Files
Triple-C/app/src-tauri/src/docker/exec.rs
T
shadow-testandClaude Opus 5 01a2f6aec8 Add Project Home, Auth Bridge, shared auth token, and Tier-1 polish
Project Home (DESIGN-REVIEW §B2): the project is promoted from a 280px
sidebar card to a first-class main-area view. ProjectCard.tsx (1,257
lines) is replaced by a select-only ProjectRow plus tabs for Overview,
Sessions, Automation, Config and Files. The PortMappings, FileManager
and ContainerProgress modals are absorbed rather than reimplemented.
Config gains a Saved/Saving/Failed indicator — save-on-blur failures
previously reached only console.error.

Tier-1 polish (DESIGN-REVIEW §A): new elevation, muted-accent, disabled
and focus-ring tokens; a global :focus-visible ring with every
focus:outline-none removed; filled buttons moved to --accent-emphasis
and white-on-success toggles retired, fixing three WCAG AA failures
(2.1:1, 2.5:1, 2.4:1); a shared Modal primitive with role="dialog",
focus trap and restore, adopted by all remaining modals; status
indicators that carry a glyph and word rather than colour alone.

Ctrl+Shift+W closes a tab, deliberately not Ctrl+W — that is readline's
kill-word, used constantly in the terminal this app is built around.

Auth Bridge: a general loopback-callback bridge so browser logins run
inside a container (aws sso login, Concourse fly login, claude login)
can complete against the host browser. Listeners are discovered from
/proc/net/tcp{,6} — ss/netstat/lsof are absent from the image — bound on
host 127.0.0.1 only, and tunnelled in over the Docker API via socat,
which keeps working on Docker Desktop where container IPs are not
routable. Falls back to [::1] because Node resolves localhost to IPv6
first, so claude login often binds ::1 alone. Opt-in per project.

This extracts create_attached_exec() and moves the existing terminal
session path onto it, so there is one attached-exec implementation
rather than two.

Shared auth token: `claude setup-token` is run in a container, the token
is stored in the OS keychain and injected as CLAUDE_CODE_OAUTH_TOKEN
into Anthropic-backend projects. Contrary to the initial design note,
setup-token uses an Anthropic-hosted redirect and blocks on a stdin
paste prompt rather than a loopback callback, so a stdin command is
required for the flow to complete.

The token is never logged, never returned to the frontend, and is
redacted from the streamed output with a stateful matcher that withholds
any tail that could still grow into a secret. Change detection uses a
random rotation id rather than a hash, since a hash in a docker-inspect
readable label would be an offline verification oracle.

Frontend 33 -> 51 tests; Rust 34 tests. Both builds clean.

Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
2026-08-09 11:35:42 -07:00

466 lines
16 KiB
Rust

use bollard::container::{LogOutput, UploadToContainerOptions};
use bollard::exec::{CreateExecOptions, ResizeExecOptions, StartExecResults};
use futures_util::{Stream, StreamExt};
use std::collections::HashMap;
use std::pin::Pin;
use std::sync::Arc;
use tokio::io::{AsyncWrite, AsyncWriteExt};
use tokio::sync::{mpsc, Mutex};
use super::client::get_docker;
/// A `docker exec` that has been created and started with stdin/stdout/stderr
/// attached — the raw duplex halves, before any policy about what to do with
/// them.
///
/// This is the single place in the codebase that knows how to open an attached
/// exec. Both consumers are built on it:
/// * [`ExecSessionManager`] — interactive terminals and the audio bridge,
/// which pump bytes through mpsc channels and a callback.
/// * `auth_bridge` — per-connection `socat` tunnels, which pump bytes
/// straight between a host TCP socket and these halves.
///
/// With `tty = false` the output stream is demultiplexed by Docker, so the
/// consumer can tell [`LogOutput::StdOut`] from [`LogOutput::StdErr`]. That
/// distinction matters for the auth bridge: `socat`'s diagnostics must not be
/// spliced into the proxied byte stream.
pub struct AttachedExec {
pub exec_id: String,
pub output: Pin<Box<dyn Stream<Item = Result<LogOutput, bollard::errors::Error>> + Send>>,
pub input: Pin<Box<dyn AsyncWrite + Send>>,
}
/// Create and start an exec with stdin + stdout + stderr attached, returning the
/// raw duplex halves. Runs as `claude` in `/workspace`, like every other exec
/// this app opens.
pub async fn create_attached_exec(
container_id: &str,
cmd: Vec<String>,
tty: bool,
) -> Result<AttachedExec, String> {
let docker = get_docker()?;
let exec = docker
.create_exec(
container_id,
CreateExecOptions {
attach_stdin: Some(true),
attach_stdout: Some(true),
attach_stderr: Some(true),
tty: Some(tty),
cmd: Some(cmd),
user: Some("claude".to_string()),
working_dir: Some("/workspace".to_string()),
..Default::default()
},
)
.await
.map_err(|e| format!("Failed to create exec: {}", e))?;
let exec_id = exec.id.clone();
match docker
.start_exec(&exec_id, None)
.await
.map_err(|e| format!("Failed to start exec: {}", e))?
{
StartExecResults::Attached { output, input } => Ok(AttachedExec {
exec_id,
output,
input,
}),
StartExecResults::Detached => Err("Exec started in detached mode".to_string()),
}
}
pub struct ExecSession {
pub exec_id: String,
pub container_id: String,
pub input_tx: mpsc::UnboundedSender<Vec<u8>>,
shutdown_tx: mpsc::Sender<()>,
}
impl ExecSession {
pub async fn send_input(&self, data: Vec<u8>) -> Result<(), String> {
self.input_tx
.send(data)
.map_err(|e| format!("Failed to send input: {}", e))
}
#[allow(dead_code)]
pub async fn resize(&self, cols: u16, rows: u16) -> Result<(), String> {
let docker = get_docker()?;
docker
.resize_exec(
&self.exec_id,
ResizeExecOptions {
width: cols,
height: rows,
},
)
.await
.map_err(|e| format!("Failed to resize exec: {}", e))
}
pub fn shutdown(&self) {
let _ = self.shutdown_tx.try_send(());
}
}
pub struct ExecSessionManager {
sessions: Arc<Mutex<HashMap<String, ExecSession>>>,
}
impl ExecSessionManager {
pub fn new() -> Self {
Self {
sessions: Arc::new(Mutex::new(HashMap::new())),
}
}
pub async fn create_session<F>(
&self,
container_id: &str,
session_id: &str,
cmd: Vec<String>,
on_output: F,
on_exit: Box<dyn FnOnce() + Send>,
) -> Result<(), String>
where
F: Fn(Vec<u8>) + Send + 'static,
{
self.create_session_with_tty(container_id, session_id, cmd, true, on_output, on_exit)
.await
}
pub async fn create_session_with_tty<F>(
&self,
container_id: &str,
session_id: &str,
cmd: Vec<String>,
tty: bool,
on_output: F,
on_exit: Box<dyn FnOnce() + Send>,
) -> Result<(), String>
where
F: Fn(Vec<u8>) + Send + 'static,
{
let AttachedExec {
exec_id,
mut output,
mut input,
} = create_attached_exec(container_id, cmd, tty).await?;
let (input_tx, mut input_rx) = mpsc::unbounded_channel::<Vec<u8>>();
let (shutdown_tx, mut shutdown_rx) = mpsc::channel::<()>(1);
// Output reader task
let session_id_clone = session_id.to_string();
let shutdown_tx_clone = shutdown_tx.clone();
tokio::spawn(async move {
loop {
tokio::select! {
msg = output.next() => {
match msg {
Some(Ok(output)) => {
on_output(output.into_bytes().to_vec());
}
Some(Err(e)) => {
log::error!("Exec output error for {}: {}", session_id_clone, e);
break;
}
None => {
log::info!("Exec output stream ended for {}", session_id_clone);
break;
}
}
}
_ = shutdown_rx.recv() => {
log::info!("Exec session {} shutting down", session_id_clone);
break;
}
}
}
on_exit();
let _ = shutdown_tx_clone;
});
// Input writer task
tokio::spawn(async move {
while let Some(data) = input_rx.recv().await {
if let Err(e) = input.write_all(&data).await {
log::error!("Failed to write to exec stdin: {}", e);
break;
}
}
});
let session = ExecSession {
exec_id,
container_id: container_id.to_string(),
input_tx,
shutdown_tx,
};
self.sessions
.lock()
.await
.insert(session_id.to_string(), session);
Ok(())
}
pub async fn send_input(&self, session_id: &str, data: Vec<u8>) -> Result<(), String> {
let sessions = self.sessions.lock().await;
let session = sessions
.get(session_id)
.ok_or_else(|| format!("Session {} not found", session_id))?;
session.send_input(data).await
}
pub async fn resize(&self, session_id: &str, cols: u16, rows: u16) -> Result<(), String> {
// Clone the exec_id under the lock, then drop the lock before the
// async Docker API call to avoid holding the mutex across await.
let exec_id = {
let sessions = self.sessions.lock().await;
let session = sessions
.get(session_id)
.ok_or_else(|| format!("Session {} not found", session_id))?;
session.exec_id.clone()
};
let docker = get_docker()?;
docker
.resize_exec(
&exec_id,
ResizeExecOptions {
width: cols,
height: rows,
},
)
.await
.map_err(|e| format!("Failed to resize exec: {}", e))
}
pub async fn close_session(&self, session_id: &str) {
let mut sessions = self.sessions.lock().await;
if let Some(session) = sessions.remove(session_id) {
session.shutdown();
}
}
pub async fn close_sessions_for_container(&self, container_id: &str) {
let mut sessions = self.sessions.lock().await;
let ids_to_close: Vec<String> = sessions
.iter()
.filter(|(_, s)| s.container_id == container_id)
.map(|(id, _)| id.clone())
.collect();
for id in ids_to_close {
if let Some(session) = sessions.remove(&id) {
session.shutdown();
}
}
}
pub async fn close_all_sessions(&self) {
let mut sessions = self.sessions.lock().await;
for (_, session) in sessions.drain() {
session.shutdown();
}
}
pub async fn get_container_id(&self, session_id: &str) -> Result<String, String> {
let sessions = self.sessions.lock().await;
let session = sessions
.get(session_id)
.ok_or_else(|| format!("Session {} not found", session_id))?;
Ok(session.container_id.clone())
}
pub async fn write_file_to_container(
&self,
container_id: &str,
file_name: &str,
data: &[u8],
) -> Result<String, String> {
let docker = get_docker()?;
// Build a tar archive in memory containing the file
let mut tar_buf = Vec::new();
{
let mut builder = tar::Builder::new(&mut tar_buf);
let mut header = tar::Header::new_gnu();
header.set_size(data.len() as u64);
header.set_mode(0o644);
header.set_cksum();
builder
.append_data(&mut header, file_name, data)
.map_err(|e| format!("Failed to create tar entry: {}", e))?;
builder
.finish()
.map_err(|e| format!("Failed to finalize tar: {}", e))?;
}
docker
.upload_to_container(
container_id,
Some(UploadToContainerOptions {
path: "/tmp".to_string(),
..Default::default()
}),
tar_buf.into(),
)
.await
.map_err(|e| format!("Failed to upload file to container: {}", e))?;
Ok(format!("/tmp/{}", file_name))
}
}
/// Upload a host file into the container's `/tmp` under `dest_name`. The file is
/// read and packed into the tar inside a blocking task, so the synchronous IO
/// runs off the async worker. The tar's declared entry size is taken from the
/// bytes actually read (not a separate `stat`), so a file changing size between
/// a size check and the read can't desync the header and corrupt the archive.
/// Returns the in-container path (`/tmp/<dest_name>`).
pub async fn upload_host_file_to_container(
container_id: &str,
host_path: &str,
dest_name: &str,
) -> Result<String, String> {
let host_path = host_path.to_string();
let dest_name = dest_name.to_string();
let dest_for_blk = dest_name.clone();
let tar_buf = tokio::task::spawn_blocking(move || -> Result<Vec<u8>, String> {
let data = std::fs::read(&host_path)
.map_err(|e| format!("Failed to read {}: {}", host_path, e))?;
let mut tar_buf = Vec::with_capacity(data.len() + 1024);
{
let mut builder = tar::Builder::new(&mut tar_buf);
let mut header = tar::Header::new_gnu();
// Size comes from the bytes in hand, so header and payload can't disagree.
header.set_size(data.len() as u64);
header.set_mode(0o644);
header.set_cksum();
builder
.append_data(&mut header, &dest_for_blk, &data[..])
.map_err(|e| format!("Failed to create tar entry: {}", e))?;
builder
.finish()
.map_err(|e| format!("Failed to finalize tar: {}", e))?;
}
Ok(tar_buf)
})
.await
.map_err(|e| format!("Upload task panicked: {}", e))??;
let docker = get_docker()?;
docker
.upload_to_container(
container_id,
Some(UploadToContainerOptions {
path: "/tmp".to_string(),
..Default::default()
}),
tar_buf.into(),
)
.await
.map_err(|e| format!("Failed to upload file to container: {}", e))?;
Ok(format!("/tmp/{}", dest_name))
}
/// Run a one-shot (non-interactive) exec command in a container and collect stdout.
pub async fn exec_oneshot(container_id: &str, cmd: Vec<String>) -> Result<String, String> {
exec_oneshot_env(container_id, cmd, Vec::new()).await
}
/// Like `exec_oneshot`, but passes additional environment variables to the exec
/// process. Secrets passed this way live only in `/proc/<pid>/environ` (readable
/// by the same user / root) rather than in the process argv, so they are not
/// exposed via `ps`.
///
/// NOTE: the command's exit code is NOT checked — callers that need to know
/// whether the command succeeded should use `exec_oneshot_env_status`.
pub async fn exec_oneshot_env(
container_id: &str,
cmd: Vec<String>,
env: Vec<String>,
) -> Result<String, String> {
exec_oneshot_env_status(container_id, cmd, env)
.await
.map(|(output, _exit_code)| output)
}
/// Like `exec_oneshot_env`, but also returns the command's exit code (0 on
/// success). The returned string contains both stdout and stderr, interleaved
/// in arrival order, which is useful for surfacing failure detail.
pub async fn exec_oneshot_env_status(
container_id: &str,
cmd: Vec<String>,
env: Vec<String>,
) -> Result<(String, i64), String> {
let docker = get_docker()?;
let exec = docker
.create_exec(
container_id,
CreateExecOptions {
attach_stdout: Some(true),
attach_stderr: Some(true),
cmd: Some(cmd),
env: if env.is_empty() { None } else { Some(env) },
user: Some("claude".to_string()),
..Default::default()
},
)
.await
.map_err(|e| format!("Failed to create exec: {}", e))?;
let result = docker
.start_exec(&exec.id, None)
.await
.map_err(|e| format!("Failed to start exec: {}", e))?;
let mut combined = String::new();
match result {
StartExecResults::Attached { mut output, .. } => {
while let Some(msg) = output.next().await {
match msg {
Ok(data) => combined.push_str(&String::from_utf8_lossy(&data.into_bytes())),
Err(e) => return Err(format!("Exec output error: {}", e)),
}
}
}
StartExecResults::Detached => return Err("Exec started in detached mode".to_string()),
}
// The output stream draining doesn't strictly guarantee inspect_exec has the
// final exit_code populated yet, so poll until the exec reports finished.
let exit_code = wait_for_exec_exit(&exec.id).await.unwrap_or(0);
Ok((combined, exit_code))
}
/// Poll `inspect_exec` until the exec reports finished and return its exit code.
/// Returns `None` if the code can't be determined (inspect error, or the exec
/// doesn't report finished within ~1s — which shouldn't happen once its output
/// stream has drained).
pub async fn wait_for_exec_exit(exec_id: &str) -> Option<i64> {
let docker = get_docker().ok()?;
for _ in 0..40 {
match docker.inspect_exec(exec_id).await {
Ok(info) => {
if info.running != Some(true) {
// Finished: use the reported code (default 0 if somehow absent).
return Some(info.exit_code.unwrap_or(0));
}
}
Err(_) => return None,
}
tokio::time::sleep(std::time::Duration::from_millis(25)).await;
}
None
}