The single STREAM_CONTROL = 3 was documented as bidirectional but the
adapter had to ignore Exit from the client because the two directions
were indistinguishable on the same stream_type — half-duplex in
disguise. Phase 7 splits it into two halves so the bidirectionality is
literal on the wire.
Changes:
- wire.rs: STREAM_CTRL_IN = 3 (client→server), STREAM_CTRL_OUT = 4
(server→client); InvalidStreamType bound > 3 → > 4; Chunk::control
→ Chunk::ctrl_in/ctrl_out; ChunkWriter::write_control_json →
write_ctrl_in_json/write_ctrl_out_json; tests split accordingly.
- control.rs: ControlMessage doc updated with the stream_type column;
JSON shape unchanged.
- adapter.rs: pump_client_to_backend dispatches on STREAM_CTRL_IN
(Resize/Signal/Eof; Exit on ctrl_in is a protocol violation,
ignored); send_exit_chunk emits on STREAM_CTRL_OUT; STREAM_CTRL_OUT
from the client is a protocol violation, ignored. 3 new tests for
the direction enforcement; existing tests updated to the new
stream_types.
- negotiation.rs: framing-disambiguation doc updated (server-sent
stream_type set is {1, 2, 4}).
- alknet-tty-local/tests: common/mod.rs, pty.rs, pipe.rs updated to
the new constants.
Specs:
- ADR-052 amended (§4a 'Control channel split (Phase 7 amendment)').
- tty-wire.md + tty-adapter.md updated (last_updated 2026-07-18).
Verification:
- cargo test -p alknet-tty: 65 passed (was 61; +4 new tests).
- cargo test -p alknet-tty-local: 19 passed.
- cargo test --workspace --all-features: 1017 passed, 0 failed.
- cargo clippy --workspace --all-features: clean.
- cargo fmt --all: clean.
267 lines
9.7 KiB
Rust
267 lines
9.7 KiB
Rust
//! End-to-end integration tests for PTY mode (`terminal: Some`) —
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//! `LocalTtyBackend` + `TtyAdapter::drive_session` over a
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//! `tokio::io::duplex` transport stand-in, running real commands.
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//!
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//! Covers scenarios 1–8 of `tasks/tty/integration-test.md`:
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//! 1. Happy path (echo): stdout contains "hello", exit 0, exit chunk last
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//! 2. Interactive (cat): stdin round-trips, eof → exit 0
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//! 3. Resize: control chunk accepted, no error
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//! 4. Signal (SIGINT, Unix): exit code signal-terminated, child reaped
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//! 5. Process-group signal (Unix): bash -c "sleep 60", INT reaches sleep child
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//! 6. Stdin EOF (zero-length chunk): backend stdin closes, exit chunk sent
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//! 7. Cancel cleanup (ADR-056): drop duplex → child killed, no orphan
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//! 8. Exit-chunk-is-last: no stdout chunk after exit chunk
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mod common;
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use std::sync::Arc;
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use std::time::Duration;
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use alknet_tty::wire::{STREAM_CTRL_OUT, STREAM_STDIN};
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use alknet_tty_local::LocalTtyBackend;
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use common::{negotiate_pty_json, spawn_session};
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const PTY_NEG_ECHO: &str = r#"{"carriage":"raw","backend":"local","tty":{"cols":80,"rows":24,"pixel_width":0,"pixel_height":0},"cmd":["echo","hello"]}"#;
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/// 1. Happy path (echo): stdout contains "hello", exit 0, exit chunk is
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/// the last chunk before stream close (ADR-055).
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#[tokio::test(flavor = "multi_thread", worker_threads = 4)]
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async fn pty_happy_path_echo() {
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let backend = Arc::new(LocalTtyBackend::new());
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let (mut client, server) = spawn_session("local", backend);
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client.write_negotiation(PTY_NEG_ECHO).await;
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let (stdout, _stderr, code) = client
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.read_until_exit()
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.await
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.expect("expected exit chunk before stream close");
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let s = String::from_utf8_lossy(&stdout);
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assert!(
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s.contains("hello"),
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"stdout should contain 'hello'; got: {s:?}"
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);
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assert_eq!(code, 0, "echo should exit 0");
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client.assert_no_more_chunks().await;
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let _ = server.await;
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}
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/// 2. Interactive (cat): write stdin chunks, then send `eof` and
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/// drain stdout. The adapter's drainer writes chunks to the client
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/// after the exit chunk resolves, so the test sends all input first
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/// (closing cat's stdin with `eof`), then reads the echoed stdout
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/// and the exit chunk together. Asserts the echoed "ping" appears in
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/// stdout and cat exits 0.
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#[tokio::test(flavor = "multi_thread", worker_threads = 4)]
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async fn pty_interactive_cat_round_trip() {
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let backend = Arc::new(LocalTtyBackend::new());
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let (mut client, server) = spawn_session("local", backend);
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client
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.write_negotiation(negotiate_pty_json("local", &["cat"]).as_str())
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.await;
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tokio::time::sleep(Duration::from_millis(200)).await;
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client.write_chunk(STREAM_STDIN, b"ping\n").await;
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client.write_control(br#"{"type":"eof"}"#).await;
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let (stdout, _stderr, code) = client
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.read_until_exit()
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.await
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.expect("expected exit chunk before stream close");
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let s = String::from_utf8_lossy(&stdout);
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assert!(
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s.contains("ping"),
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"stdin did not round-trip via the PTY echo; got: {s:?}"
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);
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assert_eq!(code, 0, "cat should exit 0 on eof");
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let _ = server.await;
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}
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/// 3. Resize: send a `resize` control chunk mid-session; assert no
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/// error (the PTY resizes). Send `eof`, await exit.
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#[tokio::test(flavor = "multi_thread", worker_threads = 4)]
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async fn pty_resize_no_error() {
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let backend = Arc::new(LocalTtyBackend::new());
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let (mut client, server) = spawn_session("local", backend);
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client
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.write_negotiation(negotiate_pty_json("local", &["cat"]).as_str())
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.await;
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tokio::time::sleep(Duration::from_millis(150)).await;
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client
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.write_control(br#"{"type":"resize","cols":120,"rows":40}"#)
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.await;
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client.write_control(br#"{"type":"eof"}"#).await;
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let (_out, _err, code) = client
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.read_until_exit_timeout(Duration::from_secs(5))
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.await
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.expect("expected exit chunk");
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assert_eq!(code, 0, "cat should exit 0 after resize + eof");
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let _ = server.await;
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}
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/// 4. Signal (SIGINT, Unix): negotiate `sleep 60`, send `signal:"INT"`,
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/// await the exit chunk. Assert exit code is signal-terminated (non-zero,
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/// negative on Unix). Assert the child is reaped (no zombie).
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#[cfg(unix)]
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#[tokio::test(flavor = "multi_thread", worker_threads = 4)]
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async fn pty_signal_sigint_kills_child() {
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let backend = Arc::new(LocalTtyBackend::new());
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let (mut client, server) = spawn_session("local", backend);
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client
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.write_negotiation(negotiate_pty_json("local", &["sleep", "60"]).as_str())
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.await;
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tokio::time::sleep(Duration::from_millis(200)).await;
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client
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.write_control(br#"{"type":"signal","name":"INT"}"#)
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.await;
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let (_out, _err, code) = client
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.read_until_exit_timeout(Duration::from_secs(5))
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.await
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.expect("expected exit chunk after signal");
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assert_ne!(
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code, 0,
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"child killed by SIGINT should report non-zero exit; got {code}"
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);
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let _ = server.await;
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}
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/// 5. Process-group signal (Unix): negotiate `bash -c "sleep 60"`,
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/// send `signal:"INT"`, assert the `sleep` child also receives the
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/// signal (the process group is targeted — REQ-TTY-02).
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#[cfg(unix)]
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#[tokio::test(flavor = "multi_thread", worker_threads = 4)]
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async fn pty_signal_reaches_process_group_child() {
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let backend = Arc::new(LocalTtyBackend::new());
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let (mut client, server) = spawn_session("local", backend);
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client
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.write_negotiation(negotiate_pty_json("local", &["bash", "-c", "sleep 60"]).as_str())
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.await;
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tokio::time::sleep(Duration::from_millis(250)).await;
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client
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.write_control(br#"{"type":"signal","name":"INT"}"#)
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.await;
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let (_out, _err, code) = client
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.read_until_exit_timeout(Duration::from_secs(5))
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.await
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.expect("expected exit chunk after group signal");
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assert_ne!(
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code, 0,
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"process group should have been killed (REQ-TTY-02); got {code}"
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);
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let _ = server.await;
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}
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/// 6. Stdin EOF (zero-length chunk): negotiate `cat`, send a
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/// zero-length stdin chunk (the sentinel), assert the backend's stdin
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/// closes, stdout drains, exit chunk is sent.
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#[tokio::test(flavor = "multi_thread", worker_threads = 4)]
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async fn pty_stdin_eof_zero_length_chunk() {
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let backend = Arc::new(LocalTtyBackend::new());
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let (mut client, server) = spawn_session("local", backend);
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client
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.write_negotiation(negotiate_pty_json("local", &["cat"]).as_str())
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.await;
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tokio::time::sleep(Duration::from_millis(150)).await;
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client.write_chunk(STREAM_STDIN, b"").await;
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let (_out, _err, code) = client
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.read_until_exit_timeout(Duration::from_secs(5))
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.await
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.expect("expected exit chunk after zero-length stdin sentinel");
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assert_eq!(code, 0, "cat should exit 0 on stdin EOF");
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let _ = server.await;
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}
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/// 7. Cancel cleanup (ADR-056): negotiate `sleep 60`, drop the duplex
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/// (simulating connection drop) mid-session, assert the child is
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/// killed (no orphan). The child writes its pid to a temp file so we
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/// can probe it after the drop.
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#[cfg(unix)]
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#[tokio::test(flavor = "multi_thread", worker_threads = 4)]
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async fn pty_cancel_cleanup_kills_child_no_orphan() {
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let pid_file = std::env::temp_dir().join(format!(
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"alknet_pty_cancel_pid_{}_{}.txt",
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std::process::id(),
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nanos_seed()
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));
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let cmd = format!("echo $$ > '{}'; exec sleep 60", pid_file.display());
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let backend = Arc::new(LocalTtyBackend::new());
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let (mut client, server) = spawn_session("local", backend);
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client
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.write_negotiation(negotiate_pty_json("local", &["bash", "-c", cmd.as_str()]).as_str())
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.await;
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for _ in 0..200 {
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if pid_file.exists() {
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break;
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}
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tokio::time::sleep(Duration::from_millis(10)).await;
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}
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let pid_str = std::fs::read_to_string(&pid_file).expect("pid file written");
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let pid: i32 = pid_str.trim().parse().expect("pid parses");
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let _ = std::fs::remove_file(&pid_file);
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tokio::time::sleep(Duration::from_millis(150)).await;
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drop(client);
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server.abort();
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let _ = server.await;
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let mut alive = true;
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for _ in 0..100 {
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let r = unsafe { libc::kill(pid, 0) };
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if r != 0 && std::io::Error::last_os_error().raw_os_error() == Some(libc::ESRCH) {
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alive = false;
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break;
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}
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tokio::time::sleep(Duration::from_millis(20)).await;
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}
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assert!(!alive, "child (pid={pid}) should be killed after cancel");
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}
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/// 8. Exit-chunk-is-last: in the happy path, assert no stdout chunk
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/// arrives after the exit chunk. Read all chunks, find the exit chunk,
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/// assert it is the last chunk before stream close.
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#[tokio::test(flavor = "multi_thread", worker_threads = 4)]
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async fn pty_exit_chunk_is_last() {
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let backend = Arc::new(LocalTtyBackend::new());
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let (mut client, server) = spawn_session("local", backend);
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client.write_negotiation(PTY_NEG_ECHO).await;
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let mut saw_exit = false;
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while let Some((st, bytes)) = client.read_chunk_timeout(Duration::from_secs(5)).await {
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if saw_exit {
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panic!("chunk arrived after exit: stream_type={st}, bytes={bytes:?} (ADR-055)");
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}
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if st == STREAM_CTRL_OUT {
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let v: serde_json::Value = serde_json::from_slice(&bytes).unwrap();
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if v["type"] == "exit" {
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assert_eq!(v["code"], 0);
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saw_exit = true;
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}
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}
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}
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assert!(saw_exit, "did not see the exit chunk");
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let _ = server.await;
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}
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fn nanos_seed() -> u64 {
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use std::time::{SystemTime, UNIX_EPOCH};
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SystemTime::now()
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.duration_since(UNIX_EPOCH)
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.map(|d| d.as_nanos() as u64)
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.unwrap_or(0)
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}
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