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mermaid_cli/providers/
ctx.rs

1//! Per-call context passed to providers and tool executors.
2//!
3//! The two structs below are the single point where per-turn
4//! cancellation + progress reporting + session identity meet a
5//! specific provider call. Everything a model or tool adapter needs
6//! to participate in structured concurrency is here.
7//!
8//! - `StreamContext` is handed to a `ModelProvider::chat()`. It
9//!   carries the cancellation token for the turn and a bounded mpsc
10//!   sink for streaming events. The adapter `select!`s on
11//!   `token.cancelled()` inside its read loop and awaits
12//!   `sink.send(event)` — if the main loop is drowning, the `await`
13//!   applies natural backpressure and the provider's TCP buffer fills
14//!   instead of the channel growing unbounded.
15//!
16//! - `ExecContext` is handed to a `ToolExecutor::execute()`. Same
17//!   token (so Ctrl+C cancels tools too) plus a progress sink and
18//!   identifiers so the reducer can match results to the call that
19//!   produced them.
20
21use std::path::PathBuf;
22use std::sync::Arc;
23
24use tokio::sync::mpsc;
25use tokio_util::sync::CancellationToken;
26
27use crate::domain::{ToolCallId, TurnId};
28use crate::models::tool_call::ToolCall as ModelToolCall;
29use crate::models::{ChatMessage, ReasoningChunk, TokenUsage};
30use crate::runtime::SafetyMode;
31
32use super::approval::ApprovalBroker;
33use super::auto_classifier::AutoClassifier;
34
35/// What a `ModelProvider::chat()` receives.
36#[derive(Debug)]
37pub struct StreamContext {
38    pub token: CancellationToken,
39    pub sink: mpsc::Sender<StreamEvent>,
40    pub turn: TurnId,
41}
42
43impl StreamContext {
44    pub fn new(token: CancellationToken, sink: mpsc::Sender<StreamEvent>, turn: TurnId) -> Self {
45        Self { token, sink, turn }
46    }
47}
48
49/// One event emitted during a streaming model call. Adapters MUST
50/// emit exactly one `Done` at the end of a successful stream. `Text`
51/// and `Reasoning` may interleave. `ToolCall` events typically arrive
52/// near the end but the contract is "before `Done`".
53#[derive(Debug, Clone)]
54pub enum StreamEvent {
55    Text(String),
56    Reasoning(ReasoningChunk),
57    ToolCall(ModelToolCall),
58    /// Optional — some providers emit a signature mid-stream
59    /// (Anthropic). Adapters that only have it at the end can attach
60    /// it to `Done` instead.
61    ThinkingSignature(String),
62    /// Stream complete. Carries final token usage (None if unknown)
63    /// and any terminal thinking signature.
64    Done {
65        usage: Option<TokenUsage>,
66        thinking_signature: Option<String>,
67    },
68}
69
70/// Final response returned by `ModelProvider::chat()` after the
71/// stream drains. Carries what the reducer can't derive from the
72/// stream events themselves — token usage and the opaque thinking
73/// signature needed for Anthropic extended-thinking continuation.
74#[derive(Debug, Clone)]
75pub struct FinalResponse {
76    pub usage: Option<TokenUsage>,
77    pub thinking_signature: Option<String>,
78    pub tool_calls: Vec<ModelToolCall>,
79}
80
81/// What a `ToolExecutor::execute()` receives.
82pub struct ExecContext {
83    pub token: CancellationToken,
84    /// Ctrl+B "background this" signal, parallel to `token`. Tools that can
85    /// detach a running child (execute_command) select on it; the live path
86    /// sets it from the turn scope, tests leave it never-fired.
87    pub background: CancellationToken,
88    pub progress: mpsc::Sender<ProgressEvent>,
89    pub call_id: ToolCallId,
90    pub turn: TurnId,
91    pub workdir: PathBuf,
92    /// Parent session's `app::Config`. Needed by `SubagentTool` so the
93    /// child reducer uses the same Ollama host, reasoning prefs, MCP
94    /// servers, etc. Other tools don't consult it — keeping it as a
95    /// typed field (rather than a global) means the dependency is
96    /// explicit in the signature.
97    pub config: Arc<crate::app::Config>,
98    /// Parent session's active model id (e.g. `"anthropic/claude-opus-4-7"`).
99    /// Subagents inherit this so they hit the same provider.
100    pub model_id: String,
101    /// Durable daemon task that owns this tool call, when execution was
102    /// launched through the runtime task queue.
103    pub task_id: Option<String>,
104    /// Effective live safety mode for this call (from the session, not the
105    /// static config). The policy gate builds its `PolicyEngine` from this.
106    pub safety_mode: SafetyMode,
107    /// The user's stated intent for the turn (latest user message), passed to
108    /// the Auto-mode classifier so it can judge whether an action is aligned.
109    pub intent: Option<String>,
110    /// LLM classifier for `SafetyMode::Auto`. `Some` only when the effective
111    /// mode is `Auto` and a provider is bound; the gate awaits it to resolve a
112    /// `PolicyDecision::Classify`. `None` ⇒ the gate fails safe (escalate).
113    pub classifier: Option<Arc<dyn AutoClassifier>>,
114    /// Inline-approval back-channel (interactive runs only). `Some` lets the
115    /// gate prompt the user and park until they answer; `None` (headless) falls
116    /// back to the out-of-band DB-approval flow.
117    pub approval: Option<ApprovalBroker>,
118}
119
120impl std::fmt::Debug for ExecContext {
121    fn fmt(&self, f: &mut std::fmt::Formatter<'_>) -> std::fmt::Result {
122        // `classifier` is a trait object (no `Debug`); render its presence.
123        f.debug_struct("ExecContext")
124            .field("call_id", &self.call_id)
125            .field("turn", &self.turn)
126            .field("workdir", &self.workdir)
127            .field("model_id", &self.model_id)
128            .field("task_id", &self.task_id)
129            .field("safety_mode", &self.safety_mode)
130            .field("intent", &self.intent)
131            .field(
132                "classifier",
133                &self.classifier.as_ref().map(|_| "<dyn AutoClassifier>"),
134            )
135            .field(
136                "approval",
137                &self.approval.as_ref().map(|_| "<ApprovalBroker>"),
138            )
139            .finish_non_exhaustive()
140    }
141}
142
143impl ExecContext {
144    #[allow(clippy::too_many_arguments)]
145    pub fn new(
146        token: CancellationToken,
147        progress: mpsc::Sender<ProgressEvent>,
148        call_id: ToolCallId,
149        turn: TurnId,
150        workdir: PathBuf,
151        config: Arc<crate::app::Config>,
152        model_id: String,
153        task_id: Option<String>,
154        safety_mode: SafetyMode,
155        intent: Option<String>,
156        classifier: Option<Arc<dyn AutoClassifier>>,
157        approval: Option<ApprovalBroker>,
158    ) -> Self {
159        Self {
160            token,
161            // Defaults to a fresh, never-fired token ("no background
162            // requested"); the live execute path overwrites it with the turn
163            // scope's background token.
164            background: CancellationToken::new(),
165            progress,
166            call_id,
167            turn,
168            workdir,
169            config,
170            model_id,
171            task_id,
172            safety_mode,
173            intent,
174            classifier,
175            approval,
176        }
177    }
178}
179
180/// Tool-side progress event. The reducer already knows `ToolStarted`
181/// and `ToolFinished`; this carries everything in between (streaming
182/// subprocess output, long-running download status, multimodal
183/// artifacts like inline screenshots, and nested activity from
184/// subagents).
185#[derive(Debug, Clone)]
186pub enum ProgressEvent {
187    /// Partial stdout/stderr chunk.
188    Output(String),
189    /// Arbitrary status string for display.
190    Status(String),
191    /// Byte-count progress for long downloads/transfers. `total` is
192    /// None when the producer doesn't know the final size.
193    Bytes { done: u64, total: Option<u64> },
194    /// Binary artifact produced mid-execution (screenshot preview,
195    /// generated file, etc.). MIME string determines routing in the
196    /// reducer — `image/*` attaches inline to the active assistant
197    /// message; anything else lands on the status line as a label.
198    Artifact {
199        mime: String,
200        data: Vec<u8>,
201        caption: Option<String>,
202    },
203    /// A child subagent just started or finished a tool call. Carries
204    /// the CHILD's call identity + tool name + phase so the parent UI
205    /// can surface it without needing to recurse into the child's
206    /// event vocabulary.
207    SubagentToolCall {
208        child_call_id: ToolCallId,
209        tool_name: String,
210        phase: SubagentPhase,
211    },
212    /// A chunk of assistant text produced by a child subagent. Mostly
213    /// UI flavor — lets the parent status line show what the sub is
214    /// "saying" in real time.
215    SubagentText(String),
216}
217
218/// Phase a subagent tool-call is in, from the parent's perspective.
219#[derive(Debug, Clone, Copy, PartialEq, Eq)]
220pub enum SubagentPhase {
221    Started,
222    Finished,
223    Errored,
224}
225
226/// Narrow shim from the reducer's `ChatRequest` to the adapter-facing
227/// messages. Providers often want to mutate the last assistant
228/// message (e.g. Anthropic cache_control injection); this helper
229/// clones the slice as owned so the provider can do that without
230/// fighting the borrow checker.
231pub fn clone_messages(msgs: &[ChatMessage]) -> Vec<ChatMessage> {
232    msgs.to_vec()
233}
234
235/// Builder that lets tests construct a pair of `StreamContext` +
236/// receiver without needing a runtime. Used by provider unit tests
237/// and by integration harnesses in C9.
238pub fn test_stream_context(turn: TurnId) -> (StreamContext, mpsc::Receiver<StreamEvent>) {
239    let token = CancellationToken::new();
240    let (tx, rx) = mpsc::channel(64);
241    (StreamContext::new(token, tx, turn), rx)
242}
243
244/// Builder counterpart for `ExecContext`. Uses a `Config` pinned to
245/// `SafetyMode::FullAccess` (the production default is now `Ask`) so tool
246/// unit tests exercise the tool's own behavior rather than the approval
247/// gate. Tests that specifically exercise policy gating should construct
248/// `ExecContext::new` directly with their chosen safety mode.
249pub fn test_exec_context(
250    turn: TurnId,
251    call_id: ToolCallId,
252    workdir: PathBuf,
253) -> (ExecContext, mpsc::Receiver<ProgressEvent>) {
254    let token = CancellationToken::new();
255    let (tx, rx) = mpsc::channel(64);
256    let mut config = crate::app::Config::default();
257    config.safety.mode = crate::runtime::SafetyMode::FullAccess;
258    let config = Arc::new(config);
259    (
260        ExecContext::new(
261            token,
262            tx,
263            call_id,
264            turn,
265            workdir,
266            config,
267            String::new(),
268            None,
269            crate::runtime::SafetyMode::FullAccess,
270            None,
271            None,
272            None,
273        ),
274        rx,
275    )
276}
277
278/// Convenience: build a Send+Sync sharable sink for tests.
279pub fn arc_sink(tx: mpsc::Sender<StreamEvent>) -> Arc<mpsc::Sender<StreamEvent>> {
280    Arc::new(tx)
281}
282
283#[cfg(test)]
284mod tests {
285    use super::*;
286    use std::path::PathBuf;
287
288    #[tokio::test]
289    async fn stream_context_carries_token_and_turn() {
290        let (ctx, _rx) = test_stream_context(TurnId(5));
291        assert_eq!(ctx.turn, TurnId(5));
292        assert!(!ctx.token.is_cancelled());
293    }
294
295    #[tokio::test]
296    async fn exec_context_propagates_cancel_signal() {
297        let (ctx, _rx) = test_exec_context(TurnId(1), ToolCallId(2), PathBuf::from("/tmp"));
298        let token = ctx.token.clone();
299        tokio::spawn(async move {
300            token.cancel();
301        });
302        // Wait until cancelled.
303        ctx.token.cancelled().await;
304        assert!(ctx.token.is_cancelled());
305    }
306
307    #[tokio::test]
308    async fn progress_event_round_trips_through_channel() {
309        let (ctx, mut rx) = test_exec_context(TurnId(1), ToolCallId(2), PathBuf::from("/tmp"));
310        ctx.progress
311            .send(ProgressEvent::Status("halfway".to_string()))
312            .await
313            .expect("send");
314        match rx.recv().await.expect("recv") {
315            ProgressEvent::Status(s) => assert_eq!(s, "halfway"),
316            _ => panic!("wrong variant"),
317        }
318    }
319}