b.liu | e958203 | 2025-04-17 19:18:16 +0800 | [diff] [blame^] | 1 | /* drivers/cpufreq/cpufreq_times.c |
| 2 | * |
| 3 | * Copyright (C) 2018 Google, Inc. |
| 4 | * |
| 5 | * This software is licensed under the terms of the GNU General Public |
| 6 | * License version 2, as published by the Free Software Foundation, and |
| 7 | * may be copied, distributed, and modified under those terms. |
| 8 | * |
| 9 | * This program is distributed in the hope that it will be useful, |
| 10 | * but WITHOUT ANY WARRANTY; without even the implied warranty of |
| 11 | * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the |
| 12 | * GNU General Public License for more details. |
| 13 | * |
| 14 | */ |
| 15 | |
| 16 | #include <linux/cpufreq.h> |
| 17 | #include <linux/cpufreq_times.h> |
| 18 | #include <linux/jiffies.h> |
| 19 | #include <linux/sched.h> |
| 20 | #include <linux/seq_file.h> |
| 21 | #include <linux/slab.h> |
| 22 | #include <linux/spinlock.h> |
| 23 | #include <linux/threads.h> |
| 24 | |
| 25 | static DEFINE_SPINLOCK(task_time_in_state_lock); /* task->time_in_state */ |
| 26 | |
| 27 | /** |
| 28 | * struct cpu_freqs - per-cpu frequency information |
| 29 | * @offset: start of these freqs' stats in task time_in_state array |
| 30 | * @max_state: number of entries in freq_table |
| 31 | * @last_index: index in freq_table of last frequency switched to |
| 32 | * @freq_table: list of available frequencies |
| 33 | */ |
| 34 | struct cpu_freqs { |
| 35 | unsigned int offset; |
| 36 | unsigned int max_state; |
| 37 | unsigned int last_index; |
| 38 | unsigned int freq_table[0]; |
| 39 | }; |
| 40 | |
| 41 | static struct cpu_freqs *all_freqs[NR_CPUS]; |
| 42 | |
| 43 | static unsigned int next_offset; |
| 44 | |
| 45 | void cpufreq_task_times_init(struct task_struct *p) |
| 46 | { |
| 47 | unsigned long flags; |
| 48 | |
| 49 | spin_lock_irqsave(&task_time_in_state_lock, flags); |
| 50 | p->time_in_state = NULL; |
| 51 | spin_unlock_irqrestore(&task_time_in_state_lock, flags); |
| 52 | p->max_state = 0; |
| 53 | } |
| 54 | |
| 55 | void cpufreq_task_times_alloc(struct task_struct *p) |
| 56 | { |
| 57 | void *temp; |
| 58 | unsigned long flags; |
| 59 | unsigned int max_state = READ_ONCE(next_offset); |
| 60 | |
| 61 | /* We use one array to avoid multiple allocs per task */ |
| 62 | temp = kcalloc(max_state, sizeof(p->time_in_state[0]), GFP_ATOMIC); |
| 63 | if (!temp) |
| 64 | return; |
| 65 | |
| 66 | spin_lock_irqsave(&task_time_in_state_lock, flags); |
| 67 | p->time_in_state = temp; |
| 68 | spin_unlock_irqrestore(&task_time_in_state_lock, flags); |
| 69 | p->max_state = max_state; |
| 70 | } |
| 71 | |
| 72 | /* Caller must hold task_time_in_state_lock */ |
| 73 | static int cpufreq_task_times_realloc_locked(struct task_struct *p) |
| 74 | { |
| 75 | void *temp; |
| 76 | unsigned int max_state = READ_ONCE(next_offset); |
| 77 | |
| 78 | temp = krealloc(p->time_in_state, max_state * sizeof(u64), GFP_ATOMIC); |
| 79 | if (!temp) |
| 80 | return -ENOMEM; |
| 81 | p->time_in_state = temp; |
| 82 | memset(p->time_in_state + p->max_state, 0, |
| 83 | (max_state - p->max_state) * sizeof(u64)); |
| 84 | p->max_state = max_state; |
| 85 | return 0; |
| 86 | } |
| 87 | |
| 88 | void cpufreq_task_times_exit(struct task_struct *p) |
| 89 | { |
| 90 | unsigned long flags; |
| 91 | void *temp; |
| 92 | |
| 93 | if (!p->time_in_state) |
| 94 | return; |
| 95 | |
| 96 | spin_lock_irqsave(&task_time_in_state_lock, flags); |
| 97 | temp = p->time_in_state; |
| 98 | p->time_in_state = NULL; |
| 99 | spin_unlock_irqrestore(&task_time_in_state_lock, flags); |
| 100 | kfree(temp); |
| 101 | } |
| 102 | |
| 103 | int proc_time_in_state_show(struct seq_file *m, struct pid_namespace *ns, |
| 104 | struct pid *pid, struct task_struct *p) |
| 105 | { |
| 106 | unsigned int cpu, i; |
| 107 | u64 cputime; |
| 108 | unsigned long flags; |
| 109 | struct cpu_freqs *freqs; |
| 110 | struct cpu_freqs *last_freqs = NULL; |
| 111 | |
| 112 | spin_lock_irqsave(&task_time_in_state_lock, flags); |
| 113 | for_each_possible_cpu(cpu) { |
| 114 | freqs = all_freqs[cpu]; |
| 115 | if (!freqs || freqs == last_freqs) |
| 116 | continue; |
| 117 | last_freqs = freqs; |
| 118 | |
| 119 | seq_printf(m, "cpu%u\n", cpu); |
| 120 | for (i = 0; i < freqs->max_state; i++) { |
| 121 | cputime = 0; |
| 122 | if (freqs->offset + i < p->max_state && |
| 123 | p->time_in_state) |
| 124 | cputime = p->time_in_state[freqs->offset + i]; |
| 125 | seq_printf(m, "%u %lu\n", freqs->freq_table[i], |
| 126 | (unsigned long)nsec_to_clock_t(cputime)); |
| 127 | } |
| 128 | } |
| 129 | spin_unlock_irqrestore(&task_time_in_state_lock, flags); |
| 130 | return 0; |
| 131 | } |
| 132 | |
| 133 | void cpufreq_acct_update_power(struct task_struct *p, u64 cputime) |
| 134 | { |
| 135 | unsigned long flags; |
| 136 | unsigned int state; |
| 137 | struct cpu_freqs *freqs = all_freqs[task_cpu(p)]; |
| 138 | |
| 139 | if (!freqs || is_idle_task(p) || p->flags & PF_EXITING) |
| 140 | return; |
| 141 | |
| 142 | state = freqs->offset + READ_ONCE(freqs->last_index); |
| 143 | |
| 144 | spin_lock_irqsave(&task_time_in_state_lock, flags); |
| 145 | if ((state < p->max_state || !cpufreq_task_times_realloc_locked(p)) && |
| 146 | p->time_in_state) |
| 147 | p->time_in_state[state] += cputime; |
| 148 | spin_unlock_irqrestore(&task_time_in_state_lock, flags); |
| 149 | } |
| 150 | |
| 151 | static int cpufreq_times_get_index(struct cpu_freqs *freqs, unsigned int freq) |
| 152 | { |
| 153 | int index; |
| 154 | for (index = 0; index < freqs->max_state; ++index) { |
| 155 | if (freqs->freq_table[index] == freq) |
| 156 | return index; |
| 157 | } |
| 158 | return -1; |
| 159 | } |
| 160 | |
| 161 | void cpufreq_times_create_policy(struct cpufreq_policy *policy) |
| 162 | { |
| 163 | int cpu, index = 0; |
| 164 | unsigned int count = 0; |
| 165 | struct cpufreq_frequency_table *pos, *table; |
| 166 | struct cpu_freqs *freqs; |
| 167 | void *tmp; |
| 168 | |
| 169 | if (all_freqs[policy->cpu]) |
| 170 | return; |
| 171 | |
| 172 | table = policy->freq_table; |
| 173 | if (!table) |
| 174 | return; |
| 175 | |
| 176 | cpufreq_for_each_valid_entry(pos, table) |
| 177 | count++; |
| 178 | |
| 179 | tmp = kzalloc(sizeof(*freqs) + sizeof(freqs->freq_table[0]) * count, |
| 180 | GFP_KERNEL); |
| 181 | if (!tmp) |
| 182 | return; |
| 183 | |
| 184 | freqs = tmp; |
| 185 | freqs->max_state = count; |
| 186 | |
| 187 | cpufreq_for_each_valid_entry(pos, table) |
| 188 | freqs->freq_table[index++] = pos->frequency; |
| 189 | |
| 190 | index = cpufreq_times_get_index(freqs, policy->cur); |
| 191 | if (index >= 0) |
| 192 | WRITE_ONCE(freqs->last_index, index); |
| 193 | |
| 194 | freqs->offset = next_offset; |
| 195 | WRITE_ONCE(next_offset, freqs->offset + count); |
| 196 | for_each_cpu(cpu, policy->related_cpus) |
| 197 | all_freqs[cpu] = freqs; |
| 198 | } |
| 199 | |
| 200 | void cpufreq_times_record_transition(struct cpufreq_policy *policy, |
| 201 | unsigned int new_freq) |
| 202 | { |
| 203 | int index; |
| 204 | struct cpu_freqs *freqs = all_freqs[policy->cpu]; |
| 205 | if (!freqs) |
| 206 | return; |
| 207 | |
| 208 | index = cpufreq_times_get_index(freqs, new_freq); |
| 209 | if (index >= 0) |
| 210 | WRITE_ONCE(freqs->last_index, index); |
| 211 | } |