The previous implementation maintained three exponential moving averages (1/5/15-minute) of CPU busy-fraction, sampled every 5 seconds. This had two problems: 1. Wrong semantics: the metric was labelled "load_avg" (a Unix concept measuring run-queue depth), but the tracker actually measures CPU busy-time as a fraction of FreeRTOS ticks — i.e. utilization, not load. The name was misleading. 2. Poor responsiveness: the 1-minute EMA (DECAY = exp(-5/60) ≈ 0.920) has a ~60-second time constant. On a live web panel, this made the metric appear frozen, especially during short bursts of activity (e.g. an HTTP request from the panel itself). This commit replaces the EMA with a 64-sample simple moving average (SMA) over a compact uint8_t circular buffer. The sample interval is 60 s / 64 = 937,500 µs, so the window covers exactly 60 seconds: Algorithm: - Every 937,500 µs (= 60 s / 64), the FreeRTOS tick delta (busy vs idle ticks on core 0) is computed and stored as a uint8_t (0–255 = 0–100% utilization). - The circular buffer holds 64 samples, spanning exactly 60 seconds (64 × 937,500 µs = 60,000,000 µs). The timer interval is derived directly from the window size: 60 000 000 / SMA_WINDOW µs. - The index wraps with a bitwise AND (& 63) instead of modulo, since 64 is a power of 2. - The running sum is a uint16_t (max 64 × 255 = 16 320, fits easily). - The result _sma_avg is a volatile float written atomically by the esp_timer task (core 0) and read from the main loop (core 1). No spinlock is needed: on Xtensa LX7, a 32-bit aligned float store is a single instruction. The 60-second window smooths out short bursts (e.g. WiFi/HTTP spikes) while reacting to sustained load changes within ~10–15 seconds. Naming: - The public API is now getCore0Util() returning a float in [0.0, 1.0]. The name explicitly identifies which core is measured (core 0, which runs WiFi, MQTT, HTTP, and LwIP — see task_pinning.c). - JSON keys: "load_avg" (array) → "core0_util" (scalar float, percent) - HistorySample field: load_avg1_pct → core0_util_pct - StatsHistory series key: "cpu_load" → "core0_util" - Web panel label: "Load Avg" → "Core0 Util" The history snapshot (once per minute) reads the same _sma_avg value, which at that point represents the rolling average of the last 60 seconds — exactly one history interval.
55 строки
1.5 KiB
C++
55 строки
1.5 KiB
C++
#ifdef ESP32
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#include "CPUUsageTracker.h"
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#include "esp_freertos_hooks.h"
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volatile uint32_t CPUUsageTracker::s_idle_ticks = 0;
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volatile uint32_t CPUUsageTracker::s_busy_ticks = 0;
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TaskHandle_t CPUUsageTracker::s_idle_handle = nullptr;
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void IRAM_ATTR CPUUsageTracker::s_tick_hook() {
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if (xTaskGetCurrentTaskHandle() == s_idle_handle) {
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s_idle_ticks++;
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} else {
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s_busy_ticks++;
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}
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}
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void CPUUsageTracker::s_sample_cb(void* arg) {
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static_cast<CPUUsageTracker*>(arg)->_onSample();
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}
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void CPUUsageTracker::_onSample() {
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const uint32_t busy = s_busy_ticks;
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const uint32_t idle = s_idle_ticks;
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const uint32_t db = busy - _last_busy;
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const uint32_t di = idle - _last_idle;
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_last_busy = busy;
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_last_idle = idle;
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const uint32_t total = db + di;
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const float sample = (total > 0) ? (float)db / (float)total : 0.0f;
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const uint8_t s8 = (uint8_t)(sample * 255.0f + 0.5f);
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_sma_sum -= _sma_buf[_sma_idx];
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_sma_buf[_sma_idx] = s8;
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_sma_sum += s8;
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_sma_idx = (_sma_idx + 1) & (SMA_WINDOW - 1);
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_sma_avg = (float)_sma_sum * (1.0f / (SMA_WINDOW * 255.0f));
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}
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void CPUUsageTracker::begin() {
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s_idle_handle = xTaskGetIdleTaskHandleForCPU(0);
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esp_register_freertos_tick_hook_for_cpu(s_tick_hook, 0);
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esp_timer_create_args_t args = {
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.callback = s_sample_cb,
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.arg = this,
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.dispatch_method = ESP_TIMER_TASK,
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.name = "cpu_sample"
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};
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esp_timer_create(&args, &_timer);
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esp_timer_start_periodic(_timer, 60000000ULL / SMA_WINDOW); // SMA_WINDOW samples per minute
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}
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#endif
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