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codeswarm_adapters/
adapters.rs

1//! Protocol adapters for CodeSwarm.
2//!
3//! ACP and native CLI protocols are intentionally peers here. They emit the
4//! same core events and expose capabilities through the same adapter boundary.
5
6use std::collections::{BTreeMap, VecDeque};
7use std::io::Read;
8use std::path::{Path, PathBuf};
9use std::process::Stdio;
10use std::sync::{
11    Arc, Mutex,
12    atomic::{AtomicBool, AtomicUsize, Ordering},
13};
14
15use crate::{
16    AgentCapabilities, AgentCommand, AgentEvent, Effect, EventLog, Mode, PermissionAnswer,
17    PermissionRequest, RosterSlot, RosterUpdate, SessionState, TerminalEvent, ToolStatus,
18    ToolUpdate, UsageUpdate,
19    persistence::{BufferedSessionMetadataStore, SessionMetadata},
20    reduce,
21    relay::{
22        CollaborationStrategy, DEFAULT_STOP_ACKNOWLEDGMENT, Relay, RelayDecision, STOP_TOKEN,
23        is_usage_limit_response, stop_token_visible_end, strip_stop_token,
24    },
25    resources,
26};
27use async_trait::async_trait;
28use base64::{Engine, engine::general_purpose::STANDARD as BASE64};
29use serde_json::Value;
30use tokio::io::{AsyncBufRead, AsyncBufReadExt, AsyncRead, AsyncReadExt, AsyncWriteExt, BufReader};
31use tokio::process::{Child, ChildStdout, Command};
32use tokio::sync::{Mutex as AsyncMutex, Notify, mpsc};
33
34pub type AdapterResult<T> = Result<T, AdapterError>;
35
36/// Keep a peer from allocating unbounded memory for one newline-delimited
37/// protocol frame. The Python client applied the same boundary (10 MiB) to
38/// its asyncio reader; ACP messages are normally much smaller than this.
39const MAX_ACP_LINE_BYTES: usize = 10 * 1024 * 1024;
40const MAX_FILE_READ_BYTES: usize = 4 * 1024 * 1024;
41const MAX_TERMINAL_OUTPUT_BYTES: usize = 1024 * 1024;
42
43#[derive(Clone, Debug)]
44struct TerminalProcess {
45    child: Arc<AsyncMutex<Option<Child>>>,
46    output: Arc<Mutex<Vec<u8>>>,
47    truncated: Arc<AtomicBool>,
48    output_readers: Arc<AtomicUsize>,
49}
50
51impl TerminalProcess {
52    async fn kill(&self) {
53        if let Some(child) = self.child.lock().await.as_mut() {
54            #[cfg(unix)]
55            if signal_isolated_process_group(child, nix::sys::signal::Signal::SIGTERM) {
56                tokio::time::sleep(std::time::Duration::from_millis(100)).await;
57                signal_isolated_process_group(child, nix::sys::signal::Signal::SIGKILL);
58            }
59            let _ = child.start_kill();
60        }
61    }
62
63    async fn stop(&self) {
64        if let Some(mut child) = self.child.lock().await.take() {
65            let _ = terminate_child(&mut child).await;
66        }
67    }
68
69    async fn wait(&self) -> Option<i32> {
70        loop {
71            let code = {
72                let mut child = self.child.lock().await;
73                match child.as_mut() {
74                    None => Some(-1),
75                    Some(child) => match child.try_wait() {
76                        Ok(Some(status)) => Some(status.code().unwrap_or(-1)),
77                        Ok(None) => None,
78                        // A terminal whose child handle can no longer be
79                        // polled must not leave `wait_for_exit` spinning
80                        // forever. Preserve the protocol's integer exit
81                        // contract with an unknown/failure sentinel.
82                        Err(_) => Some(-1),
83                    },
84                }
85            };
86            if code.is_some() {
87                while self.output_readers.load(Ordering::Acquire) != 0 {
88                    tokio::task::yield_now().await;
89                }
90                return code;
91            }
92            tokio::time::sleep(std::time::Duration::from_millis(10)).await;
93        }
94    }
95
96    async fn exit_code(&self) -> Option<i32> {
97        let mut child = self.child.lock().await;
98        child
99            .as_mut()
100            .and_then(|child| child.try_wait().ok().flatten())
101            .map(|status| status.code().unwrap_or(-1))
102    }
103}
104
105#[derive(Clone, Debug)]
106pub struct HostUpdate {
107    pub event: AgentEvent,
108    pub effects: Vec<Effect>,
109}
110
111#[derive(Clone, Debug, Eq, PartialEq)]
112pub enum AdapterError {
113    Unsupported(&'static str),
114    Spawn(String),
115    Transport(String),
116    Protocol(String),
117}
118
119impl std::fmt::Display for AdapterError {
120    fn fmt(&self, formatter: &mut std::fmt::Formatter<'_>) -> std::fmt::Result {
121        match self {
122            Self::Unsupported(operation) => write!(formatter, "unsupported operation: {operation}"),
123            Self::Spawn(error) => write!(formatter, "unable to launch agent: {error}"),
124            Self::Transport(error) => write!(formatter, "agent transport error: {error}"),
125            Self::Protocol(error) => write!(formatter, "agent protocol error: {error}"),
126        }
127    }
128}
129
130impl std::error::Error for AdapterError {}
131
132fn floor_char_boundary(text: &str, index: usize) -> usize {
133    let mut index = index.min(text.len());
134    while index > 0 && !text.is_char_boundary(index) {
135        index -= 1;
136    }
137    index
138}
139
140/// A shell-free argv parser for commands stored in the agent catalog.
141///
142/// Agent commands are configuration data, not shell snippets: expansion and
143/// pipelines are intentionally unsupported. We still accept the quoting users
144/// expect when entering a command (`'...'`, `"..."`, and backslash escapes),
145/// so a configured executable or argument containing whitespace is passed to
146/// `Command` as one argument and cannot be re-split accidentally.
147#[derive(Clone, Debug, Eq, PartialEq)]
148pub enum CommandParseError {
149    Empty,
150    UnterminatedQuote,
151    TrailingEscape,
152}
153
154impl std::fmt::Display for CommandParseError {
155    fn fmt(&self, formatter: &mut std::fmt::Formatter<'_>) -> std::fmt::Result {
156        let message = match self {
157            Self::Empty => "command is empty",
158            Self::UnterminatedQuote => "command contains an unterminated quote",
159            Self::TrailingEscape => "command ends with an incomplete escape",
160        };
161        formatter.write_str(message)
162    }
163}
164
165impl std::error::Error for CommandParseError {}
166
167/// Parse a configured command into an executable and argv without invoking a
168/// shell. This is shared by native and ACP adapters.
169pub fn parse_command_line(command: &str) -> Result<(String, Vec<String>), CommandParseError> {
170    let mut argv = Vec::new();
171    let mut argument = String::new();
172    let mut quoted = None;
173    let mut escaped = false;
174    let mut started = false;
175
176    for character in command.chars() {
177        if escaped {
178            argument.push(character);
179            escaped = false;
180            started = true;
181            continue;
182        }
183        match (quoted, character) {
184            (_, '\\') if quoted != Some('\'') => {
185                escaped = true;
186                started = true;
187            }
188            (None, '\'' | '"') => {
189                quoted = Some(character);
190                started = true;
191            }
192            (Some(quote), character) if character == quote => quoted = None,
193            (None, character) if character.is_whitespace() => {
194                if started {
195                    argv.push(std::mem::take(&mut argument));
196                    started = false;
197                }
198            }
199            (_, character) => {
200                argument.push(character);
201                started = true;
202            }
203        }
204    }
205
206    if escaped {
207        return Err(CommandParseError::TrailingEscape);
208    }
209    if quoted.is_some() {
210        return Err(CommandParseError::UnterminatedQuote);
211    }
212    if started {
213        argv.push(argument);
214    }
215    let Some((program, args)) = argv.split_first() else {
216        return Err(CommandParseError::Empty);
217    };
218    Ok((program.clone(), args.to_vec()))
219}
220
221/// Kill and reap a child process. Tokio intentionally does not reap a child
222/// when its handle is dropped, so every adapter shutdown path must await this
223/// helper before releasing the handle.
224async fn terminate_child(child: &mut Child) -> AdapterResult<()> {
225    #[cfg(unix)]
226    if signal_isolated_process_group(child, nix::sys::signal::Signal::SIGTERM) {
227        tokio::time::sleep(std::time::Duration::from_millis(100)).await;
228        signal_isolated_process_group(child, nix::sys::signal::Signal::SIGKILL);
229    }
230    let kill_error = child.start_kill().err();
231    let wait_error = child.wait().await.err();
232    if let Some(error) = kill_error.or(wait_error) {
233        return Err(AdapterError::Transport(error.to_string()));
234    }
235    Ok(())
236}
237
238#[cfg(unix)]
239fn signal_isolated_process_group(child: &Child, signal: nix::sys::signal::Signal) -> bool {
240    use nix::{
241        sys::signal::killpg,
242        unistd::{Pid, getpgid, getpgrp},
243    };
244
245    let Some(raw_pid) = child.id().and_then(|pid| i32::try_from(pid).ok()) else {
246        return false;
247    };
248    let pid = Pid::from_raw(raw_pid);
249    // `process_group(0)` makes the child its own group leader. Verify that
250    // invariant at signal time and also reject CodeSwarm's own group. This
251    // keeps descendant cleanup without any possibility of reaching the
252    // containing shell or terminal multiplexer.
253    if getpgid(Some(pid)).ok() == Some(pid) && pid != getpgrp() {
254        let _ = killpg(pid, signal);
255        true
256    } else {
257        false
258    }
259}
260
261fn isolate_process_group(command: &mut Command) {
262    #[cfg(unix)]
263    command.process_group(0);
264}
265
266/// Drain diagnostics without allowing a noisy peer to block on stderr or
267/// retain an unbounded failure report.
268async fn drain_bounded<R>(mut reader: R, limit: usize) -> String
269where
270    R: AsyncRead + Unpin,
271{
272    let mut bytes = Vec::new();
273    let mut chunk = [0_u8; 4096];
274    while let Ok(count) = reader.read(&mut chunk).await {
275        if count == 0 {
276            break;
277        }
278        bytes.extend_from_slice(&chunk[..count]);
279        if bytes.len() > limit {
280            let keep_from = bytes.len() - limit;
281            bytes.drain(..keep_from);
282        }
283    }
284    String::from_utf8_lossy(&bytes).trim().to_owned()
285}
286
287/// Read one JSONL frame without allowing a peer to allocate an unbounded
288/// string before the size check runs. `AsyncBufReadExt::read_line` checks only
289/// after it has appended the complete line, so the bounded fill/consume loop
290/// below is intentional.
291async fn read_bounded_line<R>(reader: &mut R) -> AdapterResult<String>
292where
293    R: AsyncBufRead + Unpin,
294{
295    let mut bytes = Vec::with_capacity(4096);
296    loop {
297        let buffer = reader
298            .fill_buf()
299            .await
300            .map_err(|error| AdapterError::Transport(error.to_string()))?;
301        if buffer.is_empty() {
302            if bytes.is_empty() {
303                return Err(AdapterError::Transport("ACP stream closed".into()));
304            }
305            break;
306        }
307        let newline = buffer.iter().position(|byte| *byte == b'\n');
308        let available = newline.map_or(buffer.len(), |index| index + 1);
309        let remaining = MAX_ACP_LINE_BYTES
310            .saturating_add(1)
311            .saturating_sub(bytes.len());
312        if available > remaining {
313            reader.consume(remaining);
314            return Err(AdapterError::Protocol(format!(
315                "ACP protocol line exceeds {MAX_ACP_LINE_BYTES} bytes"
316            )));
317        }
318        bytes.extend_from_slice(&buffer[..available]);
319        reader.consume(available);
320        if newline.is_some() {
321            break;
322        }
323    }
324    if bytes.len() > MAX_ACP_LINE_BYTES {
325        return Err(AdapterError::Protocol(format!(
326            "ACP protocol line exceeds {MAX_ACP_LINE_BYTES} bytes"
327        )));
328    }
329    String::from_utf8(bytes).map_err(|error| AdapterError::Protocol(error.to_string()))
330}
331
332async fn drain_terminal_output<R>(
333    mut reader: R,
334    output: Arc<Mutex<Vec<u8>>>,
335    truncated: Arc<AtomicBool>,
336    output_readers: Arc<AtomicUsize>,
337    limit: usize,
338) where
339    R: AsyncRead + Unpin,
340{
341    let mut chunk = [0_u8; 4096];
342    while let Ok(count) = reader.read(&mut chunk).await {
343        if count == 0 {
344            break;
345        }
346        if let Ok(mut bytes) = output.lock() {
347            let remaining = limit.saturating_sub(bytes.len());
348            if count > remaining {
349                bytes.extend_from_slice(&chunk[..remaining]);
350                truncated.store(true, Ordering::Release);
351            } else {
352                bytes.extend_from_slice(&chunk[..count]);
353            }
354        }
355    }
356    output_readers.fetch_sub(1, Ordering::AcqRel);
357}
358
359/// Uniform control plane for ACP and custom command-line adapters.
360#[async_trait]
361pub trait AgentAdapter: Send {
362    fn slot(&self) -> RosterSlot;
363    /// Human-readable adapter identity used in the first-turn roster context.
364    /// Catalog-backed launchers can override this with their display name;
365    /// direct command adapters still get a deterministic fallback.
366    fn display_name(&self) -> String {
367        format!("Agent {}", self.slot().saturating_add(1))
368    }
369    /// Return the protocol session handle when this adapter has one. Custom
370    /// adapters may omit it; runtime metadata then still preserves roster
371    /// identity without claiming the session is resumable.
372    fn session_id(&self) -> Option<String> {
373        None
374    }
375    /// Stable protocol label recorded in the runtime session snapshot.
376    /// Custom adapters may override this when they expose a resumable
377    /// protocol distinct from the built-in native and ACP bridges.
378    fn protocol(&self) -> &'static str {
379        "custom"
380    }
381    fn capabilities(&self) -> AgentCapabilities;
382    async fn start(&mut self) -> AdapterResult<()>;
383    async fn send_prompt(&mut self, prompt: String) -> AdapterResult<()>;
384    async fn cancel(&mut self) -> AdapterResult<bool>;
385    async fn answer_permission(
386        &mut self,
387        request_id: String,
388        answer: PermissionAnswer,
389    ) -> AdapterResult<()>;
390    async fn set_mode(&mut self, mode: String) -> AdapterResult<()>;
391    async fn set_model(&mut self, _model: String) -> AdapterResult<()> {
392        Err(AdapterError::Unsupported("set_model"))
393    }
394    async fn reload(&mut self) -> AdapterResult<()>;
395    async fn stop(&mut self) -> AdapterResult<()>;
396    async fn next_event(&mut self) -> Option<AdapterResult<AgentEvent>>;
397}
398
399/// Preserve a stable CodeSwarm roster slot when an already-running adapter is
400/// moved to another logical position (for example, a roster reorder). Native
401/// protocol implementations keep their original slot internally, while this
402/// boundary rewrites the normalized event identity seen by the reducer.
403struct SlotMappedAdapter {
404    logical_slot: RosterSlot,
405    inner: Box<dyn AgentAdapter>,
406}
407
408impl std::fmt::Debug for SlotMappedAdapter {
409    fn fmt(&self, formatter: &mut std::fmt::Formatter<'_>) -> std::fmt::Result {
410        formatter
411            .debug_struct("SlotMappedAdapter")
412            .field("logical_slot", &self.logical_slot)
413            .field("inner_slot", &self.inner.slot())
414            .finish_non_exhaustive()
415    }
416}
417
418fn restored_history_event(event: AgentEvent) -> AgentEvent {
419    use crate::HistoryContent;
420    let (slot, content) = match event {
421        AgentEvent::UserText { slot, text } => (slot, HistoryContent::UserText(text)),
422        AgentEvent::Text { slot, text } => (slot, HistoryContent::Text(text)),
423        AgentEvent::Thought { slot, text } => (slot, HistoryContent::Thought(text)),
424        AgentEvent::Tool { slot, update } => (slot, HistoryContent::Tool(update)),
425        other => return other,
426    };
427    AgentEvent::History { slot, content }
428}
429
430fn map_event_slot(event: AgentEvent, slot: RosterSlot) -> AgentEvent {
431    match event {
432        AgentEvent::History { content, .. } => AgentEvent::History { slot, content },
433        AgentEvent::GoalUpdated { goal } => AgentEvent::GoalUpdated { goal },
434        AgentEvent::RosterUpdated { update } => AgentEvent::RosterUpdated { update },
435        AgentEvent::Ready { capabilities, .. } => AgentEvent::Ready { slot, capabilities },
436        AgentEvent::TurnStarted { .. } => AgentEvent::TurnStarted { slot },
437        AgentEvent::ModesReplaced {
438            modes,
439            current_mode,
440            ..
441        } => AgentEvent::ModesReplaced {
442            slot,
443            modes,
444            current_mode,
445        },
446        AgentEvent::ModeUpdated { current_mode, .. } => {
447            AgentEvent::ModeUpdated { slot, current_mode }
448        }
449        AgentEvent::ModelsReplaced {
450            config_id,
451            models,
452            current_model,
453            ..
454        } => AgentEvent::ModelsReplaced {
455            slot,
456            config_id,
457            models,
458            current_model,
459        },
460        AgentEvent::ModelUpdated { current_model, .. } => AgentEvent::ModelUpdated {
461            slot,
462            current_model,
463        },
464        AgentEvent::UserText { text, .. } => AgentEvent::UserText { slot, text },
465        AgentEvent::CommandsReplaced { commands, .. } => {
466            AgentEvent::CommandsReplaced { slot, commands }
467        }
468        AgentEvent::UsageUpdated { usage, .. } => AgentEvent::UsageUpdated { slot, usage },
469        AgentEvent::Text { text, .. } => AgentEvent::Text { slot, text },
470        AgentEvent::Thought { text, .. } => AgentEvent::Thought { slot, text },
471        AgentEvent::Tool { update, .. } => AgentEvent::Tool { slot, update },
472        AgentEvent::Permission { request, .. } => AgentEvent::Permission { slot, request },
473        AgentEvent::Terminal { event, .. } => AgentEvent::Terminal { slot, event },
474        AgentEvent::TurnComplete { .. } => AgentEvent::TurnComplete { slot },
475        AgentEvent::UsageLimitReached { detail, .. } => {
476            AgentEvent::UsageLimitReached { slot, detail }
477        }
478        AgentEvent::Failed {
479            started, detail, ..
480        } => AgentEvent::Failed {
481            slot,
482            started,
483            detail,
484        },
485    }
486}
487
488#[async_trait]
489impl AgentAdapter for SlotMappedAdapter {
490    fn slot(&self) -> RosterSlot {
491        self.logical_slot
492    }
493
494    fn display_name(&self) -> String {
495        self.inner.display_name()
496    }
497
498    fn session_id(&self) -> Option<String> {
499        self.inner.session_id()
500    }
501
502    fn protocol(&self) -> &'static str {
503        self.inner.protocol()
504    }
505
506    fn capabilities(&self) -> AgentCapabilities {
507        self.inner.capabilities()
508    }
509
510    async fn start(&mut self) -> AdapterResult<()> {
511        self.inner.start().await
512    }
513
514    async fn send_prompt(&mut self, prompt: String) -> AdapterResult<()> {
515        self.inner.send_prompt(prompt).await
516    }
517
518    async fn cancel(&mut self) -> AdapterResult<bool> {
519        self.inner.cancel().await
520    }
521
522    async fn answer_permission(
523        &mut self,
524        request_id: String,
525        answer: PermissionAnswer,
526    ) -> AdapterResult<()> {
527        self.inner.answer_permission(request_id, answer).await
528    }
529
530    async fn set_mode(&mut self, mode: String) -> AdapterResult<()> {
531        self.inner.set_mode(mode).await
532    }
533
534    async fn set_model(&mut self, model: String) -> AdapterResult<()> {
535        self.inner.set_model(model).await
536    }
537
538    async fn reload(&mut self) -> AdapterResult<()> {
539        self.inner.reload().await
540    }
541
542    async fn stop(&mut self) -> AdapterResult<()> {
543        self.inner.stop().await
544    }
545
546    async fn next_event(&mut self) -> Option<AdapterResult<AgentEvent>> {
547        let slot = self.logical_slot;
548        self.inner
549            .next_event()
550            .await
551            .map(|result| result.map(|event| map_event_slot(event, slot)))
552    }
553}
554
555/// Owns one adapter and feeds normalized events through the deterministic core
556/// reducer. The UI consumes effects and state snapshots.
557pub struct AdapterHost {
558    adapter: Box<dyn AgentAdapter>,
559    pub state: SessionState,
560    pub last_error: Option<String>,
561    event_log: Option<EventLog>,
562}
563
564impl std::fmt::Debug for AdapterHost {
565    fn fmt(&self, formatter: &mut std::fmt::Formatter<'_>) -> std::fmt::Result {
566        formatter
567            .debug_struct("AdapterHost")
568            .field("state", &self.state)
569            .field("last_error", &self.last_error)
570            .field("event_log", &self.event_log)
571            .finish_non_exhaustive()
572    }
573}
574
575impl AdapterHost {
576    pub fn new(adapter: Box<dyn AgentAdapter>, event_log: Option<EventLog>) -> Self {
577        let slot = adapter.slot();
578        Self {
579            adapter,
580            state: SessionState::new(slot.saturating_add(1)),
581            last_error: None,
582            event_log,
583        }
584    }
585
586    pub async fn start(&mut self) -> AdapterResult<()> {
587        self.adapter.start().await
588    }
589
590    pub async fn send_prompt(&mut self, prompt: String) -> AdapterResult<()> {
591        self.adapter.send_prompt(prompt).await
592    }
593
594    pub async fn cancel(&mut self) -> AdapterResult<bool> {
595        self.adapter.cancel().await
596    }
597
598    pub async fn answer_permission(
599        &mut self,
600        request_id: String,
601        answer: PermissionAnswer,
602    ) -> AdapterResult<()> {
603        self.adapter.answer_permission(request_id, answer).await
604    }
605
606    pub async fn set_mode(&mut self, mode: String) -> AdapterResult<()> {
607        self.adapter.set_mode(mode).await
608    }
609
610    pub async fn set_model(&mut self, model: String) -> AdapterResult<()> {
611        self.adapter.set_model(model).await
612    }
613
614    pub async fn reload(&mut self) -> AdapterResult<()> {
615        self.adapter.reload().await?;
616        let slot = self.adapter.slot();
617        if let Some(agent) = self.state.slots.get_mut(slot) {
618            agent.active = true;
619            agent.capabilities = self.adapter.capabilities();
620        }
621        self.last_error = None;
622        Ok(())
623    }
624
625    pub async fn stop(&mut self) -> AdapterResult<()> {
626        self.adapter.stop().await
627    }
628
629    pub async fn next_effects(&mut self) -> Option<AdapterResult<Vec<Effect>>> {
630        Some(self.next_update().await?.map(|update| update.effects))
631    }
632
633    pub async fn next_update(&mut self) -> Option<AdapterResult<HostUpdate>> {
634        let event = match self.adapter.next_event().await {
635            None => return None,
636            Some(Err(error)) => {
637                self.last_error = Some(error.to_string());
638                let slot = self.adapter.slot();
639                let failure = AgentEvent::Failed {
640                    slot,
641                    started: true,
642                    detail: error.to_string(),
643                };
644                let effects = reduce(&mut self.state, failure.clone());
645                return Some(Ok(HostUpdate {
646                    event: failure,
647                    effects,
648                }));
649            }
650            Some(Ok(event)) => event,
651        };
652        if let Some(log) = &self.event_log
653            && let Err(error) = log.append(&event)
654        {
655            return Some(Err(AdapterError::Transport(error.to_string())));
656        }
657        let effects = reduce(&mut self.state, event.clone());
658        Some(Ok(HostUpdate { event, effects }))
659    }
660
661    pub fn adapter(&self) -> &dyn AgentAdapter {
662        &*self.adapter
663    }
664
665    pub fn session_id(&self) -> Option<String> {
666        self.adapter.session_id()
667    }
668
669    /// Move this host to a new logical roster slot. The adapter process is not
670    /// restarted; only normalized event identities and reducer state move.
671    fn remap(self, logical_slot: RosterSlot) -> Self {
672        let old_slot = self.adapter.slot();
673        if old_slot == logical_slot {
674            return self;
675        }
676
677        let mut state = self.state;
678        if state.slots.len() <= logical_slot {
679            state
680                .slots
681                .resize(logical_slot.saturating_add(1), Default::default());
682        }
683        if let Some(agent) = state.slots.get(old_slot).cloned() {
684            state.slots[logical_slot] = agent;
685        }
686        if state.active_slot == Some(old_slot) {
687            state.active_slot = Some(logical_slot);
688        }
689        for (slot, _) in &mut state.queued_prompts {
690            if *slot == old_slot {
691                *slot = logical_slot;
692            }
693        }
694        for (slot, _) in &mut state.public_text {
695            if *slot == old_slot {
696                *slot = logical_slot;
697            }
698        }
699
700        Self {
701            adapter: Box::new(SlotMappedAdapter {
702                logical_slot,
703                inner: self.adapter,
704            }),
705            state,
706            last_error: self.last_error,
707            event_log: self.event_log,
708        }
709    }
710}
711
712/// Sequential multi-adapter runner. It intentionally never polls two
713/// adapters concurrently: the next prompt depends on the prior response.
714pub struct RelayHost {
715    goal: Option<crate::goal::Goal>,
716    hosts: Vec<AdapterHost>,
717    relay: Relay,
718    introduced: Vec<bool>,
719    roster_names: Vec<String>,
720    roster_identities: Vec<String>,
721    roster_launch_specs: Vec<(String, String)>,
722    desired_policy: String,
723    metadata_writer: Option<BufferedSessionMetadataStore>,
724    metadata_workspace: Option<String>,
725    dispatches: Vec<(RosterSlot, String)>,
726    event_sink: Option<Arc<dyn Fn(AgentEvent) + Send + Sync>>,
727    cancel_requested: Arc<AtomicBool>,
728    cancel_notify: Arc<Notify>,
729}
730
731/// A clonable signal used by a terminal control loop to interrupt the active
732/// relay turn without borrowing the relay while its adapter is being polled.
733#[derive(Clone, Debug)]
734pub struct RelayCancellation {
735    requested: Arc<AtomicBool>,
736    notify: Arc<Notify>,
737}
738
739/// A permission response delivered while a relay turn is still streaming.
740///
741/// Relay turns own the active adapter mutably, so permission answers must be
742/// consumed inside that turn rather than deferred by the outer coordinator.
743#[derive(Debug)]
744pub struct RelayPermissionAnswer {
745    pub slot: RosterSlot,
746    pub request_id: String,
747    pub answer: PermissionAnswer,
748}
749
750#[cfg(test)]
751const CANCEL_TIMEOUT: std::time::Duration = std::time::Duration::from_millis(250);
752#[cfg(not(test))]
753const CANCEL_TIMEOUT: std::time::Duration = std::time::Duration::from_secs(10);
754
755#[cfg(test)]
756const CANCEL_SETTLE_TIMEOUT: std::time::Duration = std::time::Duration::from_millis(20);
757#[cfg(not(test))]
758const CANCEL_SETTLE_TIMEOUT: std::time::Duration = std::time::Duration::from_secs(2);
759
760/// Bound third-party cancellation hooks so a broken adapter cannot freeze the
761/// terminal control loop.  Native and ACP adapters normally return promptly;
762/// the timeout is for custom adapters whose cancellation future may never
763/// resolve.
764async fn cancel_with_timeout(host: &mut AdapterHost) -> AdapterResult<bool> {
765    tokio::time::timeout(CANCEL_TIMEOUT, host.cancel())
766        .await
767        .map_err(|_| AdapterError::Transport("adapter cancellation timed out".into()))?
768}
769
770fn canonical_policy_id(policy: &str) -> &str {
771    match policy {
772        "plan" => "codeswarm:mode:plan",
773        "default" | "manual" => "codeswarm:mode:manual",
774        "accept-edits" => "codeswarm:mode:accept-edits",
775        "full-access" | "auto" | "autopilot" => "codeswarm:mode:full-access",
776        other => other,
777    }
778}
779
780async fn apply_policy_to_host(host: &mut AdapterHost, policy: &str) -> AdapterResult<()> {
781    if !host.adapter().capabilities().supports_modes {
782        return Ok(());
783    }
784    let policy_id = canonical_policy_id(policy);
785    let slot = host.adapter().slot();
786    let advertised = host
787        .state
788        .slots
789        .get(slot)
790        .map(|agent| agent.modes.as_slice())
791        .unwrap_or_default();
792    let native = if advertised.is_empty() {
793        match policy_id {
794            "codeswarm:mode:plan" => "plan".into(),
795            "codeswarm:mode:manual" => "default".into(),
796            "codeswarm:mode:accept-edits" => "accept-edits".into(),
797            "codeswarm:mode:full-access" => "full-access".into(),
798            other => other.into(),
799        }
800    } else {
801        crate::policy::resolve(policy_id, advertised)
802            .map(|mode| mode.id)
803            .ok_or(AdapterError::Unsupported(
804                "desired policy is unavailable for adapter",
805            ))?
806    };
807    host.set_mode(native).await
808}
809
810async fn refresh_mode_catalog(
811    host: &mut AdapterHost,
812    event_sink: &Option<Arc<dyn Fn(AgentEvent) + Send + Sync>>,
813) -> AdapterResult<bool> {
814    if !host.adapter().capabilities().supports_modes {
815        return Ok(false);
816    }
817    tokio::time::timeout(std::time::Duration::from_secs(2), async {
818        let mut ready_seen = false;
819        loop {
820            let update = host.next_update().await.ok_or_else(|| {
821                AdapterError::Transport("adapter ended before advertising modes".into())
822            })??;
823            let catalog_ready = matches!(update.event, AgentEvent::ModesReplaced { .. });
824            ready_seen |= matches!(update.event, AgentEvent::Ready { .. });
825            if let Some(sink) = event_sink {
826                sink(update.event);
827            }
828            if catalog_ready {
829                return Ok(ready_seen);
830            }
831        }
832    })
833    .await
834    .map_err(|_| AdapterError::Transport("adapter mode catalog timed out".into()))?
835}
836
837async fn refresh_adapter_startup(
838    host: &mut AdapterHost,
839    event_sink: &Option<Arc<dyn Fn(AgentEvent) + Send + Sync>>,
840) -> AdapterResult<()> {
841    let ready_seen = refresh_mode_catalog(host, event_sink).await?;
842    if ready_seen || !matches!(host.adapter().protocol(), "native" | "acp") {
843        return Ok(());
844    }
845    tokio::time::timeout(std::time::Duration::from_secs(2), async {
846        loop {
847            let update = host.next_update().await.ok_or_else(|| {
848                AdapterError::Transport("adapter ended before becoming ready".into())
849            })??;
850            let ready = matches!(update.event, AgentEvent::Ready { .. });
851            if let Some(sink) = event_sink {
852                sink(update.event);
853            }
854            if ready {
855                return Ok(());
856            }
857        }
858    })
859    .await
860    .map_err(|_| AdapterError::Transport("adapter ready handshake timed out".into()))?
861}
862
863fn public_context_speaker(name: &str) -> String {
864    let now = time::OffsetDateTime::now_local().unwrap_or_else(|_| time::OffsetDateTime::now_utc());
865    format!("{name} {:02}:{:02}", now.hour(), now.minute())
866}
867
868impl RelayCancellation {
869    pub fn request(&self) {
870        self.requested.store(true, Ordering::Release);
871        self.notify.notify_one();
872    }
873}
874
875impl std::fmt::Debug for RelayHost {
876    fn fmt(&self, formatter: &mut std::fmt::Formatter<'_>) -> std::fmt::Result {
877        formatter
878            .debug_struct("RelayHost")
879            .field("hosts", &self.hosts)
880            .field("relay", &self.relay)
881            .field("dispatches", &self.dispatches)
882            .field("event_sink", &self.event_sink.is_some())
883            .field(
884                "cancel_requested",
885                &self.cancel_requested.load(Ordering::Acquire),
886            )
887            .finish()
888    }
889}
890
891impl RelayHost {
892    pub fn new(hosts: Vec<AdapterHost>, max_rounds: usize) -> Result<Self, AdapterError> {
893        if hosts.is_empty() {
894            return Err(AdapterError::Unsupported("relay requires an adapter"));
895        }
896        Ok(Self {
897            relay: Relay::new(hosts.len(), max_rounds),
898            introduced: vec![false; hosts.len()],
899            roster_names: hosts
900                .iter()
901                .map(|host| host.adapter().display_name())
902                .collect(),
903            roster_identities: hosts
904                .iter()
905                .map(|host| host.adapter().display_name())
906                .collect(),
907            roster_launch_specs: Vec::new(),
908            desired_policy: crate::policy::DEFAULT_POLICY_ID.into(),
909            metadata_writer: None,
910            metadata_workspace: None,
911            hosts,
912            dispatches: Vec::new(),
913            goal: None,
914            event_sink: None,
915            cancel_requested: Arc::new(AtomicBool::new(false)),
916            cancel_notify: Arc::new(Notify::new()),
917        })
918    }
919
920    /// Send each normalized event to a client while a turn is being drained.
921    /// The callback runs synchronously on the relay task and should only
922    /// enqueue the event; expensive rendering must happen outside the callback.
923    pub fn set_event_sink<F>(&mut self, sink: F)
924    where
925        F: Fn(AgentEvent) + Send + Sync + 'static,
926    {
927        self.event_sink = Some(Arc::new(sink));
928    }
929
930    /// Install catalog-backed names for first-turn introductions. Direct
931    /// scripted/custom adapters retain deterministic `Agent N` fallbacks.
932    pub fn set_roster_names(&mut self, names: Vec<String>) {
933        if names.len() == self.hosts.len() {
934            self.roster_names = names;
935        }
936    }
937
938    /// Install catalog identities used by the launcher and persisted session
939    /// metadata. Names remain a separate display concern, so custom adapters
940    /// can retain friendly labels while still restoring by stable identity.
941    pub fn set_roster_identities(&mut self, identities: Vec<String>) {
942        if identities.len() == self.hosts.len() {
943            self.roster_identities = identities;
944        }
945    }
946
947    pub fn set_roster_launch_specs(&mut self, specs: Vec<(String, String)>) {
948        if specs.len() == self.hosts.len() {
949            self.roster_launch_specs = specs;
950        }
951    }
952
953    /// Attach a background metadata writer. Runtime changes enqueue complete
954    /// snapshots; no metadata filesystem work runs on the terminal thread.
955    pub fn set_session_metadata_writer(&mut self, writer: BufferedSessionMetadataStore) {
956        self.metadata_writer = Some(writer);
957    }
958
959    pub fn set_session_metadata_workspace(&mut self, workspace: impl Into<String>) {
960        self.metadata_workspace = Some(workspace.into());
961    }
962
963    /// Build the coordinator-owned session snapshot for the active roster.
964    pub fn session_metadata(&self) -> SessionMetadata {
965        let active = self.relay.active_slots().collect::<Vec<_>>();
966        let mut data = serde_json::Map::new();
967        data.insert(
968            "goal".into(),
969            serde_json::to_value(&self.goal).expect("goal serializes"),
970        );
971        if let Some(workspace) = &self.metadata_workspace {
972            data.insert("cwd".into(), serde_json::Value::String(workspace.clone()));
973        }
974        data.insert(
975            "title".into(),
976            serde_json::Value::String("CodeSwarm".into()),
977        );
978        data.insert(
979            "agents".into(),
980            serde_json::Value::Array(
981                active
982                    .into_iter()
983                    .filter_map(|slot| {
984                        let host = self.hosts.get(slot)?;
985                        let (protocol, command) = self.roster_launch_specs.get(slot)?;
986                        let mut agent = serde_json::Map::new();
987                        agent.insert(
988                            "name".into(),
989                            serde_json::Value::String(
990                                self.roster_names
991                                    .get(slot)
992                                    .cloned()
993                                    .unwrap_or_else(|| host.adapter().display_name()),
994                            ),
995                        );
996                        agent.insert(
997                            "identity".into(),
998                            serde_json::Value::String(
999                                self.roster_identities
1000                                    .get(slot)
1001                                    .cloned()
1002                                    .unwrap_or_else(|| host.adapter().display_name()),
1003                            ),
1004                        );
1005                        agent.insert(
1006                            "protocol".into(),
1007                            serde_json::Value::String(protocol.clone()),
1008                        );
1009                        agent.insert("command".into(), serde_json::Value::String(command.clone()));
1010                        agent.insert(
1011                            "supports_load_session".into(),
1012                            serde_json::Value::Bool(
1013                                host.adapter().capabilities().supports_session_load,
1014                            ),
1015                        );
1016                        if let Some(session_id) = host.session_id() {
1017                            agent
1018                                .insert("session_id".into(), serde_json::Value::String(session_id));
1019                        }
1020                        Some(serde_json::Value::Object(agent))
1021                    })
1022                    .collect(),
1023            ),
1024        );
1025        SessionMetadata::new(data)
1026    }
1027
1028    fn queue_session_metadata(&self) -> AdapterResult<()> {
1029        if let Some(writer) = &self.metadata_writer {
1030            writer
1031                .write(self.session_metadata())
1032                .map_err(|error| AdapterError::Transport(error.to_string()))?;
1033        }
1034        Ok(())
1035    }
1036
1037    pub fn restore_goal(&mut self, goal: Option<crate::goal::Goal>) {
1038        self.goal = goal;
1039        if let Some(sink) = &self.event_sink {
1040            sink(AgentEvent::GoalUpdated {
1041                goal: self.goal.clone(),
1042            });
1043        }
1044    }
1045
1046    pub fn apply_goal(
1047        &mut self,
1048        command: crate::goal::GoalCommand,
1049    ) -> Result<Option<String>, String> {
1050        let task = crate::goal::apply(&mut self.goal, command)?;
1051        if let Some(sink) = &self.event_sink {
1052            sink(AgentEvent::GoalUpdated {
1053                goal: self.goal.clone(),
1054            });
1055        }
1056        self.queue_session_metadata()
1057            .map_err(|error| error.to_string())?;
1058        Ok(task)
1059    }
1060
1061    pub fn roster_names(&self) -> &[String] {
1062        &self.roster_names
1063    }
1064
1065    pub fn session_ids(&self) -> Vec<Option<String>> {
1066        self.hosts.iter().map(AdapterHost::session_id).collect()
1067    }
1068
1069    pub async fn start(&mut self) -> AdapterResult<()> {
1070        let event_sink = self.event_sink.clone();
1071        let startups = self.hosts.iter_mut().map(|host| {
1072            let event_sink = event_sink.clone();
1073            async move {
1074                host.start().await?;
1075                refresh_adapter_startup(host, &event_sink).await
1076            }
1077        });
1078        let results = futures::future::join_all(startups).await;
1079        if let Some(error) = results.into_iter().find_map(Result::err) {
1080            // Startup is transactional even though independent adapters are
1081            // warmed concurrently. Every host gets a cleanup attempt.
1082            for host in &mut self.hosts {
1083                let _ = host.stop().await;
1084            }
1085            return Err(error);
1086        }
1087        if let Err(error) = self
1088            .set_policy(crate::policy::DEFAULT_POLICY_ID.into())
1089            .await
1090        {
1091            for host in &mut self.hosts {
1092                let _ = host.stop().await;
1093            }
1094            return Err(error);
1095        }
1096        let _ = self.queue_session_metadata();
1097        Ok(())
1098    }
1099
1100    pub async fn stop(&mut self) -> AdapterResult<()> {
1101        // A third-party adapter can fail during shutdown (for example after
1102        // its transport has already disappeared). Always give every roster
1103        // member a chance to clean up, then return the first error so callers
1104        // still get an actionable failure without leaking later processes.
1105        let mut first_error = None;
1106        for host in &mut self.hosts {
1107            if let Err(error) = host.stop().await
1108                && first_error.is_none()
1109            {
1110                first_error = Some(error);
1111            }
1112        }
1113        if let Some(writer) = &self.metadata_writer
1114            && let Err(error) = writer.flush()
1115            && first_error.is_none()
1116        {
1117            first_error = Some(AdapterError::Transport(error.to_string()));
1118        }
1119        first_error.map_or(Ok(()), Err)
1120    }
1121
1122    /// Forward a normalized permission answer to the adapter owning `slot`.
1123    /// This keeps protocol-specific response framing out of the relay and UI.
1124    pub async fn answer_permission(
1125        &mut self,
1126        slot: RosterSlot,
1127        request_id: String,
1128        answer: PermissionAnswer,
1129    ) -> AdapterResult<()> {
1130        let host = self
1131            .hosts
1132            .get_mut(slot)
1133            .ok_or_else(|| AdapterError::Transport("permission target is missing".into()))?;
1134        host.answer_permission(request_id, answer).await
1135    }
1136
1137    pub fn pause(&mut self) {
1138        self.relay.pause();
1139    }
1140
1141    pub fn resume(&mut self) {
1142        self.relay.resume();
1143    }
1144
1145    /// Select how future non-direct turns are routed. Queued prompts and the
1146    /// shared context remain intact when a user changes this setting.
1147    pub fn set_strategy(&mut self, strategy: CollaborationStrategy) {
1148        self.relay.set_strategy(strategy);
1149    }
1150
1151    pub fn strategy(&self) -> CollaborationStrategy {
1152        self.relay.strategy()
1153    }
1154
1155    pub fn roster_identity(&self, slot: RosterSlot) -> Option<&str> {
1156        self.roster_identities.get(slot).map(String::as_str)
1157    }
1158
1159    pub fn active_slot_for_identity(&self, identity: &str) -> Option<RosterSlot> {
1160        self.relay.active_slots().find(|slot| {
1161            self.roster_identity(*slot)
1162                .is_some_and(|candidate| candidate.eq_ignore_ascii_case(identity))
1163        })
1164    }
1165
1166    /// Apply one semantic mode to every active adapter that advertises mode
1167    /// support. Native adapters may translate the policy to their own IDs.
1168    pub async fn set_mode(&mut self, mode: String) -> AdapterResult<()> {
1169        let active = self.relay.active_slots().collect::<Vec<_>>();
1170        for slot in active {
1171            let Some(host) = self.hosts.get_mut(slot) else {
1172                continue;
1173            };
1174            if host.adapter().capabilities().supports_modes {
1175                host.set_mode(mode.clone()).await?;
1176            }
1177        }
1178        Ok(())
1179    }
1180
1181    pub async fn set_model(&mut self, slot: RosterSlot, model: String) -> AdapterResult<()> {
1182        let host = self
1183            .hosts
1184            .get_mut(slot)
1185            .ok_or_else(|| AdapterError::Transport("model target is missing".into()))?;
1186        if !host.adapter().capabilities().supports_models {
1187            return Err(AdapterError::Unsupported("set_model"));
1188        }
1189        host.set_model(model.clone()).await?;
1190        if let Some(sink) = &self.event_sink {
1191            sink(AgentEvent::ModelUpdated {
1192                slot,
1193                current_model: model,
1194            });
1195        }
1196        Ok(())
1197    }
1198
1199    /// Translate a CodeSwarm semantic policy to each adapter's currently
1200    /// advertised native mode, falling back to conventional IDs before the
1201    /// first catalog update arrives.
1202    pub async fn set_policy(&mut self, policy: String) -> AdapterResult<()> {
1203        self.desired_policy = canonical_policy_id(&policy).to_owned();
1204        let desired_policy = self.desired_policy.clone();
1205        let mut first_error = None;
1206        let active = self.relay.active_slots().collect::<Vec<_>>();
1207        for active_slot in active {
1208            let Some(host) = self.hosts.get_mut(active_slot) else {
1209                continue;
1210            };
1211            if let Err(error) = apply_policy_to_host(host, &desired_policy).await
1212                && first_error.is_none()
1213            {
1214                first_error = Some(error);
1215            }
1216        }
1217        first_error.map_or(Ok(()), Err)
1218    }
1219
1220    pub async fn reload(&mut self, slot: RosterSlot) -> AdapterResult<()> {
1221        let desired_policy = self.desired_policy.clone();
1222        let event_sink = self.event_sink.clone();
1223        let host = self
1224            .hosts
1225            .get_mut(slot)
1226            .ok_or_else(|| AdapterError::Transport("reload target is missing".into()))?;
1227        host.reload().await?;
1228        refresh_adapter_startup(host, &event_sink).await?;
1229        apply_policy_to_host(host, &desired_policy).await?;
1230        if let Some(introduced) = self.introduced.get_mut(slot) {
1231            *introduced = false;
1232        }
1233        self.relay
1234            .reactivate(slot)
1235            .map_err(|error| AdapterError::Transport(error.into()))?;
1236        let _ = self.queue_session_metadata();
1237        if let Some(sink) = &self.event_sink {
1238            sink(AgentEvent::RosterUpdated {
1239                update: RosterUpdate::Reloaded { slot },
1240            });
1241        }
1242        let _ = self.relay.clear_limited(slot);
1243        Ok(())
1244    }
1245
1246    /// Stop and tombstone an agent while preserving its stable roster slot.
1247    pub async fn drop_agent(&mut self, slot: RosterSlot) -> AdapterResult<()> {
1248        self.relay
1249            .drop_agent(slot)
1250            .map_err(|error| AdapterError::Transport(error.into()))?;
1251        let _stop_result = if let Some(host) = self.hosts.get_mut(slot) {
1252            host.stop().await
1253        } else {
1254            Ok(())
1255        };
1256        // Persist the tombstone even when a third-party process reports a
1257        // shutdown error; otherwise the next launch can resurrect a slot the
1258        // user explicitly removed.
1259        let _ = self.queue_session_metadata();
1260        if let Some(sink) = &self.event_sink {
1261            sink(AgentEvent::RosterUpdated {
1262                update: RosterUpdate::Dropped { slot },
1263            });
1264        }
1265        Ok(())
1266    }
1267
1268    /// Start and append a new adapter in the next stable roster slot. The
1269    /// adapter is started before it becomes visible to the relay, so a failed
1270    /// add cannot leave a half-active slot behind.
1271    pub async fn add_agent(
1272        &mut self,
1273        mut host: AdapterHost,
1274        name: impl Into<String>,
1275        identity: impl Into<String>,
1276        command: impl Into<String>,
1277    ) -> AdapterResult<RosterSlot> {
1278        let slot = self.hosts.len();
1279        if host.adapter().slot() != slot {
1280            return Err(AdapterError::Transport(
1281                "new adapter slot must append after the existing roster".into(),
1282            ));
1283        }
1284        if let Err(error) = host.start().await {
1285            let _ = host.stop().await;
1286            return Err(error);
1287        }
1288        if let Err(error) = refresh_adapter_startup(&mut host, &self.event_sink).await {
1289            let _ = host.stop().await;
1290            return Err(error);
1291        }
1292        if let Err(error) = apply_policy_to_host(&mut host, &self.desired_policy).await {
1293            let _ = host.stop().await;
1294            return Err(error);
1295        }
1296        let capabilities = host.adapter().capabilities();
1297        self.hosts.push(host);
1298        self.relay.add_agent();
1299        self.introduced.push(false);
1300        let name = name.into();
1301        let identity = identity.into();
1302        self.roster_names.push(name.clone());
1303        self.roster_identities.push(identity.clone());
1304        self.roster_launch_specs
1305            .push((self.hosts[slot].adapter().protocol().into(), command.into()));
1306        let _ = self.queue_session_metadata();
1307        if let Some(sink) = &self.event_sink {
1308            sink(AgentEvent::RosterUpdated {
1309                update: RosterUpdate::Added {
1310                    slot,
1311                    name,
1312                    identity,
1313                },
1314            });
1315            sink(AgentEvent::Ready { slot, capabilities });
1316        }
1317        Ok(slot)
1318    }
1319
1320    /// Reorder two live adapters without restarting either process. The
1321    /// logical slot wrapper keeps normalized events, reducer state, and
1322    /// permission routing aligned with the new roster order.
1323    pub fn swap_agents(&mut self, first: RosterSlot, second: RosterSlot) -> AdapterResult<()> {
1324        if first == second {
1325            return Ok(());
1326        }
1327        if first >= self.hosts.len() || second >= self.hosts.len() {
1328            return Err(AdapterError::Transport("roster slot out of range".into()));
1329        }
1330        self.relay
1331            .swap_agents(first, second)
1332            .map_err(|error| AdapterError::Transport(error.into()))?;
1333        let low = first.min(second);
1334        let high = first.max(second);
1335        let high_host = self.hosts.remove(high);
1336        let low_host = self.hosts.remove(low);
1337        self.hosts.insert(low, high_host.remap(low));
1338        self.hosts.insert(high, low_host.remap(high));
1339        self.roster_names.swap(first, second);
1340        self.roster_identities.swap(first, second);
1341        if self.roster_launch_specs.len() == self.hosts.len() {
1342            self.roster_launch_specs.swap(first, second);
1343        }
1344        self.introduced.swap(first, second);
1345        if let Some(sink) = &self.event_sink {
1346            sink(AgentEvent::RosterUpdated {
1347                update: RosterUpdate::Swapped { first, second },
1348            });
1349            sink(AgentEvent::Ready {
1350                slot: first,
1351                capabilities: self.hosts[first].adapter().capabilities(),
1352            });
1353            sink(AgentEvent::Ready {
1354                slot: second,
1355                capabilities: self.hosts[second].adapter().capabilities(),
1356            });
1357        }
1358        let _ = self.queue_session_metadata();
1359        Ok(())
1360    }
1361
1362    pub fn relay(&self) -> &Relay {
1363        &self.relay
1364    }
1365
1366    pub fn next_slot(&self) -> RosterSlot {
1367        self.hosts.len()
1368    }
1369
1370    pub fn relay_mut(&mut self) -> &mut Relay {
1371        &mut self.relay
1372    }
1373
1374    pub fn cancellation(&self) -> RelayCancellation {
1375        RelayCancellation {
1376            requested: Arc::clone(&self.cancel_requested),
1377            notify: Arc::clone(&self.cancel_notify),
1378        }
1379    }
1380
1381    /// Prompts sent to adapters, in causal dispatch order. This is useful to
1382    /// diagnostics and makes the context-routing boundary observable without
1383    /// exposing protocol-specific adapter internals.
1384    pub fn dispatches(&self) -> &[(RosterSlot, String)] {
1385        &self.dispatches
1386    }
1387
1388    pub async fn run_turn(
1389        &mut self,
1390        task: impl Into<String>,
1391        first_slot: RosterSlot,
1392    ) -> AdapterResult<RelayDecision> {
1393        self.run_turn_inner(task.into(), first_slot, None).await
1394    }
1395
1396    pub async fn run_turn_with_permissions(
1397        &mut self,
1398        task: impl Into<String>,
1399        first_slot: RosterSlot,
1400        permissions: &mut tokio::sync::mpsc::UnboundedReceiver<RelayPermissionAnswer>,
1401    ) -> AdapterResult<RelayDecision> {
1402        self.run_turn_inner(task.into(), first_slot, Some(permissions))
1403            .await
1404    }
1405
1406    async fn run_turn_inner(
1407        &mut self,
1408        task: String,
1409        first_slot: RosterSlot,
1410        mut permissions: Option<&mut tokio::sync::mpsc::UnboundedReceiver<RelayPermissionAnswer>>,
1411    ) -> AdapterResult<RelayDecision> {
1412        let decision = self.relay.begin(task, first_slot);
1413        let RelayDecision::Dispatch {
1414            slot,
1415            prompt,
1416            direct,
1417            can_stop,
1418        } = &decision
1419        else {
1420            return Ok(decision);
1421        };
1422        let speaker_name = self
1423            .roster_names
1424            .get(*slot)
1425            .cloned()
1426            .unwrap_or_else(|| self.hosts[*slot].adapter().display_name());
1427        let unseen = self.relay.unseen_context(*slot);
1428        // A non-direct prompt with text is a new public human turn. Record it
1429        // after collecting the recipient's existing unseen context so that
1430        // the selected agent receives the prompt once, while every peer gets
1431        // it through the shared journal on its next turn. Recording before
1432        // adapter I/O also preserves the job when the selected turn is
1433        // cancelled.
1434        if !*direct && !prompt.trim().is_empty() {
1435            if self.relay.shared_task().is_none() {
1436                self.relay.set_shared_task(prompt.clone());
1437            }
1438            self.relay
1439                .record_public(public_context_speaker("User"), prompt.clone());
1440        }
1441        let prompt = if unseen.is_empty() {
1442            prompt.clone()
1443        } else {
1444            format!("{prompt}\n\nPublic updates:\n{unseen}")
1445        };
1446        let introduction = if !self.introduced.get(*slot).copied().unwrap_or(false) {
1447            let self_name = speaker_name.clone();
1448            let roster = self
1449                .relay
1450                .active_slots()
1451                .map(|candidate| {
1452                    let name = self
1453                        .roster_names
1454                        .get(candidate)
1455                        .cloned()
1456                        .unwrap_or_else(|| self.hosts[candidate].adapter().display_name());
1457                    let role = if candidate == *slot { " — you" } else { "" };
1458                    format!("{}. {name}{role}", candidate.saturating_add(1))
1459                })
1460                .collect::<Vec<_>>();
1461            let shared_task = self
1462                .relay
1463                .shared_task()
1464                .filter(|task| *task != prompt)
1465                .map(|task| format!("\n\nShared task:\n{task}"))
1466                .unwrap_or_default();
1467            format!(
1468                "You are {self_name}.\nCodeSwarm roster (ordered):\n{}\n\
1469                 Turns relay sequentially through this roster. Treat the user request as the shared task; use timestamped public updates as conversation context.{shared_task}",
1470                roster.join("\n")
1471            )
1472        } else {
1473            String::new()
1474        };
1475        let prompt = format!(
1476            "{introduction}{separator}{prompt}\n\n{}",
1477            if *can_stop {
1478                format!(
1479                    "You are reviewing another agent. If no meaningful correction is needed,\nreply with an optional emoji followed by {STOP_TOKEN} on the final line.\nCodeSwarm hides the token and ends this review batch."
1480                )
1481            } else {
1482                format!(
1483                    "Do not use {STOP_TOKEN} on this turn. Your response must be offered to another agent for review."
1484                )
1485            },
1486            separator = if introduction.is_empty() { "" } else { "\n\n" },
1487        );
1488        let event_sink = self.event_sink.clone();
1489        let host = self
1490            .hosts
1491            .get_mut(*slot)
1492            .ok_or_else(|| AdapterError::Transport("relay selected missing adapter".into()))?;
1493        let prompt = crate::goal::prompt(self.goal.as_ref(), &prompt);
1494        if let Err(error) = host.send_prompt(prompt.clone()).await {
1495            let limited =
1496                report_relay_failure(&mut self.relay, &event_sink, *slot, true, error.to_string());
1497            if limited {
1498                self.relay.finish(*slot, *direct, false);
1499            }
1500            let _ = self.queue_session_metadata();
1501            if limited {
1502                return Ok(decision);
1503            }
1504            return Err(error);
1505        }
1506        if let Some(sink) = &self.event_sink {
1507            sink(AgentEvent::TurnStarted { slot: *slot });
1508        }
1509        if let Some(introduced) = self.introduced.get_mut(*slot) {
1510            *introduced = true;
1511        }
1512        self.dispatches.push((*slot, prompt));
1513        let mut response = String::new();
1514        let mut emitted_text = 0usize;
1515        let completion_event = loop {
1516            if self.cancel_requested.swap(false, Ordering::AcqRel) {
1517                if let Err(error) = cancel_with_timeout(host).await {
1518                    let limited = report_relay_failure(
1519                        &mut self.relay,
1520                        &event_sink,
1521                        *slot,
1522                        true,
1523                        error.to_string(),
1524                    );
1525                    if limited {
1526                        self.relay.finish(*slot, *direct, false);
1527                    }
1528                    let _ = self.queue_session_metadata();
1529                    if limited {
1530                        return Ok(decision);
1531                    }
1532                    return Err(error);
1533                }
1534                return Err(AdapterError::Transport("relay turn cancelled".into()));
1535            }
1536            let update = tokio::select! {
1537                update = host.next_update() => match update {
1538                    Some(Ok(update)) => update,
1539                    Some(Err(error)) => {
1540                        let limited = report_relay_failure(
1541                            &mut self.relay,
1542                            &event_sink,
1543                            *slot,
1544                            true,
1545                            error.to_string(),
1546                        );
1547                        if limited {
1548                            self.relay.finish(*slot, *direct, false);
1549                        }
1550                        let _ = self.queue_session_metadata();
1551                        if limited {
1552                            return Ok(decision);
1553                        }
1554                        return Err(error);
1555                    }
1556                    None => {
1557                        let error = AdapterError::Transport("adapter ended during turn".into());
1558                        let limited = report_relay_failure(
1559                            &mut self.relay,
1560                            &event_sink,
1561                            *slot,
1562                            true,
1563                            error.to_string(),
1564                        );
1565                        if limited {
1566                            self.relay.finish(*slot, *direct, false);
1567                        }
1568                        let _ = self.queue_session_metadata();
1569                        if limited {
1570                            return Ok(decision);
1571                        }
1572                        return Err(error);
1573                    }
1574                },
1575                _ = self.cancel_notify.notified() => {
1576                    if !self.cancel_requested.swap(false, Ordering::AcqRel) {
1577                        continue;
1578                    }
1579                    if let Err(error) = cancel_with_timeout(host).await {
1580                        let limited = report_relay_failure(
1581                            &mut self.relay,
1582                            &event_sink,
1583                            *slot,
1584                            true,
1585                            error.to_string(),
1586                        );
1587                        if limited {
1588                            self.relay.finish(*slot, *direct, false);
1589                        }
1590                        let _ = self.queue_session_metadata();
1591                        if limited {
1592                            return Ok(decision);
1593                        }
1594                        return Err(error);
1595                    }
1596                    return Err(AdapterError::Transport("relay turn cancelled".into()));
1597                },
1598                permission = async {
1599                    match permissions.as_mut() {
1600                        Some(receiver) => receiver.recv().await,
1601                        None => std::future::pending().await,
1602                    }
1603                } => {
1604                    let Some(permission) = permission else {
1605                        permissions = None;
1606                        continue;
1607                    };
1608                    if permission.slot != *slot {
1609                        return Err(AdapterError::Transport(
1610                            "permission response targets an inactive relay slot".into(),
1611                        ));
1612                    }
1613                    host.answer_permission(permission.request_id, permission.answer).await?;
1614                    continue;
1615                },
1616            };
1617            match &update.event {
1618                AgentEvent::Text { text, .. } => response.push_str(text),
1619                AgentEvent::TurnComplete { .. } => {
1620                    let visible_response = response.replace(STOP_TOKEN, "");
1621                    let visible_start = emitted_text.min(visible_response.len());
1622                    let visible_start = floor_char_boundary(&visible_response, visible_start);
1623                    if visible_start < visible_response.len()
1624                        && let Some(sink) = &self.event_sink
1625                    {
1626                        sink(AgentEvent::Text {
1627                            slot: *slot,
1628                            text: visible_response[visible_start..].to_owned(),
1629                        });
1630                    }
1631                    self.cancel_requested.store(false, Ordering::Release);
1632                    break update.event.clone();
1633                }
1634                AgentEvent::Failed {
1635                    started, detail, ..
1636                } => {
1637                    let limited = report_relay_failure(
1638                        &mut self.relay,
1639                        &event_sink,
1640                        *slot,
1641                        *started,
1642                        detail.clone(),
1643                    );
1644                    if limited {
1645                        self.relay.finish(*slot, *direct, false);
1646                    }
1647                    let _ = self.queue_session_metadata();
1648                    if limited {
1649                        return Ok(decision);
1650                    }
1651                    return Err(AdapterError::Transport(detail.clone()));
1652                }
1653                _ => {}
1654            }
1655            if let AgentEvent::Text { .. } = &update.event {
1656                // Only a possible split marker needs to wait for another chunk.
1657                let visible_response = response.replace(STOP_TOKEN, "");
1658                let visible_end = stop_token_visible_end(&visible_response);
1659                if emitted_text < visible_end {
1660                    if let Some(sink) = &self.event_sink {
1661                        sink(AgentEvent::Text {
1662                            slot: *slot,
1663                            text: visible_response[emitted_text..visible_end].to_owned(),
1664                        });
1665                    }
1666                    emitted_text = visible_end;
1667                }
1668            } else if let Some(sink) = &self.event_sink {
1669                sink(update.event.clone());
1670            }
1671        };
1672        let (response, requested_stop) = strip_stop_token(&response);
1673        let response = response.replace(STOP_TOKEN, "");
1674        let accepted_stop = requested_stop && *can_stop;
1675        let needs_stop_acknowledgment = accepted_stop && response.is_empty();
1676        let response = if needs_stop_acknowledgment {
1677            DEFAULT_STOP_ACKNOWLEDGMENT.to_owned()
1678        } else {
1679            response
1680        };
1681        // A token-only reviewer response is intentionally hidden, but the
1682        // UI still needs the documented visible acknowledgement. Streamed
1683        // text is normally emitted above; this synthetic acknowledgement is
1684        // the one case where there was no visible adapter chunk to forward.
1685        if needs_stop_acknowledgment && let Some(sink) = &self.event_sink {
1686            sink(AgentEvent::Text {
1687                slot: *slot,
1688                text: response.clone(),
1689            });
1690        }
1691        if let Some(sink) = &self.event_sink {
1692            sink(completion_event);
1693        }
1694        // A provider plan that ran out mid-turn routes future turns around
1695        // the agent instead of back into the exhausted quota.
1696        if is_usage_limit_response(&response) {
1697            let detail = response.clone();
1698            let _ = self.relay.mark_limited(*slot);
1699            // A normal finish: the ring cursor advances past the limited
1700            // agent so the batch continues with a healthy peer.
1701            self.relay.finish(*slot, *direct, false);
1702            self.queue_session_metadata()?;
1703            if let Some(sink) = &self.event_sink {
1704                sink(AgentEvent::UsageLimitReached {
1705                    slot: *slot,
1706                    detail,
1707                });
1708            }
1709            return Ok(decision);
1710        }
1711        if !*direct && !response.is_empty() {
1712            self.relay
1713                .record_public(public_context_speaker(&speaker_name), response);
1714        }
1715        self.relay.mark_context_seen(*slot);
1716        self.relay.finish(*slot, *direct, accepted_stop);
1717        self.queue_session_metadata()?;
1718        Ok(decision)
1719    }
1720}
1721
1722fn report_relay_failure(
1723    relay: &mut Relay,
1724    event_sink: &Option<Arc<dyn Fn(AgentEvent) + Send + Sync>>,
1725    slot: RosterSlot,
1726    started: bool,
1727    detail: String,
1728) -> bool {
1729    // A quota rejection is not a crash: route around the agent without
1730    // tombstoning the slot so a recharge can restore it.
1731    if is_usage_limit_response(&detail) {
1732        let _ = relay.mark_limited(slot);
1733        if let Some(sink) = event_sink {
1734            sink(AgentEvent::UsageLimitReached { slot, detail });
1735        }
1736        return true;
1737    }
1738    let _ = relay.tombstone(slot);
1739    if let Some(sink) = event_sink {
1740        sink(AgentEvent::Failed {
1741            slot,
1742            started,
1743            detail,
1744        });
1745    }
1746    false
1747}
1748
1749/// Deterministic in-memory adapter used for contract and relay tests.
1750#[derive(Debug)]
1751pub struct ScriptedAdapter {
1752    slot: RosterSlot,
1753    capabilities: AgentCapabilities,
1754    events: VecDeque<AdapterResult<AgentEvent>>,
1755    prompts: Vec<String>,
1756}
1757
1758impl ScriptedAdapter {
1759    pub fn new(
1760        slot: RosterSlot,
1761        capabilities: AgentCapabilities,
1762        events: impl IntoIterator<Item = AgentEvent>,
1763    ) -> Self {
1764        Self {
1765            slot,
1766            capabilities,
1767            events: events.into_iter().map(Ok).collect(),
1768            prompts: Vec::new(),
1769        }
1770    }
1771
1772    pub fn prompts(&self) -> &[String] {
1773        &self.prompts
1774    }
1775}
1776
1777#[async_trait]
1778impl AgentAdapter for ScriptedAdapter {
1779    fn slot(&self) -> RosterSlot {
1780        self.slot
1781    }
1782
1783    fn capabilities(&self) -> AgentCapabilities {
1784        self.capabilities.clone()
1785    }
1786
1787    async fn start(&mut self) -> AdapterResult<()> {
1788        Ok(())
1789    }
1790
1791    async fn send_prompt(&mut self, prompt: String) -> AdapterResult<()> {
1792        self.prompts.push(prompt);
1793        Ok(())
1794    }
1795
1796    async fn cancel(&mut self) -> AdapterResult<bool> {
1797        Ok(self.capabilities.supports_cancel)
1798    }
1799
1800    async fn answer_permission(
1801        &mut self,
1802        _request_id: String,
1803        _answer: PermissionAnswer,
1804    ) -> AdapterResult<()> {
1805        if self.capabilities.supports_permissions {
1806            Ok(())
1807        } else {
1808            Err(AdapterError::Unsupported("permission answer"))
1809        }
1810    }
1811
1812    async fn set_mode(&mut self, _mode: String) -> AdapterResult<()> {
1813        if self.capabilities.supports_modes {
1814            Ok(())
1815        } else {
1816            Err(AdapterError::Unsupported("set_mode"))
1817        }
1818    }
1819
1820    async fn reload(&mut self) -> AdapterResult<()> {
1821        Ok(())
1822    }
1823
1824    async fn stop(&mut self) -> AdapterResult<()> {
1825        Ok(())
1826    }
1827
1828    async fn next_event(&mut self) -> Option<AdapterResult<AgentEvent>> {
1829        self.events.pop_front()
1830    }
1831}
1832
1833/// A direct stream-JSON adapter for Antigravity. It deliberately does not
1834/// pretend to be ACP; it translates its documented events into core events.
1835#[derive(Debug)]
1836pub struct AgyAdapter {
1837    slot: RosterSlot,
1838    cwd: PathBuf,
1839    command: String,
1840    mode: String,
1841    mode_policy: String,
1842    session_id: Option<String>,
1843    child: Option<Child>,
1844    sender: mpsc::Sender<AdapterResult<AgentEvent>>,
1845    receiver: mpsc::Receiver<AdapterResult<AgentEvent>>,
1846    /// Antigravity announces its conversation id in the `init` event. Keep it
1847    /// outside the stream task so the next prompt can resume the same native
1848    /// conversation without making the adapter reader/UI share a borrow.
1849    announced_session: Arc<Mutex<Option<String>>>,
1850    cancel_requested: Arc<AtomicBool>,
1851}
1852
1853impl AgyAdapter {
1854    pub fn new(slot: RosterSlot, cwd: PathBuf, command: impl Into<String>) -> Self {
1855        let (sender, receiver) = mpsc::channel(256);
1856        Self {
1857            slot,
1858            cwd,
1859            command: command.into(),
1860            mode: "default".into(),
1861            mode_policy: "agy:full-access".into(),
1862            session_id: None,
1863            child: None,
1864            sender,
1865            receiver,
1866            announced_session: Arc::new(Mutex::new(None)),
1867            cancel_requested: Arc::new(AtomicBool::new(false)),
1868        }
1869    }
1870
1871    pub fn with_session_id(
1872        slot: RosterSlot,
1873        cwd: PathBuf,
1874        command: impl Into<String>,
1875        session_id: impl Into<String>,
1876    ) -> Self {
1877        let mut adapter = Self::new(slot, cwd, command);
1878        adapter.session_id = Some(session_id.into());
1879        adapter
1880    }
1881
1882    fn modes() -> Vec<Mode> {
1883        vec![
1884            Mode {
1885                id: "agy:full-access".into(),
1886                label: "Auto pilot".into(),
1887            },
1888            Mode {
1889                id: "agy:manual".into(),
1890                label: "Manual".into(),
1891            },
1892            Mode {
1893                id: "accept-edits".into(),
1894                label: "Accept Edits".into(),
1895            },
1896            Mode {
1897                id: "plan".into(),
1898                label: "Plan".into(),
1899            },
1900        ]
1901    }
1902
1903    async fn emit(&self, event: AdapterResult<AgentEvent>) {
1904        let _ = self.sender.send(event).await;
1905    }
1906}
1907
1908#[async_trait]
1909impl AgentAdapter for AgyAdapter {
1910    fn slot(&self) -> RosterSlot {
1911        self.slot
1912    }
1913
1914    fn session_id(&self) -> Option<String> {
1915        self.session_id.clone()
1916    }
1917
1918    fn protocol(&self) -> &'static str {
1919        "native"
1920    }
1921
1922    fn capabilities(&self) -> AgentCapabilities {
1923        AgentCapabilities {
1924            supports_cancel: true,
1925            supports_modes: true,
1926            supports_permissions: false,
1927            supports_terminals: true,
1928            supports_session_load: true,
1929            supports_models: false,
1930        }
1931    }
1932
1933    async fn start(&mut self) -> AdapterResult<()> {
1934        self.cancel_requested.store(false, Ordering::Release);
1935        self.emit(Ok(AgentEvent::Ready {
1936            slot: self.slot,
1937            capabilities: self.capabilities(),
1938        }))
1939        .await;
1940        self.emit(Ok(AgentEvent::ModesReplaced {
1941            slot: self.slot,
1942            modes: Self::modes(),
1943            current_mode: Some(self.mode_policy.clone()),
1944        }))
1945        .await;
1946        Ok(())
1947    }
1948
1949    async fn send_prompt(&mut self, prompt: String) -> AdapterResult<()> {
1950        if self.child.is_some() {
1951            return Err(AdapterError::Transport(
1952                "agent is already handling a turn".into(),
1953            ));
1954        }
1955        if self.session_id.is_none()
1956            && let Ok(session) = self.announced_session.lock()
1957        {
1958            self.session_id = session.clone();
1959        }
1960        self.cancel_requested.store(false, Ordering::Release);
1961        let (program, args) = parse_command_line(&self.command)
1962            .map_err(|error| AdapterError::Spawn(format!("invalid agent command: {error}")))?;
1963        let mut command = Command::new(program);
1964        isolate_process_group(&mut command);
1965        command
1966            .args(args)
1967            .arg("--print")
1968            .arg(prompt)
1969            .arg("--print-timeout")
1970            // Allow day-long work; cancellation remains under user control.
1971            .arg("1440m")
1972            .arg("--output-format")
1973            .arg("stream-json")
1974            .current_dir(&self.cwd)
1975            .env("CODESWARM_CWD", &self.cwd)
1976            .stdout(Stdio::piped())
1977            .stderr(Stdio::piped());
1978        if let Some(session_id) = &self.session_id {
1979            command.arg("--conversation").arg(session_id);
1980        }
1981        if self.mode != "default" {
1982            command.arg("--mode").arg(&self.mode);
1983        }
1984        let mut child = command
1985            .spawn()
1986            .map_err(|error| AdapterError::Spawn(error.to_string()))?;
1987        let stdout = match child.stdout.take() {
1988            Some(stdout) => stdout,
1989            None => {
1990                let _ = terminate_child(&mut child).await;
1991                return Err(AdapterError::Transport("agent has no stdout".into()));
1992            }
1993        };
1994        let stderr = match child.stderr.take() {
1995            Some(stderr) => stderr,
1996            None => {
1997                let _ = terminate_child(&mut child).await;
1998                return Err(AdapterError::Transport("agent has no stderr".into()));
1999            }
2000        };
2001        let sender = self.sender.clone();
2002        let slot = self.slot;
2003        let announced_session = Arc::clone(&self.announced_session);
2004        let cancel_requested = Arc::clone(&self.cancel_requested);
2005        tokio::spawn(async move {
2006            let stderr_task = tokio::spawn(async move {
2007                const MAX_STDERR: usize = 32 * 1024;
2008                let mut stderr = BufReader::new(stderr);
2009                let mut bytes = Vec::new();
2010                let mut chunk = [0_u8; 4096];
2011                while let Ok(count) = stderr.read(&mut chunk).await {
2012                    if count == 0 {
2013                        break;
2014                    }
2015                    bytes.extend_from_slice(&chunk[..count]);
2016                    if bytes.len() > MAX_STDERR {
2017                        let keep_from = bytes.len() - MAX_STDERR;
2018                        bytes.drain(..keep_from);
2019                    }
2020                }
2021                String::from_utf8_lossy(&bytes).trim().to_owned()
2022            });
2023            let mut lines = BufReader::new(stdout).lines();
2024            let mut result: Option<Value> = None;
2025            let mut streamed_response = false;
2026            while let Ok(Some(line)) = lines.next_line().await {
2027                let value = match serde_json::from_str::<Value>(&line) {
2028                    Ok(value) => value,
2029                    Err(_) => {
2030                        // Native stream-json can contain diagnostic junk on
2031                        // stdout. Match the Python adapter's tolerant stream
2032                        // behavior and wait for the final result instead of
2033                        // turning one malformed line into a dead turn.
2034                        continue;
2035                    }
2036                };
2037                if value.get("event").and_then(Value::as_str) == Some("init")
2038                    && let Some(session_id) = value
2039                        .get("conversation_id")
2040                        .or_else(|| value.get("conversationId"))
2041                        .and_then(Value::as_str)
2042                        .filter(|id| !id.is_empty())
2043                    && let Ok(mut announced) = announced_session.lock()
2044                {
2045                    *announced = Some(session_id.to_owned());
2046                }
2047                if value.get("event").and_then(Value::as_str) == Some("result") {
2048                    result = value.get("result").cloned();
2049                }
2050                match parse_agy_value(slot, &value) {
2051                    Ok(Some(event)) => {
2052                        if matches!(event, AgentEvent::Text { .. }) {
2053                            streamed_response = true;
2054                        }
2055                        if sender.send(Ok(event)).await.is_err() {
2056                            break;
2057                        }
2058                    }
2059                    Ok(None) => {}
2060                    Err(error) => {
2061                        let _ = sender.send(Err(error)).await;
2062                    }
2063                }
2064            }
2065            let stderr = stderr_task.await.ok().unwrap_or_default();
2066            let succeeded = cancel_requested.load(Ordering::Acquire)
2067                || result
2068                    .as_ref()
2069                    .and_then(|result| result.get("status"))
2070                    .and_then(Value::as_str)
2071                    == Some("SUCCESS");
2072            if succeeded {
2073                // Some native stream-json wrappers emit only lifecycle events
2074                // and put the complete answer in the final result object. The
2075                // Python adapter surfaced that answer; do the same, while
2076                // avoiding duplication when token chunks were already sent.
2077                if !streamed_response
2078                    && let Some(response) = result
2079                        .as_ref()
2080                        .and_then(|result| result.get("response"))
2081                        .and_then(Value::as_str)
2082                        .filter(|response| !response.is_empty())
2083                {
2084                    let _ = sender
2085                        .send(Ok(AgentEvent::Text {
2086                            slot,
2087                            text: response.to_owned(),
2088                        }))
2089                        .await;
2090                }
2091                let _ = sender.send(Ok(AgentEvent::TurnComplete { slot })).await;
2092            } else {
2093                let detail = result
2094                    .as_ref()
2095                    .and_then(|result| result.get("error"))
2096                    .and_then(Value::as_str)
2097                    .filter(|detail| !detail.is_empty())
2098                    .map(str::to_owned)
2099                    .or_else(|| (!stderr.is_empty()).then_some(stderr))
2100                    .unwrap_or_else(|| "native stream ended before a successful result".into());
2101                let _ = sender
2102                    .send(Ok(AgentEvent::Failed {
2103                        slot,
2104                        started: true,
2105                        detail,
2106                    }))
2107                    .await;
2108            }
2109        });
2110        self.child = Some(child);
2111        Ok(())
2112    }
2113
2114    async fn cancel(&mut self) -> AdapterResult<bool> {
2115        self.cancel_requested.store(true, Ordering::Release);
2116        let Some(mut child) = self.child.take() else {
2117            return Ok(false);
2118        };
2119        // `Child` does not reap itself when dropped. Awaiting wait after the
2120        // kill keeps repeated prompts from accumulating zombies, especially
2121        // when cancellation happens before the stream reader observes EOF.
2122        terminate_child(&mut child).await?;
2123        let _ = tokio::time::timeout(CANCEL_SETTLE_TIMEOUT, async {
2124            while let Some(event) = self.receiver.recv().await {
2125                if matches!(
2126                    event,
2127                    Ok(AgentEvent::TurnComplete { .. } | AgentEvent::Failed { .. })
2128                ) {
2129                    break;
2130                }
2131            }
2132        })
2133        .await;
2134        Ok(true)
2135    }
2136
2137    async fn answer_permission(
2138        &mut self,
2139        _request_id: String,
2140        _answer: PermissionAnswer,
2141    ) -> AdapterResult<()> {
2142        Err(AdapterError::Unsupported("permission answer"))
2143    }
2144
2145    async fn set_mode(&mut self, mode: String) -> AdapterResult<()> {
2146        let (mode, mode_policy) = match mode.as_str() {
2147            "full-access" | "codeswarm:mode:full-access" | "auto" | "autopilot" => {
2148                ("default".to_owned(), "agy:full-access".to_owned())
2149            }
2150            "codeswarm:mode:plan" | "readonly" | "plan" => ("plan".to_owned(), "plan".to_owned()),
2151            "codeswarm:mode:accept-edits" | "acceptedits" | "accept-edits" => {
2152                ("accept-edits".to_owned(), "accept-edits".to_owned())
2153            }
2154            "codeswarm:mode:manual" | "manual" | "ask" | "default" => {
2155                ("default".to_owned(), "agy:manual".to_owned())
2156            }
2157            "agy:full-access" => ("default".to_owned(), "agy:full-access".to_owned()),
2158            "agy:manual" => ("default".to_owned(), "agy:manual".to_owned()),
2159            _ => return Err(AdapterError::Unsupported("requested Agy mode")),
2160        };
2161        self.mode = mode;
2162        self.mode_policy = mode_policy.clone();
2163        self.emit(Ok(AgentEvent::ModesReplaced {
2164            slot: self.slot,
2165            modes: Self::modes(),
2166            current_mode: Some(mode_policy),
2167        }))
2168        .await;
2169        Ok(())
2170    }
2171
2172    async fn reload(&mut self) -> AdapterResult<()> {
2173        self.stop().await?;
2174        self.start().await
2175    }
2176
2177    async fn stop(&mut self) -> AdapterResult<()> {
2178        let _ = self.cancel().await?;
2179        Ok(())
2180    }
2181
2182    async fn next_event(&mut self) -> Option<AdapterResult<AgentEvent>> {
2183        let event = self.receiver.recv().await;
2184        if matches!(event.as_ref(), Some(Ok(AgentEvent::TurnComplete { .. })))
2185            && self.session_id.is_none()
2186            && let Ok(session) = self.announced_session.lock()
2187        {
2188            self.session_id = session.clone();
2189        }
2190        if matches!(event.as_ref(), Some(Ok(AgentEvent::TurnComplete { .. })))
2191            && let Some(mut child) = self.child.take()
2192        {
2193            let _ = child.wait().await;
2194        }
2195        event
2196    }
2197}
2198
2199#[cfg(test)]
2200#[cfg_attr(not(test), allow(dead_code))]
2201fn parse_agy_line(slot: RosterSlot, line: &str) -> AdapterResult<Option<AgentEvent>> {
2202    let value: Value =
2203        serde_json::from_str(line).map_err(|error| AdapterError::Protocol(error.to_string()))?;
2204    parse_agy_value(slot, &value)
2205}
2206
2207fn parse_agy_value(slot: RosterSlot, value: &Value) -> AdapterResult<Option<AgentEvent>> {
2208    let event = value.get("event").and_then(Value::as_str);
2209    if let Some(terminal) = parse_terminal_event(value, event) {
2210        return Ok(Some(AgentEvent::Terminal {
2211            slot,
2212            event: terminal,
2213        }));
2214    }
2215    match event {
2216        Some("step_update") => {
2217            let Some(update) = value.get("step_update") else {
2218                return Ok(None);
2219            };
2220            let is_response = update
2221                .get("step_type")
2222                .and_then(Value::as_str)
2223                .is_some_and(|kind| kind == "agent_response");
2224            let text = update.get("text_delta").and_then(Value::as_str);
2225            let response = is_response
2226                .then(|| text.map(str::to_owned))
2227                .flatten()
2228                .filter(|text| !text.is_empty())
2229                .map(|text| AgentEvent::Text { slot, text });
2230            Ok(response.or_else(|| parse_agy_tool(slot, value)))
2231        }
2232        _ => Ok(None),
2233    }
2234}
2235
2236fn parse_agy_tool(slot: RosterSlot, value: &Value) -> Option<AgentEvent> {
2237    let update = value.get("step_update")?;
2238    if update.get("step_type")?.as_str()? != "tool" {
2239        return None;
2240    }
2241    let step_index = update.get("step_index")?.as_i64()?;
2242    let title = update
2243        .get("tool_name")
2244        .and_then(Value::as_str)
2245        .unwrap_or("Tool call")
2246        .replace('_', " ");
2247    let status = match update.get("state").and_then(Value::as_str) {
2248        Some("DONE") => ToolStatus::Completed,
2249        Some("FAILED") => ToolStatus::Failed,
2250        Some("ACTIVE") => ToolStatus::Running,
2251        _ => ToolStatus::Pending,
2252    };
2253    let detail = update
2254        .get("tool_info")
2255        .and_then(|info| info.get("output"))
2256        .and_then(Value::as_str)
2257        .map(str::to_owned);
2258    Some(AgentEvent::Tool {
2259        slot,
2260        update: ToolUpdate {
2261            id: format!("agy-tool-{step_index}"),
2262            title,
2263            status,
2264            detail,
2265        },
2266    })
2267}
2268
2269/// Stdio ACP transport. Protocol-specific response handling belongs here,
2270/// keeping JSON-RPC framing outside the core and terminal renderer.
2271#[derive(Debug)]
2272pub struct AcpAdapter {
2273    slot: RosterSlot,
2274    program: String,
2275    args: Vec<String>,
2276    cwd: PathBuf,
2277    child: Option<Child>,
2278    reader: Option<BufReader<ChildStdout>>,
2279    capabilities: AgentCapabilities,
2280    modes: Vec<Mode>,
2281    models: Vec<Mode>,
2282    model_config_id: Option<String>,
2283    session_id: Option<String>,
2284    next_request_id: u64,
2285    prompt_request_id: Option<u64>,
2286    queued_events: VecDeque<AdapterResult<AgentEvent>>,
2287    stderr_task: Option<tokio::task::JoinHandle<String>>,
2288    terminals: BTreeMap<String, TerminalProcess>,
2289    next_terminal_id: u64,
2290}
2291
2292impl AcpAdapter {
2293    pub fn new(
2294        slot: RosterSlot,
2295        cwd: PathBuf,
2296        program: impl Into<String>,
2297        args: Vec<String>,
2298    ) -> Self {
2299        Self {
2300            slot,
2301            program: program.into(),
2302            args,
2303            cwd,
2304            child: None,
2305            reader: None,
2306            capabilities: AgentCapabilities::default(),
2307            modes: Vec::new(),
2308            models: Vec::new(),
2309            model_config_id: None,
2310            session_id: None,
2311            next_request_id: 1,
2312            prompt_request_id: None,
2313            queued_events: VecDeque::new(),
2314            stderr_task: None,
2315            terminals: BTreeMap::new(),
2316            next_terminal_id: 1,
2317        }
2318    }
2319
2320    pub fn with_session_id(
2321        slot: RosterSlot,
2322        cwd: PathBuf,
2323        program: impl Into<String>,
2324        args: Vec<String>,
2325        session_id: impl Into<String>,
2326    ) -> Self {
2327        let mut adapter = Self::new(slot, cwd, program, args);
2328        adapter.session_id = Some(session_id.into());
2329        adapter
2330    }
2331
2332    async fn request(&mut self, method: &str, params: Value) -> AdapterResult<Value> {
2333        self.request_with_timeout(method, params, std::time::Duration::from_secs(30))
2334            .await
2335    }
2336
2337    async fn request_with_timeout(
2338        &mut self,
2339        method: &str,
2340        params: Value,
2341        deadline: std::time::Duration,
2342    ) -> AdapterResult<Value> {
2343        tokio::time::timeout(deadline, self.request_inner(method, params))
2344            .await
2345            .map_err(|_| {
2346                AdapterError::Transport(format!(
2347                    "ACP {method} timed out; reload the agent to retry"
2348                ))
2349            })?
2350    }
2351
2352    async fn request_inner(&mut self, method: &str, params: Value) -> AdapterResult<Value> {
2353        let request_id = self.next_request_id;
2354        self.next_request_id += 1;
2355        self.write_json(serde_json::json!({
2356            "jsonrpc": "2.0",
2357            "id": request_id,
2358            "method": method,
2359            "params": params,
2360        }))
2361        .await?;
2362        loop {
2363            let line = self.read_line().await?;
2364            let value: Value = match serde_json::from_str(&line) {
2365                Ok(value) => value,
2366                Err(_) => {
2367                    // Keep the transport alive when a peer writes a stray
2368                    // diagnostic line. This is common with CLI wrappers and
2369                    // matches the baseline client's tolerant stream loop.
2370                    continue;
2371                }
2372            };
2373            if self.reject_empty_permission_request(&value).await? {
2374                continue;
2375            }
2376            if self.handle_client_request(&value).await? {
2377                continue;
2378            }
2379            if value
2380                .get("id")
2381                .is_some_and(|id| rpc_id_to_string(id) == request_id.to_string())
2382            {
2383                if let Some(error) = value.get("error") {
2384                    return Err(AdapterError::Protocol(error.to_string()));
2385                }
2386                return value
2387                    .get("result")
2388                    .cloned()
2389                    .ok_or_else(|| AdapterError::Protocol("response has no result".into()));
2390            }
2391            if let Some(event) = parse_acp_notification(self.slot, &line)? {
2392                let event = if method == "session/load" {
2393                    restored_history_event(event)
2394                } else {
2395                    event
2396                };
2397                self.queued_events.push_back(Ok(event));
2398            }
2399        }
2400    }
2401
2402    async fn write_json(&mut self, value: Value) -> AdapterResult<()> {
2403        let child = self
2404            .child
2405            .as_mut()
2406            .ok_or_else(|| AdapterError::Transport("ACP agent is not running".into()))?;
2407        let stdin = child
2408            .stdin
2409            .as_mut()
2410            .ok_or_else(|| AdapterError::Transport("ACP agent has no stdin".into()))?;
2411        stdin
2412            .write_all(value.to_string().as_bytes())
2413            .await
2414            .map_err(|error| AdapterError::Transport(error.to_string()))?;
2415        stdin
2416            .write_all(b"\n")
2417            .await
2418            .map_err(|error| AdapterError::Transport(error.to_string()))
2419    }
2420
2421    /// ACP permission requests are JSON-RPC requests, not fire-and-forget
2422    /// notifications. An empty option list is invalid and must be answered
2423    /// with an error so the peer does not wait forever for a decision. This is
2424    /// the same validation performed by the Python ACP server.
2425    async fn reject_empty_permission_request(&mut self, value: &Value) -> AdapterResult<bool> {
2426        if value.get("method").and_then(Value::as_str) != Some("session/request_permission")
2427            || value.get("id").is_none()
2428        {
2429            return Ok(false);
2430        }
2431        let valid = value
2432            .get("params")
2433            .and_then(|params| params.get("options"))
2434            .and_then(Value::as_array)
2435            .is_some_and(|options| !options.is_empty());
2436        if valid {
2437            return Ok(false);
2438        }
2439        self.write_json(serde_json::json!({
2440            "jsonrpc": "2.0",
2441            "id": value.get("id").cloned().unwrap_or(Value::Null),
2442            "error": {
2443                "code": -32602,
2444                "message": "Permission request requires at least one option",
2445            },
2446        }))
2447        .await?;
2448        Ok(true)
2449    }
2450
2451    fn workspace_path(&self, path: &str) -> Result<PathBuf, String> {
2452        let root = self
2453            .cwd
2454            .canonicalize()
2455            .map_err(|error| format!("unable to resolve workspace: {error}"))?;
2456        let requested = Path::new(path);
2457        let candidate = if requested.is_absolute() {
2458            requested.to_path_buf()
2459        } else {
2460            root.join(requested)
2461        };
2462        let resolved = if !candidate.exists() {
2463            let parent = candidate
2464                .parent()
2465                .ok_or_else(|| "file path has no parent".to_owned())?
2466                .canonicalize()
2467                .map_err(|error| format!("unable to resolve parent directory: {error}"))?;
2468            parent.join(
2469                candidate
2470                    .file_name()
2471                    .ok_or_else(|| "file path has no filename".to_owned())?,
2472            )
2473        } else {
2474            candidate
2475                .canonicalize()
2476                .map_err(|error| format!("unable to resolve file path: {error}"))?
2477        };
2478        if !resolved.starts_with(&root) {
2479            return Err("file path is outside the project".into());
2480        }
2481        Ok(resolved)
2482    }
2483
2484    fn read_workspace_text(
2485        &self,
2486        path: &str,
2487        line: Option<i64>,
2488        limit: Option<i64>,
2489    ) -> Result<String, String> {
2490        if line.is_some_and(|line| line < 1) {
2491            return Err("line must be positive".into());
2492        }
2493        if limit.is_some_and(|limit| limit < 0) {
2494            return Err("limit must not be negative".into());
2495        }
2496        let path = self.workspace_path(path)?;
2497        let mut bytes = Vec::new();
2498        let mut source = match std::fs::File::open(path) {
2499            Ok(source) => source,
2500            Err(error) if error.kind() == std::io::ErrorKind::NotFound => return Ok(String::new()),
2501            Err(error) => return Err(error.to_string()),
2502        };
2503        source
2504            .by_ref()
2505            .take((MAX_FILE_READ_BYTES as u64).saturating_add(1))
2506            .read_to_end(&mut bytes)
2507            .map_err(|error| error.to_string())?;
2508        bytes.truncate(MAX_FILE_READ_BYTES);
2509        let text = String::from_utf8_lossy(&bytes);
2510        if line.is_none() && limit.is_none() {
2511            return Ok(text.into_owned());
2512        }
2513        let start = line.map_or(0, |line| line as usize - 1);
2514        let limit = limit.unwrap_or(i64::MAX) as usize;
2515        let selected = text
2516            .split_inclusive('\n')
2517            .skip(start)
2518            .take(limit)
2519            .collect::<String>();
2520        if line.is_some() {
2521            Ok(selected.trim_end_matches('\n').to_owned())
2522        } else {
2523            Ok(selected)
2524        }
2525    }
2526
2527    fn write_workspace_text(&self, params: &Value) -> Result<(), String> {
2528        let path = params
2529            .get("path")
2530            .and_then(Value::as_str)
2531            .filter(|path| !path.is_empty())
2532            .ok_or("path must be a non-empty string")?;
2533        let content = params
2534            .get("content")
2535            .and_then(Value::as_str)
2536            .ok_or("content must be a string")?;
2537        let path = self.workspace_path(path)?;
2538        std::fs::write(path, content).map_err(|error| error.to_string())
2539    }
2540
2541    async fn terminal_create(&mut self, params: &Value) -> Result<Value, String> {
2542        let command = params
2543            .get("command")
2544            .and_then(Value::as_str)
2545            .filter(|command| !command.trim().is_empty())
2546            .ok_or_else(|| "terminal command is required".to_owned())?;
2547        let cwd = params.get("cwd").and_then(Value::as_str).unwrap_or(".");
2548        let cwd = self.workspace_path(cwd)?;
2549        if !cwd.is_dir() {
2550            return Err("terminal cwd is not a directory".into());
2551        }
2552        let mut process = Command::new(command);
2553        isolate_process_group(&mut process);
2554        if let Some(args) = params.get("args").and_then(Value::as_array) {
2555            process.args(args.iter().filter_map(Value::as_str));
2556        }
2557        process
2558            .current_dir(&cwd)
2559            .stdin(Stdio::null())
2560            .stdout(Stdio::piped())
2561            .stderr(Stdio::piped());
2562        if let Some(env) = params.get("env") {
2563            if let Some(entries) = env.as_array() {
2564                for entry in entries {
2565                    if let (Some(name), Some(value)) = (
2566                        entry.get("name").and_then(Value::as_str),
2567                        entry.get("value").and_then(Value::as_str),
2568                    ) {
2569                        process.env(name, value);
2570                    }
2571                }
2572            } else if let Some(entries) = env.as_object() {
2573                for (name, value) in entries {
2574                    if let Some(value) = value.as_str() {
2575                        process.env(name, value);
2576                    }
2577                }
2578            }
2579        }
2580        let mut child = process.spawn().map_err(|error| error.to_string())?;
2581        let stdout = child.stdout.take();
2582        let stderr = child.stderr.take();
2583        let (Some(stdout), Some(stderr)) = (stdout, stderr) else {
2584            let _ = terminate_child(&mut child).await;
2585            return Err("terminal has no output pipes".into());
2586        };
2587        let output = Arc::new(Mutex::new(Vec::new()));
2588        let truncated = Arc::new(AtomicBool::new(false));
2589        let output_readers = Arc::new(AtomicUsize::new(2));
2590        let output_limit = params
2591            .get("outputByteLimit")
2592            .and_then(Value::as_u64)
2593            .map_or(MAX_TERMINAL_OUTPUT_BYTES, |limit| {
2594                usize::try_from(limit)
2595                    .unwrap_or(MAX_TERMINAL_OUTPUT_BYTES)
2596                    .min(MAX_TERMINAL_OUTPUT_BYTES)
2597            });
2598        tokio::spawn(drain_terminal_output(
2599            stdout,
2600            Arc::clone(&output),
2601            Arc::clone(&truncated),
2602            Arc::clone(&output_readers),
2603            output_limit,
2604        ));
2605        tokio::spawn(drain_terminal_output(
2606            stderr,
2607            Arc::clone(&output),
2608            Arc::clone(&truncated),
2609            Arc::clone(&output_readers),
2610            output_limit,
2611        ));
2612        let id = format!("terminal-{}", self.next_terminal_id);
2613        self.next_terminal_id = self.next_terminal_id.saturating_add(1);
2614        let state = TerminalProcess {
2615            child: Arc::new(AsyncMutex::new(Some(child))),
2616            output,
2617            truncated,
2618            output_readers,
2619        };
2620        self.terminals.insert(id.clone(), state);
2621        self.queued_events.push_back(Ok(AgentEvent::Terminal {
2622            slot: self.slot,
2623            event: TerminalEvent::Created {
2624                id: id.clone(),
2625                command: std::iter::once(command)
2626                    .chain(
2627                        params
2628                            .get("args")
2629                            .and_then(Value::as_array)
2630                            .into_iter()
2631                            .flatten()
2632                            .filter_map(Value::as_str),
2633                    )
2634                    .collect::<Vec<_>>()
2635                    .join(" "),
2636            },
2637        }));
2638        Ok(serde_json::json!({"terminalId": id}))
2639    }
2640
2641    async fn terminal_output(&mut self, id: &str) -> Result<Value, String> {
2642        let terminal = self
2643            .terminals
2644            .get(id)
2645            .ok_or_else(|| "terminal not found".to_owned())?
2646            .clone();
2647        let output = terminal
2648            .output
2649            .lock()
2650            .map(|bytes| String::from_utf8_lossy(&bytes).into_owned())
2651            .unwrap_or_default();
2652        let exit_code = terminal.exit_code().await;
2653        self.queued_events.push_back(Ok(AgentEvent::Terminal {
2654            slot: self.slot,
2655            event: TerminalEvent::Output {
2656                id: id.to_owned(),
2657                text: output.clone(),
2658            },
2659        }));
2660        let mut response = serde_json::json!({
2661            "output": output,
2662            "truncated": terminal.truncated.load(Ordering::Acquire),
2663        });
2664        if let Some(code) = exit_code {
2665            response["exitStatus"] = serde_json::json!({"exitCode": code});
2666        }
2667        Ok(response)
2668    }
2669
2670    async fn terminal_wait(&mut self, id: &str) -> Result<Value, String> {
2671        let terminal = self
2672            .terminals
2673            .get(id)
2674            .ok_or_else(|| "terminal not found".to_owned())?
2675            .clone();
2676        let exit_code = terminal.wait().await;
2677        self.queued_events.push_back(Ok(AgentEvent::Terminal {
2678            slot: self.slot,
2679            event: TerminalEvent::Exited {
2680                id: id.to_owned(),
2681                code: exit_code.unwrap_or(-1),
2682            },
2683        }));
2684        Ok(serde_json::json!({"exitCode": exit_code, "signal": Value::Null}))
2685    }
2686
2687    /// Handle requests initiated by an ACP agent against the client. File
2688    /// access is mediated through the configured workspace root; unsupported
2689    /// requests receive a JSON-RPC error instead of hanging the agent.
2690    async fn handle_client_request(&mut self, value: &Value) -> AdapterResult<bool> {
2691        let Some(method) = value.get("method").and_then(Value::as_str) else {
2692            return Ok(false);
2693        };
2694        let Some(id) = value.get("id").cloned() else {
2695            return Ok(false);
2696        };
2697        // Permission requests are consumed by the normalized event parser and
2698        // answered later through the focused UI action, not here.
2699        if method == "session/request_permission" {
2700            return Ok(false);
2701        }
2702        let params = value.get("params").cloned().unwrap_or(Value::Null);
2703        let response = match method {
2704            "fs/read_text_file" => {
2705                let path = params.get("path").and_then(Value::as_str).unwrap_or("");
2706                let line = params.get("line").and_then(Value::as_i64);
2707                let limit = params.get("limit").and_then(Value::as_i64);
2708                match self.read_workspace_text(path, line, limit) {
2709                    Ok(content) => serde_json::json!({
2710                        "jsonrpc": "2.0",
2711                        "id": id,
2712                        "result": {"content": content},
2713                    }),
2714                    Err(message) => serde_json::json!({
2715                        "jsonrpc": "2.0",
2716                        "id": id,
2717                        "error": {"code": -32602, "message": message},
2718                    }),
2719                }
2720            }
2721            "fs/write_text_file" => {
2722                let result = self.write_workspace_text(&params);
2723                match result {
2724                    Ok(()) => serde_json::json!({"jsonrpc": "2.0", "id": id, "result": {}}),
2725                    Err(message) => serde_json::json!({
2726                        "jsonrpc": "2.0",
2727                        "id": id,
2728                        "error": {"code": -32602, "message": message},
2729                    }),
2730                }
2731            }
2732            "terminal/create" => match self.terminal_create(&params).await {
2733                Ok(result) => serde_json::json!({"jsonrpc": "2.0", "id": id, "result": result}),
2734                Err(message) => serde_json::json!({
2735                    "jsonrpc": "2.0",
2736                    "id": id,
2737                    "error": {"code": -32602, "message": message},
2738                }),
2739            },
2740            "terminal/output" => {
2741                let terminal_id = params
2742                    .get("terminalId")
2743                    .and_then(Value::as_str)
2744                    .unwrap_or("");
2745                match self.terminal_output(terminal_id).await {
2746                    Ok(result) => serde_json::json!({"jsonrpc": "2.0", "id": id, "result": result}),
2747                    Err(message) => serde_json::json!({
2748                        "jsonrpc": "2.0",
2749                        "id": id,
2750                        "error": {"code": -32602, "message": message},
2751                    }),
2752                }
2753            }
2754            "terminal/wait_for_exit" => {
2755                let terminal_id = params
2756                    .get("terminalId")
2757                    .and_then(Value::as_str)
2758                    .unwrap_or("");
2759                match self.terminal_wait(terminal_id).await {
2760                    Ok(result) => serde_json::json!({"jsonrpc": "2.0", "id": id, "result": result}),
2761                    Err(message) => serde_json::json!({
2762                        "jsonrpc": "2.0",
2763                        "id": id,
2764                        "error": {"code": -32602, "message": message},
2765                    }),
2766                }
2767            }
2768            "terminal/kill" => {
2769                let terminal_id = params
2770                    .get("terminalId")
2771                    .and_then(Value::as_str)
2772                    .unwrap_or("");
2773                if let Some(terminal) = self.terminals.get(terminal_id) {
2774                    terminal.kill().await;
2775                    serde_json::json!({"jsonrpc": "2.0", "id": id, "result": {}})
2776                } else {
2777                    serde_json::json!({
2778                        "jsonrpc": "2.0",
2779                        "id": id,
2780                        "error": {"code": -32602, "message": "terminal not found"},
2781                    })
2782                }
2783            }
2784            "terminal/release" => {
2785                let terminal_id = params
2786                    .get("terminalId")
2787                    .and_then(Value::as_str)
2788                    .unwrap_or("");
2789                if let Some(terminal) = self.terminals.remove(terminal_id) {
2790                    terminal.stop().await;
2791                    self.queued_events.push_back(Ok(AgentEvent::Terminal {
2792                        slot: self.slot,
2793                        event: TerminalEvent::Released {
2794                            id: terminal_id.to_owned(),
2795                        },
2796                    }));
2797                    serde_json::json!({"jsonrpc": "2.0", "id": id, "result": {}})
2798                } else {
2799                    serde_json::json!({
2800                        "jsonrpc": "2.0",
2801                        "id": id,
2802                        "error": {"code": -32602, "message": "terminal not found"},
2803                    })
2804                }
2805            }
2806            _ => serde_json::json!({
2807                "jsonrpc": "2.0",
2808                "id": id,
2809                "error": {"code": -32601, "message": format!("unsupported client method: {method}")},
2810            }),
2811        };
2812        self.write_json(response).await?;
2813        Ok(true)
2814    }
2815
2816    async fn read_line(&mut self) -> AdapterResult<String> {
2817        let reader = self
2818            .reader
2819            .as_mut()
2820            .ok_or_else(|| AdapterError::Transport("ACP agent has no stdout".into()))?;
2821        read_bounded_line(reader).await
2822    }
2823
2824    async fn start(&mut self) -> AdapterResult<()> {
2825        // Starting an adapter twice must never orphan the first transport.
2826        if self.child.is_some() {
2827            self.stop().await?;
2828        }
2829        let mut command = Command::new(&self.program);
2830        isolate_process_group(&mut command);
2831        command
2832            .args(&self.args)
2833            .current_dir(&self.cwd)
2834            .stdin(Stdio::piped())
2835            .stdout(Stdio::piped())
2836            .stderr(Stdio::piped())
2837            .env("CODESWARM_CWD", &self.cwd);
2838        if self.program.to_ascii_lowercase().contains("gemini")
2839            || self
2840                .args
2841                .iter()
2842                .any(|arg| arg.to_ascii_lowercase().contains("gemini"))
2843        {
2844            command.env("GEMINI_TELEMETRY_ENABLED", "false");
2845        }
2846        let mut child = command
2847            .spawn()
2848            .map_err(|error| AdapterError::Spawn(error.to_string()))?;
2849        let stdout = match child.stdout.take() {
2850            Some(stdout) => stdout,
2851            None => {
2852                let _ = terminate_child(&mut child).await;
2853                return Err(AdapterError::Transport("ACP agent has no stdout".into()));
2854            }
2855        };
2856        let stderr = match child.stderr.take() {
2857            Some(stderr) => stderr,
2858            None => {
2859                let _ = terminate_child(&mut child).await;
2860                return Err(AdapterError::Transport("ACP agent has no stderr".into()));
2861            }
2862        };
2863        self.child = Some(child);
2864        self.reader = Some(BufReader::new(stdout));
2865        self.stderr_task = Some(tokio::spawn(drain_bounded(stderr, 32 * 1024)));
2866
2867        let initialize = match self
2868            .request(
2869                "initialize",
2870                serde_json::json!({
2871                    "protocolVersion": 1,
2872                    "clientCapabilities": {
2873                        "fs": {"readTextFile": true, "writeTextFile": true},
2874                        "terminal": true,
2875                    },
2876                    "clientInfo": {
2877                        "name": "CodeSwarm",
2878                        "title": "CodeSwarm",
2879                        "version": env!("CARGO_PKG_VERSION"),
2880                    },
2881                }),
2882            )
2883            .await
2884        {
2885            Ok(value) => value,
2886            Err(error) => {
2887                let _ = self.stop().await;
2888                return Err(error);
2889            }
2890        };
2891        let agent_capabilities = initialize
2892            .get("agentCapabilities")
2893            .cloned()
2894            .unwrap_or(Value::Null);
2895        self.capabilities = AgentCapabilities {
2896            supports_cancel: true,
2897            supports_modes: true,
2898            supports_permissions: true,
2899            supports_terminals: true,
2900            supports_session_load: agent_capabilities
2901                .get("loadSession")
2902                .and_then(Value::as_bool)
2903                .unwrap_or(false),
2904            supports_models: false,
2905        };
2906        let session = if let Some(session_id) = self.session_id.clone() {
2907            if !self.capabilities.supports_session_load {
2908                let _ = self.stop().await;
2909                return Err(AdapterError::Unsupported("session/load"));
2910            }
2911            match self
2912                .request(
2913                    "session/load",
2914                    serde_json::json!({
2915                        "cwd": self.cwd,
2916                        "mcpServers": [],
2917                        "sessionId": session_id,
2918                    }),
2919                )
2920                .await
2921            {
2922                Ok(value) => value,
2923                Err(error) => {
2924                    let _ = self.stop().await;
2925                    return Err(error);
2926                }
2927            }
2928        } else {
2929            let session = match self
2930                .request(
2931                    "session/new",
2932                    serde_json::json!({"cwd": self.cwd, "mcpServers": []}),
2933                )
2934                .await
2935            {
2936                Ok(value) => value,
2937                Err(error) => {
2938                    let _ = self.stop().await;
2939                    return Err(error);
2940                }
2941            };
2942            self.session_id = session
2943                .get("sessionId")
2944                .and_then(Value::as_str)
2945                .map(str::to_owned);
2946            if self.session_id.is_none() {
2947                let _ = self.stop().await;
2948                return Err(AdapterError::Protocol(
2949                    "session/new returned no sessionId".into(),
2950                ));
2951            }
2952            session
2953        };
2954        self.capabilities.supports_modes = false;
2955        if let Some(modes) = session.get("modes") {
2956            let available = modes
2957                .get("availableModes")
2958                .and_then(Value::as_array)
2959                .map(|modes| {
2960                    modes
2961                        .iter()
2962                        .filter_map(|mode| {
2963                            Some(Mode {
2964                                id: mode.get("id")?.as_str()?.to_owned(),
2965                                label: mode.get("name")?.as_str()?.to_owned(),
2966                            })
2967                        })
2968                        .collect::<Vec<_>>()
2969                })
2970                .unwrap_or_default();
2971            self.modes = available.clone();
2972            self.capabilities.supports_modes = !available.is_empty();
2973            self.queued_events.push_back(Ok(AgentEvent::ModesReplaced {
2974                slot: self.slot,
2975                modes: available,
2976                current_mode: modes
2977                    .get("currentModeId")
2978                    .and_then(Value::as_str)
2979                    .map(str::to_owned),
2980            }));
2981        }
2982        self.models.clear();
2983        self.model_config_id = None;
2984        let current_model =
2985            parse_model_config(&session).and_then(|(config_id, models, current)| {
2986                self.model_config_id = Some(config_id);
2987                self.models = models;
2988                current
2989            });
2990        self.capabilities.supports_models =
2991            self.model_config_id.is_some() && !self.models.is_empty();
2992        if let Some(config_id) = self.model_config_id.clone()
2993            && !self.models.is_empty()
2994        {
2995            self.queued_events.push_back(Ok(AgentEvent::ModelsReplaced {
2996                slot: self.slot,
2997                config_id,
2998                models: self.models.clone(),
2999                current_model,
3000            }));
3001        }
3002        self.queued_events.push_back(Ok(AgentEvent::Ready {
3003            slot: self.slot,
3004            capabilities: self.capabilities(),
3005        }));
3006        Ok(())
3007    }
3008}
3009
3010fn prompt_resource_paths(prompt: &str) -> Vec<String> {
3011    let characters = prompt.chars().collect::<Vec<_>>();
3012    let mut paths = Vec::new();
3013    let mut index = 0;
3014    while index < characters.len() {
3015        if characters[index] != '@' {
3016            index += 1;
3017            continue;
3018        }
3019        index += 1;
3020        let quoted = characters.get(index) == Some(&'"');
3021        if quoted {
3022            index += 1;
3023        }
3024        let start = index;
3025        while index < characters.len()
3026            && if quoted {
3027                characters[index] != '"'
3028            } else {
3029                !characters[index].is_whitespace()
3030            }
3031        {
3032            index += 1;
3033        }
3034        if index > start {
3035            paths.push(characters[start..index].iter().collect());
3036        }
3037        if quoted && index < characters.len() {
3038            index += 1;
3039        }
3040    }
3041    paths
3042}
3043
3044fn prompt_content_blocks(cwd: &Path, prompt: &str) -> Vec<Value> {
3045    let mut blocks = vec![serde_json::json!({"type": "text", "text": prompt})];
3046    for path in prompt_resource_paths(prompt) {
3047        if path.ends_with('/') {
3048            continue;
3049        }
3050        let Ok(resource) = resources::load(cwd, &path) else {
3051            continue;
3052        };
3053        let uri = format!("file://{}", resource.path.display());
3054        let resource_value = if let Some(text) = resource.text {
3055            serde_json::json!({
3056                "uri": uri,
3057                "text": text,
3058                "mimeType": resource.mime_type,
3059            })
3060        } else if let Some(data) = resource.data {
3061            serde_json::json!({
3062                "uri": uri,
3063                "blob": BASE64.encode(data),
3064                "mimeType": resource.mime_type,
3065            })
3066        } else {
3067            continue;
3068        };
3069        blocks.push(serde_json::json!({
3070            "type": "resource",
3071            "resource": resource_value,
3072        }));
3073    }
3074    blocks
3075}
3076
3077#[async_trait]
3078impl AgentAdapter for AcpAdapter {
3079    fn slot(&self) -> RosterSlot {
3080        self.slot
3081    }
3082
3083    fn session_id(&self) -> Option<String> {
3084        self.session_id.clone()
3085    }
3086
3087    fn protocol(&self) -> &'static str {
3088        "acp"
3089    }
3090
3091    fn capabilities(&self) -> AgentCapabilities {
3092        self.capabilities.clone()
3093    }
3094
3095    async fn start(&mut self) -> AdapterResult<()> {
3096        // Use the inherent implementation, which owns the cleanup boundary
3097        // around the multi-step ACP handshake.
3098        AcpAdapter::start(self).await
3099    }
3100
3101    async fn send_prompt(&mut self, prompt: String) -> AdapterResult<()> {
3102        let session_id = self
3103            .session_id
3104            .as_ref()
3105            .ok_or_else(|| AdapterError::Transport("ACP session is not initialized".into()))?;
3106        let request_id = self.next_request_id;
3107        self.next_request_id += 1;
3108        let prompt_blocks = prompt_content_blocks(&self.cwd, &prompt);
3109        self.write_json(serde_json::json!({
3110            "jsonrpc": "2.0",
3111            "id": request_id,
3112            "method": "session/prompt",
3113            "params": {
3114                "sessionId": session_id,
3115                "prompt": prompt_blocks,
3116            },
3117        }))
3118        .await?;
3119        self.prompt_request_id = Some(request_id);
3120        Ok(())
3121    }
3122
3123    async fn cancel(&mut self) -> AdapterResult<bool> {
3124        let Some(session_id) = &self.session_id else {
3125            return Ok(false);
3126        };
3127        self.write_json(serde_json::json!({
3128            "jsonrpc": "2.0",
3129            "method": "session/cancel",
3130            "params": {"sessionId": session_id, "_meta": {}},
3131        }))
3132        .await?;
3133        let settled = tokio::time::timeout(CANCEL_SETTLE_TIMEOUT, async {
3134            loop {
3135                match <Self as AgentAdapter>::next_event(self).await {
3136                    Some(Ok(AgentEvent::TurnComplete { .. })) | None => break,
3137                    Some(Ok(_)) => {}
3138                    Some(Err(_)) => break,
3139                }
3140            }
3141        })
3142        .await
3143        .is_ok();
3144        if !settled {
3145            // A peer that never acknowledges cancellation cannot safely share
3146            // its stream with the next prompt. Restart the transport while
3147            // preserving a loadable provider session when supported.
3148            self.reload().await?;
3149        }
3150        Ok(true)
3151    }
3152
3153    async fn answer_permission(
3154        &mut self,
3155        request_id: String,
3156        answer: PermissionAnswer,
3157    ) -> AdapterResult<()> {
3158        let id = request_id
3159            .parse::<u64>()
3160            .map(Value::from)
3161            .unwrap_or_else(|_| Value::String(request_id));
3162        let outcome = match answer {
3163            PermissionAnswer::Selected { option_id } => {
3164                serde_json::json!({"outcome": "selected", "optionId": option_id})
3165            }
3166            PermissionAnswer::Cancelled => serde_json::json!({"outcome": "cancelled"}),
3167        };
3168        self.write_json(serde_json::json!({
3169            "jsonrpc": "2.0",
3170            "id": id,
3171            // RequestPermissionResponse wraps the selected/cancelled
3172            // discriminator in its `outcome` field. Keep this nested shape
3173            // compatible with the Python ACP server and ACP schema.
3174            "result": {"outcome": outcome},
3175        }))
3176        .await
3177    }
3178
3179    async fn set_mode(&mut self, mode: String) -> AdapterResult<()> {
3180        let session_id = self
3181            .session_id
3182            .as_ref()
3183            .ok_or_else(|| AdapterError::Transport("ACP session is not initialized".into()))?;
3184        let policy = match mode.as_str() {
3185            "plan" => "codeswarm:mode:plan",
3186            "default" | "manual" => "codeswarm:mode:manual",
3187            "accept-edits" => "codeswarm:mode:accept-edits",
3188            "full-access" | "auto" | "autopilot" => "codeswarm:mode:full-access",
3189            other => other,
3190        };
3191        let native_mode = crate::policy::resolve(policy, &self.modes)
3192            .map(|mode| mode.id)
3193            .unwrap_or(mode);
3194        let _ = self
3195            .request(
3196                "session/set_mode",
3197                serde_json::json!({"sessionId": session_id, "modeId": native_mode.clone()}),
3198            )
3199            .await?;
3200        self.queued_events.push_back(Ok(AgentEvent::ModeUpdated {
3201            slot: self.slot,
3202            current_mode: native_mode,
3203        }));
3204        Ok(())
3205    }
3206
3207    async fn set_model(&mut self, model: String) -> AdapterResult<()> {
3208        let session_id = self
3209            .session_id
3210            .clone()
3211            .ok_or_else(|| AdapterError::Transport("ACP session is not initialized".into()))?;
3212        let config_id = self
3213            .model_config_id
3214            .clone()
3215            .ok_or(AdapterError::Unsupported("set_model"))?;
3216        if !self.models.iter().any(|candidate| candidate.id == model) {
3217            return Err(AdapterError::Protocol(
3218                "model is not advertised by the agent".into(),
3219            ));
3220        }
3221        let _ = self
3222            .request(
3223                "session/set_config_option",
3224                serde_json::json!({
3225                    "sessionId": session_id,
3226                    "configId": config_id,
3227                    "value": model,
3228                }),
3229            )
3230            .await?;
3231        Ok(())
3232    }
3233
3234    async fn reload(&mut self) -> AdapterResult<()> {
3235        // `stop` tears down the process and clears its transport-owned
3236        // session handle. A reload is different from a final shutdown: ACP
3237        // peers advertising `loadSession` must receive the prior ID so the
3238        // replacement process can resume the same conversation.
3239        let session_id = self
3240            .capabilities
3241            .supports_session_load
3242            .then(|| self.session_id.clone())
3243            .flatten();
3244        self.stop().await?;
3245        self.session_id = session_id.clone();
3246        let result = self.start().await;
3247        if result.is_err() {
3248            // `start` cleans up a partially initialized transport by calling
3249            // `stop`, which also clears the handle. Keep it available for a
3250            // subsequent retry after the coordinator reports the failure.
3251            self.session_id = session_id;
3252        }
3253        result
3254    }
3255
3256    async fn stop(&mut self) -> AdapterResult<()> {
3257        let terminals = std::mem::take(&mut self.terminals);
3258        for terminal in terminals.values() {
3259            terminal.stop().await;
3260        }
3261        if let Some(mut child) = self.child.take() {
3262            terminate_child(&mut child).await?;
3263        }
3264        self.reader = None;
3265        self.session_id = None;
3266        self.prompt_request_id = None;
3267        if let Some(task) = self.stderr_task.take() {
3268            task.abort();
3269            let _ = task.await;
3270        }
3271        Ok(())
3272    }
3273
3274    async fn next_event(&mut self) -> Option<AdapterResult<AgentEvent>> {
3275        if let Some(event) = self.queued_events.pop_front() {
3276            return Some(event);
3277        }
3278        loop {
3279            let line = match self.read_line().await {
3280                Ok(line) => line,
3281                Err(error) => return Some(Err(error)),
3282            };
3283            let value: Value = match serde_json::from_str(&line) {
3284                Ok(value) => value,
3285                Err(_) => continue,
3286            };
3287            match self.reject_empty_permission_request(&value).await {
3288                Ok(true) => continue,
3289                Ok(false) => {}
3290                Err(error) => return Some(Err(error)),
3291            }
3292            match self.handle_client_request(&value).await {
3293                Ok(true) => continue,
3294                Ok(false) => {}
3295                Err(error) => return Some(Err(error)),
3296            }
3297            match parse_acp_notification(self.slot, &line) {
3298                Ok(Some(event)) => {
3299                    if let AgentEvent::ModelsReplaced {
3300                        config_id, models, ..
3301                    } = &event
3302                    {
3303                        self.model_config_id = Some(config_id.clone());
3304                        self.models = models.clone();
3305                        self.capabilities.supports_models = !models.is_empty();
3306                    }
3307                    return Some(Ok(event));
3308                }
3309                Ok(None) => {}
3310                Err(error) => return Some(Err(error)),
3311            }
3312            if value.get("id").is_some_and(|id| {
3313                self.prompt_request_id
3314                    .is_some_and(|expected| rpc_id_to_string(id) == expected.to_string())
3315            }) {
3316                if let Some(error) = value.get("error") {
3317                    self.prompt_request_id = None;
3318                    return Some(Err(AdapterError::Protocol(error.to_string())));
3319                }
3320                self.prompt_request_id = None;
3321                return Some(Ok(AgentEvent::TurnComplete { slot: self.slot }));
3322            }
3323        }
3324    }
3325}
3326
3327fn parse_acp_notification(slot: RosterSlot, line: &str) -> AdapterResult<Option<AgentEvent>> {
3328    let value: Value =
3329        serde_json::from_str(line).map_err(|error| AdapterError::Protocol(error.to_string()))?;
3330    let method = value.get("method").and_then(Value::as_str);
3331    if method == Some("session/request_permission") {
3332        let params = value.get("params").cloned().unwrap_or(Value::Null);
3333        let request_id = value
3334            .get("id")
3335            .map(rpc_id_to_string)
3336            .unwrap_or_else(|| "permission".into());
3337        return Ok(parse_permission_event(
3338            slot,
3339            &params,
3340            &request_id,
3341            params.get("options"),
3342        ));
3343    }
3344    if method != Some("session/update") {
3345        return Ok(None);
3346    }
3347    let Some(update) = value.get("params").and_then(|params| params.get("update")) else {
3348        return Ok(None);
3349    };
3350    let kind = update.get("sessionUpdate").and_then(Value::as_str);
3351    if kind == Some("config_option_update")
3352        && let Some((config_id, models, current_model)) = parse_model_config(update)
3353    {
3354        return Ok(Some(AgentEvent::ModelsReplaced {
3355            slot,
3356            config_id,
3357            models,
3358            current_model,
3359        }));
3360    }
3361    if kind == Some("request_permission") {
3362        let request_id = update
3363            .get("toolCall")
3364            .and_then(|tool| tool.get("toolCallId"))
3365            .and_then(Value::as_str)
3366            .unwrap_or("permission");
3367        return Ok(parse_permission_event(
3368            slot,
3369            update,
3370            request_id,
3371            update.get("options"),
3372        ));
3373    }
3374    if kind == Some("available_commands_update") {
3375        let commands = update
3376            .get("availableCommands")
3377            .and_then(Value::as_array)
3378            .map(|commands| {
3379                commands
3380                    .iter()
3381                    .filter_map(|command| {
3382                        let name = command.get("name").and_then(Value::as_str)?.trim();
3383                        (!name.is_empty()).then(|| AgentCommand {
3384                            name: name.to_owned(),
3385                        })
3386                    })
3387                    .collect::<Vec<_>>()
3388            })
3389            .unwrap_or_default();
3390        return Ok(Some(AgentEvent::CommandsReplaced { slot, commands }));
3391    }
3392    if kind == Some("current_mode_update") {
3393        if let Some(mode) = update
3394            .get("currentModeId")
3395            .and_then(Value::as_str)
3396            .filter(|mode| !mode.trim().is_empty())
3397        {
3398            return Ok(Some(AgentEvent::ModeUpdated {
3399                slot,
3400                current_mode: mode.to_owned(),
3401            }));
3402        }
3403        return Ok(None);
3404    }
3405    if kind == Some("usage_update") {
3406        let Some(used) = update.get("used").and_then(Value::as_u64) else {
3407            return Ok(None);
3408        };
3409        let Some(size) = update.get("size").and_then(Value::as_u64) else {
3410            return Ok(None);
3411        };
3412        return Ok(Some(AgentEvent::UsageUpdated {
3413            slot,
3414            usage: UsageUpdate { used, size },
3415        }));
3416    }
3417    if let Some(terminal) = parse_terminal_event(update, kind) {
3418        return Ok(Some(AgentEvent::Terminal {
3419            slot,
3420            event: terminal,
3421        }));
3422    }
3423    let text = update
3424        .get("content")
3425        .and_then(|content| content.get("text"))
3426        .and_then(Value::as_str)
3427        .map(str::to_owned);
3428    if kind == Some("user_message_chunk") {
3429        return Ok(text
3430            .filter(|text| !text.is_empty())
3431            .map(|text| AgentEvent::UserText { slot, text }));
3432    }
3433    if kind == Some("agent_message_chunk")
3434        && let Some(mode) = text
3435            .as_deref()
3436            .and_then(|text| text.strip_prefix("[MODE_UPDATE]"))
3437            .map(str::trim)
3438            .filter(|mode| !mode.is_empty())
3439    {
3440        // Gemini's native ACP bridge historically encoded a mode change as a
3441        // control marker in the message stream. It is state, not transcript
3442        // content; expose it as a normalized catalog replacement instead of
3443        // leaking the marker into the conversation.
3444        return Ok(Some(AgentEvent::ModesReplaced {
3445            slot,
3446            modes: vec![Mode {
3447                id: mode.to_owned(),
3448                label: mode.to_owned(),
3449            }],
3450            current_mode: Some(mode.to_owned()),
3451        }));
3452    }
3453    match (kind, text) {
3454        (Some("agent_message_chunk"), Some(text)) if !text.is_empty() => {
3455            Ok(Some(AgentEvent::Text { slot, text }))
3456        }
3457        (Some("agent_thought_chunk"), Some(text)) if !text.is_empty() => {
3458            Ok(Some(AgentEvent::Thought { slot, text }))
3459        }
3460        (Some("tool_call"), _) | (Some("tool_call_update"), _) => {
3461            let id = update
3462                .get("toolCallId")
3463                .and_then(Value::as_str)
3464                .unwrap_or("unknown-tool")
3465                .to_owned();
3466            let title = update
3467                .get("title")
3468                .and_then(Value::as_str)
3469                .unwrap_or("Tool call")
3470                .to_owned();
3471            let status = match update.get("status").and_then(Value::as_str) {
3472                Some("completed") => ToolStatus::Completed,
3473                Some("failed") => ToolStatus::Failed,
3474                Some("in_progress") => ToolStatus::Running,
3475                _ => ToolStatus::Pending,
3476            };
3477            Ok(Some(AgentEvent::Tool {
3478                slot,
3479                update: ToolUpdate {
3480                    id,
3481                    title,
3482                    status,
3483                    detail: None,
3484                },
3485            }))
3486        }
3487        _ => Ok(None),
3488    }
3489}
3490
3491fn parse_model_config(value: &Value) -> Option<(String, Vec<Mode>, Option<String>)> {
3492    let config = value
3493        .get("configOptions")?
3494        .as_array()?
3495        .iter()
3496        .find(|option| {
3497            option.get("category").and_then(Value::as_str) == Some("model")
3498                && matches!(
3499                    option.get("type").and_then(Value::as_str),
3500                    Some("select" | "enum")
3501                )
3502        })?;
3503    let config_id = config.get("id")?.as_str()?.to_owned();
3504    let models = config
3505        .get("options")?
3506        .as_array()?
3507        .iter()
3508        .filter_map(|option| {
3509            let id = option.get("value")?.as_str()?.to_owned();
3510            let label = option
3511                .get("name")
3512                .or_else(|| option.get("label"))
3513                .and_then(Value::as_str)
3514                .unwrap_or(&id)
3515                .to_owned();
3516            Some(Mode { id, label })
3517        })
3518        .collect::<Vec<_>>();
3519    (!models.is_empty()).then(|| {
3520        let current = config
3521            .get("currentValue")
3522            .and_then(Value::as_str)
3523            .map(str::to_owned);
3524        (config_id, models, current)
3525    })
3526}
3527
3528/// Normalize terminal lifecycle updates emitted by ACP-compatible bridges and
3529/// native stream adapters. Protocols have used both snake_case update names
3530/// and a nested `terminal` object, so accept either without leaking that
3531/// shape beyond the adapter boundary.
3532fn parse_terminal_event(value: &Value, kind: Option<&str>) -> Option<TerminalEvent> {
3533    let nested = value.get("terminal").unwrap_or(value);
3534    let kind = kind.or_else(|| value.get("event").and_then(Value::as_str))?;
3535    let id = nested
3536        .get("terminalId")
3537        .or_else(|| nested.get("terminal_id"))
3538        .or_else(|| nested.get("id"))
3539        .and_then(Value::as_str)
3540        .unwrap_or("terminal")
3541        .to_owned();
3542    match kind {
3543        "terminal_created" | "terminal_create" | "terminal_started" => {
3544            let command = nested
3545                .get("command")
3546                .and_then(Value::as_str)
3547                .unwrap_or("")
3548                .to_owned();
3549            Some(TerminalEvent::Created { id, command })
3550        }
3551        "terminal_output" | "terminal_output_chunk" => {
3552            let text = nested
3553                .get("output")
3554                .or_else(|| nested.get("text"))
3555                .and_then(Value::as_str)
3556                .unwrap_or("")
3557                .to_owned();
3558            Some(TerminalEvent::Output { id, text })
3559        }
3560        "terminal_exited" | "terminal_exit" => {
3561            let code = nested
3562                .get("exitCode")
3563                .or_else(|| nested.get("exit_code"))
3564                .or_else(|| nested.get("code"))
3565                .and_then(Value::as_i64)
3566                .unwrap_or(0) as i32;
3567            Some(TerminalEvent::Exited { id, code })
3568        }
3569        "terminal_released" | "terminal_release" => Some(TerminalEvent::Released { id }),
3570        _ => None,
3571    }
3572}
3573
3574fn parse_permission_event(
3575    slot: RosterSlot,
3576    value: &Value,
3577    request_id: &str,
3578    options: Option<&Value>,
3579) -> Option<AgentEvent> {
3580    let tool = value.get("toolCall").unwrap_or(value);
3581    let title = tool
3582        .get("title")
3583        .and_then(Value::as_str)
3584        .unwrap_or("Agent requests permission")
3585        .to_owned();
3586    let (options, option_ids): (Vec<String>, Vec<String>) = options
3587        .and_then(Value::as_array)
3588        .map(|options| {
3589            options
3590                .iter()
3591                .filter_map(|option| {
3592                    let label = option
3593                        .get("name")
3594                        .or_else(|| option.get("optionId"))
3595                        .and_then(Value::as_str)?
3596                        .to_owned();
3597                    let option_id = option
3598                        .get("optionId")
3599                        .or_else(|| option.get("id"))
3600                        .and_then(Value::as_str)
3601                        .map(str::to_owned)
3602                        .unwrap_or_else(|| label.clone());
3603                    Some((label, option_id))
3604                })
3605                .unzip()
3606        })
3607        .unwrap_or_default();
3608    if options.is_empty() {
3609        return None;
3610    }
3611    Some(AgentEvent::Permission {
3612        slot,
3613        request: PermissionRequest {
3614            id: request_id.to_owned(),
3615            title,
3616            options,
3617            option_ids,
3618        },
3619    })
3620}
3621
3622fn rpc_id_to_string(value: &Value) -> String {
3623    value
3624        .as_str()
3625        .map(str::to_owned)
3626        .or_else(|| value.as_u64().map(|id| id.to_string()))
3627        .unwrap_or_else(|| value.to_string())
3628}
3629
3630#[cfg(test)]
3631mod tests {
3632    use super::{
3633        AcpAdapter, AdapterHost, AgentAdapter, AgyAdapter, MAX_ACP_LINE_BYTES, MAX_FILE_READ_BYTES,
3634        RelayHost, ScriptedAdapter, parse_acp_notification, parse_agy_line, parse_command_line,
3635        parse_model_config, prompt_content_blocks, read_bounded_line,
3636    };
3637    #[cfg(target_os = "linux")]
3638    use super::{isolate_process_group, terminate_child};
3639    use crate::TerminalEvent;
3640    use crate::{
3641        AgentCapabilities, AgentEvent, EventLog, Mode, PermissionAnswer, ToolStatus,
3642        persistence::SessionMetadataStore,
3643        relay::{DEFAULT_STOP_ACKNOWLEDGMENT, RelayDecision, STOP_TOKEN},
3644    };
3645    use async_trait::async_trait;
3646    use serde_json::Value;
3647    use std::sync::{
3648        Arc, Mutex,
3649        atomic::{AtomicUsize, Ordering},
3650    };
3651
3652    fn unique_test_path(stem: &str, extension: &str) -> std::path::PathBuf {
3653        let nonce = std::time::SystemTime::now()
3654            .duration_since(std::time::UNIX_EPOCH)
3655            .expect("clock")
3656            .as_nanos();
3657        std::env::temp_dir().join(format!("{stem}-{}-{nonce}.{extension}", std::process::id()))
3658    }
3659
3660    #[test]
3661    fn malformed_file_writes_preserve_existing_content() {
3662        let root = unique_test_path("codeswarm-write-validation", "dir");
3663        std::fs::create_dir_all(&root).unwrap();
3664        let file = root.join("keep.txt");
3665        std::fs::write(&file, "valuable content").unwrap();
3666        let adapter = AcpAdapter::new(0, root.clone(), "unused", Vec::new());
3667        for content in [
3668            Value::Null,
3669            serde_json::json!(false),
3670            serde_json::json!(42),
3671            serde_json::json!([]),
3672        ] {
3673            assert!(
3674                adapter
3675                    .write_workspace_text(
3676                        &serde_json::json!({"path":"keep.txt", "content": content})
3677                    )
3678                    .is_err()
3679            );
3680            assert_eq!(std::fs::read_to_string(&file).unwrap(), "valuable content");
3681        }
3682        assert!(
3683            adapter
3684                .write_workspace_text(&serde_json::json!({"path":"keep.txt"}))
3685                .is_err()
3686        );
3687        assert!(
3688            adapter
3689                .write_workspace_text(&serde_json::json!({"path": null, "content":"replacement"}))
3690                .is_err()
3691        );
3692        assert_eq!(std::fs::read_to_string(&file).unwrap(), "valuable content");
3693        adapter
3694            .write_workspace_text(&serde_json::json!({"path":"keep.txt", "content":"replacement"}))
3695            .unwrap();
3696        assert_eq!(std::fs::read_to_string(&file).unwrap(), "replacement");
3697        adapter
3698            .write_workspace_text(&serde_json::json!({"path":"keep.txt", "content":""}))
3699            .unwrap();
3700        assert_eq!(std::fs::read_to_string(&file).unwrap(), "");
3701        std::fs::remove_dir_all(root).unwrap();
3702    }
3703
3704    #[tokio::test]
3705    async fn silent_acp_control_request_times_out_and_transport_can_be_stopped() {
3706        let script = r#"read _; echo '{"jsonrpc":"2.0","id":1,"result":{"agentCapabilities":{}}}'; read _; echo '{"jsonrpc":"2.0","id":"2","result":{"sessionId":"s"}}'; read _; read _"#;
3707        let mut adapter = AcpAdapter::new(
3708            0,
3709            std::env::current_dir().unwrap(),
3710            "sh",
3711            vec!["-c".into(), script.into()],
3712        );
3713        adapter.start().await.unwrap();
3714        let error = adapter
3715            .request_with_timeout(
3716                "session/set_mode",
3717                serde_json::json!({}),
3718                std::time::Duration::from_millis(10),
3719            )
3720            .await
3721            .unwrap_err();
3722        assert!(error.to_string().contains("session/set_mode timed out"));
3723        adapter.stop().await.unwrap();
3724        assert!(adapter.child.is_none());
3725    }
3726
3727    #[tokio::test]
3728    async fn goals_reach_every_roster_slot_without_native_goal_support() {
3729        use crate::goal::GoalCommand;
3730        let hosts = (0..3)
3731            .map(|slot| {
3732                AdapterHost::new(
3733                    Box::new(ScriptedAdapter::new(
3734                        slot,
3735                        AgentCapabilities::default(),
3736                        [
3737                            AgentEvent::TurnComplete { slot },
3738                            AgentEvent::TurnComplete { slot },
3739                        ],
3740                    )),
3741                    None,
3742                )
3743            })
3744            .collect();
3745        let mut relay = RelayHost::new(hosts, 10).unwrap();
3746        relay.start().await.unwrap();
3747        let task = relay
3748            .apply_goal(GoalCommand::Set("Ship the settings screen".into()))
3749            .unwrap()
3750            .unwrap();
3751        relay.relay_mut().enqueue_human(task, Some(0));
3752        for slot in 0..3 {
3753            relay.run_turn("", 0).await.unwrap();
3754            let (actual, prompt) = relay.dispatches().last().unwrap();
3755            assert_eq!(*actual, slot);
3756            assert!(prompt.contains("Active shared goal: Ship the settings screen"));
3757        }
3758        let snapshot = relay.session_metadata();
3759        let restored = crate::goal::Goal::from_metadata(snapshot.get("goal").unwrap());
3760        assert!(restored.is_some());
3761        relay.restore_goal(restored);
3762        relay.reload(0).await.unwrap();
3763        relay.run_turn("", 0).await.unwrap();
3764        assert!(
3765            relay
3766                .dispatches()
3767                .last()
3768                .unwrap()
3769                .1
3770                .contains("Active shared goal: Ship the settings screen")
3771        );
3772        relay.apply_goal(GoalCommand::Done).unwrap();
3773        relay.run_turn("", 0).await.unwrap();
3774        assert!(
3775            relay
3776                .dispatches()
3777                .last()
3778                .unwrap()
3779                .1
3780                .contains("No active shared goal")
3781        );
3782        relay.apply_goal(GoalCommand::Clear).unwrap();
3783        assert!(relay.session_metadata().get("goal").unwrap().is_null());
3784    }
3785
3786    #[tokio::test]
3787    async fn replacement_agent_receives_task_after_public_journal_pruning() {
3788        let hosts = (0..2)
3789            .map(|slot| {
3790                AdapterHost::new(
3791                    Box::new(ScriptedAdapter::new(
3792                        slot,
3793                        AgentCapabilities::default(),
3794                        [
3795                            AgentEvent::Text {
3796                                slot,
3797                                text: "progress".into(),
3798                            },
3799                            AgentEvent::TurnComplete { slot },
3800                            AgentEvent::Text {
3801                                slot,
3802                                text: "more progress".into(),
3803                            },
3804                            AgentEvent::TurnComplete { slot },
3805                        ],
3806                    )),
3807                    None,
3808                )
3809            })
3810            .collect();
3811        let mut relay = RelayHost::new(hosts, 10).unwrap();
3812        relay.start().await.unwrap();
3813        relay
3814            .relay_mut()
3815            .enqueue_human("Fix the login bug", Some(0));
3816        relay.run_turn("", 0).await.unwrap();
3817        relay.run_turn("", 0).await.unwrap();
3818        relay.run_turn("", 0).await.unwrap();
3819        relay.reload(1).await.unwrap();
3820        assert!(
3821            !relay
3822                .relay_mut()
3823                .unseen_context(1)
3824                .contains("Fix the login bug")
3825        );
3826        relay.run_turn("", 0).await.unwrap();
3827        assert!(
3828            relay
3829                .dispatches()
3830                .last()
3831                .unwrap()
3832                .1
3833                .contains("Shared task:\nFix the login bug")
3834        );
3835    }
3836
3837    #[cfg(target_os = "linux")]
3838    #[tokio::test]
3839    async fn termination_kills_only_the_verified_isolated_child_group() {
3840        use nix::unistd::{Pid, getpgid, getpgrp};
3841        use tokio::io::{AsyncBufReadExt, BufReader};
3842
3843        let own_group = getpgrp();
3844        let mut command = tokio::process::Command::new("sh");
3845        isolate_process_group(&mut command);
3846        command
3847            .arg("-c")
3848            .arg("sleep 60 & echo $!; wait")
3849            .stdout(std::process::Stdio::piped());
3850        let mut child = command.spawn().expect("spawn isolated shell");
3851        let leader = Pid::from_raw(child.id().expect("leader pid") as i32);
3852        assert_eq!(getpgid(Some(leader)).expect("leader group"), leader);
3853        assert_ne!(leader, own_group);
3854
3855        let stdout = child.stdout.take().expect("child stdout");
3856        let mut lines = BufReader::new(stdout).lines();
3857        let descendant = lines
3858            .next_line()
3859            .await
3860            .expect("read descendant pid")
3861            .expect("descendant pid")
3862            .parse::<i32>()
3863            .expect("numeric descendant pid");
3864        let descendant = Pid::from_raw(descendant);
3865        assert_eq!(getpgid(Some(descendant)).expect("descendant group"), leader);
3866
3867        terminate_child(&mut child).await.expect("terminate group");
3868        for _ in 0..100 {
3869            if !std::path::Path::new(&format!("/proc/{descendant}")).exists() {
3870                return;
3871            }
3872            tokio::time::sleep(std::time::Duration::from_millis(10)).await;
3873        }
3874        panic!("descendant {descendant} survived isolated group termination");
3875    }
3876
3877    #[test]
3878    fn parses_configured_commands_with_shell_style_quotes_without_a_shell() {
3879        assert_eq!(
3880            parse_command_line(r#"npx -y "@agentclientprotocol/codex-acp" --flag 'two words'"#),
3881            Ok((
3882                "npx".into(),
3883                vec![
3884                    "-y".into(),
3885                    "@agentclientprotocol/codex-acp".into(),
3886                    "--flag".into(),
3887                    "two words".into(),
3888                ]
3889            ),)
3890        );
3891        assert_eq!(
3892            parse_command_line(r#"agent "" escaped\ argument"#),
3893            Ok(("agent".into(), vec!["".into(), "escaped argument".into()],))
3894        );
3895    }
3896
3897    #[test]
3898    fn acp_prompt_expands_safe_at_path_resources() {
3899        let root = unique_test_path("codeswarm-prompt-resource", "dir");
3900        std::fs::create_dir_all(&root).expect("workspace");
3901        std::fs::write(root.join("note.md"), "resource text").expect("resource");
3902        let blocks = prompt_content_blocks(&root, "inspect @note.md");
3903        assert_eq!(blocks[0]["type"], "text");
3904        assert_eq!(blocks[0]["text"], "inspect @note.md");
3905        assert_eq!(blocks[1]["type"], "resource");
3906        assert_eq!(blocks[1]["resource"]["text"], "resource text");
3907        assert_eq!(blocks[1]["resource"]["mimeType"], "text/markdown");
3908        std::fs::remove_dir_all(root).expect("cleanup workspace");
3909    }
3910
3911    #[tokio::test]
3912    async fn oversized_acp_frames_are_rejected_before_full_line_allocation() {
3913        let mut bytes = vec![b'x'; MAX_ACP_LINE_BYTES + 1];
3914        bytes.push(b'\n');
3915        let mut reader = tokio::io::BufReader::new(bytes.as_slice());
3916        assert!(matches!(
3917            read_bounded_line(&mut reader).await,
3918            Err(super::AdapterError::Protocol(detail)) if detail.contains("exceeds")
3919        ));
3920    }
3921
3922    #[test]
3923    fn rejects_malformed_configured_commands_before_spawn() {
3924        assert_eq!(
3925            parse_command_line("agent 'unfinished"),
3926            Err(super::CommandParseError::UnterminatedQuote)
3927        );
3928        assert_eq!(
3929            parse_command_line("agent\\"),
3930            Err(super::CommandParseError::TrailingEscape)
3931        );
3932        assert_eq!(
3933            parse_command_line("   \t"),
3934            Err(super::CommandParseError::Empty)
3935        );
3936    }
3937
3938    #[derive(Debug)]
3939    struct PendingAdapter {
3940        slot: usize,
3941        hang_on_cancel: bool,
3942    }
3943
3944    #[derive(Debug)]
3945    struct ConcurrentStartAdapter {
3946        slot: usize,
3947        barrier: Arc<tokio::sync::Barrier>,
3948    }
3949
3950    #[async_trait]
3951    impl AgentAdapter for ConcurrentStartAdapter {
3952        fn slot(&self) -> usize {
3953            self.slot
3954        }
3955
3956        fn capabilities(&self) -> AgentCapabilities {
3957            AgentCapabilities::default()
3958        }
3959
3960        async fn start(&mut self) -> super::AdapterResult<()> {
3961            self.barrier.wait().await;
3962            Ok(())
3963        }
3964
3965        async fn send_prompt(&mut self, _prompt: String) -> super::AdapterResult<()> {
3966            Ok(())
3967        }
3968
3969        async fn cancel(&mut self) -> super::AdapterResult<bool> {
3970            Ok(true)
3971        }
3972
3973        async fn answer_permission(
3974            &mut self,
3975            _request_id: String,
3976            _answer: PermissionAnswer,
3977        ) -> super::AdapterResult<()> {
3978            Ok(())
3979        }
3980
3981        async fn set_mode(&mut self, _mode: String) -> super::AdapterResult<()> {
3982            Ok(())
3983        }
3984
3985        async fn reload(&mut self) -> super::AdapterResult<()> {
3986            Ok(())
3987        }
3988
3989        async fn stop(&mut self) -> super::AdapterResult<()> {
3990            Ok(())
3991        }
3992
3993        async fn next_event(&mut self) -> Option<super::AdapterResult<AgentEvent>> {
3994            std::future::pending().await
3995        }
3996    }
3997
3998    #[derive(Debug)]
3999    struct PermissionBlockingAdapter {
4000        slot: usize,
4001        phase: u8,
4002    }
4003
4004    #[async_trait]
4005    impl AgentAdapter for PermissionBlockingAdapter {
4006        fn slot(&self) -> usize {
4007            self.slot
4008        }
4009
4010        fn capabilities(&self) -> AgentCapabilities {
4011            AgentCapabilities {
4012                supports_permissions: true,
4013                ..AgentCapabilities::default()
4014            }
4015        }
4016
4017        async fn start(&mut self) -> super::AdapterResult<()> {
4018            Ok(())
4019        }
4020
4021        async fn send_prompt(&mut self, _prompt: String) -> super::AdapterResult<()> {
4022            Ok(())
4023        }
4024
4025        async fn cancel(&mut self) -> super::AdapterResult<bool> {
4026            Ok(true)
4027        }
4028
4029        async fn answer_permission(
4030            &mut self,
4031            request_id: String,
4032            answer: PermissionAnswer,
4033        ) -> super::AdapterResult<()> {
4034            if self.phase != 1 || request_id != "permission-1" {
4035                return Err(super::AdapterError::Protocol(
4036                    "unexpected permission response".into(),
4037                ));
4038            }
4039            assert!(matches!(answer, PermissionAnswer::Selected { .. }));
4040            self.phase = 2;
4041            Ok(())
4042        }
4043
4044        async fn set_mode(&mut self, _mode: String) -> super::AdapterResult<()> {
4045            Ok(())
4046        }
4047
4048        async fn reload(&mut self) -> super::AdapterResult<()> {
4049            Ok(())
4050        }
4051
4052        async fn stop(&mut self) -> super::AdapterResult<()> {
4053            Ok(())
4054        }
4055
4056        async fn next_event(&mut self) -> Option<super::AdapterResult<AgentEvent>> {
4057            match self.phase {
4058                0 => {
4059                    self.phase = 1;
4060                    Some(Ok(AgentEvent::Permission {
4061                        slot: self.slot,
4062                        request: crate::PermissionRequest {
4063                            id: "permission-1".into(),
4064                            title: "Allow?".into(),
4065                            options: vec!["Allow".into()],
4066                            option_ids: vec!["allow".into()],
4067                        },
4068                    }))
4069                }
4070                1 => std::future::pending().await,
4071                _ => Some(Ok(AgentEvent::TurnComplete { slot: self.slot })),
4072            }
4073        }
4074    }
4075
4076    #[async_trait]
4077    impl AgentAdapter for PendingAdapter {
4078        fn slot(&self) -> usize {
4079            self.slot
4080        }
4081
4082        fn capabilities(&self) -> AgentCapabilities {
4083            AgentCapabilities {
4084                supports_cancel: true,
4085                ..AgentCapabilities::default()
4086            }
4087        }
4088
4089        async fn start(&mut self) -> super::AdapterResult<()> {
4090            Ok(())
4091        }
4092
4093        async fn send_prompt(&mut self, _prompt: String) -> super::AdapterResult<()> {
4094            Ok(())
4095        }
4096
4097        async fn cancel(&mut self) -> super::AdapterResult<bool> {
4098            if self.hang_on_cancel {
4099                return std::future::pending().await;
4100            }
4101            Ok(true)
4102        }
4103
4104        async fn answer_permission(
4105            &mut self,
4106            _request_id: String,
4107            _answer: PermissionAnswer,
4108        ) -> super::AdapterResult<()> {
4109            Ok(())
4110        }
4111
4112        async fn set_mode(&mut self, _mode: String) -> super::AdapterResult<()> {
4113            Ok(())
4114        }
4115
4116        async fn reload(&mut self) -> super::AdapterResult<()> {
4117            Ok(())
4118        }
4119
4120        async fn stop(&mut self) -> super::AdapterResult<()> {
4121            Ok(())
4122        }
4123
4124        async fn next_event(&mut self) -> Option<super::AdapterResult<AgentEvent>> {
4125            std::future::pending().await
4126        }
4127    }
4128
4129    #[derive(Debug)]
4130    struct StopTrackingAdapter {
4131        slot: usize,
4132        stopped: Arc<AtomicUsize>,
4133        fail_stop: bool,
4134    }
4135
4136    #[derive(Debug)]
4137    struct ModeOrderAdapter {
4138        slot: usize,
4139        log: Arc<Mutex<Vec<String>>>,
4140        phase: u8,
4141    }
4142
4143    #[derive(Debug)]
4144    struct StartupAcpAdapter {
4145        slot: usize,
4146        events: std::collections::VecDeque<AgentEvent>,
4147    }
4148
4149    impl StartupAcpAdapter {
4150        fn new(slot: usize) -> Self {
4151            Self {
4152                slot,
4153                events: [
4154                    AgentEvent::ModesReplaced {
4155                        slot,
4156                        modes: vec![Mode {
4157                            id: "full-access".into(),
4158                            label: "Auto pilot".into(),
4159                        }],
4160                        current_mode: Some("full-access".into()),
4161                    },
4162                    AgentEvent::Ready {
4163                        slot,
4164                        capabilities: AgentCapabilities {
4165                            supports_modes: true,
4166                            ..AgentCapabilities::default()
4167                        },
4168                    },
4169                ]
4170                .into(),
4171            }
4172        }
4173    }
4174
4175    #[async_trait]
4176    impl AgentAdapter for StartupAcpAdapter {
4177        fn slot(&self) -> usize {
4178            self.slot
4179        }
4180
4181        fn protocol(&self) -> &'static str {
4182            "acp"
4183        }
4184
4185        fn capabilities(&self) -> AgentCapabilities {
4186            AgentCapabilities {
4187                supports_modes: true,
4188                ..AgentCapabilities::default()
4189            }
4190        }
4191
4192        async fn start(&mut self) -> super::AdapterResult<()> {
4193            Ok(())
4194        }
4195
4196        async fn send_prompt(&mut self, _prompt: String) -> super::AdapterResult<()> {
4197            Ok(())
4198        }
4199
4200        async fn cancel(&mut self) -> super::AdapterResult<bool> {
4201            Ok(true)
4202        }
4203
4204        async fn answer_permission(
4205            &mut self,
4206            _request_id: String,
4207            _answer: PermissionAnswer,
4208        ) -> super::AdapterResult<()> {
4209            Ok(())
4210        }
4211
4212        async fn set_mode(&mut self, _mode: String) -> super::AdapterResult<()> {
4213            Ok(())
4214        }
4215
4216        async fn reload(&mut self) -> super::AdapterResult<()> {
4217            self.events = Self::new(self.slot).events;
4218            Ok(())
4219        }
4220
4221        async fn stop(&mut self) -> super::AdapterResult<()> {
4222            Ok(())
4223        }
4224
4225        async fn next_event(&mut self) -> Option<super::AdapterResult<AgentEvent>> {
4226            self.events.pop_front().map(Ok)
4227        }
4228    }
4229
4230    #[async_trait]
4231    impl AgentAdapter for ModeOrderAdapter {
4232        fn slot(&self) -> usize {
4233            self.slot
4234        }
4235
4236        fn capabilities(&self) -> AgentCapabilities {
4237            AgentCapabilities {
4238                supports_modes: true,
4239                ..AgentCapabilities::default()
4240            }
4241        }
4242
4243        async fn start(&mut self) -> super::AdapterResult<()> {
4244            self.log.lock().expect("log").push("start".into());
4245            Ok(())
4246        }
4247
4248        async fn send_prompt(&mut self, _prompt: String) -> super::AdapterResult<()> {
4249            self.log.lock().expect("log").push("prompt".into());
4250            Ok(())
4251        }
4252
4253        async fn cancel(&mut self) -> super::AdapterResult<bool> {
4254            Ok(true)
4255        }
4256
4257        async fn answer_permission(
4258            &mut self,
4259            _request_id: String,
4260            _answer: PermissionAnswer,
4261        ) -> super::AdapterResult<()> {
4262            Ok(())
4263        }
4264
4265        async fn set_mode(&mut self, mode: String) -> super::AdapterResult<()> {
4266            self.log.lock().expect("log").push(format!("mode:{mode}"));
4267            Ok(())
4268        }
4269
4270        async fn reload(&mut self) -> super::AdapterResult<()> {
4271            self.log.lock().expect("log").push("reload".into());
4272            self.phase = 0;
4273            Ok(())
4274        }
4275
4276        async fn stop(&mut self) -> super::AdapterResult<()> {
4277            Ok(())
4278        }
4279
4280        async fn next_event(&mut self) -> Option<super::AdapterResult<AgentEvent>> {
4281            match self.phase {
4282                0 => {
4283                    self.phase = 1;
4284                    Some(Ok(AgentEvent::ModesReplaced {
4285                        slot: self.slot,
4286                        modes: vec![Mode {
4287                            id: "yolo".into(),
4288                            label: "YOLO".into(),
4289                        }],
4290                        current_mode: None,
4291                    }))
4292                }
4293                1 => {
4294                    self.phase = 2;
4295                    Some(Ok(AgentEvent::TurnComplete { slot: self.slot }))
4296                }
4297                _ => std::future::pending().await,
4298            }
4299        }
4300    }
4301
4302    #[async_trait]
4303    impl AgentAdapter for StopTrackingAdapter {
4304        fn slot(&self) -> usize {
4305            self.slot
4306        }
4307
4308        fn capabilities(&self) -> AgentCapabilities {
4309            AgentCapabilities::default()
4310        }
4311
4312        async fn start(&mut self) -> super::AdapterResult<()> {
4313            Ok(())
4314        }
4315
4316        async fn send_prompt(&mut self, _prompt: String) -> super::AdapterResult<()> {
4317            Ok(())
4318        }
4319
4320        async fn cancel(&mut self) -> super::AdapterResult<bool> {
4321            Ok(false)
4322        }
4323
4324        async fn answer_permission(
4325            &mut self,
4326            _request_id: String,
4327            _answer: PermissionAnswer,
4328        ) -> super::AdapterResult<()> {
4329            Ok(())
4330        }
4331
4332        async fn set_mode(&mut self, _mode: String) -> super::AdapterResult<()> {
4333            Ok(())
4334        }
4335
4336        async fn reload(&mut self) -> super::AdapterResult<()> {
4337            Ok(())
4338        }
4339
4340        async fn stop(&mut self) -> super::AdapterResult<()> {
4341            self.stopped.fetch_add(1, Ordering::Relaxed);
4342            if self.fail_stop {
4343                Err(super::AdapterError::Transport("stop failed".into()))
4344            } else {
4345                Ok(())
4346            }
4347        }
4348
4349        async fn next_event(&mut self) -> Option<super::AdapterResult<AgentEvent>> {
4350            None
4351        }
4352    }
4353
4354    /// Startup can fail after an adapter has allocated resources.  Keep a
4355    /// fixture that records whether the failing adapter itself receives the
4356    /// cleanup call, not just the already-started peers.
4357    #[derive(Debug)]
4358    struct FailingStartAdapter {
4359        slot: usize,
4360        stopped: Arc<AtomicUsize>,
4361    }
4362
4363    #[async_trait]
4364    impl AgentAdapter for FailingStartAdapter {
4365        fn slot(&self) -> usize {
4366            self.slot
4367        }
4368
4369        fn capabilities(&self) -> AgentCapabilities {
4370            AgentCapabilities::default()
4371        }
4372
4373        async fn start(&mut self) -> super::AdapterResult<()> {
4374            Err(super::AdapterError::Spawn("startup failed".into()))
4375        }
4376
4377        async fn send_prompt(&mut self, _prompt: String) -> super::AdapterResult<()> {
4378            Ok(())
4379        }
4380
4381        async fn cancel(&mut self) -> super::AdapterResult<bool> {
4382            Ok(false)
4383        }
4384
4385        async fn answer_permission(
4386            &mut self,
4387            _request_id: String,
4388            _answer: PermissionAnswer,
4389        ) -> super::AdapterResult<()> {
4390            Ok(())
4391        }
4392
4393        async fn set_mode(&mut self, _mode: String) -> super::AdapterResult<()> {
4394            Ok(())
4395        }
4396
4397        async fn reload(&mut self) -> super::AdapterResult<()> {
4398            Ok(())
4399        }
4400
4401        async fn stop(&mut self) -> super::AdapterResult<()> {
4402            self.stopped.fetch_add(1, Ordering::Relaxed);
4403            Ok(())
4404        }
4405
4406        async fn next_event(&mut self) -> Option<super::AdapterResult<AgentEvent>> {
4407            None
4408        }
4409    }
4410
4411    #[tokio::test]
4412    async fn relay_stop_attempts_every_adapter_after_one_shutdown_failure() {
4413        let stopped = Arc::new(AtomicUsize::new(0));
4414        let relay = RelayHost::new(
4415            vec![
4416                AdapterHost::new(
4417                    Box::new(StopTrackingAdapter {
4418                        slot: 0,
4419                        stopped: Arc::clone(&stopped),
4420                        fail_stop: true,
4421                    }),
4422                    None,
4423                ),
4424                AdapterHost::new(
4425                    Box::new(StopTrackingAdapter {
4426                        slot: 1,
4427                        stopped: Arc::clone(&stopped),
4428                        fail_stop: false,
4429                    }),
4430                    None,
4431                ),
4432            ],
4433            4,
4434        )
4435        .expect("relay");
4436        let mut relay = relay;
4437
4438        let error = relay.stop().await.expect_err("first stop failure");
4439        assert!(error.to_string().contains("stop failed"));
4440        assert_eq!(stopped.load(Ordering::Relaxed), 2);
4441    }
4442
4443    #[tokio::test]
4444    async fn relay_start_cleans_up_the_adapter_that_failed_startup() {
4445        let stopped = Arc::new(AtomicUsize::new(0));
4446        let mut relay = RelayHost::new(
4447            vec![
4448                AdapterHost::new(
4449                    Box::new(StopTrackingAdapter {
4450                        slot: 0,
4451                        stopped: Arc::clone(&stopped),
4452                        fail_stop: false,
4453                    }),
4454                    None,
4455                ),
4456                AdapterHost::new(
4457                    Box::new(FailingStartAdapter {
4458                        slot: 1,
4459                        stopped: Arc::clone(&stopped),
4460                    }),
4461                    None,
4462                ),
4463            ],
4464            4,
4465        )
4466        .expect("relay");
4467
4468        assert!(relay.start().await.is_err());
4469        assert_eq!(stopped.load(Ordering::Relaxed), 2);
4470    }
4471
4472    #[test]
4473    fn parses_acp_text_without_ui_dependency() {
4474        let event = parse_acp_notification(
4475            2,
4476            r#"{"method":"session/update","params":{"update":{"sessionUpdate":"agent_message_chunk","content":{"type":"text","text":"hello"}}}}"#,
4477        )
4478        .expect("valid ACP")
4479        .expect("text event");
4480        assert_eq!(
4481            event,
4482            AgentEvent::Text {
4483                slot: 2,
4484                text: "hello".into(),
4485            }
4486        );
4487    }
4488
4489    #[test]
4490    fn parses_acp_state_notifications_at_the_adapter_boundary() {
4491        let commands = parse_acp_notification(
4492            3,
4493            r#"{"method":"session/update","params":{"update":{"sessionUpdate":"available_commands_update","availableCommands":[{"name":"review","description":"Review"},{"name":"","description":"bad"},{"name":7}]}}}"#,
4494        )
4495        .expect("valid ACP")
4496        .expect("commands event");
4497        assert_eq!(
4498            commands,
4499            AgentEvent::CommandsReplaced {
4500                slot: 3,
4501                commands: vec![crate::AgentCommand {
4502                    name: "review".into()
4503                }]
4504            }
4505        );
4506
4507        let mode = parse_acp_notification(
4508            3,
4509            r#"{"method":"session/update","params":{"update":{"sessionUpdate":"current_mode_update","currentModeId":"review"}}}"#,
4510        )
4511        .expect("valid ACP")
4512        .expect("mode event");
4513        assert_eq!(
4514            mode,
4515            AgentEvent::ModeUpdated {
4516                slot: 3,
4517                current_mode: "review".into()
4518            }
4519        );
4520
4521        let usage = parse_acp_notification(
4522            3,
4523            r#"{"method":"session/update","params":{"update":{"sessionUpdate":"usage_update","used":4200,"size":128000}}}"#,
4524        )
4525        .expect("valid ACP")
4526        .expect("usage event");
4527        assert_eq!(
4528            usage,
4529            AgentEvent::UsageUpdated {
4530                slot: 3,
4531                usage: crate::UsageUpdate {
4532                    used: 4200,
4533                    size: 128000
4534                }
4535            }
4536        );
4537
4538        let models = parse_acp_notification(
4539            3,
4540            r#"{"method":"session/update","params":{"update":{"sessionUpdate":"config_option_update","configOptions":[{"id":"model","category":"model","type":"select","currentValue":"smart","options":[{"value":"fast","name":"Fast"},{"value":"smart","name":"Smart"}]}]}}}"#,
4541        )
4542        .expect("valid ACP")
4543        .expect("models event");
4544        assert!(matches!(
4545            models,
4546            AgentEvent::ModelsReplaced { slot: 3, models, current_model, .. }
4547                if models.len() == 2 && current_model.as_deref() == Some("smart")
4548        ));
4549        assert_eq!(
4550            parse_model_config(&serde_json::json!({
4551                "configOptions": [{"id": "model", "category": "model", "type": "select", "options": [{"name": "missing value"}]}]
4552            })),
4553            None
4554        );
4555
4556        let user = parse_acp_notification(
4557            3,
4558            r#"{"method":"session/update","params":{"update":{"sessionUpdate":"user_message_chunk","content":{"type":"text","text":"context"}}}}"#,
4559        )
4560        .expect("valid ACP")
4561        .expect("user event");
4562        assert_eq!(
4563            user,
4564            AgentEvent::UserText {
4565                slot: 3,
4566                text: "context".into()
4567            }
4568        );
4569    }
4570
4571    #[test]
4572    fn parses_legacy_gemini_mode_marker_as_state_not_agent_text() {
4573        let event = parse_acp_notification(
4574            0,
4575            r#"{"method":"session/update","params":{"update":{"sessionUpdate":"agent_message_chunk","content":{"type":"text","text":"[MODE_UPDATE] yolo"}}}}"#,
4576        )
4577        .expect("valid ACP")
4578        .expect("mode event");
4579        assert!(matches!(
4580            event,
4581            AgentEvent::ModesReplaced { current_mode: Some(mode), modes, .. }
4582                if mode == "yolo" && modes[0].id == "yolo"
4583        ));
4584    }
4585
4586    #[test]
4587    fn parses_native_agy_text_without_acp_bridge() {
4588        let event = parse_agy_line(
4589            1,
4590            r#"{"event":"step_update","step_update":{"step_type":"agent_response","text_delta":"hello"}}"#,
4591        )
4592        .expect("valid stream-json")
4593        .expect("text event");
4594        assert_eq!(
4595            event,
4596            AgentEvent::Text {
4597                slot: 1,
4598                text: "hello".into(),
4599            }
4600        );
4601    }
4602
4603    #[test]
4604    fn parses_tool_lifecycle_from_each_protocol() {
4605        let agy = parse_agy_line(
4606            1,
4607            r#"{"event":"step_update","step_update":{"step_type":"tool","step_index":4,"tool_name":"run_command","state":"DONE","tool_info":{"output":"ok"}}}"#,
4608        )
4609        .expect("valid native tool")
4610        .expect("tool event");
4611        assert!(matches!(
4612            agy,
4613            AgentEvent::Tool {
4614                update: crate::ToolUpdate {
4615                    status: ToolStatus::Completed,
4616                    ..
4617                },
4618                ..
4619            }
4620        ));
4621
4622        let acp = parse_acp_notification(
4623            1,
4624            r#"{"method":"session/update","params":{"update":{"sessionUpdate":"tool_call_update","toolCallId":"t1","title":"Run tests","status":"failed"}}}"#,
4625        )
4626        .expect("valid ACP tool")
4627        .expect("tool event");
4628        assert!(matches!(
4629            acp,
4630            AgentEvent::Tool {
4631                update: crate::ToolUpdate {
4632                    status: ToolStatus::Failed,
4633                    ..
4634                },
4635                ..
4636            }
4637        ));
4638    }
4639
4640    #[test]
4641    fn parses_terminal_lifecycle_from_acp_and_native_events() {
4642        let created = parse_acp_notification(
4643            0,
4644            r#"{"method":"session/update","params":{"update":{"sessionUpdate":"terminal_created","terminalId":"term-1","command":"cargo test"}}}"#,
4645        )
4646        .expect("valid ACP terminal")
4647        .expect("terminal event");
4648        assert_eq!(
4649            created,
4650            AgentEvent::Terminal {
4651                slot: 0,
4652                event: TerminalEvent::Created {
4653                    id: "term-1".into(),
4654                    command: "cargo test".into(),
4655                },
4656            }
4657        );
4658        let output = parse_agy_line(
4659            1,
4660            r#"{"event":"terminal_output","terminalId":"term-1","output":"ok\n"}"#,
4661        )
4662        .expect("valid native terminal")
4663        .expect("terminal event");
4664        assert_eq!(
4665            output,
4666            AgentEvent::Terminal {
4667                slot: 1,
4668                event: TerminalEvent::Output {
4669                    id: "term-1".into(),
4670                    text: "ok\n".into(),
4671                },
4672            }
4673        );
4674        let released = parse_agy_line(1, r#"{"event":"terminal_released","terminalId":"term-1"}"#)
4675            .expect("valid native release")
4676            .expect("terminal event");
4677        assert!(matches!(
4678            released,
4679            AgentEvent::Terminal {
4680                event: TerminalEvent::Released { id },
4681                ..
4682            } if id == "term-1"
4683        ));
4684    }
4685
4686    #[test]
4687    fn parses_acp_permission_requests() {
4688        let event = parse_acp_notification(
4689            0,
4690            r#"{"method":"session/update","params":{"update":{"sessionUpdate":"request_permission","toolCall":{"toolCallId":"t1","title":"Write file"},"options":[{"name":"Allow once","optionId":"allow-once"},{"name":"Reject","optionId":"reject"}]}}}"#,
4691        )
4692        .expect("valid permission")
4693        .expect("permission event");
4694        assert!(matches!(
4695            event,
4696            AgentEvent::Permission { request, .. }
4697                if request.id == "t1"
4698                    && request.title == "Write file"
4699                    && request.options == ["Allow once", "Reject"]
4700                    && request.option_ids == ["allow-once", "reject"]
4701        ));
4702    }
4703
4704    #[test]
4705    fn parses_acp_permission_request_as_json_rpc_request() {
4706        let event = parse_acp_notification(
4707            2,
4708            r#"{"jsonrpc":"2.0","id":17,"method":"session/request_permission","params":{"sessionId":"s1","toolCall":{"title":"Write file"},"options":[{"optionId":"allow-once"},{"name":"reject"}]}}"#,
4709        )
4710        .expect("valid permission request")
4711        .expect("permission event");
4712        assert!(matches!(
4713            event,
4714            AgentEvent::Permission { request, .. }
4715                if request.id == "17"
4716                    && request.title == "Write file"
4717                    && request.options == ["allow-once", "reject"]
4718                    && request.option_ids == ["allow-once", "reject"]
4719        ));
4720    }
4721
4722    #[tokio::test]
4723    async fn native_adapter_explicitly_rejects_permission_answers() {
4724        let mut adapter = AgyAdapter::new(0, std::env::current_dir().expect("cwd"), "agy");
4725        assert_eq!(
4726            adapter
4727                .answer_permission(
4728                    "request".into(),
4729                    PermissionAnswer::Selected {
4730                        option_id: "allow".into()
4731                    },
4732                )
4733                .await,
4734            Err(super::AdapterError::Unsupported("permission answer"))
4735        );
4736    }
4737
4738    #[tokio::test]
4739    async fn native_mode_policy_aliases_resolve_to_its_supported_id() {
4740        let mut adapter = AgyAdapter::new(0, std::env::current_dir().expect("cwd"), "agy");
4741        adapter
4742            .set_mode("full-access".into())
4743            .await
4744            .expect("auto-pilot alias");
4745        assert!(matches!(
4746            adapter.next_event().await,
4747            Some(Ok(AgentEvent::ModesReplaced { current_mode: Some(mode), .. })) if mode == "agy:full-access"
4748        ));
4749    }
4750
4751    #[tokio::test]
4752    async fn native_turns_receive_a_twenty_four_hour_timeout() {
4753        let script_path = unique_test_path("codeswarm-native-timeout", "sh");
4754        std::fs::write(
4755            &script_path,
4756            r#"#!/bin/sh
4757seen=0
4758while [ "$#" -gt 0 ]; do
4759    case "$1" in
4760        --print-timeout)
4761            shift
4762            [ "$1" = "1440m" ] || exit 2
4763            seen=$((seen + 1))
4764            ;;
4765    esac
4766    shift
4767done
4768[ "$seen" = 1 ] || exit 3
4769printf '%s\n' '{"event":"result","result":{"status":"SUCCESS","response":"timeout accepted"}}'
4770"#,
4771        )
4772        .unwrap();
4773        let mut adapter = AgyAdapter::with_session_id(
4774            0,
4775            std::env::current_dir().unwrap(),
4776            format!("sh {}", script_path.display()),
4777            "saved-session",
4778        );
4779        adapter.start().await.unwrap();
4780        adapter.next_event().await.unwrap().unwrap();
4781        adapter.next_event().await.unwrap().unwrap();
4782        for prompt in ["first task", "follow-up task"] {
4783            adapter.send_prompt(prompt.into()).await.unwrap();
4784            assert!(
4785                matches!(adapter.next_event().await, Some(Ok(AgentEvent::Text { text, .. })) if text == "timeout accepted")
4786            );
4787            assert!(matches!(
4788                adapter.next_event().await,
4789                Some(Ok(AgentEvent::TurnComplete { .. }))
4790            ));
4791        }
4792        adapter.stop().await.unwrap();
4793        std::fs::remove_file(script_path).unwrap();
4794    }
4795
4796    #[tokio::test]
4797    async fn native_stream_persists_announced_conversation_for_follow_up_turns() {
4798        let script_path = unique_test_path("codeswarm-agy-session", "sh");
4799        std::fs::write(
4800            &script_path,
4801            "#!/bin/sh\nprintf '%s\\n' '{\"event\":\"init\",\"conversation_id\":\"native-session\"}' '{\"event\":\"step_update\",\"step_update\":{\"step_type\":\"agent_response\",\"text_delta\":\"ok\"}}' '{\"event\":\"result\",\"result\":{\"status\":\"SUCCESS\",\"response\":\"ok\"}}'\n",
4802        )
4803        .expect("write native test script");
4804        let mut adapter = AgyAdapter::new(
4805            0,
4806            std::env::current_dir().expect("cwd"),
4807            format!("sh {}", script_path.display()),
4808        );
4809        adapter.start().await.expect("start native adapter");
4810        // Startup emits its mode catalog and readiness before a turn.
4811        assert!(adapter.next_event().await.is_some());
4812        assert!(adapter.next_event().await.is_some());
4813        adapter
4814            .send_prompt("first".into())
4815            .await
4816            .expect("first prompt");
4817        while !matches!(
4818            adapter.next_event().await,
4819            Some(Ok(AgentEvent::TurnComplete { .. }))
4820        ) {}
4821        assert_eq!(adapter.session_id.as_deref(), Some("native-session"));
4822        adapter
4823            .send_prompt("follow up".into())
4824            .await
4825            .expect("follow-up prompt");
4826        while !matches!(
4827            adapter.next_event().await,
4828            Some(Ok(AgentEvent::TurnComplete { .. }))
4829        ) {}
4830        assert_eq!(adapter.session_id.as_deref(), Some("native-session"));
4831        adapter.stop().await.expect("stop native adapter");
4832        std::fs::remove_file(script_path).expect("cleanup native script");
4833    }
4834
4835    #[tokio::test]
4836    async fn native_stream_reports_unsuccessful_result_as_crash_not_completion() {
4837        let script_path = unique_test_path("codeswarm-agy-failure", "sh");
4838        std::fs::write(
4839            &script_path,
4840            "#!/bin/sh\nprintf '%s\\n' '{\"event\":\"result\",\"result\":{\"status\":\"FAILURE\",\"error\":\"agent failed\"}}'\n",
4841        )
4842        .expect("write native test script");
4843        let mut adapter = AgyAdapter::new(
4844            0,
4845            std::env::current_dir().expect("cwd"),
4846            format!("sh {}", script_path.display()),
4847        );
4848        adapter.start().await.expect("start native adapter");
4849        assert!(adapter.next_event().await.is_some());
4850        assert!(adapter.next_event().await.is_some());
4851        adapter.send_prompt("fail".into()).await.expect("prompt");
4852        assert!(matches!(
4853            adapter.next_event().await,
4854            Some(Ok(AgentEvent::Failed { started: true, detail, .. }))
4855                if detail == "agent failed"
4856        ));
4857        adapter.stop().await.expect("stop native adapter");
4858        std::fs::remove_file(script_path).expect("cleanup native script");
4859    }
4860
4861    #[tokio::test]
4862    async fn acp_adapter_initializes_session_and_completes_a_prompt() {
4863        let script = r#"read _; echo '{"jsonrpc":"2.0","id":1,"result":{"agentCapabilities":{"loadSession":true}}}'; read _; echo '{"jsonrpc":"2.0","id":2,"result":{"sessionId":"session-1","modes":{"currentModeId":"plan","availableModes":[{"id":"plan","name":"Plan"}]}}}'; read _; echo '{"jsonrpc":"2.0","method":"session/update","params":{"update":{"sessionUpdate":"agent_message_chunk","content":{"type":"text","text":"hello"}}}}'; echo '{"jsonrpc":"2.0","id":3,"result":{"stopReason":"end_turn"}}'"#;
4864        let cwd = std::env::current_dir().expect("cwd");
4865        let mut adapter = AcpAdapter::new(0, cwd, "sh", vec!["-c".into(), script.into()]);
4866        adapter.start().await.expect("initialize");
4867        assert!(matches!(
4868            adapter.next_event().await,
4869            Some(Ok(AgentEvent::ModesReplaced { .. }))
4870        ));
4871        assert!(matches!(
4872            adapter.next_event().await,
4873            Some(Ok(AgentEvent::Ready { .. }))
4874        ));
4875        adapter.send_prompt("hello".into()).await.expect("prompt");
4876        assert!(matches!(
4877            adapter.next_event().await,
4878            Some(Ok(AgentEvent::Text { text, .. })) if text == "hello"
4879        ));
4880        assert!(matches!(
4881            adapter.next_event().await,
4882            Some(Ok(AgentEvent::TurnComplete { .. }))
4883        ));
4884    }
4885
4886    #[tokio::test]
4887    async fn acp_string_prompt_ids_complete_and_allow_a_follow_up_turn() {
4888        let script = r#"read _; echo '{"jsonrpc":"2.0","id":1,"result":{"agentCapabilities":{}}}'; read _; echo '{"jsonrpc":"2.0","id":2,"result":{"sessionId":"session-1","modes":{"currentModeId":"plan","availableModes":[{"id":"plan","name":"Plan"}]}}}'; read _; echo '{"jsonrpc":"2.0","method":"session/update","params":{"update":{"sessionUpdate":"agent_message_chunk","content":{"type":"text","text":"first"}}}}'; echo '{"jsonrpc":"2.0","id":"3","result":{"stopReason":"end_turn"}}'; read _; echo '{"jsonrpc":"2.0","method":"session/update","params":{"update":{"sessionUpdate":"agent_message_chunk","content":{"type":"text","text":"second"}}}}'; echo '{"jsonrpc":"2.0","id":"4","result":{"stopReason":"end_turn"}}'"#;
4889        let cwd = std::env::current_dir().expect("cwd");
4890        let mut adapter = AcpAdapter::new(1, cwd, "sh", vec!["-c".into(), script.into()]);
4891        adapter.start().await.expect("initialize");
4892        assert!(adapter.next_event().await.is_some());
4893        assert!(adapter.next_event().await.is_some());
4894
4895        for (prompt, expected) in [("first prompt", "first"), ("follow up", "second")] {
4896            adapter.send_prompt(prompt.into()).await.expect("prompt");
4897            assert!(matches!(
4898                adapter.next_event().await,
4899                Some(Ok(AgentEvent::Text { text, .. })) if text == expected
4900            ));
4901            assert!(matches!(
4902                adapter.next_event().await,
4903                Some(Ok(AgentEvent::TurnComplete { slot: 1 }))
4904            ));
4905        }
4906        adapter.stop().await.expect("stop");
4907    }
4908
4909    #[tokio::test]
4910    async fn empty_acp_mode_catalog_disables_mode_control() {
4911        let script = r#"read _; echo '{"jsonrpc":"2.0","id":1,"result":{"agentCapabilities":{}}}'; read _; echo '{"jsonrpc":"2.0","id":2,"result":{"sessionId":"session-1","modes":{"availableModes":[]}}}'"#;
4912        let cwd = std::env::current_dir().expect("cwd");
4913        let mut adapter = AcpAdapter::new(0, cwd, "sh", vec!["-c".into(), script.into()]);
4914        adapter.start().await.expect("initialize");
4915        assert!(!adapter.capabilities().supports_modes);
4916        assert!(matches!(
4917            adapter.next_event().await,
4918            Some(Ok(AgentEvent::ModesReplaced { modes, .. })) if modes.is_empty()
4919        ));
4920        assert!(matches!(
4921            adapter.next_event().await,
4922            Some(Ok(AgentEvent::Ready { capabilities, .. })) if !capabilities.supports_modes
4923        ));
4924        adapter.stop().await.expect("stop");
4925    }
4926
4927    #[tokio::test]
4928    async fn acp_models_are_discovered_live_and_changed_through_session_config() {
4929        let script = r#"read _; echo '{"jsonrpc":"2.0","id":1,"result":{"agentCapabilities":{}}}'; read _; echo '{"jsonrpc":"2.0","id":2,"result":{"sessionId":"session-1","configOptions":[{"id":"model","category":"model","type":"select","currentValue":"fast","options":[{"value":"fast","name":"Fast"},{"value":"smart","name":"Smart"}]}]}}'; read request; case "$request" in *session/set_config_option*\"value\":\"smart\"*) echo '{"jsonrpc":"2.0","id":3,"result":{}}';; *) echo '{"jsonrpc":"2.0","id":3,"error":{"code":-32602,"message":"wrong model request"}}';; esac"#;
4930        let cwd = std::env::current_dir().expect("cwd");
4931        let mut adapter = AcpAdapter::new(0, cwd, "sh", vec!["-c".into(), script.into()]);
4932        adapter.start().await.expect("initialize");
4933        assert!(adapter.capabilities().supports_models);
4934        assert!(matches!(
4935            adapter.next_event().await,
4936            Some(Ok(AgentEvent::ModelsReplaced { config_id, models, current_model, .. }))
4937                if config_id == "model"
4938                    && models == [Mode { id: "fast".into(), label: "Fast".into() }, Mode { id: "smart".into(), label: "Smart".into() }]
4939                    && current_model.as_deref() == Some("fast")
4940        ));
4941        assert!(matches!(
4942            adapter.next_event().await,
4943            Some(Ok(AgentEvent::Ready { capabilities, .. })) if capabilities.supports_models
4944        ));
4945        adapter.set_model("smart".into()).await.expect("set model");
4946        assert!(adapter.set_model("invented".into()).await.is_err());
4947        adapter.stop().await.expect("stop");
4948    }
4949
4950    #[tokio::test]
4951    async fn acp_mode_change_is_acknowledged_without_provider_notification() {
4952        let script = r#"read _; echo '{"jsonrpc":"2.0","id":1,"result":{"agentCapabilities":{}}}'; read _; echo '{"jsonrpc":"2.0","id":2,"result":{"sessionId":"session-1","modes":{"currentModeId":"plan","availableModes":[{"id":"plan","name":"Plan"},{"id":"yolo","name":"YOLO"}]}}}'; read _; echo '{"jsonrpc":"2.0","id":3,"result":{}}'"#;
4953        let cwd = std::env::current_dir().expect("cwd");
4954        let mut adapter = AcpAdapter::new(0, cwd, "sh", vec!["-c".into(), script.into()]);
4955        adapter.start().await.expect("initialize");
4956        adapter
4957            .set_mode(crate::policy::DEFAULT_POLICY_ID.into())
4958            .await
4959            .expect("set mode");
4960        assert!(matches!(
4961            adapter.next_event().await,
4962            Some(Ok(AgentEvent::ModesReplaced { .. }))
4963        ));
4964        assert!(matches!(
4965            adapter.next_event().await,
4966            Some(Ok(AgentEvent::Ready { .. }))
4967        ));
4968        assert!(matches!(
4969            adapter.next_event().await,
4970            Some(Ok(AgentEvent::ModeUpdated { current_mode, .. })) if current_mode == "yolo"
4971        ));
4972        adapter.stop().await.expect("stop");
4973    }
4974
4975    #[tokio::test]
4976    async fn acp_reload_preserves_a_loadable_session_id() {
4977        let cwd = std::env::current_dir().expect("cwd");
4978        let mut adapter = AcpAdapter::with_session_id(
4979            0,
4980            cwd,
4981            "__codeswarm_missing_acp_for_reload_test__",
4982            Vec::new(),
4983            "saved-session",
4984        );
4985        adapter.capabilities.supports_session_load = true;
4986        // A failed replacement process still must not erase the session ID:
4987        // the coordinator can report the startup error and offer another
4988        // reload, preserving the only handle that can resume the conversation.
4989        assert!(adapter.reload().await.is_err());
4990        assert_eq!(adapter.session_id.as_deref(), Some("saved-session"));
4991    }
4992
4993    #[tokio::test]
4994    async fn acp_reload_starts_a_fresh_session_when_loading_is_not_supported() {
4995        let cwd = std::env::current_dir().expect("cwd");
4996        let mut adapter = AcpAdapter::with_session_id(
4997            0,
4998            cwd,
4999            "__codeswarm_missing_nonloadable_acp__",
5000            Vec::new(),
5001            "stale-session",
5002        );
5003        adapter.capabilities.supports_session_load = false;
5004        assert!(adapter.reload().await.is_err());
5005        assert_eq!(adapter.session_id, None);
5006    }
5007
5008    #[tokio::test]
5009    async fn acp_stream_ignores_diagnostic_junk_and_surfaces_prompt_errors() {
5010        let script = r#"read _; echo '{"jsonrpc":"2.0","id":1,"result":{"agentCapabilities":{}}}'; read _; echo '{"jsonrpc":"2.0","id":2,"result":{"sessionId":"s1"}}'; read _; echo 'diagnostic from wrapper'; echo '{"jsonrpc":"2.0","method":"session/update","params":{"update":{"sessionUpdate":"agent_message_chunk","content":{"type":"text","text":"partial"}}}}'; echo '{"jsonrpc":"2.0","id":3,"error":{"code":-32000,"message":"capacity"}}'"#;
5011        let cwd = std::env::current_dir().expect("cwd");
5012        let mut adapter = AcpAdapter::new(0, cwd, "sh", vec!["-c".into(), script.into()]);
5013        adapter.start().await.expect("initialize");
5014        assert!(matches!(
5015            adapter.next_event().await,
5016            Some(Ok(AgentEvent::Ready { .. }))
5017        ));
5018        adapter.send_prompt("hello".into()).await.expect("prompt");
5019        assert!(matches!(
5020            adapter.next_event().await,
5021            Some(Ok(AgentEvent::Text { text, .. })) if text == "partial"
5022        ));
5023        assert!(matches!(
5024            adapter.next_event().await,
5025            Some(Err(super::AdapterError::Protocol(detail))) if detail.contains("capacity")
5026        ));
5027    }
5028
5029    #[tokio::test]
5030    async fn acp_load_replays_history_without_starting_a_turn() {
5031        let script = r#"
5032read _
5033echo '{"jsonrpc":"2.0","id":1,"result":{"agentCapabilities":{"loadSession":true}}}'
5034read request
5035case "$request" in *session/load*) ;; *) exit 2;; esac
5036echo '{"method":"session/update","params":{"update":{"sessionUpdate":"user_message_chunk","content":{"text":"old question"}}}}'
5037echo '{"method":"session/update","params":{"update":{"sessionUpdate":"agent_message_chunk","content":{"text":"old answer"}}}}'
5038echo '{"method":"session/update","params":{"update":{"sessionUpdate":"agent_thought_chunk","content":{"text":"old reasoning"}}}}'
5039echo '{"method":"session/update","params":{"update":{"sessionUpdate":"tool_call","toolCallId":"old-tool","title":"Read","status":"in_progress"}}}'
5040echo '{"method":"session/update","params":{"update":{"sessionUpdate":"tool_call_update","toolCallId":"old-tool","title":"Read","status":"completed"}}}'
5041echo '{"jsonrpc":"2.0","id":2,"result":{}}'
5042read request
5043case "$request" in *session/prompt*) ;; *) exit 3;; esac
5044echo '{"method":"session/update","params":{"update":{"sessionUpdate":"agent_message_chunk","content":{"text":"new answer"}}}}'
5045echo '{"jsonrpc":"2.0","id":3,"result":{"stopReason":"end_turn"}}'
5046"#;
5047        let mut adapter = AcpAdapter::with_session_id(
5048            2,
5049            std::env::current_dir().unwrap(),
5050            "sh",
5051            vec!["-c".into(), script.into()],
5052            "saved",
5053        );
5054        adapter.start().await.unwrap();
5055        let mut state = crate::SessionState::new(3);
5056        for _ in 0..5 {
5057            let event = adapter.next_event().await.unwrap().unwrap();
5058            assert!(matches!(&event, AgentEvent::History { slot: 2, .. }));
5059            crate::reduce(&mut state, event);
5060            assert_eq!(state.active_slot, None);
5061        }
5062        assert!(matches!(
5063            adapter.next_event().await,
5064            Some(Ok(AgentEvent::Ready { slot: 2, .. }))
5065        ));
5066        adapter.send_prompt("new question".into()).await.unwrap();
5067        assert!(
5068            matches!(adapter.next_event().await, Some(Ok(AgentEvent::Text { text, .. })) if text == "new answer")
5069        );
5070        assert!(matches!(
5071            adapter.next_event().await,
5072            Some(Ok(AgentEvent::TurnComplete { slot: 2 }))
5073        ));
5074        adapter.stop().await.unwrap();
5075    }
5076
5077    #[tokio::test]
5078    async fn acp_adapter_loads_existing_session_when_capability_allows_it() {
5079        let script = r#"read _; echo '{"jsonrpc":"2.0","id":1,"result":{"agentCapabilities":{"loadSession":true}}}'; read _; echo '{"jsonrpc":"2.0","id":2,"result":{}}'"#;
5080        let cwd = std::env::current_dir().expect("cwd");
5081        let mut adapter = AcpAdapter::with_session_id(
5082            0,
5083            cwd,
5084            "sh",
5085            vec!["-c".into(), script.into()],
5086            "existing-session",
5087        );
5088        adapter.start().await.expect("load existing session");
5089        assert!(matches!(
5090            adapter.next_event().await,
5091            Some(Ok(AgentEvent::Ready { .. }))
5092        ));
5093    }
5094
5095    #[tokio::test]
5096    async fn acp_start_failure_reaps_transport_process() {
5097        // The child emits an invalid initialize response and exits. The
5098        // adapter must not retain a live child after protocol startup fails;
5099        // this is the path used when a configured ACP command is unavailable
5100        // or speaks a different protocol.
5101        let mut adapter = AcpAdapter::new(
5102            0,
5103            std::env::current_dir().expect("cwd"),
5104            "sh",
5105            vec!["-c".into(), "printf 'not-json\\n'".into()],
5106        );
5107        assert!(adapter.start().await.is_err());
5108        assert!(adapter.child.is_none());
5109        assert!(adapter.reader.is_none());
5110    }
5111
5112    #[tokio::test]
5113    async fn acp_adapter_answers_permission_json_rpc_requests() {
5114        let path = std::env::temp_dir().join(format!(
5115            "codeswarm-permission-answer-{}",
5116            std::process::id()
5117        ));
5118        let script = format!(
5119            r#"read _; echo '{{"jsonrpc":"2.0","id":1,"result":{{"agentCapabilities":{{}}}}}}'; read _; echo '{{"jsonrpc":"2.0","id":2,"result":{{"sessionId":"s1"}}}}'; read _; echo '{{"jsonrpc":"2.0","id":9,"method":"session/request_permission","params":{{"toolCall":{{"title":"Write file"}},"options":[{{"optionId":"allow-once","name":"Allow once"}}]}}}}'; read answer; printf '%s' "$answer" > '{}'; echo '{{"jsonrpc":"2.0","id":3,"result":{{"stopReason":"end_turn"}}}}'"#,
5120            path.display()
5121        );
5122        let mut adapter = AcpAdapter::new(
5123            0,
5124            std::env::current_dir().expect("cwd"),
5125            "sh",
5126            vec!["-c".into(), script],
5127        );
5128        adapter.start().await.expect("start ACP");
5129        assert!(matches!(
5130            adapter.next_event().await,
5131            Some(Ok(AgentEvent::Ready { .. }))
5132        ));
5133        adapter.send_prompt("do it".into()).await.expect("prompt");
5134        assert!(matches!(
5135            adapter.next_event().await,
5136            Some(Ok(AgentEvent::Permission { request, .. }))
5137                if request.id == "9"
5138                    && request.options == ["Allow once"]
5139                    && request.option_ids == ["allow-once"]
5140        ));
5141        adapter
5142            .answer_permission(
5143                "9".into(),
5144                PermissionAnswer::Selected {
5145                    option_id: "allow-once".into(),
5146                },
5147            )
5148            .await
5149            .expect("permission answer");
5150        assert!(matches!(
5151            adapter.next_event().await,
5152            Some(Ok(AgentEvent::TurnComplete { .. }))
5153        ));
5154        let answer: Value = serde_json::from_str(
5155            &std::fs::read_to_string(&path).expect("captured permission answer"),
5156        )
5157        .expect("valid JSON-RPC answer");
5158        assert_eq!(answer["id"], 9);
5159        assert_eq!(answer["result"]["outcome"]["outcome"], "selected");
5160        assert_eq!(answer["result"]["outcome"]["optionId"], "allow-once");
5161        std::fs::remove_file(path).expect("cleanup");
5162    }
5163
5164    #[test]
5165    fn empty_acp_permission_options_are_not_exposed_as_a_blank_prompt() {
5166        let event = parse_acp_notification(
5167            0,
5168            r#"{"jsonrpc":"2.0","id":17,"method":"session/request_permission","params":{"options":[]}}"#,
5169        )
5170        .expect("valid JSON-RPC request");
5171        assert!(event.is_none());
5172    }
5173
5174    #[tokio::test]
5175    async fn native_stream_uses_success_result_response_when_chunks_are_missing() {
5176        let script_path = unique_test_path("codeswarm-agy-result-response", "sh");
5177        std::fs::write(
5178            &script_path,
5179            "#!/bin/sh\nprintf '%s\\n' '{\"event\":\"step_update\",\"step_update\":\"malformed\"}' '{\"event\":\"result\",\"result\":{\"status\":\"SUCCESS\",\"response\":\"Recovered.\"}}'\n",
5180        )
5181        .expect("write native test script");
5182        let mut adapter = AgyAdapter::new(
5183            0,
5184            std::env::current_dir().expect("cwd"),
5185            format!("sh {}", script_path.display()),
5186        );
5187        adapter.start().await.expect("start native adapter");
5188        assert!(adapter.next_event().await.is_some());
5189        assert!(adapter.next_event().await.is_some());
5190        adapter
5191            .send_prompt("continue".into())
5192            .await
5193            .expect("prompt");
5194        assert!(matches!(
5195            adapter.next_event().await,
5196            Some(Ok(AgentEvent::Text { text, .. })) if text == "Recovered."
5197        ));
5198        assert!(matches!(
5199            adapter.next_event().await,
5200            Some(Ok(AgentEvent::TurnComplete { .. }))
5201        ));
5202        adapter.stop().await.expect("stop native adapter");
5203        std::fs::remove_file(script_path).expect("cleanup native script");
5204    }
5205
5206    #[test]
5207    fn acp_workspace_file_access_is_root_bound_and_size_limited() {
5208        let root = std::env::temp_dir().join(format!("codeswarm-fs-{}", std::process::id()));
5209        let _ = std::fs::remove_dir_all(&root);
5210        std::fs::create_dir_all(&root).expect("workspace");
5211        std::fs::write(root.join("inside.txt"), "one\ntwo\nthree\n").expect("inside file");
5212        let outside =
5213            std::env::temp_dir().join(format!("codeswarm-outside-{}", std::process::id()));
5214        std::fs::write(&outside, "secret").expect("outside file");
5215        let link = root.join("outside-link");
5216        #[cfg(unix)]
5217        std::os::unix::fs::symlink(&outside, &link).expect("symlink");
5218        let adapter = AcpAdapter::new(0, root.clone(), "unused", Vec::new());
5219
5220        assert_eq!(
5221            adapter
5222                .read_workspace_text("inside.txt", Some(2), Some(1))
5223                .expect("read inside"),
5224            "two"
5225        );
5226        std::fs::write(
5227            root.join("large.txt"),
5228            vec![b'x'; MAX_FILE_READ_BYTES + 1024],
5229        )
5230        .expect("large file");
5231        let bounded = adapter
5232            .read_workspace_text("large.txt", None, None)
5233            .expect("bounded read");
5234        assert!(bounded.len() <= MAX_FILE_READ_BYTES);
5235        #[cfg(unix)]
5236        {
5237            std::os::unix::fs::symlink(root.join("inside.txt"), root.join("inside-link"))
5238                .expect("internal symlink");
5239            assert_eq!(
5240                adapter
5241                    .read_workspace_text("inside-link", None, None)
5242                    .expect("read internal symlink"),
5243                "one\ntwo\nthree\n"
5244            );
5245        }
5246        assert!(adapter.workspace_path("../codeswarm-outside").is_err());
5247        assert!(
5248            adapter
5249                .workspace_path(&outside.display().to_string())
5250                .is_err()
5251        );
5252        #[cfg(unix)]
5253        assert!(adapter.workspace_path("outside-link").is_err());
5254        #[cfg(unix)]
5255        std::fs::remove_file(link).expect("cleanup symlink");
5256        #[cfg(unix)]
5257        std::fs::remove_file(root.join("inside-link")).expect("internal link cleanup");
5258        std::fs::remove_file(outside).expect("cleanup outside");
5259        std::fs::remove_dir_all(root).expect("cleanup workspace");
5260    }
5261
5262    #[tokio::test]
5263    async fn running_terminal_output_omits_exit_status_until_completion() {
5264        let root = unique_test_path("codeswarm-terminal-output", "dir");
5265        std::fs::create_dir_all(&root).expect("workspace");
5266        let mut adapter = AcpAdapter::new(0, root.clone(), "unused", Vec::new());
5267        let result = adapter
5268            .terminal_create(&serde_json::json!({
5269                "command": "sh",
5270                "args": ["-c", "sleep 0.2; printf done"],
5271                "cwd": ".",
5272            }))
5273            .await
5274            .expect("terminal create");
5275        let id = result["terminalId"].as_str().expect("terminal id");
5276        let output = adapter.terminal_output(id).await.expect("terminal output");
5277        assert!(output.get("exitStatus").is_none());
5278        if let Some(terminal) = adapter.terminals.remove(id) {
5279            terminal.stop().await;
5280        }
5281        std::fs::remove_dir_all(root).expect("cleanup workspace");
5282    }
5283
5284    #[tokio::test]
5285    async fn acp_adapter_answers_workspace_read_requests() {
5286        let root =
5287            std::env::temp_dir().join(format!("codeswarm-fs-request-{}", std::process::id()));
5288        let _ = std::fs::remove_dir_all(&root);
5289        std::fs::create_dir_all(&root).expect("workspace");
5290        let source = root.join("inside.txt");
5291        let answer = root.join("answer.json");
5292        std::fs::write(&source, "workspace content").expect("source");
5293        let script = format!(
5294            r#"read _; echo '{{"jsonrpc":"2.0","id":1,"result":{{"agentCapabilities":{{}}}}}}'; read _; echo '{{"jsonrpc":"2.0","id":2,"result":{{"sessionId":"s1"}}}}'; read _; echo '{{"jsonrpc":"2.0","id":9,"method":"fs/read_text_file","params":{{"sessionId":"s1","path":"{}"}}}}'; read response; printf '%s' "$response" > '{}'; echo '{{"jsonrpc":"2.0","id":3,"result":{{"stopReason":"end_turn"}}}}'"#,
5295            source.display(),
5296            answer.display(),
5297        );
5298        let mut adapter = AcpAdapter::new(0, root.clone(), "sh", vec!["-c".into(), script]);
5299        adapter.start().await.expect("start ACP");
5300        assert!(matches!(
5301            adapter.next_event().await,
5302            Some(Ok(AgentEvent::Ready { .. }))
5303        ));
5304        adapter.send_prompt("read it".into()).await.expect("prompt");
5305        assert!(matches!(
5306            adapter.next_event().await,
5307            Some(Ok(AgentEvent::TurnComplete { .. }))
5308        ));
5309        let response: Value =
5310            serde_json::from_str(&std::fs::read_to_string(&answer).expect("captured fs response"))
5311                .expect("response JSON");
5312        assert_eq!(response["id"], 9);
5313        assert_eq!(response["result"]["content"], "workspace content");
5314        adapter.stop().await.expect("stop ACP");
5315        std::fs::remove_dir_all(root).expect("cleanup workspace");
5316    }
5317
5318    #[tokio::test]
5319    async fn acp_adapter_runs_and_reports_client_mediated_terminals() {
5320        let root =
5321            std::env::temp_dir().join(format!("codeswarm-terminal-request-{}", std::process::id()));
5322        let _ = std::fs::remove_dir_all(&root);
5323        std::fs::create_dir_all(&root).expect("workspace");
5324        let create_request = serde_json::json!({
5325            "jsonrpc": "2.0",
5326            "id": 9,
5327            "method": "terminal/create",
5328            "params": {
5329                "sessionId": "s1",
5330                "command": "sh",
5331                "args": ["-c", "sleep 0.1; printf terminal-ok"],
5332                "cwd": ".",
5333            },
5334        });
5335        let wait_request = serde_json::json!({
5336            "jsonrpc": "2.0",
5337            "id": 10,
5338            "method": "terminal/wait_for_exit",
5339            "params": {"sessionId": "s1", "terminalId": "terminal-1"},
5340        });
5341        let output_request = serde_json::json!({
5342            "jsonrpc": "2.0",
5343            "id": 11,
5344            "method": "terminal/output",
5345            "params": {"sessionId": "s1", "terminalId": "terminal-1"},
5346        });
5347        let create_answer = root.join("create-answer.json");
5348        let wait_answer = root.join("wait-answer.json");
5349        let output_answer = root.join("output-answer.json");
5350        let script = format!(
5351            "read _; echo '{{\"jsonrpc\":\"2.0\",\"id\":1,\"result\":{{\"agentCapabilities\":{{}}}}}}'; read _; echo '{{\"jsonrpc\":\"2.0\",\"id\":2,\"result\":{{\"sessionId\":\"s1\"}}}}'; read _; echo '{}'; read response; printf '%s' \"$response\" > '{}'; echo '{}'; read response; printf '%s' \"$response\" > '{}'; echo '{}'; read response; printf '%s' \"$response\" > '{}'; echo '{{\"jsonrpc\":\"2.0\",\"id\":3,\"result\":{{\"stopReason\":\"end_turn\"}}}}'",
5352            create_request,
5353            create_answer.display(),
5354            wait_request,
5355            wait_answer.display(),
5356            output_request,
5357            output_answer.display(),
5358        );
5359        let mut adapter = AcpAdapter::new(0, root.clone(), "sh", vec!["-c".into(), script]);
5360        adapter.start().await.expect("start ACP");
5361        assert!(matches!(
5362            adapter.next_event().await,
5363            Some(Ok(AgentEvent::Ready { .. }))
5364        ));
5365        adapter
5366            .send_prompt("run terminal".into())
5367            .await
5368            .expect("prompt");
5369        let mut saw_complete = false;
5370        for _ in 0..6 {
5371            match adapter.next_event().await {
5372                Some(Ok(AgentEvent::TurnComplete { .. })) => {
5373                    saw_complete = true;
5374                    break;
5375                }
5376                Some(_) => {}
5377                None => break,
5378            }
5379        }
5380        assert!(saw_complete, "terminal requests should not stall ACP");
5381        let create: Value = serde_json::from_str(
5382            &std::fs::read_to_string(&create_answer).expect("captured create response"),
5383        )
5384        .expect("create JSON");
5385        assert_eq!(create["result"]["terminalId"], "terminal-1");
5386        let output: Value = serde_json::from_str(
5387            &std::fs::read_to_string(&output_answer).expect("captured output response"),
5388        )
5389        .expect("output JSON");
5390        assert!(
5391            output["result"]["output"]
5392                .as_str()
5393                .unwrap_or_default()
5394                .contains("terminal-ok"),
5395            "output response: {output}"
5396        );
5397        adapter.stop().await.expect("stop ACP");
5398        std::fs::remove_dir_all(root).expect("cleanup workspace");
5399    }
5400
5401    #[tokio::test]
5402    async fn host_reduces_and_persists_adapter_events() {
5403        let path =
5404            std::env::temp_dir().join(format!("codeswarm-host-{}.jsonl", std::process::id()));
5405        let adapter = ScriptedAdapter::new(
5406            0,
5407            AgentCapabilities::default(),
5408            [AgentEvent::Text {
5409                slot: 0,
5410                text: "hello".into(),
5411            }],
5412        );
5413        let mut host = AdapterHost::new(Box::new(adapter), Some(EventLog::open(&path)));
5414        host.start().await.expect("start");
5415        host.next_effects()
5416            .await
5417            .expect("event")
5418            .expect("valid event");
5419        assert_eq!(host.state.public_text[0].1, "hello");
5420        assert_eq!(EventLog::open(&path).read().expect("read").len(), 1);
5421        std::fs::remove_file(path).expect("cleanup");
5422    }
5423
5424    #[tokio::test]
5425    async fn relay_applies_default_policy_before_the_first_prompt() {
5426        let first_log = Arc::new(Mutex::new(Vec::new()));
5427        let second_log = Arc::new(Mutex::new(Vec::new()));
5428        let first = AdapterHost::new(
5429            Box::new(ModeOrderAdapter {
5430                slot: 0,
5431                log: Arc::clone(&first_log),
5432                phase: 0,
5433            }),
5434            None,
5435        );
5436        let second = AdapterHost::new(
5437            Box::new(ModeOrderAdapter {
5438                slot: 1,
5439                log: Arc::clone(&second_log),
5440                phase: 0,
5441            }),
5442            None,
5443        );
5444        let mut relay = RelayHost::new(vec![first, second], 4).expect("relay");
5445        relay.start().await.expect("start and synchronize policy");
5446        relay.run_turn("task", 0).await.expect("first turn");
5447        {
5448            let log = first_log.lock().expect("log");
5449            assert_eq!(log.as_slice(), ["start", "mode:yolo", "prompt"]);
5450        }
5451        assert_eq!(
5452            second_log.lock().expect("log").as_slice(),
5453            ["start", "mode:yolo"]
5454        );
5455        let added_log = Arc::new(Mutex::new(Vec::new()));
5456        relay
5457            .add_agent(
5458                AdapterHost::new(
5459                    Box::new(ModeOrderAdapter {
5460                        slot: 2,
5461                        log: Arc::clone(&added_log),
5462                        phase: 0,
5463                    }),
5464                    None,
5465                ),
5466                "Added",
5467                "added.example",
5468                "added-agent",
5469            )
5470            .await
5471            .expect("add with synchronized policy");
5472        assert_eq!(
5473            added_log.lock().expect("log").as_slice(),
5474            ["start", "mode:yolo"]
5475        );
5476        relay.drop_agent(2).await.expect("drop added agent");
5477        added_log.lock().expect("log").clear();
5478        relay
5479            .reload(2)
5480            .await
5481            .expect("reload with synchronized policy");
5482        assert_eq!(
5483            added_log.lock().expect("log").as_slice(),
5484            ["reload", "mode:yolo"]
5485        );
5486    }
5487
5488    #[tokio::test]
5489    async fn acp_roster_is_ready_before_any_prompt_is_sent() {
5490        let hosts = (0..2)
5491            .map(|slot| AdapterHost::new(Box::new(StartupAcpAdapter::new(slot)), None))
5492            .collect::<Vec<_>>();
5493        let startup_events = Arc::new(Mutex::new(Vec::new()));
5494        let captured = Arc::clone(&startup_events);
5495        let mut relay = RelayHost::new(hosts, 4).expect("relay");
5496        relay.set_event_sink(move |event| captured.lock().expect("events").push(event));
5497
5498        relay.start().await.expect("complete startup handshake");
5499
5500        assert!(relay.dispatches().is_empty());
5501        let ready_slots = startup_events
5502            .lock()
5503            .expect("events")
5504            .iter()
5505            .filter_map(|event| match event {
5506                AgentEvent::Ready { slot, .. } => Some(*slot),
5507                _ => None,
5508            })
5509            .collect::<Vec<_>>();
5510        assert_eq!(ready_slots, vec![0, 1]);
5511    }
5512
5513    #[tokio::test]
5514    async fn independent_roster_adapters_start_concurrently() {
5515        let barrier = Arc::new(tokio::sync::Barrier::new(2));
5516        let hosts = (0..2)
5517            .map(|slot| {
5518                AdapterHost::new(
5519                    Box::new(ConcurrentStartAdapter {
5520                        slot,
5521                        barrier: Arc::clone(&barrier),
5522                    }),
5523                    None,
5524                )
5525            })
5526            .collect::<Vec<_>>();
5527        let mut relay = RelayHost::new(hosts, 4).expect("relay");
5528        tokio::time::timeout(std::time::Duration::from_millis(100), relay.start())
5529            .await
5530            .expect("startup should not serialize barrier participants")
5531            .expect("startup succeeds");
5532    }
5533
5534    #[tokio::test]
5535    async fn relay_host_dispatches_turns_sequentially() {
5536        let capabilities = AgentCapabilities {
5537            supports_cancel: true,
5538            ..AgentCapabilities::default()
5539        };
5540        let first = ScriptedAdapter::new(
5541            0,
5542            capabilities.clone(),
5543            [
5544                AgentEvent::Text {
5545                    slot: 0,
5546                    text: "first".into(),
5547                },
5548                AgentEvent::TurnComplete { slot: 0 },
5549            ],
5550        );
5551        let second = ScriptedAdapter::new(
5552            1,
5553            capabilities,
5554            [
5555                AgentEvent::Text {
5556                    slot: 1,
5557                    text: "review".into(),
5558                },
5559                AgentEvent::TurnComplete { slot: 1 },
5560            ],
5561        );
5562        let hosts = vec![
5563            AdapterHost::new(Box::new(first), None),
5564            AdapterHost::new(Box::new(second), None),
5565        ];
5566        let mut relay = super::RelayHost::new(hosts, 4).expect("relay");
5567        relay.set_roster_names(vec!["Claude".into(), "Codex".into()]);
5568        let events = std::sync::Arc::new(std::sync::Mutex::new(Vec::new()));
5569        let captured = std::sync::Arc::clone(&events);
5570        relay.set_event_sink(move |event| captured.lock().expect("events").push(event));
5571        relay.start().await.expect("start");
5572        events.lock().expect("events").clear();
5573        assert!(matches!(
5574            relay.run_turn("task", 0).await.expect("first turn"),
5575            crate::relay::RelayDecision::Dispatch { slot: 0, .. }
5576        ));
5577        assert!(matches!(
5578            relay.run_turn("first", 0).await.expect("second turn"),
5579            crate::relay::RelayDecision::Dispatch {
5580                slot: 1,
5581                can_stop: true,
5582                ..
5583            }
5584        ));
5585        assert_eq!(
5586            relay
5587                .dispatches()
5588                .iter()
5589                .map(|(slot, _)| *slot)
5590                .collect::<Vec<_>>(),
5591            [0, 1]
5592        );
5593        assert!(relay.dispatches()[0].1.contains("You are Claude"));
5594        assert!(
5595            relay.dispatches()[0]
5596                .1
5597                .contains("CodeSwarm roster (ordered)")
5598        );
5599        assert!(relay.dispatches()[0].1.contains("1. Claude — you"));
5600        assert!(relay.dispatches()[0].1.contains("2. Codex"));
5601        assert!(relay.dispatches()[1].1.contains(STOP_TOKEN));
5602        assert!(relay.dispatches()[0].1.contains("Do not use"));
5603        let lifecycle = events.lock().expect("events");
5604        let positions = lifecycle
5605            .iter()
5606            .filter_map(|event| match event {
5607                AgentEvent::TurnStarted { slot } => Some(("start", *slot)),
5608                AgentEvent::TurnComplete { slot } => Some(("complete", *slot)),
5609                _ => None,
5610            })
5611            .collect::<Vec<_>>();
5612        assert_eq!(
5613            positions,
5614            [("start", 0), ("complete", 0), ("start", 1), ("complete", 1)]
5615        );
5616    }
5617
5618    #[tokio::test]
5619    async fn relay_host_routes_around_a_usage_limited_agent() {
5620        let capabilities = AgentCapabilities::default();
5621        let first = ScriptedAdapter::new(
5622            0,
5623            capabilities.clone(),
5624            [
5625                AgentEvent::Text {
5626                    slot: 0,
5627                    text: "You've hit your usage limit. Visit chatgpt.com to purchase more \
5628                           credits or try again later."
5629                        .into(),
5630                },
5631                AgentEvent::TurnComplete { slot: 0 },
5632            ],
5633        );
5634        let second = ScriptedAdapter::new(
5635            1,
5636            capabilities,
5637            [
5638                AgentEvent::Text {
5639                    slot: 1,
5640                    text: "review done".into(),
5641                },
5642                AgentEvent::TurnComplete { slot: 1 },
5643            ],
5644        );
5645        let hosts = vec![
5646            AdapterHost::new(Box::new(first), None),
5647            AdapterHost::new(Box::new(second), None),
5648        ];
5649        let mut relay = super::RelayHost::new(hosts, 4).expect("relay");
5650        let events = std::sync::Arc::new(std::sync::Mutex::new(Vec::new()));
5651        let captured = std::sync::Arc::clone(&events);
5652        relay.set_event_sink(move |event| captured.lock().expect("events").push(event));
5653        relay.start().await.expect("start");
5654        events.lock().expect("events").clear();
5655        assert!(matches!(
5656            relay.run_turn("task", 0).await.expect("limited turn"),
5657            crate::relay::RelayDecision::Dispatch { slot: 0, .. }
5658        ));
5659        assert!(
5660            events
5661                .lock()
5662                .expect("events")
5663                .iter()
5664                .any(|event| matches!(event, AgentEvent::UsageLimitReached { slot: 0, .. }))
5665        );
5666        // The next automatic turn skips the limited agent entirely.
5667        assert!(matches!(
5668            relay.run_turn("", 0).await.expect("next turn"),
5669            crate::relay::RelayDecision::Dispatch { slot: 1, .. }
5670        ));
5671        assert!(relay.relay().is_limited(0));
5672        // A reload restores the agent to the ring. (ScriptedAdapter cannot
5673        // feed further turns, so the restored routing itself is covered by
5674        // the relay unit tests.)
5675        relay.reload(0).await.expect("reload");
5676        assert!(!relay.relay().is_limited(0));
5677    }
5678
5679    #[tokio::test]
5680    async fn relay_host_routes_around_usage_limit_failures_without_tombstoning() {
5681        let limited = ScriptedAdapter::new(
5682            0,
5683            AgentCapabilities::default(),
5684            [AgentEvent::Failed {
5685                slot: 0,
5686                started: true,
5687                detail: "request failed: insufficient_quota".into(),
5688            }],
5689        );
5690        let healthy = ScriptedAdapter::new(
5691            1,
5692            AgentCapabilities::default(),
5693            [AgentEvent::TurnComplete { slot: 1 }],
5694        );
5695        let events = std::sync::Arc::new(std::sync::Mutex::new(Vec::new()));
5696        let captured = std::sync::Arc::clone(&events);
5697        let mut relay = RelayHost::new(
5698            vec![
5699                AdapterHost::new(Box::new(limited), None),
5700                AdapterHost::new(Box::new(healthy), None),
5701            ],
5702            4,
5703        )
5704        .expect("relay");
5705        relay.set_event_sink(move |event| captured.lock().expect("events").push(event));
5706        relay.start().await.expect("start");
5707        events.lock().expect("events").clear();
5708
5709        assert!(matches!(
5710            relay.run_turn("task", 0).await.expect("limited failure"),
5711            crate::relay::RelayDecision::Dispatch { slot: 0, .. }
5712        ));
5713        assert!(relay.relay().is_limited(0));
5714        assert_eq!(relay.relay().active_slots().collect::<Vec<_>>(), [0, 1]);
5715        {
5716            let events = events.lock().expect("events");
5717            assert!(
5718                events
5719                    .iter()
5720                    .any(|event| matches!(event, AgentEvent::UsageLimitReached { slot: 0, .. }))
5721            );
5722            assert!(
5723                !events
5724                    .iter()
5725                    .any(|event| matches!(event, AgentEvent::Failed { .. }))
5726            );
5727        }
5728
5729        assert!(matches!(
5730            relay.run_turn("", 0).await.expect("healthy peer"),
5731            crate::relay::RelayDecision::Dispatch { slot: 1, .. }
5732        ));
5733    }
5734
5735    #[tokio::test]
5736    async fn relay_failure_is_tombstoned_and_reported_to_the_ui_sink() {
5737        let failed = ScriptedAdapter::new(
5738            0,
5739            AgentCapabilities::default(),
5740            [AgentEvent::Failed {
5741                slot: 0,
5742                started: true,
5743                detail: "connection lost".into(),
5744            }],
5745        );
5746        let healthy = ScriptedAdapter::new(
5747            1,
5748            AgentCapabilities::default(),
5749            [AgentEvent::TurnComplete { slot: 1 }],
5750        );
5751        let events = std::sync::Arc::new(std::sync::Mutex::new(Vec::new()));
5752        let captured = std::sync::Arc::clone(&events);
5753        let mut relay = RelayHost::new(
5754            vec![
5755                AdapterHost::new(Box::new(failed), None),
5756                AdapterHost::new(Box::new(healthy), None),
5757            ],
5758            4,
5759        )
5760        .expect("relay");
5761        relay.set_event_sink(move |event| captured.lock().expect("lock").push(event));
5762        relay.start().await.expect("start");
5763
5764        let error = relay.run_turn("task", 0).await.expect_err("failure");
5765        assert!(error.to_string().contains("connection lost"));
5766        assert_eq!(relay.relay().active_slots().collect::<Vec<_>>(), vec![1]);
5767        assert!(events.lock().expect("lock").iter().any(|event| {
5768            matches!(
5769                event,
5770                AgentEvent::Failed {
5771                    slot: 0,
5772                    started: true,
5773                    ..
5774                }
5775            )
5776        }));
5777    }
5778
5779    #[tokio::test]
5780    async fn codex_stop_does_not_skip_later_roster_reviewers() {
5781        let hosts = (0..3)
5782            .map(|slot| {
5783                AdapterHost::new(
5784                    Box::new(ScriptedAdapter::new(
5785                        slot,
5786                        AgentCapabilities::default(),
5787                        [
5788                            AgentEvent::Text {
5789                                slot,
5790                                text: STOP_TOKEN.into(),
5791                            },
5792                            AgentEvent::TurnComplete { slot },
5793                        ],
5794                    )),
5795                    None,
5796                )
5797            })
5798            .collect();
5799        let mut relay = RelayHost::new(hosts, 10).expect("relay");
5800        relay.set_roster_names(vec!["Claude".into(), "Codex".into(), "Qwen".into()]);
5801        relay.start().await.expect("start");
5802        for expected in 0..3 {
5803            assert!(matches!(relay.run_turn("task", 0).await.expect("turn"),
5804                RelayDecision::Dispatch { slot, can_stop, .. } if slot == expected && can_stop == (expected == 2)));
5805        }
5806        assert_eq!(
5807            relay.run_turn("", 0).await.expect("complete"),
5808            RelayDecision::Complete
5809        );
5810    }
5811
5812    #[tokio::test]
5813    async fn reviewer_stop_token_ends_the_automatic_relay_sequence() {
5814        let first = ScriptedAdapter::new(
5815            0,
5816            AgentCapabilities::default(),
5817            [
5818                AgentEvent::Text {
5819                    slot: 0,
5820                    text: "done".into(),
5821                },
5822                AgentEvent::TurnComplete { slot: 0 },
5823            ],
5824        );
5825        let reviewer = ScriptedAdapter::new(
5826            1,
5827            AgentCapabilities::default(),
5828            [
5829                AgentEvent::Text {
5830                    slot: 1,
5831                    text: STOP_TOKEN.into(),
5832                },
5833                AgentEvent::TurnComplete { slot: 1 },
5834            ],
5835        );
5836        let mut relay = RelayHost::new(
5837            vec![
5838                AdapterHost::new(Box::new(first), None),
5839                AdapterHost::new(Box::new(reviewer), None),
5840            ],
5841            10,
5842        )
5843        .expect("relay");
5844        relay.start().await.expect("start");
5845        let first_decision = relay.run_turn("task", 0).await.expect("first");
5846        assert!(matches!(
5847            first_decision,
5848            RelayDecision::Dispatch { slot: 0, .. }
5849        ));
5850        let reviewer_decision = relay.run_turn("", 0).await.expect("reviewer");
5851        assert!(matches!(
5852            reviewer_decision,
5853            RelayDecision::Dispatch {
5854                slot: 1,
5855                can_stop: true,
5856                ..
5857            }
5858        ));
5859        assert_eq!(
5860            relay.run_turn("", 0).await.expect("complete"),
5861            RelayDecision::Complete
5862        );
5863    }
5864
5865    #[tokio::test]
5866    async fn relay_stream_emits_text_and_thought_endings_before_tools() {
5867        let tool = AgentEvent::Tool {
5868            slot: 0,
5869            update: crate::ToolUpdate {
5870                id: "read".into(),
5871                title: "Read file".into(),
5872                status: ToolStatus::Running,
5873                detail: None,
5874            },
5875        };
5876        let updates = vec![
5877            AgentEvent::Thought {
5878                slot: 0,
5879                text: "Check the buffer. ✈".into(),
5880            },
5881            AgentEvent::Text {
5882                slot: 0,
5883                text: "Let me check.".into(),
5884            },
5885            tool.clone(),
5886            AgentEvent::Text {
5887                slot: 0,
5888                text: "[CODE".into(),
5889            },
5890            AgentEvent::Text {
5891                slot: 0,
5892                text: " is ordinary.".into(),
5893            },
5894            AgentEvent::Text {
5895                slot: 0,
5896                text: "[CODESWARM:".into(),
5897            },
5898            AgentEvent::Text {
5899                slot: 0,
5900                text: "STOP] Done.".into(),
5901            },
5902            tool,
5903            AgentEvent::TurnComplete { slot: 0 },
5904        ];
5905        let first = ScriptedAdapter::new(0, AgentCapabilities::default(), updates.clone());
5906        let reviewer = ScriptedAdapter::new(1, AgentCapabilities::default(), []);
5907        let events = std::sync::Arc::new(std::sync::Mutex::new(Vec::new()));
5908        let captured = std::sync::Arc::clone(&events);
5909        let mut relay = RelayHost::new(
5910            vec![
5911                AdapterHost::new(Box::new(first), None),
5912                AdapterHost::new(Box::new(reviewer), None),
5913            ],
5914            2,
5915        )
5916        .expect("relay");
5917        relay.set_event_sink(move |event| captured.lock().unwrap().push(event));
5918        relay.start().await.unwrap();
5919        relay.run_turn("task", 0).await.unwrap();
5920        let captured = events.lock().unwrap();
5921        let visible: Vec<_> = captured
5922            .iter()
5923            .filter(|event| {
5924                matches!(
5925                    event,
5926                    AgentEvent::Text { .. } | AgentEvent::Thought { .. } | AgentEvent::Tool { .. }
5927                )
5928            })
5929            .cloned()
5930            .collect();
5931        assert_eq!(
5932            visible,
5933            vec![
5934                updates[0].clone(),
5935                updates[1].clone(),
5936                updates[2].clone(),
5937                AgentEvent::Text {
5938                    slot: 0,
5939                    text: "[CODE is ordinary.".into()
5940                },
5941                AgentEvent::Text {
5942                    slot: 0,
5943                    text: " Done.".into()
5944                },
5945                updates[7].clone(),
5946            ]
5947        );
5948    }
5949
5950    #[tokio::test]
5951    async fn stop_token_is_filtered_from_streamed_ui_events() {
5952        let first = ScriptedAdapter::new(
5953            0,
5954            AgentCapabilities::default(),
5955            [
5956                AgentEvent::Text {
5957                    slot: 0,
5958                    text: format!("visible {STOP_TOKEN} trailing"),
5959                },
5960                AgentEvent::TurnComplete { slot: 0 },
5961            ],
5962        );
5963        let reviewer = ScriptedAdapter::new(
5964            1,
5965            AgentCapabilities::default(),
5966            [AgentEvent::TurnComplete { slot: 1 }],
5967        );
5968        let events = std::sync::Arc::new(std::sync::Mutex::new(Vec::new()));
5969        let captured = std::sync::Arc::clone(&events);
5970        let mut relay = RelayHost::new(
5971            vec![
5972                AdapterHost::new(Box::new(first), None),
5973                AdapterHost::new(Box::new(reviewer), None),
5974            ],
5975            2,
5976        )
5977        .expect("relay");
5978        relay.set_event_sink(move |event| captured.lock().expect("lock").push(event));
5979        relay.start().await.expect("start");
5980        relay.run_turn("task", 0).await.expect("turn");
5981        let captured = events.lock().expect("lock");
5982        assert!(captured.iter().all(|event| match event {
5983            AgentEvent::Text { text, .. } => !text.contains(STOP_TOKEN),
5984            _ => true,
5985        }));
5986        let visible = captured
5987            .iter()
5988            .filter_map(|event| match event {
5989                AgentEvent::Text { text, .. } => Some(text.as_str()),
5990                _ => None,
5991            })
5992            .collect::<String>();
5993        assert_eq!(visible, "visible  trailing");
5994    }
5995
5996    #[tokio::test]
5997    async fn token_only_reviewer_response_emits_visible_acknowledgment() {
5998        let first = ScriptedAdapter::new(
5999            0,
6000            AgentCapabilities::default(),
6001            [
6002                AgentEvent::Text {
6003                    slot: 0,
6004                    text: "done".into(),
6005                },
6006                AgentEvent::TurnComplete { slot: 0 },
6007            ],
6008        );
6009        let reviewer = ScriptedAdapter::new(
6010            1,
6011            AgentCapabilities::default(),
6012            [
6013                AgentEvent::Text {
6014                    slot: 1,
6015                    text: STOP_TOKEN.into(),
6016                },
6017                AgentEvent::TurnComplete { slot: 1 },
6018            ],
6019        );
6020        let events = std::sync::Arc::new(std::sync::Mutex::new(Vec::new()));
6021        let captured = std::sync::Arc::clone(&events);
6022        let mut relay = RelayHost::new(
6023            vec![
6024                AdapterHost::new(Box::new(first), None),
6025                AdapterHost::new(Box::new(reviewer), None),
6026            ],
6027            4,
6028        )
6029        .expect("relay");
6030        relay.set_event_sink(move |event| captured.lock().expect("lock").push(event));
6031        relay.start().await.expect("start");
6032        relay.run_turn("task", 0).await.expect("first turn");
6033        relay.run_turn("", 0).await.expect("review turn");
6034        let captured = events.lock().expect("lock");
6035        assert!(captured.iter().any(|event| {
6036            matches!(
6037                event,
6038                AgentEvent::Text { slot: 1, text } if text == DEFAULT_STOP_ACKNOWLEDGMENT
6039            )
6040        }));
6041        assert!(captured.iter().all(|event| match event {
6042            AgentEvent::Text { text, .. } => !text.contains(STOP_TOKEN),
6043            _ => true,
6044        }));
6045        let acknowledgment = captured
6046            .iter()
6047            .position(|event| {
6048                matches!(
6049                    event,
6050                    AgentEvent::Text { slot: 1, text } if text == DEFAULT_STOP_ACKNOWLEDGMENT
6051                )
6052            })
6053            .expect("visible acknowledgment");
6054        let completion = captured
6055            .iter()
6056            .position(|event| matches!(event, AgentEvent::TurnComplete { slot: 1 }))
6057            .expect("reviewer completion");
6058        assert!(acknowledgment < completion);
6059    }
6060
6061    #[tokio::test]
6062    async fn explicit_reviewer_acknowledgment_is_not_duplicated_at_stop() {
6063        let first = ScriptedAdapter::new(
6064            0,
6065            AgentCapabilities::default(),
6066            [
6067                AgentEvent::Text {
6068                    slot: 0,
6069                    text: "done".into(),
6070                },
6071                AgentEvent::TurnComplete { slot: 0 },
6072            ],
6073        );
6074        let reviewer = ScriptedAdapter::new(
6075            1,
6076            AgentCapabilities::default(),
6077            [
6078                AgentEvent::Text {
6079                    slot: 1,
6080                    text: format!("{DEFAULT_STOP_ACKNOWLEDGMENT}\n{STOP_TOKEN}"),
6081                },
6082                AgentEvent::TurnComplete { slot: 1 },
6083            ],
6084        );
6085        let events = std::sync::Arc::new(std::sync::Mutex::new(Vec::new()));
6086        let captured = std::sync::Arc::clone(&events);
6087        let mut relay = RelayHost::new(
6088            vec![
6089                AdapterHost::new(Box::new(first), None),
6090                AdapterHost::new(Box::new(reviewer), None),
6091            ],
6092            4,
6093        )
6094        .expect("relay");
6095        relay.set_event_sink(move |event| captured.lock().expect("lock").push(event));
6096        relay.start().await.expect("start");
6097        relay.run_turn("task", 0).await.expect("first turn");
6098        relay.run_turn("", 0).await.expect("review turn");
6099
6100        let visible = events
6101            .lock()
6102            .expect("lock")
6103            .iter()
6104            .filter_map(|event| match event {
6105                AgentEvent::Text { slot: 1, text } => Some(text.as_str()),
6106                _ => None,
6107            })
6108            .collect::<String>();
6109        assert_eq!(visible.trim(), DEFAULT_STOP_ACKNOWLEDGMENT);
6110        assert_eq!(visible.matches(DEFAULT_STOP_ACKNOWLEDGMENT).count(), 1);
6111    }
6112
6113    #[tokio::test]
6114    async fn relay_permission_answer_is_consumed_before_the_turn_completes() {
6115        let first = AdapterHost::new(
6116            Box::new(PermissionBlockingAdapter { slot: 0, phase: 0 }),
6117            None,
6118        );
6119        let second = AdapterHost::new(
6120            Box::new(ScriptedAdapter::new(
6121                1,
6122                AgentCapabilities::default(),
6123                [AgentEvent::TurnComplete { slot: 1 }],
6124            )),
6125            None,
6126        );
6127        let mut relay = super::RelayHost::new(vec![first, second], 4).expect("relay");
6128        let (seen_sender, mut seen_receiver) = tokio::sync::mpsc::unbounded_channel();
6129        relay.set_event_sink(move |event| {
6130            if matches!(event, AgentEvent::Permission { .. }) {
6131                let _ = seen_sender.send(());
6132            }
6133        });
6134        relay.start().await.expect("start");
6135        let (sender, mut receiver) = tokio::sync::mpsc::unbounded_channel();
6136        let answer = async move {
6137            seen_receiver.recv().await.expect("permission request");
6138            sender
6139                .send(super::RelayPermissionAnswer {
6140                    slot: 0,
6141                    request_id: "permission-1".into(),
6142                    answer: PermissionAnswer::Selected {
6143                        option_id: "allow".into(),
6144                    },
6145                })
6146                .expect("queue permission answer");
6147        };
6148        tokio::time::timeout(std::time::Duration::from_millis(100), async {
6149            let ((), result) = tokio::join!(
6150                answer,
6151                relay.run_turn_with_permissions("task", 0, &mut receiver)
6152            );
6153            result
6154        })
6155        .await
6156        .expect("permission-gated turn should not deadlock")
6157        .expect("turn completes");
6158    }
6159
6160    #[tokio::test]
6161    async fn relay_cancellation_interrupts_a_waiting_adapter_turn() {
6162        let first = AdapterHost::new(
6163            Box::new(PendingAdapter {
6164                slot: 0,
6165                hang_on_cancel: false,
6166            }),
6167            None,
6168        );
6169        let second = AdapterHost::new(
6170            Box::new(ScriptedAdapter::new(
6171                1,
6172                AgentCapabilities::default(),
6173                [AgentEvent::TurnComplete { slot: 1 }],
6174            )),
6175            None,
6176        );
6177        let mut relay = super::RelayHost::new(vec![first, second], 4).expect("relay");
6178        relay.start().await.expect("start");
6179        let cancellation = relay.cancellation();
6180        let error = {
6181            let turn = relay.run_turn("task", 0);
6182            tokio::pin!(turn);
6183            cancellation.request();
6184            turn.await.expect_err("cancellation should stop turn")
6185        };
6186        assert!(error.to_string().contains("relay turn cancelled"));
6187
6188        assert!(relay.relay_mut().enqueue_human("replacement job", Some(1)));
6189        relay
6190            .run_turn("", 1)
6191            .await
6192            .expect("replacement job reaches the selected peer");
6193        let replacement = &relay.dispatches().last().expect("replacement dispatch").1;
6194        assert!(replacement.contains("replacement job"));
6195        assert!(replacement.contains("User "));
6196        assert!(replacement.contains(":\ntask"));
6197        let owner_updates = relay.relay_mut().unseen_context(0);
6198        assert!(owner_updates.contains("User "));
6199        assert!(owner_updates.contains(":\ntask"));
6200        assert!(owner_updates.contains(":\nreplacement job"));
6201    }
6202
6203    #[tokio::test]
6204    async fn relay_cancellation_does_not_wait_forever_for_a_broken_adapter() {
6205        let first = AdapterHost::new(
6206            Box::new(PendingAdapter {
6207                slot: 0,
6208                hang_on_cancel: true,
6209            }),
6210            None,
6211        );
6212        let second = AdapterHost::new(
6213            Box::new(PendingAdapter {
6214                slot: 1,
6215                hang_on_cancel: false,
6216            }),
6217            None,
6218        );
6219        let mut relay = super::RelayHost::new(vec![first, second], 4).expect("relay");
6220        relay.start().await.expect("start");
6221        let cancellation = relay.cancellation();
6222        let turn = relay.run_turn("task", 0);
6223        tokio::pin!(turn);
6224        cancellation.request();
6225        let error = turn.await.expect_err("cancellation should stop turn");
6226        assert!(error.to_string().contains("timed out"));
6227    }
6228
6229    #[tokio::test]
6230    async fn relay_host_pause_and_single_healthy_agent_continues_without_peer_review() {
6231        let event = [AgentEvent::TurnComplete { slot: 0 }];
6232        let first = AdapterHost::new(
6233            Box::new(ScriptedAdapter::new(
6234                0,
6235                AgentCapabilities::default(),
6236                event.clone(),
6237            )),
6238            None,
6239        );
6240        let second = AdapterHost::new(
6241            Box::new(ScriptedAdapter::new(
6242                1,
6243                AgentCapabilities::default(),
6244                [AgentEvent::TurnComplete { slot: 1 }],
6245            )),
6246            None,
6247        );
6248        let mut relay = super::RelayHost::new(vec![first, second], 4).expect("relay");
6249        relay.start().await.expect("start");
6250
6251        relay.pause();
6252        assert_eq!(
6253            relay.run_turn("paused", 0).await.expect("paused turn"),
6254            crate::relay::RelayDecision::Paused
6255        );
6256        assert!(relay.dispatches().is_empty());
6257
6258        relay.resume();
6259        relay.relay_mut().drop_agent(1).expect("drop reviewer");
6260        assert!(matches!(
6261            relay
6262                .run_turn("solo follow-up", 0)
6263                .await
6264                .expect("solo turn"),
6265            crate::relay::RelayDecision::Dispatch {
6266                slot: 0,
6267                can_stop: false,
6268                ..
6269            }
6270        ));
6271        assert_eq!(relay.dispatches().len(), 1);
6272    }
6273
6274    #[tokio::test]
6275    async fn relay_host_can_append_a_started_adapter_in_a_new_slot() {
6276        let first = AdapterHost::new(
6277            Box::new(ScriptedAdapter::new(
6278                0,
6279                AgentCapabilities::default(),
6280                [AgentEvent::TurnComplete { slot: 0 }],
6281            )),
6282            None,
6283        );
6284        let second = AdapterHost::new(
6285            Box::new(ScriptedAdapter::new(
6286                1,
6287                AgentCapabilities::default(),
6288                [AgentEvent::TurnComplete { slot: 1 }],
6289            )),
6290            None,
6291        );
6292        let mut relay = RelayHost::new(vec![first, second], 4).expect("relay");
6293        relay.set_roster_names(vec!["First".into(), "Second".into()]);
6294        relay.set_roster_identities(vec!["owner.example".into(), "peer.example".into()]);
6295        relay.set_roster_launch_specs(vec![
6296            ("custom".into(), "owner".into()),
6297            ("custom".into(), "peer".into()),
6298        ]);
6299        let events = std::sync::Arc::new(std::sync::Mutex::new(Vec::new()));
6300        let captured = std::sync::Arc::clone(&events);
6301        relay.set_event_sink(move |event| captured.lock().expect("lock").push(event));
6302        relay.start().await.expect("start");
6303        let slot = relay
6304            .add_agent(
6305                AdapterHost::new(
6306                    Box::new(ScriptedAdapter::new(
6307                        2,
6308                        AgentCapabilities::default(),
6309                        [AgentEvent::TurnComplete { slot: 2 }],
6310                    )),
6311                    None,
6312                ),
6313                "Reviewer",
6314                "reviewer.example",
6315                "reviewer --acp",
6316            )
6317            .await
6318            .expect("append agent");
6319        assert_eq!(slot, 2);
6320        assert_eq!(
6321            relay.relay().active_slots().collect::<Vec<_>>(),
6322            vec![0, 1, 2]
6323        );
6324        assert_eq!(
6325            relay
6326                .session_metadata()
6327                .get("agents")
6328                .and_then(|value| value.as_array())
6329                .map(Vec::len),
6330            Some(3)
6331        );
6332        relay.drop_agent(1).await.expect("drop middle peer");
6333        let metadata = relay.session_metadata();
6334        assert_eq!(
6335            metadata.get("agents"),
6336            Some(&serde_json::json!([
6337                {"name": "First", "identity": "owner.example", "protocol": "custom", "command": "owner", "supports_load_session": false},
6338                {"name": "Reviewer", "identity": "reviewer.example", "protocol": "custom", "command": "reviewer --acp", "supports_load_session": false}
6339            ]))
6340        );
6341        assert!(
6342            events
6343                .lock()
6344                .expect("lock")
6345                .iter()
6346                .any(|event| { matches!(event, AgentEvent::Ready { slot: 2, .. }) })
6347        );
6348    }
6349
6350    #[tokio::test]
6351    async fn relay_host_persists_coordinator_owned_runtime_metadata() {
6352        let path = unique_test_path("codeswarm-session-metadata", "json");
6353        let metadata_store = crate::persistence::SessionMetadataStore::open(&path);
6354        let writer = metadata_store.buffered().expect("metadata writer");
6355        let first = AdapterHost::new(
6356            Box::new(ScriptedAdapter::new(0, AgentCapabilities::default(), [])),
6357            None,
6358        );
6359        let second = AdapterHost::new(
6360            Box::new(ScriptedAdapter::new(1, AgentCapabilities::default(), [])),
6361            None,
6362        );
6363        let mut relay = RelayHost::new(vec![first, second], 4).expect("relay");
6364        relay.set_roster_names(vec!["Claude".into(), "Codex".into()]);
6365        relay.set_roster_identities(vec!["claude.ai".into(), "openai.com".into()]);
6366        relay.set_roster_launch_specs(vec![
6367            ("custom".into(), "claude".into()),
6368            ("custom".into(), "codex".into()),
6369        ]);
6370        relay.set_session_metadata_writer(writer);
6371        relay.start().await.expect("start");
6372        relay.drop_agent(0).await.expect("drop first agent");
6373        relay.stop().await.expect("stop");
6374
6375        let loaded = metadata_store
6376            .read()
6377            .expect("read metadata")
6378            .expect("metadata snapshot");
6379        assert_eq!(loaded.get("title"), Some(&serde_json::json!("CodeSwarm")));
6380        assert_eq!(
6381            loaded.get("agents"),
6382            Some(&serde_json::json!([{
6383                "name": "Codex", "identity": "openai.com", "protocol": "custom",
6384                "command": "codex", "supports_load_session": false
6385            }]))
6386        );
6387        assert!(loaded.get("owner").is_none());
6388        let _ = std::fs::remove_file(path);
6389    }
6390
6391    #[tokio::test]
6392    async fn relay_host_swaps_live_adapters_and_remaps_stream_events() {
6393        let first = AdapterHost::new(
6394            Box::new(ScriptedAdapter::new(
6395                0,
6396                AgentCapabilities::default(),
6397                [
6398                    AgentEvent::Text {
6399                        slot: 0,
6400                        text: "owner stream".into(),
6401                    },
6402                    AgentEvent::TurnComplete { slot: 0 },
6403                ],
6404            )),
6405            None,
6406        );
6407        let second = AdapterHost::new(
6408            Box::new(ScriptedAdapter::new(
6409                1,
6410                AgentCapabilities::default(),
6411                [
6412                    AgentEvent::Text {
6413                        slot: 1,
6414                        text: "peer stream".into(),
6415                    },
6416                    AgentEvent::TurnComplete { slot: 1 },
6417                ],
6418            )),
6419            None,
6420        );
6421        let mut relay = RelayHost::new(vec![first, second], 4).expect("relay");
6422        relay.set_roster_names(vec!["Owner".into(), "Peer".into()]);
6423        relay.set_roster_identities(vec!["first.example".into(), "second.example".into()]);
6424        let events = std::sync::Arc::new(std::sync::Mutex::new(Vec::new()));
6425        let captured = std::sync::Arc::clone(&events);
6426        relay.set_event_sink(move |event| captured.lock().expect("lock").push(event));
6427        relay.start().await.expect("start");
6428
6429        relay.swap_agents(0, 1).expect("swap peers");
6430        assert_eq!(relay.active_slot_for_identity("first.example"), Some(1));
6431        assert_eq!(relay.active_slot_for_identity("second.example"), Some(0));
6432        relay.run_turn("task", 0).await.expect("swapped turn");
6433        let events = events.lock().expect("events");
6434        assert!(events.iter().any(|event| {
6435            matches!(event, AgentEvent::Text { slot: 0, text } if text == "peer stream")
6436        }));
6437        assert!(relay.dispatches()[0].1.contains("You are Peer"));
6438    }
6439
6440    #[tokio::test]
6441    async fn relay_host_persists_all_active_agent_metadata_off_thread() {
6442        let path = unique_test_path("codeswarm-session-metadata", "json");
6443        let first = AdapterHost::new(
6444            Box::new(ScriptedAdapter::new(
6445                0,
6446                AgentCapabilities::default(),
6447                [AgentEvent::TurnComplete { slot: 0 }],
6448            )),
6449            None,
6450        );
6451        let second = AdapterHost::new(
6452            Box::new(ScriptedAdapter::new(
6453                1,
6454                AgentCapabilities::default(),
6455                [AgentEvent::TurnComplete { slot: 1 }],
6456            )),
6457            None,
6458        );
6459        let mut relay = RelayHost::new(vec![first, second], 4).expect("relay");
6460        relay.set_roster_names(vec!["Claude".into(), "Codex".into()]);
6461        relay.set_roster_identities(vec!["claude.com".into(), "openai.com".into()]);
6462        relay.set_roster_launch_specs(vec![
6463            ("custom".into(), "claude".into()),
6464            ("custom".into(), "codex".into()),
6465        ]);
6466        let writer = SessionMetadataStore::open(&path)
6467            .buffered()
6468            .expect("metadata writer");
6469        relay.set_session_metadata_writer(writer);
6470        relay.start().await.expect("start");
6471        relay.stop().await.expect("stop");
6472        let loaded = SessionMetadataStore::open(&path)
6473            .read()
6474            .expect("read metadata")
6475            .expect("metadata snapshot");
6476        let agents = loaded
6477            .get("agents")
6478            .and_then(|value| value.as_array())
6479            .expect("agents");
6480        assert_eq!(agents.len(), 2);
6481        assert_eq!(agents[0]["identity"], "claude.com");
6482        assert_eq!(agents[1]["identity"], "openai.com");
6483        let _ = std::fs::remove_file(path);
6484    }
6485
6486    #[tokio::test]
6487    async fn relay_host_routes_unseen_public_context_to_next_agent() {
6488        let first = AdapterHost::new(
6489            Box::new(ScriptedAdapter::new(
6490                0,
6491                AgentCapabilities::default(),
6492                [
6493                    AgentEvent::Text {
6494                        slot: 0,
6495                        text: "implemented the fix".into(),
6496                    },
6497                    AgentEvent::TurnComplete { slot: 0 },
6498                ],
6499            )),
6500            None,
6501        );
6502        let second = AdapterHost::new(
6503            Box::new(ScriptedAdapter::new(
6504                1,
6505                AgentCapabilities::default(),
6506                [AgentEvent::TurnComplete { slot: 1 }],
6507            )),
6508            None,
6509        );
6510        let mut relay = super::RelayHost::new(vec![first, second], 4).expect("relay");
6511        relay.set_roster_names(vec!["Codex".into(), "Qwen".into()]);
6512        relay.start().await.expect("start");
6513        relay.run_turn("task", 0).await.expect("first turn");
6514        relay.run_turn("review this", 0).await.expect("review turn");
6515
6516        assert_eq!(relay.dispatches().len(), 2);
6517        assert_eq!(relay.dispatches()[0].0, 0);
6518        assert!(relay.dispatches()[0].1.contains("task"));
6519        assert!(relay.dispatches()[0].1.contains("You are Codex"));
6520        assert!(relay.dispatches()[0].1.contains("2. Qwen"));
6521        assert_eq!(relay.dispatches()[1].0, 1);
6522        assert!(relay.dispatches()[1].1.contains("review this"));
6523        let public = relay.dispatches()[1]
6524            .1
6525            .split_once("Public updates:\n")
6526            .map(|(_, updates)| updates)
6527            .expect("review receives public context");
6528        let header = public
6529            .lines()
6530            .find(|line| line.starts_with("Codex "))
6531            .expect("named previous agent");
6532        let timestamp = header
6533            .strip_prefix("Codex ")
6534            .and_then(|value| value.strip_suffix(':'))
6535            .expect("timestamped header");
6536        assert_eq!(timestamp.len(), 5);
6537        assert_eq!(timestamp.as_bytes()[2], b':');
6538        assert!(
6539            timestamp
6540                .bytes()
6541                .enumerate()
6542                .all(|(index, byte)| { index == 2 || byte.is_ascii_digit() })
6543        );
6544        assert!(public.contains("implemented the fix"));
6545        assert!(!public.contains("Agent 0"));
6546    }
6547}