1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3 * User interface for Resource Allocation in Resource Director Technology(RDT)
4 *
5 * Copyright (C) 2016 Intel Corporation
6 *
7 * Author: Fenghua Yu <fenghua.yu@intel.com>
8 *
9 * More information about RDT be found in the Intel (R) x86 Architecture
10 * Software Developer Manual.
11 */
12
13 #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
14
15 #include <linux/cpu.h>
16 #include <linux/debugfs.h>
17 #include <linux/fs.h>
18 #include <linux/fs_parser.h>
19 #include <linux/sysfs.h>
20 #include <linux/kernfs.h>
21 #include <linux/once.h>
22 #include <linux/resctrl.h>
23 #include <linux/seq_buf.h>
24 #include <linux/seq_file.h>
25 #include <linux/sched/task.h>
26 #include <linux/slab.h>
27 #include <linux/user_namespace.h>
28
29 #include <uapi/linux/magic.h>
30
31 #include "internal.h"
32
33 /* Mutex to protect rdtgroup access. */
34 DEFINE_MUTEX(rdtgroup_mutex);
35
36 static struct kernfs_root *rdt_root;
37
38 struct rdtgroup rdtgroup_default;
39
40 LIST_HEAD(rdt_all_groups);
41
42 /* list of entries for the schemata file */
43 LIST_HEAD(resctrl_schema_all);
44
45 /*
46 * List of struct mon_data containing private data of event files for use by
47 * rdtgroup_mondata_show(). Protected by rdtgroup_mutex.
48 */
49 static LIST_HEAD(mon_data_kn_priv_list);
50
51 /* The filesystem can only be mounted once. */
52 bool resctrl_mounted;
53
54 /* Kernel fs node for "info" directory under root */
55 static struct kernfs_node *kn_info;
56
57 /* Kernel fs node for "mon_groups" directory under root */
58 static struct kernfs_node *kn_mongrp;
59
60 /* Kernel fs node for "mon_data" directory under root */
61 static struct kernfs_node *kn_mondata;
62
63 /*
64 * Used to store the max resource name width to display the schemata names in
65 * a tabular format.
66 */
67 int max_name_width;
68
69 static struct seq_buf last_cmd_status;
70
71 static char last_cmd_status_buf[512];
72
73 static int rdtgroup_setup_root(struct rdt_fs_context *ctx);
74
75 static void rdtgroup_destroy_root(void);
76
77 struct dentry *debugfs_resctrl;
78
79 /*
80 * Memory bandwidth monitoring event to use for the default CTRL_MON group
81 * and each new CTRL_MON group created by the user. Only relevant when
82 * the filesystem is mounted with the "mba_MBps" option so it does not
83 * matter that it remains uninitialized on systems that do not support
84 * the "mba_MBps" option.
85 */
86 enum resctrl_event_id mba_mbps_default_event;
87
88 static bool resctrl_debug;
89
rdt_last_cmd_clear(void)90 void rdt_last_cmd_clear(void)
91 {
92 lockdep_assert_held(&rdtgroup_mutex);
93 seq_buf_clear(&last_cmd_status);
94 }
95
rdt_last_cmd_puts(const char * s)96 void rdt_last_cmd_puts(const char *s)
97 {
98 lockdep_assert_held(&rdtgroup_mutex);
99 seq_buf_puts(&last_cmd_status, s);
100 }
101
rdt_last_cmd_printf(const char * fmt,...)102 void rdt_last_cmd_printf(const char *fmt, ...)
103 {
104 va_list ap;
105
106 va_start(ap, fmt);
107 lockdep_assert_held(&rdtgroup_mutex);
108 seq_buf_vprintf(&last_cmd_status, fmt, ap);
109 va_end(ap);
110 }
111
rdt_staged_configs_clear(void)112 void rdt_staged_configs_clear(void)
113 {
114 struct rdt_ctrl_domain *dom;
115 struct rdt_resource *r;
116
117 lockdep_assert_held(&rdtgroup_mutex);
118
119 for_each_alloc_capable_rdt_resource(r) {
120 list_for_each_entry_rcu(dom, &r->ctrl_domains, hdr.list, lockdep_is_cpus_held())
121 memset(dom->staged_config, 0, sizeof(dom->staged_config));
122 }
123 }
124
resctrl_is_mbm_enabled(void)125 static bool resctrl_is_mbm_enabled(void)
126 {
127 return (resctrl_is_mon_event_enabled(QOS_L3_MBM_TOTAL_EVENT_ID) ||
128 resctrl_is_mon_event_enabled(QOS_L3_MBM_LOCAL_EVENT_ID));
129 }
130
131 /*
132 * Trivial allocator for CLOSIDs. Use BITMAP APIs to manipulate a bitmap
133 * of free CLOSIDs.
134 *
135 * Using a global CLOSID across all resources has some advantages and
136 * some drawbacks:
137 * + We can simply set current's closid to assign a task to a resource
138 * group.
139 * + Context switch code can avoid extra memory references deciding which
140 * CLOSID to load into the PQR_ASSOC MSR
141 * - We give up some options in configuring resource groups across multi-socket
142 * systems.
143 * - Our choices on how to configure each resource become progressively more
144 * limited as the number of resources grows.
145 */
146 static unsigned long *closid_free_map;
147
148 static int closid_free_map_len;
149
closids_supported(void)150 int closids_supported(void)
151 {
152 return closid_free_map_len;
153 }
154
closid_init(void)155 static int closid_init(void)
156 {
157 struct resctrl_schema *s;
158 u32 rdt_min_closid = ~0;
159
160 /* Monitor only platforms still call closid_init() */
161 if (list_empty(&resctrl_schema_all))
162 return 0;
163
164 /* Compute rdt_min_closid across all resources */
165 list_for_each_entry(s, &resctrl_schema_all, list)
166 rdt_min_closid = min(rdt_min_closid, s->num_closid);
167
168 closid_free_map = bitmap_alloc(rdt_min_closid, GFP_KERNEL);
169 if (!closid_free_map)
170 return -ENOMEM;
171 bitmap_fill(closid_free_map, rdt_min_closid);
172
173 /* RESCTRL_RESERVED_CLOSID is always reserved for the default group */
174 __clear_bit(RESCTRL_RESERVED_CLOSID, closid_free_map);
175 closid_free_map_len = rdt_min_closid;
176
177 return 0;
178 }
179
closid_exit(void)180 static void closid_exit(void)
181 {
182 bitmap_free(closid_free_map);
183 closid_free_map = NULL;
184 }
185
closid_alloc(void)186 static int closid_alloc(void)
187 {
188 int cleanest_closid;
189 u32 closid;
190
191 lockdep_assert_held(&rdtgroup_mutex);
192
193 if (IS_ENABLED(CONFIG_RESCTRL_RMID_DEPENDS_ON_CLOSID) &&
194 resctrl_is_mon_event_enabled(QOS_L3_OCCUP_EVENT_ID)) {
195 cleanest_closid = resctrl_find_cleanest_closid();
196 if (cleanest_closid < 0)
197 return cleanest_closid;
198 closid = cleanest_closid;
199 } else {
200 closid = find_first_bit(closid_free_map, closid_free_map_len);
201 if (closid == closid_free_map_len)
202 return -ENOSPC;
203 }
204 __clear_bit(closid, closid_free_map);
205
206 return closid;
207 }
208
closid_free(int closid)209 void closid_free(int closid)
210 {
211 lockdep_assert_held(&rdtgroup_mutex);
212
213 __set_bit(closid, closid_free_map);
214 }
215
216 /**
217 * closid_allocated - test if provided closid is in use
218 * @closid: closid to be tested
219 *
220 * Return: true if @closid is currently associated with a resource group,
221 * false if @closid is free
222 */
closid_allocated(unsigned int closid)223 bool closid_allocated(unsigned int closid)
224 {
225 lockdep_assert_held(&rdtgroup_mutex);
226
227 return !test_bit(closid, closid_free_map);
228 }
229
closid_alloc_fixed(u32 closid)230 bool closid_alloc_fixed(u32 closid)
231 {
232 return __test_and_clear_bit(closid, closid_free_map);
233 }
234
235 /**
236 * rdtgroup_mode_by_closid - Return mode of resource group with closid
237 * @closid: closid if the resource group
238 *
239 * Each resource group is associated with a @closid. Here the mode
240 * of a resource group can be queried by searching for it using its closid.
241 *
242 * Return: mode as &enum rdtgrp_mode of resource group with closid @closid
243 */
rdtgroup_mode_by_closid(int closid)244 enum rdtgrp_mode rdtgroup_mode_by_closid(int closid)
245 {
246 struct rdtgroup *rdtgrp;
247
248 list_for_each_entry(rdtgrp, &rdt_all_groups, rdtgroup_list) {
249 if (rdtgrp->closid == closid)
250 return rdtgrp->mode;
251 }
252
253 return RDT_NUM_MODES;
254 }
255
256 static const char * const rdt_mode_str[] = {
257 [RDT_MODE_SHAREABLE] = "shareable",
258 [RDT_MODE_EXCLUSIVE] = "exclusive",
259 [RDT_MODE_PSEUDO_LOCKSETUP] = "pseudo-locksetup",
260 [RDT_MODE_PSEUDO_LOCKED] = "pseudo-locked",
261 };
262
263 /**
264 * rdtgroup_mode_str - Return the string representation of mode
265 * @mode: the resource group mode as &enum rdtgroup_mode
266 *
267 * Return: string representation of valid mode, "unknown" otherwise
268 */
rdtgroup_mode_str(enum rdtgrp_mode mode)269 static const char *rdtgroup_mode_str(enum rdtgrp_mode mode)
270 {
271 if (mode < RDT_MODE_SHAREABLE || mode >= RDT_NUM_MODES)
272 return "unknown";
273
274 return rdt_mode_str[mode];
275 }
276
277 /* set uid and gid of rdtgroup dirs and files to that of the creator */
rdtgroup_kn_set_ugid(struct kernfs_node * kn)278 static int rdtgroup_kn_set_ugid(struct kernfs_node *kn)
279 {
280 struct iattr iattr = { .ia_valid = ATTR_UID | ATTR_GID,
281 .ia_uid = current_fsuid(),
282 .ia_gid = current_fsgid(), };
283
284 if (uid_eq(iattr.ia_uid, GLOBAL_ROOT_UID) &&
285 gid_eq(iattr.ia_gid, GLOBAL_ROOT_GID))
286 return 0;
287
288 return kernfs_setattr(kn, &iattr);
289 }
290
rdtgroup_add_file(struct kernfs_node * parent_kn,struct rftype * rft)291 static int rdtgroup_add_file(struct kernfs_node *parent_kn, struct rftype *rft)
292 {
293 struct kernfs_node *kn;
294 int ret;
295
296 kn = __kernfs_create_file(parent_kn, rft->name, rft->mode,
297 GLOBAL_ROOT_UID, GLOBAL_ROOT_GID,
298 0, rft->kf_ops, rft, NULL, NULL);
299 if (IS_ERR(kn))
300 return PTR_ERR(kn);
301
302 ret = rdtgroup_kn_set_ugid(kn);
303 if (ret) {
304 kernfs_remove(kn);
305 return ret;
306 }
307
308 return 0;
309 }
310
rdtgroup_seqfile_show(struct seq_file * m,void * arg)311 static int rdtgroup_seqfile_show(struct seq_file *m, void *arg)
312 {
313 struct kernfs_open_file *of = m->private;
314 struct rftype *rft = of->kn->priv;
315
316 if (rft->seq_show)
317 return rft->seq_show(of, m, arg);
318 return 0;
319 }
320
rdtgroup_file_write(struct kernfs_open_file * of,char * buf,size_t nbytes,loff_t off)321 static ssize_t rdtgroup_file_write(struct kernfs_open_file *of, char *buf,
322 size_t nbytes, loff_t off)
323 {
324 struct rftype *rft = of->kn->priv;
325
326 if (rft->write)
327 return rft->write(of, buf, nbytes, off);
328
329 return -EINVAL;
330 }
331
332 static const struct kernfs_ops rdtgroup_kf_single_ops = {
333 .atomic_write_len = PAGE_SIZE,
334 .write = rdtgroup_file_write,
335 .seq_show = rdtgroup_seqfile_show,
336 };
337
338 static const struct kernfs_ops kf_mondata_ops = {
339 .atomic_write_len = PAGE_SIZE,
340 .seq_show = rdtgroup_mondata_show,
341 };
342
is_cpu_list(struct kernfs_open_file * of)343 static bool is_cpu_list(struct kernfs_open_file *of)
344 {
345 struct rftype *rft = of->kn->priv;
346
347 return rft->flags & RFTYPE_FLAGS_CPUS_LIST;
348 }
349
rdtgroup_cpus_show(struct kernfs_open_file * of,struct seq_file * s,void * v)350 static int rdtgroup_cpus_show(struct kernfs_open_file *of,
351 struct seq_file *s, void *v)
352 {
353 struct rdtgroup *rdtgrp;
354 struct cpumask *mask;
355 int ret = 0;
356
357 rdtgrp = rdtgroup_kn_lock_live(of->kn);
358
359 if (rdtgrp) {
360 if (rdtgrp->mode == RDT_MODE_PSEUDO_LOCKED) {
361 if (!rdtgrp->plr->d) {
362 rdt_last_cmd_puts("Cache domain offline\n");
363 ret = -ENODEV;
364 } else {
365 mask = &rdtgrp->plr->d->hdr.cpu_mask;
366 seq_printf(s, is_cpu_list(of) ?
367 "%*pbl\n" : "%*pb\n",
368 cpumask_pr_args(mask));
369 }
370 } else {
371 seq_printf(s, is_cpu_list(of) ? "%*pbl\n" : "%*pb\n",
372 cpumask_pr_args(&rdtgrp->cpu_mask));
373 }
374 } else {
375 ret = -ENOENT;
376 }
377 rdtgroup_kn_unlock(of->kn);
378
379 return ret;
380 }
381
382 /*
383 * Update the PGR_ASSOC MSR on all cpus in @cpu_mask,
384 *
385 * Per task closids/rmids must have been set up before calling this function.
386 * @r may be NULL.
387 */
388 static void
update_closid_rmid(const struct cpumask * cpu_mask,struct rdtgroup * r)389 update_closid_rmid(const struct cpumask *cpu_mask, struct rdtgroup *r)
390 {
391 struct resctrl_cpu_defaults defaults, *p = NULL;
392
393 if (r) {
394 defaults.closid = r->closid;
395 defaults.rmid = r->mon.rmid;
396 p = &defaults;
397 }
398
399 on_each_cpu_mask(cpu_mask, resctrl_arch_sync_cpu_closid_rmid, p, 1);
400 }
401
cpus_mon_write(struct rdtgroup * rdtgrp,cpumask_var_t newmask,cpumask_var_t tmpmask)402 static int cpus_mon_write(struct rdtgroup *rdtgrp, cpumask_var_t newmask,
403 cpumask_var_t tmpmask)
404 {
405 struct rdtgroup *prgrp = rdtgrp->mon.parent, *crgrp;
406 struct list_head *head;
407
408 /* Check whether cpus belong to parent ctrl group */
409 cpumask_andnot(tmpmask, newmask, &prgrp->cpu_mask);
410 if (!cpumask_empty(tmpmask)) {
411 rdt_last_cmd_puts("Can only add CPUs to mongroup that belong to parent\n");
412 return -EINVAL;
413 }
414
415 /* Check whether cpus are dropped from this group */
416 cpumask_andnot(tmpmask, &rdtgrp->cpu_mask, newmask);
417 if (!cpumask_empty(tmpmask)) {
418 /* Give any dropped cpus to parent rdtgroup */
419 cpumask_or(&prgrp->cpu_mask, &prgrp->cpu_mask, tmpmask);
420 update_closid_rmid(tmpmask, prgrp);
421 }
422
423 /*
424 * If we added cpus, remove them from previous group that owned them
425 * and update per-cpu rmid
426 */
427 cpumask_andnot(tmpmask, newmask, &rdtgrp->cpu_mask);
428 if (!cpumask_empty(tmpmask)) {
429 head = &prgrp->mon.crdtgrp_list;
430 list_for_each_entry(crgrp, head, mon.crdtgrp_list) {
431 if (crgrp == rdtgrp)
432 continue;
433 cpumask_andnot(&crgrp->cpu_mask, &crgrp->cpu_mask,
434 tmpmask);
435 }
436 update_closid_rmid(tmpmask, rdtgrp);
437 }
438
439 /* Done pushing/pulling - update this group with new mask */
440 cpumask_copy(&rdtgrp->cpu_mask, newmask);
441
442 return 0;
443 }
444
cpumask_rdtgrp_clear(struct rdtgroup * r,struct cpumask * m)445 static void cpumask_rdtgrp_clear(struct rdtgroup *r, struct cpumask *m)
446 {
447 struct rdtgroup *crgrp;
448
449 cpumask_andnot(&r->cpu_mask, &r->cpu_mask, m);
450 /* update the child mon group masks as well*/
451 list_for_each_entry(crgrp, &r->mon.crdtgrp_list, mon.crdtgrp_list)
452 cpumask_and(&crgrp->cpu_mask, &r->cpu_mask, &crgrp->cpu_mask);
453 }
454
cpus_ctrl_write(struct rdtgroup * rdtgrp,cpumask_var_t newmask,cpumask_var_t tmpmask,cpumask_var_t tmpmask1)455 static int cpus_ctrl_write(struct rdtgroup *rdtgrp, cpumask_var_t newmask,
456 cpumask_var_t tmpmask, cpumask_var_t tmpmask1)
457 {
458 struct rdtgroup *r, *crgrp;
459 struct list_head *head;
460
461 /* Check whether cpus are dropped from this group */
462 cpumask_andnot(tmpmask, &rdtgrp->cpu_mask, newmask);
463 if (!cpumask_empty(tmpmask)) {
464 /* Can't drop from default group */
465 if (rdtgrp == &rdtgroup_default) {
466 rdt_last_cmd_puts("Can't drop CPUs from default group\n");
467 return -EINVAL;
468 }
469
470 /* Give any dropped cpus to rdtgroup_default */
471 cpumask_or(&rdtgroup_default.cpu_mask,
472 &rdtgroup_default.cpu_mask, tmpmask);
473 update_closid_rmid(tmpmask, &rdtgroup_default);
474 }
475
476 /*
477 * If we added cpus, remove them from previous group and
478 * the prev group's child groups that owned them
479 * and update per-cpu closid/rmid.
480 */
481 cpumask_andnot(tmpmask, newmask, &rdtgrp->cpu_mask);
482 if (!cpumask_empty(tmpmask)) {
483 list_for_each_entry(r, &rdt_all_groups, rdtgroup_list) {
484 if (r == rdtgrp)
485 continue;
486 cpumask_and(tmpmask1, &r->cpu_mask, tmpmask);
487 if (!cpumask_empty(tmpmask1))
488 cpumask_rdtgrp_clear(r, tmpmask1);
489 }
490 update_closid_rmid(tmpmask, rdtgrp);
491 }
492
493 /* Done pushing/pulling - update this group with new mask */
494 cpumask_copy(&rdtgrp->cpu_mask, newmask);
495
496 /*
497 * Clear child mon group masks since there is a new parent mask
498 * now and update the rmid for the cpus the child lost.
499 */
500 head = &rdtgrp->mon.crdtgrp_list;
501 list_for_each_entry(crgrp, head, mon.crdtgrp_list) {
502 cpumask_and(tmpmask, &rdtgrp->cpu_mask, &crgrp->cpu_mask);
503 update_closid_rmid(tmpmask, rdtgrp);
504 cpumask_clear(&crgrp->cpu_mask);
505 }
506
507 return 0;
508 }
509
rdtgroup_cpus_write(struct kernfs_open_file * of,char * buf,size_t nbytes,loff_t off)510 static ssize_t rdtgroup_cpus_write(struct kernfs_open_file *of,
511 char *buf, size_t nbytes, loff_t off)
512 {
513 cpumask_var_t tmpmask = CPUMASK_VAR_NULL, newmask = CPUMASK_VAR_NULL;
514 cpumask_var_t tmpmask1 = CPUMASK_VAR_NULL;
515 struct rdtgroup *rdtgrp;
516 int ret;
517
518 rdtgrp = rdtgroup_kn_lock_live(of->kn);
519 if (!rdtgrp) {
520 ret = -ENOENT;
521 goto out_unlock;
522 }
523
524 if (!buf) {
525 rdt_last_cmd_printf("%s: Invalid input\n",
526 is_cpu_list(of) ? "cpus_list" : "cpus");
527 ret = -EINVAL;
528 goto out_unlock;
529 }
530
531 if (!zalloc_cpumask_var(&tmpmask, GFP_KERNEL) ||
532 !zalloc_cpumask_var(&newmask, GFP_KERNEL) ||
533 !zalloc_cpumask_var(&tmpmask1, GFP_KERNEL)) {
534 rdt_last_cmd_printf("%s: Kernel allocation failure\n",
535 is_cpu_list(of) ? "cpus_list" : "cpus");
536 ret = -ENOMEM;
537 goto out_free;
538 }
539
540 if (rdtgrp->mode == RDT_MODE_PSEUDO_LOCKED ||
541 rdtgrp->mode == RDT_MODE_PSEUDO_LOCKSETUP) {
542 ret = -EINVAL;
543 rdt_last_cmd_puts("Pseudo-locking in progress\n");
544 goto out_free;
545 }
546
547 if (is_cpu_list(of))
548 ret = cpulist_parse(buf, newmask);
549 else
550 ret = cpumask_parse(buf, newmask);
551
552 if (ret) {
553 rdt_last_cmd_puts("Bad CPU list/mask\n");
554 goto out_free;
555 }
556
557 /* check that user didn't specify any offline cpus */
558 cpumask_andnot(tmpmask, newmask, cpu_online_mask);
559 if (!cpumask_empty(tmpmask)) {
560 ret = -EINVAL;
561 rdt_last_cmd_puts("Can only assign online CPUs\n");
562 goto out_free;
563 }
564
565 if (rdtgrp->type == RDTCTRL_GROUP)
566 ret = cpus_ctrl_write(rdtgrp, newmask, tmpmask, tmpmask1);
567 else if (rdtgrp->type == RDTMON_GROUP)
568 ret = cpus_mon_write(rdtgrp, newmask, tmpmask);
569 else
570 ret = -EINVAL;
571
572 out_free:
573 free_cpumask_var(tmpmask);
574 free_cpumask_var(newmask);
575 free_cpumask_var(tmpmask1);
576 out_unlock:
577 rdtgroup_kn_unlock(of->kn);
578
579 return ret ?: nbytes;
580 }
581
582 /**
583 * rdtgroup_remove - the helper to remove resource group safely
584 * @rdtgrp: resource group to remove
585 *
586 * On resource group creation via a mkdir, an extra kernfs_node reference is
587 * taken to ensure that the rdtgroup structure remains accessible for the
588 * rdtgroup_kn_unlock() calls where it is removed. The default group is
589 * statically allocated: it does not have an extra reference but will have
590 * RDT_DELETED set on unmount to support safe access to its associated files
591 * via rdtgroup_kn_lock_live/rdtgroup_kn_unlock().
592 *
593 * For all but the default group: drop the extra reference, then free the
594 * rdtgroup structure.
595 *
596 * Return: void
597 */
rdtgroup_remove(struct rdtgroup * rdtgrp)598 static void rdtgroup_remove(struct rdtgroup *rdtgrp)
599 {
600 if (rdtgrp == &rdtgroup_default)
601 return;
602 kernfs_put(rdtgrp->kn);
603 kfree(rdtgrp);
604 }
605
_update_task_closid_rmid(void * task)606 static void _update_task_closid_rmid(void *task)
607 {
608 /*
609 * If the task is still current on this CPU, update PQR_ASSOC MSR.
610 * Otherwise, the MSR is updated when the task is scheduled in.
611 */
612 if (task == current)
613 resctrl_arch_sched_in(task);
614 }
615
update_task_closid_rmid(struct task_struct * t)616 static void update_task_closid_rmid(struct task_struct *t)
617 {
618 if (IS_ENABLED(CONFIG_SMP) && task_curr(t))
619 smp_call_function_single(task_cpu(t), _update_task_closid_rmid, t, 1);
620 else
621 _update_task_closid_rmid(t);
622 }
623
task_in_rdtgroup(struct task_struct * tsk,struct rdtgroup * rdtgrp)624 static bool task_in_rdtgroup(struct task_struct *tsk, struct rdtgroup *rdtgrp)
625 {
626 u32 closid, rmid = rdtgrp->mon.rmid;
627
628 if (rdtgrp->type == RDTCTRL_GROUP)
629 closid = rdtgrp->closid;
630 else if (rdtgrp->type == RDTMON_GROUP)
631 closid = rdtgrp->mon.parent->closid;
632 else
633 return false;
634
635 return resctrl_arch_match_closid(tsk, closid) &&
636 resctrl_arch_match_rmid(tsk, closid, rmid);
637 }
638
__rdtgroup_move_task(struct task_struct * tsk,struct rdtgroup * rdtgrp)639 static int __rdtgroup_move_task(struct task_struct *tsk,
640 struct rdtgroup *rdtgrp)
641 {
642 /* If the task is already in rdtgrp, no need to move the task. */
643 if (task_in_rdtgroup(tsk, rdtgrp))
644 return 0;
645
646 /*
647 * Set the task's closid/rmid before the PQR_ASSOC MSR can be
648 * updated by them.
649 *
650 * For ctrl_mon groups, move both closid and rmid.
651 * For monitor groups, can move the tasks only from
652 * their parent CTRL group.
653 */
654 if (rdtgrp->type == RDTMON_GROUP &&
655 !resctrl_arch_match_closid(tsk, rdtgrp->mon.parent->closid)) {
656 rdt_last_cmd_puts("Can't move task to different control group\n");
657 return -EINVAL;
658 }
659
660 if (rdtgrp->type == RDTMON_GROUP)
661 resctrl_arch_set_closid_rmid(tsk, rdtgrp->mon.parent->closid,
662 rdtgrp->mon.rmid);
663 else
664 resctrl_arch_set_closid_rmid(tsk, rdtgrp->closid,
665 rdtgrp->mon.rmid);
666
667 /*
668 * Ensure the task's closid and rmid are written before determining if
669 * the task is current that will decide if it will be interrupted.
670 * This pairs with the full barrier between the rq->curr update and
671 * resctrl_arch_sched_in() during context switch.
672 */
673 smp_mb();
674
675 /*
676 * By now, the task's closid and rmid are set. If the task is current
677 * on a CPU, the PQR_ASSOC MSR needs to be updated to make the resource
678 * group go into effect. If the task is not current, the MSR will be
679 * updated when the task is scheduled in.
680 */
681 update_task_closid_rmid(tsk);
682
683 return 0;
684 }
685
is_closid_match(struct task_struct * t,struct rdtgroup * r)686 static bool is_closid_match(struct task_struct *t, struct rdtgroup *r)
687 {
688 return (resctrl_arch_alloc_capable() && (r->type == RDTCTRL_GROUP) &&
689 resctrl_arch_match_closid(t, r->closid));
690 }
691
is_rmid_match(struct task_struct * t,struct rdtgroup * r)692 static bool is_rmid_match(struct task_struct *t, struct rdtgroup *r)
693 {
694 return (resctrl_arch_mon_capable() && (r->type == RDTMON_GROUP) &&
695 resctrl_arch_match_rmid(t, r->mon.parent->closid,
696 r->mon.rmid));
697 }
698
699 /**
700 * rdtgroup_tasks_assigned - Test if tasks have been assigned to resource group
701 * @r: Resource group
702 *
703 * Return: 1 if tasks have been assigned to @r, 0 otherwise
704 */
rdtgroup_tasks_assigned(struct rdtgroup * r)705 int rdtgroup_tasks_assigned(struct rdtgroup *r)
706 {
707 struct task_struct *p, *t;
708 int ret = 0;
709
710 lockdep_assert_held(&rdtgroup_mutex);
711
712 rcu_read_lock();
713 for_each_process_thread(p, t) {
714 if (is_closid_match(t, r) || is_rmid_match(t, r)) {
715 ret = 1;
716 break;
717 }
718 }
719 rcu_read_unlock();
720
721 return ret;
722 }
723
rdtgroup_task_write_permission(struct task_struct * task,struct kernfs_open_file * of)724 static int rdtgroup_task_write_permission(struct task_struct *task,
725 struct kernfs_open_file *of)
726 {
727 const struct cred *tcred = get_task_cred(task);
728 const struct cred *cred = current_cred();
729 int ret = 0;
730
731 /*
732 * Even if we're attaching all tasks in the thread group, we only
733 * need to check permissions on one of them.
734 */
735 if (!uid_eq(cred->euid, GLOBAL_ROOT_UID) &&
736 !uid_eq(cred->euid, tcred->uid) &&
737 !uid_eq(cred->euid, tcred->suid)) {
738 rdt_last_cmd_printf("No permission to move task %d\n", task->pid);
739 ret = -EPERM;
740 }
741
742 put_cred(tcred);
743 return ret;
744 }
745
rdtgroup_move_task(pid_t pid,struct rdtgroup * rdtgrp,struct kernfs_open_file * of)746 static int rdtgroup_move_task(pid_t pid, struct rdtgroup *rdtgrp,
747 struct kernfs_open_file *of)
748 {
749 struct task_struct *tsk;
750 int ret;
751
752 rcu_read_lock();
753 if (pid) {
754 tsk = find_task_by_vpid(pid);
755 if (!tsk) {
756 rcu_read_unlock();
757 rdt_last_cmd_printf("No task %d\n", pid);
758 return -ESRCH;
759 }
760 } else {
761 tsk = current;
762 }
763
764 get_task_struct(tsk);
765 rcu_read_unlock();
766
767 ret = rdtgroup_task_write_permission(tsk, of);
768 if (!ret)
769 ret = __rdtgroup_move_task(tsk, rdtgrp);
770
771 put_task_struct(tsk);
772 return ret;
773 }
774
rdtgroup_tasks_write(struct kernfs_open_file * of,char * buf,size_t nbytes,loff_t off)775 static ssize_t rdtgroup_tasks_write(struct kernfs_open_file *of,
776 char *buf, size_t nbytes, loff_t off)
777 {
778 struct rdtgroup *rdtgrp;
779 char *pid_str;
780 int ret = 0;
781 pid_t pid;
782
783 rdtgrp = rdtgroup_kn_lock_live(of->kn);
784 if (!rdtgrp) {
785 rdtgroup_kn_unlock(of->kn);
786 return -ENOENT;
787 }
788
789 if (rdtgrp->mode == RDT_MODE_PSEUDO_LOCKED ||
790 rdtgrp->mode == RDT_MODE_PSEUDO_LOCKSETUP) {
791 ret = -EINVAL;
792 rdt_last_cmd_puts("Pseudo-locking in progress\n");
793 goto unlock;
794 }
795
796 while (buf && buf[0] != '\0' && buf[0] != '\n') {
797 pid_str = strim(strsep(&buf, ","));
798
799 if (kstrtoint(pid_str, 0, &pid)) {
800 rdt_last_cmd_printf("Task list parsing error pid %s\n", pid_str);
801 ret = -EINVAL;
802 break;
803 }
804
805 if (pid < 0) {
806 rdt_last_cmd_printf("Invalid pid %d\n", pid);
807 ret = -EINVAL;
808 break;
809 }
810
811 ret = rdtgroup_move_task(pid, rdtgrp, of);
812 if (ret) {
813 rdt_last_cmd_printf("Error while processing task %d\n", pid);
814 break;
815 }
816 }
817
818 unlock:
819 rdtgroup_kn_unlock(of->kn);
820
821 return ret ?: nbytes;
822 }
823
show_rdt_tasks(struct rdtgroup * r,struct seq_file * s)824 static void show_rdt_tasks(struct rdtgroup *r, struct seq_file *s)
825 {
826 struct task_struct *p, *t;
827 pid_t pid;
828
829 rcu_read_lock();
830 for_each_process_thread(p, t) {
831 if (is_closid_match(t, r) || is_rmid_match(t, r)) {
832 pid = task_pid_vnr(t);
833 if (pid)
834 seq_printf(s, "%d\n", pid);
835 }
836 }
837 rcu_read_unlock();
838 }
839
rdtgroup_tasks_show(struct kernfs_open_file * of,struct seq_file * s,void * v)840 static int rdtgroup_tasks_show(struct kernfs_open_file *of,
841 struct seq_file *s, void *v)
842 {
843 struct rdtgroup *rdtgrp;
844 int ret = 0;
845
846 rdtgrp = rdtgroup_kn_lock_live(of->kn);
847 if (rdtgrp)
848 show_rdt_tasks(rdtgrp, s);
849 else
850 ret = -ENOENT;
851 rdtgroup_kn_unlock(of->kn);
852
853 return ret;
854 }
855
rdtgroup_closid_show(struct kernfs_open_file * of,struct seq_file * s,void * v)856 static int rdtgroup_closid_show(struct kernfs_open_file *of,
857 struct seq_file *s, void *v)
858 {
859 struct rdtgroup *rdtgrp;
860 int ret = 0;
861
862 rdtgrp = rdtgroup_kn_lock_live(of->kn);
863 if (rdtgrp)
864 seq_printf(s, "%u\n", rdtgrp->closid);
865 else
866 ret = -ENOENT;
867 rdtgroup_kn_unlock(of->kn);
868
869 return ret;
870 }
871
rdtgroup_rmid_show(struct kernfs_open_file * of,struct seq_file * s,void * v)872 static int rdtgroup_rmid_show(struct kernfs_open_file *of,
873 struct seq_file *s, void *v)
874 {
875 struct rdtgroup *rdtgrp;
876 int ret = 0;
877
878 rdtgrp = rdtgroup_kn_lock_live(of->kn);
879 if (rdtgrp)
880 seq_printf(s, "%u\n", rdtgrp->mon.rmid);
881 else
882 ret = -ENOENT;
883 rdtgroup_kn_unlock(of->kn);
884
885 return ret;
886 }
887
888 #ifdef CONFIG_PROC_CPU_RESCTRL
889 /*
890 * A task can only be part of one resctrl control group and of one monitor
891 * group which is associated to that control group.
892 *
893 * 1) res:
894 * mon:
895 *
896 * resctrl is not available.
897 *
898 * 2) res:/
899 * mon:
900 *
901 * Task is part of the root resctrl control group, and it is not associated
902 * to any monitor group.
903 *
904 * 3) res:/
905 * mon:mon0
906 *
907 * Task is part of the root resctrl control group and monitor group mon0.
908 *
909 * 4) res:group0
910 * mon:
911 *
912 * Task is part of resctrl control group group0, and it is not associated
913 * to any monitor group.
914 *
915 * 5) res:group0
916 * mon:mon1
917 *
918 * Task is part of resctrl control group group0 and monitor group mon1.
919 */
proc_resctrl_show(struct seq_file * s,struct pid_namespace * ns,struct pid * pid,struct task_struct * tsk)920 int proc_resctrl_show(struct seq_file *s, struct pid_namespace *ns,
921 struct pid *pid, struct task_struct *tsk)
922 {
923 struct rdtgroup *rdtg;
924 int ret = 0;
925
926 mutex_lock(&rdtgroup_mutex);
927
928 /* Return empty if resctrl has not been mounted. */
929 if (!resctrl_mounted) {
930 seq_puts(s, "res:\nmon:\n");
931 goto unlock;
932 }
933
934 list_for_each_entry(rdtg, &rdt_all_groups, rdtgroup_list) {
935 struct rdtgroup *crg;
936
937 /*
938 * Task information is only relevant for shareable
939 * and exclusive groups.
940 */
941 if (rdtg->mode != RDT_MODE_SHAREABLE &&
942 rdtg->mode != RDT_MODE_EXCLUSIVE)
943 continue;
944
945 if (!resctrl_arch_match_closid(tsk, rdtg->closid))
946 continue;
947
948 seq_printf(s, "res:%s%s\n", (rdtg == &rdtgroup_default) ? "/" : "",
949 rdt_kn_name(rdtg->kn));
950 seq_puts(s, "mon:");
951 list_for_each_entry(crg, &rdtg->mon.crdtgrp_list,
952 mon.crdtgrp_list) {
953 if (!resctrl_arch_match_rmid(tsk, crg->mon.parent->closid,
954 crg->mon.rmid))
955 continue;
956 seq_printf(s, "%s", rdt_kn_name(crg->kn));
957 break;
958 }
959 seq_putc(s, '\n');
960 goto unlock;
961 }
962 /*
963 * The above search should succeed. Otherwise return
964 * with an error.
965 */
966 ret = -ENOENT;
967 unlock:
968 mutex_unlock(&rdtgroup_mutex);
969
970 return ret;
971 }
972 #endif
973
rdt_last_cmd_status_show(struct kernfs_open_file * of,struct seq_file * seq,void * v)974 static int rdt_last_cmd_status_show(struct kernfs_open_file *of,
975 struct seq_file *seq, void *v)
976 {
977 int len;
978
979 if (!info_kn_lock(of->kn))
980 return -ENOENT;
981 len = seq_buf_used(&last_cmd_status);
982 if (len) {
983 seq_printf(seq, "%.*s", len, last_cmd_status_buf);
984 if (seq_buf_has_overflowed(&last_cmd_status))
985 seq_puts(seq, "[truncated]\n");
986 } else {
987 seq_puts(seq, "ok\n");
988 }
989 info_kn_unlock(of->kn);
990 return 0;
991 }
992
rdt_kn_parent_priv(struct kernfs_node * kn)993 void *rdt_kn_parent_priv(struct kernfs_node *kn)
994 {
995 /*
996 * The parent pointer is only valid within RCU section since it can be
997 * replaced.
998 */
999 guard(rcu)();
1000 return rcu_dereference(kn->__parent)->priv;
1001 }
1002
rdt_num_closids_show(struct kernfs_open_file * of,struct seq_file * seq,void * v)1003 static int rdt_num_closids_show(struct kernfs_open_file *of,
1004 struct seq_file *seq, void *v)
1005 {
1006 struct resctrl_schema *s = rdt_kn_parent_priv(of->kn);
1007
1008 if (!info_kn_lock(of->kn))
1009 return -ENOENT;
1010 seq_printf(seq, "%u\n", s->num_closid);
1011 info_kn_unlock(of->kn);
1012
1013 return 0;
1014 }
1015
rdt_default_ctrl_show(struct kernfs_open_file * of,struct seq_file * seq,void * v)1016 static int rdt_default_ctrl_show(struct kernfs_open_file *of,
1017 struct seq_file *seq, void *v)
1018 {
1019 struct resctrl_schema *s = rdt_kn_parent_priv(of->kn);
1020 struct rdt_resource *r;
1021
1022 if (!info_kn_lock(of->kn))
1023 return -ENOENT;
1024 r = s->res;
1025 seq_printf(seq, "%x\n", resctrl_get_default_ctrl(r));
1026 info_kn_unlock(of->kn);
1027
1028 return 0;
1029 }
1030
rdt_min_cbm_bits_show(struct kernfs_open_file * of,struct seq_file * seq,void * v)1031 static int rdt_min_cbm_bits_show(struct kernfs_open_file *of,
1032 struct seq_file *seq, void *v)
1033 {
1034 struct resctrl_schema *s = rdt_kn_parent_priv(of->kn);
1035 struct rdt_resource *r;
1036
1037 if (!info_kn_lock(of->kn))
1038 return -ENOENT;
1039 r = s->res;
1040 seq_printf(seq, "%u\n", r->cache.min_cbm_bits);
1041 info_kn_unlock(of->kn);
1042
1043 return 0;
1044 }
1045
rdt_shareable_bits_show(struct kernfs_open_file * of,struct seq_file * seq,void * v)1046 static int rdt_shareable_bits_show(struct kernfs_open_file *of,
1047 struct seq_file *seq, void *v)
1048 {
1049 struct resctrl_schema *s = rdt_kn_parent_priv(of->kn);
1050 struct rdt_resource *r;
1051
1052 if (!info_kn_lock(of->kn))
1053 return -ENOENT;
1054 r = s->res;
1055 seq_printf(seq, "%x\n", r->cache.shareable_bits);
1056 info_kn_unlock(of->kn);
1057
1058 return 0;
1059 }
1060
1061 /*
1062 * rdt_bit_usage_show - Display current usage of resources
1063 *
1064 * A domain is a shared resource that can now be allocated differently. Here
1065 * we display the current regions of the domain as an annotated bitmask.
1066 * For each domain of this resource its allocation bitmask
1067 * is annotated as below to indicate the current usage of the corresponding bit:
1068 * 0 - currently unused
1069 * X - currently available for sharing and used by software and hardware
1070 * H - currently used by hardware only but available for software use
1071 * S - currently used and shareable by software only
1072 * E - currently used exclusively by one resource group
1073 * P - currently pseudo-locked by one resource group
1074 */
rdt_bit_usage_show(struct kernfs_open_file * of,struct seq_file * seq,void * v)1075 static int rdt_bit_usage_show(struct kernfs_open_file *of,
1076 struct seq_file *seq, void *v)
1077 {
1078 struct resctrl_schema *s = rdt_kn_parent_priv(of->kn);
1079 /*
1080 * Use unsigned long even though only 32 bits are used to ensure
1081 * test_bit() is used safely.
1082 */
1083 unsigned long sw_shareable = 0, hw_shareable = 0;
1084 unsigned long exclusive = 0, pseudo_locked = 0;
1085 struct rdt_ctrl_domain *dom;
1086 int i, hwb, swb, excl, psl;
1087 struct rdt_resource *r;
1088 enum rdtgrp_mode mode;
1089 bool sep = false;
1090 u32 ctrl_val;
1091
1092 if (!info_kn_lock(of->kn))
1093 return -ENOENT;
1094 r = s->res;
1095 list_for_each_entry_rcu(dom, &r->ctrl_domains, hdr.list, lockdep_is_cpus_held()) {
1096 if (sep)
1097 seq_putc(seq, ';');
1098 hw_shareable = r->cache.shareable_bits;
1099 sw_shareable = 0;
1100 exclusive = 0;
1101 seq_printf(seq, "%d=", dom->hdr.id);
1102 for (i = 0; i < closids_supported(); i++) {
1103 if (!closid_allocated(i) ||
1104 (resctrl_arch_get_io_alloc_enabled(r) &&
1105 i == resctrl_io_alloc_closid(r)))
1106 continue;
1107 ctrl_val = resctrl_arch_get_config(r, dom, i,
1108 s->conf_type);
1109 mode = rdtgroup_mode_by_closid(i);
1110 switch (mode) {
1111 case RDT_MODE_SHAREABLE:
1112 sw_shareable |= ctrl_val;
1113 break;
1114 case RDT_MODE_EXCLUSIVE:
1115 exclusive |= ctrl_val;
1116 break;
1117 case RDT_MODE_PSEUDO_LOCKSETUP:
1118 /*
1119 * RDT_MODE_PSEUDO_LOCKSETUP is possible
1120 * here but not included since the CBM
1121 * associated with this CLOSID in this mode
1122 * is not initialized and no task or cpu can be
1123 * assigned this CLOSID.
1124 */
1125 break;
1126 case RDT_MODE_PSEUDO_LOCKED:
1127 case RDT_NUM_MODES:
1128 WARN(1,
1129 "invalid mode for closid %d\n", i);
1130 break;
1131 }
1132 }
1133
1134 /*
1135 * When the "io_alloc" feature is enabled, a portion of the cache
1136 * is configured for shared use between hardware and software.
1137 * Also, when CDP is enabled the CBMs of CDP_CODE and CDP_DATA
1138 * resources are kept in sync. So, the CBMs for "io_alloc" can
1139 * be accessed through either resource.
1140 */
1141 if (resctrl_arch_get_io_alloc_enabled(r)) {
1142 ctrl_val = resctrl_arch_get_config(r, dom,
1143 resctrl_io_alloc_closid(r),
1144 s->conf_type);
1145 hw_shareable |= ctrl_val;
1146 }
1147
1148 for (i = r->cache.cbm_len - 1; i >= 0; i--) {
1149 pseudo_locked = dom->plr ? dom->plr->cbm : 0;
1150 hwb = test_bit(i, &hw_shareable);
1151 swb = test_bit(i, &sw_shareable);
1152 excl = test_bit(i, &exclusive);
1153 psl = test_bit(i, &pseudo_locked);
1154 if (hwb && swb)
1155 seq_putc(seq, 'X');
1156 else if (hwb && !swb)
1157 seq_putc(seq, 'H');
1158 else if (!hwb && swb)
1159 seq_putc(seq, 'S');
1160 else if (excl)
1161 seq_putc(seq, 'E');
1162 else if (psl)
1163 seq_putc(seq, 'P');
1164 else /* Unused bits remain */
1165 seq_putc(seq, '0');
1166 }
1167 sep = true;
1168 }
1169 seq_putc(seq, '\n');
1170 info_kn_unlock(of->kn);
1171 return 0;
1172 }
1173
rdt_min_bw_show(struct kernfs_open_file * of,struct seq_file * seq,void * v)1174 static int rdt_min_bw_show(struct kernfs_open_file *of,
1175 struct seq_file *seq, void *v)
1176 {
1177 struct resctrl_schema *s = rdt_kn_parent_priv(of->kn);
1178 struct rdt_resource *r;
1179
1180 if (!info_kn_lock(of->kn))
1181 return -ENOENT;
1182 r = s->res;
1183 seq_printf(seq, "%u\n", r->membw.min_bw);
1184 info_kn_unlock(of->kn);
1185
1186 return 0;
1187 }
1188
rdt_num_rmids_show(struct kernfs_open_file * of,struct seq_file * seq,void * v)1189 static int rdt_num_rmids_show(struct kernfs_open_file *of,
1190 struct seq_file *seq, void *v)
1191 {
1192 struct rdt_resource *r = rdt_kn_parent_priv(of->kn);
1193
1194 if (!info_kn_lock(of->kn))
1195 return -ENOENT;
1196 seq_printf(seq, "%u\n", r->mon.num_rmid);
1197
1198 info_kn_unlock(of->kn);
1199
1200 return 0;
1201 }
1202
rdt_mon_features_show(struct kernfs_open_file * of,struct seq_file * seq,void * v)1203 static int rdt_mon_features_show(struct kernfs_open_file *of,
1204 struct seq_file *seq, void *v)
1205 {
1206 struct rdt_resource *r = rdt_kn_parent_priv(of->kn);
1207 struct mon_evt *mevt;
1208
1209 if (!info_kn_lock(of->kn))
1210 return -ENOENT;
1211 for_each_mon_event(mevt) {
1212 if (mevt->rid != r->rid || !mevt->enabled)
1213 continue;
1214 seq_printf(seq, "%s\n", mevt->name);
1215 if (mevt->configurable &&
1216 !resctrl_arch_mbm_cntr_assign_enabled(r))
1217 seq_printf(seq, "%s_config\n", mevt->name);
1218 }
1219
1220 info_kn_unlock(of->kn);
1221
1222 return 0;
1223 }
1224
rdt_bw_gran_show(struct kernfs_open_file * of,struct seq_file * seq,void * v)1225 static int rdt_bw_gran_show(struct kernfs_open_file *of,
1226 struct seq_file *seq, void *v)
1227 {
1228 struct resctrl_schema *s = rdt_kn_parent_priv(of->kn);
1229 struct rdt_resource *r;
1230
1231 if (!info_kn_lock(of->kn))
1232 return -ENOENT;
1233 r = s->res;
1234 seq_printf(seq, "%u\n", r->membw.bw_gran);
1235 info_kn_unlock(of->kn);
1236
1237 return 0;
1238 }
1239
rdt_delay_linear_show(struct kernfs_open_file * of,struct seq_file * seq,void * v)1240 static int rdt_delay_linear_show(struct kernfs_open_file *of,
1241 struct seq_file *seq, void *v)
1242 {
1243 struct resctrl_schema *s = rdt_kn_parent_priv(of->kn);
1244 struct rdt_resource *r;
1245
1246 if (!info_kn_lock(of->kn))
1247 return -ENOENT;
1248 r = s->res;
1249 seq_printf(seq, "%u\n", r->membw.delay_linear);
1250 info_kn_unlock(of->kn);
1251
1252 return 0;
1253 }
1254
max_threshold_occ_show(struct kernfs_open_file * of,struct seq_file * seq,void * v)1255 static int max_threshold_occ_show(struct kernfs_open_file *of,
1256 struct seq_file *seq, void *v)
1257 {
1258 if (!info_kn_lock(of->kn))
1259 return -ENOENT;
1260 seq_printf(seq, "%u\n", resctrl_rmid_realloc_threshold);
1261 info_kn_unlock(of->kn);
1262
1263 return 0;
1264 }
1265
rdt_thread_throttle_mode_show(struct kernfs_open_file * of,struct seq_file * seq,void * v)1266 static int rdt_thread_throttle_mode_show(struct kernfs_open_file *of,
1267 struct seq_file *seq, void *v)
1268 {
1269 struct resctrl_schema *s = rdt_kn_parent_priv(of->kn);
1270 struct rdt_resource *r;
1271
1272 if (!info_kn_lock(of->kn))
1273 return -ENOENT;
1274
1275 r = s->res;
1276 switch (r->membw.throttle_mode) {
1277 case THREAD_THROTTLE_PER_THREAD:
1278 seq_puts(seq, "per-thread\n");
1279 break;
1280 case THREAD_THROTTLE_MAX:
1281 seq_puts(seq, "max\n");
1282 break;
1283 case THREAD_THROTTLE_UNDEFINED:
1284 seq_puts(seq, "undefined\n");
1285 break;
1286 default:
1287 WARN_ON_ONCE(1);
1288 break;
1289 }
1290
1291 info_kn_unlock(of->kn);
1292 return 0;
1293 }
1294
max_threshold_occ_write(struct kernfs_open_file * of,char * buf,size_t nbytes,loff_t off)1295 static ssize_t max_threshold_occ_write(struct kernfs_open_file *of,
1296 char *buf, size_t nbytes, loff_t off)
1297 {
1298 unsigned int bytes;
1299 int ret;
1300
1301 if (!info_kn_lock(of->kn))
1302 return -ENOENT;
1303
1304 rdt_last_cmd_clear();
1305
1306 ret = kstrtouint(buf, 0, &bytes);
1307 if (ret) {
1308 rdt_last_cmd_puts("max_threshold_occupancy: Invalid input\n");
1309 goto out_unlock;
1310 }
1311
1312 if (bytes > resctrl_rmid_realloc_limit) {
1313 rdt_last_cmd_printf("max_threshold_occupancy: Exceeds limit (before adjustment) of %u bytes\n",
1314 resctrl_rmid_realloc_limit);
1315 ret = -EINVAL;
1316 goto out_unlock;
1317 }
1318
1319 resctrl_rmid_realloc_threshold = resctrl_arch_round_mon_val(bytes);
1320
1321 out_unlock:
1322 info_kn_unlock(of->kn);
1323
1324 return ret ?: nbytes;
1325 }
1326
1327 /*
1328 * rdtgroup_mode_show - Display mode of this resource group
1329 */
rdtgroup_mode_show(struct kernfs_open_file * of,struct seq_file * s,void * v)1330 static int rdtgroup_mode_show(struct kernfs_open_file *of,
1331 struct seq_file *s, void *v)
1332 {
1333 struct rdtgroup *rdtgrp;
1334
1335 rdtgrp = rdtgroup_kn_lock_live(of->kn);
1336 if (!rdtgrp) {
1337 rdtgroup_kn_unlock(of->kn);
1338 return -ENOENT;
1339 }
1340
1341 seq_printf(s, "%s\n", rdtgroup_mode_str(rdtgrp->mode));
1342
1343 rdtgroup_kn_unlock(of->kn);
1344 return 0;
1345 }
1346
resctrl_peer_type(enum resctrl_conf_type my_type)1347 enum resctrl_conf_type resctrl_peer_type(enum resctrl_conf_type my_type)
1348 {
1349 switch (my_type) {
1350 case CDP_CODE:
1351 return CDP_DATA;
1352 case CDP_DATA:
1353 return CDP_CODE;
1354 default:
1355 case CDP_NONE:
1356 return CDP_NONE;
1357 }
1358 }
1359
rdt_has_sparse_bitmasks_show(struct kernfs_open_file * of,struct seq_file * seq,void * v)1360 static int rdt_has_sparse_bitmasks_show(struct kernfs_open_file *of,
1361 struct seq_file *seq, void *v)
1362 {
1363 struct resctrl_schema *s = rdt_kn_parent_priv(of->kn);
1364 struct rdt_resource *r;
1365
1366 if (!info_kn_lock(of->kn))
1367 return -ENOENT;
1368 r = s->res;
1369 seq_printf(seq, "%u\n", r->cache.arch_has_sparse_bitmasks);
1370
1371 info_kn_unlock(of->kn);
1372
1373 return 0;
1374 }
1375
1376 /**
1377 * __rdtgroup_cbm_overlaps - Does CBM for intended closid overlap with other
1378 * @r: Resource to which domain instance @d belongs.
1379 * @d: The domain instance for which @closid is being tested.
1380 * @cbm: Capacity bitmask being tested.
1381 * @closid: Intended closid for @cbm.
1382 * @type: CDP type of @r.
1383 * @exclusive: Only check if overlaps with exclusive resource groups
1384 *
1385 * Checks if provided @cbm intended to be used for @closid on domain
1386 * @d overlaps with any other closids or other hardware usage associated
1387 * with this domain. If @exclusive is true then only overlaps with
1388 * resource groups in exclusive mode will be considered. If @exclusive
1389 * is false then overlaps with any resource group or hardware entities
1390 * will be considered.
1391 *
1392 * @cbm is unsigned long, even if only 32 bits are used, to make the
1393 * bitmap functions work correctly.
1394 *
1395 * Return: false if CBM does not overlap, true if it does.
1396 */
__rdtgroup_cbm_overlaps(struct rdt_resource * r,struct rdt_ctrl_domain * d,unsigned long cbm,int closid,enum resctrl_conf_type type,bool exclusive)1397 static bool __rdtgroup_cbm_overlaps(struct rdt_resource *r, struct rdt_ctrl_domain *d,
1398 unsigned long cbm, int closid,
1399 enum resctrl_conf_type type, bool exclusive)
1400 {
1401 enum rdtgrp_mode mode;
1402 unsigned long ctrl_b;
1403 int i;
1404
1405 /* Check for any overlap with regions used by hardware directly */
1406 if (!exclusive) {
1407 ctrl_b = r->cache.shareable_bits;
1408 if (bitmap_intersects(&cbm, &ctrl_b, r->cache.cbm_len))
1409 return true;
1410 }
1411
1412 /* Check for overlap with other resource groups */
1413 for (i = 0; i < closids_supported(); i++) {
1414 ctrl_b = resctrl_arch_get_config(r, d, i, type);
1415 mode = rdtgroup_mode_by_closid(i);
1416 if (closid_allocated(i) && i != closid &&
1417 mode != RDT_MODE_PSEUDO_LOCKSETUP) {
1418 if (bitmap_intersects(&cbm, &ctrl_b, r->cache.cbm_len)) {
1419 if (exclusive) {
1420 if (mode == RDT_MODE_EXCLUSIVE)
1421 return true;
1422 continue;
1423 }
1424 return true;
1425 }
1426 }
1427 }
1428
1429 return false;
1430 }
1431
1432 /**
1433 * rdtgroup_cbm_overlaps - Does CBM overlap with other use of hardware
1434 * @s: Schema for the resource to which domain instance @d belongs.
1435 * @d: The domain instance for which @closid is being tested.
1436 * @cbm: Capacity bitmask being tested.
1437 * @closid: Intended closid for @cbm.
1438 * @exclusive: Only check if overlaps with exclusive resource groups
1439 *
1440 * Resources that can be allocated using a CBM can use the CBM to control
1441 * the overlap of these allocations. rdtgroup_cmb_overlaps() is the test
1442 * for overlap. Overlap test is not limited to the specific resource for
1443 * which the CBM is intended though - when dealing with CDP resources that
1444 * share the underlying hardware the overlap check should be performed on
1445 * the CDP resource sharing the hardware also.
1446 *
1447 * Refer to description of __rdtgroup_cbm_overlaps() for the details of the
1448 * overlap test.
1449 *
1450 * Return: true if CBM overlap detected, false if there is no overlap
1451 */
rdtgroup_cbm_overlaps(struct resctrl_schema * s,struct rdt_ctrl_domain * d,unsigned long cbm,int closid,bool exclusive)1452 bool rdtgroup_cbm_overlaps(struct resctrl_schema *s, struct rdt_ctrl_domain *d,
1453 unsigned long cbm, int closid, bool exclusive)
1454 {
1455 enum resctrl_conf_type peer_type = resctrl_peer_type(s->conf_type);
1456 struct rdt_resource *r = s->res;
1457
1458 if (__rdtgroup_cbm_overlaps(r, d, cbm, closid, s->conf_type,
1459 exclusive))
1460 return true;
1461
1462 if (!resctrl_arch_get_cdp_enabled(r->rid))
1463 return false;
1464 return __rdtgroup_cbm_overlaps(r, d, cbm, closid, peer_type, exclusive);
1465 }
1466
1467 /**
1468 * rdtgroup_mode_test_exclusive - Test if this resource group can be exclusive
1469 * @rdtgrp: Resource group identified through its closid.
1470 *
1471 * An exclusive resource group implies that there should be no sharing of
1472 * its allocated resources. At the time this group is considered to be
1473 * exclusive this test can determine if its current schemata supports this
1474 * setting by testing for overlap with all other resource groups.
1475 *
1476 * Return: true if resource group can be exclusive, false if there is overlap
1477 * with allocations of other resource groups and thus this resource group
1478 * cannot be exclusive.
1479 */
rdtgroup_mode_test_exclusive(struct rdtgroup * rdtgrp)1480 static bool rdtgroup_mode_test_exclusive(struct rdtgroup *rdtgrp)
1481 {
1482 int closid = rdtgrp->closid;
1483 struct rdt_ctrl_domain *d;
1484 struct resctrl_schema *s;
1485 struct rdt_resource *r;
1486 bool has_cache = false;
1487 u32 ctrl;
1488
1489 /* Walking r->domains, ensure it can't race with cpuhp */
1490 lockdep_assert_cpus_held();
1491
1492 list_for_each_entry(s, &resctrl_schema_all, list) {
1493 r = s->res;
1494 if (r->rid == RDT_RESOURCE_MBA || r->rid == RDT_RESOURCE_SMBA)
1495 continue;
1496 has_cache = true;
1497 list_for_each_entry_rcu(d, &r->ctrl_domains, hdr.list, lockdep_is_cpus_held()) {
1498 ctrl = resctrl_arch_get_config(r, d, closid,
1499 s->conf_type);
1500 if (rdtgroup_cbm_overlaps(s, d, ctrl, closid, false)) {
1501 rdt_last_cmd_puts("Schemata overlaps\n");
1502 return false;
1503 }
1504 }
1505 }
1506
1507 if (!has_cache) {
1508 rdt_last_cmd_puts("Cannot be exclusive without CAT/CDP\n");
1509 return false;
1510 }
1511
1512 return true;
1513 }
1514
1515 /*
1516 * rdtgroup_mode_write - Modify the resource group's mode
1517 */
rdtgroup_mode_write(struct kernfs_open_file * of,char * buf,size_t nbytes,loff_t off)1518 static ssize_t rdtgroup_mode_write(struct kernfs_open_file *of,
1519 char *buf, size_t nbytes, loff_t off)
1520 {
1521 struct rdtgroup *rdtgrp;
1522 enum rdtgrp_mode mode;
1523 int ret = 0;
1524
1525 rdtgrp = rdtgroup_kn_lock_live(of->kn);
1526 if (!rdtgrp) {
1527 rdtgroup_kn_unlock(of->kn);
1528 return -ENOENT;
1529 }
1530
1531 /* Valid input requires a trailing newline */
1532 if (nbytes == 0 || buf[nbytes - 1] != '\n') {
1533 rdt_last_cmd_puts("mode: Invalid input\n");
1534 ret = -EINVAL;
1535 goto out;
1536 }
1537
1538 buf[nbytes - 1] = '\0';
1539
1540 mode = rdtgrp->mode;
1541
1542 if ((!strcmp(buf, "shareable") && mode == RDT_MODE_SHAREABLE) ||
1543 (!strcmp(buf, "exclusive") && mode == RDT_MODE_EXCLUSIVE) ||
1544 (!strcmp(buf, "pseudo-locksetup") &&
1545 mode == RDT_MODE_PSEUDO_LOCKSETUP) ||
1546 (!strcmp(buf, "pseudo-locked") && mode == RDT_MODE_PSEUDO_LOCKED))
1547 goto out;
1548
1549 if (mode == RDT_MODE_PSEUDO_LOCKED) {
1550 rdt_last_cmd_puts("Cannot change pseudo-locked group\n");
1551 ret = -EINVAL;
1552 goto out;
1553 }
1554
1555 if (!strcmp(buf, "shareable")) {
1556 if (rdtgrp->mode == RDT_MODE_PSEUDO_LOCKSETUP) {
1557 ret = rdtgroup_locksetup_exit(rdtgrp);
1558 if (ret)
1559 goto out;
1560 }
1561 rdtgrp->mode = RDT_MODE_SHAREABLE;
1562 } else if (!strcmp(buf, "exclusive")) {
1563 if (!rdtgroup_mode_test_exclusive(rdtgrp)) {
1564 ret = -EINVAL;
1565 goto out;
1566 }
1567 if (rdtgrp->mode == RDT_MODE_PSEUDO_LOCKSETUP) {
1568 ret = rdtgroup_locksetup_exit(rdtgrp);
1569 if (ret)
1570 goto out;
1571 }
1572 rdtgrp->mode = RDT_MODE_EXCLUSIVE;
1573 } else if (IS_ENABLED(CONFIG_RESCTRL_FS_PSEUDO_LOCK) &&
1574 !strcmp(buf, "pseudo-locksetup")) {
1575 ret = rdtgroup_locksetup_enter(rdtgrp);
1576 if (ret)
1577 goto out;
1578 rdtgrp->mode = RDT_MODE_PSEUDO_LOCKSETUP;
1579 } else {
1580 rdt_last_cmd_puts("Unknown or unsupported mode\n");
1581 ret = -EINVAL;
1582 }
1583
1584 out:
1585 rdtgroup_kn_unlock(of->kn);
1586 return ret ?: nbytes;
1587 }
1588
1589 /**
1590 * rdtgroup_cbm_to_size - Translate CBM to size in bytes
1591 * @r: RDT resource to which @d belongs.
1592 * @d: RDT domain instance.
1593 * @cbm: bitmask for which the size should be computed.
1594 *
1595 * The bitmask provided associated with the RDT domain instance @d will be
1596 * translated into how many bytes it represents. The size in bytes is
1597 * computed by first dividing the total cache size by the CBM length to
1598 * determine how many bytes each bit in the bitmask represents. The result
1599 * is multiplied with the number of bits set in the bitmask.
1600 *
1601 * @cbm is unsigned long, even if only 32 bits are used to make the
1602 * bitmap functions work correctly.
1603 *
1604 * Return: Size (in bytes) of cache portion represented by CBM, 0 on failure.
1605 */
rdtgroup_cbm_to_size(struct rdt_resource * r,struct rdt_ctrl_domain * d,unsigned long cbm)1606 unsigned int rdtgroup_cbm_to_size(struct rdt_resource *r,
1607 struct rdt_ctrl_domain *d, unsigned long cbm)
1608 {
1609 unsigned int size = 0;
1610 struct cacheinfo *ci;
1611 int num_b;
1612
1613 if (WARN_ON_ONCE(r->ctrl_scope != RESCTRL_L2_CACHE && r->ctrl_scope != RESCTRL_L3_CACHE))
1614 return size;
1615
1616 num_b = bitmap_weight(&cbm, r->cache.cbm_len);
1617 ci = get_cpu_cacheinfo_level(cpumask_any(&d->hdr.cpu_mask), r->ctrl_scope);
1618 if (ci)
1619 size = ci->size / r->cache.cbm_len * num_b;
1620
1621 return size;
1622 }
1623
is_mba_sc(struct rdt_resource * r)1624 bool is_mba_sc(struct rdt_resource *r)
1625 {
1626 if (!r)
1627 r = resctrl_arch_get_resource(RDT_RESOURCE_MBA);
1628
1629 /*
1630 * The software controller support is only applicable to MBA resource.
1631 * Make sure to check for resource type.
1632 */
1633 if (r->rid != RDT_RESOURCE_MBA)
1634 return false;
1635
1636 return r->membw.mba_sc;
1637 }
1638
1639 /*
1640 * rdtgroup_size_show - Display size in bytes of allocated regions
1641 *
1642 * The "size" file mirrors the layout of the "schemata" file, printing the
1643 * size in bytes of each region instead of the capacity bitmask.
1644 */
rdtgroup_size_show(struct kernfs_open_file * of,struct seq_file * s,void * v)1645 static int rdtgroup_size_show(struct kernfs_open_file *of,
1646 struct seq_file *s, void *v)
1647 {
1648 struct resctrl_schema *schema;
1649 enum resctrl_conf_type type;
1650 struct rdt_ctrl_domain *d;
1651 struct rdtgroup *rdtgrp;
1652 struct rdt_resource *r;
1653 unsigned int size;
1654 int ret = 0;
1655 u32 closid;
1656 bool sep;
1657 u32 ctrl;
1658
1659 rdtgrp = rdtgroup_kn_lock_live(of->kn);
1660 if (!rdtgrp) {
1661 rdtgroup_kn_unlock(of->kn);
1662 return -ENOENT;
1663 }
1664
1665 if (rdtgrp->mode == RDT_MODE_PSEUDO_LOCKED) {
1666 if (!rdtgrp->plr->d) {
1667 rdt_last_cmd_puts("Cache domain offline\n");
1668 ret = -ENODEV;
1669 } else {
1670 seq_printf(s, "%*s:", max_name_width,
1671 rdtgrp->plr->s->name);
1672 size = rdtgroup_cbm_to_size(rdtgrp->plr->s->res,
1673 rdtgrp->plr->d,
1674 rdtgrp->plr->cbm);
1675 seq_printf(s, "%d=%u\n", rdtgrp->plr->d->hdr.id, size);
1676 }
1677 goto out;
1678 }
1679
1680 closid = rdtgrp->closid;
1681
1682 list_for_each_entry(schema, &resctrl_schema_all, list) {
1683 r = schema->res;
1684 type = schema->conf_type;
1685 sep = false;
1686 seq_printf(s, "%*s:", max_name_width, schema->name);
1687 list_for_each_entry_rcu(d, &r->ctrl_domains, hdr.list, lockdep_is_cpus_held()) {
1688 if (sep)
1689 seq_putc(s, ';');
1690 if (rdtgrp->mode == RDT_MODE_PSEUDO_LOCKSETUP) {
1691 size = 0;
1692 } else {
1693 if (is_mba_sc(r))
1694 ctrl = d->mbps_val[closid];
1695 else
1696 ctrl = resctrl_arch_get_config(r, d,
1697 closid,
1698 type);
1699 if (r->rid == RDT_RESOURCE_MBA ||
1700 r->rid == RDT_RESOURCE_SMBA)
1701 size = ctrl;
1702 else
1703 size = rdtgroup_cbm_to_size(r, d, ctrl);
1704 }
1705 seq_printf(s, "%d=%u", d->hdr.id, size);
1706 sep = true;
1707 }
1708 seq_putc(s, '\n');
1709 }
1710
1711 out:
1712 rdtgroup_kn_unlock(of->kn);
1713
1714 return ret;
1715 }
1716
mondata_config_read(struct resctrl_mon_config_info * mon_info)1717 static void mondata_config_read(struct resctrl_mon_config_info *mon_info)
1718 {
1719 smp_call_function_any(&mon_info->d->hdr.cpu_mask,
1720 resctrl_arch_mon_event_config_read, mon_info, 1);
1721 }
1722
mbm_config_show(struct seq_file * s,struct rdt_resource * r,u32 evtid)1723 static int mbm_config_show(struct seq_file *s, struct rdt_resource *r, u32 evtid)
1724 {
1725 struct resctrl_mon_config_info mon_info;
1726 struct rdt_l3_mon_domain *dom;
1727 bool sep = false;
1728
1729 lockdep_assert_cpus_held();
1730 lockdep_assert_held(&rdtgroup_mutex);
1731
1732 list_for_each_entry_rcu(dom, &r->mon_domains, hdr.list, lockdep_is_cpus_held()) {
1733 if (sep)
1734 seq_puts(s, ";");
1735
1736 memset(&mon_info, 0, sizeof(struct resctrl_mon_config_info));
1737 mon_info.r = r;
1738 mon_info.d = dom;
1739 mon_info.evtid = evtid;
1740 mondata_config_read(&mon_info);
1741
1742 seq_printf(s, "%d=0x%02x", dom->hdr.id, mon_info.mon_config);
1743 sep = true;
1744 }
1745 seq_puts(s, "\n");
1746
1747 return 0;
1748 }
1749
mbm_total_bytes_config_show(struct kernfs_open_file * of,struct seq_file * seq,void * v)1750 static int mbm_total_bytes_config_show(struct kernfs_open_file *of,
1751 struct seq_file *seq, void *v)
1752 {
1753 struct rdt_resource *r = rdt_kn_parent_priv(of->kn);
1754
1755 if (!info_kn_lock(of->kn))
1756 return -ENOENT;
1757
1758 mbm_config_show(seq, r, QOS_L3_MBM_TOTAL_EVENT_ID);
1759
1760 info_kn_unlock(of->kn);
1761 return 0;
1762 }
1763
mbm_local_bytes_config_show(struct kernfs_open_file * of,struct seq_file * seq,void * v)1764 static int mbm_local_bytes_config_show(struct kernfs_open_file *of,
1765 struct seq_file *seq, void *v)
1766 {
1767 struct rdt_resource *r = rdt_kn_parent_priv(of->kn);
1768
1769 if (!info_kn_lock(of->kn))
1770 return -ENOENT;
1771
1772 mbm_config_show(seq, r, QOS_L3_MBM_LOCAL_EVENT_ID);
1773
1774 info_kn_unlock(of->kn);
1775 return 0;
1776 }
1777
mbm_config_write_domain(struct rdt_resource * r,struct rdt_l3_mon_domain * d,u32 evtid,u32 val)1778 static void mbm_config_write_domain(struct rdt_resource *r,
1779 struct rdt_l3_mon_domain *d, u32 evtid, u32 val)
1780 {
1781 struct resctrl_mon_config_info mon_info = {0};
1782
1783 /*
1784 * Read the current config value first. If both are the same then
1785 * no need to write it again.
1786 */
1787 mon_info.r = r;
1788 mon_info.d = d;
1789 mon_info.evtid = evtid;
1790 mondata_config_read(&mon_info);
1791 if (mon_info.mon_config == val)
1792 return;
1793
1794 mon_info.mon_config = val;
1795
1796 /*
1797 * Update MSR_IA32_EVT_CFG_BASE MSR on one of the CPUs in the
1798 * domain. The MSRs offset from MSR MSR_IA32_EVT_CFG_BASE
1799 * are scoped at the domain level. Writing any of these MSRs
1800 * on one CPU is observed by all the CPUs in the domain.
1801 */
1802 smp_call_function_any(&d->hdr.cpu_mask, resctrl_arch_mon_event_config_write,
1803 &mon_info, 1);
1804
1805 /*
1806 * When an Event Configuration is changed, the bandwidth counters
1807 * for all RMIDs and Events will be cleared by the hardware. The
1808 * hardware also sets MSR_IA32_QM_CTR.Unavailable (bit 62) for
1809 * every RMID on the next read to any event for every RMID.
1810 * Subsequent reads will have MSR_IA32_QM_CTR.Unavailable (bit 62)
1811 * cleared while it is tracked by the hardware. Clear the
1812 * mbm_local and mbm_total counts for all the RMIDs.
1813 */
1814 resctrl_arch_reset_rmid_all(r, d);
1815 }
1816
mon_config_write(struct rdt_resource * r,char * tok,u32 evtid)1817 static int mon_config_write(struct rdt_resource *r, char *tok, u32 evtid)
1818 {
1819 char *dom_str = NULL, *id_str;
1820 struct rdt_l3_mon_domain *d;
1821 unsigned long dom_id, val;
1822
1823 /* Walking r->domains, ensure it can't race with cpuhp */
1824 lockdep_assert_cpus_held();
1825
1826 next:
1827 if (!tok || tok[0] == '\0')
1828 return 0;
1829
1830 /* Start processing the strings for each domain */
1831 dom_str = strim(strsep(&tok, ";"));
1832 id_str = strsep(&dom_str, "=");
1833
1834 if (!id_str || kstrtoul(id_str, 10, &dom_id)) {
1835 rdt_last_cmd_puts("Missing '=' or non-numeric domain id\n");
1836 return -EINVAL;
1837 }
1838
1839 if (!dom_str || kstrtoul(dom_str, 16, &val)) {
1840 rdt_last_cmd_puts("Non-numeric event configuration value\n");
1841 return -EINVAL;
1842 }
1843
1844 /* Value from user cannot be more than the supported set of events */
1845 if ((val & r->mon.mbm_cfg_mask) != val) {
1846 rdt_last_cmd_printf("Invalid event configuration: max valid mask is 0x%02x\n",
1847 r->mon.mbm_cfg_mask);
1848 return -EINVAL;
1849 }
1850
1851 list_for_each_entry_rcu(d, &r->mon_domains, hdr.list, lockdep_is_cpus_held()) {
1852 if (d->hdr.id == dom_id) {
1853 mbm_config_write_domain(r, d, evtid, val);
1854 goto next;
1855 }
1856 }
1857
1858 return -EINVAL;
1859 }
1860
mbm_total_bytes_config_write(struct kernfs_open_file * of,char * buf,size_t nbytes,loff_t off)1861 static ssize_t mbm_total_bytes_config_write(struct kernfs_open_file *of,
1862 char *buf, size_t nbytes,
1863 loff_t off)
1864 {
1865 struct rdt_resource *r = rdt_kn_parent_priv(of->kn);
1866 int ret;
1867
1868 if (!info_kn_lock(of->kn))
1869 return -ENOENT;
1870
1871 rdt_last_cmd_clear();
1872
1873 /* Valid input requires a trailing newline */
1874 if (nbytes == 0 || buf[nbytes - 1] != '\n') {
1875 rdt_last_cmd_puts("mbm_total_bytes_config: Invalid input\n");
1876 ret = -EINVAL;
1877 goto out_unlock;
1878 }
1879
1880 buf[nbytes - 1] = '\0';
1881
1882 ret = mon_config_write(r, buf, QOS_L3_MBM_TOTAL_EVENT_ID);
1883
1884 out_unlock:
1885 info_kn_unlock(of->kn);
1886
1887 return ret ?: nbytes;
1888 }
1889
mbm_local_bytes_config_write(struct kernfs_open_file * of,char * buf,size_t nbytes,loff_t off)1890 static ssize_t mbm_local_bytes_config_write(struct kernfs_open_file *of,
1891 char *buf, size_t nbytes,
1892 loff_t off)
1893 {
1894 struct rdt_resource *r = rdt_kn_parent_priv(of->kn);
1895 int ret;
1896
1897 if (!info_kn_lock(of->kn))
1898 return -ENOENT;
1899
1900 rdt_last_cmd_clear();
1901
1902 /* Valid input requires a trailing newline */
1903 if (nbytes == 0 || buf[nbytes - 1] != '\n') {
1904 rdt_last_cmd_puts("mbm_local_bytes_config: Invalid input\n");
1905 ret = -EINVAL;
1906 goto out_unlock;
1907 }
1908
1909 buf[nbytes - 1] = '\0';
1910
1911 ret = mon_config_write(r, buf, QOS_L3_MBM_LOCAL_EVENT_ID);
1912
1913 out_unlock:
1914 info_kn_unlock(of->kn);
1915
1916 return ret ?: nbytes;
1917 }
1918
1919 /*
1920 * resctrl_bmec_files_show() — Controls the visibility of BMEC-related resctrl
1921 * files. When @show is true, the files are displayed; when false, the files
1922 * are hidden.
1923 * Don't treat kernfs_find_and_get failure as an error, since this function may
1924 * be called regardless of whether BMEC is supported or the event is enabled.
1925 */
resctrl_bmec_files_show(struct rdt_resource * r,struct kernfs_node * l3_mon_kn,bool show)1926 void resctrl_bmec_files_show(struct rdt_resource *r, struct kernfs_node *l3_mon_kn,
1927 bool show)
1928 {
1929 struct kernfs_node *kn_config, *mon_kn = NULL;
1930 char name[32];
1931
1932 if (!l3_mon_kn) {
1933 sprintf(name, "%s_MON", r->name);
1934 mon_kn = kernfs_find_and_get(kn_info, name);
1935 if (!mon_kn)
1936 return;
1937 l3_mon_kn = mon_kn;
1938 }
1939
1940 kn_config = kernfs_find_and_get(l3_mon_kn, "mbm_total_bytes_config");
1941 if (kn_config) {
1942 kernfs_show(kn_config, show);
1943 kernfs_put(kn_config);
1944 }
1945
1946 kn_config = kernfs_find_and_get(l3_mon_kn, "mbm_local_bytes_config");
1947 if (kn_config) {
1948 kernfs_show(kn_config, show);
1949 kernfs_put(kn_config);
1950 }
1951
1952 /* Release the reference only if it was acquired */
1953 if (mon_kn)
1954 kernfs_put(mon_kn);
1955 }
1956
rdtgroup_name_by_closid(u32 closid)1957 const char *rdtgroup_name_by_closid(u32 closid)
1958 {
1959 struct rdtgroup *rdtgrp;
1960
1961 list_for_each_entry(rdtgrp, &rdt_all_groups, rdtgroup_list) {
1962 if (rdtgrp->closid == closid)
1963 return rdt_kn_name(rdtgrp->kn);
1964 }
1965
1966 return NULL;
1967 }
1968
1969 /* rdtgroup information files for one cache resource. */
1970 static struct rftype res_common_files[] = {
1971 {
1972 .name = "last_cmd_status",
1973 .mode = 0444,
1974 .kf_ops = &rdtgroup_kf_single_ops,
1975 .seq_show = rdt_last_cmd_status_show,
1976 .fflags = RFTYPE_TOP_INFO,
1977 },
1978 {
1979 .name = "mbm_assign_on_mkdir",
1980 .mode = 0644,
1981 .kf_ops = &rdtgroup_kf_single_ops,
1982 .seq_show = resctrl_mbm_assign_on_mkdir_show,
1983 .write = resctrl_mbm_assign_on_mkdir_write,
1984 },
1985 {
1986 .name = "num_closids",
1987 .mode = 0444,
1988 .kf_ops = &rdtgroup_kf_single_ops,
1989 .seq_show = rdt_num_closids_show,
1990 .fflags = RFTYPE_CTRL_INFO,
1991 },
1992 {
1993 .name = "mon_features",
1994 .mode = 0444,
1995 .kf_ops = &rdtgroup_kf_single_ops,
1996 .seq_show = rdt_mon_features_show,
1997 .fflags = RFTYPE_MON_INFO,
1998 },
1999 {
2000 .name = "available_mbm_cntrs",
2001 .mode = 0444,
2002 .kf_ops = &rdtgroup_kf_single_ops,
2003 .seq_show = resctrl_available_mbm_cntrs_show,
2004 },
2005 {
2006 .name = "num_rmids",
2007 .mode = 0444,
2008 .kf_ops = &rdtgroup_kf_single_ops,
2009 .seq_show = rdt_num_rmids_show,
2010 .fflags = RFTYPE_MON_INFO,
2011 },
2012 {
2013 .name = "cbm_mask",
2014 .mode = 0444,
2015 .kf_ops = &rdtgroup_kf_single_ops,
2016 .seq_show = rdt_default_ctrl_show,
2017 .fflags = RFTYPE_CTRL_INFO | RFTYPE_RES_CACHE,
2018 },
2019 {
2020 .name = "num_mbm_cntrs",
2021 .mode = 0444,
2022 .kf_ops = &rdtgroup_kf_single_ops,
2023 .seq_show = resctrl_num_mbm_cntrs_show,
2024 },
2025 {
2026 .name = "min_cbm_bits",
2027 .mode = 0444,
2028 .kf_ops = &rdtgroup_kf_single_ops,
2029 .seq_show = rdt_min_cbm_bits_show,
2030 .fflags = RFTYPE_CTRL_INFO | RFTYPE_RES_CACHE,
2031 },
2032 {
2033 .name = "shareable_bits",
2034 .mode = 0444,
2035 .kf_ops = &rdtgroup_kf_single_ops,
2036 .seq_show = rdt_shareable_bits_show,
2037 .fflags = RFTYPE_CTRL_INFO | RFTYPE_RES_CACHE,
2038 },
2039 {
2040 .name = "bit_usage",
2041 .mode = 0444,
2042 .kf_ops = &rdtgroup_kf_single_ops,
2043 .seq_show = rdt_bit_usage_show,
2044 .fflags = RFTYPE_CTRL_INFO | RFTYPE_RES_CACHE,
2045 },
2046 {
2047 .name = "min_bandwidth",
2048 .mode = 0444,
2049 .kf_ops = &rdtgroup_kf_single_ops,
2050 .seq_show = rdt_min_bw_show,
2051 .fflags = RFTYPE_CTRL_INFO | RFTYPE_RES_MB,
2052 },
2053 {
2054 .name = "bandwidth_gran",
2055 .mode = 0444,
2056 .kf_ops = &rdtgroup_kf_single_ops,
2057 .seq_show = rdt_bw_gran_show,
2058 .fflags = RFTYPE_CTRL_INFO | RFTYPE_RES_MB,
2059 },
2060 {
2061 .name = "delay_linear",
2062 .mode = 0444,
2063 .kf_ops = &rdtgroup_kf_single_ops,
2064 .seq_show = rdt_delay_linear_show,
2065 .fflags = RFTYPE_CTRL_INFO | RFTYPE_RES_MB,
2066 },
2067 /*
2068 * Platform specific which (if any) capabilities are provided by
2069 * thread_throttle_mode. Defer "fflags" initialization to platform
2070 * discovery.
2071 */
2072 {
2073 .name = "thread_throttle_mode",
2074 .mode = 0444,
2075 .kf_ops = &rdtgroup_kf_single_ops,
2076 .seq_show = rdt_thread_throttle_mode_show,
2077 },
2078 {
2079 .name = "io_alloc",
2080 .mode = 0644,
2081 .kf_ops = &rdtgroup_kf_single_ops,
2082 .seq_show = resctrl_io_alloc_show,
2083 .write = resctrl_io_alloc_write,
2084 },
2085 {
2086 .name = "io_alloc_cbm",
2087 .mode = 0644,
2088 .kf_ops = &rdtgroup_kf_single_ops,
2089 .seq_show = resctrl_io_alloc_cbm_show,
2090 .write = resctrl_io_alloc_cbm_write,
2091 },
2092 {
2093 .name = "max_threshold_occupancy",
2094 .mode = 0644,
2095 .kf_ops = &rdtgroup_kf_single_ops,
2096 .write = max_threshold_occ_write,
2097 .seq_show = max_threshold_occ_show,
2098 .fflags = RFTYPE_MON_INFO | RFTYPE_RES_CACHE,
2099 },
2100 {
2101 .name = "mbm_total_bytes_config",
2102 .mode = 0644,
2103 .kf_ops = &rdtgroup_kf_single_ops,
2104 .seq_show = mbm_total_bytes_config_show,
2105 .write = mbm_total_bytes_config_write,
2106 },
2107 {
2108 .name = "mbm_local_bytes_config",
2109 .mode = 0644,
2110 .kf_ops = &rdtgroup_kf_single_ops,
2111 .seq_show = mbm_local_bytes_config_show,
2112 .write = mbm_local_bytes_config_write,
2113 },
2114 {
2115 .name = "event_filter",
2116 .mode = 0444,
2117 .kf_ops = &rdtgroup_kf_single_ops,
2118 .seq_show = event_filter_show,
2119 .write = event_filter_write,
2120 },
2121 {
2122 .name = "mbm_L3_assignments",
2123 .mode = 0644,
2124 .kf_ops = &rdtgroup_kf_single_ops,
2125 .seq_show = mbm_L3_assignments_show,
2126 .write = mbm_L3_assignments_write,
2127 },
2128 {
2129 .name = "mbm_assign_mode",
2130 .mode = 0644,
2131 .kf_ops = &rdtgroup_kf_single_ops,
2132 .seq_show = resctrl_mbm_assign_mode_show,
2133 .write = resctrl_mbm_assign_mode_write,
2134 .fflags = RFTYPE_MON_INFO | RFTYPE_RES_CACHE,
2135 },
2136 {
2137 .name = "cpus",
2138 .mode = 0644,
2139 .kf_ops = &rdtgroup_kf_single_ops,
2140 .write = rdtgroup_cpus_write,
2141 .seq_show = rdtgroup_cpus_show,
2142 .fflags = RFTYPE_BASE,
2143 },
2144 {
2145 .name = "cpus_list",
2146 .mode = 0644,
2147 .kf_ops = &rdtgroup_kf_single_ops,
2148 .write = rdtgroup_cpus_write,
2149 .seq_show = rdtgroup_cpus_show,
2150 .flags = RFTYPE_FLAGS_CPUS_LIST,
2151 .fflags = RFTYPE_BASE,
2152 },
2153 {
2154 .name = "tasks",
2155 .mode = 0644,
2156 .kf_ops = &rdtgroup_kf_single_ops,
2157 .write = rdtgroup_tasks_write,
2158 .seq_show = rdtgroup_tasks_show,
2159 .fflags = RFTYPE_BASE,
2160 },
2161 {
2162 .name = "mon_hw_id",
2163 .mode = 0444,
2164 .kf_ops = &rdtgroup_kf_single_ops,
2165 .seq_show = rdtgroup_rmid_show,
2166 .fflags = RFTYPE_MON_BASE | RFTYPE_DEBUG,
2167 },
2168 {
2169 .name = "schemata",
2170 .mode = 0644,
2171 .kf_ops = &rdtgroup_kf_single_ops,
2172 .write = rdtgroup_schemata_write,
2173 .seq_show = rdtgroup_schemata_show,
2174 .fflags = RFTYPE_CTRL_BASE,
2175 },
2176 {
2177 .name = "mba_MBps_event",
2178 .mode = 0644,
2179 .kf_ops = &rdtgroup_kf_single_ops,
2180 .write = rdtgroup_mba_mbps_event_write,
2181 .seq_show = rdtgroup_mba_mbps_event_show,
2182 },
2183 {
2184 .name = "mode",
2185 .mode = 0644,
2186 .kf_ops = &rdtgroup_kf_single_ops,
2187 .write = rdtgroup_mode_write,
2188 .seq_show = rdtgroup_mode_show,
2189 .fflags = RFTYPE_CTRL_BASE,
2190 },
2191 {
2192 .name = "size",
2193 .mode = 0444,
2194 .kf_ops = &rdtgroup_kf_single_ops,
2195 .seq_show = rdtgroup_size_show,
2196 .fflags = RFTYPE_CTRL_BASE,
2197 },
2198 {
2199 .name = "sparse_masks",
2200 .mode = 0444,
2201 .kf_ops = &rdtgroup_kf_single_ops,
2202 .seq_show = rdt_has_sparse_bitmasks_show,
2203 .fflags = RFTYPE_CTRL_INFO | RFTYPE_RES_CACHE,
2204 },
2205 {
2206 .name = "ctrl_hw_id",
2207 .mode = 0444,
2208 .kf_ops = &rdtgroup_kf_single_ops,
2209 .seq_show = rdtgroup_closid_show,
2210 .fflags = RFTYPE_CTRL_BASE | RFTYPE_DEBUG,
2211 },
2212 };
2213
rdtgroup_add_files(struct kernfs_node * kn,unsigned long fflags)2214 static int rdtgroup_add_files(struct kernfs_node *kn, unsigned long fflags)
2215 {
2216 struct rftype *rfts, *rft;
2217 int ret, len;
2218
2219 rfts = res_common_files;
2220 len = ARRAY_SIZE(res_common_files);
2221
2222 lockdep_assert_held(&rdtgroup_mutex);
2223
2224 if (resctrl_debug)
2225 fflags |= RFTYPE_DEBUG;
2226
2227 for (rft = rfts; rft < rfts + len; rft++) {
2228 if (rft->fflags && ((fflags & rft->fflags) == rft->fflags)) {
2229 ret = rdtgroup_add_file(kn, rft);
2230 if (ret)
2231 goto error;
2232 }
2233 }
2234
2235 return 0;
2236 error:
2237 pr_warn("Failed to add %s, err=%d\n", rft->name, ret);
2238 while (--rft >= rfts) {
2239 if ((fflags & rft->fflags) == rft->fflags)
2240 kernfs_remove_by_name(kn, rft->name);
2241 }
2242 return ret;
2243 }
2244
rdtgroup_get_rftype_by_name(const char * name)2245 static struct rftype *rdtgroup_get_rftype_by_name(const char *name)
2246 {
2247 struct rftype *rfts, *rft;
2248 int len;
2249
2250 rfts = res_common_files;
2251 len = ARRAY_SIZE(res_common_files);
2252
2253 for (rft = rfts; rft < rfts + len; rft++) {
2254 if (!strcmp(rft->name, name))
2255 return rft;
2256 }
2257
2258 return NULL;
2259 }
2260
thread_throttle_mode_init(void)2261 static void thread_throttle_mode_init(void)
2262 {
2263 enum membw_throttle_mode throttle_mode = THREAD_THROTTLE_UNDEFINED;
2264 struct rdt_resource *r_mba, *r_smba;
2265
2266 r_mba = resctrl_arch_get_resource(RDT_RESOURCE_MBA);
2267 if (r_mba->alloc_capable &&
2268 r_mba->membw.throttle_mode != THREAD_THROTTLE_UNDEFINED)
2269 throttle_mode = r_mba->membw.throttle_mode;
2270
2271 r_smba = resctrl_arch_get_resource(RDT_RESOURCE_SMBA);
2272 if (r_smba->alloc_capable &&
2273 r_smba->membw.throttle_mode != THREAD_THROTTLE_UNDEFINED)
2274 throttle_mode = r_smba->membw.throttle_mode;
2275
2276 if (throttle_mode == THREAD_THROTTLE_UNDEFINED)
2277 return;
2278
2279 resctrl_file_fflags_init("thread_throttle_mode",
2280 RFTYPE_CTRL_INFO | RFTYPE_RES_MB);
2281 }
2282
2283 /*
2284 * The resctrl file "io_alloc" is added using L3 resource. However, it results
2285 * in this file being visible for *all* cache resources (eg. L2 cache),
2286 * whether it supports "io_alloc" or not.
2287 */
io_alloc_init(void)2288 static void io_alloc_init(void)
2289 {
2290 struct rdt_resource *r = resctrl_arch_get_resource(RDT_RESOURCE_L3);
2291
2292 if (r->cache.io_alloc_capable) {
2293 resctrl_file_fflags_init("io_alloc", RFTYPE_CTRL_INFO |
2294 RFTYPE_RES_CACHE);
2295 resctrl_file_fflags_init("io_alloc_cbm",
2296 RFTYPE_CTRL_INFO | RFTYPE_RES_CACHE);
2297 }
2298 }
2299
resctrl_file_fflags_init(const char * config,unsigned long fflags)2300 void resctrl_file_fflags_init(const char *config, unsigned long fflags)
2301 {
2302 struct rftype *rft;
2303
2304 rft = rdtgroup_get_rftype_by_name(config);
2305 if (rft)
2306 rft->fflags = fflags;
2307 }
2308
resctrl_file_mode_init(const char * config,umode_t mode)2309 void resctrl_file_mode_init(const char *config, umode_t mode)
2310 {
2311 struct rftype *rft;
2312
2313 rft = rdtgroup_get_rftype_by_name(config);
2314 if (rft)
2315 rft->mode = mode;
2316 }
2317
2318 /**
2319 * rdtgroup_kn_mode_restrict - Restrict user access to named resctrl file
2320 * @r: The resource group with which the file is associated.
2321 * @name: Name of the file
2322 *
2323 * The permissions of named resctrl file, directory, or link are modified
2324 * to not allow read, write, or execute by any user.
2325 *
2326 * WARNING: This function is intended to communicate to the user that the
2327 * resctrl file has been locked down - that it is not relevant to the
2328 * particular state the system finds itself in. It should not be relied
2329 * on to protect from user access because after the file's permissions
2330 * are restricted the user can still change the permissions using chmod
2331 * from the command line.
2332 *
2333 * Return: 0 on success, <0 on failure.
2334 */
rdtgroup_kn_mode_restrict(struct rdtgroup * r,const char * name)2335 int rdtgroup_kn_mode_restrict(struct rdtgroup *r, const char *name)
2336 {
2337 struct iattr iattr = {.ia_valid = ATTR_MODE,};
2338 struct kernfs_node *kn;
2339 int ret = 0;
2340
2341 kn = kernfs_find_and_get_ns(r->kn, name, NULL);
2342 if (!kn)
2343 return -ENOENT;
2344
2345 switch (kernfs_type(kn)) {
2346 case KERNFS_DIR:
2347 iattr.ia_mode = S_IFDIR;
2348 break;
2349 case KERNFS_FILE:
2350 iattr.ia_mode = S_IFREG;
2351 break;
2352 case KERNFS_LINK:
2353 iattr.ia_mode = S_IFLNK;
2354 break;
2355 }
2356
2357 ret = kernfs_setattr(kn, &iattr);
2358 kernfs_put(kn);
2359 return ret;
2360 }
2361
2362 /**
2363 * rdtgroup_kn_mode_restore - Restore user access to named resctrl file
2364 * @r: The resource group with which the file is associated.
2365 * @name: Name of the file
2366 * @mask: Mask of permissions that should be restored
2367 *
2368 * Restore the permissions of the named file. If @name is a directory the
2369 * permissions of its parent will be used.
2370 *
2371 * Return: 0 on success, <0 on failure.
2372 */
rdtgroup_kn_mode_restore(struct rdtgroup * r,const char * name,umode_t mask)2373 int rdtgroup_kn_mode_restore(struct rdtgroup *r, const char *name,
2374 umode_t mask)
2375 {
2376 struct iattr iattr = {.ia_valid = ATTR_MODE,};
2377 struct kernfs_node *kn, *parent;
2378 struct rftype *rfts, *rft;
2379 int ret, len;
2380
2381 rfts = res_common_files;
2382 len = ARRAY_SIZE(res_common_files);
2383
2384 for (rft = rfts; rft < rfts + len; rft++) {
2385 if (!strcmp(rft->name, name))
2386 iattr.ia_mode = rft->mode & mask;
2387 }
2388
2389 kn = kernfs_find_and_get_ns(r->kn, name, NULL);
2390 if (!kn)
2391 return -ENOENT;
2392
2393 switch (kernfs_type(kn)) {
2394 case KERNFS_DIR:
2395 parent = kernfs_get_parent(kn);
2396 if (parent) {
2397 iattr.ia_mode |= parent->mode;
2398 kernfs_put(parent);
2399 }
2400 iattr.ia_mode |= S_IFDIR;
2401 break;
2402 case KERNFS_FILE:
2403 iattr.ia_mode |= S_IFREG;
2404 break;
2405 case KERNFS_LINK:
2406 iattr.ia_mode |= S_IFLNK;
2407 break;
2408 }
2409
2410 ret = kernfs_setattr(kn, &iattr);
2411 kernfs_put(kn);
2412 return ret;
2413 }
2414
resctrl_mkdir_event_configs(struct rdt_resource * r,struct kernfs_node * l3_mon_kn)2415 static int resctrl_mkdir_event_configs(struct rdt_resource *r, struct kernfs_node *l3_mon_kn)
2416 {
2417 struct kernfs_node *kn_subdir, *kn_subdir2;
2418 struct mon_evt *mevt;
2419 int ret;
2420
2421 kn_subdir = kernfs_create_dir(l3_mon_kn, "event_configs", l3_mon_kn->mode, NULL);
2422 if (IS_ERR(kn_subdir))
2423 return PTR_ERR(kn_subdir);
2424
2425 ret = rdtgroup_kn_set_ugid(kn_subdir);
2426 if (ret)
2427 return ret;
2428
2429 for_each_mon_event(mevt) {
2430 if (mevt->rid != r->rid || !mevt->enabled || !resctrl_is_mbm_event(mevt->evtid))
2431 continue;
2432
2433 kn_subdir2 = kernfs_create_dir(kn_subdir, mevt->name, kn_subdir->mode, mevt);
2434 if (IS_ERR(kn_subdir2))
2435 return PTR_ERR(kn_subdir2);
2436
2437 ret = rdtgroup_kn_set_ugid(kn_subdir2);
2438 if (ret)
2439 return ret;
2440
2441 ret = rdtgroup_add_files(kn_subdir2, RFTYPE_ASSIGN_CONFIG);
2442 if (ret)
2443 return ret;
2444 }
2445
2446 return 0;
2447 }
2448
rdtgroup_mkdir_info_resdir(void * priv,char * name,unsigned long fflags)2449 static int rdtgroup_mkdir_info_resdir(void *priv, char *name,
2450 unsigned long fflags)
2451 {
2452 struct kernfs_node *kn_subdir;
2453 struct rdt_resource *r;
2454 int ret;
2455
2456 kn_subdir = kernfs_create_dir(kn_info, name,
2457 kn_info->mode, priv);
2458 if (IS_ERR(kn_subdir))
2459 return PTR_ERR(kn_subdir);
2460
2461 ret = rdtgroup_kn_set_ugid(kn_subdir);
2462 if (ret)
2463 return ret;
2464
2465 ret = rdtgroup_add_files(kn_subdir, fflags);
2466 if (ret)
2467 return ret;
2468
2469 if ((fflags & RFTYPE_MON_INFO) == RFTYPE_MON_INFO) {
2470 r = priv;
2471 if (r->mon.mbm_cntr_assignable) {
2472 ret = resctrl_mkdir_event_configs(r, kn_subdir);
2473 if (ret)
2474 return ret;
2475 /*
2476 * Hide BMEC related files if mbm_event mode
2477 * is enabled.
2478 */
2479 if (resctrl_arch_mbm_cntr_assign_enabled(r))
2480 resctrl_bmec_files_show(r, kn_subdir, false);
2481 }
2482 }
2483
2484 kernfs_activate(kn_subdir);
2485
2486 return ret;
2487 }
2488
fflags_from_resource(struct rdt_resource * r)2489 static unsigned long fflags_from_resource(struct rdt_resource *r)
2490 {
2491 switch (r->rid) {
2492 case RDT_RESOURCE_L3:
2493 case RDT_RESOURCE_L2:
2494 return RFTYPE_RES_CACHE;
2495 case RDT_RESOURCE_MBA:
2496 case RDT_RESOURCE_SMBA:
2497 return RFTYPE_RES_MB;
2498 case RDT_RESOURCE_PERF_PKG:
2499 return RFTYPE_RES_PERF_PKG;
2500 }
2501
2502 return WARN_ON_ONCE(1);
2503 }
2504
rdtgroup_create_info_dir(struct kernfs_node * parent_kn)2505 static int rdtgroup_create_info_dir(struct kernfs_node *parent_kn)
2506 {
2507 struct resctrl_schema *s;
2508 struct rdt_resource *r;
2509 unsigned long fflags;
2510 char name[32];
2511 int ret;
2512
2513 /* create the directory */
2514 kn_info = kernfs_create_dir(parent_kn, "info", parent_kn->mode, NULL);
2515 if (IS_ERR(kn_info))
2516 return PTR_ERR(kn_info);
2517
2518 ret = rdtgroup_add_files(kn_info, RFTYPE_TOP_INFO);
2519 if (ret)
2520 goto out_destroy;
2521
2522 /* loop over enabled controls, these are all alloc_capable */
2523 list_for_each_entry(s, &resctrl_schema_all, list) {
2524 r = s->res;
2525 fflags = fflags_from_resource(r) | RFTYPE_CTRL_INFO;
2526 ret = rdtgroup_mkdir_info_resdir(s, s->name, fflags);
2527 if (ret)
2528 goto out_destroy;
2529 }
2530
2531 for_each_mon_capable_rdt_resource(r) {
2532 fflags = fflags_from_resource(r) | RFTYPE_MON_INFO;
2533 sprintf(name, "%s_MON", r->name);
2534 ret = rdtgroup_mkdir_info_resdir(r, name, fflags);
2535 if (ret)
2536 goto out_destroy;
2537 }
2538
2539 ret = rdtgroup_kn_set_ugid(kn_info);
2540 if (ret)
2541 goto out_destroy;
2542
2543 kernfs_activate(kn_info);
2544
2545 return 0;
2546
2547 out_destroy:
2548 kernfs_remove(kn_info);
2549 return ret;
2550 }
2551
2552 static int
mongroup_create_dir(struct kernfs_node * parent_kn,struct rdtgroup * prgrp,char * name,struct kernfs_node ** dest_kn)2553 mongroup_create_dir(struct kernfs_node *parent_kn, struct rdtgroup *prgrp,
2554 char *name, struct kernfs_node **dest_kn)
2555 {
2556 struct kernfs_node *kn;
2557 int ret;
2558
2559 /* create the directory */
2560 kn = kernfs_create_dir(parent_kn, name, parent_kn->mode, prgrp);
2561 if (IS_ERR(kn))
2562 return PTR_ERR(kn);
2563
2564 if (dest_kn)
2565 *dest_kn = kn;
2566
2567 ret = rdtgroup_kn_set_ugid(kn);
2568 if (ret)
2569 goto out_destroy;
2570
2571 kernfs_activate(kn);
2572
2573 return 0;
2574
2575 out_destroy:
2576 kernfs_remove(kn);
2577 return ret;
2578 }
2579
is_mba_linear(void)2580 static inline bool is_mba_linear(void)
2581 {
2582 return resctrl_arch_get_resource(RDT_RESOURCE_MBA)->membw.delay_linear;
2583 }
2584
mba_sc_domain_allocate(struct rdt_resource * r,struct rdt_ctrl_domain * d)2585 static int mba_sc_domain_allocate(struct rdt_resource *r, struct rdt_ctrl_domain *d)
2586 {
2587 u32 num_closid = resctrl_arch_get_num_closid(r);
2588 int cpu = cpumask_any(&d->hdr.cpu_mask);
2589 int i;
2590
2591 d->mbps_val = kcalloc_node(num_closid, sizeof(*d->mbps_val),
2592 GFP_KERNEL, cpu_to_node(cpu));
2593 if (!d->mbps_val)
2594 return -ENOMEM;
2595
2596 for (i = 0; i < num_closid; i++)
2597 d->mbps_val[i] = MBA_MAX_MBPS;
2598
2599 return 0;
2600 }
2601
mba_sc_domain_destroy(struct rdt_resource * r,struct rdt_ctrl_domain * d)2602 static void mba_sc_domain_destroy(struct rdt_resource *r,
2603 struct rdt_ctrl_domain *d)
2604 {
2605 kfree(d->mbps_val);
2606 d->mbps_val = NULL;
2607 }
2608
2609 /*
2610 * The MBA software controller is supported only if MBM is supported and MBA is
2611 * in linear scale, and the MBM monitor scope is the same as MBA control scope.
2612 *
2613 * The software controller cannot be supported when the MBM counters are
2614 * assignable. There is no guarantee that MBM counters are assigned to the
2615 * event backing the software controller in all monitoring domains of all
2616 * monitoring groups.
2617 */
supports_mba_mbps(void)2618 static bool supports_mba_mbps(void)
2619 {
2620 struct rdt_resource *rmbm = resctrl_arch_get_resource(RDT_RESOURCE_L3);
2621 struct rdt_resource *r = resctrl_arch_get_resource(RDT_RESOURCE_MBA);
2622
2623 return (resctrl_is_mbm_enabled() &&
2624 r->alloc_capable && is_mba_linear() &&
2625 r->ctrl_scope == rmbm->mon_scope &&
2626 !rmbm->mon.mbm_cntr_assignable);
2627 }
2628
2629 /*
2630 * Enable or disable the MBA software controller
2631 * which helps user specify bandwidth in MBps.
2632 */
set_mba_sc(bool mba_sc)2633 static int set_mba_sc(bool mba_sc)
2634 {
2635 struct rdt_resource *r = resctrl_arch_get_resource(RDT_RESOURCE_MBA);
2636 u32 num_closid = resctrl_arch_get_num_closid(r);
2637 struct rdt_ctrl_domain *d;
2638 unsigned long fflags;
2639 int i;
2640
2641 if (!supports_mba_mbps() || mba_sc == is_mba_sc(r))
2642 return -EINVAL;
2643
2644 r->membw.mba_sc = mba_sc;
2645
2646 rdtgroup_default.mba_mbps_event = mba_mbps_default_event;
2647
2648 list_for_each_entry_rcu(d, &r->ctrl_domains, hdr.list, lockdep_is_cpus_held()) {
2649 for (i = 0; i < num_closid; i++)
2650 d->mbps_val[i] = MBA_MAX_MBPS;
2651 }
2652
2653 fflags = mba_sc ? RFTYPE_CTRL_BASE | RFTYPE_MON_BASE : 0;
2654 resctrl_file_fflags_init("mba_MBps_event", fflags);
2655
2656 return 0;
2657 }
2658
2659 /*
2660 * We don't allow rdtgroup directories to be created anywhere
2661 * except the root directory. Thus when looking for the rdtgroup
2662 * structure for a kernfs node we are either looking at a directory,
2663 * in which case the rdtgroup structure is pointed at by the "priv"
2664 * field, otherwise we have a file, and need only look to the parent
2665 * to find the rdtgroup.
2666 */
kernfs_to_rdtgroup(struct kernfs_node * kn)2667 static struct rdtgroup *kernfs_to_rdtgroup(struct kernfs_node *kn)
2668 {
2669 if (kernfs_type(kn) == KERNFS_DIR) {
2670 /*
2671 * All the resource directories use "kn->priv"
2672 * to point to the "struct rdtgroup" for the
2673 * resource. "info" and its subdirectories don't
2674 * have rdtgroup structures, so return NULL here.
2675 */
2676 if (kn == kn_info ||
2677 rcu_access_pointer(kn->__parent) == kn_info)
2678 return NULL;
2679 else
2680 return kn->priv;
2681 } else {
2682 return rdt_kn_parent_priv(kn);
2683 }
2684 }
2685
rdtgroup_kn_get(struct rdtgroup * rdtgrp,struct kernfs_node * kn)2686 static void rdtgroup_kn_get(struct rdtgroup *rdtgrp, struct kernfs_node *kn)
2687 {
2688 atomic_inc(&rdtgrp->waitcount);
2689 kernfs_break_active_protection(kn);
2690 }
2691
rdtgroup_kn_put(struct rdtgroup * rdtgrp,struct kernfs_node * kn)2692 static void rdtgroup_kn_put(struct rdtgroup *rdtgrp, struct kernfs_node *kn)
2693 {
2694 bool needs_free;
2695
2696 if (!atomic_dec_and_mutex_lock(&rdtgrp->waitcount, &rdtgroup_mutex)) {
2697 kernfs_unbreak_active_protection(kn);
2698 return;
2699 }
2700
2701 needs_free = rdtgrp->flags & RDT_DELETED;
2702
2703 mutex_unlock(&rdtgroup_mutex);
2704
2705 kernfs_unbreak_active_protection(kn);
2706
2707 if (needs_free) {
2708 if (rdtgrp->mode == RDT_MODE_PSEUDO_LOCKSETUP ||
2709 rdtgrp->mode == RDT_MODE_PSEUDO_LOCKED)
2710 rdtgroup_pseudo_lock_remove(rdtgrp);
2711 rdtgroup_remove(rdtgrp);
2712 }
2713 }
2714
rdtgroup_kn_lock_live(struct kernfs_node * kn)2715 struct rdtgroup *rdtgroup_kn_lock_live(struct kernfs_node *kn)
2716 {
2717 struct rdtgroup *rdtgrp = kernfs_to_rdtgroup(kn);
2718
2719 if (!rdtgrp)
2720 return NULL;
2721
2722 rdtgroup_kn_get(rdtgrp, kn);
2723
2724 cpus_read_lock();
2725 mutex_lock(&rdtgroup_mutex);
2726 rdt_last_cmd_clear();
2727
2728 /* Was this group deleted while we waited? */
2729 if (rdtgrp->flags & RDT_DELETED) {
2730 /*
2731 * It is safe to dereference kn to obtain the resource group's
2732 * name because one extra reference to kn is obtained
2733 * during resource group creation that will be released by
2734 * rdtgroup_remove() called by rdtgroup_kn_put().
2735 */
2736 rdt_last_cmd_printf("Resource group %s deleted. No commands possible.\n",
2737 rdt_kn_name(rdtgrp->kn));
2738 return NULL;
2739 }
2740
2741 return rdtgrp;
2742 }
2743
rdtgroup_kn_unlock(struct kernfs_node * kn)2744 void rdtgroup_kn_unlock(struct kernfs_node *kn)
2745 {
2746 struct rdtgroup *rdtgrp = kernfs_to_rdtgroup(kn);
2747
2748 if (!rdtgrp)
2749 return;
2750
2751 mutex_unlock(&rdtgroup_mutex);
2752 cpus_read_unlock();
2753
2754 rdtgroup_kn_put(rdtgrp, kn);
2755 }
2756
2757 /*
2758 * Accessing the kn after breaking active protection is safe since the open
2759 * of resctrl file holds a kernfs base reference (different from active
2760 * protection) on the kn ensuring that it remains accessible even if it was
2761 * unlinked. Each kn in turn holds base reference to parent so the kn's
2762 * genealogy remains in memory until all base references dropped.
2763 */
is_active_resctrl_node(struct kernfs_node * kn)2764 static bool is_active_resctrl_node(struct kernfs_node *kn)
2765 {
2766 struct kernfs_node *p;
2767 bool match = false;
2768
2769 guard(rcu)();
2770 p = kn;
2771 while (p) {
2772 if (p == rdtgroup_default.kn) {
2773 match = true;
2774 break;
2775 }
2776 p = rcu_dereference(p->__parent);
2777 }
2778
2779 return match;
2780 }
2781
info_kn_lock(struct kernfs_node * kn)2782 bool info_kn_lock(struct kernfs_node *kn)
2783 {
2784 kernfs_break_active_protection(kn);
2785 cpus_read_lock();
2786 mutex_lock(&rdtgroup_mutex);
2787
2788 /*
2789 * Check both if resctrl is torn down (!rdtgroup_default.kn) and
2790 * if the reader's kernfs_node originates from a dead mount.
2791 */
2792 if (!rdtgroup_default.kn || !is_active_resctrl_node(kn)) {
2793 mutex_unlock(&rdtgroup_mutex);
2794 cpus_read_unlock();
2795 kernfs_unbreak_active_protection(kn);
2796 return false;
2797 }
2798
2799 return true;
2800 }
2801
info_kn_unlock(struct kernfs_node * kn)2802 void info_kn_unlock(struct kernfs_node *kn)
2803 {
2804 mutex_unlock(&rdtgroup_mutex);
2805 cpus_read_unlock();
2806 kernfs_unbreak_active_protection(kn);
2807 }
2808
2809 static int mkdir_mondata_all(struct kernfs_node *parent_kn,
2810 struct rdtgroup *prgrp,
2811 struct kernfs_node **mon_data_kn);
2812
rdt_disable_ctx(void)2813 static void rdt_disable_ctx(void)
2814 {
2815 resctrl_arch_set_cdp_enabled(RDT_RESOURCE_L3, false);
2816 resctrl_arch_set_cdp_enabled(RDT_RESOURCE_L2, false);
2817 set_mba_sc(false);
2818
2819 resctrl_debug = false;
2820 }
2821
rdt_enable_ctx(struct rdt_fs_context * ctx)2822 static int rdt_enable_ctx(struct rdt_fs_context *ctx)
2823 {
2824 int ret = 0;
2825
2826 if (ctx->enable_cdpl2) {
2827 ret = resctrl_arch_set_cdp_enabled(RDT_RESOURCE_L2, true);
2828 if (ret)
2829 goto out_done;
2830 }
2831
2832 if (ctx->enable_cdpl3) {
2833 ret = resctrl_arch_set_cdp_enabled(RDT_RESOURCE_L3, true);
2834 if (ret)
2835 goto out_cdpl2;
2836 }
2837
2838 if (ctx->enable_mba_mbps) {
2839 ret = set_mba_sc(true);
2840 if (ret)
2841 goto out_cdpl3;
2842 }
2843
2844 if (ctx->enable_debug)
2845 resctrl_debug = true;
2846
2847 return 0;
2848
2849 out_cdpl3:
2850 resctrl_arch_set_cdp_enabled(RDT_RESOURCE_L3, false);
2851 out_cdpl2:
2852 resctrl_arch_set_cdp_enabled(RDT_RESOURCE_L2, false);
2853 out_done:
2854 return ret;
2855 }
2856
schemata_list_add(struct rdt_resource * r,enum resctrl_conf_type type)2857 static int schemata_list_add(struct rdt_resource *r, enum resctrl_conf_type type)
2858 {
2859 struct resctrl_schema *s;
2860 const char *suffix = "";
2861 int ret, cl;
2862
2863 s = kzalloc_obj(*s);
2864 if (!s)
2865 return -ENOMEM;
2866
2867 s->res = r;
2868 s->num_closid = resctrl_arch_get_num_closid(r);
2869 if (resctrl_arch_get_cdp_enabled(r->rid))
2870 s->num_closid /= 2;
2871
2872 s->conf_type = type;
2873 switch (type) {
2874 case CDP_CODE:
2875 suffix = "CODE";
2876 break;
2877 case CDP_DATA:
2878 suffix = "DATA";
2879 break;
2880 case CDP_NONE:
2881 suffix = "";
2882 break;
2883 }
2884
2885 ret = snprintf(s->name, sizeof(s->name), "%s%s", r->name, suffix);
2886 if (ret >= sizeof(s->name)) {
2887 kfree(s);
2888 return -EINVAL;
2889 }
2890
2891 cl = strlen(s->name);
2892
2893 /*
2894 * If CDP is supported by this resource, but not enabled,
2895 * include the suffix. This ensures the tabular format of the
2896 * schemata file does not change between mounts of the filesystem.
2897 */
2898 if (r->cdp_capable && !resctrl_arch_get_cdp_enabled(r->rid))
2899 cl += 4;
2900
2901 if (cl > max_name_width)
2902 max_name_width = cl;
2903
2904 switch (r->schema_fmt) {
2905 case RESCTRL_SCHEMA_BITMAP:
2906 s->fmt_str = "%d=%x";
2907 break;
2908 case RESCTRL_SCHEMA_RANGE:
2909 s->fmt_str = "%d=%u";
2910 break;
2911 }
2912
2913 if (WARN_ON_ONCE(!s->fmt_str)) {
2914 kfree(s);
2915 return -EINVAL;
2916 }
2917
2918 INIT_LIST_HEAD(&s->list);
2919 list_add(&s->list, &resctrl_schema_all);
2920
2921 return 0;
2922 }
2923
schemata_list_create(void)2924 static int schemata_list_create(void)
2925 {
2926 struct rdt_resource *r;
2927 int ret = 0;
2928
2929 for_each_alloc_capable_rdt_resource(r) {
2930 if (resctrl_arch_get_cdp_enabled(r->rid)) {
2931 ret = schemata_list_add(r, CDP_CODE);
2932 if (ret)
2933 break;
2934
2935 ret = schemata_list_add(r, CDP_DATA);
2936 } else {
2937 ret = schemata_list_add(r, CDP_NONE);
2938 }
2939
2940 if (ret)
2941 break;
2942 }
2943
2944 return ret;
2945 }
2946
schemata_list_destroy(void)2947 static void schemata_list_destroy(void)
2948 {
2949 struct resctrl_schema *s, *tmp;
2950
2951 list_for_each_entry_safe(s, tmp, &resctrl_schema_all, list) {
2952 list_del(&s->list);
2953 kfree(s);
2954 }
2955 }
2956
2957 /*
2958 * Move tasks from one to the other group. If @from is NULL, then all tasks
2959 * in the systems are moved unconditionally (used for teardown).
2960 *
2961 * If @mask is not NULL the cpus on which moved tasks are running are set
2962 * in that mask so the update smp function call is restricted to affected
2963 * cpus.
2964 */
rdt_move_group_tasks(struct rdtgroup * from,struct rdtgroup * to,struct cpumask * mask)2965 static void rdt_move_group_tasks(struct rdtgroup *from, struct rdtgroup *to,
2966 struct cpumask *mask)
2967 {
2968 struct task_struct *p, *t;
2969
2970 read_lock(&tasklist_lock);
2971 for_each_process_thread(p, t) {
2972 if (!from || is_closid_match(t, from) ||
2973 is_rmid_match(t, from)) {
2974 resctrl_arch_set_closid_rmid(t, to->closid,
2975 to->mon.rmid);
2976
2977 /*
2978 * Order the closid/rmid stores above before the loads
2979 * in task_curr(). This pairs with the full barrier
2980 * between the rq->curr update and
2981 * resctrl_arch_sched_in() during context switch.
2982 */
2983 smp_mb();
2984
2985 /*
2986 * If the task is on a CPU, set the CPU in the mask.
2987 * The detection is inaccurate as tasks might move or
2988 * schedule before the smp function call takes place.
2989 * In such a case the function call is pointless, but
2990 * there is no other side effect.
2991 */
2992 if (IS_ENABLED(CONFIG_SMP) && mask && task_curr(t))
2993 cpumask_set_cpu(task_cpu(t), mask);
2994 }
2995 }
2996 read_unlock(&tasklist_lock);
2997 }
2998
free_all_child_rdtgrp(struct rdtgroup * rdtgrp)2999 static void free_all_child_rdtgrp(struct rdtgroup *rdtgrp)
3000 {
3001 struct rdtgroup *sentry, *stmp;
3002 struct list_head *head;
3003
3004 head = &rdtgrp->mon.crdtgrp_list;
3005 list_for_each_entry_safe(sentry, stmp, head, mon.crdtgrp_list) {
3006 rdtgroup_unassign_cntrs(sentry);
3007 free_rmid(sentry->closid, sentry->mon.rmid);
3008 list_del(&sentry->mon.crdtgrp_list);
3009
3010 if (atomic_read(&sentry->waitcount) != 0)
3011 sentry->flags = RDT_DELETED;
3012 else
3013 rdtgroup_remove(sentry);
3014 }
3015 }
3016
3017 /*
3018 * Forcibly remove all of subdirectories under root.
3019 */
rmdir_all_sub(void)3020 static void rmdir_all_sub(void)
3021 {
3022 struct rdtgroup *rdtgrp, *tmp;
3023
3024 /* Move all tasks to the default resource group */
3025 rdt_move_group_tasks(NULL, &rdtgroup_default, NULL);
3026
3027 list_for_each_entry_safe(rdtgrp, tmp, &rdt_all_groups, rdtgroup_list) {
3028 /* Free any child rmids */
3029 free_all_child_rdtgrp(rdtgrp);
3030
3031 /* Remove each rdtgroup other than root */
3032 if (rdtgrp == &rdtgroup_default)
3033 continue;
3034
3035 /*
3036 * Give any CPUs back to the default group. We cannot copy
3037 * cpu_online_mask because a CPU might have executed the
3038 * offline callback already, but is still marked online.
3039 */
3040 cpumask_or(&rdtgroup_default.cpu_mask,
3041 &rdtgroup_default.cpu_mask, &rdtgrp->cpu_mask);
3042
3043 rdtgroup_unassign_cntrs(rdtgrp);
3044
3045 if (rdtgrp->mode == RDT_MODE_PSEUDO_LOCKSETUP ||
3046 rdtgrp->mode == RDT_MODE_PSEUDO_LOCKED) {
3047 rdtgroup_pseudo_lock_remove(rdtgrp);
3048 } else {
3049 /* Pseudo-locked group's RMID is freed during setup. */
3050 free_rmid(rdtgrp->closid, rdtgrp->mon.rmid);
3051 }
3052
3053 kernfs_remove(rdtgrp->kn);
3054 list_del(&rdtgrp->rdtgroup_list);
3055
3056 if (atomic_read(&rdtgrp->waitcount) != 0)
3057 rdtgrp->flags = RDT_DELETED;
3058 else
3059 rdtgroup_remove(rdtgrp);
3060 }
3061 /* Notify online CPUs to update per cpu storage and PQR_ASSOC MSR */
3062 update_closid_rmid(cpu_online_mask, &rdtgroup_default);
3063
3064 kernfs_remove(kn_info);
3065 kernfs_remove(kn_mongrp);
3066 kernfs_remove(kn_mondata);
3067 }
3068
3069 /**
3070 * mon_get_kn_priv() - Get the mon_data priv data for this event.
3071 *
3072 * The same values are used across the mon_data directories of all control and
3073 * monitor groups for the same event in the same domain. Keep a list of
3074 * allocated structures and re-use an existing one with the same values for
3075 * @rid, @domid, etc.
3076 *
3077 * @rid: The resource id for the event file being created.
3078 * @domid: The domain id for the event file being created.
3079 * @mevt: The type of event file being created.
3080 * @do_sum: Whether SNC summing monitors are being created. Only set
3081 * when @rid == RDT_RESOURCE_L3.
3082 *
3083 * Return: Pointer to mon_data private data of the event, NULL on failure.
3084 */
mon_get_kn_priv(enum resctrl_res_level rid,int domid,struct mon_evt * mevt,bool do_sum)3085 static struct mon_data *mon_get_kn_priv(enum resctrl_res_level rid, int domid,
3086 struct mon_evt *mevt,
3087 bool do_sum)
3088 {
3089 struct mon_data *priv;
3090
3091 lockdep_assert_held(&rdtgroup_mutex);
3092
3093 list_for_each_entry(priv, &mon_data_kn_priv_list, list) {
3094 if (priv->rid == rid && priv->domid == domid &&
3095 priv->sum == do_sum && priv->evt == mevt)
3096 return priv;
3097 }
3098
3099 priv = kzalloc_obj(*priv);
3100 if (!priv)
3101 return NULL;
3102
3103 priv->rid = rid;
3104 priv->domid = domid;
3105 priv->sum = do_sum;
3106 priv->evt = mevt;
3107 list_add_tail(&priv->list, &mon_data_kn_priv_list);
3108
3109 return priv;
3110 }
3111
3112 /**
3113 * mon_put_kn_priv() - Free all allocated mon_data structures.
3114 *
3115 * Called when resctrl file system is unmounted.
3116 */
mon_put_kn_priv(void)3117 static void mon_put_kn_priv(void)
3118 {
3119 struct mon_data *priv, *tmp;
3120
3121 lockdep_assert_held(&rdtgroup_mutex);
3122
3123 list_for_each_entry_safe(priv, tmp, &mon_data_kn_priv_list, list) {
3124 list_del(&priv->list);
3125 kfree(priv);
3126 }
3127 }
3128
resctrl_fs_teardown(void)3129 static void resctrl_fs_teardown(void)
3130 {
3131 lockdep_assert_held(&rdtgroup_mutex);
3132
3133 /* Cleared by rdtgroup_destroy_root() */
3134 if (!rdtgroup_default.kn)
3135 return;
3136
3137 rmdir_all_sub();
3138 rdtgroup_unassign_cntrs(&rdtgroup_default);
3139 mon_put_kn_priv();
3140 rdt_pseudo_lock_release();
3141 rdtgroup_default.mode = RDT_MODE_SHAREABLE;
3142 rdtgroup_default.flags = RDT_DELETED;
3143 closid_exit();
3144 schemata_list_destroy();
3145 rdtgroup_destroy_root();
3146 }
3147
resctrl_unmount(void)3148 static void resctrl_unmount(void)
3149 {
3150 struct rdt_resource *r;
3151
3152 cpus_read_lock();
3153 mutex_lock(&rdtgroup_mutex);
3154
3155 rdt_disable_ctx();
3156
3157 /* Put everything back to default values. */
3158 for_each_alloc_capable_rdt_resource(r)
3159 resctrl_arch_reset_all_ctrls(r);
3160
3161 resctrl_fs_teardown();
3162 if (resctrl_arch_alloc_capable())
3163 resctrl_arch_disable_alloc();
3164 if (resctrl_arch_mon_capable())
3165 resctrl_arch_disable_mon();
3166 resctrl_mounted = false;
3167 mutex_unlock(&rdtgroup_mutex);
3168 cpus_read_unlock();
3169 }
3170
rdt_get_tree(struct fs_context * fc)3171 static int rdt_get_tree(struct fs_context *fc)
3172 {
3173 struct rdt_fs_context *ctx = rdt_fc2context(fc);
3174 unsigned long flags = RFTYPE_CTRL_BASE;
3175 struct kernfs_node *rdt_root_kn;
3176 struct rdt_l3_mon_domain *dom;
3177 struct rdt_resource *r;
3178 int ret;
3179
3180 DO_ONCE_SLEEPABLE(resctrl_arch_pre_mount);
3181
3182 cpus_read_lock();
3183 mutex_lock(&rdtgroup_mutex);
3184 /*
3185 * resctrl file system can only be mounted once.
3186 */
3187 if (resctrl_mounted) {
3188 ret = -EBUSY;
3189 goto out;
3190 }
3191
3192 /* Avoid races from pending operations from a previous mount */
3193 if (atomic_read(&rdtgroup_default.waitcount) != 0) {
3194 ret = -EBUSY;
3195 goto out;
3196 }
3197
3198 ret = setup_rmid_lru_list();
3199 if (ret)
3200 goto out;
3201
3202 ret = rdtgroup_setup_root(ctx);
3203 if (ret)
3204 goto out;
3205
3206 ret = rdt_enable_ctx(ctx);
3207 if (ret)
3208 goto out_root;
3209
3210 ret = schemata_list_create();
3211 if (ret)
3212 goto out_schemata_free;
3213
3214 ret = closid_init();
3215 if (ret)
3216 goto out_schemata_free;
3217
3218 if (resctrl_arch_mon_capable())
3219 flags |= RFTYPE_MON;
3220
3221 ret = rdtgroup_add_files(rdtgroup_default.kn, flags);
3222 if (ret)
3223 goto out_closid_exit;
3224
3225 kernfs_activate(rdtgroup_default.kn);
3226
3227 ret = rdtgroup_create_info_dir(rdtgroup_default.kn);
3228 if (ret < 0)
3229 goto out_closid_exit;
3230
3231 if (resctrl_arch_mon_capable()) {
3232 ret = mongroup_create_dir(rdtgroup_default.kn,
3233 &rdtgroup_default, "mon_groups",
3234 &kn_mongrp);
3235 if (ret < 0)
3236 goto out_info;
3237
3238 rdtgroup_assign_cntrs(&rdtgroup_default);
3239
3240 ret = mkdir_mondata_all(rdtgroup_default.kn,
3241 &rdtgroup_default, &kn_mondata);
3242 if (ret < 0)
3243 goto out_mongrp;
3244 rdtgroup_default.mon.mon_data_kn = kn_mondata;
3245 }
3246
3247 ret = rdt_pseudo_lock_init();
3248 if (ret)
3249 goto out_mondata;
3250
3251 if (resctrl_arch_alloc_capable())
3252 resctrl_arch_enable_alloc();
3253 if (resctrl_arch_mon_capable())
3254 resctrl_arch_enable_mon();
3255
3256 if (resctrl_arch_alloc_capable() || resctrl_arch_mon_capable())
3257 resctrl_mounted = true;
3258
3259 if (resctrl_is_mbm_enabled()) {
3260 r = resctrl_arch_get_resource(RDT_RESOURCE_L3);
3261 list_for_each_entry_rcu(dom, &r->mon_domains, hdr.list, lockdep_is_cpus_held())
3262 mbm_setup_overflow_handler(dom, MBM_OVERFLOW_INTERVAL,
3263 RESCTRL_PICK_ANY_CPU);
3264 }
3265
3266 /*
3267 * Ensure root remains accessible after mutex is unlocked so that
3268 * kernfs_kill_sb() can run safely if called by kernfs_get_tree()'s
3269 * failure path after creating a superblock but before taking reference
3270 * on root kn (for example, if unable to get inode for root kn).
3271 */
3272 kernfs_get(rdtgroup_default.kn);
3273
3274 /*
3275 * Make backup of the current root kn being created to be used in
3276 * kernfs_put(). The additional reference taken above will prevent the
3277 * kn from being freed before kernfs_kill_sb() can run but
3278 * rdtgroup_default.kn may be set to NULL via rdtgroup_destroy_root()
3279 * and its backing root (rdt_root) could be overwritten before
3280 * kernfs_put() can run.
3281 */
3282 rdt_root_kn = rdtgroup_default.kn;
3283
3284 rdt_last_cmd_clear();
3285 mutex_unlock(&rdtgroup_mutex);
3286 cpus_read_unlock();
3287
3288 ret = kernfs_get_tree(fc);
3289 /*
3290 * resctrl can only be mounted once, new superblock only expected
3291 * to be created once.
3292 */
3293 if (!ctx->kfc.new_sb_created)
3294 resctrl_unmount();
3295 kernfs_put(rdt_root_kn);
3296 return ret;
3297
3298 out_mondata:
3299 if (resctrl_arch_mon_capable())
3300 kernfs_remove(kn_mondata);
3301 out_mongrp:
3302 if (resctrl_arch_mon_capable()) {
3303 mon_put_kn_priv();
3304 rdtgroup_unassign_cntrs(&rdtgroup_default);
3305 kernfs_remove(kn_mongrp);
3306 }
3307 out_info:
3308 kernfs_remove(kn_info);
3309 out_closid_exit:
3310 closid_exit();
3311 out_schemata_free:
3312 schemata_list_destroy();
3313 rdt_disable_ctx();
3314 out_root:
3315 rdtgroup_destroy_root();
3316 out:
3317 mutex_unlock(&rdtgroup_mutex);
3318 cpus_read_unlock();
3319 return ret;
3320 }
3321
3322 enum rdt_param {
3323 Opt_cdp,
3324 Opt_cdpl2,
3325 Opt_mba_mbps,
3326 Opt_debug,
3327 nr__rdt_params
3328 };
3329
3330 static const struct fs_parameter_spec rdt_fs_parameters[] = {
3331 fsparam_flag("cdp", Opt_cdp),
3332 fsparam_flag("cdpl2", Opt_cdpl2),
3333 fsparam_flag("mba_MBps", Opt_mba_mbps),
3334 fsparam_flag("debug", Opt_debug),
3335 {}
3336 };
3337
rdt_parse_param(struct fs_context * fc,struct fs_parameter * param)3338 static int rdt_parse_param(struct fs_context *fc, struct fs_parameter *param)
3339 {
3340 struct rdt_fs_context *ctx = rdt_fc2context(fc);
3341 struct fs_parse_result result;
3342 const char *msg;
3343 int opt;
3344
3345 opt = fs_parse(fc, rdt_fs_parameters, param, &result);
3346 if (opt < 0)
3347 return opt;
3348
3349 switch (opt) {
3350 case Opt_cdp:
3351 ctx->enable_cdpl3 = true;
3352 return 0;
3353 case Opt_cdpl2:
3354 ctx->enable_cdpl2 = true;
3355 return 0;
3356 case Opt_mba_mbps:
3357 msg = "mba_MBps requires MBM (mbm_event mode not supported) and linear scale MBA at L3 scope";
3358 if (!supports_mba_mbps())
3359 return invalfc(fc, msg);
3360 ctx->enable_mba_mbps = true;
3361 return 0;
3362 case Opt_debug:
3363 ctx->enable_debug = true;
3364 return 0;
3365 }
3366
3367 return -EINVAL;
3368 }
3369
rdt_fs_context_free(struct fs_context * fc)3370 static void rdt_fs_context_free(struct fs_context *fc)
3371 {
3372 struct rdt_fs_context *ctx = rdt_fc2context(fc);
3373
3374 kernfs_free_fs_context(fc);
3375 kfree(ctx);
3376 }
3377
3378 static const struct fs_context_operations rdt_fs_context_ops = {
3379 .free = rdt_fs_context_free,
3380 .parse_param = rdt_parse_param,
3381 .get_tree = rdt_get_tree,
3382 };
3383
rdt_init_fs_context(struct fs_context * fc)3384 static int rdt_init_fs_context(struct fs_context *fc)
3385 {
3386 struct rdt_fs_context *ctx;
3387
3388 ctx = kzalloc_obj(*ctx);
3389 if (!ctx)
3390 return -ENOMEM;
3391
3392 ctx->kfc.magic = RDTGROUP_SUPER_MAGIC;
3393 fc->fs_private = &ctx->kfc;
3394 fc->ops = &rdt_fs_context_ops;
3395 put_user_ns(fc->user_ns);
3396 fc->user_ns = get_user_ns(&init_user_ns);
3397 fc->global = true;
3398 return 0;
3399 }
3400
rdt_kill_sb(struct super_block * sb)3401 static void rdt_kill_sb(struct super_block *sb)
3402 {
3403 resctrl_unmount();
3404 kernfs_kill_sb(sb);
3405 }
3406
3407 static struct file_system_type rdt_fs_type = {
3408 .name = "resctrl",
3409 .init_fs_context = rdt_init_fs_context,
3410 .parameters = rdt_fs_parameters,
3411 .kill_sb = rdt_kill_sb,
3412 };
3413
mon_addfile(struct kernfs_node * parent_kn,const char * name,void * priv)3414 static int mon_addfile(struct kernfs_node *parent_kn, const char *name,
3415 void *priv)
3416 {
3417 struct kernfs_node *kn;
3418 int ret = 0;
3419
3420 kn = __kernfs_create_file(parent_kn, name, 0444,
3421 GLOBAL_ROOT_UID, GLOBAL_ROOT_GID, 0,
3422 &kf_mondata_ops, priv, NULL, NULL);
3423 if (IS_ERR(kn))
3424 return PTR_ERR(kn);
3425
3426 ret = rdtgroup_kn_set_ugid(kn);
3427 if (ret) {
3428 kernfs_remove(kn);
3429 return ret;
3430 }
3431
3432 return ret;
3433 }
3434
mon_rmdir_one_subdir(struct kernfs_node * pkn,char * name,char * subname)3435 static void mon_rmdir_one_subdir(struct kernfs_node *pkn, char *name, char *subname)
3436 {
3437 struct kernfs_node *kn;
3438
3439 kn = kernfs_find_and_get(pkn, name);
3440 if (!kn)
3441 return;
3442 kernfs_put(kn);
3443
3444 if (kn->dir.subdirs <= 1)
3445 kernfs_remove(kn);
3446 else
3447 kernfs_remove_by_name(kn, subname);
3448 }
3449
3450 /*
3451 * Remove files and directories for one SNC node. If it is the last node
3452 * sharing an L3 cache, then remove the upper level directory containing
3453 * the "sum" files too.
3454 */
rmdir_mondata_subdir_allrdtgrp_snc(struct rdt_resource * r,struct rdt_domain_hdr * hdr)3455 static void rmdir_mondata_subdir_allrdtgrp_snc(struct rdt_resource *r,
3456 struct rdt_domain_hdr *hdr)
3457 {
3458 struct rdtgroup *prgrp, *crgrp;
3459 struct rdt_l3_mon_domain *d;
3460 char subname[32];
3461 char name[32];
3462
3463 if (!domain_header_is_valid(hdr, RESCTRL_MON_DOMAIN, RDT_RESOURCE_L3))
3464 return;
3465
3466 d = container_of(hdr, struct rdt_l3_mon_domain, hdr);
3467 sprintf(name, "mon_%s_%02d", r->name, d->ci_id);
3468 sprintf(subname, "mon_sub_%s_%02d", r->name, hdr->id);
3469
3470 list_for_each_entry(prgrp, &rdt_all_groups, rdtgroup_list) {
3471 mon_rmdir_one_subdir(prgrp->mon.mon_data_kn, name, subname);
3472
3473 list_for_each_entry(crgrp, &prgrp->mon.crdtgrp_list, mon.crdtgrp_list)
3474 mon_rmdir_one_subdir(crgrp->mon.mon_data_kn, name, subname);
3475 }
3476 }
3477
3478 /*
3479 * Remove all subdirectories of mon_data of ctrl_mon groups
3480 * and monitor groups for the given domain.
3481 */
rmdir_mondata_subdir_allrdtgrp(struct rdt_resource * r,struct rdt_domain_hdr * hdr)3482 static void rmdir_mondata_subdir_allrdtgrp(struct rdt_resource *r,
3483 struct rdt_domain_hdr *hdr)
3484 {
3485 struct rdtgroup *prgrp, *crgrp;
3486 char name[32];
3487
3488 if (r->rid == RDT_RESOURCE_L3 && r->mon_scope == RESCTRL_L3_NODE) {
3489 rmdir_mondata_subdir_allrdtgrp_snc(r, hdr);
3490 return;
3491 }
3492
3493 sprintf(name, "mon_%s_%02d", r->name, hdr->id);
3494 list_for_each_entry(prgrp, &rdt_all_groups, rdtgroup_list) {
3495 kernfs_remove_by_name(prgrp->mon.mon_data_kn, name);
3496
3497 list_for_each_entry(crgrp, &prgrp->mon.crdtgrp_list, mon.crdtgrp_list)
3498 kernfs_remove_by_name(crgrp->mon.mon_data_kn, name);
3499 }
3500 }
3501
3502 /*
3503 * Create a directory for a domain and populate it with monitor files. Create
3504 * summing monitors when @hdr is NULL. No need to initialize summing monitors.
3505 */
_mkdir_mondata_subdir(struct kernfs_node * parent_kn,char * name,struct rdt_domain_hdr * hdr,struct rdt_resource * r,struct rdtgroup * prgrp,int domid)3506 static struct kernfs_node *_mkdir_mondata_subdir(struct kernfs_node *parent_kn, char *name,
3507 struct rdt_domain_hdr *hdr,
3508 struct rdt_resource *r,
3509 struct rdtgroup *prgrp, int domid)
3510 {
3511 struct rmid_read rr = {0};
3512 struct kernfs_node *kn;
3513 struct mon_data *priv;
3514 struct mon_evt *mevt;
3515 int ret;
3516
3517 kn = kernfs_create_dir(parent_kn, name, parent_kn->mode, prgrp);
3518 if (IS_ERR(kn))
3519 return kn;
3520
3521 ret = rdtgroup_kn_set_ugid(kn);
3522 if (ret)
3523 goto out_destroy;
3524
3525 for_each_mon_event(mevt) {
3526 if (mevt->rid != r->rid || !mevt->enabled)
3527 continue;
3528 priv = mon_get_kn_priv(r->rid, domid, mevt, !hdr);
3529 if (WARN_ON_ONCE(!priv)) {
3530 ret = -EINVAL;
3531 goto out_destroy;
3532 }
3533
3534 ret = mon_addfile(kn, mevt->name, priv);
3535 if (ret)
3536 goto out_destroy;
3537
3538 if (hdr && resctrl_is_mbm_event(mevt->evtid))
3539 mon_event_read(&rr, r, hdr, prgrp, &hdr->cpu_mask, mevt, true);
3540 }
3541
3542 return kn;
3543 out_destroy:
3544 kernfs_remove(kn);
3545 return ERR_PTR(ret);
3546 }
3547
mkdir_mondata_subdir_snc(struct kernfs_node * parent_kn,struct rdt_domain_hdr * hdr,struct rdt_resource * r,struct rdtgroup * prgrp)3548 static int mkdir_mondata_subdir_snc(struct kernfs_node *parent_kn,
3549 struct rdt_domain_hdr *hdr,
3550 struct rdt_resource *r, struct rdtgroup *prgrp)
3551 {
3552 struct kernfs_node *ckn, *kn;
3553 struct rdt_l3_mon_domain *d;
3554 char name[32];
3555
3556 if (!domain_header_is_valid(hdr, RESCTRL_MON_DOMAIN, RDT_RESOURCE_L3))
3557 return -EINVAL;
3558
3559 d = container_of(hdr, struct rdt_l3_mon_domain, hdr);
3560 sprintf(name, "mon_%s_%02d", r->name, d->ci_id);
3561 kn = kernfs_find_and_get(parent_kn, name);
3562 if (kn) {
3563 /*
3564 * rdtgroup_mutex will prevent this directory from being
3565 * removed. No need to keep this hold.
3566 */
3567 kernfs_put(kn);
3568 } else {
3569 kn = _mkdir_mondata_subdir(parent_kn, name, NULL, r, prgrp, d->ci_id);
3570 if (IS_ERR(kn))
3571 return PTR_ERR(kn);
3572 }
3573
3574 sprintf(name, "mon_sub_%s_%02d", r->name, hdr->id);
3575 ckn = _mkdir_mondata_subdir(kn, name, hdr, r, prgrp, hdr->id);
3576 if (IS_ERR(ckn)) {
3577 kernfs_remove(kn);
3578 return PTR_ERR(ckn);
3579 }
3580
3581 kernfs_activate(kn);
3582 return 0;
3583 }
3584
mkdir_mondata_subdir(struct kernfs_node * parent_kn,struct rdt_domain_hdr * hdr,struct rdt_resource * r,struct rdtgroup * prgrp)3585 static int mkdir_mondata_subdir(struct kernfs_node *parent_kn,
3586 struct rdt_domain_hdr *hdr,
3587 struct rdt_resource *r, struct rdtgroup *prgrp)
3588 {
3589 struct kernfs_node *kn;
3590 char name[32];
3591
3592 lockdep_assert_held(&rdtgroup_mutex);
3593
3594 if (r->rid == RDT_RESOURCE_L3 && r->mon_scope == RESCTRL_L3_NODE)
3595 return mkdir_mondata_subdir_snc(parent_kn, hdr, r, prgrp);
3596
3597 sprintf(name, "mon_%s_%02d", r->name, hdr->id);
3598 kn = _mkdir_mondata_subdir(parent_kn, name, hdr, r, prgrp, hdr->id);
3599 if (IS_ERR(kn))
3600 return PTR_ERR(kn);
3601
3602 kernfs_activate(kn);
3603 return 0;
3604 }
3605
3606 /*
3607 * Add all subdirectories of mon_data for "ctrl_mon" groups
3608 * and "monitor" groups with given domain id.
3609 */
mkdir_mondata_subdir_allrdtgrp(struct rdt_resource * r,struct rdt_domain_hdr * hdr)3610 static void mkdir_mondata_subdir_allrdtgrp(struct rdt_resource *r,
3611 struct rdt_domain_hdr *hdr)
3612 {
3613 struct kernfs_node *parent_kn;
3614 struct rdtgroup *prgrp, *crgrp;
3615 struct list_head *head;
3616
3617 list_for_each_entry(prgrp, &rdt_all_groups, rdtgroup_list) {
3618 parent_kn = prgrp->mon.mon_data_kn;
3619 mkdir_mondata_subdir(parent_kn, hdr, r, prgrp);
3620
3621 head = &prgrp->mon.crdtgrp_list;
3622 list_for_each_entry(crgrp, head, mon.crdtgrp_list) {
3623 parent_kn = crgrp->mon.mon_data_kn;
3624 mkdir_mondata_subdir(parent_kn, hdr, r, crgrp);
3625 }
3626 }
3627 }
3628
mkdir_mondata_subdir_alldom(struct kernfs_node * parent_kn,struct rdt_resource * r,struct rdtgroup * prgrp)3629 static int mkdir_mondata_subdir_alldom(struct kernfs_node *parent_kn,
3630 struct rdt_resource *r,
3631 struct rdtgroup *prgrp)
3632 {
3633 struct rdt_domain_hdr *hdr;
3634 int ret;
3635
3636 /* Walking r->domains, ensure it can't race with cpuhp */
3637 lockdep_assert_cpus_held();
3638
3639 list_for_each_entry_rcu(hdr, &r->mon_domains, list, lockdep_is_cpus_held()) {
3640 ret = mkdir_mondata_subdir(parent_kn, hdr, r, prgrp);
3641 if (ret)
3642 return ret;
3643 }
3644
3645 return 0;
3646 }
3647
3648 /*
3649 * This creates a directory mon_data which contains the monitored data.
3650 *
3651 * mon_data has one directory for each domain which are named
3652 * in the format mon_<domain_name>_<domain_id>. For ex: A mon_data
3653 * with L3 domain looks as below:
3654 * ./mon_data:
3655 * mon_L3_00
3656 * mon_L3_01
3657 * mon_L3_02
3658 * ...
3659 *
3660 * Each domain directory has one file per event:
3661 * ./mon_L3_00/:
3662 * llc_occupancy
3663 *
3664 */
mkdir_mondata_all(struct kernfs_node * parent_kn,struct rdtgroup * prgrp,struct kernfs_node ** dest_kn)3665 static int mkdir_mondata_all(struct kernfs_node *parent_kn,
3666 struct rdtgroup *prgrp,
3667 struct kernfs_node **dest_kn)
3668 {
3669 struct rdt_resource *r;
3670 struct kernfs_node *kn;
3671 int ret;
3672
3673 /*
3674 * Create the mon_data directory first.
3675 */
3676 ret = mongroup_create_dir(parent_kn, prgrp, "mon_data", &kn);
3677 if (ret)
3678 return ret;
3679
3680 if (dest_kn)
3681 *dest_kn = kn;
3682
3683 /*
3684 * Create the subdirectories for each domain. Note that all events
3685 * in a domain like L3 are grouped into a resource whose domain is L3
3686 */
3687 for_each_mon_capable_rdt_resource(r) {
3688 ret = mkdir_mondata_subdir_alldom(kn, r, prgrp);
3689 if (ret)
3690 goto out_destroy;
3691 }
3692
3693 return 0;
3694
3695 out_destroy:
3696 kernfs_remove(kn);
3697 return ret;
3698 }
3699
3700 /**
3701 * cbm_ensure_valid - Enforce validity on provided CBM
3702 * @_val: Candidate CBM
3703 * @r: RDT resource to which the CBM belongs
3704 *
3705 * The provided CBM represents all cache portions available for use. This
3706 * may be represented by a bitmap that does not consist of contiguous ones
3707 * and thus be an invalid CBM.
3708 * Here the provided CBM is forced to be a valid CBM by only considering
3709 * the first set of contiguous bits as valid and clearing all bits.
3710 * The intention here is to provide a valid default CBM with which a new
3711 * resource group is initialized. The user can follow this with a
3712 * modification to the CBM if the default does not satisfy the
3713 * requirements.
3714 *
3715 * Return: A CBM that is valid for resource @r.
3716 */
cbm_ensure_valid(u32 _val,struct rdt_resource * r)3717 static u32 cbm_ensure_valid(u32 _val, struct rdt_resource *r)
3718 {
3719 unsigned int cbm_len = r->cache.cbm_len;
3720 unsigned long first_bit, zero_bit;
3721 unsigned long val;
3722
3723 if (!_val || r->cache.arch_has_sparse_bitmasks)
3724 return _val;
3725
3726 val = _val;
3727 first_bit = find_first_bit(&val, cbm_len);
3728 zero_bit = find_next_zero_bit(&val, cbm_len, first_bit);
3729
3730 /* Clear any remaining bits to ensure contiguous region */
3731 bitmap_clear(&val, zero_bit, cbm_len - zero_bit);
3732 return (u32)val;
3733 }
3734
3735 /*
3736 * Initialize cache resources per RDT domain
3737 *
3738 * Set the RDT domain up to start off with all usable allocations. That is,
3739 * all shareable and unused bits. All-zero CBM is invalid.
3740 */
__init_one_rdt_domain(struct rdt_ctrl_domain * d,struct resctrl_schema * s,u32 closid)3741 static int __init_one_rdt_domain(struct rdt_ctrl_domain *d, struct resctrl_schema *s,
3742 u32 closid)
3743 {
3744 enum resctrl_conf_type peer_type = resctrl_peer_type(s->conf_type);
3745 enum resctrl_conf_type t = s->conf_type;
3746 struct resctrl_staged_config *cfg;
3747 struct rdt_resource *r = s->res;
3748 u32 used_b = 0, unused_b = 0;
3749 unsigned long tmp_cbm;
3750 enum rdtgrp_mode mode;
3751 u32 peer_ctl, ctrl_val;
3752 int i;
3753
3754 cfg = &d->staged_config[t];
3755 cfg->have_new_ctrl = false;
3756 cfg->new_ctrl = r->cache.shareable_bits;
3757 used_b = r->cache.shareable_bits;
3758 for (i = 0; i < closids_supported(); i++) {
3759 if (closid_allocated(i) && i != closid) {
3760 mode = rdtgroup_mode_by_closid(i);
3761 if (mode == RDT_MODE_PSEUDO_LOCKSETUP)
3762 /*
3763 * ctrl values for locksetup aren't relevant
3764 * until the schemata is written, and the mode
3765 * becomes RDT_MODE_PSEUDO_LOCKED.
3766 */
3767 continue;
3768 /*
3769 * If CDP is active include peer domain's
3770 * usage to ensure there is no overlap
3771 * with an exclusive group.
3772 */
3773 if (resctrl_arch_get_cdp_enabled(r->rid))
3774 peer_ctl = resctrl_arch_get_config(r, d, i,
3775 peer_type);
3776 else
3777 peer_ctl = 0;
3778 ctrl_val = resctrl_arch_get_config(r, d, i,
3779 s->conf_type);
3780 used_b |= ctrl_val | peer_ctl;
3781 if (mode == RDT_MODE_SHAREABLE)
3782 cfg->new_ctrl |= ctrl_val | peer_ctl;
3783 }
3784 }
3785 if (d->plr && d->plr->cbm > 0)
3786 used_b |= d->plr->cbm;
3787 unused_b = used_b ^ (BIT_MASK(r->cache.cbm_len) - 1);
3788 unused_b &= BIT_MASK(r->cache.cbm_len) - 1;
3789 cfg->new_ctrl |= unused_b;
3790 /*
3791 * Force the initial CBM to be valid, user can
3792 * modify the CBM based on system availability.
3793 */
3794 cfg->new_ctrl = cbm_ensure_valid(cfg->new_ctrl, r);
3795 /*
3796 * Assign the u32 CBM to an unsigned long to ensure that
3797 * bitmap_weight() does not access out-of-bound memory.
3798 */
3799 tmp_cbm = cfg->new_ctrl;
3800 if (bitmap_weight(&tmp_cbm, r->cache.cbm_len) < r->cache.min_cbm_bits) {
3801 rdt_last_cmd_printf("No space on %s:%d\n", s->name, d->hdr.id);
3802 return -ENOSPC;
3803 }
3804 cfg->have_new_ctrl = true;
3805
3806 return 0;
3807 }
3808
3809 /*
3810 * Initialize cache resources with default values.
3811 *
3812 * A new RDT group is being created on an allocation capable (CAT)
3813 * supporting system. Set this group up to start off with all usable
3814 * allocations.
3815 *
3816 * If there are no more shareable bits available on any domain then
3817 * the entire allocation will fail.
3818 */
rdtgroup_init_cat(struct resctrl_schema * s,u32 closid)3819 int rdtgroup_init_cat(struct resctrl_schema *s, u32 closid)
3820 {
3821 struct rdt_ctrl_domain *d;
3822 int ret;
3823
3824 list_for_each_entry_rcu(d, &s->res->ctrl_domains, hdr.list, lockdep_is_cpus_held()) {
3825 ret = __init_one_rdt_domain(d, s, closid);
3826 if (ret < 0)
3827 return ret;
3828 }
3829
3830 return 0;
3831 }
3832
3833 /* Initialize MBA resource with default values. */
rdtgroup_init_mba(struct rdt_resource * r,u32 closid)3834 static void rdtgroup_init_mba(struct rdt_resource *r, u32 closid)
3835 {
3836 struct resctrl_staged_config *cfg;
3837 struct rdt_ctrl_domain *d;
3838
3839 list_for_each_entry_rcu(d, &r->ctrl_domains, hdr.list, lockdep_is_cpus_held()) {
3840 if (is_mba_sc(r)) {
3841 d->mbps_val[closid] = MBA_MAX_MBPS;
3842 continue;
3843 }
3844
3845 cfg = &d->staged_config[CDP_NONE];
3846 cfg->new_ctrl = resctrl_get_default_ctrl(r);
3847 cfg->have_new_ctrl = true;
3848 }
3849 }
3850
3851 /* Initialize the RDT group's allocations. */
rdtgroup_init_alloc(struct rdtgroup * rdtgrp)3852 static int rdtgroup_init_alloc(struct rdtgroup *rdtgrp)
3853 {
3854 struct resctrl_schema *s;
3855 struct rdt_resource *r;
3856 int ret = 0;
3857
3858 rdt_staged_configs_clear();
3859
3860 list_for_each_entry(s, &resctrl_schema_all, list) {
3861 r = s->res;
3862 if (r->rid == RDT_RESOURCE_MBA ||
3863 r->rid == RDT_RESOURCE_SMBA) {
3864 rdtgroup_init_mba(r, rdtgrp->closid);
3865 if (is_mba_sc(r))
3866 continue;
3867 } else {
3868 ret = rdtgroup_init_cat(s, rdtgrp->closid);
3869 if (ret < 0)
3870 goto out;
3871 }
3872
3873 ret = resctrl_arch_update_domains(r, rdtgrp->closid);
3874 if (ret < 0) {
3875 rdt_last_cmd_puts("Failed to initialize allocations\n");
3876 goto out;
3877 }
3878 }
3879
3880 rdtgrp->mode = RDT_MODE_SHAREABLE;
3881
3882 out:
3883 rdt_staged_configs_clear();
3884 return ret;
3885 }
3886
mkdir_rdt_prepare_rmid_alloc(struct rdtgroup * rdtgrp)3887 static int mkdir_rdt_prepare_rmid_alloc(struct rdtgroup *rdtgrp)
3888 {
3889 int ret;
3890
3891 if (!resctrl_arch_mon_capable())
3892 return 0;
3893
3894 ret = alloc_rmid(rdtgrp->closid);
3895 if (ret < 0) {
3896 rdt_last_cmd_puts("Out of RMIDs\n");
3897 return ret;
3898 }
3899 rdtgrp->mon.rmid = ret;
3900
3901 rdtgroup_assign_cntrs(rdtgrp);
3902
3903 ret = mkdir_mondata_all(rdtgrp->kn, rdtgrp, &rdtgrp->mon.mon_data_kn);
3904 if (ret) {
3905 rdt_last_cmd_puts("kernfs subdir error\n");
3906 rdtgroup_unassign_cntrs(rdtgrp);
3907 free_rmid(rdtgrp->closid, rdtgrp->mon.rmid);
3908 return ret;
3909 }
3910
3911 return 0;
3912 }
3913
mkdir_rdt_prepare_rmid_free(struct rdtgroup * rgrp)3914 static void mkdir_rdt_prepare_rmid_free(struct rdtgroup *rgrp)
3915 {
3916 if (resctrl_arch_mon_capable()) {
3917 rdtgroup_unassign_cntrs(rgrp);
3918 free_rmid(rgrp->closid, rgrp->mon.rmid);
3919 }
3920 }
3921
3922 /*
3923 * We allow creating mon groups only with in a directory called "mon_groups"
3924 * which is present in every ctrl_mon group. Check if this is a valid
3925 * "mon_groups" directory.
3926 *
3927 * 1. The directory should be named "mon_groups".
3928 * 2. The mon group itself should "not" be named "mon_groups".
3929 * This makes sure "mon_groups" directory always has a ctrl_mon group
3930 * as parent.
3931 */
is_mon_groups(struct kernfs_node * kn,const char * name)3932 static bool is_mon_groups(struct kernfs_node *kn, const char *name)
3933 {
3934 return (!strcmp(rdt_kn_name(kn), "mon_groups") &&
3935 strcmp(name, "mon_groups"));
3936 }
3937
mkdir_rdt_prepare(struct kernfs_node * parent_kn,const char * name,umode_t mode,enum rdt_group_type rtype,struct rdtgroup ** r)3938 static int mkdir_rdt_prepare(struct kernfs_node *parent_kn,
3939 const char *name, umode_t mode,
3940 enum rdt_group_type rtype, struct rdtgroup **r)
3941 {
3942 struct rdtgroup *prdtgrp, *rdtgrp;
3943 unsigned long files = 0;
3944 struct kernfs_node *kn;
3945 int ret;
3946
3947 prdtgrp = rdtgroup_kn_lock_live(parent_kn);
3948 if (!prdtgrp) {
3949 ret = -ENODEV;
3950 goto out_unlock;
3951 }
3952
3953 /*
3954 * Check that the parent directory for a monitor group is a "mon_groups"
3955 * directory.
3956 */
3957 if (rtype == RDTMON_GROUP && !is_mon_groups(parent_kn, name)) {
3958 ret = -EPERM;
3959 goto out_unlock;
3960 }
3961
3962 if (rtype == RDTMON_GROUP &&
3963 (prdtgrp->mode == RDT_MODE_PSEUDO_LOCKSETUP ||
3964 prdtgrp->mode == RDT_MODE_PSEUDO_LOCKED)) {
3965 ret = -EINVAL;
3966 rdt_last_cmd_puts("Pseudo-locking in progress\n");
3967 goto out_unlock;
3968 }
3969
3970 /* allocate the rdtgroup. */
3971 rdtgrp = kzalloc_obj(*rdtgrp);
3972 if (!rdtgrp) {
3973 ret = -ENOSPC;
3974 rdt_last_cmd_puts("Kernel out of memory\n");
3975 goto out_unlock;
3976 }
3977 *r = rdtgrp;
3978 rdtgrp->mon.parent = prdtgrp;
3979 rdtgrp->type = rtype;
3980 INIT_LIST_HEAD(&rdtgrp->mon.crdtgrp_list);
3981
3982 /* kernfs creates the directory for rdtgrp */
3983 kn = kernfs_create_dir(parent_kn, name, mode, rdtgrp);
3984 if (IS_ERR(kn)) {
3985 ret = PTR_ERR(kn);
3986 rdt_last_cmd_puts("kernfs create error\n");
3987 goto out_free_rgrp;
3988 }
3989 rdtgrp->kn = kn;
3990
3991 /*
3992 * kernfs_remove() will drop the reference count on "kn" which
3993 * will free it. But we still need it to stick around for the
3994 * rdtgroup_kn_unlock(kn) call. Take one extra reference here,
3995 * which will be dropped by kernfs_put() in rdtgroup_remove().
3996 */
3997 kernfs_get(kn);
3998
3999 ret = rdtgroup_kn_set_ugid(kn);
4000 if (ret) {
4001 rdt_last_cmd_puts("kernfs perm error\n");
4002 goto out_destroy;
4003 }
4004
4005 if (rtype == RDTCTRL_GROUP) {
4006 files = RFTYPE_BASE | RFTYPE_CTRL;
4007 if (resctrl_arch_mon_capable())
4008 files |= RFTYPE_MON;
4009 } else {
4010 files = RFTYPE_BASE | RFTYPE_MON;
4011 }
4012
4013 ret = rdtgroup_add_files(kn, files);
4014 if (ret) {
4015 rdt_last_cmd_puts("kernfs fill error\n");
4016 goto out_destroy;
4017 }
4018
4019 /*
4020 * The caller unlocks the parent_kn upon success.
4021 */
4022 return 0;
4023
4024 out_destroy:
4025 kernfs_put(rdtgrp->kn);
4026 kernfs_remove(rdtgrp->kn);
4027 out_free_rgrp:
4028 kfree(rdtgrp);
4029 out_unlock:
4030 rdtgroup_kn_unlock(parent_kn);
4031 return ret;
4032 }
4033
mkdir_rdt_prepare_clean(struct rdtgroup * rgrp)4034 static void mkdir_rdt_prepare_clean(struct rdtgroup *rgrp)
4035 {
4036 kernfs_remove(rgrp->kn);
4037 rdtgroup_remove(rgrp);
4038 }
4039
4040 /*
4041 * Create a monitor group under "mon_groups" directory of a control
4042 * and monitor group(ctrl_mon). This is a resource group
4043 * to monitor a subset of tasks and cpus in its parent ctrl_mon group.
4044 */
rdtgroup_mkdir_mon(struct kernfs_node * parent_kn,const char * name,umode_t mode)4045 static int rdtgroup_mkdir_mon(struct kernfs_node *parent_kn,
4046 const char *name, umode_t mode)
4047 {
4048 struct rdtgroup *rdtgrp, *prgrp;
4049 int ret;
4050
4051 ret = mkdir_rdt_prepare(parent_kn, name, mode, RDTMON_GROUP, &rdtgrp);
4052 if (ret)
4053 return ret;
4054
4055 prgrp = rdtgrp->mon.parent;
4056 rdtgrp->closid = prgrp->closid;
4057
4058 ret = mkdir_rdt_prepare_rmid_alloc(rdtgrp);
4059 if (ret) {
4060 mkdir_rdt_prepare_clean(rdtgrp);
4061 goto out_unlock;
4062 }
4063
4064 kernfs_activate(rdtgrp->kn);
4065
4066 /*
4067 * Add the rdtgrp to the list of rdtgrps the parent
4068 * ctrl_mon group has to track.
4069 */
4070 list_add_tail(&rdtgrp->mon.crdtgrp_list, &prgrp->mon.crdtgrp_list);
4071
4072 out_unlock:
4073 rdtgroup_kn_unlock(parent_kn);
4074 return ret;
4075 }
4076
4077 /*
4078 * These are rdtgroups created under the root directory. Can be used
4079 * to allocate and monitor resources.
4080 */
rdtgroup_mkdir_ctrl_mon(struct kernfs_node * parent_kn,const char * name,umode_t mode)4081 static int rdtgroup_mkdir_ctrl_mon(struct kernfs_node *parent_kn,
4082 const char *name, umode_t mode)
4083 {
4084 struct rdtgroup *rdtgrp;
4085 struct kernfs_node *kn;
4086 u32 closid;
4087 int ret;
4088
4089 ret = mkdir_rdt_prepare(parent_kn, name, mode, RDTCTRL_GROUP, &rdtgrp);
4090 if (ret)
4091 return ret;
4092
4093 kn = rdtgrp->kn;
4094 ret = closid_alloc();
4095 if (ret < 0) {
4096 rdt_last_cmd_puts("Out of CLOSIDs\n");
4097 goto out_common_fail;
4098 }
4099 closid = ret;
4100 ret = 0;
4101
4102 rdtgrp->closid = closid;
4103
4104 ret = mkdir_rdt_prepare_rmid_alloc(rdtgrp);
4105 if (ret)
4106 goto out_closid_free;
4107
4108 kernfs_activate(rdtgrp->kn);
4109
4110 ret = rdtgroup_init_alloc(rdtgrp);
4111 if (ret < 0)
4112 goto out_rmid_free;
4113
4114 list_add(&rdtgrp->rdtgroup_list, &rdt_all_groups);
4115
4116 if (resctrl_arch_mon_capable()) {
4117 /*
4118 * Create an empty mon_groups directory to hold the subset
4119 * of tasks and cpus to monitor.
4120 */
4121 ret = mongroup_create_dir(kn, rdtgrp, "mon_groups", NULL);
4122 if (ret) {
4123 rdt_last_cmd_puts("kernfs subdir error\n");
4124 goto out_del_list;
4125 }
4126 if (is_mba_sc(NULL))
4127 rdtgrp->mba_mbps_event = mba_mbps_default_event;
4128 }
4129
4130 goto out_unlock;
4131
4132 out_del_list:
4133 list_del(&rdtgrp->rdtgroup_list);
4134 out_rmid_free:
4135 mkdir_rdt_prepare_rmid_free(rdtgrp);
4136 out_closid_free:
4137 closid_free(closid);
4138 out_common_fail:
4139 mkdir_rdt_prepare_clean(rdtgrp);
4140 out_unlock:
4141 rdtgroup_kn_unlock(parent_kn);
4142 return ret;
4143 }
4144
rdtgroup_mkdir(struct kernfs_node * parent_kn,const char * name,umode_t mode)4145 static int rdtgroup_mkdir(struct kernfs_node *parent_kn, const char *name,
4146 umode_t mode)
4147 {
4148 /* Do not accept '\n' to avoid unparsable situation. */
4149 if (strchr(name, '\n'))
4150 return -EINVAL;
4151
4152 /*
4153 * If the parent directory is the root directory and RDT
4154 * allocation is supported, add a control and monitoring
4155 * subdirectory
4156 */
4157 if (resctrl_arch_alloc_capable() && parent_kn == rdtgroup_default.kn)
4158 return rdtgroup_mkdir_ctrl_mon(parent_kn, name, mode);
4159
4160 /* Else, attempt to add a monitoring subdirectory. */
4161 if (resctrl_arch_mon_capable())
4162 return rdtgroup_mkdir_mon(parent_kn, name, mode);
4163
4164 return -EPERM;
4165 }
4166
rdtgroup_rmdir_mon(struct rdtgroup * rdtgrp,cpumask_var_t tmpmask)4167 static int rdtgroup_rmdir_mon(struct rdtgroup *rdtgrp, cpumask_var_t tmpmask)
4168 {
4169 struct rdtgroup *prdtgrp = rdtgrp->mon.parent;
4170 u32 closid, rmid;
4171 int cpu;
4172
4173 /* Give any tasks back to the parent group */
4174 rdt_move_group_tasks(rdtgrp, prdtgrp, tmpmask);
4175
4176 /*
4177 * Update per cpu closid/rmid of the moved CPUs first.
4178 * Note: the closid will not change, but the arch code still needs it.
4179 */
4180 closid = prdtgrp->closid;
4181 rmid = prdtgrp->mon.rmid;
4182 for_each_cpu(cpu, &rdtgrp->cpu_mask)
4183 resctrl_arch_set_cpu_default_closid_rmid(cpu, closid, rmid);
4184
4185 /*
4186 * Update the MSR on moved CPUs and CPUs which have moved
4187 * task running on them.
4188 */
4189 cpumask_or(tmpmask, tmpmask, &rdtgrp->cpu_mask);
4190 update_closid_rmid(tmpmask, NULL);
4191
4192 rdtgrp->flags = RDT_DELETED;
4193
4194 rdtgroup_unassign_cntrs(rdtgrp);
4195
4196 free_rmid(rdtgrp->closid, rdtgrp->mon.rmid);
4197
4198 /*
4199 * Remove the rdtgrp from the parent ctrl_mon group's list
4200 */
4201 WARN_ON(list_empty(&prdtgrp->mon.crdtgrp_list));
4202 list_del(&rdtgrp->mon.crdtgrp_list);
4203
4204 kernfs_remove(rdtgrp->kn);
4205
4206 return 0;
4207 }
4208
rdtgroup_ctrl_remove(struct rdtgroup * rdtgrp)4209 static int rdtgroup_ctrl_remove(struct rdtgroup *rdtgrp)
4210 {
4211 rdtgrp->flags = RDT_DELETED;
4212 list_del(&rdtgrp->rdtgroup_list);
4213
4214 kernfs_remove(rdtgrp->kn);
4215 return 0;
4216 }
4217
rdtgroup_rmdir_ctrl(struct rdtgroup * rdtgrp,cpumask_var_t tmpmask)4218 static int rdtgroup_rmdir_ctrl(struct rdtgroup *rdtgrp, cpumask_var_t tmpmask)
4219 {
4220 u32 closid, rmid;
4221 int cpu;
4222
4223 /* Give any tasks back to the default group */
4224 rdt_move_group_tasks(rdtgrp, &rdtgroup_default, tmpmask);
4225
4226 /* Give any CPUs back to the default group */
4227 cpumask_or(&rdtgroup_default.cpu_mask,
4228 &rdtgroup_default.cpu_mask, &rdtgrp->cpu_mask);
4229
4230 /* Update per cpu closid and rmid of the moved CPUs first */
4231 closid = rdtgroup_default.closid;
4232 rmid = rdtgroup_default.mon.rmid;
4233 for_each_cpu(cpu, &rdtgrp->cpu_mask)
4234 resctrl_arch_set_cpu_default_closid_rmid(cpu, closid, rmid);
4235
4236 /*
4237 * Update the MSR on moved CPUs and CPUs which have moved
4238 * task running on them.
4239 */
4240 cpumask_or(tmpmask, tmpmask, &rdtgrp->cpu_mask);
4241 update_closid_rmid(tmpmask, NULL);
4242
4243 rdtgroup_unassign_cntrs(rdtgrp);
4244
4245 free_rmid(rdtgrp->closid, rdtgrp->mon.rmid);
4246 closid_free(rdtgrp->closid);
4247
4248 rdtgroup_ctrl_remove(rdtgrp);
4249
4250 /*
4251 * Free all the child monitor group rmids.
4252 */
4253 free_all_child_rdtgrp(rdtgrp);
4254
4255 return 0;
4256 }
4257
rdt_kn_parent(struct kernfs_node * kn)4258 static struct kernfs_node *rdt_kn_parent(struct kernfs_node *kn)
4259 {
4260 /*
4261 * Valid within the RCU section it was obtained or while rdtgroup_mutex
4262 * is held.
4263 */
4264 return rcu_dereference_check(kn->__parent, lockdep_is_held(&rdtgroup_mutex));
4265 }
4266
rdtgroup_rmdir(struct kernfs_node * kn)4267 static int rdtgroup_rmdir(struct kernfs_node *kn)
4268 {
4269 struct kernfs_node *parent_kn;
4270 struct rdtgroup *rdtgrp;
4271 cpumask_var_t tmpmask;
4272 int ret = 0;
4273
4274 if (!zalloc_cpumask_var(&tmpmask, GFP_KERNEL))
4275 return -ENOMEM;
4276
4277 rdtgrp = rdtgroup_kn_lock_live(kn);
4278 if (!rdtgrp) {
4279 ret = -EPERM;
4280 goto out;
4281 }
4282 parent_kn = rdt_kn_parent(kn);
4283
4284 /*
4285 * If the rdtgroup is a ctrl_mon group and parent directory
4286 * is the root directory, remove the ctrl_mon group.
4287 *
4288 * If the rdtgroup is a mon group and parent directory
4289 * is a valid "mon_groups" directory, remove the mon group.
4290 */
4291 if (rdtgrp->type == RDTCTRL_GROUP && parent_kn == rdtgroup_default.kn &&
4292 rdtgrp != &rdtgroup_default) {
4293 if (rdtgrp->mode == RDT_MODE_PSEUDO_LOCKSETUP ||
4294 rdtgrp->mode == RDT_MODE_PSEUDO_LOCKED) {
4295 ret = rdtgroup_ctrl_remove(rdtgrp);
4296 } else {
4297 ret = rdtgroup_rmdir_ctrl(rdtgrp, tmpmask);
4298 }
4299 } else if (rdtgrp->type == RDTMON_GROUP &&
4300 is_mon_groups(parent_kn, rdt_kn_name(kn))) {
4301 ret = rdtgroup_rmdir_mon(rdtgrp, tmpmask);
4302 } else {
4303 ret = -EPERM;
4304 }
4305
4306 out:
4307 rdtgroup_kn_unlock(kn);
4308 free_cpumask_var(tmpmask);
4309 return ret;
4310 }
4311
4312 /**
4313 * mongrp_reparent() - replace parent CTRL_MON group of a MON group
4314 * @rdtgrp: the MON group whose parent should be replaced
4315 * @new_prdtgrp: replacement parent CTRL_MON group for @rdtgrp
4316 * @cpus: cpumask provided by the caller for use during this call
4317 *
4318 * Replaces the parent CTRL_MON group for a MON group, resulting in all member
4319 * tasks' CLOSID immediately changing to that of the new parent group.
4320 * Monitoring data for the group is unaffected by this operation.
4321 */
mongrp_reparent(struct rdtgroup * rdtgrp,struct rdtgroup * new_prdtgrp,cpumask_var_t cpus)4322 static void mongrp_reparent(struct rdtgroup *rdtgrp,
4323 struct rdtgroup *new_prdtgrp,
4324 cpumask_var_t cpus)
4325 {
4326 struct rdtgroup *prdtgrp = rdtgrp->mon.parent;
4327
4328 WARN_ON(rdtgrp->type != RDTMON_GROUP);
4329 WARN_ON(new_prdtgrp->type != RDTCTRL_GROUP);
4330
4331 /* Nothing to do when simply renaming a MON group. */
4332 if (prdtgrp == new_prdtgrp)
4333 return;
4334
4335 WARN_ON(list_empty(&prdtgrp->mon.crdtgrp_list));
4336 list_move_tail(&rdtgrp->mon.crdtgrp_list,
4337 &new_prdtgrp->mon.crdtgrp_list);
4338
4339 rdtgrp->mon.parent = new_prdtgrp;
4340 rdtgrp->closid = new_prdtgrp->closid;
4341
4342 /* Propagate updated closid to all tasks in this group. */
4343 rdt_move_group_tasks(rdtgrp, rdtgrp, cpus);
4344
4345 update_closid_rmid(cpus, NULL);
4346 }
4347
rdtgroup_rename(struct kernfs_node * kn,struct kernfs_node * new_parent,const char * new_name)4348 static int rdtgroup_rename(struct kernfs_node *kn,
4349 struct kernfs_node *new_parent, const char *new_name)
4350 {
4351 struct kernfs_node *kn_parent;
4352 struct rdtgroup *new_prdtgrp;
4353 struct rdtgroup *rdtgrp;
4354 cpumask_var_t tmpmask;
4355 int ret;
4356
4357 rdtgrp = kernfs_to_rdtgroup(kn);
4358 new_prdtgrp = kernfs_to_rdtgroup(new_parent);
4359 if (!rdtgrp || !new_prdtgrp)
4360 return -ENOENT;
4361
4362 /* Release both kernfs active_refs before obtaining rdtgroup mutex. */
4363 rdtgroup_kn_get(rdtgrp, kn);
4364 rdtgroup_kn_get(new_prdtgrp, new_parent);
4365
4366 mutex_lock(&rdtgroup_mutex);
4367
4368 rdt_last_cmd_clear();
4369
4370 /*
4371 * Don't allow kernfs_to_rdtgroup() to return a parent rdtgroup if
4372 * either kernfs_node is a file.
4373 */
4374 if (kernfs_type(kn) != KERNFS_DIR ||
4375 kernfs_type(new_parent) != KERNFS_DIR) {
4376 rdt_last_cmd_puts("Source and destination must be directories");
4377 ret = -EPERM;
4378 goto out;
4379 }
4380
4381 if ((rdtgrp->flags & RDT_DELETED) || (new_prdtgrp->flags & RDT_DELETED)) {
4382 ret = -ENOENT;
4383 goto out;
4384 }
4385
4386 kn_parent = rdt_kn_parent(kn);
4387 if (rdtgrp->type != RDTMON_GROUP || !kn_parent ||
4388 !is_mon_groups(kn_parent, rdt_kn_name(kn))) {
4389 rdt_last_cmd_puts("Source must be a MON group\n");
4390 ret = -EPERM;
4391 goto out;
4392 }
4393
4394 if (!is_mon_groups(new_parent, new_name)) {
4395 rdt_last_cmd_puts("Destination must be a mon_groups subdirectory\n");
4396 ret = -EPERM;
4397 goto out;
4398 }
4399
4400 /*
4401 * If the MON group is monitoring CPUs, the CPUs must be assigned to the
4402 * current parent CTRL_MON group and therefore cannot be assigned to
4403 * the new parent, making the move illegal.
4404 */
4405 if (!cpumask_empty(&rdtgrp->cpu_mask) &&
4406 rdtgrp->mon.parent != new_prdtgrp) {
4407 rdt_last_cmd_puts("Cannot move a MON group that monitors CPUs\n");
4408 ret = -EPERM;
4409 goto out;
4410 }
4411
4412 /*
4413 * Allocate the cpumask for use in mongrp_reparent() to avoid the
4414 * possibility of failing to allocate it after kernfs_rename() has
4415 * succeeded.
4416 */
4417 if (!zalloc_cpumask_var(&tmpmask, GFP_KERNEL)) {
4418 ret = -ENOMEM;
4419 goto out;
4420 }
4421
4422 /*
4423 * Perform all input validation and allocations needed to ensure
4424 * mongrp_reparent() will succeed before calling kernfs_rename(),
4425 * otherwise it would be necessary to revert this call if
4426 * mongrp_reparent() failed.
4427 */
4428 ret = kernfs_rename(kn, new_parent, new_name);
4429 if (!ret)
4430 mongrp_reparent(rdtgrp, new_prdtgrp, tmpmask);
4431
4432 free_cpumask_var(tmpmask);
4433
4434 out:
4435 mutex_unlock(&rdtgroup_mutex);
4436 rdtgroup_kn_put(rdtgrp, kn);
4437 rdtgroup_kn_put(new_prdtgrp, new_parent);
4438 return ret;
4439 }
4440
rdtgroup_show_options(struct seq_file * seq,struct kernfs_root * kf)4441 static int rdtgroup_show_options(struct seq_file *seq, struct kernfs_root *kf)
4442 {
4443 if (resctrl_arch_get_cdp_enabled(RDT_RESOURCE_L3))
4444 seq_puts(seq, ",cdp");
4445
4446 if (resctrl_arch_get_cdp_enabled(RDT_RESOURCE_L2))
4447 seq_puts(seq, ",cdpl2");
4448
4449 if (is_mba_sc(resctrl_arch_get_resource(RDT_RESOURCE_MBA)))
4450 seq_puts(seq, ",mba_MBps");
4451
4452 if (resctrl_debug)
4453 seq_puts(seq, ",debug");
4454
4455 return 0;
4456 }
4457
4458 static struct kernfs_syscall_ops rdtgroup_kf_syscall_ops = {
4459 .mkdir = rdtgroup_mkdir,
4460 .rmdir = rdtgroup_rmdir,
4461 .rename = rdtgroup_rename,
4462 .show_options = rdtgroup_show_options,
4463 };
4464
rdtgroup_setup_root(struct rdt_fs_context * ctx)4465 static int rdtgroup_setup_root(struct rdt_fs_context *ctx)
4466 {
4467 rdt_root = kernfs_create_root(&rdtgroup_kf_syscall_ops,
4468 KERNFS_ROOT_CREATE_DEACTIVATED |
4469 KERNFS_ROOT_EXTRA_OPEN_PERM_CHECK,
4470 &rdtgroup_default);
4471 if (IS_ERR(rdt_root))
4472 return PTR_ERR(rdt_root);
4473
4474 ctx->kfc.root = rdt_root;
4475 rdtgroup_default.kn = kernfs_root_to_node(rdt_root);
4476 rdtgroup_default.flags = 0;
4477
4478 return 0;
4479 }
4480
rdtgroup_destroy_root(void)4481 static void rdtgroup_destroy_root(void)
4482 {
4483 lockdep_assert_held(&rdtgroup_mutex);
4484
4485 kernfs_destroy_root(rdt_root);
4486 rdtgroup_default.kn = NULL;
4487 }
4488
rdtgroup_setup_default(void)4489 static void rdtgroup_setup_default(void)
4490 {
4491 mutex_lock(&rdtgroup_mutex);
4492
4493 rdtgroup_default.closid = RESCTRL_RESERVED_CLOSID;
4494 rdtgroup_default.mon.rmid = RESCTRL_RESERVED_RMID;
4495 rdtgroup_default.type = RDTCTRL_GROUP;
4496 INIT_LIST_HEAD(&rdtgroup_default.mon.crdtgrp_list);
4497
4498 list_add(&rdtgroup_default.rdtgroup_list, &rdt_all_groups);
4499
4500 mutex_unlock(&rdtgroup_mutex);
4501 }
4502
domain_destroy_l3_mon_state(struct rdt_l3_mon_domain * d)4503 static void domain_destroy_l3_mon_state(struct rdt_l3_mon_domain *d)
4504 {
4505 int idx;
4506
4507 kfree(d->cntr_cfg);
4508 bitmap_free(d->rmid_busy_llc);
4509 for_each_mbm_idx(idx) {
4510 kfree(d->mbm_states[idx]);
4511 d->mbm_states[idx] = NULL;
4512 }
4513 }
4514
resctrl_offline_ctrl_domain(struct rdt_resource * r,struct rdt_ctrl_domain * d)4515 void resctrl_offline_ctrl_domain(struct rdt_resource *r, struct rdt_ctrl_domain *d)
4516 {
4517 /*
4518 * mbm_handle_overflow() may dereference this ctrl domain via
4519 * update_mba_bw()->get_sc_ctrl_domain_from_cpu(). The architecture has
4520 * unlinked the domain from the RCU list and waited a grace period, so
4521 * no new worker iteration can find it; drain any worker that already
4522 * holds a pointer to it before the architecture frees the domain.
4523 *
4524 * Software controller is enabled/disabled on mount/unmount with
4525 * cpus_read_lock() held. Running here with cpus_write_lock() so
4526 * there are no concurrent changes to software controller status.
4527 */
4528 if (r->rid == RDT_RESOURCE_MBA && is_mba_sc(r)) {
4529 struct rdt_resource *l3 = resctrl_arch_get_resource(RDT_RESOURCE_L3);
4530 struct rdt_l3_mon_domain *mon_d;
4531
4532 list_for_each_entry_rcu(mon_d, &l3->mon_domains, hdr.list, lockdep_is_cpus_held()) {
4533 if (mon_d->hdr.id == d->hdr.id) {
4534 cancel_delayed_work_sync(&mon_d->mbm_over);
4535 break;
4536 }
4537 }
4538 }
4539
4540 mutex_lock(&rdtgroup_mutex);
4541
4542 if (supports_mba_mbps() && r->rid == RDT_RESOURCE_MBA)
4543 mba_sc_domain_destroy(r, d);
4544
4545 mutex_unlock(&rdtgroup_mutex);
4546 }
4547
resctrl_offline_mon_domain(struct rdt_resource * r,struct rdt_domain_hdr * hdr)4548 void resctrl_offline_mon_domain(struct rdt_resource *r, struct rdt_domain_hdr *hdr)
4549 {
4550 struct rdt_l3_mon_domain *d;
4551
4552 /*
4553 * Called by architecture under CPU hotplug lock as it prepares to remove
4554 * the domain which is guaranteed to be accessible here.
4555 * The domain has been unlinked from the RCU list and a grace period
4556 * has elapsed, so no new worker can be scheduled. Drain any worker that
4557 * is in flight or pending before letting architecture proceed to free
4558 * the domain that has the workers' struct delayed_work embedded.
4559 * Do so before taking rdtgroup_mutex since the workers also acquire it.
4560 */
4561 if (r->rid == RDT_RESOURCE_L3 &&
4562 domain_header_is_valid(hdr, RESCTRL_MON_DOMAIN, RDT_RESOURCE_L3)) {
4563 d = container_of(hdr, struct rdt_l3_mon_domain, hdr);
4564 if (resctrl_is_mbm_enabled())
4565 cancel_delayed_work_sync(&d->mbm_over);
4566 if (resctrl_is_mon_event_enabled(QOS_L3_OCCUP_EVENT_ID))
4567 cancel_delayed_work_sync(&d->cqm_limbo);
4568 }
4569
4570 mutex_lock(&rdtgroup_mutex);
4571
4572 /*
4573 * If resctrl is mounted, remove all the
4574 * per domain monitor data directories.
4575 */
4576 if (resctrl_mounted && resctrl_arch_mon_capable())
4577 rmdir_mondata_subdir_allrdtgrp(r, hdr);
4578
4579 if (r->rid != RDT_RESOURCE_L3)
4580 goto out_unlock;
4581
4582 if (!domain_header_is_valid(hdr, RESCTRL_MON_DOMAIN, RDT_RESOURCE_L3))
4583 goto out_unlock;
4584
4585 d = container_of(hdr, struct rdt_l3_mon_domain, hdr);
4586 if (resctrl_is_mon_event_enabled(QOS_L3_OCCUP_EVENT_ID) && has_busy_rmid(d)) {
4587 /*
4588 * When a package is going down, forcefully
4589 * decrement rmid->ebusy. There is no way to know
4590 * that the L3 was flushed and hence may lead to
4591 * incorrect counts in rare scenarios, but leaving
4592 * the RMID as busy creates RMID leaks if the
4593 * package never comes back.
4594 */
4595 __check_limbo(d, true);
4596 }
4597
4598 domain_destroy_l3_mon_state(d);
4599 out_unlock:
4600 mutex_unlock(&rdtgroup_mutex);
4601 }
4602
4603 /**
4604 * domain_setup_l3_mon_state() - Initialise domain monitoring structures.
4605 * @r: The resource for the newly online domain.
4606 * @d: The newly online domain.
4607 *
4608 * Allocate monitor resources that belong to this domain.
4609 * Called when the first CPU of a domain comes online, regardless of whether
4610 * the filesystem is mounted.
4611 * During boot this may be called before global allocations have been made by
4612 * resctrl_l3_mon_resource_init().
4613 *
4614 * Called during CPU online that may run as soon as CPU online callbacks
4615 * are set up during resctrl initialization. The number of supported RMIDs
4616 * may be reduced if additional mon_capable resources are enumerated
4617 * at mount time. This means the rdt_l3_mon_domain::mbm_states[] and
4618 * rdt_l3_mon_domain::rmid_busy_llc allocations may be larger than needed.
4619 *
4620 * Return: 0 for success, or -ENOMEM.
4621 */
domain_setup_l3_mon_state(struct rdt_resource * r,struct rdt_l3_mon_domain * d)4622 static int domain_setup_l3_mon_state(struct rdt_resource *r, struct rdt_l3_mon_domain *d)
4623 {
4624 u32 idx_limit = resctrl_arch_system_num_rmid_idx();
4625 size_t tsize = sizeof(*d->mbm_states[0]);
4626 enum resctrl_event_id eventid;
4627 int idx;
4628
4629 if (resctrl_is_mon_event_enabled(QOS_L3_OCCUP_EVENT_ID)) {
4630 d->rmid_busy_llc = bitmap_zalloc(idx_limit, GFP_KERNEL);
4631 if (!d->rmid_busy_llc)
4632 return -ENOMEM;
4633 }
4634
4635 for_each_mbm_event_id(eventid) {
4636 if (!resctrl_is_mon_event_enabled(eventid))
4637 continue;
4638 idx = MBM_STATE_IDX(eventid);
4639 d->mbm_states[idx] = kcalloc(idx_limit, tsize, GFP_KERNEL);
4640 if (!d->mbm_states[idx])
4641 goto cleanup;
4642 }
4643
4644 if (resctrl_is_mbm_enabled() && r->mon.mbm_cntr_assignable) {
4645 tsize = sizeof(*d->cntr_cfg);
4646 d->cntr_cfg = kcalloc(r->mon.num_mbm_cntrs, tsize, GFP_KERNEL);
4647 if (!d->cntr_cfg)
4648 goto cleanup;
4649 }
4650
4651 return 0;
4652 cleanup:
4653 bitmap_free(d->rmid_busy_llc);
4654 for_each_mbm_idx(idx) {
4655 kfree(d->mbm_states[idx]);
4656 d->mbm_states[idx] = NULL;
4657 }
4658
4659 return -ENOMEM;
4660 }
4661
resctrl_online_ctrl_domain(struct rdt_resource * r,struct rdt_ctrl_domain * d)4662 int resctrl_online_ctrl_domain(struct rdt_resource *r, struct rdt_ctrl_domain *d)
4663 {
4664 int err = 0;
4665
4666 mutex_lock(&rdtgroup_mutex);
4667
4668 if (supports_mba_mbps() && r->rid == RDT_RESOURCE_MBA) {
4669 /* RDT_RESOURCE_MBA is never mon_capable */
4670 err = mba_sc_domain_allocate(r, d);
4671 }
4672
4673 mutex_unlock(&rdtgroup_mutex);
4674
4675 return err;
4676 }
4677
resctrl_online_mon_domain(struct rdt_resource * r,struct rdt_domain_hdr * hdr)4678 int resctrl_online_mon_domain(struct rdt_resource *r, struct rdt_domain_hdr *hdr)
4679 {
4680 struct rdt_l3_mon_domain *d;
4681 int err = -EINVAL;
4682
4683 mutex_lock(&rdtgroup_mutex);
4684
4685 if (r->rid != RDT_RESOURCE_L3)
4686 goto mkdir;
4687
4688 if (!domain_header_is_valid(hdr, RESCTRL_MON_DOMAIN, RDT_RESOURCE_L3))
4689 goto out_unlock;
4690
4691 d = container_of(hdr, struct rdt_l3_mon_domain, hdr);
4692 err = domain_setup_l3_mon_state(r, d);
4693 if (err)
4694 goto out_unlock;
4695
4696 if (resctrl_is_mbm_enabled()) {
4697 INIT_DELAYED_WORK(&d->mbm_over, mbm_handle_overflow);
4698 mbm_setup_overflow_handler(d, MBM_OVERFLOW_INTERVAL,
4699 RESCTRL_PICK_ANY_CPU);
4700 }
4701
4702 if (resctrl_is_mon_event_enabled(QOS_L3_OCCUP_EVENT_ID))
4703 INIT_DELAYED_WORK(&d->cqm_limbo, cqm_handle_limbo);
4704
4705 mkdir:
4706 err = 0;
4707 /*
4708 * If the filesystem is not mounted then only the default resource group
4709 * exists. Creation of its directories is deferred until mount time
4710 * by rdt_get_tree() calling mkdir_mondata_all().
4711 * If resctrl is mounted, add per domain monitor data directories.
4712 */
4713 if (resctrl_mounted && resctrl_arch_mon_capable())
4714 mkdir_mondata_subdir_allrdtgrp(r, hdr);
4715
4716 out_unlock:
4717 mutex_unlock(&rdtgroup_mutex);
4718
4719 return err;
4720 }
4721
resctrl_online_cpu(unsigned int cpu)4722 void resctrl_online_cpu(unsigned int cpu)
4723 {
4724 mutex_lock(&rdtgroup_mutex);
4725 /* The CPU is set in default rdtgroup after online. */
4726 cpumask_set_cpu(cpu, &rdtgroup_default.cpu_mask);
4727 mutex_unlock(&rdtgroup_mutex);
4728 }
4729
clear_childcpus(struct rdtgroup * r,unsigned int cpu)4730 static void clear_childcpus(struct rdtgroup *r, unsigned int cpu)
4731 {
4732 struct rdtgroup *cr;
4733
4734 list_for_each_entry(cr, &r->mon.crdtgrp_list, mon.crdtgrp_list) {
4735 if (cpumask_test_and_clear_cpu(cpu, &cr->cpu_mask))
4736 break;
4737 }
4738 }
4739
get_mon_domain_from_cpu(int cpu,struct rdt_resource * r)4740 static struct rdt_l3_mon_domain *get_mon_domain_from_cpu(int cpu,
4741 struct rdt_resource *r)
4742 {
4743 struct rdt_l3_mon_domain *d;
4744
4745 lockdep_assert_cpus_held();
4746
4747 list_for_each_entry_rcu(d, &r->mon_domains, hdr.list, lockdep_is_cpus_held()) {
4748 /* Find the domain that contains this CPU */
4749 if (cpumask_test_cpu(cpu, &d->hdr.cpu_mask))
4750 return d;
4751 }
4752
4753 return NULL;
4754 }
4755
resctrl_offline_cpu(unsigned int cpu)4756 void resctrl_offline_cpu(unsigned int cpu)
4757 {
4758 struct rdt_resource *l3 = resctrl_arch_get_resource(RDT_RESOURCE_L3);
4759 struct rdt_l3_mon_domain *d;
4760 struct rdtgroup *rdtgrp;
4761
4762 mutex_lock(&rdtgroup_mutex);
4763 list_for_each_entry(rdtgrp, &rdt_all_groups, rdtgroup_list) {
4764 if (cpumask_test_and_clear_cpu(cpu, &rdtgrp->cpu_mask)) {
4765 clear_childcpus(rdtgrp, cpu);
4766 break;
4767 }
4768 }
4769
4770 if (!l3->mon_capable)
4771 goto out_unlock;
4772
4773 d = get_mon_domain_from_cpu(cpu, l3);
4774 if (d) {
4775 if (resctrl_is_mbm_enabled() && cpu == d->mbm_work_cpu) {
4776 mutex_unlock(&rdtgroup_mutex);
4777 cancel_delayed_work_sync(&d->mbm_over);
4778 mutex_lock(&rdtgroup_mutex);
4779 mbm_setup_overflow_handler(d, 0, cpu);
4780 }
4781 if (resctrl_is_mon_event_enabled(QOS_L3_OCCUP_EVENT_ID) &&
4782 cpu == d->cqm_work_cpu && has_busy_rmid(d)) {
4783 mutex_unlock(&rdtgroup_mutex);
4784 cancel_delayed_work_sync(&d->cqm_limbo);
4785 mutex_lock(&rdtgroup_mutex);
4786 cqm_setup_limbo_handler(d, 0, cpu);
4787 }
4788 }
4789
4790 out_unlock:
4791 mutex_unlock(&rdtgroup_mutex);
4792 }
4793
4794 /*
4795 * resctrl_init - resctrl filesystem initialization
4796 *
4797 * Setup resctrl file system including set up root, create mount point,
4798 * register resctrl filesystem, and initialize files under root directory.
4799 *
4800 * Return: 0 on success or -errno
4801 */
resctrl_init(void)4802 int resctrl_init(void)
4803 {
4804 int ret = 0;
4805
4806 seq_buf_init(&last_cmd_status, last_cmd_status_buf,
4807 sizeof(last_cmd_status_buf));
4808
4809 rdtgroup_setup_default();
4810
4811 thread_throttle_mode_init();
4812
4813 io_alloc_init();
4814
4815 ret = resctrl_l3_mon_resource_init();
4816 if (ret)
4817 return ret;
4818
4819 ret = sysfs_create_mount_point(fs_kobj, "resctrl");
4820 if (ret) {
4821 resctrl_l3_mon_resource_exit();
4822 return ret;
4823 }
4824
4825 ret = register_filesystem(&rdt_fs_type);
4826 if (ret)
4827 goto cleanup_mountpoint;
4828
4829 /*
4830 * Adding the resctrl debugfs directory here may not be ideal since
4831 * it would let the resctrl debugfs directory appear on the debugfs
4832 * filesystem before the resctrl filesystem is mounted.
4833 * It may also be ok since that would enable debugging of RDT before
4834 * resctrl is mounted.
4835 * The reason why the debugfs directory is created here and not in
4836 * rdt_get_tree() is because rdt_get_tree() takes rdtgroup_mutex and
4837 * during the debugfs directory creation also &sb->s_type->i_mutex_key
4838 * (the lockdep class of inode->i_rwsem). Other filesystem
4839 * interactions (eg. SyS_getdents) have the lock ordering:
4840 * &sb->s_type->i_mutex_key --> &mm->mmap_lock
4841 * During mmap(), called with &mm->mmap_lock, the rdtgroup_mutex
4842 * is taken, thus creating dependency:
4843 * &mm->mmap_lock --> rdtgroup_mutex for the latter that can cause
4844 * issues considering the other two lock dependencies.
4845 * By creating the debugfs directory here we avoid a dependency
4846 * that may cause deadlock (even though file operations cannot
4847 * occur until the filesystem is mounted, but I do not know how to
4848 * tell lockdep that).
4849 */
4850 debugfs_resctrl = debugfs_create_dir("resctrl", NULL);
4851
4852 return 0;
4853
4854 cleanup_mountpoint:
4855 sysfs_remove_mount_point(fs_kobj, "resctrl");
4856 resctrl_l3_mon_resource_exit();
4857
4858 return ret;
4859 }
4860
resctrl_online_domains_exist(void)4861 static bool resctrl_online_domains_exist(void)
4862 {
4863 struct rdt_resource *r;
4864
4865 /*
4866 * Only walk capable resources to allow resctrl_arch_get_resource()
4867 * to return dummy 'not capable' resources.
4868 */
4869 for_each_alloc_capable_rdt_resource(r) {
4870 if (!list_empty(&r->ctrl_domains))
4871 return true;
4872 }
4873
4874 for_each_mon_capable_rdt_resource(r) {
4875 if (!list_empty(&r->mon_domains))
4876 return true;
4877 }
4878
4879 return false;
4880 }
4881
4882 /**
4883 * resctrl_exit() - Remove the resctrl filesystem and free resources.
4884 *
4885 * Called by the architecture code in response to a fatal error.
4886 * Removes resctrl files and structures from kernfs to prevent further
4887 * configuration.
4888 *
4889 * When called by the architecture code, all CPUs and resctrl domains must be
4890 * offline. This ensures the limbo and overflow handlers are not scheduled to
4891 * run, meaning the data structures they access can be freed by
4892 * resctrl_l3_mon_resource_exit().
4893 *
4894 * After resctrl_exit() returns, the architecture code should return an
4895 * error from all resctrl_arch_ functions that can do this.
4896 * resctrl_arch_get_resource() must continue to return struct rdt_resources
4897 * with the correct rid field to ensure the filesystem can be unmounted.
4898 */
resctrl_exit(void)4899 void resctrl_exit(void)
4900 {
4901 cpus_read_lock();
4902 WARN_ON_ONCE(resctrl_online_domains_exist());
4903
4904 mutex_lock(&rdtgroup_mutex);
4905 resctrl_fs_teardown();
4906 mutex_unlock(&rdtgroup_mutex);
4907
4908 cpus_read_unlock();
4909
4910 debugfs_remove_recursive(debugfs_resctrl);
4911 debugfs_resctrl = NULL;
4912 unregister_filesystem(&rdt_fs_type);
4913
4914 /*
4915 * Do not remove the sysfs mount point added by resctrl_init() so that
4916 * it can be used to umount resctrl.
4917 */
4918
4919 resctrl_l3_mon_resource_exit();
4920 free_rmid_lru_list();
4921 }
4922