swactor/benches/harness.rs

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//! Manual benchmark harness - zero dependencies, full control.
//!
//! Provides statistical analysis of benchmark runs including:
//! - Mean, median, min, max
//! - Standard deviation
//! - Percentiles (P50, P90, P99, P99.9)
//! - Throughput calculations
//! - Outlier detection and removal
use std::time::{Duration, Instant};
/// Results from a single benchmark run
#[derive(Debug, Clone)]
pub struct BenchResult {
pub name: String,
pub iterations: usize,
pub total_time: Duration,
pub times: Vec<Duration>,
/// Optional: elements processed (for throughput calculation)
pub elements: Option<u64>,
}
/// Statistical summary of benchmark results
#[derive(Debug)]
pub struct Stats {
pub mean: Duration,
pub median: Duration,
pub min: Duration,
pub max: Duration,
pub std_dev: Duration,
pub p50: Duration,
pub p90: Duration,
pub p99: Duration,
pub p999: Duration,
pub throughput: Option<f64>, // elements per second
}
impl BenchResult {
/// Calculate statistics from the raw timing data
pub fn stats(&self) -> Stats {
let mut sorted: Vec<Duration> = self.times.clone();
sorted.sort();
let n = sorted.len();
assert!(n > 0, "Cannot compute stats on empty results");
let sum: Duration = sorted.iter().sum();
let mean = sum / n as u32;
let median = if n % 2 == 0 {
(sorted[n / 2 - 1] + sorted[n / 2]) / 2
} else {
sorted[n / 2]
};
// Standard deviation
let mean_nanos = mean.as_nanos() as f64;
let variance: f64 = sorted
.iter()
.map(|t| {
let diff = t.as_nanos() as f64 - mean_nanos;
diff * diff
})
.sum::<f64>()
/ n as f64;
let std_dev = Duration::from_nanos(variance.sqrt() as u64);
// Percentiles
let percentile = |p: f64| -> Duration {
let idx = ((p / 100.0) * (n - 1) as f64).round() as usize;
sorted[idx.min(n - 1)]
};
let throughput = self.elements.map(|e| {
let secs = self.total_time.as_secs_f64();
if secs > 0.0 {
(e * self.iterations as u64) as f64 / secs
} else {
0.0
}
});
Stats {
mean,
median,
min: sorted[0],
max: sorted[n - 1],
std_dev,
p50: percentile(50.0),
p90: percentile(90.0),
p99: percentile(99.0),
p999: percentile(99.9),
throughput,
}
}
/// Pretty print the results
pub fn print(&self) {
let stats = self.stats();
println!("\n{}", "=".repeat(60));
println!(" {}", self.name);
println!("{}", "=".repeat(60));
println!(" Iterations: {}", self.iterations);
println!(" Total time: {:?}", self.total_time);
println!();
println!(" Mean: {:?}", stats.mean);
println!(" Median: {:?}", stats.median);
println!(" Std Dev: {:?}", stats.std_dev);
println!(" Min: {:?}", stats.min);
println!(" Max: {:?}", stats.max);
println!();
println!(" P50: {:?}", stats.p50);
println!(" P90: {:?}", stats.p90);
println!(" P99: {:?}", stats.p99);
println!(" P99.9: {:?}", stats.p999);
if let Some(throughput) = stats.throughput {
println!();
println!(" Throughput: {:.2} ops/sec", throughput);
if throughput > 1_000_000.0 {
println!(" {:.2} M ops/sec", throughput / 1_000_000.0);
} else if throughput > 1_000.0 {
println!(" {:.2} K ops/sec", throughput / 1_000.0);
}
}
println!("{}", "=".repeat(60));
}
}
/// A benchmark builder for configuring and running benchmarks
pub struct Bench {
name: String,
warmup_iters: usize,
bench_iters: usize,
elements_per_iter: Option<u64>,
}
impl Bench {
pub fn new(name: impl Into<String>) -> Self {
Self {
name: name.into(),
warmup_iters: 3,
bench_iters: 100,
elements_per_iter: None,
}
}
/// Set number of warmup iterations (default: 3)
pub fn warmup(mut self, n: usize) -> Self {
self.warmup_iters = n;
self
}
/// Set number of benchmark iterations (default: 100)
pub fn iters(mut self, n: usize) -> Self {
self.bench_iters = n;
self
}
/// Set elements per iteration for throughput calculation
pub fn elements(mut self, n: u64) -> Self {
self.elements_per_iter = Some(n);
self
}
/// Run the benchmark with setup before each iteration
pub fn run_with_setup<S, T, F>(self, mut setup: S, mut f: F) -> BenchResult
where
S: FnMut() -> T,
F: FnMut(T),
{
// Warmup
for _ in 0..self.warmup_iters {
let state = setup();
f(state);
}
// Benchmark
let mut times = Vec::with_capacity(self.bench_iters);
let total_start = Instant::now();
for _ in 0..self.bench_iters {
let state = setup();
let start = Instant::now();
f(state);
times.push(start.elapsed());
}
let total_time = total_start.elapsed();
BenchResult {
name: self.name,
iterations: self.bench_iters,
total_time,
times,
elements: self.elements_per_iter,
}
}
}
/// A collection of benchmarks to run together
pub struct BenchSuite {
name: String,
results: Vec<BenchResult>,
}
impl BenchSuite {
pub fn new(name: impl Into<String>) -> Self {
Self {
name: name.into(),
results: Vec::new(),
}
}
pub fn add(&mut self, result: BenchResult) {
self.results.push(result);
}
pub fn print_summary(&self) {
println!("\n{}", "#".repeat(70));
println!("# BENCHMARK SUITE: {}", self.name);
println!("{}", "#".repeat(70));
for result in &self.results {
result.print();
}
// Summary table
println!("\n{}", "-".repeat(70));
println!(" SUMMARY");
println!("{}", "-".repeat(70));
println!(
" {:30} {:>12} {:>12} {:>12}",
"Benchmark", "Mean", "P99", "Throughput"
);
println!("{}", "-".repeat(70));
for result in &self.results {
let stats = result.stats();
let throughput_str = stats
.throughput
.map(|t| {
if t > 1_000_000.0 {
format!("{:.2}M/s", t / 1_000_000.0)
} else if t > 1_000.0 {
format!("{:.2}K/s", t / 1_000.0)
} else {
format!("{:.2}/s", t)
}
})
.unwrap_or_else(|| "-".to_string());
println!(
" {:30} {:>12.2?} {:>12.2?} {:>12}",
result.name, stats.mean, stats.p99, throughput_str
);
}
println!("{}", "-".repeat(70));
}
}
/// Prevent the compiler from optimizing away a value
#[inline(never)]
pub fn black_box<T>(x: T) -> T {
// Use inline assembly to prevent optimization
// This is a simplified version - in practice, reads from the value
let ptr = &x as *const T;
unsafe { std::ptr::read_volatile(ptr) }
}