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Triple-C/app/src-tauri/src/commands/project_commands.rs
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use tauri::{Emitter, State};
use crate::commands::aws_commands;
use crate::docker;
use crate::models::{container_config, AppSettings, Backend, BedrockAuthMethod, Project, ProjectPath, ProjectStatus};
use crate::storage::secure;
use crate::AppState;
pub(crate) fn emit_progress(app_handle: &tauri::AppHandle, project_id: &str, message: &str) {
let _ = app_handle.emit(
"container-progress",
serde_json::json!({
"project_id": project_id,
"message": message,
}),
);
}
/// Every project secret, as the JSON pointer it arrives under and the keychain
/// key it is stored as.
///
/// The keychain keys are the ones already in users' keychains — changing one
/// orphans the secret rather than migrating it.
const PROJECT_SECRET_FIELDS: &[(&str, &str)] = &[
("/git_token", "git-token"),
("/bedrock_config/aws_access_key_id", "aws-access-key-id"),
("/bedrock_config/aws_secret_access_key", "aws-secret-access-key"),
("/bedrock_config/aws_session_token", "aws-session-token"),
("/bedrock_config/aws_bearer_token", "aws-bearer-token"),
("/openai_compatible_config/api_key", "openai-compatible-api-key"),
];
/// The keychain keys the caller sent an explicit `null` for.
///
/// **Absent and `null` are different things here, and treating them alike
/// destroys credentials.** Every secret field is `#[serde(skip_serializing)]`,
/// so the `Project` the frontend holds has no `git_token` key at all — a save
/// from the Workspace, Runtime or Model section spreads that object and sends
/// the field *absent*, while the editor that owns the field sends
/// `git_token: null` when the user blanks it (`AccessSection.tsx`:
/// `save({ git_token: gitToken || null })`). Serde maps both to `None`, which
/// is why this reads the payload rather than the deserialised struct: absent
/// means "not mine to touch", `null` means "the user emptied it".
fn explicitly_cleared_secrets(payload: &serde_json::Value) -> Vec<&'static str> {
PROJECT_SECRET_FIELDS
.iter()
.filter(|(pointer, _)| matches!(payload.pointer(pointer), Some(serde_json::Value::Null)))
.map(|(_, key)| *key)
.collect()
}
/// Store one secret, clear it, or leave it alone — see
/// [`explicitly_cleared_secrets`] for which is which.
fn save_secret(
project_id: &str,
key_name: &str,
value: Option<&str>,
explicitly_cleared: &[&str],
) -> Result<(), String> {
if value.is_none() && !explicitly_cleared.contains(&key_name) {
return Ok(());
}
secure::store_or_clear_project_secret(project_id, key_name, value)
}
/// Extract secret fields from a project and store them in the OS keychain,
/// **deleting the ones the caller blanked**.
///
/// The `if let Some(v) = …` this replaces could only ever write: a blanked
/// token left the old value in the keychain, `load_secrets_for_project` read it
/// straight back onto the project, and the container went on getting the
/// credential the user had just revoked.
fn store_secrets_for_project(project: &Project, explicitly_cleared: &[&str]) -> Result<(), String> {
save_secret(
&project.id,
"git-token",
project.git_token.as_deref(),
explicitly_cleared,
)?;
if let Some(ref bedrock) = project.bedrock_config {
save_secret(
&project.id,
"aws-access-key-id",
bedrock.aws_access_key_id.as_deref(),
explicitly_cleared,
)?;
save_secret(
&project.id,
"aws-secret-access-key",
bedrock.aws_secret_access_key.as_deref(),
explicitly_cleared,
)?;
save_secret(
&project.id,
"aws-session-token",
bedrock.aws_session_token.as_deref(),
explicitly_cleared,
)?;
save_secret(
&project.id,
"aws-bearer-token",
bedrock.aws_bearer_token.as_deref(),
explicitly_cleared,
)?;
}
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if let Some(ref oai_config) = project.openai_compatible_config {
save_secret(
&project.id,
"openai-compatible-api-key",
oai_config.api_key.as_deref(),
explicitly_cleared,
)?;
}
Ok(())
}
/// Create the project's container, threading every global setting through.
///
/// Exists so that the two ordinary create paths below and base-image migration
/// cannot drift apart — a container created by a migration must be
/// indistinguishable from one created by a normal start, or the next
/// `container_needs_recreation` would immediately throw it away.
///
/// `create_image` is what to create *from* (the snapshot or the base);
/// `base_image_name` is the configured base, which `create_container` needs in
/// order to tell those two apart when it stamps the lineage labels.
pub(crate) async fn create_container_for_project(
project: &Project,
settings: &AppSettings,
docker_socket: &str,
aws_config_path: Option<&str>,
create_image: &str,
base_image_name: &str,
extras: docker::CreateExtras<'_>,
) -> Result<String, String> {
docker::create_container(
project,
docker_socket,
create_image,
base_image_name,
extras,
aws_config_path,
&settings.global_aws,
&settings.global_ollama,
&settings.global_llamacpp,
&settings.global_openai_compatible,
settings.global_claude_instructions.as_deref(),
&settings.global_custom_env_vars,
settings.timezone.as_deref(),
settings.global_claude_code_settings.as_ref(),
settings.default_ssh_key_path.as_deref(),
settings.ca_cert_path.as_deref(),
settings.default_git_user_name.as_deref(),
settings.default_git_user_email.as_deref(),
)
.await
}
/// Populate secret fields on a project struct from the OS keychain.
pub(crate) fn load_secrets_for_project(project: &mut Project) {
project.git_token = secure::get_project_secret(&project.id, "git-token")
.unwrap_or(None);
if let Some(ref mut bedrock) = project.bedrock_config {
bedrock.aws_access_key_id = secure::get_project_secret(&project.id, "aws-access-key-id")
.unwrap_or(None);
bedrock.aws_secret_access_key = secure::get_project_secret(&project.id, "aws-secret-access-key")
.unwrap_or(None);
bedrock.aws_session_token = secure::get_project_secret(&project.id, "aws-session-token")
.unwrap_or(None);
bedrock.aws_bearer_token = secure::get_project_secret(&project.id, "aws-bearer-token")
.unwrap_or(None);
}
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if let Some(ref mut oai_config) = project.openai_compatible_config {
oai_config.api_key = secure::get_project_secret(&project.id, "openai-compatible-api-key")
.unwrap_or(None);
}
}
/// Validate the folder list a project is about to be stored with.
///
/// ## Why this is not cosmetic
///
/// `mount_name` is interpolated straight into a container mount target —
/// `docker::create_container` builds `/workspace/{mount_name}` — and the daemon
/// **normalises** what it is given. Confirmed against Engine 29.7 through the
/// same API bollard uses: a mount named `../tmp/claude-x` is created with a
/// destination of `/tmp/claude-x`, i.e. the host directory is mounted straight
/// on top of one of the paths the pre-commit scrub owns. The next recreate then
/// runs the scrub, as root, over the user's own project directory. That is the
/// C1 data-loss chain end to end, and
/// [`check_mount_name_stays_under_workspace`] is the half of it that stops the
/// path ever being spelled.
///
/// `host_path` is the other side of the same mount. `/` there bind-mounts the
/// entire host filesystem read-write into a container whose agent has
/// passwordless sudo. Anything short of a filesystem root is the user choosing
/// a folder — the Browse button and the free-text field lead to the same place
/// — so only the roots themselves are refused, and *root* is answered by
/// resolving the path rather than by reading it: `/..` is spelled like a folder
/// and is the root. See [`classify_mount_source`].
///
/// This is the **whole** rule set, and it belongs to `add_project`, where every
/// row is new by definition. `update_project` runs
/// [`validate_project_paths_update`] instead: see there for why a list that is
/// already in `projects.json` cannot be held to all of it.
fn validate_project_paths(paths: &[ProjectPath]) -> Result<(), String> {
let mut seen_names = std::collections::HashSet::new();
for p in paths {
// The Config tab's "+ Add folder" inserts an empty row and saves the
// whole list on the next blur, so a wholly blank entry is the UI's
// placeholder rather than an attempt at anything. It is stored as it
// always was; a half-filled one is refused.
if p.host_path.is_empty() && p.mount_name.is_empty() {
continue;
}
validate_one_path(p)?;
if !seen_names.insert(p.mount_name.clone()) {
return Err(format!("Duplicate mount name '{}'.", p.mount_name));
}
}
Ok(())
}
/// Every rule that applies to a single folder row, duplicates aside.
fn validate_one_path(p: &ProjectPath) -> Result<(), String> {
if p.mount_name.is_empty() {
return Err("Mount name cannot be empty.".to_string());
}
if !p.mount_name.chars().all(|c| c.is_alphanumeric() || c == '-' || c == '_' || c == '.') {
return Err(format!("Mount name '{}' contains invalid characters. Use alphanumeric, dash, underscore, or dot.", p.mount_name));
}
check_mount_name_stays_under_workspace(&p.mount_name)?;
// Trimmed: a host path of spaces is not a folder, and `classify_mount_source`
// is deliberately silent about a path with nothing in it — this is the
// message that names the mount it belongs to.
if p.host_path.trim().is_empty() {
return Err(format!(
"Folder mounted at '/workspace/{}' has no host path.",
p.mount_name
));
}
match classify_mount_source(&p.host_path) {
None => {}
Some(UnmountableHostPath::FilesystemRoot { resolved }) => {
return Err(filesystem_root_message(
&p.host_path,
&resolved,
"using it as a project folder",
));
}
Some(UnmountableHostPath::NotAbsolute) => {
return Err(format!(
"'{}' is not a full path to a folder — where it lands is decided by wherever \
Triple-C is running from rather than by you. Give the whole path.",
p.host_path
));
}
}
Ok(())
}
/// The one rule that survives every exemption: the mount has to land under
/// `/workspace`.
///
/// A name carrying a path separator, or one that is nothing but dots, does not
/// name a folder inside `/workspace` — it moves the mount. `/workspace/..` is
/// `/`, `/workspace/../tmp/claude-x` normalises to `/tmp/claude-x`, and
/// `/workspace/.` is `/workspace` itself, shadowing every other mount. The
/// first of those is the C1 chain: a host directory mounted over a path the
/// pre-commit scrub empties as root.
///
/// Everything else `validate_one_path` checks is hygiene — a space or an `@` in
/// a mount name is untidy, not an escape — which is why only this one is
/// applied to rows [`validate_project_paths_update`] otherwise grandfathers.
fn check_mount_name_stays_under_workspace(mount_name: &str) -> Result<(), String> {
if mount_name.contains('/') || mount_name.contains('\\') {
return Err(format!(
"Mount name '{}' contains a path separator, so the folder would be mounted somewhere \
/workspace/{{name}} does not reach. Use a plain folder name.",
mount_name
));
}
// **An empty name is not refused here, and that is a live residual.** It
// makes the target `/workspace/`, which the daemon normalises to
// `/workspace` — so the host folder shadows the directory the other mounts
// land in, and Docker then creates their mount points *inside it*, on the
// host. It is not refused because it cannot be: an empty name is what a
// half-filled row holds, `legacy_rows` shows those are already in
// `projects.json`, and this function runs on grandfathered rows too, so
// refusing it would make every such project unsavable — the exact
// regression [`validate_project_paths_update`] exists to prevent.
//
// Introducing one is closed at both ends: `validate_one_path` refuses an
// empty name on any new or edited row, and `WorkspaceSection` no longer
// sends half-filled or blank ones. What remains is the *stored* row, and it
// belongs where the mount is built — `docker::create_container` should skip
// a row with no mount name or no host path, which is the same filter that
// stops a stored blank row failing the create with
// `field Source must not be empty`.
if !mount_name.is_empty() && mount_name.chars().all(|c| c == '.') {
return Err(format!(
"Mount name '{}' is not a folder name — it names the directory the mount would sit in.",
mount_name
));
}
Ok(())
}
/// Validate the folder list of a project that **already exists**, admitting the
/// rows it is already stored with.
///
/// ## Why this is not just [`validate_project_paths`]
///
/// `update_project` validated nothing at all until recently, while
/// `WorkspaceSection` saved `{paths}` on every blur — so `projects.json` files
/// in the field hold rows that the full rule set refuses: a half-filled row, a
/// mount name with a space in it, two rows sharing a name, `/` as a host path.
///
/// Running the full check on every save made every such project **entirely
/// unsavable**. Not just its folder list: `update_project` is the one command
/// behind the Config tab, so every toggle, every permission-mode change and
/// `useTerminal.ts`'s tab rename came back with a message about folders. The
/// remedy exists — fix the row in the Workspace section — but nothing about
/// "cannot save" on a sandbox switch points at it.
///
/// And blocking the save bought nothing for the rows it was blocking. They are
/// *already stored*, and already mounted on every container start; refusing to
/// persist an unrelated field does not unmount them.
///
/// So: a row carried over verbatim from what is stored is admitted, and a row
/// that is new or edited is held to every rule. That is enough to keep the
/// escalation closed, because escalation means *introducing* a bad value
/// through this command, and an introduced row is never a carried-over one.
///
/// The single exception is [`check_mount_name_stays_under_workspace`], which
/// runs on every row either way. A stored `..` is a live data-loss chain rather
/// than untidy data, its remedy is one edit in the Workspace section, and the
/// message names the mount rather than talking about folders in the abstract.
fn validate_project_paths_update(
stored: &[ProjectPath],
incoming: &[ProjectPath],
) -> Result<(), String> {
let is_blank = |p: &ProjectPath| p.host_path.is_empty() && p.mount_name.is_empty();
// Rows carried over, counted rather than set-tested: a *second* copy of an
// existing row is a new row, and has to be checked like one.
let mut carried: std::collections::HashMap<(&str, &str), usize> =
std::collections::HashMap::new();
for p in stored.iter().filter(|p| !is_blank(p)) {
*carried
.entry((p.host_path.as_str(), p.mount_name.as_str()))
.or_insert(0) += 1;
}
for p in incoming.iter().filter(|p| !is_blank(p)) {
check_mount_name_stays_under_workspace(&p.mount_name)?;
match carried.get_mut(&(p.host_path.as_str(), p.mount_name.as_str())) {
Some(remaining) if *remaining > 0 => {
*remaining -= 1;
log::debug!(
"Admitting a stored folder row unchanged: '{}' at /workspace/{}",
p.host_path,
p.mount_name
);
}
_ => validate_one_path(p)?,
}
}
// Duplicates get the same treatment, one level up: a name may repeat as
// many times as it already did, and no more. Counting both sides keeps the
// answer independent of the order the rows arrive in.
let count_names = |rows: &[ProjectPath]| {
let mut counts: std::collections::HashMap<String, usize> =
std::collections::HashMap::new();
for p in rows.iter().filter(|p| !is_blank(p)) {
*counts.entry(p.mount_name.clone()).or_insert(0) += 1;
}
counts
};
let stored_names = count_names(stored);
for (name, count) in count_names(incoming) {
let allowed = stored_names.get(&name).copied().unwrap_or(0).max(1);
if count > allowed {
return Err(format!("Duplicate mount name '{}'.", name));
}
}
Ok(())
}
/// Refuse a filesystem root newly set as `ssh_key_path` or `ca_cert_path`.
///
/// Both are bind-mounted into the container by `docker::create_container` —
/// `/tmp/.host-ssh` and `/tmp/.host-ca` — and neither had any check at all, so
/// `/` handed the whole host filesystem to the agent to read. Read-only, so
/// this is disclosure rather than the read-write hole a `/` project folder is,
/// but it is the same check: [`classify_mount_source`], resolved rather than
/// spelled, so `/..` and `/home/..` are refused here too.
///
/// Same grandfathering as the folder list, for the same reason: a value already
/// stored is already mounted on every start, and refusing an unrelated save
/// does not unmount it. Only a *change* is held to the rule.
fn validate_mounted_host_path(
label: &str,
stored: Option<&str>,
incoming: Option<&str>,
) -> Result<(), String> {
let Some(value) = incoming.map(str::trim).filter(|v| !v.is_empty()) else {
return Ok(());
};
if stored.map(str::trim) == Some(value) {
return Ok(());
}
match classify_mount_source(value) {
None => {}
Some(UnmountableHostPath::FilesystemRoot { resolved }) => {
return Err(filesystem_root_message(
value,
&resolved,
&format!("setting it as {}", label),
));
}
Some(UnmountableHostPath::NotAbsolute) => {
return Err(format!(
"'{}' is not a full path, so it cannot be used as {}. Give the whole path.",
value, label
));
}
}
Ok(())
}
/// Why a host path may not be used as the source of a bind mount.
///
/// Two answers rather than a `bool` because they need different sentences, and
/// because "is a root" is no longer a question about how the path is *spelled*
/// — the refusal has to be able to say where the path actually landed.
#[derive(Debug, PartialEq)]
enum UnmountableHostPath {
/// The path is, or resolves to, the root of a filesystem. `resolved` is
/// what it lands on, which is the same string only when a root was typed
/// outright.
FilesystemRoot { resolved: String },
/// The path does not name a location at all. Where it lands is decided by
/// whatever directory Triple-C happens to be running from, so it can be a
/// root tomorrow and a folder today, and nothing here can judge it.
NotAbsolute,
}
/// Length of a `C:` drive prefix at the head of `path`, or 0.
///
/// Duplicated from `commands::file_commands::drive_prefix_len`, together with
/// [`is_windows_style_path`] and [`normalize_host_path`] below. Those are
/// private to that module and it is not this branch's file to change; if the
/// two copies are ever merged, that one is the original and carries the wider
/// test coverage.
fn drive_prefix_len(path: &str) -> usize {
let b = path.as_bytes();
if b.len() >= 2 && b[0].is_ascii_alphabetic() && b[1] == b':' {
2
} else {
0
}
}
/// Whether `path` is written in Windows form, and so whether `\` separates its
/// components. On Linux a backslash is an ordinary filename character, which is
/// why this is a question rather than an unconditional substitution.
///
/// Copy of `file_commands::is_windows_style_path` — see [`drive_prefix_len`].
fn is_windows_style_path(path: &str) -> bool {
cfg!(windows) || path.starts_with("\\\\") || drive_prefix_len(path) > 0
}
/// `path` with its separators unified and any Win32 verbatim/device prefix
/// removed — the form every rule below is expressed against.
///
/// `\\?\C:\Windows` and `\\?\UNC\server\share` name the *same locations* as
/// `C:\Windows` and `\\server\share`; the prefix only turns off Win32 path
/// parsing. Stripping it is what stops four characters being a bypass — and it
/// has to run on our own output as well, because `std::fs::canonicalize` hands
/// back exactly that spelling on Windows.
///
/// Copy of `file_commands::normalize_host_path` — see [`drive_prefix_len`].
fn normalize_host_path(path: &str) -> String {
let mut s = if is_windows_style_path(path) {
path.replace('\\', "/")
} else {
path.to_string()
};
// Slicing by byte index is safe here only because a prefix matched
// case-insensitively as ASCII is ASCII, so its end is a char boundary.
for prefix in ["//?/unc/", "//./unc/"] {
if s.len() >= prefix.len()
&& s.as_bytes()[..prefix.len()].eq_ignore_ascii_case(prefix.as_bytes())
{
return format!("//{}", &s[prefix.len()..]);
}
}
for prefix in ["//?/", "//./"] {
if s.len() >= prefix.len()
&& s.as_bytes()[..prefix.len()].eq_ignore_ascii_case(prefix.as_bytes())
{
s = s[prefix.len()..].to_string();
break;
}
}
s
}
/// A normalised absolute path split into the root it hangs off and the part
/// below it, or `None` when it names no location at all.
///
/// The three roots the desktop platforms have: `/`, a drive (`C:/`), and a UNC
/// share (`//server/share` — the share *is* the root; `//server` alone names a
/// machine and nothing on it).
fn split_host_root(norm: &str) -> Option<(&str, &str)> {
if let Some(rest) = norm.strip_prefix("//") {
let mut parts = rest.splitn(3, '/');
let server = parts.next().unwrap_or("");
let share = parts.next().unwrap_or("");
if server.is_empty() || share.is_empty() {
// `//server`, `//server/`: no share, so nothing under it is named.
return Some((norm, ""));
}
let root_len = 2 + server.len() + 1 + share.len();
return Some((&norm[..root_len], &norm[root_len..]));
}
let drive = drive_prefix_len(norm);
if drive > 0 {
// `C:x` is drive-*relative* — it means "x under the current directory
// on C:", which is a location only the process's own state decides.
return match norm[drive..].strip_prefix('/') {
Some(tail) => Some((&norm[..drive + 1], tail)),
None if norm.len() == drive => Some((norm, "")),
None => None,
};
}
norm.strip_prefix('/').map(|tail| (&norm[..1], tail))
}
/// How many named components deep `tail` ends up, with `.` dropped and `..`
/// applied — clamped at the root, because `/..` is `/` and not an error.
fn depth_below_root(tail: &str) -> usize {
let mut depth = 0usize;
for segment in tail.split('/') {
match segment {
"" | "." => {}
".." => depth = depth.saturating_sub(1),
_ => depth += 1,
}
}
depth
}
/// Whether a host path can be handed to Docker as a bind-mount source, and if
/// not, why.
///
/// ## Resolved, not spelled
///
/// This used to be `is_filesystem_root`, and it was purely lexical: trim the
/// trailing separators, say yes to what was left over only if it was empty or a
/// bare `C:`. Nothing in this file called `canonicalize`, so `/..`, `/./`,
/// `/home/..`, `/etc/../` and `C:\..` all sailed through and were passed
/// verbatim to `docker::create_container`, which builds a
/// `Mount { source, read_only: Some(false) }` out of them. Verified against the
/// daemon: `-v /..:/mnt/probe` mounts the host root. That is the whole host
/// filesystem, read-write, in a container whose agent has passwordless sudo —
/// the same escalation `check_mount_name_stays_under_workspace` exists to
/// close, reached through the host-path half of the mount instead of the
/// mount-name half.
///
/// So the answer comes from the OS where the OS can give one: `canonicalize`
/// applies `..`, follows every symlink in the path, and on Windows returns the
/// long name for an 8.3 alias and the verbatim spelling of a UNC share — all
/// things a string comparison cannot see.
///
/// ## When the path cannot be resolved
///
/// `canonicalize` fails on a path that does not exist *here*, which is an
/// ordinary state rather than an attack: `projects.json` syncs between machines
/// and names `C:\Users\jo\code` on a box that has never had a `C:`, and a
/// folder can be created after the project is. Refusing outright would make
/// every such project unsavable, which is the exact failure
/// [`validate_project_paths_update`] exists to avoid — so an unresolvable path
/// falls back to the lexical answer, with `.` and `..` collapsed by
/// [`depth_below_root`] rather than ignored.
///
/// That is a weaker guarantee, not a wrong one, and the gap is bounded: what
/// resolution adds over the lexical rule is symlinks and 8.3 aliases, and both
/// of those are properties of a path that *exists* — precisely the case where
/// `canonicalize` answers. What is left is a path that does not exist at save
/// time and is a symlink to the root by the time the container starts, i.e. the
/// user doing it to themselves after being asked.
///
/// Blocking on the filesystem here is deliberate: this runs on a save, once per
/// row, and is a single `realpath` walk.
fn classify_mount_source(host_path: &str) -> Option<UnmountableHostPath> {
let raw = host_path.trim();
if raw.is_empty() {
// Emptiness is somebody else's error message — see
// `validate_one_path`, which names the mount it belongs to.
return None;
}
// Nothing but separators, in either spelling: `/`, `//`, `\`, `\\`. Taken
// first because a lone `\` is a *relative* name on Linux, and reporting a
// Windows root as "not a full path" would be answering a question the user
// did not ask.
if raw.chars().all(|c| c == '/' || c == '\\') {
return Some(UnmountableHostPath::FilesystemRoot {
resolved: raw.to_string(),
});
}
let canonical = std::fs::canonicalize(raw)
.ok()
.map(|p| p.to_string_lossy().into_owned());
let judged = canonical.as_deref().unwrap_or(raw);
let norm = normalize_host_path(judged);
let Some((root, tail)) = split_host_root(&norm) else {
return Some(UnmountableHostPath::NotAbsolute);
};
if depth_below_root(tail) == 0 {
return Some(UnmountableHostPath::FilesystemRoot {
resolved: root.to_string(),
});
}
None
}
/// The refusal for a host path that lands on a filesystem root, naming the
/// resolved location as well as what was typed when those differ. `/..` reads
/// as a folder; `/..` *is* `/`, and a message that only quoted it back would
/// leave the user with nothing to act on.
fn filesystem_root_message(typed: &str, resolved: &str, use_for: &str) -> String {
let where_it_lands = if typed.trim() == resolved {
format!("'{}' is a filesystem root", typed)
} else {
format!("'{}' resolves to '{}', which is a filesystem root", typed, resolved)
};
format!(
"{}, so {} would mount the whole drive into the container. Choose the folder itself.",
where_it_lands, use_for
)
}
#[tauri::command]
pub async fn list_projects(state: State<'_, AppState>) -> Result<Vec<Project>, String> {
Ok(state.projects_store.list())
}
#[tauri::command]
pub async fn add_project(
name: String,
paths: Vec<ProjectPath>,
state: State<'_, AppState>,
) -> Result<Project, String> {
// Validate paths
// A new project needs a folder; the blank row `validate_project_paths`
// tolerates is the Config tab's placeholder on an *existing* one.
if paths.is_empty()
|| paths
.iter()
.all(|p| p.host_path.is_empty() && p.mount_name.is_empty())
{
return Err("At least one folder path is required.".to_string());
}
validate_project_paths(&paths)?;
let project = Project::new(name, paths);
// Nothing can have been blanked on a project that did not exist a line ago.
store_secrets_for_project(&project, &[])?;
state.projects_store.add(project)
}
#[tauri::command]
pub async fn remove_project(
project_id: String,
state: State<'_, AppState>,
) -> Result<(), String> {
// **H-2: the only writer of these three categories that held nothing.**
// This purges migration artifacts, removes `triple-c-snapshot-{id}` and
// both named volumes — and a compaction resolves that same tag when its
// build starts and commits back over it minutes later. Compact a project,
// then remove it from the sidebar, and `restore_image_config` commits a
// flat image back onto `triple-c-snapshot-{id}:latest` for a project that
// no longer exists: not dangling, not a `:pre-migration-*` tag, and not
// reachable by the per-project scan, so no reclaim path can ever see it
// again. Taken for the whole removal, like every other writer.
//
// Refusing is safe for the UI: `useProjects.remove` only drops the sidebar
// row *after* the command resolves, and `ProjectHome` turns the rejection
// into a toast, so the row stays and the message names what is running.
let _guard =
crate::project_lock::try_acquire(&project_id, crate::project_lock::ProjectOp::Destroy)?;
// Release any host loopback ports the auth bridge holds for this project
// before the container (and the project record) go away.
state.auth_bridge.stop(&project_id).await;
// A migration record outliving its project leaks a state file, a staged
// payload tar that can run to several GB, and a `:pre-migration-<ts>` tag
// holding an entire snapshot image that nothing will ever reference again.
crate::commands::migration_commands::purge_migration_artifacts(&project_id).await;
// Stop and remove container if it exists
if let Some(ref project) = state.projects_store.get(&project_id) {
if let Some(ref container_id) = project.container_id {
state.exec_manager.close_sessions_for_container(container_id).await;
let _ = docker::stop_container(container_id).await;
let _ = docker::remove_container(container_id).await;
}
// Legacy MCP cleanup (pre-MCP-removal installs): drop any leftover MCP
// containers first, then the per-project network they were attached to.
docker::remove_legacy_mcp_containers(&project.id).await;
docker::remove_legacy_project_network(&project.id).await;
// Clean up the snapshot image + volumes
if let Err(e) = docker::remove_snapshot_image(project).await {
log::warn!("Failed to remove snapshot image for project {}: {}", project_id, e);
}
if let Err(e) = docker::remove_project_volumes(project).await {
log::warn!("Failed to remove project volumes for project {}: {}", project_id, e);
}
}
// Clean up keychain secrets for this project
if let Err(e) = secure::delete_project_secrets(&project_id) {
log::warn!("Failed to delete keychain secrets for project {}: {}", project_id, e);
}
state.projects_store.remove(&project_id)
}
#[tauri::command]
pub async fn update_project(
project: serde_json::Value,
app_handle: tauri::AppHandle,
state: State<'_, AppState>,
) -> Result<Project, String> {
// Taken as raw JSON, then deserialised, for one reason: a secret field that
// arrived as `null` is a credential the user cleared, and a secret field
// that did not arrive at all belongs to whichever editor is not saving
// right now. `Option<String>` cannot tell those apart — see
// [`explicitly_cleared_secrets`].
let explicitly_cleared = explicitly_cleared_secrets(&project);
let mut project: Project = serde_json::from_value(project)
.map_err(|e| format!("Could not read the project being saved: {}", e))?;
// Fields this command does not get to write, whoever is calling it.
//
// `container_id` is the one that matters: it is the handle the whole file
// command surface resolves against, `list_sibling_containers` hands the
// webview the ids of every other container on the daemon, and a project
// save is not the place a container is adopted. It is assigned by
// `start_project_container` through `projects_store::set_container_id` and
// read back here. `status` has its own setter (`update_status`) for the
// same reason, and neither `id` nor `created_at` is a thing a save can
// mean to change.
//
// The privileged *toggles* — `allow_docker_access`, `vpn_support_enabled`,
// `sandbox_mode_enabled`, `permission_mode` — are deliberately not in this
// list: they are what the Config tab's own switches write, through this
// command, and there is nothing here that can tell that call apart from
// any other. Their boundary is the webview, not this function.
let stored = state
.projects_store
.get(&project.id)
.ok_or_else(|| format!("Project {} not found", project.id))?;
// **This takes a whole `Project` over IPC and used to store it verbatim.**
// `add_project` validated its folder list and this did not, so every check
// there was one edit away from being bypassed — and the Config tab's mount
// name is a free-text field on an existing project, saved on blur, calling
// exactly this command. See [`validate_project_paths`] for what a mount
// name of `../tmp/claude-x` does to the user's files.
//
// Validated against what is *stored*, not in isolation: a rule this command
// never enforced can be violated by data already on disk, and a project
// that cannot be saved at all is a Config tab that cannot be used at all.
// See [`validate_project_paths_update`].
validate_project_paths_update(&stored.paths, &project.paths)?;
validate_mounted_host_path(
"the SSH key folder",
stored.ssh_key_path.as_deref(),
project.ssh_key_path.as_deref(),
)?;
validate_mounted_host_path(
"the CA certificate path",
stored.ca_cert_path.as_deref(),
project.ca_cert_path.as_deref(),
)?;
// Custom env var names had no charset check anywhere, so a key like
// `BASH_FUNC_stat%%` reached the container environment verbatim. Same
// grandfathering as the folder list, for the same reason — see
// [`crate::models::validate_env_vars_update`].
crate::models::validate_env_vars_update(&stored.custom_env_vars, &project.custom_env_vars)?;
project.container_id = stored.container_id;
project.status = stored.status;
project.created_at = stored.created_at;
project.updated_at = chrono::Utc::now().to_rfc3339();
store_secrets_for_project(&project, &explicitly_cleared)?;
let updated = state.projects_store.update(project)?;
// `auth_bridge_enabled` can arrive through this generic save as well as
// through `set_auth_bridge_enabled`, so reconcile the running bridge with
// whatever was just persisted. `start` is idempotent and `stop` is a no-op
// when nothing is running, so this is safe on every project save.
if updated.auth_bridge_enabled {
if let Some(ref container_id) = updated.container_id {
if docker::is_container_running(container_id).await.unwrap_or(false) {
state
.auth_bridge
.start(
updated.id.clone(),
container_id.clone(),
app_handle,
state.projects_store.clone(),
)
.await;
}
}
} else {
state.auth_bridge.stop(&updated.id).await;
}
Ok(updated)
}
#[tauri::command]
pub async fn start_project_container(
project_id: String,
app_handle: tauri::AppHandle,
state: State<'_, AppState>,
) -> Result<Project, String> {
// **Acquired, not polled.** A migration removes the container and creates
// its replacement moments later. Starting in that window finds no
// container, creates a second one under the same name, and the migration's
// own create then fails on the name conflict — which sends it into an
// auto-rollback that also cannot create. This used to be a one-shot
// `is_migrating` read, which covered that case and no other: a start also
// commits `triple-c-snapshot-{id}:latest`, so it races a *compaction*
// committing the same tag with nothing between them. The claim is held for
// the whole start rather than checked at its door.
//
// The UI already refuses (`canMigrate` gates on the container being stopped
// and no run being in flight); this is the same gate on the side that
// actually owns the invariant.
let _guard =
crate::project_lock::try_acquire(&project_id, crate::project_lock::ProjectOp::Recreate)?;
start_project_container_locked(project_id, app_handle, state).await
}
/// The body of [`start_project_container`], with **no claim of its own**.
///
/// Split out for exactly one caller: [`rebuild_project_container`] already
/// holds the project under [`crate::project_lock::ProjectOp::Reset`] for its
/// whole run, and a Reset that then went through the public command would be
/// refused by its own guard. Every other path must go through the command.
async fn start_project_container_locked(
project_id: String,
app_handle: tauri::AppHandle,
state: State<'_, AppState>,
) -> Result<Project, String> {
let mut project = state
.projects_store
.get(&project_id)
.ok_or_else(|| format!("Project {} not found", project_id))?;
// Populate secret fields from the OS keychain so they are available
// in memory when building environment variables for the container.
load_secrets_for_project(&mut project);
// Load settings for image resolution and global AWS
let settings = state.settings_store.get();
let image_name = container_config::resolve_image_name(&settings.image_source, &settings.custom_image_name);
// Validate backend requirements
if project.backend == Backend::Bedrock {
let bedrock = project.bedrock_config.as_ref()
.ok_or_else(|| "Bedrock backend selected but no Bedrock configuration found.".to_string())?;
// Region can come from per-project or global
if bedrock.aws_region.is_empty() && settings.global_aws.aws_region.is_none() {
return Err("AWS region is required for Bedrock backend. Set it per-project or in global AWS settings.".to_string());
}
}
if project.backend == Backend::Ollama {
let ollama = project.ollama_config.as_ref()
.ok_or_else(|| "Ollama backend selected but no Ollama configuration found.".to_string())?;
if ollama.base_url.is_empty()
&& settings.global_ollama.base_url.as_deref().map(str::trim).unwrap_or("").is_empty()
{
return Err("Ollama base URL is required. Set it per-project or in global Ollama settings.".to_string());
}
}
if project.backend == Backend::LlamaCpp {
let cfg = project.llamacpp_config.as_ref()
.ok_or_else(|| "llama.cpp backend selected but no llama.cpp configuration found.".to_string())?;
if cfg.base_url.trim().is_empty()
&& settings.global_llamacpp.base_url.as_deref().map(str::trim).unwrap_or("").is_empty()
{
return Err("llama.cpp base URL is required. Set it per-project or in global llama.cpp settings.".to_string());
}
}
2026-03-13 06:16:05 -07:00
if project.backend == Backend::OpenAiCompatible {
let oai_config = project.openai_compatible_config.as_ref()
.ok_or_else(|| "OpenAI Compatible backend selected but no configuration found.".to_string())?;
if oai_config.base_url.is_empty()
&& settings.global_openai_compatible.base_url.as_deref().map(str::trim).unwrap_or("").is_empty()
{
return Err("OpenAI Compatible base URL is required. Set it per-project or in global settings.".to_string());
}
}
// Update status to starting
state.projects_store.update_status(&project_id, ProjectStatus::Starting)?;
// Pre-validate AWS SSO session on the host for Bedrock Profile projects.
// If the session is expired, trigger `aws sso login` before starting the container
// so the entrypoint copies already-fresh credentials from the host mount.
if project.backend == Backend::Bedrock {
if let Some(ref bedrock) = project.bedrock_config {
if bedrock.auth_method == BedrockAuthMethod::Profile {
let profile = aws_commands::resolve_profile_for_project(
&project,
settings.global_aws.aws_profile.as_deref(),
);
emit_progress(&app_handle, &project_id, "Validating AWS session...");
let session_valid = tokio::time::timeout(
std::time::Duration::from_secs(10),
aws_commands::check_sso_session(&profile),
)
.await;
match session_valid {
Ok(Ok(true)) => {
emit_progress(&app_handle, &project_id, "AWS session valid.");
}
Ok(Ok(false)) => {
// Session expired — check if this is an SSO profile
if aws_commands::is_sso_profile(&profile).await.unwrap_or(false) {
emit_progress(
&app_handle,
&project_id,
"AWS session expired. Starting SSO login (check your browser)...",
);
match aws_commands::run_sso_login(&profile).await {
Ok(()) => {
emit_progress(
&app_handle,
&project_id,
"SSO login successful.",
);
}
Err(e) => {
log::warn!(
"SSO login failed for profile '{}': {} — continuing anyway",
profile,
e
);
emit_progress(
&app_handle,
&project_id,
"SSO login failed or cancelled. Continuing...",
);
}
}
} else {
log::warn!(
"AWS session invalid for profile '{}' (not SSO). Continuing...",
profile
);
}
}
Ok(Err(e)) => {
log::warn!("Failed to check AWS session: {} — continuing anyway", e);
}
Err(_) => {
log::warn!("AWS session check timed out — continuing anyway");
}
}
}
}
}
// Wrap container operations so that any failure resets status to Stopped.
let result: Result<String, String> = async {
// Ensure image exists
emit_progress(&app_handle, &project_id, "Checking image...");
if !docker::image_exists(&image_name).await? {
return Err(format!("Docker image '{}' not found. Please pull or build the image first.", image_name));
}
// Determine docker socket path
let docker_socket = settings.docker_socket_path
.as_deref()
.map(|s| s.to_string())
.unwrap_or_else(|| default_docker_socket());
// AWS config path from global settings
let aws_config_path = settings.global_aws.aws_config_path.clone();
// What we would create this container from *right now*: the project's
// snapshot when one exists, else the configured base. This is the value
// `container_needs_recreation` compares against the container's
// `triple-c.create-image` label — the check that replaced the old
// tautological one. It is resolved *before* the commit below, so it
// describes the pre-commit world the existing container was born into.
let snapshot_image = docker::get_snapshot_image_name(&project);
let expected_create_image =
if docker::image_exists(&snapshot_image).await.unwrap_or(false) {
snapshot_image.clone()
} else {
image_name.clone()
};
let container_id = if let Some(existing_id) = docker::find_existing_container(&project).await? {
// Check if config changed — if so, snapshot + recreate
let needs_recreate = docker::container_needs_recreation(
&existing_id,
&project,
&expected_create_image,
&settings.global_aws,
&settings.global_ollama,
&settings.global_llamacpp,
&settings.global_openai_compatible,
settings.global_claude_instructions.as_deref(),
&settings.global_custom_env_vars,
settings.timezone.as_deref(),
settings.global_claude_code_settings.as_ref(),
settings.default_ssh_key_path.as_deref(),
settings.ca_cert_path.as_deref(),
settings.default_git_user_name.as_deref(),
settings.default_git_user_email.as_deref(),
).await.unwrap_or(false);
if needs_recreate {
log::info!("Container config changed for project {} — committing snapshot and recreating", project.id);
// Snapshot the filesystem before destroying
emit_progress(&app_handle, &project_id, "Saving container state...");
if let Err(e) = docker::commit_container_snapshot(&existing_id, &project).await {
log::warn!("Failed to snapshot container before recreation: {}", e);
}
emit_progress(&app_handle, &project_id, "Recreating container...");
let _ = docker::stop_container(&existing_id).await;
docker::remove_container(&existing_id).await?;
// Legacy MCP cleanup: the old container may have been attached to
// `triple-c-net-<projectId>`. Tear down leftover MCP containers and
// that network now, before the replacement is created without it.
docker::remove_legacy_mcp_containers(&project.id).await;
docker::remove_legacy_project_network(&project.id).await;
// Create from snapshot image (preserves system-level changes).
// Re-resolved after the commit above: when no snapshot existed
// before, one does now, and creating from the base instead
// would throw away the state that was just saved.
let create_image = if docker::image_exists(&snapshot_image).await.unwrap_or(false) {
snapshot_image.clone()
} else {
image_name.clone()
};
let new_id = create_container_for_project(
&project,
&settings,
&docker_socket,
aws_config_path.as_deref(),
&create_image,
&image_name,
docker::CreateExtras::default(),
).await?;
emit_progress(&app_handle, &project_id, "Starting container...");
docker::start_container(&new_id).await?;
// The commit above moved `:latest` and orphaned the image it
// used to point at; the container holding that image open was
// removed a few lines up, so now is when Docker will actually
// let it go. Detached because this is housekeeping and the
// project is already running — and it sweeps every orphan, not
// just this one, so recreations that happened before the sweep
// existed are cleaned up too.
tauri::async_runtime::spawn(async {
docker::sweep_orphaned_snapshots_logged("after recreation").await;
});
new_id
} else {
emit_progress(&app_handle, &project_id, "Starting container...");
docker::start_container(&existing_id).await?;
existing_id
}
} else {
// Container doesn't exist (first start, or Docker pruned it).
// Check for a snapshot image first — it preserves system-level
// changes (apt/pip/npm installs) from the previous session.
if expected_create_image == snapshot_image {
log::info!("Creating container from snapshot image for project {}", project.id);
}
let create_image = expected_create_image.clone();
emit_progress(&app_handle, &project_id, "Creating container...");
let new_id = create_container_for_project(
&project,
&settings,
&docker_socket,
aws_config_path.as_deref(),
&create_image,
&image_name,
docker::CreateExtras::default(),
).await?;
emit_progress(&app_handle, &project_id, "Starting container...");
docker::start_container(&new_id).await?;
new_id
};
// Sync Bedrock credentials on every start: refresh static/session creds
// so rotated keys are picked up without a full container recreation, and
// clear stale creds when the project no longer uses static-cred Bedrock.
if let Err(e) = docker::sync_bedrock_credentials(&container_id, &project).await {
log::warn!("Failed to sync AWS credentials for project {}: {}", project.id, e);
}
Ok(container_id)
}.await;
// On failure, reset status to Stopped so the project doesn't get stuck.
if let Err(ref e) = result {
log::error!("Failed to start container for project {}: {}", project_id, e);
let _ = state.projects_store.update_status(&project_id, ProjectStatus::Stopped);
}
let container_id = result?;
// Update project with container info using granular methods (Issue 14: TOCTOU)
state.projects_store.set_container_id(&project_id, Some(container_id.clone()))?;
state.projects_store.update_status(&project_id, ProjectStatus::Running)?;
// Arm the auth bridge if this project opted in. Purely host-side, so it
// happens after the container is up and never affects the start itself.
if project.auth_bridge_enabled {
state
.auth_bridge
.start(
project_id.clone(),
container_id.clone(),
app_handle.clone(),
state.projects_store.clone(),
)
.await;
}
project.container_id = Some(container_id);
project.status = ProjectStatus::Running;
Ok(project)
}
#[tauri::command]
pub async fn stop_project_container(
project_id: String,
app_handle: tauri::AppHandle,
state: State<'_, AppState>,
) -> Result<(), String> {
// Stop had **no** exclusion at all, which is the one gap CLAUDE.md's "every
// command that stops, removes or recreates the container consults
// `is_migrating`" rule already named and this function did not honour. A
// stop lands on the container a migration is mid-swap on, and it closes the
// exec sessions a compaction's config replay is not expecting to lose.
let _guard =
crate::project_lock::try_acquire(&project_id, crate::project_lock::ProjectOp::Recreate)?;
let project = state
.projects_store
.get(&project_id)
.ok_or_else(|| format!("Project {} not found", project_id))?;
state.projects_store.update_status(&project_id, ProjectStatus::Stopping)?;
// Drop host listeners first: they only make sense while the container runs.
state.auth_bridge.stop(&project_id).await;
if let Some(ref container_id) = project.container_id {
// Close exec sessions for this project
emit_progress(&app_handle, &project_id, "Stopping container...");
state.exec_manager.close_sessions_for_container(container_id).await;
if let Err(e) = docker::stop_container(container_id).await {
log::warn!("Docker stop failed for container {} (project {}): {} — resetting to Stopped anyway", container_id, project_id, e);
}
}
state.projects_store.update_status(&project_id, ProjectStatus::Stopped)?;
Ok(())
}
#[tauri::command]
pub async fn rebuild_project_container(
project_id: String,
app_handle: tauri::AppHandle,
state: State<'_, AppState>,
) -> Result<Project, String> {
// Reset deletes both volumes and the snapshot image. Doing that while a
// migration is mid-flight pulls the ground out from under it and leaves an
// orphan migration record pointing at images that no longer exist — and
// doing it while a *compaction* is mid-flight is worse, because the
// compaction then commits `flat(old)` back over the `:latest` this just
// destroyed and resurrects the system layer the user asked to be rid of.
// Held for the whole Reset, including the start at the end of it.
let _guard =
crate::project_lock::try_acquire(&project_id, crate::project_lock::ProjectOp::Reset)?;
let project = state
.projects_store
.get(&project_id)
.ok_or_else(|| format!("Project {} not found", project_id))?;
// Reset supersedes any migration decision that was still pending: the
// snapshot image and both volumes are about to go, so a surviving record
// could only describe things that no longer exist — while its
// `:pre-migration-<ts>` tag held a whole snapshot image (multiple GB) alive
// with nothing left that could ever use it.
crate::commands::migration_commands::purge_migration_artifacts(&project_id).await;
// The bridge is bound to the container that is about to be destroyed;
// `start_project_container` below re-arms it against the new one.
state.auth_bridge.stop(&project_id).await;
// Remove existing container
if let Some(ref container_id) = project.container_id {
state.exec_manager.close_sessions_for_container(container_id).await;
let _ = docker::stop_container(container_id).await;
docker::remove_container(container_id).await?;
state.projects_store.set_container_id(&project_id, None)?;
}
// Remove snapshot image + volumes so Reset creates from the clean base image
if let Err(e) = docker::remove_snapshot_image(&project).await {
log::warn!("Failed to remove snapshot image for project {}: {}", project_id, e);
}
if let Err(e) = docker::remove_project_volumes(&project).await {
log::warn!("Failed to remove project volumes for project {}: {}", project_id, e);
}
// Start fresh. The locked variant, because `_guard` above is this project's
// claim and the public command would be refused by it.
start_project_container_locked(project_id, app_handle, state).await
}
/// Reconcile project statuses against actual Docker container state.
/// Called by the frontend after Docker is confirmed available. Projects
/// marked as Running whose containers are no longer running get reset
/// to Stopped.
///
/// This is also where an interrupted **base-image migration** is picked up.
/// It runs at startup, which is exactly when a migration that died with the app
/// needs to be noticed — see
/// [`crate::commands::migration_commands::reconcile_migration`]. The migration
/// pass runs over *every* project, not just the Running ones, because a project
/// whose container was removed mid-migration reports Stopped.
#[tauri::command]
pub async fn reconcile_project_statuses(
app_handle: tauri::AppHandle,
state: State<'_, AppState>,
) -> Result<Vec<Project>, String> {
let projects = state.projects_store.list();
for project in &projects {
crate::commands::migration_commands::reconcile_migration(project, &app_handle).await;
}
for project in &projects {
// `Starting` and `Stopping` are in here as a backstop, not because
// anything is expected to leave a project in one. They are transitional
// states owned by an in-flight command, so a project still wearing one
// is a project whose command died — a crash mid-start, or a migration
// that bailed out between the stop and the swap. Skipping them, as this
// loop used to, meant nothing in the app ever put such a project right:
// it sat at "Stopping" with the Start button disabled, permanently.
// Docker is the authority either way, so the check below is correct for
// all four.
if !matches!(
project.status,
ProjectStatus::Running
| ProjectStatus::Error
| ProjectStatus::Starting
| ProjectStatus::Stopping
) {
continue;
}
// ...but never for a project this process is actively working on. A
// migration's container is legitimately absent between the
// `remove_container` and the create that follows, and so is a Reset's,
// and so is a start's before its create returns. Reconciling into any
// of those windows writes `Stopped` over a project that is mid-run.
// Broadened from `is_migrating` to the whole lock for exactly that
// reason — the migration was never the only operation with a gap.
if crate::project_lock::held(&project.id).is_some() {
continue;
}
let is_running = if let Some(ref container_id) = project.container_id {
docker::is_container_running(container_id).await.unwrap_or(false)
} else {
false
};
if is_running {
log::info!(
"Project '{}' ({}) container is still running — keeping Running status",
project.name,
project.id
);
// The app may have restarted while the container kept running; the
// bridge lives in this process, so re-arm it here. `start` is
// idempotent, so a bridge that is already polling is untouched.
if project.auth_bridge_enabled {
if let Some(ref container_id) = project.container_id {
state
.auth_bridge
.start(
project.id.clone(),
container_id.clone(),
app_handle.clone(),
state.projects_store.clone(),
)
.await;
}
}
} else {
log::info!(
"Project '{}' ({}) container is not running — setting to Stopped",
project.name,
project.id
);
let _ = state.projects_store.update_status(&project.id, ProjectStatus::Stopped);
}
}
Ok(state.projects_store.list())
}
fn default_docker_socket() -> String {
if cfg!(target_os = "windows") {
"//./pipe/docker_engine".to_string()
} else {
"/var/run/docker.sock".to_string()
}
}
#[cfg(test)]
mod tests {
use super::*;
fn path(host: &str, mount: &str) -> ProjectPath {
ProjectPath {
host_path: host.to_string(),
mount_name: mount.to_string(),
}
}
/// The mount name that reaches the scrub. `docker::create_container` builds
/// `/workspace/{mount_name}`, and the daemon normalises `..` out of it —
/// verified against Engine 29.7, where a mount created with a target of
/// `/workspace/../tmp/claude-x` is reported by `inspect` as `/tmp/claude-x`.
#[test]
fn a_mount_name_cannot_walk_out_of_workspace() {
for escape in ["..", "../tmp/claude-x", "../../etc", "/tmp/claude-x", "a/../.."] {
assert!(
validate_project_paths(&[path("/home/u/project", escape)]).is_err(),
"mount name '{}' was accepted, which puts the host folder somewhere \
/workspace/{{name}} does not reach",
escape
);
}
// The dotted names that are *not* a traversal stay usable.
for ok in ["my.project", ".hidden", "a.b-c_d", "workspace2"] {
assert!(
validate_project_paths(&[path("/home/u/project", ok)]).is_ok(),
"mount name '{}' should be usable",
ok
);
}
}
#[test]
fn the_whole_host_filesystem_cannot_be_mounted() {
// A read-write bind of `/` into a container whose agent has
// passwordless sudo.
for root in ["/", "//", "\\", "C:\\", "c:/", "D:"] {
assert!(
validate_project_paths(&[path(root, "everything")]).is_err(),
"host path '{}' was accepted as a project folder",
root
);
}
assert!(validate_project_paths(&[path("/home/u/project", "project")]).is_ok());
assert!(validate_project_paths(&[path("C:\\Users\\u\\project", "project")]).is_ok());
}
/// Every spelling of a root that is not *spelled* like one.
///
/// The predicate this replaces trimmed trailing separators and compared
/// what was left, so `/..` — which the daemon mounts as the host root,
/// verified with `docker run -v /..:/mnt/probe` — was indistinguishable
/// from a project folder called `..`. No test in the repo contained a `.`
/// or a `..` in a host path, which is why it shipped.
#[test]
fn a_host_path_that_resolves_to_a_root_is_refused() {
let escapes = [
"/..",
"/../",
"/./",
"/.",
"/home/..",
"/etc/../",
"/tmp/../..",
// Deliberately not present on any machine, so this is the
// unresolvable path taking the lexical route.
"/no-such-dir-here/../..",
"C:\\..",
"C:\\Users\\..",
"c:/foo/..",
// Win32 verbatim spelling of a drive root.
"\\\\?\\C:\\",
"\\\\?\\C:\\..",
// A UNC share root is the root of everything on that share, which
// the old predicate accepted despite its doc comment claiming
// otherwise.
"\\\\server\\share",
"//server/share/",
];
for escape in escapes {
assert!(
validate_project_paths(&[path(escape, "everything")]).is_err(),
"host path '{}' was accepted as a project folder, which bind-mounts a whole \
filesystem read-write into a container with passwordless sudo",
escape
);
// The same value must not be reachable through the editor either.
assert!(
validate_project_paths_update(&[], &[path(escape, "everything")]).is_err(),
"host path '{}' was accepted through update_project",
escape
);
// And the two read-only mounts are the same check.
assert!(
validate_mounted_host_path("the SSH key folder", None, Some(escape)).is_err(),
"'{}' was accepted as an SSH key path, which read-only bind-mounts a whole \
filesystem at /tmp/.host-ssh",
escape
);
}
}
/// A drive-relative path (`C:x`, no separator) means "x under whatever the
/// current directory on C: happens to be" — a location decided by the
/// process rather than by the user, so it may be the drive root.
#[test]
fn a_path_that_names_no_location_is_refused_rather_than_guessed_at() {
for relative in ["C:x", "C:Users\\jo", "relative/path", "./project"] {
assert!(
validate_project_paths(&[path(relative, "project")]).is_err(),
"'{}' was accepted, though where it lands depends on Triple-C's own \
working directory",
relative
);
}
}
/// The dots that are *not* an escape have to keep working — a folder can
/// legitimately be reached through `.` or a `..` that goes back down again,
/// and the Browse button produces paths on machines this list is not
/// running on.
#[test]
fn an_ordinary_folder_is_still_accepted_however_it_is_spelled() {
for ok in [
"/home/u/./project",
"/home/u/x/../project",
"/home/u/..project",
"/home/u/project/..hidden",
"C:\\Users\\u\\x\\..\\project",
"\\\\server\\share\\project",
"\\\\?\\C:\\Users\\u\\project",
] {
assert!(
validate_project_paths(&[path(ok, "project")]).is_ok(),
"host path '{}' should be usable",
ok
);
}
}
/// The half of this that only resolution can answer.
///
/// A lexical check sees a two-component path under `/tmp` and stops. The
/// container is what plants the link — `/proc/self/mountinfo` inside a
/// Triple-C container spells the host's project paths out verbatim — so the
/// symlink is reachable, and the mount that follows it is read-write.
#[cfg(unix)]
#[test]
fn a_symlink_to_the_root_is_refused_because_resolution_is_what_answers() {
let dir = std::env::temp_dir().join(format!(
"triple-c-root-link-{}-{}",
std::process::id(),
std::time::SystemTime::now()
.duration_since(std::time::UNIX_EPOCH)
.unwrap()
.as_nanos()
));
std::fs::create_dir_all(&dir).unwrap();
let link = dir.join("innocent");
std::os::unix::fs::symlink("/", &link).unwrap();
let verdict = validate_project_paths(&[path(&link.to_string_lossy(), "project")]);
std::fs::remove_file(&link).ok();
std::fs::remove_dir(&dir).ok();
assert!(
verdict.is_err(),
"a symlink to / was accepted as a project folder; only canonicalisation can see it"
);
}
#[test]
fn duplicate_and_half_filled_rows_are_refused_but_the_blank_row_is_not() {
assert!(validate_project_paths(&[
path("/home/u/a", "same"),
path("/home/u/b", "same"),
])
.is_err());
assert!(validate_project_paths(&[path("/home/u/a", "")]).is_err());
assert!(validate_project_paths(&[path("", "a")]).is_err());
// "+ Add folder" inserts this and the next blur saves the whole list;
// refusing it would turn an empty row into an error toast.
assert!(validate_project_paths(&[path("/home/u/a", "a"), path("", "")]).is_ok());
}
/// The distinction the whole secret-clearing path rests on.
///
/// Every secret field is `#[serde(skip_serializing)]`, so the project
/// object the frontend holds has no `git_token` key — a save from the
/// Workspace or Runtime section sends it *absent*, and clearing on absent
/// would delete the token every time an unrelated setting was changed. The
/// editor that owns the field sends an explicit `null`.
#[test]
fn a_blanked_secret_is_cleared_and_an_absent_one_is_left_alone() {
let blanked = serde_json::json!({
"id": "p1",
"git_token": null,
"bedrock_config": { "aws_bearer_token": null },
});
let cleared = explicitly_cleared_secrets(&blanked);
assert!(cleared.contains(&"git-token"));
assert!(cleared.contains(&"aws-bearer-token"));
// Present in the same payload, absent from the clear list.
assert!(!cleared.contains(&"aws-access-key-id"));
// What a Workspace-section save looks like: no secret keys at all.
let unrelated = serde_json::json!({ "id": "p1", "name": "renamed" });
assert!(explicitly_cleared_secrets(&unrelated).is_empty());
// And a value is neither.
let written = serde_json::json!({ "id": "p1", "git_token": "ghp_xxx" });
assert!(explicitly_cleared_secrets(&written).is_empty());
}
#[test]
fn every_secret_field_can_be_cleared() {
// A field the frontend can blank but this list does not name is a
// credential that cannot be revoked through the UI, which is the bug
// this exists to close. The keychain keys must match the ones
// `load_secrets_for_project` reads back, or a save writes one name and
// the container is handed another.
for (pointer, key) in PROJECT_SECRET_FIELDS {
let field = pointer.rsplit('/').next().unwrap();
let payload = match pointer.matches('/').count() {
1 => serde_json::json!({ field: null }),
_ => {
let parent = pointer.trim_start_matches('/').split('/').next().unwrap();
serde_json::json!({ parent: { field: null } })
}
};
assert!(
explicitly_cleared_secrets(&payload).contains(key),
"{} does not reach the keychain key {}",
pointer,
key
);
}
}
#[test]
fn add_and_update_cannot_disagree_about_what_a_folder_list_may_contain() {
// `update_project` used to validate nothing at all, so every rule in
// `add_project` was one save-on-blur away from being bypassed. It now
// validates against what is stored rather than in isolation, but a row
// it has never seen before is held to exactly the same rules — this
// fails if either side grows its own copy.
let bad = [path("/home/u/project", "../tmp/claude-x")];
assert!(validate_project_paths(&bad).is_err());
assert!(validate_project_paths_update(&[], &bad).is_err());
let good = [path("/home/u/project", "project")];
assert!(validate_project_paths(&good).is_ok());
assert!(validate_project_paths_update(&[], &good).is_ok());
}
// ── Folder lists that are already in `projects.json` ──────────────────
//
// `update_project` validated nothing while `WorkspaceSection` saved
// `{paths}` on every blur, so a stored list can break rules that only
// `add_project` ever enforced. Holding a save to all of them turned every
// such project into one that cannot be saved *at all* — not its folders:
// `update_project` is the single command behind the whole Config tab, so a
// sandbox toggle, a permission-mode change and `useTerminal.ts`'s tab
// rename all came back with a message about folders.
/// The shapes a real `projects.json` can be holding. None of them is an
/// escape from `/workspace`; all of them used to brick the editor.
fn legacy_rows() -> Vec<Vec<ProjectPath>> {
vec![
// Half-filled: "+ Add folder", a host path typed, no name yet, and
// an unrelated blur saved the list.
vec![path("/home/u/a", "a"), path("/home/u/b", "")],
vec![path("/home/u/a", "a"), path("", "b")],
// A mount name the character check refuses but the daemon puts
// exactly where it says: /workspace/my project.
vec![path("/home/u/a", "my project")],
vec![path("/home/u/a", "web@2")],
// Two rows sharing a name.
vec![path("/home/u/a", "same"), path("/home/u/b", "same")],
// The whole drive, from before anything refused it.
vec![path("/", "everything")],
vec![path("C:\\", "everything")],
]
}
#[test]
fn a_project_stored_with_a_bad_row_can_still_be_saved() {
for rows in legacy_rows() {
// The full rule set is what made these unsavable…
assert!(
validate_project_paths(&rows).is_err(),
"fixture {:?} is not actually a rule violation",
rows
);
// …and an unrelated Config save re-sends the list it was given.
assert!(
validate_project_paths_update(&rows, &rows).is_ok(),
"saving an unrelated setting on a project stored as {:?} is refused, so every \
toggle in the Config tab fails with a message about folders",
rows
);
}
}
#[test]
fn the_same_bad_row_is_refused_when_it_is_new() {
let stored = [path("/home/u/project", "project")];
for rows in legacy_rows() {
assert!(
validate_project_paths_update(&stored, &rows).is_err(),
"{:?} was introduced through update_project, which is the escalation the \
validation exists to stop",
rows
);
}
}
/// The one rule no exemption reaches. `/workspace/../tmp/claude-x`
/// normalises to `/tmp/claude-x` — a path the pre-commit scrub owns and
/// empties as root — so a stored one is a live data-loss chain rather than
/// untidy data, and the Workspace section is one edit away.
#[test]
fn a_mount_that_leaves_workspace_is_refused_however_it_got_there() {
for escape in ["..", "../tmp/claude-x", "../../etc", "/tmp/claude-x", "a/../..", ".", "..\\x"] {
let rows = [path("/home/u/project", escape)];
assert!(
validate_project_paths_update(&rows, &rows).is_err(),
"mount name '{}' was grandfathered, so the C1 chain stays open for anyone who \
already has it stored",
escape
);
assert!(validate_project_paths_update(&[], &rows).is_err());
}
}
#[test]
fn editing_a_grandfathered_row_holds_it_to_every_rule_again() {
let stored = [path("/", "everything")];
// Renaming the mount but keeping the root host path is a new row.
assert!(
validate_project_paths_update(&stored, &[path("/", "all")]).is_err(),
"an edited row was admitted on the strength of the row it replaced"
);
// Fixing the host path is what the message asks for, and it saves.
assert!(
validate_project_paths_update(&stored, &[path("/home/u/a", "everything")]).is_ok()
);
// Dropping the row entirely is always fine.
assert!(validate_project_paths_update(&stored, &[]).is_ok());
}
#[test]
fn a_stored_duplicate_may_be_kept_but_not_multiplied() {
let stored = [path("/home/u/a", "same"), path("/home/u/b", "same")];
assert!(validate_project_paths_update(&stored, &stored).is_ok());
// Order must not change the answer.
let reordered = [stored[1].clone(), stored[0].clone()];
assert!(validate_project_paths_update(&stored, &reordered).is_ok());
// A third row taking the same name is new, and refused.
let more = [
stored[0].clone(),
stored[1].clone(),
path("/home/u/c", "same"),
];
assert!(validate_project_paths_update(&stored, &more).is_err());
// And a second copy of a name that was unique stays refused.
let unique = [path("/home/u/a", "a")];
assert!(validate_project_paths_update(
&unique,
&[path("/home/u/a", "a"), path("/home/u/b", "a")]
)
.is_err());
}
#[test]
fn the_blank_placeholder_row_is_still_not_an_error_on_either_path() {
let stored = [path("/home/u/a", "a")];
let with_placeholder = [path("/home/u/a", "a"), path("", "")];
assert!(validate_project_paths(&with_placeholder).is_ok());
assert!(validate_project_paths_update(&stored, &with_placeholder).is_ok());
}
// ── The two host paths that had no check at all ───────────────────────
#[test]
fn a_filesystem_root_cannot_be_newly_set_as_an_ssh_or_ca_path() {
for root in ["/", "//", "\\", "C:\\", "c:/", "D:"] {
assert!(
validate_mounted_host_path("the SSH key folder", None, Some(root)).is_err(),
"'{}' was accepted as an SSH key path, which read-only bind-mounts the whole \
host filesystem at /tmp/.host-ssh",
root
);
assert!(
validate_mounted_host_path("the CA certificate path", Some("/etc/ssl"), Some(root))
.is_err(),
"'{}' was accepted as a CA certificate path",
root
);
}
// A real folder, a cleared value and an absent one are all fine.
assert!(validate_mounted_host_path("x", None, Some("/home/u/.ssh")).is_ok());
assert!(validate_mounted_host_path("x", Some("/home/u/.ssh"), None).is_ok());
assert!(validate_mounted_host_path("x", Some("/home/u/.ssh"), Some("")).is_ok());
}
#[test]
fn an_ssh_path_already_stored_does_not_brick_the_editor_either() {
// Nothing ever validated this field, so it can hold a root today — and
// it is mounted on every container start whether or not an unrelated
// Config save is allowed through.
assert!(validate_mounted_host_path("x", Some("/"), Some("/")).is_ok());
assert!(validate_mounted_host_path("x", Some("/"), Some(" / ")).is_ok());
// Changing it to a different root is a change, and refused.
assert!(validate_mounted_host_path("x", Some("/"), Some("C:\\")).is_err());
}
}