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Design, implement, and audit accessible UI to WCAG 2.2 Level AA across Web, iOS, and Android…
Rust testing patterns including unit tests, integration tests, async testing, property-based testing, mocking, and coverage. Follows TDD methodology. Use when writing Rust tests — unit, integration, async, property-based, or coverage.
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Rust testing patterns including unit tests, integration tests, async testing, property-based testing, mocking, and coverage. Follows TDD methodology. Use when writing Rust tests — unit, integration, async, property-based, or coverage.
name: rust-testing description: Rust testing patterns including unit tests, integration tests, async testing, property-based testing, mocking, and coverage. Follows TDD methodology. Use when writing Rust tests — unit, integration, async, property-based, or coverage. metadata: origin: ECC
Comprehensive Rust testing patterns for writing reliable, maintainable tests following TDD methodology.
1. **Identify target code** — Find the function, trait, or module to test 2. **Write a test** — Use `#[test]` in a `#[cfg(test)]` module, rstest for parameterized tests, or proptest for property-based tests 3. **Mock dependencies** — Use mockall to isolate the unit under test 4. **Run tests (RED)** — Verify the test fails with the expected error 5. **Implement (GREEN)** — Write minimal code to pass 6. **Refactor** — Improve while keeping tests green 7. **Check coverage** — Use cargo-llvm-cov, target 80%+
RED → Write a failing test first GREEN → Write minimal code to pass the test REFACTOR → Improve code while keeping tests green REPEAT → Continue with next requirement
// RED: Write test first, use todo!() as placeholder
pub fn add(a: i32, b: i32) -> i32 { todo!() }
#[cfg(test)]
mod tests {
use super::*;
#[test]
fn test_add() { assert_eq!(add(2, 3), 5); }
}
// cargo test → panics at 'not yet implemented'// GREEN: Replace todo!() with minimal implementation
pub fn add(a: i32, b: i32) -> i32 { a + b }
// cargo test → PASS, then REFACTOR while keeping tests green// src/user.rs
pub struct User {
pub name: String,
pub email: String,
}
impl User {
pub fn new(name: impl Into<String>, email: impl Into<String>) -> Result<Self, String> {
let email = email.into();
if !email.contains('@') {
return Err(format!("invalid email: {email}"));
}
Ok(Self { name: name.into(), email })
}
pub fn display_name(&self) -> &str {
&self.name
}
}
#[cfg(test)]
mod tests {
use super::*;
#[test]
fn creates_user_with_valid_email() {
let user = User::new("Alice", "alice@example.com").unwrap();
assert_eq!(user.display_name(), "Alice");
assert_eq!(user.email, "alice@example.com");
}
#[test]
fn rejects_invalid_email() {
let result = User::new("Bob", "not-an-email");
assert!(result.is_err());
assert!(result.unwrap_err().contains("invalid email"));
}
}assert_eq!(2 + 2, 4); // Equality
assert_ne!(2 + 2, 5); // Inequality
assert!(vec![1, 2, 3].contains(&2)); // Boolean
assert_eq!(value, 42, "expected 42 but got {value}"); // Custom message
assert!((0.1_f64 + 0.2 - 0.3).abs() < f64::EPSILON); // Float comparison#[test]
fn parse_returns_error_for_invalid_input() {
let result = parse_config("}{invalid");
assert!(result.is_err());
// Assert specific error variant
let err = result.unwrap_err();
assert!(matches!(err, ConfigError::ParseError(_)));
}
#[test]
fn parse_succeeds_for_valid_input() -> Result<(), Box<dyn std::error::Error>> {
let config = parse_config(r#"{"port": 8080}"#)?;
assert_eq!(config.port, 8080);
Ok(()) // Test fails if any ? returns Err
}#[test]
#[should_panic]
fn panics_on_empty_input() {
process(&[]);
}
#[test]
#[should_panic(expected = "index out of bounds")]
fn panics_with_specific_message() {
let v: Vec<i32> = vec![];
let _ = v[0];
}my_crate/ ├── src/ │ └── lib.rs ├── tests/ # Integration tests │ ├── api_test.rs # Each file is a separate test binary │ ├── db_test.rs │ └── common/ # Shared test utilities │ └── mod.rs
// tests/api_test.rs
use my_crate::{App, Config};
#[test]
fn full_request_lifecycle() {
let config = Config::test_default();
let app = App::new(config);
let response = app.handle_request("/health");
assert_eq!(response.status, 200);
assert_eq!(response.body, "OK");
}#[tokio::test]
async fn fetches_data_successfully() {
let client = TestClient::new().await;
let result = client.get("/data").await;
assert!(result.is_ok());
assert_eq!(result.unwrap().items.len(), 3);
}
#[tokio::test]
async fn handles_timeout() {
use std::time::Duration;
let result = tokio::time::timeout(
Duration::from_millis(100),
slow_operation(),
).await;
assert!(result.is_err(), "should have timed out");
}use rstest::{rstest, fixture};
#[rstest]
#[case("hello", 5)]
#[case("", 0)]
#[case("rust", 4)]
fn test_string_length(#[case] input: &str, #[case] expected: usize) {
assert_eq!(input.len(), expected);
}
// Fixtures
#[fixture]
fn test_db() -> TestDb {
TestDb::new_in_memory()
}
#[rstest]
fn test_insert(test_db: TestDb) {
test_db.insert("key", "value");
assert_eq!(test_db.get("key"), Some("value".into()));
}#[cfg(test)]
mod tests {
use super::*;
/// Creates a test user with sensible defaults.
fn make_user(name: &str) -> User {
User::new(name, &format!("{name}@test.com")).unwrap()
}
#[test]
fn uYour agent can write code, but ECC gives it a coordinated engineering system and toolbox: it plans before it builds, verifies changes with tests, reviews its own work from a fresh context, remembers what matters, and turns repeated wins into reusable skills
Repo: affaan-m/ECC
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