power: check frequencies count before filling array
[dpdk.git] / lib / power / power_cppc_cpufreq.c
1 /* SPDX-License-Identifier: BSD-3-Clause
2  * Copyright(c) 2010-2021 Intel Corporation
3  * Copyright(c) 2021 Arm Limited
4  */
5
6 #include <rte_memcpy.h>
7 #include <rte_memory.h>
8
9 #include "power_cppc_cpufreq.h"
10 #include "power_common.h"
11
12 /* macros used for rounding frequency to nearest 100000 */
13 #define FREQ_ROUNDING_DELTA 50000
14 #define ROUND_FREQ_TO_N_100000 100000
15
16 /* the unit of highest_perf and nominal_perf differs on different arm platforms.
17  * For highest_perf, it maybe 300 or 3000000, both means 3.0GHz.
18  */
19 #define UNIT_DIFF 10000
20
21 #define POWER_CONVERT_TO_DECIMAL 10
22
23 #define POWER_GOVERNOR_USERSPACE "userspace"
24 #define POWER_SYSFILE_SETSPEED   \
25                 "/sys/devices/system/cpu/cpu%u/cpufreq/scaling_setspeed"
26 #define POWER_SYSFILE_SCALING_MAX_FREQ \
27                 "/sys/devices/system/cpu/cpu%u/cpufreq/scaling_max_freq"
28 #define POWER_SYSFILE_SCALING_MIN_FREQ  \
29                 "/sys/devices/system/cpu/cpu%u/cpufreq/scaling_min_freq"
30 #define POWER_SYSFILE_HIGHEST_PERF \
31                 "/sys/devices/system/cpu/cpu%u/acpi_cppc/highest_perf"
32 #define POWER_SYSFILE_NOMINAL_PERF \
33                 "/sys/devices/system/cpu/cpu%u/acpi_cppc/nominal_perf"
34 #define POWER_SYSFILE_SYS_MAX \
35                 "/sys/devices/system/cpu/cpu%u/cpufreq/cpuinfo_max_freq"
36
37 #define POWER_CPPC_DRIVER "cppc-cpufreq"
38 #define BUS_FREQ     100000
39
40 enum power_state {
41         POWER_IDLE = 0,
42         POWER_ONGOING,
43         POWER_USED,
44         POWER_UNKNOWN
45 };
46
47 /**
48  * Power info per lcore.
49  */
50 struct cppc_power_info {
51         unsigned int lcore_id;                   /**< Logical core id */
52         uint32_t state;                      /**< Power in use state */
53         FILE *f;                             /**< FD of scaling_setspeed */
54         char governor_ori[32];               /**< Original governor name */
55         uint32_t curr_idx;                   /**< Freq index in freqs array */
56         uint32_t highest_perf;               /**< system wide max freq */
57         uint32_t nominal_perf;               /**< system wide nominal freq */
58         uint16_t turbo_available;            /**< Turbo Boost available */
59         uint16_t turbo_enable;               /**< Turbo Boost enable/disable */
60         uint32_t nb_freqs;                   /**< number of available freqs */
61         uint32_t freqs[RTE_MAX_LCORE_FREQS]; /**< Frequency array */
62 } __rte_cache_aligned;
63
64 static struct cppc_power_info lcore_power_info[RTE_MAX_LCORE];
65
66 /**
67  * It is to set specific freq for specific logical core, according to the index
68  * of supported frequencies.
69  */
70 static int
71 set_freq_internal(struct cppc_power_info *pi, uint32_t idx)
72 {
73         if (idx >= RTE_MAX_LCORE_FREQS || idx >= pi->nb_freqs) {
74                 RTE_LOG(ERR, POWER, "Invalid frequency index %u, which "
75                                 "should be less than %u\n", idx, pi->nb_freqs);
76                 return -1;
77         }
78
79         /* Check if it is the same as current */
80         if (idx == pi->curr_idx)
81                 return 0;
82
83         POWER_DEBUG_TRACE("Frequency[%u] %u to be set for lcore %u\n",
84                         idx, pi->freqs[idx], pi->lcore_id);
85         if (fseek(pi->f, 0, SEEK_SET) < 0) {
86                 RTE_LOG(ERR, POWER, "Fail to set file position indicator to 0 "
87                         "for setting frequency for lcore %u\n", pi->lcore_id);
88                 return -1;
89         }
90         if (fprintf(pi->f, "%u", pi->freqs[idx]) < 0) {
91                 RTE_LOG(ERR, POWER, "Fail to write new frequency for "
92                                 "lcore %u\n", pi->lcore_id);
93                 return -1;
94         }
95         fflush(pi->f);
96         pi->curr_idx = idx;
97
98         return 1;
99 }
100
101 /**
102  * It is to check the current scaling governor by reading sys file, and then
103  * set it into 'userspace' if it is not by writing the sys file. The original
104  * governor will be saved for rolling back.
105  */
106 static int
107 power_set_governor_userspace(struct cppc_power_info *pi)
108 {
109         return power_set_governor(pi->lcore_id, POWER_GOVERNOR_USERSPACE,
110                         pi->governor_ori, sizeof(pi->governor_ori));
111 }
112
113 static int
114 power_check_turbo(struct cppc_power_info *pi)
115 {
116         FILE *f_nom = NULL, *f_max = NULL, *f_cmax = NULL;
117         int ret = -1;
118         uint32_t nominal_perf = 0, highest_perf = 0, cpuinfo_max_freq = 0;
119
120         open_core_sysfs_file(&f_max, "r", POWER_SYSFILE_HIGHEST_PERF,
121                         pi->lcore_id);
122         if (f_max == NULL) {
123                 RTE_LOG(ERR, POWER, "failed to open %s\n",
124                                 POWER_SYSFILE_HIGHEST_PERF);
125                 goto err;
126         }
127
128         open_core_sysfs_file(&f_nom, "r", POWER_SYSFILE_NOMINAL_PERF,
129                         pi->lcore_id);
130         if (f_nom == NULL) {
131                 RTE_LOG(ERR, POWER, "failed to open %s\n",
132                                 POWER_SYSFILE_NOMINAL_PERF);
133                 goto err;
134         }
135
136         open_core_sysfs_file(&f_cmax, "r", POWER_SYSFILE_SYS_MAX,
137                         pi->lcore_id);
138         if (f_cmax == NULL) {
139                 RTE_LOG(ERR, POWER, "failed to open %s\n",
140                                 POWER_SYSFILE_SYS_MAX);
141                 goto err;
142         }
143
144         ret = read_core_sysfs_u32(f_max, &highest_perf);
145         if (ret < 0) {
146                 RTE_LOG(ERR, POWER, "Failed to read %s\n",
147                                 POWER_SYSFILE_HIGHEST_PERF);
148                 goto err;
149         }
150
151         ret = read_core_sysfs_u32(f_nom, &nominal_perf);
152         if (ret < 0) {
153                 RTE_LOG(ERR, POWER, "Failed to read %s\n",
154                                 POWER_SYSFILE_NOMINAL_PERF);
155                 goto err;
156         }
157
158         ret = read_core_sysfs_u32(f_cmax, &cpuinfo_max_freq);
159         if (ret < 0) {
160                 RTE_LOG(ERR, POWER, "Failed to read %s\n",
161                                 POWER_SYSFILE_SYS_MAX);
162                 goto err;
163         }
164
165         pi->highest_perf = highest_perf;
166         pi->nominal_perf = nominal_perf;
167
168         if ((highest_perf > nominal_perf) && ((cpuinfo_max_freq == highest_perf)
169                         || cpuinfo_max_freq == highest_perf * UNIT_DIFF)) {
170                 pi->turbo_available = 1;
171                 pi->turbo_enable = 1;
172                 ret = 0;
173                 POWER_DEBUG_TRACE("Lcore %u can do Turbo Boost! highest perf %u, "
174                                 "nominal perf %u\n",
175                                 pi->lcore_id, highest_perf, nominal_perf);
176         } else {
177                 pi->turbo_available = 0;
178                 pi->turbo_enable = 0;
179                 POWER_DEBUG_TRACE("Lcore %u Turbo not available! highest perf %u, "
180                                 "nominal perf %u\n",
181                                 pi->lcore_id, highest_perf, nominal_perf);
182         }
183
184 err:
185         if (f_max != NULL)
186                 fclose(f_max);
187         if (f_nom != NULL)
188                 fclose(f_nom);
189         if (f_cmax != NULL)
190                 fclose(f_cmax);
191
192         return ret;
193 }
194
195 /**
196  * It is to get the available frequencies of the specific lcore by reading the
197  * sys file.
198  */
199 static int
200 power_get_available_freqs(struct cppc_power_info *pi)
201 {
202         FILE *f_min = NULL, *f_max = NULL;
203         int ret = -1;
204         uint32_t scaling_min_freq = 0, scaling_max_freq = 0, nominal_perf = 0;
205         uint32_t i, num_freqs = 0;
206
207         open_core_sysfs_file(&f_max, "r", POWER_SYSFILE_SCALING_MAX_FREQ,
208                         pi->lcore_id);
209         if (f_max == NULL) {
210                 RTE_LOG(ERR, POWER, "failed to open %s\n",
211                                 POWER_SYSFILE_SCALING_MAX_FREQ);
212                 goto out;
213         }
214
215         open_core_sysfs_file(&f_min, "r", POWER_SYSFILE_SCALING_MIN_FREQ,
216                         pi->lcore_id);
217         if (f_min == NULL) {
218                 RTE_LOG(ERR, POWER, "failed to open %s\n",
219                                 POWER_SYSFILE_SCALING_MIN_FREQ);
220                 goto out;
221         }
222
223         ret = read_core_sysfs_u32(f_max, &scaling_max_freq);
224         if (ret < 0) {
225                 RTE_LOG(ERR, POWER, "Failed to read %s\n",
226                                 POWER_SYSFILE_SCALING_MAX_FREQ);
227                 goto out;
228         }
229
230         ret = read_core_sysfs_u32(f_min, &scaling_min_freq);
231         if (ret < 0) {
232                 RTE_LOG(ERR, POWER, "Failed to read %s\n",
233                                 POWER_SYSFILE_SCALING_MIN_FREQ);
234                 goto out;
235         }
236
237         power_check_turbo(pi);
238
239         if (scaling_max_freq < scaling_min_freq)
240                 goto out;
241
242         /* If turbo is available then there is one extra freq bucket
243          * to store the sys max freq which value is scaling_max_freq
244          */
245         nominal_perf = (pi->nominal_perf < UNIT_DIFF) ?
246                         pi->nominal_perf * UNIT_DIFF : pi->nominal_perf;
247         num_freqs = (nominal_perf - scaling_min_freq) / BUS_FREQ + 1 +
248                 pi->turbo_available;
249         if (num_freqs >= RTE_MAX_LCORE_FREQS) {
250                 RTE_LOG(ERR, POWER, "Too many available frequencies: %d\n",
251                                 num_freqs);
252                 goto out;
253         }
254
255         /* Generate the freq bucket array. */
256         for (i = 0, pi->nb_freqs = 0; i < num_freqs; i++) {
257                 if ((i == 0) && pi->turbo_available)
258                         pi->freqs[pi->nb_freqs++] = scaling_max_freq;
259                 else
260                         pi->freqs[pi->nb_freqs++] =
261                         nominal_perf - (i - pi->turbo_available) * BUS_FREQ;
262         }
263
264         ret = 0;
265
266         POWER_DEBUG_TRACE("%d frequency(s) of lcore %u are available\n",
267                         num_freqs, pi->lcore_id);
268
269 out:
270         if (f_min != NULL)
271                 fclose(f_min);
272         if (f_max != NULL)
273                 fclose(f_max);
274
275         return ret;
276 }
277
278 /**
279  * It is to fopen the sys file for the future setting the lcore frequency.
280  */
281 static int
282 power_init_for_setting_freq(struct cppc_power_info *pi)
283 {
284         FILE *f = NULL;
285         char buf[BUFSIZ];
286         uint32_t i, freq;
287         int ret;
288
289         open_core_sysfs_file(&f, "rw+", POWER_SYSFILE_SETSPEED, pi->lcore_id);
290         if (f == NULL) {
291                 RTE_LOG(ERR, POWER, "failed to open %s\n",
292                                 POWER_SYSFILE_SETSPEED);
293                 goto err;
294         }
295
296         ret = read_core_sysfs_s(f, buf, sizeof(buf));
297         if (ret < 0) {
298                 RTE_LOG(ERR, POWER, "Failed to read %s\n",
299                                 POWER_SYSFILE_SETSPEED);
300                 goto err;
301         }
302
303         freq = strtoul(buf, NULL, POWER_CONVERT_TO_DECIMAL);
304
305         /* convert the frequency to nearest 100000 value
306          * Ex: if freq=1396789 then freq_conv=1400000
307          * Ex: if freq=800030 then freq_conv=800000
308          */
309         unsigned int freq_conv = 0;
310         freq_conv = (freq + FREQ_ROUNDING_DELTA)
311                                 / ROUND_FREQ_TO_N_100000;
312         freq_conv = freq_conv * ROUND_FREQ_TO_N_100000;
313
314         for (i = 0; i < pi->nb_freqs; i++) {
315                 if (freq_conv == pi->freqs[i]) {
316                         pi->curr_idx = i;
317                         pi->f = f;
318                         return 0;
319                 }
320         }
321
322 err:
323         if (f != NULL)
324                 fclose(f);
325
326         return -1;
327 }
328
329 int
330 power_cppc_cpufreq_check_supported(void)
331 {
332         return cpufreq_check_scaling_driver(POWER_CPPC_DRIVER);
333 }
334
335 int
336 power_cppc_cpufreq_init(unsigned int lcore_id)
337 {
338         struct cppc_power_info *pi;
339         uint32_t exp_state;
340
341         if (lcore_id >= RTE_MAX_LCORE) {
342                 RTE_LOG(ERR, POWER, "Lcore id %u can not exceeds %u\n",
343                                 lcore_id, RTE_MAX_LCORE - 1U);
344                 return -1;
345         }
346
347         pi = &lcore_power_info[lcore_id];
348         exp_state = POWER_IDLE;
349         /* The power in use state works as a guard variable between
350          * the CPU frequency control initialization and exit process.
351          * The ACQUIRE memory ordering here pairs with the RELEASE
352          * ordering below as lock to make sure the frequency operations
353          * in the critical section are done under the correct state.
354          */
355         if (!__atomic_compare_exchange_n(&(pi->state), &exp_state,
356                                         POWER_ONGOING, 0,
357                                         __ATOMIC_ACQUIRE, __ATOMIC_RELAXED)) {
358                 RTE_LOG(INFO, POWER, "Power management of lcore %u is "
359                                 "in use\n", lcore_id);
360                 return -1;
361         }
362
363         pi->lcore_id = lcore_id;
364         /* Check and set the governor */
365         if (power_set_governor_userspace(pi) < 0) {
366                 RTE_LOG(ERR, POWER, "Cannot set governor of lcore %u to "
367                                 "userspace\n", lcore_id);
368                 goto fail;
369         }
370
371         /* Get the available frequencies */
372         if (power_get_available_freqs(pi) < 0) {
373                 RTE_LOG(ERR, POWER, "Cannot get available frequencies of "
374                                 "lcore %u\n", lcore_id);
375                 goto fail;
376         }
377
378         /* Init for setting lcore frequency */
379         if (power_init_for_setting_freq(pi) < 0) {
380                 RTE_LOG(ERR, POWER, "Cannot init for setting frequency for "
381                                 "lcore %u\n", lcore_id);
382                 goto fail;
383         }
384
385         /* Set freq to max by default */
386         if (power_cppc_cpufreq_freq_max(lcore_id) < 0) {
387                 RTE_LOG(ERR, POWER, "Cannot set frequency of lcore %u "
388                                 "to max\n", lcore_id);
389                 goto fail;
390         }
391
392         RTE_LOG(INFO, POWER, "Initialized successfully for lcore %u "
393                         "power management\n", lcore_id);
394
395         __atomic_store_n(&(pi->state), POWER_USED, __ATOMIC_RELEASE);
396
397         return 0;
398
399 fail:
400         __atomic_store_n(&(pi->state), POWER_UNKNOWN, __ATOMIC_RELEASE);
401         return -1;
402 }
403
404 /**
405  * It is to check the governor and then set the original governor back if
406  * needed by writing the sys file.
407  */
408 static int
409 power_set_governor_original(struct cppc_power_info *pi)
410 {
411         return power_set_governor(pi->lcore_id, pi->governor_ori, NULL, 0);
412 }
413
414 int
415 power_cppc_cpufreq_exit(unsigned int lcore_id)
416 {
417         struct cppc_power_info *pi;
418         uint32_t exp_state;
419
420         if (lcore_id >= RTE_MAX_LCORE) {
421                 RTE_LOG(ERR, POWER, "Lcore id %u can not exceeds %u\n",
422                                 lcore_id, RTE_MAX_LCORE - 1U);
423                 return -1;
424         }
425         pi = &lcore_power_info[lcore_id];
426         exp_state = POWER_USED;
427         /* The power in use state works as a guard variable between
428          * the CPU frequency control initialization and exit process.
429          * The ACQUIRE memory ordering here pairs with the RELEASE
430          * ordering below as lock to make sure the frequency operations
431          * in the critical section are done under the correct state.
432          */
433         if (!__atomic_compare_exchange_n(&(pi->state), &exp_state,
434                                         POWER_ONGOING, 0,
435                                         __ATOMIC_ACQUIRE, __ATOMIC_RELAXED)) {
436                 RTE_LOG(INFO, POWER, "Power management of lcore %u is "
437                                 "not used\n", lcore_id);
438                 return -1;
439         }
440
441         /* Close FD of setting freq */
442         fclose(pi->f);
443         pi->f = NULL;
444
445         /* Set the governor back to the original */
446         if (power_set_governor_original(pi) < 0) {
447                 RTE_LOG(ERR, POWER, "Cannot set the governor of %u back "
448                                 "to the original\n", lcore_id);
449                 goto fail;
450         }
451
452         RTE_LOG(INFO, POWER, "Power management of lcore %u has exited from "
453                         "'userspace' mode and been set back to the "
454                         "original\n", lcore_id);
455         __atomic_store_n(&(pi->state), POWER_IDLE, __ATOMIC_RELEASE);
456
457         return 0;
458
459 fail:
460         __atomic_store_n(&(pi->state), POWER_UNKNOWN, __ATOMIC_RELEASE);
461
462         return -1;
463 }
464
465 uint32_t
466 power_cppc_cpufreq_freqs(unsigned int lcore_id, uint32_t *freqs, uint32_t num)
467 {
468         struct cppc_power_info *pi;
469
470         if (lcore_id >= RTE_MAX_LCORE) {
471                 RTE_LOG(ERR, POWER, "Invalid lcore ID\n");
472                 return 0;
473         }
474
475         if (freqs == NULL) {
476                 RTE_LOG(ERR, POWER, "NULL buffer supplied\n");
477                 return 0;
478         }
479
480         pi = &lcore_power_info[lcore_id];
481         if (num < pi->nb_freqs) {
482                 RTE_LOG(ERR, POWER, "Buffer size is not enough\n");
483                 return 0;
484         }
485         rte_memcpy(freqs, pi->freqs, pi->nb_freqs * sizeof(uint32_t));
486
487         return pi->nb_freqs;
488 }
489
490 uint32_t
491 power_cppc_cpufreq_get_freq(unsigned int lcore_id)
492 {
493         if (lcore_id >= RTE_MAX_LCORE) {
494                 RTE_LOG(ERR, POWER, "Invalid lcore ID\n");
495                 return RTE_POWER_INVALID_FREQ_INDEX;
496         }
497
498         return lcore_power_info[lcore_id].curr_idx;
499 }
500
501 int
502 power_cppc_cpufreq_set_freq(unsigned int lcore_id, uint32_t index)
503 {
504         if (lcore_id >= RTE_MAX_LCORE) {
505                 RTE_LOG(ERR, POWER, "Invalid lcore ID\n");
506                 return -1;
507         }
508
509         return set_freq_internal(&(lcore_power_info[lcore_id]), index);
510 }
511
512 int
513 power_cppc_cpufreq_freq_down(unsigned int lcore_id)
514 {
515         struct cppc_power_info *pi;
516
517         if (lcore_id >= RTE_MAX_LCORE) {
518                 RTE_LOG(ERR, POWER, "Invalid lcore ID\n");
519                 return -1;
520         }
521
522         pi = &lcore_power_info[lcore_id];
523         if (pi->curr_idx + 1 == pi->nb_freqs)
524                 return 0;
525
526         /* Frequencies in the array are from high to low. */
527         return set_freq_internal(pi, pi->curr_idx + 1);
528 }
529
530 int
531 power_cppc_cpufreq_freq_up(unsigned int lcore_id)
532 {
533         struct cppc_power_info *pi;
534
535         if (lcore_id >= RTE_MAX_LCORE) {
536                 RTE_LOG(ERR, POWER, "Invalid lcore ID\n");
537                 return -1;
538         }
539
540         pi = &lcore_power_info[lcore_id];
541         if (pi->curr_idx == 0 || (pi->curr_idx == 1 &&
542                 pi->turbo_available && !pi->turbo_enable))
543                 return 0;
544
545         /* Frequencies in the array are from high to low. */
546         return set_freq_internal(pi, pi->curr_idx - 1);
547 }
548
549 int
550 power_cppc_cpufreq_freq_max(unsigned int lcore_id)
551 {
552         if (lcore_id >= RTE_MAX_LCORE) {
553                 RTE_LOG(ERR, POWER, "Invalid lcore ID\n");
554                 return -1;
555         }
556
557         /* Frequencies in the array are from high to low. */
558         if (lcore_power_info[lcore_id].turbo_available) {
559                 if (lcore_power_info[lcore_id].turbo_enable)
560                         /* Set to Turbo */
561                         return set_freq_internal(
562                                 &lcore_power_info[lcore_id], 0);
563                 else
564                         /* Set to max non-turbo */
565                         return set_freq_internal(
566                                 &lcore_power_info[lcore_id], 1);
567         } else
568                 return set_freq_internal(&lcore_power_info[lcore_id], 0);
569 }
570
571 int
572 power_cppc_cpufreq_freq_min(unsigned int lcore_id)
573 {
574         struct cppc_power_info *pi;
575
576         if (lcore_id >= RTE_MAX_LCORE) {
577                 RTE_LOG(ERR, POWER, "Invalid lcore ID\n");
578                 return -1;
579         }
580
581         pi = &lcore_power_info[lcore_id];
582
583         /* Frequencies in the array are from high to low. */
584         return set_freq_internal(pi, pi->nb_freqs - 1);
585 }
586
587 int
588 power_cppc_turbo_status(unsigned int lcore_id)
589 {
590         struct cppc_power_info *pi;
591
592         if (lcore_id >= RTE_MAX_LCORE) {
593                 RTE_LOG(ERR, POWER, "Invalid lcore ID\n");
594                 return -1;
595         }
596
597         pi = &lcore_power_info[lcore_id];
598
599         return pi->turbo_enable;
600 }
601
602 int
603 power_cppc_enable_turbo(unsigned int lcore_id)
604 {
605         struct cppc_power_info *pi;
606
607         if (lcore_id >= RTE_MAX_LCORE) {
608                 RTE_LOG(ERR, POWER, "Invalid lcore ID\n");
609                 return -1;
610         }
611
612         pi = &lcore_power_info[lcore_id];
613
614         if (pi->turbo_available)
615                 pi->turbo_enable = 1;
616         else {
617                 pi->turbo_enable = 0;
618                 RTE_LOG(ERR, POWER,
619                         "Failed to enable turbo on lcore %u\n",
620                         lcore_id);
621                 return -1;
622         }
623
624         /* TODO: must set to max once enbling Turbo? Considering add condition:
625          * if ((pi->turbo_available) && (pi->curr_idx <= 1))
626          */
627         /* Max may have changed, so call to max function */
628         if (power_cppc_cpufreq_freq_max(lcore_id) < 0) {
629                 RTE_LOG(ERR, POWER,
630                         "Failed to set frequency of lcore %u to max\n",
631                         lcore_id);
632                 return -1;
633         }
634
635         return 0;
636 }
637
638 int
639 power_cppc_disable_turbo(unsigned int lcore_id)
640 {
641         struct cppc_power_info *pi;
642
643         if (lcore_id >= RTE_MAX_LCORE) {
644                 RTE_LOG(ERR, POWER, "Invalid lcore ID\n");
645                 return -1;
646         }
647
648         pi = &lcore_power_info[lcore_id];
649
650         pi->turbo_enable = 0;
651
652         if ((pi->turbo_available) && (pi->curr_idx <= 1)) {
653                 /* Try to set freq to max by default coming out of turbo */
654                 if (power_cppc_cpufreq_freq_max(lcore_id) < 0) {
655                         RTE_LOG(ERR, POWER,
656                                 "Failed to set frequency of lcore %u to max\n",
657                                 lcore_id);
658                         return -1;
659                 }
660         }
661
662         return 0;
663 }
664
665 int
666 power_cppc_get_capabilities(unsigned int lcore_id,
667                 struct rte_power_core_capabilities *caps)
668 {
669         struct cppc_power_info *pi;
670
671         if (lcore_id >= RTE_MAX_LCORE) {
672                 RTE_LOG(ERR, POWER, "Invalid lcore ID\n");
673                 return -1;
674         }
675         if (caps == NULL) {
676                 RTE_LOG(ERR, POWER, "Invalid argument\n");
677                 return -1;
678         }
679
680         pi = &lcore_power_info[lcore_id];
681         caps->capabilities = 0;
682         caps->turbo = !!(pi->turbo_available);
683
684         return 0;
685 }