# TestClock — Deterministic Time in Tests
`TestClock` was introduced in [Clock Injection](../part3/ch11-04-clock-injection.md) from a scheduling perspective. This section focuses on how to use it in tests — specifically with `run_test_with_clock` and multi-step scenarios.
## The Problem with Real Time in Tests
```rust
// This test takes 7 seconds to run
#[test]
fn retry_exhaustion_slow() {
let eff = failing_call()
.retry(Schedule::exponential(Duration::from_secs(1)).take(3));
let exit = run_blocking(eff, ());
assert!(matches!(exit, Exit::Failure(_)));
}
```
Multiply this by dozens of tests and your suite is unusable. `TestClock` makes it instant.
## run_test_with_clock
```rust
use id_effect::{run_test_with_clock, TestClock, Exit};
#[test]
fn retry_exhaustion_fast() {
let clock = TestClock::new();
let eff = failing_call()
.retry(Schedule::exponential(Duration::from_secs(1)).take(3));
// run_test_with_clock runs the effect with the supplied clock handle
let exit = run_test_with_clock(eff, (), clock.clone());
assert!(matches!(exit, Exit::Failure(_)));
}
```
`run_test_with_clock(effect, env, clock)` runs an effect in the deterministic test harness with an explicit `TestClock`. Inject a clock capability via your provider graph when the effect reads time from `Env`.
## TestClock API
```rust
let clock = TestClock::new();
// Read the current (fake) time — starts at Unix epoch
let now: UtcDateTime = clock.now();
// Advance by a duration
clock.advance(Duration::from_millis(500));
// Jump to an absolute time
clock.set_time(UtcDateTime::from_unix_secs(1_700_000_000));
// How many sleeps are currently waiting?
let pending: usize = clock.pending_sleeps();
```
`pending_sleeps()` is useful in tests to assert that an effect is blocked on a timer rather than having silently completed or failed.
## Testing Scheduled Work
```rust
#[test]
fn cron_job_runs_every_minute() {
let counter = Arc::new(AtomicU32::new(0));
let c = counter.clone();
let job = effect!(|_r: &mut ()| {
c.fetch_add(1, Ordering::Relaxed);
})
.repeat(Schedule::fixed(Duration::from_secs(60)));
let clock = TestClock::new();
let _handle = job.fork();
// Advance through 3 minutes
clock.advance(Duration::from_secs(60));
clock.advance(Duration::from_secs(60));
clock.advance(Duration::from_secs(60));
assert_eq!(counter.load(Ordering::Relaxed), 3);
}
```
## Time and Race Conditions
`TestClock` is deterministic — time moves only when you call `advance`. This means tests that use `TestClock` have no time-based race conditions: the scheduler runs wake-up callbacks synchronously when you advance.
If your effect spawns multiple fibers that all sleep, advancing time wakes all fibers whose sleep deadline has passed, in a consistent order.
## Combining TestClock with Fake Services
```rust
struct RateLimitStoreCap;
mock_capability!(MockRateLimitStore, RateLimitStoreCap, Arc<dyn RateLimitStore>, "ratelimit/mock", || {
Arc::new(InMemoryRateLimitStore::new()) as Arc<dyn RateLimitStore>
});
#[test]
fn rate_limiter_enforces_window() {
let env = build_env([provide!(MockRateLimitStore)]).expect("env");
let clock = TestClock::new();
let eff = check_rate_limit_flow("alice");
let exit = run_test_with_clock(eff, env, clock.clone());
assert!(matches!(exit, Exit::Success(_)));
}
```
Build the capability env with `build_env([provide!(…), …])`, then pass it to `run_test_with_clock` alongside your `TestClock`.