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rustfs/crates/obs/src/recorder.rs
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Rust

// Copyright 2024 RustFS Team
//
// Licensed under the Apache License, Version 2.0 (the "License");
// you may not use this file except in compliance with the License.
// You may obtain a copy of the License at
//
// http://www.apache.org/licenses/LICENSE-2.0
//
// Unless required by applicable law or agreed to in writing, software
// distributed under the License is distributed on an "AS IS" BASIS,
// WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
// See the License for the specific language governing permissions and
// limitations under the License.
use crate::GlobalError;
use metrics::{Counter, CounterFn, Gauge, GaugeFn, Histogram, HistogramFn, Key, KeyName, Metadata, SharedString, Unit};
use opentelemetry::{
InstrumentationScope, InstrumentationScopeBuilder, KeyValue, global,
metrics::{Meter, MeterProvider},
};
use opentelemetry_sdk::metrics::{MeterProviderBuilder, SdkMeterProvider};
use std::{
borrow::Cow,
collections::HashMap,
ops::Deref,
sync::{
Arc, Mutex, RwLock,
atomic::{AtomicU64, Ordering},
},
};
use tracing::error;
macro_rules! configure_builder {
($builder:expr, $metadata:expr) => {{
let mut builder = $builder;
if let Some(metadata) = $metadata {
if let Some(unit) = metadata.unit {
builder = builder.with_unit(unit.as_canonical_label());
}
builder = builder.with_description(metadata.description.to_string());
}
builder
}};
}
/// A builder for constructing a [`Recorder`].
#[derive(Debug)]
pub struct Builder {
builder: MeterProviderBuilder,
scope: InstrumentationScopeBuilder,
}
impl Builder {
/// Runs the closure (`f`) to modify the [`MeterProviderBuilder`] to build a
/// [`MeterProvider`](MeterProvider).
pub fn with_meter_provider(mut self, f: impl FnOnce(MeterProviderBuilder) -> MeterProviderBuilder) -> Self {
self.builder = f(self.builder);
self
}
/// Modify the [`InstrumentationScope`] to provide additional metadata from the
/// closure (`f`).
pub fn with_instrumentation_scope(
mut self,
f: impl FnOnce(InstrumentationScopeBuilder) -> InstrumentationScopeBuilder,
) -> Self {
self.scope = f(self.scope);
self
}
/// Consumes the builder and builds a new [`Recorder`] and returns
/// a [`SdkMeterProvider`].
///
/// A [`SdkMeterProvider`] is provided so you have the responsibility to
/// do whatever you need to do with it.
///
/// This will not install the recorder as the global recorder for
/// the [`metrics`] crate, use [`Builder::install`]. This will not install a meter
/// provider to [`global`], use [`Builder::install_global`].
pub fn build(self) -> (SdkMeterProvider, Recorder) {
let provider = self.builder.build();
let meter = provider.meter_with_scope(self.scope.build());
(provider, Recorder::with_meter(meter))
}
/// Builds a [`Recorder`] and sets it as the global recorder for the [`metrics`]
/// crate.
///
/// This method will not call [`global::set_meter_provider`] for OpenTelemetry and
/// will be returned as the first element in the return's type tuple.
pub fn install(self) -> Result<(SdkMeterProvider, Recorder), GlobalError> {
let (provider, recorder) = self.build();
metrics::set_global_recorder(recorder.clone())?;
Ok((provider, recorder))
}
/// Builds the [`Recorder`] to record metrics to OpenTelemetry, set the global
/// recorder for the [`metrics`] crate, and calls [`global::set_meter_provider`]
/// to set the constructed [`SdkMeterProvider`].
pub fn install_global(self) -> Result<Recorder, GlobalError> {
let (provider, recorder) = self.install()?;
global::set_meter_provider(provider);
Ok(recorder)
}
}
#[derive(Debug)]
struct MetricMetadata {
unit: Option<Unit>,
description: SharedString,
}
/// A standard recorder that implements [`metrics::Recorder`].
///
/// This instance implements <code>[`Deref`]\<Target = [`Meter`]\></code>, so
/// you can still interact with the SDK's initialized [`Meter`] instance.
#[derive(Debug, Clone)]
pub struct Recorder {
meter: Meter,
metrics_metadata: Arc<Mutex<HashMap<KeyName, MetricMetadata>>>,
// cache metric handlers as to not reregister on each call
cached_counters: Arc<RwLock<HashMap<Key, Counter>>>,
cached_gauges: Arc<RwLock<HashMap<Key, Gauge>>>,
cached_histograms: Arc<RwLock<HashMap<Key, Histogram>>>,
}
impl Recorder {
/// Creates a new [`Builder`] with a given name for instrumentation.
pub fn builder<S: Into<Cow<'static, str>>>(name: S) -> Builder {
Builder {
builder: MeterProviderBuilder::default(),
scope: InstrumentationScope::builder(name.into()),
}
}
/// Creates a [`Recorder`] with an already established [`Meter`].
pub fn with_meter(meter: Meter) -> Self {
Recorder {
meter,
metrics_metadata: Default::default(),
cached_counters: Default::default(),
cached_gauges: Default::default(),
cached_histograms: Default::default(),
}
}
fn get_cached_metric<T: Clone>(lock: &RwLock<HashMap<Key, T>>, key: &Key, metric_type: &str) -> Option<T> {
let cache = match lock.read() {
Ok(g) => g,
Err(e) => {
error!("{} cache read lock poisoned: {}", metric_type, e);
e.into_inner()
}
};
cache.get(key).cloned()
}
fn insert_cached_metric<T: Clone>(lock: &RwLock<HashMap<Key, T>>, key: Key, value: T, metric_type: &str) -> T {
let mut cache = match lock.write() {
Ok(g) => g,
Err(e) => {
error!("{} cache write lock poisoned: {}", metric_type, e);
e.into_inner()
}
};
if let Some(v) = cache.get(&key) {
return v.clone();
}
cache.insert(key, value.clone());
value
}
fn with_metadata_lock<F, R>(&self, f: F) -> R
where
F: FnOnce(&mut HashMap<KeyName, MetricMetadata>) -> R,
{
let mut guard = self.metrics_metadata.lock().unwrap_or_else(|e| {
error!("metrics_metadata lock poisoned: {}", e);
e.into_inner()
});
f(&mut guard)
}
fn describe_metric(&self, key: KeyName, unit: Option<Unit>, description: SharedString) {
self.with_metadata_lock(|metadata| {
metadata.insert(key, MetricMetadata { unit, description });
});
}
fn get_metadata_for_builder(&self, key_name: &str) -> Option<MetricMetadata> {
self.with_metadata_lock(|metadata| metadata.remove(key_name))
}
}
impl Deref for Recorder {
type Target = Meter;
fn deref(&self) -> &Self::Target {
&self.meter
}
}
impl metrics::Recorder for Recorder {
fn describe_counter(&self, key: KeyName, unit: Option<Unit>, description: SharedString) {
self.describe_metric(key, unit, description);
}
fn describe_gauge(&self, key: KeyName, unit: Option<Unit>, description: SharedString) {
self.describe_metric(key, unit, description);
}
fn describe_histogram(&self, key: KeyName, unit: Option<Unit>, description: SharedString) {
self.describe_metric(key, unit, description);
}
fn register_counter(&self, key: &Key, _metadata: &Metadata<'_>) -> Counter {
if let Some(counter) = Self::get_cached_metric(&self.cached_counters, key, "counter") {
return counter;
}
let builder = self.meter.u64_counter(key.name().to_owned());
let metadata = self.get_metadata_for_builder(key.name());
let builder = configure_builder!(builder, metadata);
let counter = builder.build();
let labels = key
.labels()
.map(|label| KeyValue::new(label.key().to_owned(), label.value().to_owned()))
.collect();
let handle = Counter::from_arc(Arc::new(WrappedCounter {
counter,
labels,
value: AtomicU64::new(0),
}));
Self::insert_cached_metric(&self.cached_counters, key.clone(), handle, "counter")
}
fn register_gauge(&self, key: &Key, _metadata: &Metadata<'_>) -> Gauge {
if let Some(gauge) = Self::get_cached_metric(&self.cached_gauges, key, "gauge") {
return gauge;
}
let builder = self.meter.f64_gauge(key.name().to_owned());
let metadata = self.get_metadata_for_builder(key.name());
let builder = configure_builder!(builder, metadata);
let gauge = builder.build();
let labels = key
.labels()
.map(|label| KeyValue::new(label.key().to_owned(), label.value().to_owned()))
.collect();
let handle = Gauge::from_arc(Arc::new(WrappedGauge {
gauge,
labels,
value: AtomicU64::new(0),
}));
Self::insert_cached_metric(&self.cached_gauges, key.clone(), handle, "gauge")
}
fn register_histogram(&self, key: &Key, _metadata: &Metadata<'_>) -> Histogram {
if let Some(histogram) = Self::get_cached_metric(&self.cached_histograms, key, "histogram") {
return histogram;
}
let builder = self.meter.f64_histogram(key.name().to_owned());
let metadata = self.get_metadata_for_builder(key.name());
let builder = configure_builder!(builder, metadata);
let histogram = builder.build();
let labels = key
.labels()
.map(|label| KeyValue::new(label.key().to_owned(), label.value().to_owned()))
.collect();
let handle = Histogram::from_arc(Arc::new(WrappedHistogram { histogram, labels }));
Self::insert_cached_metric(&self.cached_histograms, key.clone(), handle, "histogram")
}
}
struct WrappedCounter {
counter: opentelemetry::metrics::Counter<u64>,
labels: Vec<KeyValue>,
value: AtomicU64,
}
impl CounterFn for WrappedCounter {
fn increment(&self, value: u64) {
self.value.fetch_add(value, Ordering::Relaxed);
self.counter.add(value, &self.labels);
}
fn absolute(&self, value: u64) {
let prev = self.value.swap(value, Ordering::Relaxed);
let diff = value.saturating_sub(prev);
self.counter.add(diff, &self.labels);
}
}
struct WrappedGauge {
gauge: opentelemetry::metrics::Gauge<f64>,
labels: Vec<KeyValue>,
value: AtomicU64,
}
impl GaugeFn for WrappedGauge {
fn increment(&self, value: f64) {
let mut current = self.value.load(Ordering::Relaxed);
let mut new = f64::from_bits(current) + value;
while let Err(val) = self
.value
.compare_exchange(current, new.to_bits(), Ordering::AcqRel, Ordering::Relaxed)
{
current = val;
new = f64::from_bits(current) + value;
}
self.gauge.record(new, &self.labels);
}
fn decrement(&self, value: f64) {
let mut current = self.value.load(Ordering::Relaxed);
let mut new = f64::from_bits(current) - value;
while let Err(val) = self
.value
.compare_exchange(current, new.to_bits(), Ordering::AcqRel, Ordering::Relaxed)
{
current = val;
new = f64::from_bits(current) - value;
}
self.gauge.record(new, &self.labels);
}
fn set(&self, value: f64) {
self.value.store(value.to_bits(), Ordering::Relaxed);
self.gauge.record(value, &self.labels);
}
}
struct WrappedHistogram {
histogram: opentelemetry::metrics::Histogram<f64>,
labels: Vec<KeyValue>,
}
impl HistogramFn for WrappedHistogram {
fn record(&self, value: f64) {
self.histogram.record(value, &self.labels);
}
fn record_many(&self, value: f64, count: usize) {
for _ in 0..count {
self.histogram.record(value, &self.labels);
}
}
}
#[cfg(test)]
mod tests {
use super::*;
use metrics::Recorder as _;
use opentelemetry_sdk::metrics::Temporality;
fn test_recorder() -> Recorder {
let exporter = opentelemetry_stdout::MetricExporterBuilder::default()
.with_temporality(Temporality::Cumulative)
.build();
let (_provider, recorder) = Recorder::builder("test")
.with_meter_provider(|b| b.with_periodic_exporter(exporter))
.build();
recorder
}
fn test_metadata() -> Metadata<'static> {
Metadata::new(module_path!(), metrics::Level::INFO, None)
}
#[test]
fn standard_usage() {
let exporter = opentelemetry_stdout::MetricExporterBuilder::default()
.with_temporality(Temporality::Cumulative)
.build();
let (provider, recorder) = Recorder::builder("my-app")
.with_meter_provider(|builder| builder.with_periodic_exporter(exporter))
.build();
global::set_meter_provider(provider.clone());
metrics::set_global_recorder(recorder).unwrap();
let counter = metrics::counter!("my-counter");
counter.increment(1);
provider.force_flush().unwrap();
}
#[test]
fn counter_cached_on_repeated_registration() {
let recorder = test_recorder();
let key = Key::from_name("requests_total");
let meta = test_metadata();
let _first = recorder.register_counter(&key, &meta);
let _second = recorder.register_counter(&key, &meta);
let cache = recorder.cached_counters.read().unwrap();
assert_eq!(cache.len(), 1, "counter should be cached and inserted only once");
}
#[test]
fn gauge_cached_on_repeated_registration() {
let recorder = test_recorder();
let key = Key::from_name("active_connections");
let meta = test_metadata();
let _first = recorder.register_gauge(&key, &meta);
let _second = recorder.register_gauge(&key, &meta);
let cache = recorder.cached_gauges.read().unwrap();
assert_eq!(cache.len(), 1, "gauge should be cached and inserted only once");
}
#[test]
fn histogram_cached_on_repeated_registration() {
let recorder = test_recorder();
let key = Key::from_name("request_duration");
let meta = test_metadata();
let _first = recorder.register_histogram(&key, &meta);
let _second = recorder.register_histogram(&key, &meta);
let cache = recorder.cached_histograms.read().unwrap();
assert_eq!(cache.len(), 1, "histogram should be cached and inserted only once");
}
#[test]
fn concurrent_register_counter_inserts_once() {
let recorder = test_recorder();
let key = Key::from_name("concurrent_counter");
let shared = Arc::new(recorder);
let barrier = Arc::new(std::sync::Barrier::new(10));
let handles: Vec<_> = (0..10)
.map(|_| {
let r = Arc::clone(&shared);
let k = key.clone();
let b = Arc::clone(&barrier);
std::thread::spawn(move || {
b.wait();
let _ = r.register_counter(&k, &test_metadata());
})
})
.collect();
for h in handles {
h.join().unwrap();
}
let cache = shared.cached_counters.read().unwrap();
assert_eq!(cache.len(), 1, "concurrent registrations should produce exactly one cache entry");
}
}