1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3 * acpi_pad.c ACPI Processor Aggregator Driver
4 *
5 * Copyright (c) 2009, Intel Corporation.
6 */
7
8 #include <linux/kernel.h>
9 #include <linux/cpumask.h>
10 #include <linux/module.h>
11 #include <linux/init.h>
12 #include <linux/types.h>
13 #include <linux/kthread.h>
14 #include <uapi/linux/sched/types.h>
15 #include <linux/freezer.h>
16 #include <linux/cpu.h>
17 #include <linux/tick.h>
18 #include <linux/slab.h>
19 #include <linux/acpi.h>
20 #include <linux/perf_event.h>
21 #include <linux/platform_device.h>
22 #include <asm/cpuid/api.h>
23 #include <asm/mwait.h>
24 #include <xen/xen.h>
25
26 #define ACPI_PROCESSOR_AGGREGATOR_NOTIFY 0x80
27
28 #define ACPI_PROCESSOR_AGGREGATOR_STATUS_SUCCESS 0
29 #define ACPI_PROCESSOR_AGGREGATOR_STATUS_NO_ACTION 1
30
31 static DEFINE_MUTEX(isolated_cpus_lock);
32 static DEFINE_MUTEX(round_robin_lock);
33
34 static unsigned int power_saving_mwait_eax;
35
36 static unsigned char tsc_detected_unstable;
37 static unsigned char tsc_marked_unstable;
38
power_saving_mwait_init(void)39 static void power_saving_mwait_init(void)
40 {
41 unsigned int eax, ebx, ecx, edx;
42 unsigned int highest_cstate = 0;
43 unsigned int highest_subcstate = 0;
44 int i;
45
46 if (!boot_cpu_has(X86_FEATURE_MWAIT))
47 return;
48
49 cpuid(CPUID_LEAF_MWAIT, &eax, &ebx, &ecx, &edx);
50
51 if (!(ecx & CPUID5_ECX_EXTENSIONS_SUPPORTED) ||
52 !(ecx & CPUID5_ECX_INTERRUPT_BREAK))
53 return;
54
55 edx >>= MWAIT_SUBSTATE_SIZE;
56 for (i = 0; i < 7 && edx; i++, edx >>= MWAIT_SUBSTATE_SIZE) {
57 if (edx & MWAIT_SUBSTATE_MASK) {
58 highest_cstate = i;
59 highest_subcstate = edx & MWAIT_SUBSTATE_MASK;
60 }
61 }
62 power_saving_mwait_eax = (highest_cstate << MWAIT_SUBSTATE_SIZE) |
63 (highest_subcstate - 1);
64
65 #if defined(CONFIG_X86)
66 switch (boot_cpu_data.x86_vendor) {
67 case X86_VENDOR_HYGON:
68 case X86_VENDOR_AMD:
69 case X86_VENDOR_INTEL:
70 case X86_VENDOR_ZHAOXIN:
71 case X86_VENDOR_CENTAUR:
72 /*
73 * AMD Fam10h TSC will tick in all
74 * C/P/S0/S1 states when this bit is set.
75 */
76 if (!boot_cpu_has(X86_FEATURE_NONSTOP_TSC))
77 tsc_detected_unstable = 1;
78 break;
79 default:
80 /* TSC could halt in idle */
81 tsc_detected_unstable = 1;
82 }
83 #endif
84 }
85
86 static unsigned long cpu_weight[NR_CPUS];
87 static int tsk_in_cpu[NR_CPUS] = {[0 ... NR_CPUS-1] = -1};
88 static DECLARE_BITMAP(pad_busy_cpus_bits, NR_CPUS);
round_robin_cpu(unsigned int tsk_index)89 static void round_robin_cpu(unsigned int tsk_index)
90 {
91 struct cpumask *pad_busy_cpus = to_cpumask(pad_busy_cpus_bits);
92 cpumask_var_t tmp;
93 int cpu;
94 unsigned long min_weight = -1;
95 unsigned long preferred_cpu;
96
97 if (!alloc_cpumask_var(&tmp, GFP_KERNEL))
98 return;
99
100 mutex_lock(&round_robin_lock);
101 cpumask_clear(tmp);
102 for_each_cpu(cpu, pad_busy_cpus)
103 cpumask_or(tmp, tmp, topology_sibling_cpumask(cpu));
104 cpumask_andnot(tmp, cpu_online_mask, tmp);
105 /* avoid HT siblings if possible */
106 if (cpumask_empty(tmp))
107 cpumask_andnot(tmp, cpu_online_mask, pad_busy_cpus);
108 if (cpumask_empty(tmp)) {
109 mutex_unlock(&round_robin_lock);
110 free_cpumask_var(tmp);
111 return;
112 }
113 for_each_cpu(cpu, tmp) {
114 if (cpu_weight[cpu] < min_weight) {
115 min_weight = cpu_weight[cpu];
116 preferred_cpu = cpu;
117 }
118 }
119
120 if (tsk_in_cpu[tsk_index] != -1)
121 cpumask_clear_cpu(tsk_in_cpu[tsk_index], pad_busy_cpus);
122 tsk_in_cpu[tsk_index] = preferred_cpu;
123 cpumask_set_cpu(preferred_cpu, pad_busy_cpus);
124 cpu_weight[preferred_cpu]++;
125 mutex_unlock(&round_robin_lock);
126
127 set_cpus_allowed_ptr(current, cpumask_of(preferred_cpu));
128
129 free_cpumask_var(tmp);
130 }
131
exit_round_robin(unsigned int tsk_index)132 static void exit_round_robin(unsigned int tsk_index)
133 {
134 struct cpumask *pad_busy_cpus = to_cpumask(pad_busy_cpus_bits);
135
136 if (tsk_in_cpu[tsk_index] != -1) {
137 cpumask_clear_cpu(tsk_in_cpu[tsk_index], pad_busy_cpus);
138 tsk_in_cpu[tsk_index] = -1;
139 }
140 }
141
142 static unsigned int idle_pct = 5; /* percentage */
143 static unsigned int round_robin_time = 1; /* second */
power_saving_thread(void * data)144 static int power_saving_thread(void *data)
145 {
146 int do_sleep;
147 unsigned int tsk_index = (unsigned long)data;
148 u64 last_jiffies = 0;
149
150 sched_set_fifo_low(current);
151
152 while (!kthread_should_stop()) {
153 unsigned long expire_time;
154
155 /* round robin to cpus */
156 expire_time = last_jiffies + round_robin_time * HZ;
157 if (time_before(expire_time, jiffies)) {
158 last_jiffies = jiffies;
159 round_robin_cpu(tsk_index);
160 }
161
162 do_sleep = 0;
163
164 expire_time = jiffies + HZ * (100 - idle_pct) / 100;
165
166 while (!need_resched()) {
167 if (tsc_detected_unstable && !tsc_marked_unstable) {
168 /* TSC could halt in idle, so notify users */
169 mark_tsc_unstable("TSC halts in idle");
170 tsc_marked_unstable = 1;
171 }
172 local_irq_disable();
173
174 perf_lopwr_cb(true);
175
176 tick_broadcast_enable();
177 tick_broadcast_enter();
178 stop_critical_timings();
179
180 mwait_idle_with_hints(power_saving_mwait_eax, 1);
181
182 start_critical_timings();
183 tick_broadcast_exit();
184
185 perf_lopwr_cb(false);
186
187 local_irq_enable();
188
189 if (time_before(expire_time, jiffies)) {
190 do_sleep = 1;
191 break;
192 }
193 }
194
195 /*
196 * current sched_rt has threshold for rt task running time.
197 * When a rt task uses 95% CPU time, the rt thread will be
198 * scheduled out for 5% CPU time to not starve other tasks. But
199 * the mechanism only works when all CPUs have RT task running,
200 * as if one CPU hasn't RT task, RT task from other CPUs will
201 * borrow CPU time from this CPU and cause RT task use > 95%
202 * CPU time. To make 'avoid starvation' work, takes a nap here.
203 */
204 if (unlikely(do_sleep))
205 schedule_timeout_killable(HZ * idle_pct / 100);
206
207 /* If an external event has set the need_resched flag, then
208 * we need to deal with it, or this loop will continue to
209 * spin without calling __mwait().
210 */
211 if (unlikely(need_resched()))
212 schedule();
213 }
214
215 exit_round_robin(tsk_index);
216 return 0;
217 }
218
219 static struct task_struct *ps_tsks[NR_CPUS];
220 static unsigned int ps_tsk_num;
create_power_saving_task(void)221 static int create_power_saving_task(void)
222 {
223 int rc;
224
225 ps_tsks[ps_tsk_num] = kthread_run(power_saving_thread,
226 (void *)(unsigned long)ps_tsk_num,
227 "acpi_pad/%d", ps_tsk_num);
228
229 if (IS_ERR(ps_tsks[ps_tsk_num])) {
230 rc = PTR_ERR(ps_tsks[ps_tsk_num]);
231 ps_tsks[ps_tsk_num] = NULL;
232 } else {
233 rc = 0;
234 ps_tsk_num++;
235 }
236
237 return rc;
238 }
239
destroy_power_saving_task(void)240 static void destroy_power_saving_task(void)
241 {
242 if (ps_tsk_num > 0) {
243 ps_tsk_num--;
244 kthread_stop(ps_tsks[ps_tsk_num]);
245 ps_tsks[ps_tsk_num] = NULL;
246 }
247 }
248
set_power_saving_task_num(unsigned int num)249 static void set_power_saving_task_num(unsigned int num)
250 {
251 if (num > ps_tsk_num) {
252 while (ps_tsk_num < num) {
253 if (create_power_saving_task())
254 return;
255 }
256 } else if (num < ps_tsk_num) {
257 while (ps_tsk_num > num)
258 destroy_power_saving_task();
259 }
260 }
261
acpi_pad_idle_cpus(unsigned int num_cpus)262 static void acpi_pad_idle_cpus(unsigned int num_cpus)
263 {
264 cpus_read_lock();
265
266 num_cpus = min_t(unsigned int, num_cpus, num_online_cpus());
267 set_power_saving_task_num(num_cpus);
268
269 cpus_read_unlock();
270 }
271
acpi_pad_idle_cpus_num(void)272 static uint32_t acpi_pad_idle_cpus_num(void)
273 {
274 return ps_tsk_num;
275 }
276
rrtime_store(struct device * dev,struct device_attribute * attr,const char * buf,size_t count)277 static ssize_t rrtime_store(struct device *dev,
278 struct device_attribute *attr, const char *buf, size_t count)
279 {
280 unsigned long num;
281
282 if (kstrtoul(buf, 0, &num))
283 return -EINVAL;
284 if (num < 1 || num >= 100)
285 return -EINVAL;
286 mutex_lock(&isolated_cpus_lock);
287 round_robin_time = num;
288 mutex_unlock(&isolated_cpus_lock);
289 return count;
290 }
291
rrtime_show(struct device * dev,struct device_attribute * attr,char * buf)292 static ssize_t rrtime_show(struct device *dev,
293 struct device_attribute *attr, char *buf)
294 {
295 return sysfs_emit(buf, "%d\n", round_robin_time);
296 }
297 static DEVICE_ATTR_RW(rrtime);
298
idlepct_store(struct device * dev,struct device_attribute * attr,const char * buf,size_t count)299 static ssize_t idlepct_store(struct device *dev,
300 struct device_attribute *attr, const char *buf, size_t count)
301 {
302 unsigned long num;
303
304 if (kstrtoul(buf, 0, &num))
305 return -EINVAL;
306 if (num < 1 || num >= 100)
307 return -EINVAL;
308 mutex_lock(&isolated_cpus_lock);
309 idle_pct = num;
310 mutex_unlock(&isolated_cpus_lock);
311 return count;
312 }
313
idlepct_show(struct device * dev,struct device_attribute * attr,char * buf)314 static ssize_t idlepct_show(struct device *dev,
315 struct device_attribute *attr, char *buf)
316 {
317 return sysfs_emit(buf, "%d\n", idle_pct);
318 }
319 static DEVICE_ATTR_RW(idlepct);
320
idlecpus_store(struct device * dev,struct device_attribute * attr,const char * buf,size_t count)321 static ssize_t idlecpus_store(struct device *dev,
322 struct device_attribute *attr, const char *buf, size_t count)
323 {
324 unsigned long num;
325
326 if (kstrtoul(buf, 0, &num))
327 return -EINVAL;
328 mutex_lock(&isolated_cpus_lock);
329 acpi_pad_idle_cpus(num);
330 mutex_unlock(&isolated_cpus_lock);
331 return count;
332 }
333
idlecpus_show(struct device * dev,struct device_attribute * attr,char * buf)334 static ssize_t idlecpus_show(struct device *dev,
335 struct device_attribute *attr, char *buf)
336 {
337 return cpumap_print_to_pagebuf(false, buf,
338 to_cpumask(pad_busy_cpus_bits));
339 }
340
341 static DEVICE_ATTR_RW(idlecpus);
342
343 static struct attribute *acpi_pad_attrs[] = {
344 &dev_attr_idlecpus.attr,
345 &dev_attr_idlepct.attr,
346 &dev_attr_rrtime.attr,
347 NULL
348 };
349
350 ATTRIBUTE_GROUPS(acpi_pad);
351
352 /*
353 * Query firmware how many CPUs should be idle
354 * return -1 on failure
355 */
acpi_pad_pur(acpi_handle handle)356 static int acpi_pad_pur(acpi_handle handle)
357 {
358 struct acpi_buffer buffer = {ACPI_ALLOCATE_BUFFER, NULL};
359 union acpi_object *package;
360 int num = -1;
361
362 if (ACPI_FAILURE(acpi_evaluate_object(handle, "_PUR", NULL, &buffer)))
363 return num;
364
365 if (!buffer.length || !buffer.pointer)
366 return num;
367
368 package = buffer.pointer;
369
370 if (package->type == ACPI_TYPE_PACKAGE &&
371 package->package.count == 2 &&
372 package->package.elements[0].integer.value == 1) /* rev 1 */
373
374 num = package->package.elements[1].integer.value;
375
376 kfree(buffer.pointer);
377 return num;
378 }
379
acpi_pad_handle_notify(acpi_handle handle)380 static void acpi_pad_handle_notify(acpi_handle handle)
381 {
382 int num_cpus;
383 uint32_t idle_cpus;
384 struct acpi_buffer param = {
385 .length = 4,
386 .pointer = (void *)&idle_cpus,
387 };
388 u32 status;
389
390 mutex_lock(&isolated_cpus_lock);
391 num_cpus = acpi_pad_pur(handle);
392 if (num_cpus < 0) {
393 /* The ACPI specification says that if no action was performed when
394 * processing the _PUR object, _OST should still be evaluated, albeit
395 * with a different status code.
396 */
397 status = ACPI_PROCESSOR_AGGREGATOR_STATUS_NO_ACTION;
398 } else {
399 status = ACPI_PROCESSOR_AGGREGATOR_STATUS_SUCCESS;
400 acpi_pad_idle_cpus(num_cpus);
401 }
402
403 idle_cpus = acpi_pad_idle_cpus_num();
404 acpi_evaluate_ost(handle, ACPI_PROCESSOR_AGGREGATOR_NOTIFY, status, ¶m);
405 mutex_unlock(&isolated_cpus_lock);
406 }
407
acpi_pad_notify(acpi_handle handle,u32 event,void * data)408 static void acpi_pad_notify(acpi_handle handle, u32 event, void *data)
409 {
410 struct acpi_device *adev = data;
411
412 switch (event) {
413 case ACPI_PROCESSOR_AGGREGATOR_NOTIFY:
414 acpi_pad_handle_notify(handle);
415 acpi_bus_generate_netlink_event("acpi_pad",
416 dev_name(&adev->dev), event, 0);
417 break;
418 default:
419 pr_warn("Unsupported event [0x%x]\n", event);
420 break;
421 }
422 }
423
acpi_pad_probe(struct platform_device * pdev)424 static int acpi_pad_probe(struct platform_device *pdev)
425 {
426 struct acpi_device *adev = ACPI_COMPANION(&pdev->dev);
427
428 return acpi_dev_install_notify_handler(adev, ACPI_DEVICE_NOTIFY,
429 acpi_pad_notify, adev);
430 }
431
acpi_pad_remove(struct platform_device * pdev)432 static void acpi_pad_remove(struct platform_device *pdev)
433 {
434 mutex_lock(&isolated_cpus_lock);
435 acpi_pad_idle_cpus(0);
436 mutex_unlock(&isolated_cpus_lock);
437
438 acpi_dev_remove_notify_handler(ACPI_COMPANION(&pdev->dev),
439 ACPI_DEVICE_NOTIFY, acpi_pad_notify);
440 }
441
442 static const struct acpi_device_id pad_device_ids[] = {
443 {"ACPI000C", 0},
444 {"", 0},
445 };
446 MODULE_DEVICE_TABLE(acpi, pad_device_ids);
447
448 static struct platform_driver acpi_pad_driver = {
449 .probe = acpi_pad_probe,
450 .remove = acpi_pad_remove,
451 .driver = {
452 .dev_groups = acpi_pad_groups,
453 .name = "processor_aggregator",
454 .acpi_match_table = pad_device_ids,
455 },
456 };
457
acpi_pad_init(void)458 static int __init acpi_pad_init(void)
459 {
460 /* Xen ACPI PAD is used when running as Xen Dom0. */
461 if (xen_initial_domain())
462 return -ENODEV;
463
464 power_saving_mwait_init();
465 if (power_saving_mwait_eax == 0)
466 return -EINVAL;
467
468 return platform_driver_register(&acpi_pad_driver);
469 }
470
acpi_pad_exit(void)471 static void __exit acpi_pad_exit(void)
472 {
473 platform_driver_unregister(&acpi_pad_driver);
474 }
475
476 module_init(acpi_pad_init);
477 module_exit(acpi_pad_exit);
478 MODULE_AUTHOR("Shaohua Li<shaohua.li@intel.com>");
479 MODULE_DESCRIPTION("ACPI Processor Aggregator Driver");
480 MODULE_LICENSE("GPL");
481