Files
galaxy/crates/simple_logger/src/manager_tests.rs
T

294 lines
11 KiB
Rust

use std::path::{Path, PathBuf};
use std::sync::atomic::{AtomicUsize, Ordering};
use std::sync::Arc;
use galaxyui_core::r#async::executor::Background;
use super::LogManager;
use crate::{path_with_suffix, RotationConfig};
fn temp_path(name: &str) -> PathBuf {
static NEXT_ID: AtomicUsize = AtomicUsize::new(0);
let id = NEXT_ID.fetch_add(1, Ordering::Relaxed);
std::env::temp_dir().join(format!(
"simple-logger-tests-{name}-{}-{id}",
std::process::id()
))
}
fn cleanup_log_path(log_path: &Path) {
let _ = std::fs::remove_file(log_path);
if let Some(parent) = log_path.parent() {
let _ = std::fs::remove_dir_all(parent);
}
}
#[test]
fn register_resolved_path_reuses_stale_entries_after_drop() {
let mut manager = LogManager::new();
let executor = Arc::new(Background::default());
let log_path = temp_path("re-register").join("server.log");
let logger = manager
.register_resolved_path(log_path.clone(), executor.clone(), None)
.expect("initial registration should succeed");
drop(logger);
let logger = manager
.register_resolved_path(log_path.clone(), executor, None)
.expect("stale entry should be reclaimed after the logger is dropped");
drop(logger);
cleanup_log_path(&log_path);
}
#[test]
fn register_resolved_path_rejects_duplicate_active_loggers() {
let mut manager = LogManager::new();
let executor = Arc::new(Background::default());
let log_path = temp_path("collision").join("server.log");
let logger = manager
.register_resolved_path(log_path.clone(), executor.clone(), None)
.expect("initial registration should succeed");
assert!(
manager
.register_resolved_path(log_path.clone(), executor, None)
.is_err(),
"live logger should block duplicate registration"
);
drop(logger);
cleanup_log_path(&log_path);
}
#[test]
fn register_reclaims_closed_logger() {
let mut manager = LogManager::new();
let executor = Arc::new(Background::default());
let log_path = temp_path("close-reclaim").join("server.log");
let logger = manager
.register_resolved_path(log_path.clone(), executor.clone(), None)
.expect("initial registration should succeed");
// Close the channel without dropping the logger — the Arc<LogFileWriter> is still alive.
logger.close();
let new_logger = manager
.register_resolved_path(log_path.clone(), executor, None)
.expect("closed logger should be reclaimed even when Arc is still alive");
drop(logger);
drop(new_logger);
cleanup_log_path(&log_path);
}
// ---------- end-to-end rotation through SimpleLogger ----------
//
// These tests drive a live `SimpleLogger` running on a real background
// executor and assert that, when configured with rotation, sufficient writes
// cause the active log file to roll over. They cover the integrated path
// (channel send → async write → byte counter → rotation), which the file-level
// unit tests in `lib_tests.rs` deliberately don't touch.
/// Wait until `predicate` returns `Some(value)`, polling every 10 ms. Returns
/// the value, or panics with `label` if the deadline elapses without the
/// predicate succeeding. Used to synchronize on async file writes without
/// hard-coding sleeps that pad every run with dead time.
fn wait_for<T>(deadline_ms: u64, label: &str, mut predicate: impl FnMut() -> Option<T>) -> T {
// `instant::Instant` is the cross-target (incl. wasm) drop-in for
// `std::time::Instant`; the rest of the workspace standardizes on it via
// the `disallowed_types` clippy lint.
let start = instant::Instant::now();
let deadline = std::time::Duration::from_millis(deadline_ms);
loop {
if let Some(value) = predicate() {
return value;
}
if start.elapsed() >= deadline {
panic!(
"wait_for({label}) timed out after {} ms",
deadline.as_millis()
);
}
std::thread::sleep(std::time::Duration::from_millis(10));
}
}
/// Repeatedly logging a moderately sized message must eventually cause the
/// active log file to be rotated to `.1` and a fresh active file to replace it.
/// This is the headline behavior #7723 asks for.
#[test]
fn simple_logger_with_rotation_rolls_active_file_over_when_threshold_exceeded() {
let mut manager = LogManager::new();
let executor = Arc::new(Background::default());
let log_path = temp_path("rotation-rolls-over").join("server.log");
// Each log line is timestamped + the message + a newline; comfortably more
// than 64 bytes per line. With a 256-byte threshold, five lines is enough
// to guarantee at least one rotation.
let rotation = RotationConfig::new(256, 3).expect("config should construct");
let logger = manager
.register_resolved_path(log_path.clone(), executor.clone(), Some(rotation))
.expect("registration should succeed");
for i in 0..10 {
logger.log(format!(
"log line {i} padded out so each entry is comfortably over fifty bytes"
));
}
// Closing the channel without dropping the Arc lets the background task
// finish flushing pending writes deterministically.
logger.close();
drop(logger);
// After draining, the active file should be reopened-truncated (or
// contain just the tail end of writes), and at least one `.1` rotation
// should exist with the rolled-over contents.
let rotated = path_with_suffix(&log_path, 1);
wait_for(2000, "rotated `.1` to appear", || {
if rotated.exists() {
Some(())
} else {
None
}
});
assert!(
rotated.exists(),
"rotation should have produced {:?}",
rotated
);
let rotated_contents = std::fs::read_to_string(&rotated).expect("read rotated file");
assert!(
rotated_contents.contains("log line"),
"rotated file should contain log lines, got: {:?}",
rotated_contents
);
// Cleanup: remove the whole rotation set if it exists.
let _ = std::fs::remove_file(&log_path);
for n in 1..=3 {
let _ = std::fs::remove_file(path_with_suffix(&log_path, n));
}
if let Some(parent) = log_path.parent() {
let _ = std::fs::remove_dir_all(parent);
}
}
/// Without a rotation config, the same write volume that rotates a configured
/// logger must NOT rotate an unconfigured one. Pins the backward-compatibility
/// guarantee: existing callers (everything other than the MCP path) see
/// unchanged truncate-on-create behavior.
#[test]
fn simple_logger_without_rotation_does_not_rotate_even_at_high_volume() {
let mut manager = LogManager::new();
let executor = Arc::new(Background::default());
let log_path = temp_path("no-rotation").join("server.log");
let logger = manager
.register_resolved_path(log_path.clone(), executor.clone(), None)
.expect("registration should succeed");
for i in 0..50 {
logger.log(format!(
"log line {i} padded out so each entry is comfortably over fifty bytes"
));
}
logger.close();
drop(logger);
// Give the background task time to drain pending writes before we assert.
wait_for(2000, "active file to be non-empty", || {
if log_path.metadata().map(|m| m.len() > 0).unwrap_or(false) {
Some(())
} else {
None
}
});
// No `.1` file ever gets created when rotation is disabled, no matter
// how much we wrote.
assert!(
!path_with_suffix(&log_path, 1).exists(),
"no rotation should occur when config is None"
);
let _ = std::fs::remove_file(&log_path);
if let Some(parent) = log_path.parent() {
let _ = std::fs::remove_dir_all(parent);
}
}
/// When `perform_rotation` fails (e.g. the rename of the active file to its
/// `.1` slot fails because that path is occupied by a non-empty directory),
/// the active log content must survive. Previously the callback fell through
/// to `open_truncated`, which destroyed the data rotation was meant to
/// preserve. The fix opens append-mode on failure and seeds the byte counter
/// from the existing file size.
#[test]
fn simple_logger_rotation_failure_preserves_active_log_content() {
let mut manager = LogManager::new();
let executor = Arc::new(Background::default());
let dir = temp_path("rotation-failure-preserves");
let log_path = dir.join("server.log");
// Pre-stage `server.log.1` as a non-empty directory so the rename in
// `perform_rotation` (step 3) will fail with a real I/O error rather than
// succeed. This is the only error path the rotation callback observes.
//
// Use `max_rotation = 1` so step 2's "shift older slots up" loop is empty
// (`1..1` is empty) — otherwise step 2 would silently rename the blocking
// directory out of the way before step 3 ran.
let blocked_target = path_with_suffix(&log_path, 1);
std::fs::create_dir_all(&blocked_target).expect("create blocking dir");
std::fs::write(blocked_target.join("placeholder"), b"sentinel").expect("populate blocking dir");
let rotation = RotationConfig::new(256, 1).expect("config should construct");
let logger = manager
.register_resolved_path(log_path.clone(), executor.clone(), Some(rotation))
.expect("registration should succeed");
// Write enough to push past the 256-byte threshold and trigger rotation.
for i in 0..10 {
logger.log(format!(
"log line {i} padded out so each entry is comfortably over fifty bytes"
));
}
logger.close();
drop(logger);
// After draining, the active log must still exist and contain the
// pre-rotation content (because rotation could not move it aside). The
// blocking directory must also still be intact — rotation didn't somehow
// clobber it.
wait_for(2000, "active log to flush", || {
std::fs::metadata(&log_path)
.ok()
.filter(|m| m.len() > 0)
.map(|_| ())
});
let preserved = std::fs::read_to_string(&log_path).expect("read active log");
assert!(
preserved.contains("log line"),
"active log content must be preserved when rotation fails; got: {preserved:?}",
);
assert!(
blocked_target.is_dir(),
"blocking directory must remain intact after failed rotation",
);
assert!(
blocked_target.join("placeholder").is_file(),
"blocking directory's contents must be unchanged",
);
let _ = std::fs::remove_file(&log_path);
let _ = std::fs::remove_dir_all(&blocked_target);
if let Some(parent) = log_path.parent() {
let _ = std::fs::remove_dir_all(parent);
}
}