dataflow_rs/engine/mod.rs
1/*!
2# Engine Module
3
4This module implements the core async workflow engine for dataflow-rs. The engine provides
5high-performance, asynchronous message processing through workflows composed of tasks.
6
7## Architecture
8
9The engine features a clean async-first architecture built on datalogic v5:
10- **Compiler**: Pre-compiles JSONLogic expressions into `Arc<Logic>` via `Engine::compile_arc`
11- **Executor**: Handles internal function execution (map, validation) with async support
12- **Engine**: Orchestrates workflow processing with shared compiled logic
13- **Thread-Safe**: Single `datalogic_rs::Engine` shared via `Arc`, with `Arc<Logic>` entries for zero-copy sharing
14
15## Key Components
16
17- **Engine**: Async engine optimized for Tokio runtime with mixed I/O and CPU workloads
18- **LogicCompiler**: Compiles and caches JSONLogic expressions during initialization
19- **InternalExecutor**: Executes built-in map and validation functions with compiled logic
20- **Workflow**: Collection of tasks with JSONLogic conditions (can access data, metadata, temp_data)
21- **Task**: Individual processing unit that performs a specific function on a message
22- **AsyncFunctionHandler**: Trait for custom async processing logic
23- **Message**: Data structure flowing through the engine with audit trail
24
25## Performance Optimizations
26
27- **Pre-compilation**: All JSONLogic expressions compiled at startup
28- **Arc-wrapped Logic**: Zero-copy sharing of compiled logic across async tasks
29- **Bump-arena evaluation**: Per-worker thread-local `Bump` is rewound (not freed) between evals
30- **True Async**: I/O operations remain fully async
31
32## Usage
33
34```rust,no_run
35use dataflow_rs::{Engine, Workflow, engine::message::Message};
36use serde_json::json;
37
38#[tokio::main]
39async fn main() -> Result<(), Box<dyn std::error::Error>> {
40 // Define workflows
41 let workflows = vec![
42 Workflow::from_json(r#"{"id": "example", "name": "Example", "tasks": [{"id": "task1", "name": "Task 1", "function": {"name": "map", "input": {"mappings": []}}}]}"#)?
43 ];
44
45 // Create engine with defaults
46 let engine = Engine::builder().with_workflows(workflows).build()?;
47
48 // Process messages asynchronously
49 let mut message = Message::from_value(&json!({}));
50 engine.process_message(&mut message).await?;
51
52 Ok(())
53}
54```
55*/
56
57pub mod compiler;
58pub mod error;
59pub mod executor;
60pub mod functions;
61pub mod message;
62pub mod observer;
63pub mod task;
64pub mod task_context;
65pub mod task_executor;
66pub mod task_outcome;
67pub mod trace;
68pub mod utils;
69pub mod workflow;
70pub mod workflow_executor;
71
72// Re-export key types for easier access
73pub use error::{DataflowError, ErrorInfo, Result, ServiceErrorBuilder};
74pub use functions::{
75 AsyncFunctionHandler, BoxedFunctionHandler, CompiledCustomInput, DynAsyncFunctionHandler,
76 FunctionConfig, Template, TemplateCompiler,
77};
78pub use message::Message;
79pub use observer::{ExecutionObserver, TaskEvent};
80pub use task::Task;
81pub use task_context::TaskContext;
82pub use task_outcome::{HALT_STATUS_CODE, TaskOutcome};
83pub use trace::{AuditTrailScope, ExecutionStep, ExecutionTrace, StepResult, TraceOptions};
84pub use workflow::{ConnectorRef, Rollout, Workflow, WorkflowStatus};
85
86// `EngineBuilder` is defined further down in this file but exposed here so
87// downstream paths can import it via `dataflow_rs::engine::EngineBuilder`.
88
89use chrono::Utc;
90use datalogic_rs::Engine as DatalogicEngine;
91use datavalue::OwnedDataValue;
92use std::collections::HashMap;
93use std::sync::Arc;
94
95use compiler::LogicCompiler;
96use task_executor::TaskExecutor;
97use workflow_executor::WorkflowExecutor;
98
99/// High-performance async workflow engine for message processing.
100///
101/// ## Architecture
102///
103/// The engine is designed for async-first operation with Tokio:
104/// - **Separation of Concerns**: Distinct executors for workflows and tasks
105/// - **Shared datalogic engine**: Single `datalogic_rs::Engine` wrapped in `Arc` for thread-safe sharing
106/// - **Arc<Logic>**: Pre-compiled logic shared across all async tasks
107/// - **Async Functions**: Native async support for I/O-bound operations
108///
109/// ## Performance Characteristics
110///
111/// - **Zero Runtime Compilation**: All logic compiled during initialization
112/// - **Zero-Copy Sharing**: Arc-wrapped compiled logic shared without cloning
113/// - **Optimal for Mixed Workloads**: Async I/O with blocking CPU evaluation
114/// - **Thread-Safe by Design**: All components safe to share across Tokio tasks
115pub struct Engine {
116 /// Registry of available workflows, pre-sorted by priority (immutable after initialization).
117 /// Each workflow / task / function-config holds its own `Arc<Logic>` slots
118 /// — there is no central logic cache anymore.
119 workflows: Arc<Vec<Workflow>>,
120 /// Channel index: maps channel name -> indices into workflows vec (only Active workflows)
121 channel_index: Arc<HashMap<String, Vec<usize>>>,
122 /// Workflow executor for orchestrating workflow execution
123 workflow_executor: Arc<WorkflowExecutor>,
124 /// Shared datalogic v5 engine for JSONLogic evaluation (Send + Sync)
125 datalogic: Arc<DatalogicEngine>,
126 /// Custom JSONLogic operators registered via
127 /// [`EngineBuilder::with_datalogic_operator`]. Retained here — not just
128 /// applied once — because [`Engine::with_new_workflows`] builds a fresh
129 /// datalogic engine and must re-register them; holding only the built
130 /// engine would silently drop every custom operator at the first hot
131 /// reload.
132 datalogic_operators: DatalogicOperators,
133 /// Pre-built `Arc<OwnedDataValue::String>` of the engine version.
134 /// Built once at construction. Note the per-message stamp still clones
135 /// the inner `String` — the context owns its values, so the cached
136 /// form only saves re-formatting, not the (small) allocation.
137 engine_version: Arc<OwnedDataValue>,
138}
139
140/// The custom-operator registrations an engine carries across rebuilds.
141pub type DatalogicOperators = Arc<HashMap<String, Arc<dyn datalogic_rs::CustomOperator>>>;
142
143/// Build a channel index from pre-sorted workflows.
144/// Maps channel name -> indices into workflows vec, only for Active workflows.
145fn build_channel_index(workflows: &[Workflow]) -> HashMap<String, Vec<usize>> {
146 let mut index: HashMap<String, Vec<usize>> = HashMap::new();
147 for (i, workflow) in workflows.iter().enumerate() {
148 if workflow.status == WorkflowStatus::Active {
149 index.entry(workflow.channel.clone()).or_default().push(i);
150 }
151 }
152 index
153}
154
155impl Engine {
156 /// Creates a new Engine instance.
157 ///
158 /// Compiles every workflow / task / function-config JSONLogic expression
159 /// up-front. Returns `Err(DataflowError)` if any required expression
160 /// fails to compile — fail-loud at construction time instead of silently
161 /// dropping broken workflows at runtime.
162 ///
163 /// # Arguments
164 /// * `workflows` - The workflows to use for processing messages
165 /// * `task_functions` - Custom async function handlers (use
166 /// `HashMap::new()` for none, or prefer [`Engine::builder`])
167 ///
168 /// # Example
169 ///
170 /// ```
171 /// use dataflow_rs::{Engine, Workflow};
172 ///
173 /// let workflows = vec![Workflow::from_json(r#"{"id": "test", "name": "Test", "priority": 0, "tasks": [{"id": "task1", "name": "Task 1", "function": {"name": "map", "input": {"mappings": []}}}]}"#).unwrap()];
174 ///
175 /// let engine = Engine::builder().with_workflows(workflows).build().unwrap();
176 /// ```
177 /// The recommended construction path is [`Engine::builder`]. `Engine::new`
178 /// is the lower-level escape hatch — accepts handlers as a plain
179 /// `HashMap` (use `HashMap::new()` for the no-handler case).
180 pub fn new(
181 workflows: Vec<Workflow>,
182 task_functions: HashMap<String, BoxedFunctionHandler>,
183 ) -> Result<Self> {
184 Self::new_with_operators(workflows, task_functions, Arc::new(HashMap::new()))
185 }
186
187 /// As [`Engine::new`], with custom JSONLogic operators registered on the
188 /// datalogic engine (and retained across [`Engine::with_new_workflows`]).
189 /// The builder path is [`EngineBuilder::with_datalogic_operator`]; this is
190 /// its escape-hatch twin, matching `new`.
191 pub fn new_with_operators(
192 workflows: Vec<Workflow>,
193 task_functions: HashMap<String, BoxedFunctionHandler>,
194 datalogic_operators: DatalogicOperators,
195 ) -> Result<Self> {
196 // Compile workflows (sorted by priority at compile time). Each
197 // workflow/task/config owns its own `Arc<Logic>` slots — no central
198 // cache to return. Any compile failure bubbles up immediately.
199 let compiler = LogicCompiler::with_operators(&datalogic_operators);
200 let mut sorted_workflows = compiler.compile_workflows(workflows)?;
201 let datalogic = compiler.into_engine();
202
203 // Pre-parse `FunctionConfig::Custom { input }` JSON into the
204 // registered handler's typed `Self::Input`, caching the boxed value
205 // on the task. Misshapen Custom configs fail here, not on first
206 // message — matches the "fail loud at startup" stance for compiled
207 // logic. Built-in async configs (HttpCall/Enrich/PublishKafka) are
208 // already typed by serde and need no second pass.
209 precompile_custom_inputs(&mut sorted_workflows, &task_functions, &datalogic)?;
210
211 let task_executor = Arc::new(TaskExecutor::new(
212 Arc::new(task_functions),
213 Arc::clone(&datalogic),
214 ));
215
216 let workflow_executor =
217 Arc::new(WorkflowExecutor::new(task_executor, Arc::clone(&datalogic)));
218
219 // Build channel index for O(1) channel-based routing
220 let channel_index = build_channel_index(&sorted_workflows);
221
222 Ok(Self {
223 workflows: Arc::new(sorted_workflows),
224 channel_index: Arc::new(channel_index),
225 workflow_executor,
226 datalogic,
227 datalogic_operators,
228 engine_version: Arc::new(OwnedDataValue::String(
229 env!("CARGO_PKG_VERSION").to_string(),
230 )),
231 })
232 }
233
234 /// Start building an engine. The recommended construction path —
235 /// chains `register("name", handler)` and `with_workflow(w)` calls,
236 /// then `build()` to produce a `Result<Engine>`.
237 ///
238 /// ```no_run
239 /// use dataflow_rs::{Engine, Workflow};
240 /// # let workflow: Workflow = unimplemented!();
241 /// let engine = Engine::builder()
242 /// .with_workflow(workflow)
243 /// // .register("my_handler", MyHandler) // any AsyncFunctionHandler
244 /// .build()
245 /// .unwrap();
246 /// ```
247 pub fn builder() -> EngineBuilder {
248 EngineBuilder::new()
249 }
250
251 /// Cached `OwnedDataValue::String` of the engine version.
252 pub fn engine_version_value(&self) -> &OwnedDataValue {
253 &self.engine_version
254 }
255
256 /// Creates a new Engine with different workflows but the same custom function handlers.
257 ///
258 /// This is the hot-reload path. The existing engine remains valid for any
259 /// in-flight `process_message` calls. The returned engine shares the same
260 /// function registry (zero-copy Arc bump) but has freshly compiled logic
261 /// for the new workflow set.
262 ///
263 /// # Arguments
264 /// * `workflows` - The new set of workflows to compile and use
265 pub fn with_new_workflows(&self, workflows: Vec<Workflow>) -> Result<Self> {
266 // Extract the shared function registry from the existing executor
267 let task_functions = self.workflow_executor.task_functions();
268
269 // Compile new workflows with a fresh datalogic engine instance —
270 // re-registering the retained custom operators, so a hot reload keeps
271 // the same operator vocabulary as the engine it replaces.
272 let compiler = LogicCompiler::with_operators(&self.datalogic_operators);
273 let mut sorted_workflows = compiler.compile_workflows(workflows)?;
274 let datalogic = compiler.into_engine();
275
276 // Pre-parse Custom inputs against the existing handler registry —
277 // hot-reload still validates the new workflow set against the
278 // already-registered handlers.
279 precompile_custom_inputs(&mut sorted_workflows, &task_functions, &datalogic)?;
280
281 // Rebuild the executor stack, reusing the existing function registry
282 let task_executor = Arc::new(TaskExecutor::new(task_functions, Arc::clone(&datalogic)));
283
284 // Carry the observer across the reload. Dropping it here would stop
285 // metrics silently at the first hot reload.
286 let mut executor = WorkflowExecutor::new(task_executor, Arc::clone(&datalogic));
287 if let Some(observer) = self.workflow_executor.observer() {
288 executor = executor.with_observer(Arc::clone(observer));
289 }
290 let workflow_executor = Arc::new(executor);
291
292 // Build channel index for O(1) channel-based routing
293 let channel_index = build_channel_index(&sorted_workflows);
294
295 Ok(Self {
296 workflows: Arc::new(sorted_workflows),
297 channel_index: Arc::new(channel_index),
298 workflow_executor,
299 datalogic,
300 datalogic_operators: Arc::clone(&self.datalogic_operators),
301 engine_version: Arc::clone(&self.engine_version),
302 })
303 }
304
305 /// Attach a per-task [`ExecutionObserver`], returning the updated engine.
306 ///
307 /// The escape hatch matching [`Engine::new`] — [`EngineBuilder::with_observer`]
308 /// is the recommended path. Rebuilds the executor stack around the existing
309 /// handler registry and datalogic engine, so nothing is recompiled; the cost
310 /// is a few `Arc` bumps.
311 ///
312 /// Carried across [`Engine::with_new_workflows`], so a hot reload does not
313 /// silently stop reporting.
314 pub fn with_observer(self, observer: Arc<dyn ExecutionObserver>) -> Self {
315 let task_executor = Arc::new(TaskExecutor::new(
316 self.workflow_executor.task_functions(),
317 Arc::clone(&self.datalogic),
318 ));
319 let workflow_executor = Arc::new(
320 WorkflowExecutor::new(task_executor, Arc::clone(&self.datalogic))
321 .with_observer(observer),
322 );
323 Self {
324 workflows: self.workflows,
325 channel_index: self.channel_index,
326 workflow_executor,
327 datalogic: self.datalogic,
328 datalogic_operators: self.datalogic_operators,
329 engine_version: self.engine_version,
330 }
331 }
332
333 /// Processes a message through workflows that match their conditions.
334 ///
335 /// This async method:
336 /// 1. Iterates through workflows sequentially in priority order (pre-sorted at construction)
337 /// 2. Delegates workflow execution to the WorkflowExecutor
338 /// 3. Updates message metadata
339 ///
340 /// # Error contract
341 ///
342 /// Errors flow through two complementary channels:
343 /// - `message.errors()` — **always** contains every error encountered
344 /// (validation failures, task panics, 5xx-status outcomes, workflow
345 /// wrappers). Callers that want a uniform view inspect this list.
346 /// - `Result::Err` — signals **only** that the engine stopped before
347 /// processing every workflow. Callers that want fail-fast match on
348 /// this. The error pushed to `message.errors` for the same failure
349 /// carries the workflow context (id) that the bare `Err` doesn't.
350 ///
351 /// In particular: a workflow with `continue_on_error: true` records its
352 /// errors to `message.errors` and returns `Ok(())` here. A workflow
353 /// with `continue_on_error: false` records to `message.errors` *and*
354 /// returns `Result::Err` (which short-circuits the rest of this call).
355 ///
356 /// # Arguments
357 /// * `message` - The message to process through workflows
358 ///
359 /// # Returns
360 /// * `Result<()>` — `Ok(())` if every workflow completed (each may have
361 /// pushed errors to `message.errors`); `Err(e)` if the engine
362 /// stopped early on a hard failure.
363 pub async fn process_message(&self, message: &mut Message) -> Result<()> {
364 // Capture a single timestamp for the entire process_message call. The
365 // workflow executor reads it back via Message metadata if it needs to
366 // emit AuditTrail entries; this caps the number of `Utc::now()` syscalls
367 // at 1 per message (down from 3+ — one stamp here, one per AuditTrail).
368 self.process_all(message, None, Utc::now()).await
369 }
370
371 /// Processes a message through workflows with step-by-step tracing,
372 /// recording into a caller-owned trace.
373 ///
374 /// Identical to [`Engine::process_message_with_trace`] except that the
375 /// trace is borrowed rather than returned, so the steps completed before a
376 /// hard failure survive the `Err`. That makes this the method to reach for
377 /// when the run you want to inspect is the run that failed — a returned
378 /// trace is dropped by the `?` at the call site, a borrowed one is not.
379 ///
380 /// Steps are **appended** to `trace`; any steps already present are
381 /// preserved, so a caller can accumulate across a chain of calls.
382 ///
383 /// The error contract is unchanged: `Ok(())` means every workflow was
384 /// processed (each may still have pushed to `message.errors`), and `Err(e)`
385 /// means the engine stopped early. See [`Engine::process_message`] for the
386 /// full contract.
387 ///
388 /// Note that the failing task's *own* step is not recorded — the engine
389 /// propagates the failure before appending it — so the retained trace ends
390 /// at the last known-good step rather than at the error. The error itself
391 /// is available from the returned `Err` and from `message.errors()`.
392 ///
393 /// # Arguments
394 /// * `message` - The message to process through workflows
395 /// * `trace` - Caller-owned trace to append steps to
396 ///
397 /// # Returns
398 /// * `Result<()>` — `Ok(())` if every workflow completed; `Err(e)` if the
399 /// engine stopped early. In both cases `trace` holds the steps that ran.
400 pub async fn process_message_tracing(
401 &self,
402 message: &mut Message,
403 trace: &mut ExecutionTrace,
404 ) -> Result<()> {
405 // The trace carries its own capture policy, so nothing to pass here.
406 self.process_all(message, Some(trace), Utc::now()).await
407 }
408
409 /// Shared driver behind [`Self::process_message`] and
410 /// [`Self::process_message_tracing`] — stamps processing metadata and runs
411 /// every registered workflow in priority order. Mirrors [`Self::process_channel`]
412 /// for the whole-registry case.
413 ///
414 /// `run_all_borrowed` groups consecutive fully-sync workflows into a
415 /// single shared-arena scope so the context is deep-walked once per run
416 /// rather than once per workflow. Passing the registry slice directly
417 /// avoids a per-message `Vec<&Workflow>` collect.
418 async fn process_all(
419 &self,
420 message: &mut Message,
421 trace: Option<&mut ExecutionTrace>,
422 now: chrono::DateTime<Utc>,
423 ) -> Result<()> {
424 set_processing_metadata(&mut message.context, &self.engine_version, now, None);
425 self.workflow_executor
426 .run_all_borrowed(&self.workflows[..], message, trace, now)
427 .await
428 }
429
430 /// Processes a message through workflows with step-by-step tracing.
431 ///
432 /// This method is similar to `process_message` but captures an execution trace
433 /// that can be used for debugging and step-by-step visualization.
434 ///
435 /// Because the trace is returned by value, a `?` at the call site discards
436 /// it — on a hard failure this yields `Err` and no steps at all. Use
437 /// [`Engine::process_message_tracing`] to keep the steps that ran.
438 ///
439 /// # Arguments
440 /// * `message` - The message to process through workflows
441 ///
442 /// # Returns
443 /// * `Result<ExecutionTrace>` - The execution trace with message snapshots
444 pub async fn process_message_with_trace(
445 &self,
446 message: &mut Message,
447 ) -> Result<ExecutionTrace> {
448 self.process_message_with_trace_options(message, TraceOptions::default())
449 .await
450 }
451
452 /// Processes a message with tracing under an explicit capture policy.
453 ///
454 /// The default policy — what [`Engine::process_message_with_trace`] uses —
455 /// takes a full [`Message`] snapshot per executed step, which is unbounded
456 /// in message size and quadratic in task count. A host that *persists*
457 /// traces should bound them here rather than trimming the result
458 /// afterwards; by then the peak memory has already been paid.
459 ///
460 /// See [`TraceOptions`] for the knobs, and
461 /// [`Engine::process_message_tracing`] if you also need the steps to survive
462 /// a hard failure.
463 ///
464 /// # Arguments
465 /// * `message` - The message to process through workflows
466 /// * `options` - What to record for each step
467 pub async fn process_message_with_trace_options(
468 &self,
469 message: &mut Message,
470 options: TraceOptions,
471 ) -> Result<ExecutionTrace> {
472 let mut trace = ExecutionTrace::with_options(options);
473 self.process_message_tracing(message, &mut trace).await?;
474 Ok(trace)
475 }
476
477 /// Processes a message through only the Active workflows registered for a given channel.
478 ///
479 /// Workflows are processed in priority order (lowest first), same as process_message().
480 /// If the channel does not exist or has no Active workflows, this is a no-op.
481 ///
482 /// # Arguments
483 /// * `channel` - The channel name to route the message through
484 /// * `message` - The message to process
485 pub async fn process_message_for_channel(
486 &self,
487 channel: &str,
488 message: &mut Message,
489 ) -> Result<()> {
490 self.process_channel(channel, message, None, Utc::now())
491 .await
492 }
493
494 /// Channel-scoped variant of [`Engine::process_message_tracing`].
495 ///
496 /// As with [`Engine::process_message_for_channel`], an unknown channel — or
497 /// a channel with no Active workflows — is a no-op: this returns `Ok(())`
498 /// and leaves `trace` untouched. Steps are appended, matching
499 /// [`Engine::process_message_tracing`].
500 ///
501 /// # Arguments
502 /// * `channel` - The channel name to route the message through
503 /// * `message` - The message to process
504 /// * `trace` - Caller-owned trace to append steps to
505 pub async fn process_message_for_channel_tracing(
506 &self,
507 channel: &str,
508 message: &mut Message,
509 trace: &mut ExecutionTrace,
510 ) -> Result<()> {
511 self.process_channel(channel, message, Some(trace), Utc::now())
512 .await
513 }
514
515 /// Shared driver behind [`Self::process_message_for_channel`] and
516 /// [`Self::process_message_for_channel_tracing`] — stamps processing
517 /// metadata and runs only the channel's Active workflows. An unknown
518 /// channel, or one with no Active workflows, is a no-op.
519 async fn process_channel(
520 &self,
521 channel: &str,
522 message: &mut Message,
523 trace: Option<&mut ExecutionTrace>,
524 now: chrono::DateTime<Utc>,
525 ) -> Result<()> {
526 set_processing_metadata(
527 &mut message.context,
528 &self.engine_version,
529 now,
530 Some(channel),
531 );
532
533 if let Some(indices) = self.channel_index.get(channel) {
534 // Channel-selected workflows are non-contiguous in the registry,
535 // so the pointer collect stays on this path.
536 let workflows: Vec<&Workflow> =
537 indices.iter().map(|&idx| &self.workflows[idx]).collect();
538 self.workflow_executor
539 .run_all_borrowed(&workflows, message, trace, now)
540 .await?;
541 }
542
543 Ok(())
544 }
545
546 /// Processes a message through a channel with step-by-step tracing.
547 ///
548 /// Because the trace is returned by value, a `?` at the call site discards
549 /// it — on a hard failure this yields `Err` and no steps at all. Use
550 /// [`Engine::process_message_for_channel_tracing`] to keep the steps that
551 /// ran.
552 ///
553 /// # Arguments
554 /// * `channel` - The channel name to route the message through
555 /// * `message` - The message to process
556 pub async fn process_message_for_channel_with_trace(
557 &self,
558 channel: &str,
559 message: &mut Message,
560 ) -> Result<ExecutionTrace> {
561 self.process_message_for_channel_with_trace_options(
562 channel,
563 message,
564 TraceOptions::default(),
565 )
566 .await
567 }
568
569 /// Channel-scoped variant of
570 /// [`Engine::process_message_with_trace_options`].
571 ///
572 /// # Arguments
573 /// * `channel` - The channel name to route the message through
574 /// * `message` - The message to process
575 /// * `options` - What to record for each step
576 pub async fn process_message_for_channel_with_trace_options(
577 &self,
578 channel: &str,
579 message: &mut Message,
580 options: TraceOptions,
581 ) -> Result<ExecutionTrace> {
582 let mut trace = ExecutionTrace::with_options(options);
583 self.process_message_for_channel_tracing(channel, message, &mut trace)
584 .await?;
585 Ok(trace)
586 }
587
588 /// Get a reference to the workflows (pre-sorted by priority)
589 pub fn workflows(&self) -> &Arc<Vec<Workflow>> {
590 &self.workflows
591 }
592
593 /// Look up a workflow by its ID
594 pub fn workflow_by_id(&self, id: &str) -> Option<&Workflow> {
595 self.workflows.iter().find(|w| w.id == id)
596 }
597
598 /// Get a reference to the underlying datalogic v5 engine.
599 pub fn datalogic(&self) -> &Arc<DatalogicEngine> {
600 &self.datalogic
601 }
602}
603
604/// Builder for [`Engine`]. The recommended construction path — chain
605/// `register("name", handler)` and `with_workflow(workflow)` calls, then
606/// `build()` to produce a `Result<Engine>`. Empty registration is fine; an
607/// engine with no custom handlers still resolves the built-in functions.
608///
609/// `register` takes any [`AsyncFunctionHandler`] and boxes it internally; the
610/// `Box<dyn DynAsyncFunctionHandler + Send + Sync>` plumbing stays out of
611/// user code.
612///
613/// ```no_run
614/// use dataflow_rs::{Engine, Workflow};
615/// # let workflow: Workflow = unimplemented!();
616/// let engine = Engine::builder()
617/// .with_workflow(workflow)
618/// // .register("my_handler", MyHandler)
619/// .build()
620/// .unwrap();
621/// ```
622#[must_use = "EngineBuilder must be `.build()` to produce an Engine"]
623#[derive(Default)]
624pub struct EngineBuilder {
625 workflows: Vec<Workflow>,
626 handlers: HashMap<String, BoxedFunctionHandler>,
627 observer: Option<Arc<dyn ExecutionObserver>>,
628 datalogic_operators: HashMap<String, Arc<dyn datalogic_rs::CustomOperator>>,
629}
630
631impl EngineBuilder {
632 /// Create an empty builder. Equivalent to [`EngineBuilder::default`].
633 pub fn new() -> Self {
634 Self::default()
635 }
636
637 /// Register a custom async handler under `name`. Accepts any
638 /// `AsyncFunctionHandler`; boxing happens internally via the engine's
639 /// blanket impl.
640 pub fn register<F>(mut self, name: impl Into<String>, handler: F) -> Self
641 where
642 F: AsyncFunctionHandler,
643 {
644 self.handlers.insert(name.into(), Box::new(handler));
645 self
646 }
647
648 /// Register a pre-boxed handler. Useful when handlers are constructed
649 /// dynamically (e.g. plugin registries) and the concrete type isn't
650 /// known at the call site.
651 pub fn register_boxed(
652 mut self,
653 name: impl Into<String>,
654 handler: BoxedFunctionHandler,
655 ) -> Self {
656 self.handlers.insert(name.into(), handler);
657 self
658 }
659
660 /// Add a single workflow. Subsequent calls append.
661 pub fn with_workflow(mut self, workflow: Workflow) -> Self {
662 self.workflows.push(workflow);
663 self
664 }
665
666 /// Append every workflow in `workflows`. Accepts anything iterable —
667 /// `Vec<Workflow>`, an array, an iterator. Existing workflows on the
668 /// builder are kept; subsequent registers/workflows still chain.
669 pub fn with_workflows<I>(mut self, workflows: I) -> Self
670 where
671 I: IntoIterator<Item = Workflow>,
672 {
673 self.workflows.extend(workflows);
674 self
675 }
676
677 /// Insert every handler in `handlers`, keeping any already registered.
678 ///
679 /// Same extend-not-replace semantics as [`EngineBuilder::with_workflows`].
680 /// Exists because `register` is per-name, which pushed an embedder that
681 /// builds a whole `HashMap<String, BoxedFunctionHandler>` in one place onto
682 /// [`Engine::new`] and off the builder entirely — and therefore out of reach
683 /// of [`EngineBuilder::with_observer`].
684 pub fn with_handlers(mut self, handlers: HashMap<String, BoxedFunctionHandler>) -> Self {
685 self.handlers.extend(handlers);
686 self
687 }
688
689 /// Attach a per-task [`ExecutionObserver`]. Later calls replace the previous
690 /// one.
691 ///
692 /// This is the only way to time the sync built-ins, which are dispatched
693 /// inside the executor and never reach the function registry. With no
694 /// observer attached the instrumentation — including its clock reads — stays
695 /// out of the dispatch path entirely.
696 pub fn with_observer(mut self, observer: Arc<dyn ExecutionObserver>) -> Self {
697 self.observer = Some(observer);
698 self
699 }
700
701 /// Register a custom JSONLogic operator on the engine's internal datalogic
702 /// instance, under `name`. Later calls with the same name replace the
703 /// earlier registration.
704 ///
705 /// This is the host's door for domain operators: the engine builds (and on
706 /// [`Engine::with_new_workflows`] *rebuilds*) its datalogic engine
707 /// internally, where registration is builder-only — so operators must
708 /// enter here to exist at all, and are retained on the engine so every
709 /// hot reload re-registers them.
710 ///
711 /// Semantics follow `datalogic_rs`: arguments arrive pre-evaluated, and a
712 /// built-in operator name always wins over a custom registration — pick
713 /// names no built-in uses. Because the engine always runs in templating
714 /// mode, a name that is *not* registered is not an error: the object
715 /// echoes back as literal data, exactly like a disabled operator family.
716 /// Registering a name therefore converts previously-inert values into
717 /// live operator calls, the same caveat the cargo features carry.
718 pub fn with_datalogic_operator<T>(mut self, name: impl Into<String>, operator: T) -> Self
719 where
720 T: datalogic_rs::CustomOperator + 'static,
721 {
722 self.datalogic_operators
723 .insert(name.into(), Arc::new(operator));
724 self
725 }
726
727 /// Compile the workflows, pre-parse Custom inputs, and produce the
728 /// engine. Compile errors and missing handler references surface here —
729 /// the engine never deserializes Custom config on the hot path.
730 pub fn build(self) -> Result<Engine> {
731 let engine = Engine::new_with_operators(
732 self.workflows,
733 self.handlers,
734 Arc::new(self.datalogic_operators),
735 )?;
736 Ok(match self.observer {
737 Some(observer) => engine.with_observer(observer),
738 None => engine,
739 })
740 }
741}
742
743/// Walk every task in every workflow; for each `FunctionConfig::Custom`,
744/// look up the registered handler and ask it to parse the raw `input` JSON
745/// into its typed `Self::Input` (boxed as `dyn Any`). The cached result is
746/// stored on the task — dispatch then hands the handler a `&dyn Any` it
747/// downcasts in O(1).
748///
749/// Built-in async configs (`HttpCall`, `Enrich`, `PublishKafka`) are already
750/// parsed by serde's `untagged` representation on `FunctionConfig`; they
751/// need no second pass.
752///
753/// Returns `FunctionNotFound` when a Custom task references an unregistered
754/// handler — moves the failure from "first message" to engine construction.
755fn precompile_custom_inputs(
756 workflows: &mut [Workflow],
757 handlers: &HashMap<String, BoxedFunctionHandler>,
758 datalogic: &Arc<DatalogicEngine>,
759) -> Result<()> {
760 let template_compiler = TemplateCompiler::new(Arc::clone(datalogic));
761 for workflow in workflows {
762 for task in &mut workflow.tasks {
763 if let FunctionConfig::Custom {
764 name,
765 input,
766 compiled_input,
767 } = &mut task.function
768 {
769 let handler = handlers
770 .get(name)
771 .ok_or_else(|| function_not_found_error(name, handlers))?;
772 let mut parsed = handler.parse_input_box(input)?;
773 handler.compile_input_box(&mut *parsed, &template_compiler)?;
774 *compiled_input = Some(CompiledCustomInput(Arc::from(parsed)));
775 }
776 }
777 }
778 Ok(())
779}
780
781/// Build a `FunctionNotFound` error that lists both the registered custom
782/// handlers and the names of built-in functions, so a user with a typo
783/// (e.g. `htttp_call`) can immediately spot the intended name.
784///
785/// **This message is free-form and deliberately unpinned.** It is a diagnostic
786/// for humans; its wording and layout may change in any release. No test
787/// asserts on it, and none should — a caller that needs the built-in vocabulary
788/// programmatically should use [`crate::BUILTIN_FUNCTION_NAMES`] and
789/// [`crate::builtin_function_kind`], which exist for exactly that purpose and
790/// answer the sharper question of whether a name needs a registered handler.
791fn function_not_found_error(
792 name: &str,
793 handlers: &HashMap<String, BoxedFunctionHandler>,
794) -> DataflowError {
795 use crate::engine::functions::config::BUILTIN_FUNCTION_NAMES;
796 let mut registered: Vec<&str> = handlers.keys().map(String::as_str).collect();
797 registered.sort_unstable();
798 let registered_part = if registered.is_empty() {
799 String::from("none")
800 } else {
801 registered.join(", ")
802 };
803 DataflowError::FunctionNotFound(format!(
804 "{name} (registered handlers: {registered_part}; built-ins: {})",
805 BUILTIN_FUNCTION_NAMES.join(", ")
806 ))
807}
808
809/// Stamp the standard processing metadata (`processed_at`, `engine_version`,
810/// and optionally `channel`) into the message context.
811///
812/// `now` is captured once at the top of `process_message` and reused so the
813/// timestamp on `metadata.processed_at` matches the one used for every
814/// `AuditTrail` entry within the same call.
815///
816/// Walks to the `metadata` object once and sets every key in a single pass,
817/// instead of one full `"metadata.*"` path split + tree walk per key.
818/// Mirrors `set_nested_value` semantics for the degenerate shapes: a
819/// non-object context or a non-object existing `metadata` slot no-ops; a
820/// missing `metadata` slot is created.
821///
822/// `(**engine_version).clone()` deep-clones the inner `String` — the
823/// context owns its values, so one small allocation per message is
824/// inherent; the cached `Arc` only saves re-formatting the version.
825fn set_processing_metadata(
826 context: &mut OwnedDataValue,
827 engine_version: &Arc<OwnedDataValue>,
828 now: chrono::DateTime<Utc>,
829 channel: Option<&str>,
830) {
831 let OwnedDataValue::Object(top) = context else {
832 return;
833 };
834 let metadata = match top.iter().position(|(k, _)| k == "metadata") {
835 Some(i) => &mut top[i].1,
836 None => {
837 top.push(("metadata".to_string(), OwnedDataValue::Object(Vec::new())));
838 &mut top.last_mut().expect("just pushed").1
839 }
840 };
841 let OwnedDataValue::Object(meta) = metadata else {
842 return;
843 };
844
845 let mut set_key = |key: &str, value: OwnedDataValue| {
846 if let Some(slot) = meta.iter_mut().find(|(k, _)| k == key) {
847 slot.1 = value;
848 } else {
849 meta.push((key.to_string(), value));
850 }
851 };
852 set_key("processed_at", OwnedDataValue::String(now.to_rfc3339()));
853 set_key("engine_version", (**engine_version).clone());
854 if let Some(channel) = channel {
855 set_key("channel", OwnedDataValue::String(channel.to_string()));
856 }
857}