - 1;
  90. /* CLOSID 0 is always reserved for the default group */
  91. closid_free_map &= ~1;
  92. }
  93. static int closid_alloc(void)
  94. {
  95. u32 closid = ffs(closid_free_map);
  96. if (closid == 0)
  97. return -ENOSPC;
  98. closid--;
  99. closid_free_map &= ~(1 << closid);
  100. return closid;
  101. }
  102. static void closid_free(int closid)
  103. {
  104. closid_free_map |= 1 << closid;
  105. }
  106. /* set uid and gid of rdtgroup dirs and files to that of the creator */
  107. static int rdtgroup_kn_set_ugid(struct kernfs_node *kn)
  108. {
  109. struct iattr iattr = { .ia_valid = ATTR_UID | ATTR_GID,
  110. .ia_uid = current_fsuid(),
  111. .ia_gid = current_fsgid(), };
  112. if (uid_eq(iattr.ia_uid, GLOBAL_ROOT_UID) &&
  113. gid_eq(iattr.ia_gid, GLOBAL_ROOT_GID))
  114. return 0;
  115. return kernfs_setattr(kn, &iattr);
  116. }
  117. static int rdtgroup_add_file(struct kernfs_node *parent_kn, struct rftype *rft)
  118. {
  119. struct kernfs_node *kn;
  120. int ret;
  121. kn = __kernfs_create_file(parent_kn, rft->name, rft->mode,
  122. 0, rft->kf_ops, rft, NULL, NULL);
  123. if (IS_ERR(kn))
  124. return PTR_ERR(kn);
  125. ret = rdtgroup_kn_set_ugid(kn);
  126. if (ret) {
  127. kernfs_remove(kn);
  128. return ret;
  129. }
  130. return 0;
  131. }
  132. static int rdtgroup_seqfile_show(struct seq_file *m, void *arg)
  133. {
  134. struct kernfs_open_file *of = m->private;
  135. struct rftype *rft = of->kn->priv;
  136. if (rft->seq_show)
  137. return rft->seq_show(of, m, arg);
  138. return 0;
  139. }
  140. static ssize_t rdtgroup_file_write(struct kernfs_open_file *of, char *buf,
  141. size_t nbytes, loff_t off)
  142. {
  143. struct rftype *rft = of->kn->priv;
  144. if (rft->write)
  145. return rft->write(of, buf, nbytes, off);
  146. return -EINVAL;
  147. }
  148. static struct kernfs_ops rdtgroup_kf_single_ops = {
  149. .atomic_write_len = PAGE_SIZE,
  150. .write = rdtgroup_file_write,
  151. .seq_show = rdtgroup_seqfile_show,
  152. };
  153. static struct kernfs_ops kf_mondata_ops = {
  154. .atomic_write_len = PAGE_SIZE,
  155. .seq_show = rdtgroup_mondata_show,
  156. };
  157. static bool is_cpu_list(struct kernfs_open_file *of)
  158. {
  159. struct rftype *rft = of->kn->priv;
  160. return rft->flags & RFTYPE_FLAGS_CPUS_LIST;
  161. }
  162. static int rdtgroup_cpus_show(struct kernfs_open_file *of,
  163. struct seq_file *s, void *v)
  164. {
  165. struct rdtgroup *rdtgrp;
  166. int ret = 0;
  167. rdtgrp = rdtgroup_kn_lock_live(of->kn);
  168. if (rdtgrp) {
  169. seq_printf(s, is_cpu_list(of) ? "%*pbl\n" : "%*pb\n",
  170. cpumask_pr_args(&rdtgrp->cpu_mask));
  171. } else {
  172. ret = -ENOENT;
  173. }
  174. rdtgroup_kn_unlock(of->kn);
  175. return ret;
  176. }
  177. /*
  178. * This is safe against intel_rdt_sched_in() called from __switch_to()
  179. * because __switch_to() is executed with interrupts disabled. A local call
  180. * from update_closid_rmid() is proteced against __switch_to() because
  181. * preemption is disabled.
  182. */
  183. static void update_cpu_closid_rmid(void *info)
  184. {
  185. struct rdtgroup *r = info;
  186. if (r) {
  187. this_cpu_write(pqr_state.default_closid, r->closid);
  188. this_cpu_write(pqr_state.default_rmid, r->mon.rmid);
  189. }
  190. /*
  191. * We cannot unconditionally write the MSR because the current
  192. * executing task might have its own closid selected. Just reuse
  193. * the context switch code.
  194. */
  195. intel_rdt_sched_in();
  196. }
  197. /*
  198. * Update the PGR_ASSOC MSR on all cpus in @cpu_mask,
  199. *
  200. * Per task closids/rmids must have been set up before calling this function.
  201. */
  202. static void
  203. update_closid_rmid(const struct cpumask *cpu_mask, struct rdtgroup *r)
  204. {
  205. int cpu = get_cpu();
  206. if (cpumask_test_cpu(cpu, cpu_mask))
  207. update_cpu_closid_rmid(r);
  208. smp_call_function_many(cpu_mask, update_cpu_closid_rmid, r, 1);
  209. put_cpu();
  210. }
  211. static int cpus_mon_write(struct rdtgroup *rdtgrp, cpumask_var_t newmask,
  212. cpumask_var_t tmpmask)
  213. {
  214. struct rdtgroup *prgrp = rdtgrp->mon.parent, *crgrp;
  215. struct list_head *head;
  216. /* Check whether cpus belong to parent ctrl group */
  217. cpumask_andnot(tmpmask, newmask, &prgrp->cpu_mask);
  218. if (cpumask_weight(tmpmask)) {
  219. rdt_last_cmd_puts("can only add CPUs to mongroup that belong to parent\n");
  220. return -EINVAL;
  221. }
  222. /* Check whether cpus are dropped from this group */
  223. cpumask_andnot(tmpmask, &rdtgrp->cpu_mask, newmask);
  224. if (cpumask_weight(tmpmask)) {
  225. /* Give any dropped cpus to parent rdtgroup */
  226. cpumask_or(&prgrp->cpu_mask, &prgrp->cpu_mask, tmpmask);
  227. update_closid_rmid(tmpmask, prgrp);
  228. }
  229. /*
  230. * If we added cpus, remove them from previous group that owned them
  231. * and update per-cpu rmid
  232. */
  233. cpumask_andnot(tmpmask, newmask, &rdtgrp->cpu_mask);
  234. if (cpumask_weight(tmpmask)) {
  235. head = &prgrp->mon.crdtgrp_list;
  236. list_for_each_entry(crgrp, head, mon.crdtgrp_list) {
  237. if (crgrp == rdtgrp)
  238. continue;
  239. cpumask_andnot(&crgrp->cpu_mask, &crgrp->cpu_mask,
  240. tmpmask);
  241. }
  242. update_closid_rmid(tmpmask, rdtgrp);
  243. }
  244. /* Done pushing/pulling - update this group with new mask */
  245. cpumask_copy(&rdtgrp->cpu_mask, newmask);
  246. return 0;
  247. }
  248. static void cpumask_rdtgrp_clear(struct rdtgroup *r, struct cpumask *m)
  249. {
  250. struct rdtgroup *crgrp;
  251. cpumask_andnot(&r->cpu_mask, &r->cpu_mask, m);
  252. /* update the child mon group masks as well*/
  253. list_for_each_entry(crgrp, &r->mon.crdtgrp_list, mon.crdtgrp_list)
  254. cpumask_and(&crgrp->cpu_mask, &r->cpu_mask, &crgrp->cpu_mask);
  255. }
  256. static int cpus_ctrl_write(struct rdtgroup *rdtgrp, cpumask_var_t newmask,
  257. cpumask_var_t tmpmask, cpumask_var_t tmpmask1)
  258. {
  259. struct rdtgroup *r, *crgrp;
  260. struct list_head *head;
  261. /* Check whether cpus are dropped from this group */
  262. cpumask_andnot(tmpmask, &rdtgrp->cpu_mask, newmask);
  263. if (cpumask_weight(tmpmask)) {
  264. /* Can't drop from default group */
  265. if (rdtgrp == &rdtgroup_default) {
  266. rdt_last_cmd_puts("Can't drop CPUs from default group\n");
  267. return -EINVAL;
  268. }
  269. /* Give any dropped cpus to rdtgroup_default */
  270. cpumask_or(&rdtgroup_default.cpu_mask,
  271. &rdtgroup_default.cpu_mask, tmpmask);
  272. update_closid_rmid(tmpmask, &rdtgroup_default);
  273. }
  274. /*
  275. * If we added cpus, remove them from previous group and
  276. * the prev group's child groups that owned them
  277. * and update per-cpu closid/rmid.
  278. */
  279. cpumask_andnot(tmpmask, newmask, &rdtgrp->cpu_mask);
  280. if (cpumask_weight(tmpmask)) {
  281. list_for_each_entry(r, &rdt_all_groups, rdtgroup_list) {
  282. if (r == rdtgrp)
  283. continue;
  284. cpumask_and(tmpmask1, &r->cpu_mask, tmpmask);
  285. if (cpumask_weight(tmpmask1))
  286. cpumask_rdtgrp_clear(r, tmpmask1);
  287. }
  288. update_closid_rmid(tmpmask, rdtgrp);
  289. }
  290. /* Done pushing/pulling - update this group with new mask */
  291. cpumask_copy(&rdtgrp->cpu_mask, newmask);
  292. /*
  293. * Clear child mon group masks since there is a new parent mask
  294. * now and update the rmid for the cpus the child lost.
  295. */
  296. head = &rdtgrp->mon.crdtgrp_list;
  297. list_for_each_entry(crgrp, head, mon.crdtgrp_list) {
  298. cpumask_and(tmpmask, &rdtgrp->cpu_mask, &crgrp->cpu_mask);
  299. update_closid_rmid(tmpmask, rdtgrp);
  300. cpumask_clear(&crgrp->cpu_mask);
  301. }
  302. return 0;
  303. }
  304. static ssize_t rdtgroup_cpus_write(struct kernfs_open_file *of,
  305. char *buf, size_t nbytes, loff_t off)
  306. {
  307. cpumask_var_t tmpmask, newmask, tmpmask1;
  308. struct rdtgroup *rdtgrp;
  309. int ret;
  310. if (!buf)
  311. return -EINVAL;
  312. if (!zalloc_cpumask_var(&tmpmask, GFP_KERNEL))
  313. return -ENOMEM;
  314. if (!zalloc_cpumask_var(&newmask, GFP_KERNEL)) {
  315. free_cpumask_var(tmpmask);
  316. return -ENOMEM;
  317. }
  318. if (!zalloc_cpumask_var(&tmpmask1, GFP_KERNEL)) {
  319. free_cpumask_var(tmpmask);
  320. free_cpumask_var(newmask);
  321. return -ENOMEM;
  322. }
  323. rdtgrp = rdtgroup_kn_lock_live(of->kn);
  324. rdt_last_cmd_clear();
  325. if (!rdtgrp) {
  326. ret = -ENOENT;
  327. rdt_last_cmd_puts("directory was removed\n");
  328. goto unlock;
  329. }
  330. if (is_cpu_list(of))
  331. ret = cpulist_parse(buf, newmask);
  332. else
  333. ret = cpumask_parse(buf, newmask);
  334. if (ret) {
  335. rdt_last_cmd_puts("bad cpu list/mask\n");
  336. goto unlock;
  337. }
  338. /* check that user didn't specify any offline cpus */
  339. cpumask_andnot(tmpmask, newmask, cpu_online_mask);
  340. if (cpumask_weight(tmpmask)) {
  341. ret = -EINVAL;
  342. rdt_last_cmd_puts("can only assign online cpus\n");
  343. goto unlock;
  344. }
  345. if (rdtgrp->type == RDTCTRL_GROUP)
  346. ret = cpus_ctrl_write(rdtgrp, newmask, tmpmask, tmpmask1);
  347. else if (rdtgrp->type == RDTMON_GROUP)
  348. ret = cpus_mon_write(rdtgrp, newmask, tmpmask);
  349. else
  350. ret = -EINVAL;
  351. unlock:
  352. rdtgroup_kn_unlock(of->kn);
  353. free_cpumask_var(tmpmask);
  354. free_cpumask_var(newmask);
  355. free_cpumask_var(tmpmask1);
  356. return ret ?: nbytes;
  357. }
  358. struct task_move_callback {
  359. struct callback_head work;
  360. struct rdtgroup *rdtgrp;
  361. };
  362. static void move_myself(struct callback_head *head)
  363. {
  364. struct task_move_callback *callback;
  365. struct rdtgroup *rdtgrp;
  366. callback = container_of(head, struct task_move_callback, work);
  367. rdtgrp = callback->rdtgrp;
  368. /*
  369. * If resource group was deleted before this task work callback
  370. * was invoked, then assign the task to root group and free the
  371. * resource group.
  372. */
  373. if (atomic_dec_and_test(&rdtgrp->waitcount) &&
  374. (rdtgrp->flags & RDT_DELETED)) {
  375. current->closid = 0;
  376. current->rmid = 0;
  377. kfree(rdtgrp);
  378. }
  379. preempt_disable();
  380. /* update PQR_ASSOC MSR to make resource group go into effect */
  381. intel_rdt_sched_in();
  382. preempt_enable();
  383. kfree(callback);
  384. }
  385. static int __rdtgroup_move_task(struct task_struct *tsk,
  386. struct rdtgroup *rdtgrp)
  387. {
  388. struct task_move_callback *callback;
  389. int ret;
  390. callback = kzalloc(sizeof(*callback), GFP_KERNEL);
  391. if (!callback)
  392. return -ENOMEM;
  393. callback->work.func = move_myself;
  394. callback->rdtgrp = rdtgrp;
  395. /*
  396. * Take a refcount, so rdtgrp cannot be freed before the
  397. * callback has been invoked.
  398. */
  399. atomic_inc(&rdtgrp->waitcount);
  400. ret = task_work_add(tsk, &callback->work, true);
  401. if (ret) {
  402. /*
  403. * Task is exiting. Drop the refcount and free the callback.
  404. * No need to check the refcount as the group cannot be
  405. * deleted before the write function unlocks rdtgroup_mutex.
  406. */
  407. atomic_dec(&rdtgrp->waitcount);
  408. kfree(callback);
  409. rdt_last_cmd_puts("task exited\n");
  410. } else {
  411. /*
  412. * For ctrl_mon groups move both closid and rmid.
  413. * For monitor groups, can move the tasks only from
  414. * their parent CTRL group.
  415. */
  416. if (rdtgrp->type == RDTCTRL_GROUP) {
  417. tsk->closid = rdtgrp->closid;
  418. tsk->rmid = rdtgrp->mon.rmid;
  419. } else if (rdtgrp->type == RDTMON_GROUP) {
  420. if (rdtgrp->mon.parent->closid == tsk->closid) {
  421. tsk->rmid = rdtgrp->mon.rmid;
  422. } else {
  423. rdt_last_cmd_puts("Can't move task to different control group\n");
  424. ret = -EINVAL;
  425. }
  426. }
  427. }
  428. return ret;
  429. }
  430. static int rdtgroup_task_write_permission(struct task_struct *task,
  431. struct kernfs_open_file *of)
  432. {
  433. const struct cred *tcred = get_task_cred(task);
  434. const struct cred *cred = current_cred();
  435. int ret = 0;
  436. /*
  437. * Even if we're attaching all tasks in the thread group, we only
  438. * need to check permissions on one of them.
  439. */
  440. if (!uid_eq(cred->euid, GLOBAL_ROOT_UID) &&
  441. !uid_eq(cred->euid, tcred->uid) &&
  442. !uid_eq(cred->euid, tcred->suid)) {
  443. rdt_last_cmd_printf("No permission to move task %d\n", task->pid);
  444. ret = -EPERM;
  445. }
  446. put_cred(tcred);
  447. return ret;
  448. }
  449. static int rdtgroup_move_task(pid_t pid, struct rdtgroup *rdtgrp,
  450. struct kernfs_open_file *of)
  451. {
  452. struct task_struct *tsk;
  453. int ret;
  454. rcu_read_lock();
  455. if (pid) {
  456. tsk = find_task_by_vpid(pid);
  457. if (!tsk) {
  458. rcu_read_unlock();
  459. rdt_last_cmd_printf("No task %d\n", pid);
  460. return -ESRCH;
  461. }
  462. } else {
  463. tsk = current;
  464. }
  465. get_task_struct(tsk);
  466. rcu_read_unlock();
  467. ret = rdtgroup_task_write_permission(tsk, of);
  468. if (!ret)
  469. ret = __rdtgroup_move_task(tsk, rdtgrp);
  470. put_task_struct(tsk);
  471. return ret;
  472. }
  473. static ssize_t rdtgroup_tasks_write(struct kernfs_open_file *of,
  474. char *buf, size_t nbytes, loff_t off)
  475. {
  476. struct rdtgroup *rdtgrp;
  477. int ret = 0;
  478. pid_t pid;
  479. if (kstrtoint(strstrip(buf), 0, &pid) || pid < 0)
  480. return -EINVAL;
  481. rdtgrp = rdtgroup_kn_lock_live(of->kn);
  482. rdt_last_cmd_clear();
  483. if (rdtgrp)
  484. ret = rdtgroup_move_task(pid, rdtgrp, of);
  485. else
  486. ret = -ENOENT;
  487. rdtgroup_kn_unlock(of->kn);
  488. return ret ?: nbytes;
  489. }
  490. static void show_rdt_tasks(struct rdtgroup *r, struct seq_file *s)
  491. {
  492. struct task_struct *p, *t;
  493. rcu_read_lock();
  494. for_each_process_thread(p, t) {
  495. if ((r->type == RDTCTRL_GROUP && t->closid == r->closid) ||
  496. (r->type == RDTMON_GROUP && t->rmid == r->mon.rmid))
  497. seq_printf(s, "%d\n", t->pid);
  498. }
  499. rcu_read_unlock();
  500. }
  501. static int rdtgroup_tasks_show(struct kernfs_open_file *of,
  502. struct seq_file *s, void *v)
  503. {
  504. struct rdtgroup *rdtgrp;
  505. int ret = 0;
  506. rdtgrp = rdtgroup_kn_lock_live(of->kn);
  507. if (rdtgrp)
  508. show_rdt_tasks(rdtgrp, s);
  509. else
  510. ret = -ENOENT;
  511. rdtgroup_kn_unlock(of->kn);
  512. return ret;
  513. }
  514. static int rdt_last_cmd_status_show(struct kernfs_open_file *of,
  515. struct seq_file *seq, void *v)
  516. {
  517. int len;
  518. mutex_lock(&rdtgroup_mutex);
  519. len = seq_buf_used(&last_cmd_status);
  520. if (len)
  521. seq_printf(seq, "%.*s", len, last_cmd_status_buf);
  522. else
  523. seq_puts(seq, "ok\n");
  524. mutex_unlock(&rdtgroup_mutex);
  525. return 0;
  526. }
  527. static int rdt_num_closids_show(struct kernfs_open_file *of,
  528. struct seq_file *seq, void *v)
  529. {
  530. struct rdt_resource *r = of->kn->parent->priv;
  531. seq_printf(seq, "%d\n", r->num_closid);
  532. return 0;
  533. }
  534. static int rdt_default_ctrl_show(struct kernfs_open_file *of,
  535. struct seq_file *seq, void *v)
  536. {
  537. struct rdt_resource *r = of->kn->parent->priv;
  538. seq_printf(seq, "%x\n", r->default_ctrl);
  539. return 0;
  540. }
  541. static int rdt_min_cbm_bits_show(struct kernfs_open_file *of,
  542. struct seq_file *seq, void *v)
  543. {
  544. struct rdt_resource *r = of->kn->parent->priv;
  545. seq_printf(seq, "%u\n", r->cache.min_cbm_bits);
  546. return 0;
  547. }
  548. static int rdt_shareable_bits_show(struct kernfs_open_file *of,
  549. struct seq_file *seq, void *v)
  550. {
  551. struct rdt_resource *r = of->kn->parent->priv;
  552. seq_printf(seq, "%x\n", r->cache.shareable_bits);
  553. return 0;
  554. }
  555. static int rdt_min_bw_show(struct kernfs_open_file *of,
  556. struct seq_file *seq, void *v)
  557. {
  558. struct rdt_resource *r = of->kn->parent->priv;
  559. seq_printf(seq, "%u\n", r->membw.min_bw);
  560. return 0;
  561. }
  562. static int rdt_num_rmids_show(struct kernfs_open_file *of,
  563. struct seq_file *seq, void *v)
  564. {
  565. struct rdt_resource *r = of->kn->parent->priv;
  566. seq_printf(seq, "%d\n", r->num_rmid);
  567. return 0;
  568. }
  569. static int rdt_mon_features_show(struct kernfs_open_file *of,
  570. struct seq_file *seq, void *v)
  571. {
  572. struct rdt_resource *r = of->kn->parent->priv;
  573. struct mon_evt *mevt;
  574. list_for_each_entry(mevt, &r->evt_list, list)
  575. seq_printf(seq, "%s\n", mevt->name);
  576. return 0;
  577. }
  578. static int rdt_bw_gran_show(struct kernfs_open_file *of,
  579. struct seq_file *seq, void *v)
  580. {
  581. struct rdt_resource *r = of->kn->parent->priv;
  582. seq_printf(seq, "%u\n", r->membw.bw_gran);
  583. return 0;
  584. }
  585. static int rdt_delay_linear_show(struct kernfs_open_file *of,
  586. struct seq_file *seq, void *v)
  587. {
  588. struct rdt_resource *r = of->kn->parent->priv;
  589. seq_printf(seq, "%u\n", r->membw.delay_linear);
  590. return 0;
  591. }
  592. static int max_threshold_occ_show(struct kernfs_open_file *of,
  593. struct seq_file *seq, void *v)
  594. {
  595. struct rdt_resource *r = of->kn->parent->priv;
  596. seq_printf(seq, "%u\n", intel_cqm_threshold * r->mon_scale);
  597. return 0;
  598. }
  599. static ssize_t max_threshold_occ_write(struct kernfs_open_file *of,
  600. char *buf, size_t nbytes, loff_t off)
  601. {
  602. struct rdt_resource *r = of->kn->parent->priv;
  603. unsigned int bytes;
  604. int ret;
  605. ret = kstrtouint(buf, 0, &bytes);
  606. if (ret)
  607. return ret;
  608. if (bytes > (boot_cpu_data.x86_cache_size * 1024))
  609. return -EINVAL;
  610. intel_cqm_threshold = bytes / r->mon_scale;
  611. return nbytes;
  612. }
  613. /* rdtgroup information files for one cache resource. */
  614. static struct rftype res_common_files[] = {
  615. {
  616. .name = "last_cmd_status",
  617. .mode = 0444,
  618. .kf_ops = &rdtgroup_kf_single_ops,
  619. .seq_show = rdt_last_cmd_status_show,
  620. .fflags = RF_TOP_INFO,
  621. },
  622. {
  623. .name = "num_closids",
  624. .mode = 0444,
  625. .kf_ops = &rdtgroup_kf_single_ops,
  626. .seq_show = rdt_num_closids_show,
  627. .fflags = RF_CTRL_INFO,
  628. },
  629. {
  630. .name = "mon_features",
  631. .mode = 0444,
  632. .kf_ops = &rdtgroup_kf_single_ops,
  633. .seq_show = rdt_mon_features_show,
  634. .fflags = RF_MON_INFO,
  635. },
  636. {
  637. .name = "num_rmids",
  638. .mode = 0444,
  639. .kf_ops = &rdtgroup_kf_single_ops,
  640. .seq_show = rdt_num_rmids_show,
  641. .fflags = RF_MON_INFO,
  642. },
  643. {
  644. .name = "cbm_mask",
  645. .mode = 0444,
  646. .kf_ops = &rdtgroup_kf_single_ops,
  647. .seq_show = rdt_default_ctrl_show,
  648. .fflags = RF_CTRL_INFO | RFTYPE_RES_CACHE,
  649. },
  650. {
  651. .name = "min_cbm_bits",
  652. .mode = 0444,
  653. .kf_ops = &rdtgroup_kf_single_ops,
  654. .seq_show = rdt_min_cbm_bits_show,
  655. .fflags = RF_CTRL_INFO | RFTYPE_RES_CACHE,
  656. },
  657. {
  658. .name = "shareable_bits",
  659. .mode = 0444,
  660. .kf_ops = &rdtgroup_kf_single_ops,
  661. .seq_show = rdt_shareable_bits_show,
  662. .fflags = RF_CTRL_INFO | RFTYPE_RES_CACHE,
  663. },
  664. {
  665. .name = "min_bandwidth",
  666. .mode = 0444,
  667. .kf_ops = &rdtgroup_kf_single_ops,
  668. .seq_show = rdt_min_bw_show,
  669. .fflags = RF_CTRL_INFO | RFTYPE_RES_MB,
  670. },
  671. {
  672. .name = "bandwidth_gran",
  673. .mode = 0444,
  674. .kf_ops = &rdtgroup_kf_single_ops,
  675. .seq_show = rdt_bw_gran_show,
  676. .fflags = RF_CTRL_INFO | RFTYPE_RES_MB,
  677. },
  678. {
  679. .name = "delay_linear",
  680. .mode = 0444,
  681. .kf_ops = &rdtgroup_kf_single_ops,
  682. .seq_show = rdt_delay_linear_show,
  683. .fflags = RF_CTRL_INFO | RFTYPE_RES_MB,
  684. },
  685. {
  686. .name = "max_threshold_occupancy",
  687. .mode = 0644,
  688. .kf_ops = &rdtgroup_kf_single_ops,
  689. .write = max_threshold_occ_write,
  690. .seq_show = max_threshold_occ_show,
  691. .fflags = RF_MON_INFO | RFTYPE_RES_CACHE,
  692. },
  693. {
  694. .name = "cpus",
  695. .mode = 0644,
  696. .kf_ops = &rdtgroup_kf_single_ops,
  697. .write = rdtgroup_cpus_write,
  698. .seq_show = rdtgroup_cpus_show,
  699. .fflags = RFTYPE_BASE,
  700. },
  701. {
  702. .name = "cpus_list",
  703. .mode = 0644,
  704. .kf_ops = &rdtgroup_kf_single_ops,
  705. .write = rdtgroup_cpus_write,
  706. .seq_show = rdtgroup_cpus_show,
  707. .flags = RFTYPE_FLAGS_CPUS_LIST,
  708. .fflags = RFTYPE_BASE,
  709. },
  710. {
  711. .name = "tasks",
  712. .mode = 0644,
  713. .kf_ops = &rdtgroup_kf_single_ops,
  714. .write = rdtgroup_tasks_write,
  715. .seq_show = rdtgroup_tasks_show,
  716. .fflags = RFTYPE_BASE,
  717. },
  718. {
  719. .name = "schemata",
  720. .mode = 0644,
  721. .kf_ops = &rdtgroup_kf_single_ops,
  722. .write = rdtgroup_schemata_write,
  723. .seq_show = rdtgroup_schemata_show,
  724. .fflags = RF_CTRL_BASE,
  725. },
  726. };
  727. static int rdtgroup_add_files(struct kernfs_node *kn, unsigned long fflags)
  728. {
  729. struct rftype *rfts, *rft;
  730. int ret, len;
  731. rfts = res_common_files;
  732. len = ARRAY_SIZE(res_common_files);
  733. lockdep_assert_held(&rdtgroup_mutex);
  734. for (rft = rfts; rft < rfts + len; rft++) {
  735. if ((fflags & rft->fflags) == rft->fflags) {
  736. ret = rdtgroup_add_file(kn, rft);
  737. if (ret)
  738. goto error;
  739. }
  740. }
  741. return 0;
  742. error:
  743. pr_warn("Failed to add %s, err=%d\n", rft->name, ret);
  744. while (--rft >= rfts) {
  745. if ((fflags & rft->fflags) == rft->fflags)
  746. kernfs_remove_by_name(kn, rft->name);
  747. }
  748. return ret;
  749. }
  750. static int rdtgroup_mkdir_info_resdir(struct rdt_resource *r, char *name,
  751. unsigned long fflags)
  752. {
  753. struct kernfs_node *kn_subdir;
  754. int ret;
  755. kn_subdir = kernfs_create_dir(kn_info, name,
  756. kn_info->mode, r);
  757. if (IS_ERR(kn_subdir))
  758. return PTR_ERR(kn_subdir);
  759. kernfs_get(kn_subdir);
  760. ret = rdtgroup_kn_set_ugid(kn_subdir);
  761. if (ret)
  762. return ret;
  763. ret = rdtgroup_add_files(kn_subdir, fflags);
  764. if (!ret)
  765. kernfs_activate(kn_subdir);
  766. return ret;
  767. }
  768. static int rdtgroup_create_info_dir(struct kernfs_node *parent_kn)
  769. {
  770. struct rdt_resource *r;
  771. unsigned long fflags;
  772. char name[32];
  773. int ret;
  774. /* create the directory */
  775. kn_info = kernfs_create_dir(parent_kn, "info", parent_kn->mode, NULL);
  776. if (IS_ERR(kn_info))
  777. return PTR_ERR(kn_info);
  778. kernfs_get(kn_info);
  779. ret = rdtgroup_add_files(kn_info, RF_TOP_INFO);
  780. if (ret)
  781. goto out_destroy;
  782. for_each_alloc_enabled_rdt_resource(r) {
  783. fflags = r->fflags | RF_CTRL_INFO;
  784. ret = rdtgroup_mkdir_info_resdir(r, r->name, fflags);
  785. if (ret)
  786. goto out_destroy;
  787. }
  788. for_each_mon_enabled_rdt_resource(r) {
  789. fflags = r->fflags | RF_MON_INFO;
  790. sprintf(name, "%s_MON", r->name);
  791. ret = rdtgroup_mkdir_info_resdir(r, name, fflags);
  792. if (ret)
  793. goto out_destroy;
  794. }
  795. /*
  796. * This extra ref will be put in kernfs_remove() and guarantees
  797. * that @rdtgrp->kn is always accessible.
  798. */
  799. kernfs_get(kn_info);
  800. ret = rdtgroup_kn_set_ugid(kn_info);
  801. if (ret)
  802. goto out_destroy;
  803. kernfs_activate(kn_info);
  804. return 0;
  805. out_destroy:
  806. kernfs_remove(kn_info);
  807. return ret;
  808. }
  809. static int
  810. mongroup_create_dir(struct kernfs_node *parent_kn, struct rdtgroup *prgrp,
  811. char *name, struct kernfs_node **dest_kn)
  812. {
  813. struct kernfs_node *kn;
  814. int ret;
  815. /* create the directory */
  816. kn = kernfs_create_dir(parent_kn, name, parent_kn->mode, prgrp);
  817. if (IS_ERR(kn))
  818. return PTR_ERR(kn);
  819. if (dest_kn)
  820. *dest_kn = kn;
  821. /*
  822. * This extra ref will be put in kernfs_remove() and guarantees
  823. * that @rdtgrp->kn is always accessible.
  824. */
  825. kernfs_get(kn);
  826. ret = rdtgroup_kn_set_ugid(kn);
  827. if (ret)
  828. goto out_destroy;
  829. kernfs_activate(kn);
  830. return 0;
  831. out_destroy:
  832. kernfs_remove(kn);
  833. return ret;
  834. }
  835. static void l3_qos_cfg_update(void *arg)
  836. {
  837. bool *enable = arg;
  838. wrmsrl(IA32_L3_QOS_CFG, *enable ? L3_QOS_CDP_ENABLE : 0ULL);
  839. }
  840. static void l2_qos_cfg_update(void *arg)
  841. {
  842. bool *enable = arg;
  843. wrmsrl(IA32_L2_QOS_CFG, *enable ? L2_QOS_CDP_ENABLE : 0ULL);
  844. }
  845. static inline bool is_mba_linear(void)
  846. {
  847. return rdt_resources_all[RDT_RESOURCE_MBA].membw.delay_linear;
  848. }
  849. static int set_cache_qos_cfg(int level, bool enable)
  850. {
  851. void (*update)(void *arg);
  852. struct rdt_resource *r_l;
  853. cpumask_var_t cpu_mask;
  854. struct rdt_domain *d;
  855. int cpu;
  856. if (!zalloc_cpumask_var(&cpu_mask, GFP_KERNEL))
  857. return -ENOMEM;
  858. if (level == RDT_RESOURCE_L3)
  859. update = l3_qos_cfg_update;
  860. else if (level == RDT_RESOURCE_L2)
  861. update = l2_qos_cfg_update;
  862. else
  863. return -EINVAL;
  864. r_l = &rdt_resources_all[level];
  865. list_for_each_entry(d, &r_l->domains, list) {
  866. /* Pick one CPU from each domain instance to update MSR */
  867. cpumask_set_cpu(cpumask_any(&d->cpu_mask), cpu_mask);
  868. }
  869. cpu = get_cpu();
  870. /* Update QOS_CFG MSR on this cpu if it's in cpu_mask. */
  871. if (cpumask_test_cpu(cpu, cpu_mask))
  872. update(&enable);
  873. /* Update QOS_CFG MSR on all other cpus in cpu_mask. */
  874. smp_call_function_many(cpu_mask, update, &enable, 1);
  875. put_cpu();
  876. free_cpumask_var(cpu_mask);
  877. return 0;
  878. }
  879. /*
  880. * Enable or disable the MBA software controller
  881. * which helps user specify bandwidth in MBps.
  882. * MBA software controller is supported only if
  883. * MBM is supported and MBA is in linear scale.
  884. */
  885. static int set_mba_sc(bool mba_sc)
  886. {
  887. struct rdt_resource *r = &rdt_resources_all[RDT_RESOURCE_MBA];
  888. struct rdt_domain *d;
  889. if (!is_mbm_enabled() || !is_mba_linear() ||
  890. mba_sc == is_mba_sc(r))
  891. return -EINVAL;
  892. r->membw.mba_sc = mba_sc;
  893. list_for_each_entry(d, &r->domains, list)
  894. setup_default_ctrlval(r, d->ctrl_val, d->mbps_val);
  895. return 0;
  896. }
  897. static int cdp_enable(int level, int data_type, int code_type)
  898. {
  899. struct rdt_resource *r_ldata = &rdt_resources_all[data_type];
  900. struct rdt_resource *r_lcode = &rdt_resources_all[code_type];
  901. struct rdt_resource *r_l = &rdt_resources_all[level];
  902. int ret;
  903. if (!r_l->alloc_capable || !r_ldata->alloc_capable ||
  904. !r_lcode->alloc_capable)
  905. return -EINVAL;
  906. ret = set_cache_qos_cfg(level, true);
  907. if (!ret) {
  908. r_l->alloc_enabled = false;
  909. r_ldata->alloc_enabled = true;
  910. r_lcode->alloc_enabled = true;
  911. }
  912. return ret;
  913. }
  914. static int cdpl3_enable(void)
  915. {
  916. return cdp_enable(RDT_RESOURCE_L3, RDT_RESOURCE_L3DATA,
  917. RDT_RESOURCE_L3CODE);
  918. }
  919. static int cdpl2_enable(void)
  920. {
  921. return cdp_enable(RDT_RESOURCE_L2, RDT_RESOURCE_L2DATA,
  922. RDT_RESOURCE_L2CODE);
  923. }
  924. static void cdp_disable(int level, int data_type, int code_type)
  925. {
  926. struct rdt_resource *r = &rdt_resources_all[level];
  927. r->alloc_enabled = r->alloc_capable;
  928. if (rdt_resources_all[data_type].alloc_enabled) {
  929. rdt_resources_all[data_type].alloc_enabled = false;
  930. rdt_resources_all[code_type].alloc_enabled = false;
  931. set_cache_qos_cfg(level, false);
  932. }
  933. }
  934. static void cdpl3_disable(void)
  935. {
  936. cdp_disable(RDT_RESOURCE_L3, RDT_RESOURCE_L3DATA, RDT_RESOURCE_L3CODE);
  937. }
  938. static void cdpl2_disable(void)
  939. {
  940. cdp_disable(RDT_RESOURCE_L2, RDT_RESOURCE_L2DATA, RDT_RESOURCE_L2CODE);
  941. }
  942. static void cdp_disable_all(void)
  943. {
  944. if (rdt_resources_all[RDT_RESOURCE_L3DATA].alloc_enabled)
  945. cdpl3_disable();
  946. if (rdt_resources_all[RDT_RESOURCE_L2DATA].alloc_enabled)
  947. cdpl2_disable();
  948. }
  949. static int parse_rdtgroupfs_options(char *data)
  950. {
  951. char *token, *o = data;
  952. int ret = 0;
  953. while ((token = strsep(&o, ",")) != NULL) {
  954. if (!*token) {
  955. ret = -EINVAL;
  956. goto out;
  957. }
  958. if (!strcmp(token, "cdp")) {
  959. ret = cdpl3_enable();
  960. if (ret)
  961. goto out;
  962. } else if (!strcmp(token, "cdpl2")) {
  963. ret = cdpl2_enable();
  964. if (ret)
  965. goto out;
  966. } else if (!strcmp(token, "mba_MBps")) {
  967. ret = set_mba_sc(true);
  968. if (ret)
  969. goto out;
  970. } else {
  971. ret = -EINVAL;
  972. goto out;
  973. }
  974. }
  975. return 0;
  976. out:
  977. pr_err("Invalid mount option \"%s\"\n", token);
  978. return ret;
  979. }
  980. /*
  981. * We don't allow rdtgroup directories to be created anywhere
  982. * except the root directory. Thus when looking for the rdtgroup
  983. * structure for a kernfs node we are either looking at a directory,
  984. * in which case the rdtgroup structure is pointed at by the "priv"
  985. * field, otherwise we have a file, and need only look to the parent
  986. * to find the rdtgroup.
  987. */
  988. static struct rdtgroup *kernfs_to_rdtgroup(struct kernfs_node *kn)
  989. {
  990. if (kernfs_type(kn) == KERNFS_DIR) {
  991. /*
  992. * All the resource directories use "kn->priv"
  993. * to point to the "struct rdtgroup" for the
  994. * resource. "info" and its subdirectories don't
  995. * have rdtgroup structures, so return NULL here.
  996. */
  997. if (kn == kn_info || kn->parent == kn_info)
  998. return NULL;
  999. else
  1000. return kn->priv;
  1001. } else {
  1002. return kn->parent->priv;
  1003. }
  1004. }
  1005. struct rdtgroup *rdtgroup_kn_lock_live(struct kernfs_node *kn)
  1006. {
  1007. struct rdtgroup *rdtgrp = kernfs_to_rdtgroup(kn);
  1008. if (!rdtgrp)
  1009. return NULL;
  1010. atomic_inc(&rdtgrp->waitcount);
  1011. kernfs_break_active_protection(kn);
  1012. mutex_lock(&rdtgroup_mutex);
  1013. /* Was this group deleted while we waited? */
  1014. if (rdtgrp->flags & RDT_DELETED)
  1015. return NULL;
  1016. return rdtgrp;
  1017. }
  1018. void rdtgroup_kn_unlock(struct kernfs_node *kn)
  1019. {
  1020. struct rdtgroup *rdtgrp = kernfs_to_rdtgroup(kn);
  1021. if (!rdtgrp)
  1022. return;
  1023. mutex_unlock(&rdtgroup_mutex);
  1024. if (atomic_dec_and_test(&rdtgrp->waitcount) &&
  1025. (rdtgrp->flags & RDT_DELETED)) {
  1026. kernfs_unbreak_active_protection(kn);
  1027. kernfs_put(rdtgrp->kn);
  1028. kfree(rdtgrp);
  1029. } else {
  1030. kernfs_unbreak_active_protection(kn);
  1031. }
  1032. }
  1033. static int mkdir_mondata_all(struct kernfs_node *parent_kn,
  1034. struct rdtgroup *prgrp,
  1035. struct kernfs_node **mon_data_kn);
  1036. static struct dentry *rdt_mount(struct file_system_type *fs_type,
  1037. int flags, const char *unused_dev_name,
  1038. void *data)
  1039. {
  1040. struct rdt_domain *dom;
  1041. struct rdt_resource *r;
  1042. struct dentry *dentry;
  1043. int ret;
  1044. cpus_read_lock();
  1045. mutex_lock(&rdtgroup_mutex);
  1046. /*
  1047. * resctrl file system can only be mounted once.
  1048. */
  1049. if (static_branch_unlikely(&rdt_enable_key)) {
  1050. dentry = ERR_PTR(-EBUSY);
  1051. goto out;
  1052. }
  1053. ret = parse_rdtgroupfs_options(data);
  1054. if (ret) {
  1055. dentry = ERR_PTR(ret);
  1056. goto out_cdp;
  1057. }
  1058. closid_init();
  1059. ret = rdtgroup_create_info_dir(rdtgroup_default.kn);
  1060. if (ret) {
  1061. dentry = ERR_PTR(ret);
  1062. goto out_cdp;
  1063. }
  1064. if (rdt_mon_capable) {
  1065. ret = mongroup_create_dir(rdtgroup_default.kn,
  1066. NULL, "mon_groups",
  1067. &kn_mongrp);
  1068. if (ret) {
  1069. dentry = ERR_PTR(ret);
  1070. goto out_info;
  1071. }
  1072. kernfs_get(kn_mongrp);
  1073. ret = mkdir_mondata_all(rdtgroup_default.kn,
  1074. &rdtgroup_default, &kn_mondata);
  1075. if (ret) {
  1076. dentry = ERR_PTR(ret);
  1077. goto out_mongrp;
  1078. }
  1079. kernfs_get(kn_mondata);
  1080. rdtgroup_default.mon.mon_data_kn = kn_mondata;
  1081. }
  1082. dentry = kernfs_mount(fs_type, flags, rdt_root,
  1083. RDTGROUP_SUPER_MAGIC, NULL);
  1084. if (IS_ERR(dentry))
  1085. goto out_mondata;
  1086. if (rdt_alloc_capable)
  1087. static_branch_enable_cpuslocked(&rdt_alloc_enable_key);
  1088. if (rdt_mon_capable)
  1089. static_branch_enable_cpuslocked(&rdt_mon_enable_key);
  1090. if (rdt_alloc_capable || rdt_mon_capable)
  1091. static_branch_enable_cpuslocked(&rdt_enable_key);
  1092. if (is_mbm_enabled()) {
  1093. r = &rdt_resources_all[RDT_RESOURCE_L3];
  1094. list_for_each_entry(dom, &r->domains, list)
  1095. mbm_setup_overflow_handler(dom, MBM_OVERFLOW_INTERVAL);
  1096. }
  1097. goto out;
  1098. out_mondata:
  1099. if (rdt_mon_capable)
  1100. kernfs_remove(kn_mondata);
  1101. out_mongrp:
  1102. if (rdt_mon_capable)
  1103. kernfs_remove(kn_mongrp);
  1104. out_info:
  1105. kernfs_remove(kn_info);
  1106. out_cdp:
  1107. cdp_disable_all();
  1108. out:
  1109. rdt_last_cmd_clear();
  1110. mutex_unlock(&rdtgroup_mutex);
  1111. cpus_read_unlock();
  1112. return dentry;
  1113. }
  1114. static int reset_all_ctrls(struct rdt_resource *r)
  1115. {
  1116. struct msr_param msr_param;
  1117. cpumask_var_t cpu_mask;
  1118. struct rdt_domain *d;
  1119. int i, cpu;
  1120. if (!zalloc_cpumask_var(&cpu_mask, GFP_KERNEL))
  1121. return -ENOMEM;
  1122. msr_param.res = r;
  1123. msr_param.low = 0;
  1124. msr_param.high = r->num_closid;
  1125. /*
  1126. * Disable resource control for this resource by setting all
  1127. * CBMs in all domains to the maximum mask value. Pick one CPU
  1128. * from each domain to update the MSRs below.
  1129. */
  1130. list_for_each_entry(d, &r->domains, list) {
  1131. cpumask_set_cpu(cpumask_any(&d->cpu_mask), cpu_mask);
  1132. for (i = 0; i < r->num_closid; i++)
  1133. d->ctrl_val[i] = r->default_ctrl;
  1134. }
  1135. cpu = get_cpu();
  1136. /* Update CBM on this cpu if it's in cpu_mask. */
  1137. if (cpumask_test_cpu(cpu, cpu_mask))
  1138. rdt_ctrl_update(&msr_param);
  1139. /* Update CBM on all other cpus in cpu_mask. */
  1140. smp_call_function_many(cpu_mask, rdt_ctrl_update, &msr_param, 1);
  1141. put_cpu();
  1142. free_cpumask_var(cpu_mask);
  1143. return 0;
  1144. }
  1145. static bool is_closid_match(struct task_struct *t, struct rdtgroup *r)
  1146. {
  1147. return (rdt_alloc_capable &&
  1148. (r->type == RDTCTRL_GROUP) && (t->closid == r->closid));
  1149. }
  1150. static bool is_rmid_match(struct task_struct *t, struct rdtgroup *r)
  1151. {
  1152. return (rdt_mon_capable &&
  1153. (r->type == RDTMON_GROUP) && (t->rmid == r->mon.rmid));
  1154. }
  1155. /*
  1156. * Move tasks from one to the other group. If @from is NULL, then all tasks
  1157. * in the systems are moved unconditionally (used for teardown).
  1158. *
  1159. * If @mask is not NULL the cpus on which moved tasks are running are set
  1160. * in that mask so the update smp function call is restricted to affected
  1161. * cpus.
  1162. */
  1163. static void rdt_move_group_tasks(struct rdtgroup *from, struct rdtgroup *to,
  1164. struct cpumask *mask)
  1165. {
  1166. struct task_struct *p, *t;
  1167. read_lock(&tasklist_lock);
  1168. for_each_process_thread(p, t) {
  1169. if (!from || is_closid_match(t, from) ||
  1170. is_rmid_match(t, from)) {
  1171. t->closid = to->closid;
  1172. t->rmid = to->mon.rmid;
  1173. #ifdef CONFIG_SMP
  1174. /*
  1175. * This is safe on x86 w/o barriers as the ordering
  1176. * of writing to task_cpu() and t->on_cpu is
  1177. * reverse to the reading here. The detection is
  1178. * inaccurate as tasks might move or schedule
  1179. * before the smp function call takes place. In
  1180. * such a case the function call is pointless, but
  1181. * there is no other side effect.
  1182. */
  1183. if (mask && t->on_cpu)
  1184. cpumask_set_cpu(task_cpu(t), mask);
  1185. #endif
  1186. }
  1187. }
  1188. read_unlock(&tasklist_lock);
  1189. }
  1190. static void free_all_child_rdtgrp(struct rdtgroup *rdtgrp)
  1191. {
  1192. struct rdtgroup *sentry, *stmp;
  1193. struct list_head *head;
  1194. head = &rdtgrp->mon.crdtgrp_list;
  1195. list_for_each_entry_safe(sentry, stmp, head, mon.crdtgrp_list) {
  1196. free_rmid(sentry->mon.rmid);
  1197. list_del(&sentry->mon.crdtgrp_list);
  1198. kfree(sentry);
  1199. }
  1200. }
  1201. /*
  1202. * Forcibly remove all of subdirectories under root.
  1203. */
  1204. static void rmdir_all_sub(void)
  1205. {
  1206. struct rdtgroup *rdtgrp, *tmp;
  1207. /* Move all tasks to the default resource group */
  1208. rdt_move_group_tasks(NULL, &rdtgroup_default, NULL);
  1209. list_for_each_entry_safe(rdtgrp, tmp, &rdt_all_groups, rdtgroup_list) {
  1210. /* Free any child rmids */
  1211. free_all_child_rdtgrp(rdtgrp);
  1212. /* Remove each rdtgroup other than root */
  1213. if (rdtgrp == &rdtgroup_default)
  1214. continue;
  1215. /*
  1216. * Give any CPUs back to the default group. We cannot copy
  1217. * cpu_online_mask because a CPU might have executed the
  1218. * offline callback already, but is still marked online.
  1219. */
  1220. cpumask_or(&rdtgroup_default.cpu_mask,
  1221. &rdtgroup_default.cpu_mask, &rdtgrp->cpu_mask);
  1222. free_rmid(rdtgrp->mon.rmid);
  1223. kernfs_remove(rdtgrp->kn);
  1224. list_del(&rdtgrp->rdtgroup_list);
  1225. kfree(rdtgrp);
  1226. }
  1227. /* Notify online CPUs to update per cpu storage and PQR_ASSOC MSR */
  1228. update_closid_rmid(cpu_online_mask, &rdtgroup_default);
  1229. kernfs_remove(kn_info);
  1230. kernfs_remove(kn_mongrp);
  1231. kernfs_remove(kn_mondata);
  1232. }
  1233. static void rdt_kill_sb(struct super_block *sb)
  1234. {
  1235. struct rdt_resource *r;
  1236. cpus_read_lock();
  1237. mutex_lock(&rdtgroup_mutex);
  1238. set_mba_sc(false);
  1239. /*Put everything back to default values. */
  1240. for_each_alloc_enabled_rdt_resource(r)
  1241. reset_all_ctrls(r);
  1242. cdp_disable_all();
  1243. rmdir_all_sub();
  1244. static_branch_disable_cpuslocked(&rdt_alloc_enable_key);
  1245. static_branch_disable_cpuslocked(&rdt_mon_enable_key);
  1246. static_branch_disable_cpuslocked(&rdt_enable_key);
  1247. kernfs_kill_sb(sb);
  1248. mutex_unlock(&rdtgroup_mutex);
  1249. cpus_read_unlock();
  1250. }
  1251. static struct file_system_type rdt_fs_type = {
  1252. .name = "resctrl",
  1253. .mount = rdt_mount,
  1254. .kill_sb = rdt_kill_sb,
  1255. };
  1256. static int mon_addfile(struct kernfs_node *parent_kn, const char *name,
  1257. void *priv)
  1258. {
  1259. struct kernfs_node *kn;
  1260. int ret = 0;
  1261. kn = __kernfs_create_file(parent_kn, name, 0444, 0,
  1262. &kf_mondata_ops, priv, NULL, NULL);
  1263. if (IS_ERR(kn))
  1264. return PTR_ERR(kn);
  1265. ret = rdtgroup_kn_set_ugid(kn);
  1266. if (ret) {
  1267. kernfs_remove(kn);
  1268. return ret;
  1269. }
  1270. return ret;
  1271. }
  1272. /*
  1273. * Remove all subdirectories of mon_data of ctrl_mon groups
  1274. * and monitor groups with given domain id.
  1275. */
  1276. void rmdir_mondata_subdir_allrdtgrp(struct rdt_resource *r, unsigned int dom_id)
  1277. {
  1278. struct rdtgroup *prgrp, *crgrp;
  1279. char name[32];
  1280. if (!r->mon_enabled)
  1281. return;
  1282. list_for_each_entry(prgrp, &rdt_all_groups, rdtgroup_list) {
  1283. sprintf(name, "mon_%s_%02d", r->name, dom_id);
  1284. kernfs_remove_by_name(prgrp->mon.mon_data_kn, name);
  1285. list_for_each_entry(crgrp, &prgrp->mon.crdtgrp_list, mon.crdtgrp_list)
  1286. kernfs_remove_by_name(crgrp->mon.mon_data_kn, name);
  1287. }
  1288. }
  1289. static int mkdir_mondata_subdir(struct kernfs_node *parent_kn,
  1290. struct rdt_domain *d,
  1291. struct rdt_resource *r, struct rdtgroup *prgrp)
  1292. {
  1293. union mon_data_bits priv;
  1294. struct kernfs_node *kn;
  1295. struct mon_evt *mevt;
  1296. struct rmid_read rr;
  1297. char name[32];
  1298. int ret;
  1299. sprintf(name, "mon_%s_%02d", r->name, d->id);
  1300. /* create the directory */
  1301. kn = kernfs_create_dir(parent_kn, name, parent_kn->mode, prgrp);
  1302. if (IS_ERR(kn))
  1303. return PTR_ERR(kn);
  1304. /*
  1305. * This extra ref will be put in kernfs_remove() and guarantees
  1306. * that kn is always accessible.
  1307. */
  1308. kernfs_get(kn);
  1309. ret = rdtgroup_kn_set_ugid(kn);
  1310. if (ret)
  1311. goto out_destroy;
  1312. if (WARN_ON(list_empty(&r->evt_list))) {
  1313. ret = -EPERM;
  1314. goto out_destroy;
  1315. }
  1316. priv.u.rid = r->rid;
  1317. priv.u.domid = d->id;
  1318. list_for_each_entry(mevt, &r->evt_list, list) {
  1319. priv.u.evtid = mevt->evtid;
  1320. ret = mon_addfile(kn, mevt->name, priv.priv);
  1321. if (ret)
  1322. goto out_destroy;
  1323. if (is_mbm_event(mevt->evtid))
  1324. mon_event_read(&rr, d, prgrp, mevt->evtid, true);
  1325. }
  1326. kernfs_activate(kn);
  1327. return 0;
  1328. out_destroy:
  1329. kernfs_remove(kn);
  1330. return ret;
  1331. }
  1332. /*
  1333. * Add all subdirectories of mon_data for "ctrl_mon" groups
  1334. * and "monitor" groups with given domain id.
  1335. */
  1336. void mkdir_mondata_subdir_allrdtgrp(struct rdt_resource *r,
  1337. struct rdt_domain *d)
  1338. {
  1339. struct kernfs_node *parent_kn;
  1340. struct rdtgroup *prgrp, *crgrp;
  1341. struct list_head *head;
  1342. if (!r->mon_enabled)
  1343. return;
  1344. list_for_each_entry(prgrp, &rdt_all_groups, rdtgroup_list) {
  1345. parent_kn = prgrp->mon.mon_data_kn;
  1346. mkdir_mondata_subdir(parent_kn, d, r, prgrp);
  1347. head = &prgrp->mon.crdtgrp_list;
  1348. list_for_each_entry(crgrp, head, mon.crdtgrp_list) {
  1349. parent_kn = crgrp->mon.mon_data_kn;
  1350. mkdir_mondata_subdir(parent_kn, d, r, crgrp);
  1351. }
  1352. }
  1353. }
  1354. static int mkdir_mondata_subdir_alldom(struct kernfs_node *parent_kn,
  1355. struct rdt_resource *r,
  1356. struct rdtgroup *prgrp)
  1357. {
  1358. struct rdt_domain *dom;
  1359. int ret;
  1360. list_for_each_entry(dom, &r->domains, list) {
  1361. ret = mkdir_mondata_subdir(parent_kn, dom, r, prgrp);
  1362. if (ret)
  1363. return ret;
  1364. }
  1365. return 0;
  1366. }
  1367. /*
  1368. * This creates a directory mon_data which contains the monitored data.
  1369. *
  1370. * mon_data has one directory for each domain whic are named
  1371. * in the format mon_<domain_name>_<domain_id>. For ex: A mon_data
  1372. * with L3 domain looks as below:
  1373. * ./mon_data:
  1374. * mon_L3_00
  1375. * mon_L3_01
  1376. * mon_L3_02
  1377. * ...
  1378. *
  1379. * Each domain directory has one file per event:
  1380. * ./mon_L3_00/:
  1381. * llc_occupancy
  1382. *
  1383. */
  1384. static int mkdir_mondata_all(struct kernfs_node *parent_kn,
  1385. struct rdtgroup *prgrp,
  1386. struct kernfs_node **dest_kn)
  1387. {
  1388. struct rdt_resource *r;
  1389. struct kernfs_node *kn;
  1390. int ret;
  1391. /*
  1392. * Create the mon_data directory first.
  1393. */
  1394. ret = mongroup_create_dir(parent_kn, NULL, "mon_data", &kn);
  1395. if (ret)
  1396. return ret;
  1397. if (dest_kn)
  1398. *dest_kn = kn;
  1399. /*
  1400. * Create the subdirectories for each domain. Note that all events
  1401. * in a domain like L3 are grouped into a resource whose domain is L3
  1402. */
  1403. for_each_mon_enabled_rdt_resource(r) {
  1404. ret = mkdir_mondata_subdir_alldom(kn, r, prgrp);
  1405. if (ret)
  1406. goto out_destroy;
  1407. }
  1408. return 0;
  1409. out_destroy:
  1410. kernfs_remove(kn);
  1411. return ret;
  1412. }
  1413. static int mkdir_rdt_prepare(struct kernfs_node *parent_kn,
  1414. struct kernfs_node *prgrp_kn,
  1415. const char *name, umode_t mode,
  1416. enum rdt_group_type rtype, struct rdtgroup **r)
  1417. {
  1418. struct rdtgroup *prdtgrp, *rdtgrp;
  1419. struct kernfs_node *kn;
  1420. uint files = 0;
  1421. int ret;
  1422. prdtgrp = rdtgroup_kn_lock_live(prgrp_kn);
  1423. rdt_last_cmd_clear();
  1424. if (!prdtgrp) {
  1425. ret = -ENODEV;
  1426. rdt_last_cmd_puts("directory was removed\n");
  1427. goto out_unlock;
  1428. }
  1429. /* allocate the rdtgroup. */
  1430. rdtgrp = kzalloc(sizeof(*rdtgrp), GFP_KERNEL);
  1431. if (!rdtgrp) {
  1432. ret = -ENOSPC;
  1433. rdt_last_cmd_puts("kernel out of memory\n");
  1434. goto out_unlock;
  1435. }
  1436. *r = rdtgrp;
  1437. rdtgrp->mon.parent = prdtgrp;
  1438. rdtgrp->type = rtype;
  1439. INIT_LIST_HEAD(&rdtgrp->mon.crdtgrp_list);
  1440. /* kernfs creates the directory for rdtgrp */
  1441. kn = kernfs_create_dir(parent_kn, name, mode, rdtgrp);
  1442. if (IS_ERR(kn)) {
  1443. ret = PTR_ERR(kn);
  1444. rdt_last_cmd_puts("kernfs create error\n");
  1445. goto out_free_rgrp;
  1446. }
  1447. rdtgrp->kn = kn;
  1448. /*
  1449. * kernfs_remove() will drop the reference count on "kn" which
  1450. * will free it. But we still need it to stick around for the
  1451. * rdtgroup_kn_unlock(kn} call below. Take one extra reference
  1452. * here, which will be dropped inside rdtgroup_kn_unlock().
  1453. */
  1454. kernfs_get(kn);
  1455. ret = rdtgroup_kn_set_ugid(kn);
  1456. if (ret) {
  1457. rdt_last_cmd_puts("kernfs perm error\n");
  1458. goto out_destroy;
  1459. }
  1460. files = RFTYPE_BASE | BIT(RF_CTRLSHIFT + rtype);
  1461. ret = rdtgroup_add_files(kn, files);
  1462. if (ret) {
  1463. rdt_last_cmd_puts("kernfs fill error\n");
  1464. goto out_destroy;
  1465. }
  1466. if (rdt_mon_capable) {
  1467. ret = alloc_rmid();
  1468. if (ret < 0) {
  1469. rdt_last_cmd_puts("out of RMIDs\n");
  1470. goto out_destroy;
  1471. }
  1472. rdtgrp->mon.rmid = ret;
  1473. ret = mkdir_mondata_all(kn, rdtgrp, &rdtgrp->mon.mon_data_kn);
  1474. if (ret) {
  1475. rdt_last_cmd_puts("kernfs subdir error\n");
  1476. goto out_idfree;
  1477. }
  1478. }
  1479. kernfs_activate(kn);
  1480. /*
  1481. * The caller unlocks the prgrp_kn upon success.
  1482. */
  1483. return 0;
  1484. out_idfree:
  1485. free_rmid(rdtgrp->mon.rmid);
  1486. out_destroy:
  1487. kernfs_remove(rdtgrp->kn);
  1488. out_free_rgrp:
  1489. kfree(rdtgrp);
  1490. out_unlock:
  1491. rdtgroup_kn_unlock(prgrp_kn);
  1492. return ret;
  1493. }
  1494. static void mkdir_rdt_prepare_clean(struct rdtgroup *rgrp)
  1495. {
  1496. kernfs_remove(rgrp->kn);
  1497. free_rmid(rgrp->mon.rmid);
  1498. kfree(rgrp);
  1499. }
  1500. /*
  1501. * Create a monitor group under "mon_groups" directory of a control
  1502. * and monitor group(ctrl_mon). This is a resource group
  1503. * to monitor a subset of tasks and cpus in its parent ctrl_mon group.
  1504. */
  1505. static int rdtgroup_mkdir_mon(struct kernfs_node *parent_kn,
  1506. struct kernfs_node *prgrp_kn,
  1507. const char *name,
  1508. umode_t mode)
  1509. {
  1510. struct rdtgroup *rdtgrp, *prgrp;
  1511. int ret;
  1512. ret = mkdir_rdt_prepare(parent_kn, prgrp_kn, name, mode, RDTMON_GROUP,
  1513. &rdtgrp);
  1514. if (ret)
  1515. return ret;
  1516. prgrp = rdtgrp->mon.parent;
  1517. rdtgrp->closid = prgrp->closid;
  1518. /*
  1519. * Add the rdtgrp to the list of rdtgrps the parent
  1520. * ctrl_mon group has to track.
  1521. */
  1522. list_add_tail(&rdtgrp->mon.crdtgrp_list, &prgrp->mon.crdtgrp_list);
  1523. rdtgroup_kn_unlock(prgrp_kn);
  1524. return ret;
  1525. }
  1526. /*
  1527. * These are rdtgroups created under the root directory. Can be used
  1528. * to allocate and monitor resources.
  1529. */
  1530. static int rdtgroup_mkdir_ctrl_mon(struct kernfs_node *parent_kn,
  1531. struct kernfs_node *prgrp_kn,
  1532. const char *name, umode_t mode)
  1533. {
  1534. struct rdtgroup *rdtgrp;
  1535. struct kernfs_node *kn;
  1536. u32 closid;
  1537. int ret;
  1538. ret = mkdir_rdt_prepare(parent_kn, prgrp_kn, name, mode, RDTCTRL_GROUP,
  1539. &rdtgrp);
  1540. if (ret)
  1541. return ret;
  1542. kn = rdtgrp->kn;
  1543. ret = closid_alloc();
  1544. if (ret < 0) {
  1545. rdt_last_cmd_puts("out of CLOSIDs\n");
  1546. goto out_common_fail;
  1547. }
  1548. closid = ret;
  1549. ret = 0;
  1550. rdtgrp->closid = closid;
  1551. list_add(&rdtgrp->rdtgroup_list, &rdt_all_groups);
  1552. if (rdt_mon_capable) {
  1553. /*
  1554. * Create an empty mon_groups directory to hold the subset
  1555. * of tasks and cpus to monitor.
  1556. */
  1557. ret = mongroup_create_dir(kn, NULL, "mon_groups", NULL);
  1558. if (ret) {
  1559. rdt_last_cmd_puts("kernfs subdir error\n");
  1560. goto out_id_free;
  1561. }
  1562. }
  1563. goto out_unlock;
  1564. out_id_free:
  1565. closid_free(closid);
  1566. list_del(&rdtgrp->rdtgroup_list);
  1567. out_common_fail:
  1568. mkdir_rdt_prepare_clean(rdtgrp);
  1569. out_unlock:
  1570. rdtgroup_kn_unlock(prgrp_kn);
  1571. return ret;
  1572. }
  1573. /*
  1574. * We allow creating mon groups only with in a directory called "mon_groups"
  1575. * which is present in every ctrl_mon group. Check if this is a valid
  1576. * "mon_groups" directory.
  1577. *
  1578. * 1. The directory should be named "mon_groups".
  1579. * 2. The mon group itself should "not" be named "mon_groups".
  1580. * This makes sure "mon_groups" directory always has a ctrl_mon group
  1581. * as parent.
  1582. */
  1583. static bool is_mon_groups(struct kernfs_node *kn, const char *name)
  1584. {
  1585. return (!strcmp(kn->name, "mon_groups") &&
  1586. strcmp(name, "mon_groups"));
  1587. }
  1588. static int rdtgroup_mkdir(struct kernfs_node *parent_kn, const char *name,
  1589. umode_t mode)
  1590. {
  1591. /* Do not accept '\n' to avoid unparsable situation. */
  1592. if (strchr(name, '\n'))
  1593. return -EINVAL;
  1594. /*
  1595. * If the parent directory is the root directory and RDT
  1596. * allocation is supported, add a control and monitoring
  1597. * subdirectory
  1598. */
  1599. if (rdt_alloc_capable && parent_kn == rdtgroup_default.kn)
  1600. return rdtgroup_mkdir_ctrl_mon(parent_kn, parent_kn, name, mode);
  1601. /*
  1602. * If RDT monitoring is supported and the parent directory is a valid
  1603. * "mon_groups" directory, add a monitoring subdirectory.
  1604. */
  1605. if (rdt_mon_capable && is_mon_groups(parent_kn, name))
  1606. return rdtgroup_mkdir_mon(parent_kn, parent_kn->parent, name, mode);
  1607. return -EPERM;
  1608. }
  1609. static int rdtgroup_rmdir_mon(struct kernfs_node *kn, struct rdtgroup *rdtgrp,
  1610. cpumask_var_t tmpmask)
  1611. {
  1612. struct rdtgroup *prdtgrp = rdtgrp->mon.parent;
  1613. int cpu;
  1614. /* Give any tasks back to the parent group */
  1615. rdt_move_group_tasks(rdtgrp, prdtgrp, tmpmask);
  1616. /* Update per cpu rmid of the moved CPUs first */
  1617. for_each_cpu(cpu, &rdtgrp->cpu_mask)
  1618. per_cpu(pqr_state.default_rmid, cpu) = prdtgrp->mon.rmid;
  1619. /*
  1620. * Update the MSR on moved CPUs and CPUs which have moved
  1621. * task running on them.
  1622. */
  1623. cpumask_or(tmpmask, tmpmask, &rdtgrp->cpu_mask);
  1624. update_closid_rmid(tmpmask, NULL);
  1625. rdtgrp->flags = RDT_DELETED;
  1626. free_rmid(rdtgrp->mon.rmid);
  1627. /*
  1628. * Remove the rdtgrp from the parent ctrl_mon group's list
  1629. */
  1630. WARN_ON(list_empty(&prdtgrp->mon.crdtgrp_list));
  1631. list_del(&rdtgrp->mon.crdtgrp_list);
  1632. /*
  1633. * one extra hold on this, will drop when we kfree(rdtgrp)
  1634. * in rdtgroup_kn_unlock()
  1635. */
  1636. kernfs_get(kn);
  1637. kernfs_remove(rdtgrp->kn);
  1638. return 0;
  1639. }
  1640. static int rdtgroup_rmdir_ctrl(struct kernfs_node *kn, struct rdtgroup *rdtgrp,
  1641. cpumask_var_t tmpmask)
  1642. {
  1643. int cpu;
  1644. /* Give any tasks back to the default group */
  1645. rdt_move_group_tasks(rdtgrp, &rdtgroup_default, tmpmask);
  1646. /* Give any CPUs back to the default group */
  1647. cpumask_or(&rdtgroup_default.cpu_mask,
  1648. &rdtgroup_default.cpu_mask, &rdtgrp->cpu_mask);
  1649. /* Update per cpu closid and rmid of the moved CPUs first */
  1650. for_each_cpu(cpu, &rdtgrp->cpu_mask) {
  1651. per_cpu(pqr_state.default_closid, cpu) = rdtgroup_default.closid;
  1652. per_cpu(pqr_state.default_rmid, cpu) = rdtgroup_default.mon.rmid;
  1653. }
  1654. /*
  1655. * Update the MSR on moved CPUs and CPUs which have moved
  1656. * task running on them.
  1657. */
  1658. cpumask_or(tmpmask, tmpmask, &rdtgrp->cpu_mask);
  1659. update_closid_rmid(tmpmask, NULL);
  1660. rdtgrp->flags = RDT_DELETED;
  1661. closid_free(rdtgrp->closid);
  1662. free_rmid(rdtgrp->mon.rmid);
  1663. /*
  1664. * Free all the child monitor group rmids.
  1665. */
  1666. free_all_child_rdtgrp(rdtgrp);
  1667. list_del(&rdtgrp->rdtgroup_list);
  1668. /*
  1669. * one extra hold on this, will drop when we kfree(rdtgrp)
  1670. * in rdtgroup_kn_unlock()
  1671. */
  1672. kernfs_get(kn);
  1673. kernfs_remove(rdtgrp->kn);
  1674. return 0;
  1675. }
  1676. static int rdtgroup_rmdir(struct kernfs_node *kn)
  1677. {
  1678. struct kernfs_node *parent_kn = kn->parent;
  1679. struct rdtgroup *rdtgrp;
  1680. cpumask_var_t tmpmask;
  1681. int ret = 0;
  1682. if (!zalloc_cpumask_var(&tmpmask, GFP_KERNEL))
  1683. return -ENOMEM;
  1684. rdtgrp = rdtgroup_kn_lock_live(kn);
  1685. if (!rdtgrp) {
  1686. ret = -EPERM;
  1687. goto out;
  1688. }
  1689. /*
  1690. * If the rdtgroup is a ctrl_mon group and parent directory
  1691. * is the root directory, remove the ctrl_mon group.
  1692. *
  1693. * If the rdtgroup is a mon group and parent directory
  1694. * is a valid "mon_groups" directory, remove the mon group.
  1695. */
  1696. if (rdtgrp->type == RDTCTRL_GROUP && parent_kn == rdtgroup_default.kn)
  1697. ret = rdtgroup_rmdir_ctrl(kn, rdtgrp, tmpmask);
  1698. else if (rdtgrp->type == RDTMON_GROUP &&
  1699. is_mon_groups(parent_kn, kn->name))
  1700. ret = rdtgroup_rmdir_mon(kn, rdtgrp, tmpmask);
  1701. else
  1702. ret = -EPERM;
  1703. out:
  1704. rdtgroup_kn_unlock(kn);
  1705. free_cpumask_var(tmpmask);
  1706. return ret;
  1707. }
  1708. static int rdtgroup_show_options(struct seq_file *seq, struct kernfs_root *kf)
  1709. {
  1710. if (rdt_resources_all[RDT_RESOURCE_L3DATA].alloc_enabled)
  1711. seq_puts(seq, ",cdp");
  1712. return 0;
  1713. }
  1714. static struct kernfs_syscall_ops rdtgroup_kf_syscall_ops = {
  1715. .mkdir = rdtgroup_mkdir,
  1716. .rmdir = rdtgroup_rmdir,
  1717. .show_options = rdtgroup_show_options,
  1718. };
  1719. static int __init rdtgroup_setup_root(void)
  1720. {
  1721. int ret;
  1722. rdt_root = kernfs_create_root(&rdtgroup_kf_syscall_ops,
  1723. KERNFS_ROOT_CREATE_DEACTIVATED,
  1724. &rdtgroup_default);
  1725. if (IS_ERR(rdt_root))
  1726. return PTR_ERR(rdt_root);
  1727. mutex_lock(&rdtgroup_mutex);
  1728. rdtgroup_default.closid = 0;
  1729. rdtgroup_default.mon.rmid = 0;
  1730. rdtgroup_default.type = RDTCTRL_GROUP;
  1731. INIT_LIST_HEAD(&rdtgroup_default.mon.crdtgrp_list);
  1732. list_add(&rdtgroup_default.rdtgroup_list, &rdt_all_groups);
  1733. ret = rdtgroup_add_files(rdt_root->kn, RF_CTRL_BASE);
  1734. if (ret) {
  1735. kernfs_destroy_root(rdt_root);
  1736. goto out;
  1737. }
  1738. rdtgroup_default.kn = rdt_root->kn;
  1739. kernfs_activate(rdtgroup_default.kn);
  1740. out:
  1741. mutex_unlock(&rdtgroup_mutex);
  1742. return ret;
  1743. }
  1744. /*
  1745. * rdtgroup_init - rdtgroup initialization
  1746. *
  1747. * Setup resctrl file system including set up root, create mount point,
  1748. * register rdtgroup filesystem, and initialize files under root directory.
  1749. *
  1750. * Return: 0 on success or -errno
  1751. */
  1752. int __init rdtgroup_init(void)
  1753. {
  1754. int ret = 0;
  1755. seq_buf_init(&last_cmd_status, last_cmd_status_buf,
  1756. sizeof(last_cmd_status_buf));
  1757. ret = rdtgroup_setup_root();
  1758. if (ret)
  1759. return ret;
  1760. ret = sysfs_create_mount_point(fs_kobj, "resctrl");
  1761. if (ret)
  1762. goto cleanup_root;
  1763. ret = register_filesystem(&rdt_fs_type);
  1764. if (ret)
  1765. goto cleanup_mountpoint;
  1766. return 0;
  1767. cleanup_mountpoint:
  1768. sysfs_remove_mount_point(fs_kobj, "resctrl");
  1769. cleanup_root:
  1770. kernfs_destroy_root(rdt_root);
  1771. return ret;
  1772. }