mirror of
https://github.com/ruvnet/RuView
synced 2026-08-03 19:21:42 +00:00
2e018f4f19
Native frame contract, universal RF encoder, RF-aware Gaussian spatial memory, physics-guided synthetic RF worlds, edge sensing control plane, BLE-CS + factorized pose. All 10 ADRs (273-282) fully implemented and tested (99 tests); ADR-278 (radar inverse rendering) honestly gated with zero code as a future research program. Deep-reviewed and hardware-tested against a live ESP32-C6 CSI node before merge: fixed a reachable panic, a silent NaN-corruption path, a cross-entity Gaussian conflation bug, and a wrong-center-frequency bug in the WiFi adapter (confirmed live: was misreporting channel 4 as 2437 MHz, now correctly reports 2427 MHz matching the hardware parser exactly). Added a standing hardware-in-the-loop test (examples/esp32_live_hardware_test.rs). Also fixed unrelated pre-existing issues surfaced during validation (wifi-densepose-core clippy warnings, a ruview-auth Windows build break, a sensing-server test flake). Full review: https://gist.github.com/ruvnet/89795f3c4b8ea166cff5ac35ae4c7651
334 lines
13 KiB
Rust
334 lines
13 KiB
Rust
//! Boots the REAL `sensing-server` binary and probes BOTH listeners.
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//!
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//! # Why this test exists
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//!
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//! Two authentication bypasses shipped in the ADR-272 work, and 526 green unit
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//! tests could not see either, because every auth test in this crate builds its
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//! OWN `Router` with a hand-picked subset of routes. A synthetic router can
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//! never observe how the real one is assembled — and both defects were assembly:
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//!
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//! 1. The dedicated WebSocket listener (`--ws-port`) was constructed with only
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//! host validation. `require_bearer` was never applied to it at all. That is
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//! the port the shipped UI actually connects to
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//! (`ui/services/sensing.service.js` maps HTTP 8080 -> WS 8765), so the
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//! earlier fix protected a path the browser never takes.
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//! 2. `/ws/field` was `.merge()`d AFTER the auth layer on the HTTP router. In
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//! axum a layer wraps only what is already registered, so merging afterwards
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//! silently exempts those routes.
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//!
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//! Both were found by adversarial review, not by the suite. This test closes
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//! that gap: it runs the actual binary, so it sees the actual wiring.
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//!
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//! It deliberately asserts on **ports and transports**, not on handler logic —
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//! handler behaviour is covered by the unit suites. What is unique here is that
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//! nothing is synthetic: real process, real listeners, real TCP.
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use std::io::{BufRead, BufReader, Read, Write};
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use std::net::{SocketAddr, TcpListener, TcpStream};
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use std::process::{Child, Command, Stdio};
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use std::time::{Duration, Instant};
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const TOKEN: &str = "integration-test-secret";
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/// Reserve a port by binding and immediately releasing it.
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///
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/// Mildly racy, which is why each test reserves its own set and the server is
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/// given several seconds to come up: a collision surfaces as a boot failure,
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/// not as a false pass.
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fn free_port() -> u16 {
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let l = TcpListener::bind("127.0.0.1:0").expect("bind ephemeral");
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let p = l.local_addr().unwrap().port();
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drop(l);
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p
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}
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struct Server {
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child: Child,
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http: u16,
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ws: u16,
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}
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impl Drop for Server {
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fn drop(&mut self) {
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let _ = self.child.kill();
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let _ = self.child.wait();
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}
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}
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impl Server {
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/// Spawn the real binary. `env` lets a test choose the auth configuration.
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///
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/// PANICS rather than returning `None` on failure. This used to return an
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/// `Option` that every test turned into `return`, which meant all five
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/// assertions were skipped precisely when the server was broken — including
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/// broken BY an auth change. A boot failure printed one line that `cargo
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/// test` swallows without `--nocapture` and reported `5 passed`. The only
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/// test in the suite that observes real wiring disarmed itself exactly when
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/// it mattered; a boot-time panic in the auth path would have shipped green.
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fn start(env: &[(&str, &str)]) -> Self {
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// `free_port()` releases the port before the child binds it, so under
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// parallel `cargo test` execution another test's server can grab the
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// same ephemeral port first (observed as `Os { code: 10048/98, kind:
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// AddrInUse }` on the child's actual bind, distinct from a genuine
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// auth-wiring break). Retry a bounded number of times on THAT specific
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// signature only — any other boot failure (including a real wiring
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// regression) still panics on the first attempt, preserving the
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// fail-loud property described above.
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const MAX_ATTEMPTS: u32 = 3;
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for attempt in 1..=MAX_ATTEMPTS {
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let (http, ws, udp) = (free_port(), free_port(), free_port());
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let mut cmd = Command::new(env!("CARGO_BIN_EXE_sensing-server"));
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cmd.args([
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"--http-port", &http.to_string(),
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"--ws-port", &ws.to_string(),
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"--udp-port", &udp.to_string(),
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"--bind-addr", "127.0.0.1",
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"--no-edge-registry",
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"--source", "simulate",
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])
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// Inherit nothing auth-related from the developer's shell, or a local
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// RUVIEW_* export would silently change what this test proves.
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.env_remove("RUVIEW_API_TOKEN")
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.env_remove("RUVIEW_OAUTH_ISSUER")
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.env_remove("RUVIEW_WS_LEGACY_UNAUTHENTICATED")
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.stdout(Stdio::null())
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// Captured, not discarded: if the server dies at boot, its stderr is the
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// only thing that says why, and the panic below reproduces it.
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.stderr(Stdio::piped());
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for (k, v) in env {
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cmd.env(k, v);
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}
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let mut child = cmd.spawn().expect("spawn sensing-server");
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if await_ready(http, ws) {
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return Server { child, http, ws };
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}
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let mut err = String::new();
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if let Some(mut s) = child.stderr.take() {
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let _ = s.read_to_string(&mut err);
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}
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let _ = child.kill();
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let _ = child.wait();
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let looks_like_port_collision =
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err.contains("AddrInUse") || err.contains("Address already in use")
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|| err.contains("code: 10048") || err.contains("code: 98");
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if looks_like_port_collision && attempt < MAX_ATTEMPTS {
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continue;
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}
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panic!(
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"sensing-server did not become ready on :{http} (http) and :{ws} (ws) \
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within 30s (attempt {attempt}/{MAX_ATTEMPTS}). This is a FAILURE, not a skip — \
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the wiring assertions below cannot run, and a boot-time break in the auth path \
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is exactly what they exist to catch.\n\
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--- server stderr ---\n{err}"
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);
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}
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unreachable!("loop always returns or panics");
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}
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}
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fn await_ready(http: u16, ws: u16) -> bool {
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let deadline = Instant::now() + Duration::from_secs(30);
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while Instant::now() < deadline {
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if TcpStream::connect(("127.0.0.1", http)).is_ok()
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&& TcpStream::connect(("127.0.0.1", ws)).is_ok()
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{
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return true;
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}
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std::thread::sleep(Duration::from_millis(200));
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}
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false
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}
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/// One raw HTTP/1.1 request; returns the status code.
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fn status(port: u16, method: &str, path: &str, headers: &[(&str, &str)]) -> u16 {
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let addr: SocketAddr = ([127, 0, 0, 1], port).into();
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let mut s = TcpStream::connect(addr).expect("connect");
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s.set_read_timeout(Some(Duration::from_secs(10))).unwrap();
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let mut req = format!("{method} {path} HTTP/1.1\r\nHost: 127.0.0.1:{port}\r\n");
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for (k, v) in headers {
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req.push_str(&format!("{k}: {v}\r\n"));
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}
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req.push_str("Connection: close\r\n\r\n");
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s.write_all(req.as_bytes()).expect("write");
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let mut line = String::new();
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BufReader::new(&mut s).read_line(&mut line).expect("status line");
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line.split_whitespace()
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.nth(1)
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.and_then(|c| c.parse().ok())
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.unwrap_or_else(|| panic!("unparseable status line: {line:?}"))
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}
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/// A genuine WebSocket upgrade. 101 means the connection was ACCEPTED.
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fn ws_upgrade(port: u16, path: &str, bearer: Option<&str>) -> u16 {
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let mut headers: Vec<(&str, &str)> = vec![
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("Upgrade", "websocket"),
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("Connection", "Upgrade"),
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("Sec-WebSocket-Version", "13"),
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("Sec-WebSocket-Key", "dGhlIHNhbXBsZSBub25jZQ=="),
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];
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let auth;
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if let Some(b) = bearer {
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auth = format!("Bearer {b}");
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headers.push(("Authorization", &auth));
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}
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// Not `Connection: close` — that would contradict the upgrade.
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let addr: SocketAddr = ([127, 0, 0, 1], port).into();
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let mut s = TcpStream::connect(addr).expect("connect");
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s.set_read_timeout(Some(Duration::from_secs(10))).unwrap();
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let mut req = format!("GET {path} HTTP/1.1\r\nHost: 127.0.0.1:{port}\r\n");
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for (k, v) in &headers {
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req.push_str(&format!("{k}: {v}\r\n"));
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}
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req.push_str("\r\n");
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s.write_all(req.as_bytes()).expect("write");
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let mut buf = [0u8; 256];
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let n = s.read(&mut buf).expect("read");
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let head = String::from_utf8_lossy(&buf[..n]);
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let line = head.lines().next().unwrap_or_default();
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line.split_whitespace()
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.nth(1)
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.and_then(|c| c.parse().ok())
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.unwrap_or_else(|| panic!("unparseable status line: {line:?}"))
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}
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/// Every WebSocket path, on every listener. This list is the point of the test.
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const WS_PATHS: &[&str] = &["/ws/sensing", "/ws/introspection", "/api/v1/stream/pose", "/ws/field"];
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/// Non-WebSocket routes that carry sensing data and must be gated.
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///
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/// `/api/field` is here because it was NOT gated: it serves the same signed
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/// `FieldEvent` stream as `/ws/field`, but sits outside `/api/v1/`, and the gate
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/// protected `/api/v1/*` by prefix. `/ws/field` was gated in this PR and its
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/// REST twin, one path segment over, returned 200 to an anonymous caller on
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/// both listeners. That is why the gate is now deny-by-default.
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const PROTECTED_REST_PATHS: &[&str] = &["/api/field", "/api/v1/models"];
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#[test]
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fn with_auth_on_no_listener_serves_sensing_data_anonymously() {
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let server = Server::start(&[("RUVIEW_API_TOKEN", TOKEN)]);
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for (label, port) in [("http", server.http), ("ws", server.ws)] {
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for path in PROTECTED_REST_PATHS {
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assert_eq!(
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status(port, "GET", path, &[]),
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401,
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"{label} port served {path} to an anonymous caller"
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);
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// And the credential must actually work, or the assertion above
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// could pass because the route simply does not exist.
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let ok = status(port, "GET", path, &[("Authorization", &format!("Bearer {TOKEN}"))]);
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assert_ne!(ok, 401, "{label} port {path} rejected a VALID bearer");
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}
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}
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}
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#[test]
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fn the_dashboard_shell_and_sign_in_stay_reachable_when_auth_is_on() {
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// Deny-by-default must not lock the user out of the page that renders the
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// sign-in button, or of sign-in itself. This is the other half of the
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// allowlist: too tight is as broken as too loose, just louder.
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let server = Server::start(&[("RUVIEW_API_TOKEN", TOKEN)]);
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for path in ["/health", "/oauth/status"] {
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assert_ne!(
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status(server.http, "GET", path, &[]),
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401,
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"{path} must stay anonymous — sign-in depends on it"
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);
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}
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}
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#[test]
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fn with_auth_on_no_listener_accepts_an_unauthenticated_websocket() {
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let server = Server::start(&[("RUVIEW_API_TOKEN", TOKEN)]);
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// Control first: if REST is not gated, the server is misconfigured and the
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// WebSocket assertions below would pass for the wrong reason.
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assert_eq!(
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status(server.http, "GET", "/api/v1/models", &[]),
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401,
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"REST must be gated, or this test proves nothing"
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);
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for &port_label in &["http", "ws"] {
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let port = if port_label == "http" { server.http } else { server.ws };
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for path in WS_PATHS {
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let code = ws_upgrade(port, path, None);
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assert_ne!(
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code, 101,
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"{port_label} port ACCEPTED an unauthenticated upgrade to {path} — \
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this is the bypass that shipped twice"
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);
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assert_eq!(
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code, 401,
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"{port_label} port {path} should refuse with 401, got {code}"
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);
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}
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}
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}
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#[test]
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fn a_bearer_on_the_upgrade_is_accepted_on_both_listeners() {
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let server = Server::start(&[("RUVIEW_API_TOKEN", TOKEN)]);
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// Native clients (Python, CLI, MCP) are not browser-constrained and must be
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// able to authenticate a WebSocket without the ticket round-trip.
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for (label, port) in [("http", server.http), ("ws", server.ws)] {
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assert_eq!(
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ws_upgrade(port, "/ws/sensing", Some(TOKEN)),
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101,
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"{label} port must accept a valid bearer on the upgrade"
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);
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}
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}
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#[test]
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fn with_auth_off_both_listeners_stay_open() {
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// The compatibility promise: an unconfigured deployment sees no change.
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let server = Server::start(&[]);
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assert_eq!(status(server.http, "GET", "/api/v1/models", &[]), 200);
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for (label, port) in [("http", server.http), ("ws", server.ws)] {
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assert_eq!(
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ws_upgrade(port, "/ws/sensing", None),
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101,
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"{label} port must stay open when no credential is configured"
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);
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}
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}
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#[test]
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fn the_legacy_escape_hatch_opens_websockets_without_weakening_rest() {
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let server = Server::start(&[
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("RUVIEW_API_TOKEN", TOKEN),
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("RUVIEW_WS_LEGACY_UNAUTHENTICATED", "1"),
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]);
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// The hatch is scoped to WebSockets on purpose. If it ever widened to REST
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// it would be a bypass wearing a migration label.
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assert_eq!(
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status(server.http, "GET", "/api/v1/models", &[]),
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401,
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"the escape hatch must not weaken REST"
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);
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for (label, port) in [("http", server.http), ("ws", server.ws)] {
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assert_eq!(
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ws_upgrade(port, "/ws/sensing", None),
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101,
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"{label} port should be open while the hatch is set"
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);
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}
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}
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#[test]
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fn health_stays_anonymous_on_both_listeners() {
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// Documented exemption (ADR-272): orchestrator probes are anonymous by
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// design. Pinned so it is a decision, not an accident nobody re-checks.
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let server = Server::start(&[("RUVIEW_API_TOKEN", TOKEN)]);
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for (label, port) in [("http", server.http), ("ws", server.ws)] {
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assert_eq!(
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status(port, "GET", "/health", &[]),
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200,
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"{label} port /health must remain anonymous"
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);
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}
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}
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