hydro_lang/live_collections/keyed_stream/mod.rs
1//! Definitions for the [`KeyedStream`] live collection.
2
3use std::cell::RefCell;
4use std::collections::HashMap;
5use std::hash::Hash;
6use std::marker::PhantomData;
7use std::ops::Deref;
8use std::rc::Rc;
9
10use stageleft::{IntoQuotedMut, QuotedWithContext, QuotedWithContextWithProps, q};
11
12use super::boundedness::{Bounded, Boundedness, IsBounded, Unbounded};
13use super::keyed_singleton::KeyedSingleton;
14use super::optional::Optional;
15use super::stream::{
16 ExactlyOnce, IsExactlyOnce, IsOrdered, MinOrder, MinRetries, NoOrder, Stream, TotalOrder,
17};
18use crate::compile::builder::{CycleId, FlowState};
19use crate::compile::ir::{
20 CollectionKind, HydroIrOpMetadata, HydroNode, HydroRoot, SharedNode, StreamOrder, StreamRetry,
21};
22#[cfg(stageleft_runtime)]
23use crate::forward_handle::{CycleCollection, ReceiverComplete};
24use crate::forward_handle::{ForwardRef, TickCycle};
25use crate::live_collections::batch_atomic::BatchAtomic;
26use crate::live_collections::keyed_singleton::KeyedSingletonBound;
27use crate::live_collections::stream::{
28 AtLeastOnce, Ordering, Retries, WeakerOrderingThan, WeakerRetryThan,
29};
30#[cfg(stageleft_runtime)]
31use crate::location::dynamic::{DynLocation, LocationId};
32use crate::location::tick::DeferTick;
33use crate::location::{Atomic, Location, Tick, check_matching_location};
34use crate::manual_expr::ManualExpr;
35use crate::nondet::{NonDet, nondet};
36use crate::properties::{
37 AggFuncAlgebra, ApplyMonotoneKeyedStream, ValidCommutativityFor, ValidIdempotenceFor,
38 manual_proof,
39};
40
41pub mod networking;
42
43/// Streaming elements of type `V` grouped by a key of type `K`.
44///
45/// Keyed Streams capture streaming elements of type `V` grouped by a key of type `K`, where the
46/// order of keys is non-deterministic but the order *within* each group may be deterministic.
47///
48/// Although keyed streams are conceptually grouped by keys, values are not immediately grouped
49/// into buckets when constructing a keyed stream. Instead, keyed streams defer grouping until an
50/// operator such as [`KeyedStream::fold`] is called, which requires `K: Hash + Eq`.
51///
52/// Type Parameters:
53/// - `K`: the type of the key for each group
54/// - `V`: the type of the elements inside each group
55/// - `Loc`: the [`Location`] where the keyed stream is materialized
56/// - `Bound`: tracks whether the entries are [`Bounded`] (local and finite) or [`Unbounded`] (asynchronous and possibly infinite)
57/// - `Order`: tracks whether the elements within each group have deterministic order
58/// ([`TotalOrder`]) or not ([`NoOrder`])
59/// - `Retries`: tracks whether the elements within each group have deterministic cardinality
60/// ([`ExactlyOnce`]) or may have non-deterministic retries ([`crate::live_collections::stream::AtLeastOnce`])
61pub struct KeyedStream<
62 K,
63 V,
64 Loc,
65 Bound: Boundedness = Unbounded,
66 Order: Ordering = TotalOrder,
67 Retry: Retries = ExactlyOnce,
68> {
69 pub(crate) location: Loc,
70 pub(crate) ir_node: RefCell<HydroNode>,
71 pub(crate) flow_state: FlowState,
72
73 _phantom: PhantomData<(K, V, Loc, Bound, Order, Retry)>,
74}
75
76impl<K, V, L, B: Boundedness, O: Ordering, R: Retries> Drop for KeyedStream<K, V, L, B, O, R> {
77 fn drop(&mut self) {
78 let ir_node = self.ir_node.replace(HydroNode::Placeholder);
79 if !matches!(ir_node, HydroNode::Placeholder) && !ir_node.is_shared_with_others() {
80 self.flow_state.borrow_mut().try_push_root(HydroRoot::Null {
81 input: Box::new(ir_node),
82 op_metadata: HydroIrOpMetadata::new(),
83 });
84 }
85 }
86}
87
88impl<'a, K, V, L, O: Ordering, R: Retries> From<KeyedStream<K, V, L, Bounded, O, R>>
89 for KeyedStream<K, V, L, Unbounded, O, R>
90where
91 L: Location<'a>,
92{
93 fn from(stream: KeyedStream<K, V, L, Bounded, O, R>) -> KeyedStream<K, V, L, Unbounded, O, R> {
94 let new_meta = stream
95 .location
96 .new_node_metadata(KeyedStream::<K, V, L, Unbounded, O, R>::collection_kind());
97
98 KeyedStream {
99 location: stream.location.clone(),
100 flow_state: stream.flow_state.clone(),
101 ir_node: RefCell::new(HydroNode::Cast {
102 inner: Box::new(stream.ir_node.replace(HydroNode::Placeholder)),
103 metadata: new_meta,
104 }),
105 _phantom: PhantomData,
106 }
107 }
108}
109
110impl<'a, K, V, L, B: Boundedness, R: Retries> From<KeyedStream<K, V, L, B, TotalOrder, R>>
111 for KeyedStream<K, V, L, B, NoOrder, R>
112where
113 L: Location<'a>,
114{
115 fn from(stream: KeyedStream<K, V, L, B, TotalOrder, R>) -> KeyedStream<K, V, L, B, NoOrder, R> {
116 stream.weaken_ordering()
117 }
118}
119
120impl<'a, K, V, L, O: Ordering, R: Retries> DeferTick for KeyedStream<K, V, Tick<L>, Bounded, O, R>
121where
122 L: Location<'a>,
123{
124 fn defer_tick(self) -> Self {
125 KeyedStream::defer_tick(self)
126 }
127}
128
129impl<'a, K, V, L, O: Ordering, R: Retries> CycleCollection<'a, TickCycle>
130 for KeyedStream<K, V, Tick<L>, Bounded, O, R>
131where
132 L: Location<'a>,
133{
134 type Location = Tick<L>;
135
136 fn create_source(cycle_id: CycleId, location: Tick<L>) -> Self {
137 KeyedStream {
138 flow_state: location.flow_state().clone(),
139 location: location.clone(),
140 ir_node: RefCell::new(HydroNode::CycleSource {
141 cycle_id,
142 metadata: location.new_node_metadata(
143 KeyedStream::<K, V, Tick<L>, Bounded, O, R>::collection_kind(),
144 ),
145 }),
146 _phantom: PhantomData,
147 }
148 }
149}
150
151impl<'a, K, V, L, O: Ordering, R: Retries> ReceiverComplete<'a, TickCycle>
152 for KeyedStream<K, V, Tick<L>, Bounded, O, R>
153where
154 L: Location<'a>,
155{
156 fn complete(self, cycle_id: CycleId, expected_location: LocationId) {
157 assert_eq!(
158 Location::id(&self.location),
159 expected_location,
160 "locations do not match"
161 );
162
163 self.location
164 .flow_state()
165 .borrow_mut()
166 .push_root(HydroRoot::CycleSink {
167 cycle_id,
168 input: Box::new(self.ir_node.replace(HydroNode::Placeholder)),
169 op_metadata: HydroIrOpMetadata::new(),
170 });
171 }
172}
173
174impl<'a, K, V, L, B: Boundedness, O: Ordering, R: Retries> CycleCollection<'a, ForwardRef>
175 for KeyedStream<K, V, L, B, O, R>
176where
177 L: Location<'a>,
178{
179 type Location = L;
180
181 fn create_source(cycle_id: CycleId, location: L) -> Self {
182 KeyedStream {
183 flow_state: location.flow_state().clone(),
184 location: location.clone(),
185 ir_node: RefCell::new(HydroNode::CycleSource {
186 cycle_id,
187 metadata: location
188 .new_node_metadata(KeyedStream::<K, V, L, B, O, R>::collection_kind()),
189 }),
190 _phantom: PhantomData,
191 }
192 }
193}
194
195impl<'a, K, V, L, B: Boundedness, O: Ordering, R: Retries> ReceiverComplete<'a, ForwardRef>
196 for KeyedStream<K, V, L, B, O, R>
197where
198 L: Location<'a>,
199{
200 fn complete(self, cycle_id: CycleId, expected_location: LocationId) {
201 assert_eq!(
202 Location::id(&self.location),
203 expected_location,
204 "locations do not match"
205 );
206 self.location
207 .flow_state()
208 .borrow_mut()
209 .push_root(HydroRoot::CycleSink {
210 cycle_id,
211 input: Box::new(self.ir_node.replace(HydroNode::Placeholder)),
212 op_metadata: HydroIrOpMetadata::new(),
213 });
214 }
215}
216
217impl<'a, K: Clone, V: Clone, Loc: Location<'a>, Bound: Boundedness, Order: Ordering, R: Retries>
218 Clone for KeyedStream<K, V, Loc, Bound, Order, R>
219{
220 fn clone(&self) -> Self {
221 if !matches!(self.ir_node.borrow().deref(), HydroNode::Tee { .. }) {
222 let orig_ir_node = self.ir_node.replace(HydroNode::Placeholder);
223 *self.ir_node.borrow_mut() = HydroNode::Tee {
224 inner: SharedNode(Rc::new(RefCell::new(orig_ir_node))),
225 metadata: self.location.new_node_metadata(Self::collection_kind()),
226 };
227 }
228
229 if let HydroNode::Tee { inner, metadata } = self.ir_node.borrow().deref() {
230 KeyedStream {
231 location: self.location.clone(),
232 flow_state: self.flow_state.clone(),
233 ir_node: HydroNode::Tee {
234 inner: SharedNode(inner.0.clone()),
235 metadata: metadata.clone(),
236 }
237 .into(),
238 _phantom: PhantomData,
239 }
240 } else {
241 unreachable!()
242 }
243 }
244}
245
246/// The output of a Hydro generator created with [`KeyedStream::generator`], which can yield elements and
247/// control the processing of future elements.
248pub enum Generate<T> {
249 /// Emit the provided element, and keep processing future inputs.
250 Yield(T),
251 /// Emit the provided element as the _final_ element, do not process future inputs.
252 Return(T),
253 /// Do not emit anything, but continue processing future inputs.
254 Continue,
255 /// Do not emit anything, and do not process further inputs.
256 Break,
257}
258
259impl<'a, K, V, L: Location<'a>, B: Boundedness, O: Ordering, R: Retries>
260 KeyedStream<K, V, L, B, O, R>
261{
262 pub(crate) fn new(location: L, ir_node: HydroNode) -> Self {
263 debug_assert_eq!(ir_node.metadata().location_id, Location::id(&location));
264 debug_assert_eq!(ir_node.metadata().collection_kind, Self::collection_kind());
265
266 let flow_state = location.flow_state().clone();
267 KeyedStream {
268 location,
269 flow_state,
270 ir_node: RefCell::new(ir_node),
271 _phantom: PhantomData,
272 }
273 }
274
275 /// Returns the [`CollectionKind`] corresponding to this type.
276 pub fn collection_kind() -> CollectionKind {
277 CollectionKind::KeyedStream {
278 bound: B::BOUND_KIND,
279 value_order: O::ORDERING_KIND,
280 value_retry: R::RETRIES_KIND,
281 key_type: stageleft::quote_type::<K>().into(),
282 value_type: stageleft::quote_type::<V>().into(),
283 }
284 }
285
286 /// Returns the [`Location`] where this keyed stream is being materialized.
287 pub fn location(&self) -> &L {
288 &self.location
289 }
290
291 /// Weakens the consistency of this live collection to not guarantee any consistency across
292 /// cluster members (if this collection is on a cluster).
293 pub fn weaken_consistency(self) -> KeyedStream<K, V, L::DropConsistency, B, O, R>
294 where
295 L: Location<'a>,
296 {
297 if L::consistency()
298 .is_none_or(|c| c == crate::location::dynamic::ClusterConsistency::NoConsistency)
299 {
300 // already no consistency
301 KeyedStream::new(
302 self.location.drop_consistency(),
303 self.ir_node.replace(HydroNode::Placeholder),
304 )
305 } else {
306 KeyedStream::new(
307 self.location.drop_consistency(),
308 HydroNode::Cast {
309 inner: Box::new(self.ir_node.replace(HydroNode::Placeholder)),
310 metadata: self
311 .location
312 .drop_consistency()
313 .new_node_metadata(
314 KeyedStream::<K, V, L::DropConsistency, B>::collection_kind(),
315 ),
316 },
317 )
318 }
319 }
320
321 /// Casts this live collection to have the consistency guarantees specified in the given
322 /// location type parameter. The developer must ensure that the strengthened consistency
323 /// is actually guaranteed, via the proof field (see [`crate::prelude::manual_proof`]).
324 pub fn assert_has_consistency_of<L2: Location<'a, DropConsistency = L::DropConsistency>>(
325 self,
326 _proof: impl crate::properties::ConsistencyProof,
327 ) -> KeyedStream<K, V, L2, B, O, R>
328 where
329 L: Location<'a>,
330 {
331 if L::consistency() == L2::consistency() {
332 KeyedStream::new(
333 self.location.with_consistency_of(),
334 self.ir_node.replace(HydroNode::Placeholder),
335 )
336 } else {
337 KeyedStream::new(
338 self.location.with_consistency_of(),
339 HydroNode::AssertIsConsistent {
340 inner: Box::new(self.ir_node.replace(HydroNode::Placeholder)),
341 trusted: false,
342 metadata: self
343 .location
344 .clone()
345 .with_consistency_of::<L2>()
346 .new_node_metadata(KeyedStream::<K, V, L2, B, O, R>::collection_kind()),
347 },
348 )
349 }
350 }
351
352 pub(crate) fn assert_has_consistency_of_trusted<
353 L2: Location<'a, DropConsistency = L::DropConsistency>,
354 >(
355 self,
356 _proof: impl crate::properties::ConsistencyProof,
357 ) -> KeyedStream<K, V, L2, B, O, R>
358 where
359 L: Location<'a>,
360 {
361 if L::consistency() == L2::consistency() {
362 KeyedStream::new(
363 self.location.with_consistency_of(),
364 self.ir_node.replace(HydroNode::Placeholder),
365 )
366 } else {
367 KeyedStream::new(
368 self.location.with_consistency_of(),
369 HydroNode::AssertIsConsistent {
370 inner: Box::new(self.ir_node.replace(HydroNode::Placeholder)),
371 trusted: true,
372 metadata: self
373 .location
374 .clone()
375 .with_consistency_of::<L2>()
376 .new_node_metadata(KeyedStream::<K, V, L2, B, O, R>::collection_kind()),
377 },
378 )
379 }
380 }
381
382 /// Turns this [`KeyedStream`] into a [`Stream`] preserving ordering, under the invariant
383 /// assumption that there is at most one key. If this invariant is broken, the program
384 /// may exhibit undefined behavior, so uses must be carefully vetted.
385 pub(crate) fn cast_at_most_one_key(self) -> Stream<(K, V), L, B, O, R> {
386 Stream::new(
387 self.location.clone(),
388 HydroNode::Cast {
389 inner: Box::new(self.ir_node.replace(HydroNode::Placeholder)),
390 metadata: self
391 .location
392 .new_node_metadata(Stream::<(K, V), L, B, O, R>::collection_kind()),
393 },
394 )
395 }
396
397 /// Turns this [`KeyedStream`] into a [`KeyedSingleton`], under the invariant assumption that
398 /// there is at most one entry per key. If this invariant is broken, the program may exhibit
399 /// undefined behavior, so uses must be carefully vetted.
400 pub(crate) fn cast_at_most_one_entry_per_key(
401 self,
402 ) -> KeyedSingleton<K, V, L, B::WithBoundedValue> {
403 KeyedSingleton::new(
404 self.location.clone(),
405 HydroNode::Cast {
406 inner: Box::new(self.ir_node.replace(HydroNode::Placeholder)),
407 metadata: self.location.new_node_metadata(KeyedSingleton::<
408 K,
409 V,
410 L,
411 B::WithBoundedValue,
412 >::collection_kind()),
413 },
414 )
415 }
416
417 pub(crate) fn use_ordering_type<O2: Ordering>(self) -> KeyedStream<K, V, L, B, O2, R> {
418 if O::ORDERING_KIND == O2::ORDERING_KIND {
419 KeyedStream::new(
420 self.location.clone(),
421 self.ir_node.replace(HydroNode::Placeholder),
422 )
423 } else {
424 panic!(
425 "Runtime ordering {:?} did not match requested cast {:?}.",
426 O::ORDERING_KIND,
427 O2::ORDERING_KIND
428 )
429 }
430 }
431
432 /// Explicitly "casts" the keyed stream to a type with a different ordering
433 /// guarantee for each group. Useful in unsafe code where the ordering cannot be proven
434 /// by the type-system.
435 ///
436 /// # Non-Determinism
437 /// This function is used as an escape hatch, and any mistakes in the
438 /// provided ordering guarantee will propagate into the guarantees
439 /// for the rest of the program.
440 pub fn assume_ordering<O2: Ordering>(
441 self,
442 _nondet: NonDet,
443 ) -> KeyedStream<K, V, L::DropConsistency, B, O2, R> {
444 if O::ORDERING_KIND == O2::ORDERING_KIND {
445 self.use_ordering_type().weaken_consistency()
446 } else if O2::ORDERING_KIND == StreamOrder::NoOrder {
447 // We can always weaken the ordering guarantee
448 let target_location = self.location.drop_consistency();
449 KeyedStream::new(
450 target_location.clone(),
451 HydroNode::Cast {
452 inner: Box::new(self.ir_node.replace(HydroNode::Placeholder)),
453 metadata: target_location
454 .new_node_metadata(KeyedStream::<K, V, L, B, O2, R>::collection_kind()),
455 },
456 )
457 } else {
458 let target_location = self.location.drop_consistency();
459 KeyedStream::new(
460 target_location.clone(),
461 HydroNode::ObserveNonDet {
462 inner: Box::new(self.ir_node.replace(HydroNode::Placeholder)),
463 trusted: false,
464 metadata: target_location
465 .new_node_metadata(KeyedStream::<K, V, L, B, O2, R>::collection_kind()),
466 },
467 )
468 }
469 }
470
471 fn assume_ordering_trusted<O2: Ordering>(
472 self,
473 _nondet: NonDet,
474 ) -> KeyedStream<K, V, L, B, O2, R> {
475 if O::ORDERING_KIND == O2::ORDERING_KIND {
476 KeyedStream::new(
477 self.location.clone(),
478 self.ir_node.replace(HydroNode::Placeholder),
479 )
480 } else if O2::ORDERING_KIND == StreamOrder::NoOrder {
481 // We can always weaken the ordering guarantee
482 KeyedStream::new(
483 self.location.clone(),
484 HydroNode::Cast {
485 inner: Box::new(self.ir_node.replace(HydroNode::Placeholder)),
486 metadata: self
487 .location
488 .new_node_metadata(KeyedStream::<K, V, L, B, O2, R>::collection_kind()),
489 },
490 )
491 } else {
492 KeyedStream::new(
493 self.location.clone(),
494 HydroNode::ObserveNonDet {
495 inner: Box::new(self.ir_node.replace(HydroNode::Placeholder)),
496 trusted: true,
497 metadata: self
498 .location
499 .new_node_metadata(KeyedStream::<K, V, L, B, O2, R>::collection_kind()),
500 },
501 )
502 }
503 }
504
505 #[deprecated = "use `weaken_ordering::<NoOrder>()` instead"]
506 /// Weakens the ordering guarantee provided by the stream to [`NoOrder`],
507 /// which is always safe because that is the weakest possible guarantee.
508 pub fn weakest_ordering(self) -> KeyedStream<K, V, L, B, NoOrder, R> {
509 self.weaken_ordering::<NoOrder>()
510 }
511
512 /// Weakens the ordering guarantee provided by the stream to `O2`, with the type-system
513 /// enforcing that `O2` is weaker than the input ordering guarantee.
514 pub fn weaken_ordering<O2: WeakerOrderingThan<O>>(self) -> KeyedStream<K, V, L, B, O2, R> {
515 let nondet = nondet!(/** this is a weaker ordering guarantee, so it is safe to assume */);
516 self.assume_ordering_trusted::<O2>(nondet)
517 }
518
519 /// Strengthens the ordering guarantee to `TotalOrder`, given that `O: IsOrdered`, which
520 /// implies that `O == TotalOrder`.
521 pub fn make_totally_ordered(self) -> KeyedStream<K, V, L, B, TotalOrder, R>
522 where
523 O: IsOrdered,
524 {
525 self.assume_ordering_trusted(nondet!(/** no-op */))
526 }
527
528 /// Explicitly "casts" the keyed stream to a type with a different retries
529 /// guarantee for each group. Useful in unsafe code where the lack of retries cannot
530 /// be proven by the type-system.
531 ///
532 /// # Non-Determinism
533 /// This function is used as an escape hatch, and any mistakes in the
534 /// provided retries guarantee will propagate into the guarantees
535 /// for the rest of the program.
536 pub fn assume_retries<R2: Retries>(
537 self,
538 _nondet: NonDet,
539 ) -> KeyedStream<K, V, L::DropConsistency, B, O, R2> {
540 if R::RETRIES_KIND == R2::RETRIES_KIND {
541 KeyedStream::new(
542 self.location.drop_consistency(),
543 self.ir_node.replace(HydroNode::Placeholder),
544 )
545 } else if R2::RETRIES_KIND == StreamRetry::AtLeastOnce {
546 // We can always weaken the retries guarantee
547 let target_location = self.location.drop_consistency();
548 KeyedStream::new(
549 target_location.clone(),
550 HydroNode::Cast {
551 inner: Box::new(self.ir_node.replace(HydroNode::Placeholder)),
552 metadata: target_location
553 .new_node_metadata(KeyedStream::<K, V, L, B, O, R2>::collection_kind()),
554 },
555 )
556 } else {
557 let target_location = self.location.drop_consistency();
558 KeyedStream::new(
559 target_location.clone(),
560 HydroNode::ObserveNonDet {
561 inner: Box::new(self.ir_node.replace(HydroNode::Placeholder)),
562 trusted: false,
563 metadata: target_location
564 .new_node_metadata(KeyedStream::<K, V, L, B, O, R2>::collection_kind()),
565 },
566 )
567 }
568 }
569
570 // only for internal APIs that have been carefully vetted to ensure that the non-determinism
571 // is not observable
572 fn assume_retries_trusted<R2: Retries>(
573 self,
574 _nondet: NonDet,
575 ) -> KeyedStream<K, V, L, B, O, R2> {
576 if R::RETRIES_KIND == R2::RETRIES_KIND {
577 KeyedStream::new(
578 self.location.clone(),
579 self.ir_node.replace(HydroNode::Placeholder),
580 )
581 } else if R2::RETRIES_KIND == StreamRetry::AtLeastOnce {
582 // We can always weaken the retries guarantee
583 KeyedStream::new(
584 self.location.clone(),
585 HydroNode::Cast {
586 inner: Box::new(self.ir_node.replace(HydroNode::Placeholder)),
587 metadata: self
588 .location
589 .new_node_metadata(KeyedStream::<K, V, L, B, O, R2>::collection_kind()),
590 },
591 )
592 } else {
593 KeyedStream::new(
594 self.location.clone(),
595 HydroNode::ObserveNonDet {
596 inner: Box::new(self.ir_node.replace(HydroNode::Placeholder)),
597 trusted: true,
598 metadata: self
599 .location
600 .new_node_metadata(KeyedStream::<K, V, L, B, O, R2>::collection_kind()),
601 },
602 )
603 }
604 }
605
606 #[deprecated = "use `weaken_retries::<AtLeastOnce>()` instead"]
607 /// Weakens the retries guarantee provided by the stream to [`AtLeastOnce`],
608 /// which is always safe because that is the weakest possible guarantee.
609 pub fn weakest_retries(self) -> KeyedStream<K, V, L, B, O, AtLeastOnce> {
610 self.weaken_retries::<AtLeastOnce>()
611 }
612
613 /// Weakens the retries guarantee provided by the stream to `R2`, with the type-system
614 /// enforcing that `R2` is weaker than the input retries guarantee.
615 pub fn weaken_retries<R2: WeakerRetryThan<R>>(self) -> KeyedStream<K, V, L, B, O, R2> {
616 let nondet = nondet!(/** this is a weaker retries guarantee, so it is safe to assume */);
617 self.assume_retries_trusted::<R2>(nondet)
618 }
619
620 /// Strengthens the retry guarantee to `ExactlyOnce`, given that `R: IsExactlyOnce`, which
621 /// implies that `R == ExactlyOnce`.
622 pub fn make_exactly_once(self) -> KeyedStream<K, V, L, B, O, ExactlyOnce>
623 where
624 R: IsExactlyOnce,
625 {
626 self.assume_retries_trusted(nondet!(/** no-op */))
627 }
628
629 /// Strengthens the boundedness guarantee to `Bounded`, given that `B: IsBounded`, which
630 /// implies that `B == Bounded`.
631 pub fn make_bounded(self) -> KeyedStream<K, V, L, Bounded, O, R>
632 where
633 B: IsBounded,
634 {
635 self.weaken_boundedness()
636 }
637
638 /// Weakens the boundedness guarantee to an arbitrary boundedness `B2`, given that `B: IsBounded`,
639 /// which implies that `B == Bounded`.
640 pub fn weaken_boundedness<B2: Boundedness>(self) -> KeyedStream<K, V, L, B2, O, R> {
641 if B::BOUNDED == B2::BOUNDED {
642 KeyedStream::new(
643 self.location.clone(),
644 self.ir_node.replace(HydroNode::Placeholder),
645 )
646 } else {
647 // We can always weaken the boundedness
648 KeyedStream::new(
649 self.location.clone(),
650 HydroNode::Cast {
651 inner: Box::new(self.ir_node.replace(HydroNode::Placeholder)),
652 metadata: self
653 .location
654 .new_node_metadata(KeyedStream::<K, V, L, B2, O, R>::collection_kind()),
655 },
656 )
657 }
658 }
659
660 /// Flattens the keyed stream into an unordered stream of key-value pairs.
661 ///
662 /// # Example
663 /// ```rust
664 /// # #[cfg(feature = "deploy")] {
665 /// # use hydro_lang::prelude::*;
666 /// # use futures::StreamExt;
667 /// # tokio_test::block_on(hydro_lang::test_util::stream_transform_test(|process| {
668 /// process
669 /// .source_iter(q!(vec![(1, 2), (1, 3), (2, 4)]))
670 /// .into_keyed()
671 /// .entries()
672 /// # }, |mut stream| async move {
673 /// // (1, 2), (1, 3), (2, 4) in any order
674 /// # let mut results = Vec::new();
675 /// # for _ in 0..3 {
676 /// # results.push(stream.next().await.unwrap());
677 /// # }
678 /// # results.sort();
679 /// # assert_eq!(results, vec![(1, 2), (1, 3), (2, 4)]);
680 /// # }));
681 /// # }
682 /// ```
683 pub fn entries(self) -> Stream<(K, V), L, B, NoOrder, R> {
684 Stream::new(
685 self.location.clone(),
686 HydroNode::Cast {
687 inner: Box::new(self.ir_node.replace(HydroNode::Placeholder)),
688 metadata: self
689 .location
690 .new_node_metadata(Stream::<(K, V), L, B, NoOrder, R>::collection_kind()),
691 },
692 )
693 }
694
695 /// Flattens the keyed stream into a totally ordered stream of key-value pairs,
696 /// preserving the order of values within each key group but non-deterministically
697 /// interleaving across keys.
698 ///
699 /// Requires the keyed stream to be totally ordered within each group (`O: IsOrdered`).
700 ///
701 /// # Non-Determinism
702 /// The interleaving of entries across different keys is non-deterministic.
703 /// Within each key, the original order is preserved.
704 pub fn entries_partially_ordered(
705 self,
706 _nondet: NonDet,
707 ) -> Stream<(K, V), L::DropConsistency, B, TotalOrder, R>
708 where
709 O: IsOrdered,
710 {
711 let target_location = self.location.drop_consistency();
712 Stream::new(
713 target_location.clone(),
714 HydroNode::ObserveNonDet {
715 inner: Box::new(self.ir_node.replace(HydroNode::Placeholder)),
716 trusted: false,
717 metadata: target_location
718 .new_node_metadata(Stream::<(K, V), L, B, TotalOrder, R>::collection_kind()),
719 },
720 )
721 }
722
723 /// Flattens the keyed stream into an unordered stream of only the values.
724 ///
725 /// # Example
726 /// ```rust
727 /// # #[cfg(feature = "deploy")] {
728 /// # use hydro_lang::prelude::*;
729 /// # use futures::StreamExt;
730 /// # tokio_test::block_on(hydro_lang::test_util::stream_transform_test(|process| {
731 /// process
732 /// .source_iter(q!(vec![(1, 2), (1, 3), (2, 4)]))
733 /// .into_keyed()
734 /// .values()
735 /// # }, |mut stream| async move {
736 /// // 2, 3, 4 in any order
737 /// # let mut results = Vec::new();
738 /// # for _ in 0..3 {
739 /// # results.push(stream.next().await.unwrap());
740 /// # }
741 /// # results.sort();
742 /// # assert_eq!(results, vec![2, 3, 4]);
743 /// # }));
744 /// # }
745 /// ```
746 pub fn values(self) -> Stream<V, L, B, NoOrder, R> {
747 self.entries().map(q!(|(_, v)| v))
748 }
749
750 /// Flattens the keyed stream into an unordered stream of just the keys.
751 ///
752 /// # Example
753 /// ```rust
754 /// # #[cfg(feature = "deploy")] {
755 /// # use hydro_lang::prelude::*;
756 /// # use futures::StreamExt;
757 /// # tokio_test::block_on(hydro_lang::test_util::stream_transform_test(|process| {
758 /// # process
759 /// # .source_iter(q!(vec![(1, 2), (2, 4), (1, 5)]))
760 /// # .into_keyed()
761 /// # .keys()
762 /// # }, |mut stream| async move {
763 /// // 1, 2 in any order
764 /// # let mut results = Vec::new();
765 /// # for _ in 0..2 {
766 /// # results.push(stream.next().await.unwrap());
767 /// # }
768 /// # results.sort();
769 /// # assert_eq!(results, vec![1, 2]);
770 /// # }));
771 /// # }
772 /// ```
773 pub fn keys(self) -> Stream<K, L, B, NoOrder, ExactlyOnce>
774 where
775 K: Eq + Hash,
776 {
777 self.entries().map(q!(|(k, _)| k)).unique()
778 }
779
780 /// Transforms each value by invoking `f` on each element, with keys staying the same
781 /// after transformation. If you need access to the key, see [`KeyedStream::map_with_key`].
782 ///
783 /// If you do not want to modify the stream and instead only want to view
784 /// each item use [`KeyedStream::inspect`] instead.
785 ///
786 /// # Example
787 /// ```rust
788 /// # #[cfg(feature = "deploy")] {
789 /// # use hydro_lang::prelude::*;
790 /// # use futures::StreamExt;
791 /// # tokio_test::block_on(hydro_lang::test_util::stream_transform_test(|process| {
792 /// process
793 /// .source_iter(q!(vec![(1, 2), (1, 3), (2, 4)]))
794 /// .into_keyed()
795 /// .map(q!(|v| v + 1))
796 /// # .entries()
797 /// # }, |mut stream| async move {
798 /// // { 1: [3, 4], 2: [5] }
799 /// # let mut results = Vec::new();
800 /// # for _ in 0..3 {
801 /// # results.push(stream.next().await.unwrap());
802 /// # }
803 /// # results.sort();
804 /// # assert_eq!(results, vec![(1, 3), (1, 4), (2, 5)]);
805 /// # }));
806 /// # }
807 /// ```
808 pub fn map<U, F>(self, f: impl IntoQuotedMut<'a, F, L> + Copy) -> KeyedStream<K, U, L, B, O, R>
809 where
810 F: Fn(V) -> U + 'a,
811 {
812 let f: ManualExpr<F, _> = ManualExpr::new(move |ctx: &L| f.splice_fn1_ctx(ctx));
813 let map_f = q!({
814 let orig = f;
815 move |(k, v)| (k, orig(v))
816 })
817 .splice_fn1_ctx::<(K, V), (K, U)>(&self.location)
818 .into();
819
820 KeyedStream::new(
821 self.location.clone(),
822 HydroNode::Map {
823 f: map_f,
824 input: Box::new(self.ir_node.replace(HydroNode::Placeholder)),
825 metadata: self
826 .location
827 .new_node_metadata(KeyedStream::<K, U, L, B, O, R>::collection_kind()),
828 },
829 )
830 }
831
832 /// Transforms each value by invoking `f` on each key-value pair. The resulting values are **not**
833 /// re-grouped even they are tuples; instead they will be grouped under the original key.
834 ///
835 /// If you do not want to modify the stream and instead only want to view
836 /// each item use [`KeyedStream::inspect_with_key`] instead.
837 ///
838 /// # Example
839 /// ```rust
840 /// # #[cfg(feature = "deploy")] {
841 /// # use hydro_lang::prelude::*;
842 /// # use futures::StreamExt;
843 /// # tokio_test::block_on(hydro_lang::test_util::stream_transform_test(|process| {
844 /// process
845 /// .source_iter(q!(vec![(1, 2), (1, 3), (2, 4)]))
846 /// .into_keyed()
847 /// .map_with_key(q!(|(k, v)| k + v))
848 /// # .entries()
849 /// # }, |mut stream| async move {
850 /// // { 1: [3, 4], 2: [6] }
851 /// # let mut results = Vec::new();
852 /// # for _ in 0..3 {
853 /// # results.push(stream.next().await.unwrap());
854 /// # }
855 /// # results.sort();
856 /// # assert_eq!(results, vec![(1, 3), (1, 4), (2, 6)]);
857 /// # }));
858 /// # }
859 /// ```
860 pub fn map_with_key<U, F>(
861 self,
862 f: impl IntoQuotedMut<'a, F, L> + Copy,
863 ) -> KeyedStream<K, U, L, B, O, R>
864 where
865 F: Fn((K, V)) -> U + 'a,
866 K: Clone,
867 {
868 let f: ManualExpr<F, _> = ManualExpr::new(move |ctx: &L| f.splice_fn1_ctx(ctx));
869 let map_f = q!({
870 let orig = f;
871 move |(k, v)| {
872 let out = orig((Clone::clone(&k), v));
873 (k, out)
874 }
875 })
876 .splice_fn1_ctx::<(K, V), (K, U)>(&self.location)
877 .into();
878
879 KeyedStream::new(
880 self.location.clone(),
881 HydroNode::Map {
882 f: map_f,
883 input: Box::new(self.ir_node.replace(HydroNode::Placeholder)),
884 metadata: self
885 .location
886 .new_node_metadata(KeyedStream::<K, U, L, B, O, R>::collection_kind()),
887 },
888 )
889 }
890
891 /// Prepends a new value to the key of each element in the stream, producing a new
892 /// keyed stream with compound keys. Because the original key is preserved, no re-grouping
893 /// occurs and the elements in each group preserve their original order.
894 ///
895 /// # Example
896 /// ```rust
897 /// # #[cfg(feature = "deploy")] {
898 /// # use hydro_lang::prelude::*;
899 /// # use futures::StreamExt;
900 /// # tokio_test::block_on(hydro_lang::test_util::stream_transform_test(|process| {
901 /// process
902 /// .source_iter(q!(vec![(1, 2), (1, 3), (2, 4)]))
903 /// .into_keyed()
904 /// .prefix_key(q!(|&(k, _)| k % 2))
905 /// # .entries()
906 /// # }, |mut stream| async move {
907 /// // { (1, 1): [2, 3], (0, 2): [4] }
908 /// # let mut results = Vec::new();
909 /// # for _ in 0..3 {
910 /// # results.push(stream.next().await.unwrap());
911 /// # }
912 /// # results.sort();
913 /// # assert_eq!(results, vec![((0, 2), 4), ((1, 1), 2), ((1, 1), 3)]);
914 /// # }));
915 /// # }
916 /// ```
917 pub fn prefix_key<K2, F>(
918 self,
919 f: impl IntoQuotedMut<'a, F, L> + Copy,
920 ) -> KeyedStream<(K2, K), V, L, B, O, R>
921 where
922 F: Fn(&(K, V)) -> K2 + 'a,
923 {
924 let f: ManualExpr<F, _> = ManualExpr::new(move |ctx: &L| f.splice_fn1_borrow_ctx(ctx));
925 let map_f = q!({
926 let orig = f;
927 move |kv| {
928 let out = orig(&kv);
929 ((out, kv.0), kv.1)
930 }
931 })
932 .splice_fn1_ctx::<(K, V), ((K2, K), V)>(&self.location)
933 .into();
934
935 KeyedStream::new(
936 self.location.clone(),
937 HydroNode::Map {
938 f: map_f,
939 input: Box::new(self.ir_node.replace(HydroNode::Placeholder)),
940 metadata: self
941 .location
942 .new_node_metadata(KeyedStream::<(K2, K), V, L, B, O, R>::collection_kind()),
943 },
944 )
945 }
946
947 /// Creates a stream containing only the elements of each group stream that satisfy a predicate
948 /// `f`, preserving the order of the elements within the group.
949 ///
950 /// The closure `f` receives a reference `&V` rather than an owned value `v` because filtering does
951 /// not modify or take ownership of the values. If you need to modify the values while filtering
952 /// use [`KeyedStream::filter_map`] instead.
953 ///
954 /// # Example
955 /// ```rust
956 /// # #[cfg(feature = "deploy")] {
957 /// # use hydro_lang::prelude::*;
958 /// # use futures::StreamExt;
959 /// # tokio_test::block_on(hydro_lang::test_util::stream_transform_test(|process| {
960 /// process
961 /// .source_iter(q!(vec![(1, 2), (1, 3), (2, 4)]))
962 /// .into_keyed()
963 /// .filter(q!(|&x| x > 2))
964 /// # .entries()
965 /// # }, |mut stream| async move {
966 /// // { 1: [3], 2: [4] }
967 /// # let mut results = Vec::new();
968 /// # for _ in 0..2 {
969 /// # results.push(stream.next().await.unwrap());
970 /// # }
971 /// # results.sort();
972 /// # assert_eq!(results, vec![(1, 3), (2, 4)]);
973 /// # }));
974 /// # }
975 /// ```
976 pub fn filter<F>(self, f: impl IntoQuotedMut<'a, F, L> + Copy) -> KeyedStream<K, V, L, B, O, R>
977 where
978 F: Fn(&V) -> bool + 'a,
979 {
980 let f: ManualExpr<F, _> = ManualExpr::new(move |ctx: &L| f.splice_fn1_borrow_ctx(ctx));
981 let filter_f = q!({
982 let orig = f;
983 move |t: &(_, _)| orig(&t.1)
984 })
985 .splice_fn1_borrow_ctx::<(K, V), bool>(&self.location)
986 .into();
987
988 KeyedStream::new(
989 self.location.clone(),
990 HydroNode::Filter {
991 f: filter_f,
992 input: Box::new(self.ir_node.replace(HydroNode::Placeholder)),
993 metadata: self.location.new_node_metadata(Self::collection_kind()),
994 },
995 )
996 }
997
998 /// Creates a stream containing only the elements of each group stream that satisfy a predicate
999 /// `f` (which receives the key-value tuple), preserving the order of the elements within the group.
1000 ///
1001 /// The closure `f` receives a reference `&(K, V)` rather than an owned value `(K, V)` because filtering does
1002 /// not modify or take ownership of the values. If you need to modify the values while filtering
1003 /// use [`KeyedStream::filter_map_with_key`] instead.
1004 ///
1005 /// # Example
1006 /// ```rust
1007 /// # #[cfg(feature = "deploy")] {
1008 /// # use hydro_lang::prelude::*;
1009 /// # use futures::StreamExt;
1010 /// # tokio_test::block_on(hydro_lang::test_util::stream_transform_test(|process| {
1011 /// process
1012 /// .source_iter(q!(vec![(1, 2), (1, 3), (2, 4)]))
1013 /// .into_keyed()
1014 /// .filter_with_key(q!(|&(k, v)| v - k == 2))
1015 /// # .entries()
1016 /// # }, |mut stream| async move {
1017 /// // { 1: [3], 2: [4] }
1018 /// # let mut results = Vec::new();
1019 /// # for _ in 0..2 {
1020 /// # results.push(stream.next().await.unwrap());
1021 /// # }
1022 /// # results.sort();
1023 /// # assert_eq!(results, vec![(1, 3), (2, 4)]);
1024 /// # }));
1025 /// # }
1026 /// ```
1027 pub fn filter_with_key<F>(
1028 self,
1029 f: impl IntoQuotedMut<'a, F, L> + Copy,
1030 ) -> KeyedStream<K, V, L, B, O, R>
1031 where
1032 F: Fn(&(K, V)) -> bool + 'a,
1033 {
1034 let filter_f = f
1035 .splice_fn1_borrow_ctx::<(K, V), bool>(&self.location)
1036 .into();
1037
1038 KeyedStream::new(
1039 self.location.clone(),
1040 HydroNode::Filter {
1041 f: filter_f,
1042 input: Box::new(self.ir_node.replace(HydroNode::Placeholder)),
1043 metadata: self.location.new_node_metadata(Self::collection_kind()),
1044 },
1045 )
1046 }
1047
1048 /// An operator that both filters and maps each value, with keys staying the same.
1049 /// It yields only the items for which the supplied closure `f` returns `Some(value)`.
1050 /// If you need access to the key, see [`KeyedStream::filter_map_with_key`].
1051 ///
1052 /// # Example
1053 /// ```rust
1054 /// # #[cfg(feature = "deploy")] {
1055 /// # use hydro_lang::prelude::*;
1056 /// # use futures::StreamExt;
1057 /// # tokio_test::block_on(hydro_lang::test_util::stream_transform_test(|process| {
1058 /// process
1059 /// .source_iter(q!(vec![(1, "2"), (1, "hello"), (2, "4")]))
1060 /// .into_keyed()
1061 /// .filter_map(q!(|s| s.parse::<usize>().ok()))
1062 /// # .entries()
1063 /// # }, |mut stream| async move {
1064 /// // { 1: [2], 2: [4] }
1065 /// # let mut results = Vec::new();
1066 /// # for _ in 0..2 {
1067 /// # results.push(stream.next().await.unwrap());
1068 /// # }
1069 /// # results.sort();
1070 /// # assert_eq!(results, vec![(1, 2), (2, 4)]);
1071 /// # }));
1072 /// # }
1073 /// ```
1074 pub fn filter_map<U, F>(
1075 self,
1076 f: impl IntoQuotedMut<'a, F, L> + Copy,
1077 ) -> KeyedStream<K, U, L, B, O, R>
1078 where
1079 F: Fn(V) -> Option<U> + 'a,
1080 {
1081 let f: ManualExpr<F, _> = ManualExpr::new(move |ctx: &L| f.splice_fn1_ctx(ctx));
1082 let filter_map_f = q!({
1083 let orig = f;
1084 move |(k, v)| orig(v).map(|o| (k, o))
1085 })
1086 .splice_fn1_ctx::<(K, V), Option<(K, U)>>(&self.location)
1087 .into();
1088
1089 KeyedStream::new(
1090 self.location.clone(),
1091 HydroNode::FilterMap {
1092 f: filter_map_f,
1093 input: Box::new(self.ir_node.replace(HydroNode::Placeholder)),
1094 metadata: self
1095 .location
1096 .new_node_metadata(KeyedStream::<K, U, L, B, O, R>::collection_kind()),
1097 },
1098 )
1099 }
1100
1101 /// An operator that both filters and maps each key-value pair. The resulting values are **not**
1102 /// re-grouped even they are tuples; instead they will be grouped under the original key.
1103 /// It yields only the items for which the supplied closure `f` returns `Some(value)`.
1104 ///
1105 /// # Example
1106 /// ```rust
1107 /// # #[cfg(feature = "deploy")] {
1108 /// # use hydro_lang::prelude::*;
1109 /// # use futures::StreamExt;
1110 /// # tokio_test::block_on(hydro_lang::test_util::stream_transform_test(|process| {
1111 /// process
1112 /// .source_iter(q!(vec![(1, "2"), (1, "hello"), (2, "2")]))
1113 /// .into_keyed()
1114 /// .filter_map_with_key(q!(|(k, s)| s.parse::<usize>().ok().filter(|v| v == &k)))
1115 /// # .entries()
1116 /// # }, |mut stream| async move {
1117 /// // { 2: [2] }
1118 /// # let mut results = Vec::new();
1119 /// # for _ in 0..1 {
1120 /// # results.push(stream.next().await.unwrap());
1121 /// # }
1122 /// # results.sort();
1123 /// # assert_eq!(results, vec![(2, 2)]);
1124 /// # }));
1125 /// # }
1126 /// ```
1127 pub fn filter_map_with_key<U, F>(
1128 self,
1129 f: impl IntoQuotedMut<'a, F, L> + Copy,
1130 ) -> KeyedStream<K, U, L, B, O, R>
1131 where
1132 F: Fn((K, V)) -> Option<U> + 'a,
1133 K: Clone,
1134 {
1135 let f: ManualExpr<F, _> = ManualExpr::new(move |ctx: &L| f.splice_fn1_ctx(ctx));
1136 let filter_map_f = q!({
1137 let orig = f;
1138 move |(k, v)| {
1139 let out = orig((Clone::clone(&k), v));
1140 out.map(|o| (k, o))
1141 }
1142 })
1143 .splice_fn1_ctx::<(K, V), Option<(K, U)>>(&self.location)
1144 .into();
1145
1146 KeyedStream::new(
1147 self.location.clone(),
1148 HydroNode::FilterMap {
1149 f: filter_map_f,
1150 input: Box::new(self.ir_node.replace(HydroNode::Placeholder)),
1151 metadata: self
1152 .location
1153 .new_node_metadata(KeyedStream::<K, U, L, B, O, R>::collection_kind()),
1154 },
1155 )
1156 }
1157
1158 /// Generates a keyed stream that maps each value `v` to a tuple `(v, x)`,
1159 /// where `v` is the value of `other`, a bounded [`super::singleton::Singleton`] or
1160 /// [`Optional`]. If `other` is an empty [`Optional`], no values will be produced.
1161 ///
1162 /// # Example
1163 /// ```rust
1164 /// # #[cfg(feature = "deploy")] {
1165 /// # use hydro_lang::prelude::*;
1166 /// # use futures::StreamExt;
1167 /// # tokio_test::block_on(hydro_lang::test_util::stream_transform_test(|process| {
1168 /// let tick = process.tick();
1169 /// let batch = process
1170 /// .source_iter(q!(vec![(1, 123), (1, 456), (2, 123)]))
1171 /// .into_keyed()
1172 /// .batch(&tick, nondet!(/** test */));
1173 /// let count = batch.clone().entries().count(); // `count()` returns a singleton
1174 /// batch.cross_singleton(count).all_ticks().entries()
1175 /// # }, |mut stream| async move {
1176 /// // { 1: [(123, 3), (456, 3)], 2: [(123, 3)] }
1177 /// # let mut results = Vec::new();
1178 /// # for _ in 0..3 {
1179 /// # results.push(stream.next().await.unwrap());
1180 /// # }
1181 /// # results.sort();
1182 /// # assert_eq!(results, vec![(1, (123, 3)), (1, (456, 3)), (2, (123, 3))]);
1183 /// # }));
1184 /// # }
1185 /// ```
1186 pub fn cross_singleton<O2>(
1187 self,
1188 other: impl Into<Optional<O2, L, Bounded>>,
1189 ) -> KeyedStream<K, (V, O2), L, B, O, R>
1190 where
1191 O2: Clone,
1192 {
1193 let other: Optional<O2, L, Bounded> = other.into();
1194 check_matching_location(&self.location, &other.location);
1195
1196 Stream::<((K, V), O2), L, B, O, R>::new(
1197 self.location.clone(),
1198 HydroNode::CrossSingleton {
1199 left: Box::new(self.ir_node.replace(HydroNode::Placeholder)),
1200 right: Box::new(other.ir_node.replace(HydroNode::Placeholder)),
1201 metadata: self
1202 .location
1203 .new_node_metadata(Stream::<((K, V), O2), L, B, O, R>::collection_kind()),
1204 },
1205 )
1206 .map(q!(|((k, v), o2)| (k, (v, o2))))
1207 .into_keyed()
1208 }
1209
1210 /// For each value `v` in each group, transform `v` using `f` and then treat the
1211 /// result as an [`Iterator`] to produce values one by one within the same group.
1212 /// The implementation for [`Iterator`] for the output type `I` must produce items
1213 /// in a **deterministic** order.
1214 ///
1215 /// For example, `I` could be a `Vec`, but not a `HashSet`. If the order of the items in `I` is
1216 /// not deterministic, use [`KeyedStream::flat_map_unordered`] instead.
1217 ///
1218 /// # Example
1219 /// ```rust
1220 /// # #[cfg(feature = "deploy")] {
1221 /// # use hydro_lang::prelude::*;
1222 /// # use futures::StreamExt;
1223 /// # tokio_test::block_on(hydro_lang::test_util::stream_transform_test(|process| {
1224 /// process
1225 /// .source_iter(q!(vec![(1, vec![2, 3]), (1, vec![4]), (2, vec![5, 6])]))
1226 /// .into_keyed()
1227 /// .flat_map_ordered(q!(|x| x))
1228 /// # .entries()
1229 /// # }, |mut stream| async move {
1230 /// // { 1: [2, 3, 4], 2: [5, 6] }
1231 /// # let mut results = Vec::new();
1232 /// # for _ in 0..5 {
1233 /// # results.push(stream.next().await.unwrap());
1234 /// # }
1235 /// # results.sort();
1236 /// # assert_eq!(results, vec![(1, 2), (1, 3), (1, 4), (2, 5), (2, 6)]);
1237 /// # }));
1238 /// # }
1239 /// ```
1240 pub fn flat_map_ordered<U, I, F>(
1241 self,
1242 f: impl IntoQuotedMut<'a, F, L> + Copy,
1243 ) -> KeyedStream<K, U, L, B, O, R>
1244 where
1245 I: IntoIterator<Item = U>,
1246 F: Fn(V) -> I + 'a,
1247 K: Clone,
1248 {
1249 let f: ManualExpr<F, _> = ManualExpr::new(move |ctx: &L| f.splice_fn1_ctx(ctx));
1250 let flat_map_f = q!({
1251 let orig = f;
1252 move |(k, v)| orig(v).into_iter().map(move |u| (Clone::clone(&k), u))
1253 })
1254 .splice_fn1_ctx::<(K, V), _>(&self.location)
1255 .into();
1256
1257 KeyedStream::new(
1258 self.location.clone(),
1259 HydroNode::FlatMap {
1260 f: flat_map_f,
1261 input: Box::new(self.ir_node.replace(HydroNode::Placeholder)),
1262 metadata: self
1263 .location
1264 .new_node_metadata(KeyedStream::<K, U, L, B, O, R>::collection_kind()),
1265 },
1266 )
1267 }
1268
1269 /// Like [`KeyedStream::flat_map_ordered`], but allows the implementation of [`Iterator`]
1270 /// for the output type `I` to produce items in any order.
1271 ///
1272 /// # Example
1273 /// ```rust
1274 /// # #[cfg(feature = "deploy")] {
1275 /// # use hydro_lang::{prelude::*, live_collections::stream::{NoOrder, ExactlyOnce}};
1276 /// # use futures::StreamExt;
1277 /// # tokio_test::block_on(hydro_lang::test_util::stream_transform_test::<_, _, _, NoOrder, ExactlyOnce>(|process| {
1278 /// process
1279 /// .source_iter(q!(vec![
1280 /// (1, std::collections::HashSet::<i32>::from_iter(vec![2, 3])),
1281 /// (2, std::collections::HashSet::from_iter(vec![4, 5]))
1282 /// ]))
1283 /// .into_keyed()
1284 /// .flat_map_unordered(q!(|x| x))
1285 /// # .entries()
1286 /// # }, |mut stream| async move {
1287 /// // { 1: [2, 3], 2: [4, 5] } with values in each group in unknown order
1288 /// # let mut results = Vec::new();
1289 /// # for _ in 0..4 {
1290 /// # results.push(stream.next().await.unwrap());
1291 /// # }
1292 /// # results.sort();
1293 /// # assert_eq!(results, vec![(1, 2), (1, 3), (2, 4), (2, 5)]);
1294 /// # }));
1295 /// # }
1296 /// ```
1297 pub fn flat_map_unordered<U, I, F>(
1298 self,
1299 f: impl IntoQuotedMut<'a, F, L> + Copy,
1300 ) -> KeyedStream<K, U, L, B, NoOrder, R>
1301 where
1302 I: IntoIterator<Item = U>,
1303 F: Fn(V) -> I + 'a,
1304 K: Clone,
1305 {
1306 let f: ManualExpr<F, _> = ManualExpr::new(move |ctx: &L| f.splice_fn1_ctx(ctx));
1307 let flat_map_f = q!({
1308 let orig = f;
1309 move |(k, v)| orig(v).into_iter().map(move |u| (Clone::clone(&k), u))
1310 })
1311 .splice_fn1_ctx::<(K, V), _>(&self.location)
1312 .into();
1313
1314 KeyedStream::new(
1315 self.location.clone(),
1316 HydroNode::FlatMap {
1317 f: flat_map_f,
1318 input: Box::new(self.ir_node.replace(HydroNode::Placeholder)),
1319 metadata: self
1320 .location
1321 .new_node_metadata(KeyedStream::<K, U, L, B, NoOrder, R>::collection_kind()),
1322 },
1323 )
1324 }
1325
1326 /// For each value `v` in each group, treat `v` as an [`Iterator`] and produce its items one by one
1327 /// within the same group. The implementation for [`Iterator`] for the value type `V` must produce
1328 /// items in a **deterministic** order.
1329 ///
1330 /// For example, `V` could be a `Vec`, but not a `HashSet`. If the order of the items in `V` is
1331 /// not deterministic, use [`KeyedStream::flatten_unordered`] instead.
1332 ///
1333 /// # Example
1334 /// ```rust
1335 /// # #[cfg(feature = "deploy")] {
1336 /// # use hydro_lang::prelude::*;
1337 /// # use futures::StreamExt;
1338 /// # tokio_test::block_on(hydro_lang::test_util::stream_transform_test(|process| {
1339 /// process
1340 /// .source_iter(q!(vec![(1, vec![2, 3]), (1, vec![4]), (2, vec![5, 6])]))
1341 /// .into_keyed()
1342 /// .flatten_ordered()
1343 /// # .entries()
1344 /// # }, |mut stream| async move {
1345 /// // { 1: [2, 3, 4], 2: [5, 6] }
1346 /// # let mut results = Vec::new();
1347 /// # for _ in 0..5 {
1348 /// # results.push(stream.next().await.unwrap());
1349 /// # }
1350 /// # results.sort();
1351 /// # assert_eq!(results, vec![(1, 2), (1, 3), (1, 4), (2, 5), (2, 6)]);
1352 /// # }));
1353 /// # }
1354 /// ```
1355 pub fn flatten_ordered<U>(self) -> KeyedStream<K, U, L, B, O, R>
1356 where
1357 V: IntoIterator<Item = U>,
1358 K: Clone,
1359 {
1360 self.flat_map_ordered(q!(|d| d))
1361 }
1362
1363 /// Like [`KeyedStream::flatten_ordered`], but allows the implementation of [`Iterator`]
1364 /// for the value type `V` to produce items in any order.
1365 ///
1366 /// # Example
1367 /// ```rust
1368 /// # #[cfg(feature = "deploy")] {
1369 /// # use hydro_lang::{prelude::*, live_collections::stream::{NoOrder, ExactlyOnce}};
1370 /// # use futures::StreamExt;
1371 /// # tokio_test::block_on(hydro_lang::test_util::stream_transform_test::<_, _, _, NoOrder, ExactlyOnce>(|process| {
1372 /// process
1373 /// .source_iter(q!(vec![
1374 /// (1, std::collections::HashSet::<i32>::from_iter(vec![2, 3])),
1375 /// (2, std::collections::HashSet::from_iter(vec![4, 5]))
1376 /// ]))
1377 /// .into_keyed()
1378 /// .flatten_unordered()
1379 /// # .entries()
1380 /// # }, |mut stream| async move {
1381 /// // { 1: [2, 3], 2: [4, 5] } with values in each group in unknown order
1382 /// # let mut results = Vec::new();
1383 /// # for _ in 0..4 {
1384 /// # results.push(stream.next().await.unwrap());
1385 /// # }
1386 /// # results.sort();
1387 /// # assert_eq!(results, vec![(1, 2), (1, 3), (2, 4), (2, 5)]);
1388 /// # }));
1389 /// # }
1390 /// ```
1391 pub fn flatten_unordered<U>(self) -> KeyedStream<K, U, L, B, NoOrder, R>
1392 where
1393 V: IntoIterator<Item = U>,
1394 K: Clone,
1395 {
1396 self.flat_map_unordered(q!(|d| d))
1397 }
1398
1399 /// An operator which allows you to "inspect" each element of a stream without
1400 /// modifying it. The closure `f` is called on a reference to each value. This is
1401 /// mainly useful for debugging, and should not be used to generate side-effects.
1402 ///
1403 /// # Example
1404 /// ```rust
1405 /// # #[cfg(feature = "deploy")] {
1406 /// # use hydro_lang::prelude::*;
1407 /// # use futures::StreamExt;
1408 /// # tokio_test::block_on(hydro_lang::test_util::stream_transform_test(|process| {
1409 /// process
1410 /// .source_iter(q!(vec![(1, 2), (1, 3), (2, 4)]))
1411 /// .into_keyed()
1412 /// .inspect(q!(|v| println!("{}", v)))
1413 /// # .entries()
1414 /// # }, |mut stream| async move {
1415 /// # let mut results = Vec::new();
1416 /// # for _ in 0..3 {
1417 /// # results.push(stream.next().await.unwrap());
1418 /// # }
1419 /// # results.sort();
1420 /// # assert_eq!(results, vec![(1, 2), (1, 3), (2, 4)]);
1421 /// # }));
1422 /// # }
1423 /// ```
1424 pub fn inspect<F>(self, f: impl IntoQuotedMut<'a, F, L> + Copy) -> Self
1425 where
1426 F: Fn(&V) + 'a,
1427 {
1428 let f: ManualExpr<F, _> = ManualExpr::new(move |ctx: &L| f.splice_fn1_borrow_ctx(ctx));
1429 let inspect_f = q!({
1430 let orig = f;
1431 move |t: &(_, _)| orig(&t.1)
1432 })
1433 .splice_fn1_borrow_ctx::<(K, V), ()>(&self.location)
1434 .into();
1435
1436 KeyedStream::new(
1437 self.location.clone(),
1438 HydroNode::Inspect {
1439 f: inspect_f,
1440 input: Box::new(self.ir_node.replace(HydroNode::Placeholder)),
1441 metadata: self.location.new_node_metadata(Self::collection_kind()),
1442 },
1443 )
1444 }
1445
1446 /// An operator which allows you to "inspect" each element of a stream without
1447 /// modifying it. The closure `f` is called on a reference to each key-value pair. This is
1448 /// mainly useful for debugging, and should not be used to generate side-effects.
1449 ///
1450 /// # Example
1451 /// ```rust
1452 /// # #[cfg(feature = "deploy")] {
1453 /// # use hydro_lang::prelude::*;
1454 /// # use futures::StreamExt;
1455 /// # tokio_test::block_on(hydro_lang::test_util::stream_transform_test(|process| {
1456 /// process
1457 /// .source_iter(q!(vec![(1, 2), (1, 3), (2, 4)]))
1458 /// .into_keyed()
1459 /// .inspect_with_key(q!(|(k, v)| println!("{}: {}", k, v)))
1460 /// # .entries()
1461 /// # }, |mut stream| async move {
1462 /// # let mut results = Vec::new();
1463 /// # for _ in 0..3 {
1464 /// # results.push(stream.next().await.unwrap());
1465 /// # }
1466 /// # results.sort();
1467 /// # assert_eq!(results, vec![(1, 2), (1, 3), (2, 4)]);
1468 /// # }));
1469 /// # }
1470 /// ```
1471 pub fn inspect_with_key<F>(self, f: impl IntoQuotedMut<'a, F, L>) -> Self
1472 where
1473 F: Fn(&(K, V)) + 'a,
1474 {
1475 let inspect_f = f.splice_fn1_borrow_ctx::<(K, V), ()>(&self.location).into();
1476
1477 KeyedStream::new(
1478 self.location.clone(),
1479 HydroNode::Inspect {
1480 f: inspect_f,
1481 input: Box::new(self.ir_node.replace(HydroNode::Placeholder)),
1482 metadata: self.location.new_node_metadata(Self::collection_kind()),
1483 },
1484 )
1485 }
1486
1487 /// An operator which allows you to "name" a `HydroNode`.
1488 /// This is only used for testing, to correlate certain `HydroNode`s with IDs.
1489 pub fn ir_node_named(self, name: &str) -> KeyedStream<K, V, L, B, O, R> {
1490 {
1491 let mut node = self.ir_node.borrow_mut();
1492 let metadata = node.metadata_mut();
1493 metadata.tag = Some(name.to_owned());
1494 }
1495 self
1496 }
1497
1498 /// A special case of [`Stream::scan`] for keyed streams. For each key group the values are transformed via the `f` combinator.
1499 ///
1500 /// Unlike [`KeyedStream::fold`] which only returns the final accumulated value, `scan` produces a new stream
1501 /// containing all intermediate accumulated values paired with the key. The scan operation can also terminate
1502 /// early by returning `None`.
1503 ///
1504 /// The function takes a mutable reference to the accumulator and the current element, and returns
1505 /// an `Option<U>`. If the function returns `Some(value)`, `value` is emitted to the output stream.
1506 /// If the function returns `None`, the stream is terminated and no more elements are processed.
1507 ///
1508 /// # Example
1509 /// ```rust
1510 /// # #[cfg(feature = "deploy")] {
1511 /// # use hydro_lang::prelude::*;
1512 /// # use futures::StreamExt;
1513 /// # tokio_test::block_on(hydro_lang::test_util::stream_transform_test(|process| {
1514 /// process
1515 /// .source_iter(q!(vec![(0, 1), (0, 3), (1, 3), (1, 4)]))
1516 /// .into_keyed()
1517 /// .scan(
1518 /// q!(|| 0),
1519 /// q!(|acc, x| {
1520 /// *acc += x;
1521 /// if *acc % 2 == 0 { None } else { Some(*acc) }
1522 /// }),
1523 /// )
1524 /// # .entries()
1525 /// # }, |mut stream| async move {
1526 /// // Output: { 0: [1], 1: [3, 7] }
1527 /// # let mut results = Vec::new();
1528 /// # for _ in 0..3 {
1529 /// # results.push(stream.next().await.unwrap());
1530 /// # }
1531 /// # results.sort();
1532 /// # assert_eq!(results, vec![(0, 1), (1, 3), (1, 7)]);
1533 /// # }));
1534 /// # }
1535 /// ```
1536 pub fn scan<A, U, I, F>(
1537 self,
1538 init: impl IntoQuotedMut<'a, I, L> + Copy,
1539 f: impl IntoQuotedMut<'a, F, L> + Copy,
1540 ) -> KeyedStream<K, U, L, B, TotalOrder, ExactlyOnce>
1541 where
1542 O: IsOrdered,
1543 R: IsExactlyOnce,
1544 K: Clone + Eq + Hash,
1545 I: Fn() -> A + 'a,
1546 F: Fn(&mut A, V) -> Option<U> + 'a,
1547 {
1548 let f: ManualExpr<F, _> = ManualExpr::new(move |ctx: &L| f.splice_fn2_borrow_mut_ctx(ctx));
1549 self.make_totally_ordered().make_exactly_once().generator(
1550 init,
1551 q!({
1552 let orig = f;
1553 move |state, v| {
1554 if let Some(out) = orig(state, v) {
1555 Generate::Yield(out)
1556 } else {
1557 Generate::Break
1558 }
1559 }
1560 }),
1561 )
1562 }
1563
1564 /// Iteratively processes the elements in each group using a state machine that can yield
1565 /// elements as it processes its inputs. This is designed to mirror the unstable generator
1566 /// syntax in Rust, without requiring special syntax.
1567 ///
1568 /// Like [`KeyedStream::scan`], this function takes in an initializer that emits the initial
1569 /// state for each group. The second argument defines the processing logic, taking in a
1570 /// mutable reference to the group's state and the value to be processed. It emits a
1571 /// [`Generate`] value, whose variants define what is emitted and whether further inputs
1572 /// should be processed.
1573 ///
1574 /// # Example
1575 /// ```rust
1576 /// # #[cfg(feature = "deploy")] {
1577 /// # use hydro_lang::prelude::*;
1578 /// # use futures::StreamExt;
1579 /// # tokio_test::block_on(hydro_lang::test_util::stream_transform_test(|process| {
1580 /// process
1581 /// .source_iter(q!(vec![(0, 1), (0, 3), (0, 100), (0, 10), (1, 3), (1, 4), (1, 3)]))
1582 /// .into_keyed()
1583 /// .generator(
1584 /// q!(|| 0),
1585 /// q!(|acc, x| {
1586 /// *acc += x;
1587 /// if *acc > 100 {
1588 /// hydro_lang::live_collections::keyed_stream::Generate::Return(
1589 /// "done!".to_owned()
1590 /// )
1591 /// } else if *acc % 2 == 0 {
1592 /// hydro_lang::live_collections::keyed_stream::Generate::Yield(
1593 /// "even".to_owned()
1594 /// )
1595 /// } else {
1596 /// hydro_lang::live_collections::keyed_stream::Generate::Continue
1597 /// }
1598 /// }),
1599 /// )
1600 /// # .entries()
1601 /// # }, |mut stream| async move {
1602 /// // Output: { 0: ["even", "done!"], 1: ["even"] }
1603 /// # let mut results = Vec::new();
1604 /// # for _ in 0..3 {
1605 /// # results.push(stream.next().await.unwrap());
1606 /// # }
1607 /// # results.sort();
1608 /// # assert_eq!(results, vec![(0, "done!".to_owned()), (0, "even".to_owned()), (1, "even".to_owned())]);
1609 /// # }));
1610 /// # }
1611 /// ```
1612 pub fn generator<A, U, I, F>(
1613 self,
1614 init: impl IntoQuotedMut<'a, I, L> + Copy,
1615 f: impl IntoQuotedMut<'a, F, L> + Copy,
1616 ) -> KeyedStream<K, U, L, B, TotalOrder, ExactlyOnce>
1617 where
1618 O: IsOrdered,
1619 R: IsExactlyOnce,
1620 K: Clone + Eq + Hash,
1621 I: Fn() -> A + 'a,
1622 F: Fn(&mut A, V) -> Generate<U> + 'a,
1623 {
1624 let init: ManualExpr<I, _> = ManualExpr::new(move |ctx: &L| init.splice_fn0_ctx(ctx));
1625 let f: ManualExpr<F, _> = ManualExpr::new(move |ctx: &L| f.splice_fn2_borrow_mut_ctx(ctx));
1626
1627 let this = self.make_totally_ordered().make_exactly_once();
1628
1629 let scan_init = q!(|| HashMap::new())
1630 .splice_fn0_ctx::<HashMap<K, Option<A>>>(&this.location)
1631 .into();
1632 let scan_f = q!(move |acc: &mut HashMap<_, _>, (k, v)| {
1633 let existing_state = acc.entry(Clone::clone(&k)).or_insert_with(|| Some(init()));
1634 if let Some(existing_state_value) = existing_state {
1635 match f(existing_state_value, v) {
1636 Generate::Yield(out) => Some(Some((k, out))),
1637 Generate::Return(out) => {
1638 let _ = existing_state.take(); // TODO(shadaj): garbage collect with termination markers
1639 Some(Some((k, out)))
1640 }
1641 Generate::Break => {
1642 let _ = existing_state.take(); // TODO(shadaj): garbage collect with termination markers
1643 Some(None)
1644 }
1645 Generate::Continue => Some(None),
1646 }
1647 } else {
1648 Some(None)
1649 }
1650 })
1651 .splice_fn2_borrow_mut_ctx::<HashMap<K, Option<A>>, (K, V), _>(&this.location)
1652 .into();
1653
1654 let scan_node = HydroNode::Scan {
1655 init: scan_init,
1656 acc: scan_f,
1657 input: Box::new(this.ir_node.replace(HydroNode::Placeholder)),
1658 metadata: this.location.new_node_metadata(Stream::<
1659 Option<(K, U)>,
1660 L,
1661 B,
1662 TotalOrder,
1663 ExactlyOnce,
1664 >::collection_kind()),
1665 };
1666
1667 let flatten_f = q!(|d| d)
1668 .splice_fn1_ctx::<Option<(K, U)>, _>(&this.location)
1669 .into();
1670 let flatten_node = HydroNode::FlatMap {
1671 f: flatten_f,
1672 input: Box::new(scan_node),
1673 metadata: this.location.new_node_metadata(KeyedStream::<
1674 K,
1675 U,
1676 L,
1677 B,
1678 TotalOrder,
1679 ExactlyOnce,
1680 >::collection_kind()),
1681 };
1682
1683 KeyedStream::new(this.location.clone(), flatten_node)
1684 }
1685
1686 /// A variant of [`Stream::fold`], intended for keyed streams. The aggregation is executed
1687 /// in-order across the values in each group. But the aggregation function returns a boolean,
1688 /// which when true indicates that the aggregated result is complete and can be released to
1689 /// downstream computation. Unlike [`KeyedStream::fold`], this means that even if the input
1690 /// stream is [`super::boundedness::Unbounded`], the outputs of the fold can be processed like
1691 /// normal stream elements.
1692 ///
1693 /// # Example
1694 /// ```rust
1695 /// # #[cfg(feature = "deploy")] {
1696 /// # use hydro_lang::prelude::*;
1697 /// # use futures::StreamExt;
1698 /// # tokio_test::block_on(hydro_lang::test_util::stream_transform_test(|process| {
1699 /// process
1700 /// .source_iter(q!(vec![(0, 2), (0, 3), (1, 3), (1, 6)]))
1701 /// .into_keyed()
1702 /// .fold_early_stop(
1703 /// q!(|| 0),
1704 /// q!(|acc, x| {
1705 /// *acc += x;
1706 /// x % 2 == 0
1707 /// }),
1708 /// )
1709 /// # .entries()
1710 /// # }, |mut stream| async move {
1711 /// // Output: { 0: 2, 1: 9 }
1712 /// # let mut results = Vec::new();
1713 /// # for _ in 0..2 {
1714 /// # results.push(stream.next().await.unwrap());
1715 /// # }
1716 /// # results.sort();
1717 /// # assert_eq!(results, vec![(0, 2), (1, 9)]);
1718 /// # }));
1719 /// # }
1720 /// ```
1721 pub fn fold_early_stop<A, I, F>(
1722 self,
1723 init: impl IntoQuotedMut<'a, I, L> + Copy,
1724 f: impl IntoQuotedMut<'a, F, L> + Copy,
1725 ) -> KeyedSingleton<K, A, L, B::WithBoundedValue>
1726 where
1727 O: IsOrdered,
1728 R: IsExactlyOnce,
1729 K: Clone + Eq + Hash,
1730 I: Fn() -> A + 'a,
1731 F: Fn(&mut A, V) -> bool + 'a,
1732 {
1733 let init: ManualExpr<I, _> = ManualExpr::new(move |ctx: &L| init.splice_fn0_ctx(ctx));
1734 let f: ManualExpr<F, _> = ManualExpr::new(move |ctx: &L| f.splice_fn2_borrow_mut_ctx(ctx));
1735 let out_without_bound_cast = self.generator(
1736 q!(move || Some(init())),
1737 q!(move |key_state, v| {
1738 if let Some(key_state_value) = key_state.as_mut() {
1739 if f(key_state_value, v) {
1740 Generate::Return(key_state.take().unwrap())
1741 } else {
1742 Generate::Continue
1743 }
1744 } else {
1745 unreachable!()
1746 }
1747 }),
1748 );
1749
1750 // SAFETY: The generator will only ever return at most one value per key, since once it
1751 // returns a value for a key it will never process any more values for that key.
1752 out_without_bound_cast.cast_at_most_one_entry_per_key()
1753 }
1754
1755 /// Gets the first element inside each group of values as a [`KeyedSingleton`] that preserves
1756 /// the original group keys. Requires the input stream to have [`TotalOrder`] guarantees,
1757 /// otherwise the first element would be non-deterministic.
1758 ///
1759 /// # Example
1760 /// ```rust
1761 /// # #[cfg(feature = "deploy")] {
1762 /// # use hydro_lang::prelude::*;
1763 /// # use futures::StreamExt;
1764 /// # tokio_test::block_on(hydro_lang::test_util::stream_transform_test(|process| {
1765 /// process
1766 /// .source_iter(q!(vec![(0, 2), (0, 3), (1, 3), (1, 6)]))
1767 /// .into_keyed()
1768 /// .first()
1769 /// # .entries()
1770 /// # }, |mut stream| async move {
1771 /// // Output: { 0: 2, 1: 3 }
1772 /// # let mut results = Vec::new();
1773 /// # for _ in 0..2 {
1774 /// # results.push(stream.next().await.unwrap());
1775 /// # }
1776 /// # results.sort();
1777 /// # assert_eq!(results, vec![(0, 2), (1, 3)]);
1778 /// # }));
1779 /// # }
1780 /// ```
1781 pub fn first(self) -> KeyedSingleton<K, V, L, B::WithBoundedValue>
1782 where
1783 O: IsOrdered,
1784 R: IsExactlyOnce,
1785 K: Clone + Eq + Hash,
1786 {
1787 self.fold_early_stop(
1788 q!(|| None),
1789 q!(|acc, v| {
1790 *acc = Some(v);
1791 true
1792 }),
1793 )
1794 .map(q!(|v| v.unwrap()))
1795 }
1796
1797 /// Returns a keyed stream containing at most the first `n` values per key,
1798 /// preserving the original order within each group. Similar to SQL `LIMIT`
1799 /// applied per group.
1800 ///
1801 /// This requires the stream to have a [`TotalOrder`] guarantee and [`ExactlyOnce`]
1802 /// retries, since the result depends on the order and cardinality of elements
1803 /// within each group.
1804 ///
1805 /// # Example
1806 /// ```rust
1807 /// # #[cfg(feature = "deploy")] {
1808 /// # use hydro_lang::prelude::*;
1809 /// # use futures::StreamExt;
1810 /// # tokio_test::block_on(hydro_lang::test_util::stream_transform_test(|process| {
1811 /// process
1812 /// .source_iter(q!(vec![(1, 10), (1, 20), (1, 30), (2, 40), (2, 50)]))
1813 /// .into_keyed()
1814 /// .limit(q!(2))
1815 /// # .entries()
1816 /// # }, |mut stream| async move {
1817 /// // { 1: [10, 20], 2: [40, 50] }
1818 /// # let mut results = Vec::new();
1819 /// # for _ in 0..4 {
1820 /// # results.push(stream.next().await.unwrap());
1821 /// # }
1822 /// # results.sort();
1823 /// # assert_eq!(results, vec![(1, 10), (1, 20), (2, 40), (2, 50)]);
1824 /// # }));
1825 /// # }
1826 /// ```
1827 pub fn limit(
1828 self,
1829 n: impl QuotedWithContext<'a, usize, L> + Copy + 'a,
1830 ) -> KeyedStream<K, V, L, B, TotalOrder, ExactlyOnce>
1831 where
1832 O: IsOrdered,
1833 R: IsExactlyOnce,
1834 K: Clone + Eq + Hash,
1835 {
1836 self.generator(
1837 q!(|| 0usize),
1838 q!(move |count, item| {
1839 if *count == n {
1840 Generate::Break
1841 } else {
1842 *count += 1;
1843 if *count == n {
1844 Generate::Return(item)
1845 } else {
1846 Generate::Yield(item)
1847 }
1848 }
1849 }),
1850 )
1851 }
1852
1853 /// Assigns a zero-based index to each value within each key group, emitting
1854 /// `(K, (index, V))` tuples with per-key sequential indices.
1855 ///
1856 /// The output keyed stream has [`TotalOrder`] and [`ExactlyOnce`] guarantees.
1857 /// This is a streaming operator that processes elements as they arrive.
1858 ///
1859 /// # Example
1860 /// ```rust
1861 /// # #[cfg(feature = "deploy")] {
1862 /// # use hydro_lang::prelude::*;
1863 /// # use futures::StreamExt;
1864 /// # tokio_test::block_on(hydro_lang::test_util::stream_transform_test(|process| {
1865 /// process
1866 /// .source_iter(q!(vec![(1, 10), (2, 20), (1, 30)]))
1867 /// .into_keyed()
1868 /// .enumerate()
1869 /// # .entries()
1870 /// # }, |mut stream| async move {
1871 /// // per-key indices: { 1: [(0, 10), (1, 30)], 2: [(0, 20)] }
1872 /// # let mut results = Vec::new();
1873 /// # for _ in 0..3 {
1874 /// # results.push(stream.next().await.unwrap());
1875 /// # }
1876 /// # let key1: Vec<_> = results.iter().filter(|(k, _)| *k == 1).map(|(_, v)| *v).collect();
1877 /// # let key2: Vec<_> = results.iter().filter(|(k, _)| *k == 2).map(|(_, v)| *v).collect();
1878 /// # assert_eq!(key1, vec![(0, 10), (1, 30)]);
1879 /// # assert_eq!(key2, vec![(0, 20)]);
1880 /// # }));
1881 /// # }
1882 /// ```
1883 pub fn enumerate(self) -> KeyedStream<K, (usize, V), L, B, TotalOrder, ExactlyOnce>
1884 where
1885 O: IsOrdered,
1886 R: IsExactlyOnce,
1887 K: Eq + Hash + Clone,
1888 {
1889 self.scan(
1890 q!(|| 0),
1891 q!(|acc, next| {
1892 let curr = *acc;
1893 *acc += 1;
1894 Some((curr, next))
1895 }),
1896 )
1897 }
1898
1899 /// Counts the number of elements in each group, producing a [`KeyedSingleton`] with the counts.
1900 ///
1901 /// # Example
1902 /// ```rust
1903 /// # #[cfg(feature = "deploy")] {
1904 /// # use hydro_lang::prelude::*;
1905 /// # use futures::StreamExt;
1906 /// # tokio_test::block_on(hydro_lang::test_util::stream_transform_test(|process| {
1907 /// let tick = process.tick();
1908 /// let numbers = process
1909 /// .source_iter(q!(vec![(1, 2), (2, 3), (1, 3), (2, 4), (1, 5)]))
1910 /// .into_keyed();
1911 /// let batch = numbers.batch(&tick, nondet!(/** test */));
1912 /// batch
1913 /// .value_counts()
1914 /// .entries()
1915 /// .all_ticks()
1916 /// # }, |mut stream| async move {
1917 /// // (1, 3), (2, 2)
1918 /// # let mut results = Vec::new();
1919 /// # for _ in 0..2 {
1920 /// # results.push(stream.next().await.unwrap());
1921 /// # }
1922 /// # results.sort();
1923 /// # assert_eq!(results, vec![(1, 3), (2, 2)]);
1924 /// # }));
1925 /// # }
1926 /// ```
1927 pub fn value_counts(
1928 self,
1929 ) -> KeyedSingleton<K, usize, L, <B as KeyedSingletonBound>::KeyedStreamToMonotone>
1930 where
1931 R: IsExactlyOnce,
1932 K: Eq + Hash,
1933 {
1934 self.make_exactly_once()
1935 .assume_ordering_trusted(
1936 nondet!(/** ordering within each group affects neither result nor intermediates */),
1937 )
1938 .fold(
1939 q!(|| 0),
1940 q!(
1941 |acc, _| *acc += 1,
1942 monotone = manual_proof!(/** += 1 is monotonic */)
1943 ),
1944 )
1945 }
1946
1947 /// Like [`Stream::fold`] but in the spirit of SQL `GROUP BY`, aggregates the values in each
1948 /// group via the `comb` closure.
1949 ///
1950 /// Depending on the input stream guarantees, the closure may need to be commutative
1951 /// (for unordered streams) or idempotent (for streams with non-deterministic duplicates).
1952 ///
1953 /// If the input and output value types are the same and do not require initialization then use
1954 /// [`KeyedStream::reduce`].
1955 ///
1956 /// # Example
1957 /// ```rust
1958 /// # #[cfg(feature = "deploy")] {
1959 /// # use hydro_lang::prelude::*;
1960 /// # use futures::StreamExt;
1961 /// # tokio_test::block_on(hydro_lang::test_util::stream_transform_test(|process| {
1962 /// let tick = process.tick();
1963 /// let numbers = process
1964 /// .source_iter(q!(vec![(1, false), (2, true), (1, false), (2, false)]))
1965 /// .into_keyed();
1966 /// let batch = numbers.batch(&tick, nondet!(/** test */));
1967 /// batch
1968 /// .fold(q!(|| false), q!(|acc, x| *acc |= x))
1969 /// .entries()
1970 /// .all_ticks()
1971 /// # }, |mut stream| async move {
1972 /// // (1, false), (2, true)
1973 /// # let mut results = Vec::new();
1974 /// # for _ in 0..2 {
1975 /// # results.push(stream.next().await.unwrap());
1976 /// # }
1977 /// # results.sort();
1978 /// # assert_eq!(results, vec![(1, false), (2, true)]);
1979 /// # }));
1980 /// # }
1981 /// ```
1982 pub fn fold<A, I: Fn() -> A + 'a, F: 'a + Fn(&mut A, V), C, Idemp, M, B2: KeyedSingletonBound>(
1983 self,
1984 init: impl IntoQuotedMut<'a, I, L>,
1985 comb: impl IntoQuotedMut<'a, F, L, AggFuncAlgebra<C, Idemp, M>>,
1986 ) -> KeyedSingleton<K, A, L, B2>
1987 where
1988 K: Eq + Hash,
1989 C: ValidCommutativityFor<O>,
1990 Idemp: ValidIdempotenceFor<R>,
1991 B: ApplyMonotoneKeyedStream<M, B2>,
1992 {
1993 let init = init.splice_fn0_ctx(&self.location).into();
1994 let (comb, proof) = comb.splice_fn2_borrow_mut_ctx_props(&self.location);
1995 proof.register_proof(&comb);
1996
1997 let retried = self
1998 .assume_retries::<ExactlyOnce>(nondet!(/** the combinator function is idempotent */));
1999
2000 KeyedSingleton::new(
2001 retried.location.clone(),
2002 HydroNode::FoldKeyed {
2003 init,
2004 acc: comb.into(),
2005 input: Box::new(retried.ir_node.replace(HydroNode::Placeholder)),
2006 metadata: retried
2007 .location
2008 .new_node_metadata(KeyedSingleton::<K, A, L, B2>::collection_kind()),
2009 },
2010 )
2011 .assert_has_consistency_of(manual_proof!(/** algebraic properties */))
2012 }
2013
2014 /// Like [`Stream::reduce`] but in the spirit of SQL `GROUP BY`, aggregates the values in each
2015 /// group via the `comb` closure.
2016 ///
2017 /// Depending on the input stream guarantees, the closure may need to be commutative
2018 /// (for unordered streams) or idempotent (for streams with non-deterministic duplicates).
2019 ///
2020 /// If you need the accumulated value to have a different type than the input, use [`KeyedStream::fold`].
2021 ///
2022 /// # Example
2023 /// ```rust
2024 /// # #[cfg(feature = "deploy")] {
2025 /// # use hydro_lang::prelude::*;
2026 /// # use futures::StreamExt;
2027 /// # tokio_test::block_on(hydro_lang::test_util::stream_transform_test(|process| {
2028 /// let tick = process.tick();
2029 /// let numbers = process
2030 /// .source_iter(q!(vec![(1, false), (2, true), (1, false), (2, false)]))
2031 /// .into_keyed();
2032 /// let batch = numbers.batch(&tick, nondet!(/** test */));
2033 /// batch
2034 /// .reduce(q!(|acc, x| *acc |= x))
2035 /// .entries()
2036 /// .all_ticks()
2037 /// # }, |mut stream| async move {
2038 /// // (1, false), (2, true)
2039 /// # let mut results = Vec::new();
2040 /// # for _ in 0..2 {
2041 /// # results.push(stream.next().await.unwrap());
2042 /// # }
2043 /// # results.sort();
2044 /// # assert_eq!(results, vec![(1, false), (2, true)]);
2045 /// # }));
2046 /// # }
2047 /// ```
2048 pub fn reduce<F: Fn(&mut V, V) + 'a, C, Idemp>(
2049 self,
2050 comb: impl IntoQuotedMut<'a, F, L, AggFuncAlgebra<C, Idemp>>,
2051 ) -> KeyedSingleton<K, V, L, B>
2052 where
2053 K: Eq + Hash,
2054 C: ValidCommutativityFor<O>,
2055 Idemp: ValidIdempotenceFor<R>,
2056 {
2057 let (f, proof) = comb.splice_fn2_borrow_mut_ctx_props(&self.location);
2058 proof.register_proof(&f);
2059
2060 let ordered = self
2061 .assume_retries::<ExactlyOnce>(nondet!(/** the combinator function is idempotent */))
2062 .assume_ordering::<TotalOrder>(nondet!(/** the combinator function is commutative */));
2063
2064 KeyedSingleton::new(
2065 ordered.location.clone(),
2066 HydroNode::ReduceKeyed {
2067 f: f.into(),
2068 input: Box::new(ordered.ir_node.replace(HydroNode::Placeholder)),
2069 metadata: ordered
2070 .location
2071 .new_node_metadata(KeyedSingleton::<K, V, L, B>::collection_kind()),
2072 },
2073 )
2074 .assert_has_consistency_of(manual_proof!(/** algebraic properties */))
2075 }
2076
2077 /// A special case of [`KeyedStream::reduce`] where tuples with keys less than the watermark
2078 /// are automatically deleted.
2079 ///
2080 /// Depending on the input stream guarantees, the closure may need to be commutative
2081 /// (for unordered streams) or idempotent (for streams with non-deterministic duplicates).
2082 ///
2083 /// # Example
2084 /// ```rust
2085 /// # #[cfg(feature = "deploy")] {
2086 /// # use hydro_lang::prelude::*;
2087 /// # use futures::StreamExt;
2088 /// # tokio_test::block_on(hydro_lang::test_util::stream_transform_test(|process| {
2089 /// let tick = process.tick();
2090 /// let watermark = tick.singleton(q!(2));
2091 /// let numbers = process
2092 /// .source_iter(q!([(0, false), (1, false), (2, false), (2, true)]))
2093 /// .into_keyed();
2094 /// let batch = numbers.batch(&tick, nondet!(/** test */));
2095 /// batch
2096 /// .reduce_watermark(watermark, q!(|acc, x| *acc |= x))
2097 /// .entries()
2098 /// .all_ticks()
2099 /// # }, |mut stream| async move {
2100 /// // (2, true)
2101 /// # assert_eq!(stream.next().await.unwrap(), (2, true));
2102 /// # }));
2103 /// # }
2104 /// ```
2105 pub fn reduce_watermark<O2, F, C, Idemp>(
2106 self,
2107 other: impl Into<Optional<O2, Tick<L::Root>, Bounded>>,
2108 comb: impl IntoQuotedMut<'a, F, L, AggFuncAlgebra<C, Idemp>>,
2109 ) -> KeyedSingleton<K, V, L, B>
2110 where
2111 K: Eq + Hash,
2112 O2: Clone,
2113 F: Fn(&mut V, V) + 'a,
2114 C: ValidCommutativityFor<O>,
2115 Idemp: ValidIdempotenceFor<R>,
2116 {
2117 let other: Optional<O2, Tick<L::Root>, Bounded> = other.into();
2118 check_matching_location(&self.location.root(), other.location.outer());
2119 let (f, proof) = comb.splice_fn2_borrow_mut_ctx_props(&self.location);
2120 proof.register_proof(&f);
2121
2122 let ordered = self
2123 .assume_retries::<ExactlyOnce>(nondet!(/** the combinator function is idempotent */))
2124 .assume_ordering::<TotalOrder>(nondet!(/** the combinator function is commutative */));
2125
2126 KeyedSingleton::new(
2127 ordered.location.clone(),
2128 HydroNode::ReduceKeyedWatermark {
2129 f: f.into(),
2130 input: Box::new(ordered.ir_node.replace(HydroNode::Placeholder)),
2131 watermark: Box::new(other.ir_node.replace(HydroNode::Placeholder)),
2132 metadata: ordered
2133 .location
2134 .new_node_metadata(KeyedSingleton::<K, V, L, B>::collection_kind()),
2135 },
2136 )
2137 .assert_has_consistency_of(manual_proof!(/** algebraic properties */))
2138 }
2139
2140 /// Given a bounded stream of keys `K`, returns a new keyed stream containing only the groups
2141 /// whose keys are not in the bounded stream.
2142 ///
2143 /// # Example
2144 /// ```rust
2145 /// # #[cfg(feature = "deploy")] {
2146 /// # use hydro_lang::prelude::*;
2147 /// # use futures::StreamExt;
2148 /// # tokio_test::block_on(hydro_lang::test_util::stream_transform_test(|process| {
2149 /// let tick = process.tick();
2150 /// let keyed_stream = process
2151 /// .source_iter(q!(vec![ (1, 'a'), (2, 'b'), (3, 'c'), (4, 'd') ]))
2152 /// .batch(&tick, nondet!(/** test */))
2153 /// .into_keyed();
2154 /// let keys_to_remove = process
2155 /// .source_iter(q!(vec![1, 2]))
2156 /// .batch(&tick, nondet!(/** test */));
2157 /// keyed_stream.filter_key_not_in(keys_to_remove).all_ticks()
2158 /// # .entries()
2159 /// # }, |mut stream| async move {
2160 /// // { 3: ['c'], 4: ['d'] }
2161 /// # let mut results = Vec::new();
2162 /// # for _ in 0..2 {
2163 /// # results.push(stream.next().await.unwrap());
2164 /// # }
2165 /// # results.sort();
2166 /// # assert_eq!(results, vec![(3, 'c'), (4, 'd')]);
2167 /// # }));
2168 /// # }
2169 /// ```
2170 pub fn filter_key_not_in<O2: Ordering, R2: Retries>(
2171 self,
2172 other: Stream<K, L, Bounded, O2, R2>,
2173 ) -> Self
2174 where
2175 K: Eq + Hash,
2176 {
2177 check_matching_location(&self.location, &other.location);
2178
2179 KeyedStream::new(
2180 self.location.clone(),
2181 HydroNode::AntiJoin {
2182 pos: Box::new(self.ir_node.replace(HydroNode::Placeholder)),
2183 neg: Box::new(other.ir_node.replace(HydroNode::Placeholder)),
2184 metadata: self.location.new_node_metadata(Self::collection_kind()),
2185 },
2186 )
2187 }
2188
2189 /// Emit a keyed stream containing keys shared between two keyed streams,
2190 /// where each value in the output keyed stream is a tuple of
2191 /// (self's value, other's value).
2192 /// If there are multiple values for the same key, this performs a cross product
2193 /// for each matching key.
2194 ///
2195 /// # Example
2196 /// ```rust
2197 /// # #[cfg(feature = "deploy")] {
2198 /// # use hydro_lang::prelude::*;
2199 /// # use futures::StreamExt;
2200 /// # tokio_test::block_on(hydro_lang::test_util::stream_transform_test(|process| {
2201 /// let tick = process.tick();
2202 /// let keyed_data = process
2203 /// .source_iter(q!(vec![(1, 10), (1, 11), (2, 20)]))
2204 /// .into_keyed()
2205 /// .batch(&tick, nondet!(/** test */));
2206 /// let other_data = process
2207 /// .source_iter(q!(vec![(1, 100), (2, 200), (2, 201)]))
2208 /// .into_keyed()
2209 /// .batch(&tick, nondet!(/** test */));
2210 /// keyed_data.join_keyed_stream(other_data).entries().all_ticks()
2211 /// # }, |mut stream| async move {
2212 /// // { 1: [(10, 100), (11, 100)], 2: [(20, 200), (20, 201)] } in any order
2213 /// # let mut results = vec![];
2214 /// # for _ in 0..4 {
2215 /// # results.push(stream.next().await.unwrap());
2216 /// # }
2217 /// # results.sort();
2218 /// # assert_eq!(results, vec![(1, (10, 100)), (1, (11, 100)), (2, (20, 200)), (2, (20, 201))]);
2219 /// # }));
2220 /// # }
2221 /// ```
2222 pub fn join_keyed_stream<V2, B2: Boundedness, O2: Ordering, R2: Retries>(
2223 self,
2224 other: KeyedStream<K, V2, L, B2, O2, R2>,
2225 ) -> KeyedStream<
2226 K,
2227 (V, V2),
2228 L,
2229 B,
2230 B2::PreserveOrderIfBounded<NoOrder>,
2231 <R as MinRetries<R2>>::Min,
2232 >
2233 where
2234 K: Eq + Hash + Clone,
2235 R: MinRetries<R2>,
2236 V: Clone,
2237 V2: Clone,
2238 {
2239 self.entries().join(other.entries()).into_keyed()
2240 }
2241
2242 /// Deduplicates values within each key group, emitting each unique value per key
2243 /// exactly once.
2244 ///
2245 /// # Example
2246 /// ```rust
2247 /// # #[cfg(feature = "deploy")] {
2248 /// # use hydro_lang::prelude::*;
2249 /// # use futures::StreamExt;
2250 /// # tokio_test::block_on(hydro_lang::test_util::stream_transform_test(|process| {
2251 /// process
2252 /// .source_iter(q!(vec![(1, 10), (2, 20), (1, 10), (2, 30), (1, 20)]))
2253 /// .into_keyed()
2254 /// .unique()
2255 /// # .entries()
2256 /// # }, |mut stream| async move {
2257 /// // unique values per key: { 1: [10, 20], 2: [20, 30] }
2258 /// # let mut results = Vec::new();
2259 /// # for _ in 0..4 {
2260 /// # results.push(stream.next().await.unwrap());
2261 /// # }
2262 /// # let mut key1: Vec<_> = results.iter().filter(|(k, _)| *k == 1).map(|(_, v)| *v).collect();
2263 /// # let mut key2: Vec<_> = results.iter().filter(|(k, _)| *k == 2).map(|(_, v)| *v).collect();
2264 /// # key1.sort();
2265 /// # key2.sort();
2266 /// # assert_eq!(key1, vec![10, 20]);
2267 /// # assert_eq!(key2, vec![20, 30]);
2268 /// # }));
2269 /// # }
2270 /// ```
2271 pub fn unique(self) -> KeyedStream<K, V, L, B, NoOrder, ExactlyOnce>
2272 where
2273 K: Eq + Hash + Clone,
2274 V: Eq + Hash + Clone,
2275 {
2276 self.entries().unique().into_keyed()
2277 }
2278
2279 /// Sorts the values within each key group in ascending order.
2280 ///
2281 /// The output keyed stream has a [`TotalOrder`] guarantee on the values within
2282 /// each group. This operator will block until all elements in the input stream
2283 /// are available, so it requires the input stream to be [`Bounded`].
2284 ///
2285 /// # Example
2286 /// ```rust
2287 /// # #[cfg(feature = "deploy")] {
2288 /// # use hydro_lang::prelude::*;
2289 /// # use futures::StreamExt;
2290 /// # tokio_test::block_on(hydro_lang::test_util::stream_transform_test(|process| {
2291 /// let tick = process.tick();
2292 /// let numbers = process
2293 /// .source_iter(q!(vec![(1, 3), (2, 1), (1, 1), (2, 2)]))
2294 /// .into_keyed();
2295 /// let batch = numbers.batch(&tick, nondet!(/** test */));
2296 /// batch.sort().all_ticks()
2297 /// # .entries()
2298 /// # }, |mut stream| async move {
2299 /// // values sorted within each key: { 1: [1, 3], 2: [1, 2] }
2300 /// # let mut results = Vec::new();
2301 /// # for _ in 0..4 {
2302 /// # results.push(stream.next().await.unwrap());
2303 /// # }
2304 /// # let key1_vals: Vec<_> = results.iter().filter(|(k, _)| *k == 1).map(|(_, v)| *v).collect();
2305 /// # let key2_vals: Vec<_> = results.iter().filter(|(k, _)| *k == 2).map(|(_, v)| *v).collect();
2306 /// # assert_eq!(key1_vals, vec![1, 3]);
2307 /// # assert_eq!(key2_vals, vec![1, 2]);
2308 /// # }));
2309 /// # }
2310 /// ```
2311 pub fn sort(self) -> KeyedStream<K, V, L, Bounded, TotalOrder, R>
2312 where
2313 B: IsBounded,
2314 K: Ord,
2315 V: Ord,
2316 {
2317 self.entries().sort().into_keyed()
2318 }
2319
2320 /// Produces a new keyed stream that combines the groups of the inputs by first emitting the
2321 /// elements of the `self` stream, and then emits the elements of the `other` stream (if a key
2322 /// is only present in one of the inputs, its values are passed through as-is). The output has
2323 /// a [`TotalOrder`] guarantee if and only if both inputs have a [`TotalOrder`] guarantee.
2324 ///
2325 /// Currently, both input streams must be [`Bounded`]. This operator will block
2326 /// on the first stream until all its elements are available. In a future version,
2327 /// we will relax the requirement on the `other` stream.
2328 ///
2329 /// # Example
2330 /// ```rust
2331 /// # #[cfg(feature = "deploy")] {
2332 /// # use hydro_lang::prelude::*;
2333 /// # use futures::StreamExt;
2334 /// # tokio_test::block_on(hydro_lang::test_util::stream_transform_test(|process| {
2335 /// let tick = process.tick();
2336 /// let numbers = process.source_iter(q!(vec![(0, 1), (1, 3)])).into_keyed();
2337 /// let batch = numbers.batch(&tick, nondet!(/** test */));
2338 /// batch.clone().map(q!(|x| x + 1)).chain(batch).all_ticks()
2339 /// # .entries()
2340 /// # }, |mut stream| async move {
2341 /// // { 0: [2, 1], 1: [4, 3] }
2342 /// # let mut results = Vec::new();
2343 /// # for _ in 0..4 {
2344 /// # results.push(stream.next().await.unwrap());
2345 /// # }
2346 /// # results.sort();
2347 /// # assert_eq!(results, vec![(0, 1), (0, 2), (1, 3), (1, 4)]);
2348 /// # }));
2349 /// # }
2350 /// ```
2351 pub fn chain<O2: Ordering, R2: Retries>(
2352 self,
2353 other: KeyedStream<K, V, L, Bounded, O2, R2>,
2354 ) -> KeyedStream<K, V, L, Bounded, <O as MinOrder<O2>>::Min, <R as MinRetries<R2>>::Min>
2355 where
2356 B: IsBounded,
2357 O: MinOrder<O2>,
2358 R: MinRetries<R2>,
2359 {
2360 let this = self.make_bounded();
2361 check_matching_location(&this.location, &other.location);
2362
2363 KeyedStream::new(
2364 this.location.clone(),
2365 HydroNode::Chain {
2366 first: Box::new(this.ir_node.replace(HydroNode::Placeholder)),
2367 second: Box::new(other.ir_node.replace(HydroNode::Placeholder)),
2368 metadata: this.location.new_node_metadata(KeyedStream::<
2369 K,
2370 V,
2371 L,
2372 Bounded,
2373 <O as MinOrder<O2>>::Min,
2374 <R as MinRetries<R2>>::Min,
2375 >::collection_kind()),
2376 },
2377 )
2378 }
2379
2380 /// Emit a keyed stream containing keys shared between the keyed stream and the
2381 /// keyed singleton, where each value in the output keyed stream is a tuple of
2382 /// (the keyed stream's value, the keyed singleton's value).
2383 ///
2384 /// # Example
2385 /// ```rust
2386 /// # #[cfg(feature = "deploy")] {
2387 /// # use hydro_lang::prelude::*;
2388 /// # use futures::StreamExt;
2389 /// # tokio_test::block_on(hydro_lang::test_util::stream_transform_test(|process| {
2390 /// let tick = process.tick();
2391 /// let keyed_data = process
2392 /// .source_iter(q!(vec![(1, 10), (1, 11), (2, 20)]))
2393 /// .into_keyed()
2394 /// .batch(&tick, nondet!(/** test */));
2395 /// let singleton_data = process
2396 /// .source_iter(q!(vec![(1, 100), (2, 200)]))
2397 /// .into_keyed()
2398 /// .batch(&tick, nondet!(/** test */))
2399 /// .first();
2400 /// keyed_data.join_keyed_singleton(singleton_data).entries().all_ticks()
2401 /// # }, |mut stream| async move {
2402 /// // { 1: [(10, 100), (11, 100)], 2: [(20, 200)] } in any order
2403 /// # let mut results = vec![];
2404 /// # for _ in 0..3 {
2405 /// # results.push(stream.next().await.unwrap());
2406 /// # }
2407 /// # results.sort();
2408 /// # assert_eq!(results, vec![(1, (10, 100)), (1, (11, 100)), (2, (20, 200))]);
2409 /// # }));
2410 /// # }
2411 /// ```
2412 pub fn join_keyed_singleton<V2: Clone, B2: IsBounded>(
2413 self,
2414 other: KeyedSingleton<K, V2, L, B2>,
2415 ) -> KeyedStream<K, (V, V2), L, B, O, R>
2416 where
2417 K: Eq + Hash + Clone,
2418 V: Clone,
2419 {
2420 let ir_node = if B2::BOUNDED {
2421 HydroNode::JoinHalf {
2422 left: Box::new(self.ir_node.replace(HydroNode::Placeholder)),
2423 right: Box::new(other.ir_node.replace(HydroNode::Placeholder)),
2424 metadata: self
2425 .location
2426 .new_node_metadata(KeyedStream::<K, (V, V2), L, B, O, R>::collection_kind()),
2427 }
2428 } else {
2429 HydroNode::Join {
2430 left: Box::new(self.ir_node.replace(HydroNode::Placeholder)),
2431 right: Box::new(other.ir_node.replace(HydroNode::Placeholder)),
2432 metadata: self
2433 .location
2434 .new_node_metadata(KeyedStream::<K, (V, V2), L, B, O, R>::collection_kind()),
2435 }
2436 };
2437
2438 KeyedStream::new(self.location.clone(), ir_node)
2439 }
2440
2441 /// Gets the values associated with a specific key from the keyed stream.
2442 /// Returns an empty stream if the key is `None` or there are no associated values.
2443 ///
2444 /// # Example
2445 /// ```rust
2446 /// # #[cfg(feature = "deploy")] {
2447 /// # use hydro_lang::prelude::*;
2448 /// # use futures::StreamExt;
2449 /// # tokio_test::block_on(hydro_lang::test_util::stream_transform_test(|process| {
2450 /// let tick = process.tick();
2451 /// let keyed_data = process
2452 /// .source_iter(q!(vec![(1, 10), (1, 11), (2, 20)]))
2453 /// .into_keyed()
2454 /// .batch(&tick, nondet!(/** test */));
2455 /// let key = tick.singleton(q!(1));
2456 /// keyed_data.get(key).all_ticks()
2457 /// # }, |mut stream| async move {
2458 /// // 10, 11
2459 /// # let mut results = vec![];
2460 /// # for _ in 0..2 {
2461 /// # results.push(stream.next().await.unwrap());
2462 /// # }
2463 /// # results.sort();
2464 /// # assert_eq!(results, vec![10, 11]);
2465 /// # }));
2466 /// # }
2467 /// ```
2468 pub fn get(self, key: impl Into<Optional<K, L, Bounded>>) -> Stream<V, L, B, O, R>
2469 where
2470 K: Eq + Hash + Clone,
2471 V: Clone,
2472 {
2473 let joined =
2474 self.join_keyed_singleton(key.into().map(q!(|k| (k, ()))).into_keyed_singleton());
2475
2476 if O::ORDERING_KIND == StreamOrder::TotalOrder {
2477 joined
2478 .use_ordering_type::<TotalOrder>()
2479 .cast_at_most_one_key()
2480 .map(q!(|(_, (v, _))| v))
2481 .weaken_ordering()
2482 } else {
2483 joined.values().map(q!(|(v, _)| v)).use_ordering_type()
2484 }
2485 }
2486
2487 /// For each value in `self`, find the matching key in `lookup`.
2488 /// The output is a keyed stream with the key from `self`, and a value
2489 /// that is a tuple of (`self`'s value, Option<`lookup`'s value>).
2490 /// If the key is not present in `lookup`, the option will be [`None`].
2491 ///
2492 /// # Example
2493 /// ```rust
2494 /// # #[cfg(feature = "deploy")] {
2495 /// # use hydro_lang::prelude::*;
2496 /// # use futures::StreamExt;
2497 /// # tokio_test::block_on(hydro_lang::test_util::stream_transform_test(|process| {
2498 /// # let tick = process.tick();
2499 /// let requests = // { 1: [10, 11], 2: 20 }
2500 /// # process
2501 /// # .source_iter(q!(vec![(1, 10), (1, 11), (2, 20)]))
2502 /// # .into_keyed()
2503 /// # .batch(&tick, nondet!(/** test */));
2504 /// let other_data = // { 10: 100, 11: 110 }
2505 /// # process
2506 /// # .source_iter(q!(vec![(10, 100), (11, 110)]))
2507 /// # .into_keyed()
2508 /// # .batch(&tick, nondet!(/** test */))
2509 /// # .first();
2510 /// requests.lookup_keyed_singleton(other_data)
2511 /// # .entries().all_ticks()
2512 /// # }, |mut stream| async move {
2513 /// // { 1: [(10, Some(100)), (11, Some(110))], 2: (20, None) }
2514 /// # let mut results = vec![];
2515 /// # for _ in 0..3 {
2516 /// # results.push(stream.next().await.unwrap());
2517 /// # }
2518 /// # results.sort();
2519 /// # assert_eq!(results, vec![(1, (10, Some(100))), (1, (11, Some(110))), (2, (20, None))]);
2520 /// # }));
2521 /// # }
2522 /// ```
2523 pub fn lookup_keyed_singleton<V2>(
2524 self,
2525 lookup: KeyedSingleton<V, V2, L, Bounded>,
2526 ) -> KeyedStream<K, (V, Option<V2>), L, Bounded, NoOrder, R>
2527 where
2528 B: IsBounded,
2529 K: Eq + Hash + Clone,
2530 V: Eq + Hash + Clone,
2531 V2: Clone,
2532 {
2533 self.lookup_keyed_stream(lookup.into_keyed_stream().weaken_retries::<R>())
2534 }
2535
2536 /// For each value in `self`, find the matching key in `lookup`.
2537 /// The output is a keyed stream with the key from `self`, and a value
2538 /// that is a tuple of (`self`'s value, Option<`lookup`'s value>).
2539 /// If the key is not present in `lookup`, the option will be [`None`].
2540 ///
2541 /// # Example
2542 /// ```rust
2543 /// # #[cfg(feature = "deploy")] {
2544 /// # use hydro_lang::prelude::*;
2545 /// # use futures::StreamExt;
2546 /// # tokio_test::block_on(hydro_lang::test_util::stream_transform_test(|process| {
2547 /// # let tick = process.tick();
2548 /// let requests = // { 1: [10, 11], 2: 20 }
2549 /// # process
2550 /// # .source_iter(q!(vec![(1, 10), (1, 11), (2, 20)]))
2551 /// # .into_keyed()
2552 /// # .batch(&tick, nondet!(/** test */));
2553 /// let other_data = // { 10: [100, 101], 11: 110 }
2554 /// # process
2555 /// # .source_iter(q!(vec![(10, 100), (10, 101), (11, 110)]))
2556 /// # .into_keyed()
2557 /// # .batch(&tick, nondet!(/** test */));
2558 /// requests.lookup_keyed_stream(other_data)
2559 /// # .entries().all_ticks()
2560 /// # }, |mut stream| async move {
2561 /// // { 1: [(10, Some(100)), (10, Some(101)), (11, Some(110))], 2: (20, None) }
2562 /// # let mut results = vec![];
2563 /// # for _ in 0..4 {
2564 /// # results.push(stream.next().await.unwrap());
2565 /// # }
2566 /// # results.sort();
2567 /// # assert_eq!(results, vec![(1, (10, Some(100))), (1, (10, Some(101))), (1, (11, Some(110))), (2, (20, None))]);
2568 /// # }));
2569 /// # }
2570 /// ```
2571 pub fn lookup_keyed_stream<V2, O2: Ordering, R2: Retries>(
2572 self,
2573 lookup: KeyedStream<V, V2, L, Bounded, O2, R2>,
2574 ) -> KeyedStream<K, (V, Option<V2>), L, Bounded, NoOrder, <R as MinRetries<R2>>::Min>
2575 where
2576 B: IsBounded,
2577 K: Eq + Hash + Clone,
2578 V: Eq + Hash + Clone,
2579 V2: Clone,
2580 R: MinRetries<R2>,
2581 {
2582 let inverted = self
2583 .make_bounded()
2584 .entries()
2585 .map(q!(|(key, lookup_value)| (lookup_value, key)))
2586 .into_keyed();
2587 let found = inverted
2588 .clone()
2589 .join_keyed_stream(lookup.clone())
2590 .entries()
2591 .map(q!(|(lookup_value, (key, value))| (
2592 key,
2593 (lookup_value, Some(value))
2594 )))
2595 .into_keyed();
2596 let not_found = inverted
2597 .filter_key_not_in(lookup.keys())
2598 .entries()
2599 .map(q!(|(lookup_value, key)| (key, (lookup_value, None))))
2600 .into_keyed();
2601
2602 found.chain(not_found.weaken_retries::<<R as MinRetries<R2>>::Min>())
2603 }
2604
2605 /// Shifts this keyed stream into an atomic context, which guarantees that any downstream logic
2606 /// will all be executed synchronously before any outputs are yielded (in [`KeyedStream::end_atomic`]).
2607 ///
2608 /// This is useful to enforce local consistency constraints, such as ensuring that a write is
2609 /// processed before an acknowledgement is emitted.
2610 pub fn atomic(self) -> KeyedStream<K, V, Atomic<L>, B, O, R> {
2611 let id = self.location.flow_state().borrow_mut().next_clock_id();
2612 let out_location = Atomic {
2613 tick: Tick {
2614 id,
2615 l: self.location.clone(),
2616 },
2617 };
2618 KeyedStream::new(
2619 out_location.clone(),
2620 HydroNode::BeginAtomic {
2621 inner: Box::new(self.ir_node.replace(HydroNode::Placeholder)),
2622 metadata: out_location
2623 .new_node_metadata(KeyedStream::<K, V, Atomic<L>, B, O, R>::collection_kind()),
2624 },
2625 )
2626 }
2627
2628 /// Given a tick, returns a keyed stream corresponding to a batch of elements segmented by
2629 /// that tick. These batches are guaranteed to be contiguous across ticks and preserve
2630 /// the order of the input.
2631 ///
2632 /// # Non-Determinism
2633 /// The batch boundaries are non-deterministic and may change across executions.
2634 pub fn batch<L2: Location<'a, DropConsistency = L::DropConsistency>>(
2635 self,
2636 tick: &Tick<L2>,
2637 nondet: NonDet,
2638 ) -> KeyedStream<K, V, Tick<L::DropConsistency>, Bounded, O, R> {
2639 let _ = nondet;
2640 assert_eq!(Location::id(tick.outer()), Location::id(&self.location));
2641 KeyedStream::new(
2642 tick.drop_consistency(),
2643 HydroNode::Batch {
2644 inner: Box::new(self.ir_node.replace(HydroNode::Placeholder)),
2645 metadata: tick.new_node_metadata(
2646 KeyedStream::<K, V, Tick<L>, Bounded, O, R>::collection_kind(),
2647 ),
2648 },
2649 )
2650 }
2651}
2652
2653impl<'a, K1, K2, V, L: Location<'a>, B: Boundedness, O: Ordering, R: Retries>
2654 KeyedStream<(K1, K2), V, L, B, O, R>
2655{
2656 /// Produces a new keyed stream by dropping the first element of the compound key.
2657 ///
2658 /// Because multiple keys may share the same suffix, this operation results in re-grouping
2659 /// of the values under the new keys. The values across groups with the same new key
2660 /// will be interleaved, so the resulting stream has [`NoOrder`] within each group.
2661 ///
2662 /// # Example
2663 /// ```rust
2664 /// # #[cfg(feature = "deploy")] {
2665 /// # use hydro_lang::prelude::*;
2666 /// # use futures::StreamExt;
2667 /// # tokio_test::block_on(hydro_lang::test_util::stream_transform_test(|process| {
2668 /// process
2669 /// .source_iter(q!(vec![((1, 10), 2), ((1, 10), 3), ((2, 20), 4)]))
2670 /// .into_keyed()
2671 /// .drop_key_prefix()
2672 /// # .entries()
2673 /// # }, |mut stream| async move {
2674 /// // { 10: [2, 3], 20: [4] }
2675 /// # let mut results = Vec::new();
2676 /// # for _ in 0..3 {
2677 /// # results.push(stream.next().await.unwrap());
2678 /// # }
2679 /// # results.sort();
2680 /// # assert_eq!(results, vec![(10, 2), (10, 3), (20, 4)]);
2681 /// # }));
2682 /// # }
2683 /// ```
2684 pub fn drop_key_prefix(self) -> KeyedStream<K2, V, L, B, NoOrder, R> {
2685 self.entries()
2686 .map(q!(|((_k1, k2), v)| (k2, v)))
2687 .into_keyed()
2688 }
2689}
2690
2691impl<'a, K, V, L: Location<'a>, O: Ordering, R: Retries> KeyedStream<K, V, L, Unbounded, O, R> {
2692 /// Produces a new keyed stream that "merges" the inputs by interleaving the elements
2693 /// of any overlapping groups. The result has [`NoOrder`] on each group because the
2694 /// order of interleaving is not guaranteed. If the keys across both inputs do not overlap,
2695 /// the ordering will be deterministic and you can safely use [`Self::assume_ordering`].
2696 ///
2697 /// Currently, both input streams must be [`Unbounded`].
2698 ///
2699 /// # Example
2700 /// ```rust
2701 /// # #[cfg(feature = "deploy")] {
2702 /// # use hydro_lang::prelude::*;
2703 /// # use futures::StreamExt;
2704 /// # tokio_test::block_on(hydro_lang::test_util::stream_transform_test(|process| {
2705 /// let numbers1: KeyedStream<i32, i32, _> = // { 1: [2], 3: [4] }
2706 /// # process.source_iter(q!(vec![(1, 2), (3, 4)])).into_keyed().into();
2707 /// let numbers2: KeyedStream<i32, i32, _> = // { 1: [3], 3: [5] }
2708 /// # process.source_iter(q!(vec![(1, 3), (3, 5)])).into_keyed().into();
2709 /// numbers1.merge_unordered(numbers2)
2710 /// # .entries()
2711 /// # }, |mut stream| async move {
2712 /// // { 1: [2, 3], 3: [4, 5] } with each group in unknown order
2713 /// # let mut results = Vec::new();
2714 /// # for _ in 0..4 {
2715 /// # results.push(stream.next().await.unwrap());
2716 /// # }
2717 /// # results.sort();
2718 /// # assert_eq!(results, vec![(1, 2), (1, 3), (3, 4), (3, 5)]);
2719 /// # }));
2720 /// # }
2721 /// ```
2722 pub fn merge_unordered<O2: Ordering, R2: Retries>(
2723 self,
2724 other: KeyedStream<K, V, L, Unbounded, O2, R2>,
2725 ) -> KeyedStream<K, V, L, Unbounded, NoOrder, <R as MinRetries<R2>>::Min>
2726 where
2727 R: MinRetries<R2>,
2728 {
2729 KeyedStream::new(
2730 self.location.clone(),
2731 HydroNode::Chain {
2732 first: Box::new(self.ir_node.replace(HydroNode::Placeholder)),
2733 second: Box::new(other.ir_node.replace(HydroNode::Placeholder)),
2734 metadata: self.location.new_node_metadata(KeyedStream::<
2735 K,
2736 V,
2737 L,
2738 Unbounded,
2739 NoOrder,
2740 <R as MinRetries<R2>>::Min,
2741 >::collection_kind()),
2742 },
2743 )
2744 }
2745
2746 /// Deprecated: use [`KeyedStream::merge_unordered`] instead.
2747 #[deprecated(note = "use `merge_unordered` instead")]
2748 pub fn interleave<O2: Ordering, R2: Retries>(
2749 self,
2750 other: KeyedStream<K, V, L, Unbounded, O2, R2>,
2751 ) -> KeyedStream<K, V, L, Unbounded, NoOrder, <R as MinRetries<R2>>::Min>
2752 where
2753 R: MinRetries<R2>,
2754 {
2755 self.merge_unordered(other)
2756 }
2757}
2758
2759impl<'a, K, V, L, B: Boundedness, O: Ordering, R: Retries> KeyedStream<K, V, Atomic<L>, B, O, R>
2760where
2761 L: Location<'a>,
2762{
2763 /// Returns a keyed stream corresponding to the latest batch of elements being atomically
2764 /// processed. These batches are guaranteed to be contiguous across ticks and preserve
2765 /// the order of the input. The output keyed stream will execute in the [`Tick`] that was
2766 /// used to create the atomic section.
2767 ///
2768 /// # Non-Determinism
2769 /// The batch boundaries are non-deterministic and may change across executions.
2770 pub fn batch_atomic<L2: Location<'a, DropConsistency = L::DropConsistency>>(
2771 self,
2772 tick: &Tick<L2>,
2773 nondet: NonDet,
2774 ) -> KeyedStream<K, V, Tick<L::DropConsistency>, Bounded, O, R> {
2775 let _ = nondet;
2776 KeyedStream::new(
2777 tick.drop_consistency(),
2778 HydroNode::Batch {
2779 inner: Box::new(self.ir_node.replace(HydroNode::Placeholder)),
2780 metadata: tick.new_node_metadata(
2781 KeyedStream::<K, V, Tick<L>, Bounded, O, R>::collection_kind(),
2782 ),
2783 },
2784 )
2785 }
2786
2787 /// Yields the elements of this keyed stream back into a top-level, asynchronous execution context.
2788 /// See [`KeyedStream::atomic`] for more details.
2789 pub fn end_atomic(self) -> KeyedStream<K, V, L, B, O, R> {
2790 KeyedStream::new(
2791 self.location.tick.l.clone(),
2792 HydroNode::EndAtomic {
2793 inner: Box::new(self.ir_node.replace(HydroNode::Placeholder)),
2794 metadata: self
2795 .location
2796 .tick
2797 .l
2798 .new_node_metadata(KeyedStream::<K, V, L, B, O, R>::collection_kind()),
2799 },
2800 )
2801 }
2802}
2803
2804impl<'a, K, V, L, O: Ordering, R: Retries> KeyedStream<K, V, Tick<L>, Bounded, O, R>
2805where
2806 L: Location<'a>,
2807{
2808 /// Asynchronously yields this batch of keyed elements outside the tick as an unbounded keyed stream,
2809 /// which will stream all the elements across _all_ tick iterations by concatenating the batches for
2810 /// each key.
2811 pub fn all_ticks(self) -> KeyedStream<K, V, L, Unbounded, O, R> {
2812 KeyedStream::new(
2813 self.location.outer().clone(),
2814 HydroNode::YieldConcat {
2815 inner: Box::new(self.ir_node.replace(HydroNode::Placeholder)),
2816 metadata: self.location.outer().new_node_metadata(KeyedStream::<
2817 K,
2818 V,
2819 L,
2820 Unbounded,
2821 O,
2822 R,
2823 >::collection_kind(
2824 )),
2825 },
2826 )
2827 }
2828
2829 /// Synchronously yields this batch of keyed elements outside the tick as an unbounded keyed stream,
2830 /// which will stream all the elements across _all_ tick iterations by concatenating the batches for
2831 /// each key.
2832 ///
2833 /// Unlike [`KeyedStream::all_ticks`], this preserves synchronous execution, as the output stream
2834 /// is emitted in an [`Atomic`] context that will process elements synchronously with the input
2835 /// stream's [`Tick`] context.
2836 pub fn all_ticks_atomic(self) -> KeyedStream<K, V, Atomic<L>, Unbounded, O, R> {
2837 let out_location = Atomic {
2838 tick: self.location.clone(),
2839 };
2840
2841 KeyedStream::new(
2842 out_location.clone(),
2843 HydroNode::YieldConcat {
2844 inner: Box::new(self.ir_node.replace(HydroNode::Placeholder)),
2845 metadata: out_location.new_node_metadata(KeyedStream::<
2846 K,
2847 V,
2848 Atomic<L>,
2849 Unbounded,
2850 O,
2851 R,
2852 >::collection_kind()),
2853 },
2854 )
2855 }
2856
2857 /// Transforms the keyed stream using the given closure in "stateful" mode, where stateful operators
2858 /// such as `fold` retrain their memory for each key across ticks rather than resetting across batches of each key.
2859 ///
2860 /// This API is particularly useful for stateful computation on batches of data, such as
2861 /// maintaining an accumulated state that is up to date with the current batch.
2862 ///
2863 /// # Example
2864 /// ```rust
2865 /// # #[cfg(feature = "deploy")] {
2866 /// # use hydro_lang::prelude::*;
2867 /// # use futures::StreamExt;
2868 /// # tokio_test::block_on(hydro_lang::test_util::stream_transform_test(|process| {
2869 /// let tick = process.tick();
2870 /// # // ticks are lazy by default, forces the second tick to run
2871 /// # tick.spin_batch(q!(1)).all_ticks().for_each(q!(|_| {}));
2872 /// # let batch_first_tick = process
2873 /// # .source_iter(q!(vec![(0, 1), (1, 2), (2, 3), (3, 4)]))
2874 /// # .into_keyed()
2875 /// # .batch(&tick, nondet!(/** test */));
2876 /// # let batch_second_tick = process
2877 /// # .source_iter(q!(vec![(0, 5), (1, 6), (2, 7)]))
2878 /// # .into_keyed()
2879 /// # .batch(&tick, nondet!(/** test */))
2880 /// # .defer_tick(); // appears on the second tick
2881 /// let input = batch_first_tick.chain(batch_second_tick).all_ticks();
2882 ///
2883 /// input.batch(&tick, nondet!(/** test */))
2884 /// .across_ticks(|s| s.reduce(q!(|sum, new| {
2885 /// *sum += new;
2886 /// }))).entries().all_ticks()
2887 /// # }, |mut stream| async move {
2888 /// // First tick: [(0, 1), (1, 2), (2, 3), (3, 4)]
2889 /// # let mut results = Vec::new();
2890 /// # for _ in 0..4 {
2891 /// # results.push(stream.next().await.unwrap());
2892 /// # }
2893 /// # results.sort();
2894 /// # assert_eq!(results, vec![(0, 1), (1, 2), (2, 3), (3, 4)]);
2895 /// // Second tick: [(0, 6), (1, 8), (2, 10), (3, 4)]
2896 /// # results.clear();
2897 /// # for _ in 0..4 {
2898 /// # results.push(stream.next().await.unwrap());
2899 /// # }
2900 /// # results.sort();
2901 /// # assert_eq!(results, vec![(0, 6), (1, 8), (2, 10), (3, 4)]);
2902 /// # }));
2903 /// # }
2904 /// ```
2905 pub fn across_ticks<Out: BatchAtomic<'a>>(
2906 self,
2907 thunk: impl FnOnce(KeyedStream<K, V, Atomic<L>, Unbounded, O, R>) -> Out,
2908 ) -> Out::Batched {
2909 thunk(self.all_ticks_atomic()).batched_atomic()
2910 }
2911
2912 /// Shifts the entries in `self` to the **next tick**, so that the returned keyed stream at
2913 /// tick `T` always has the entries of `self` at tick `T - 1`.
2914 ///
2915 /// At tick `0`, the output keyed stream is empty, since there is no previous tick.
2916 ///
2917 /// This operator enables stateful iterative processing with ticks, by sending data from one
2918 /// tick to the next. For example, you can use it to combine inputs across consecutive batches.
2919 ///
2920 /// # Example
2921 /// ```rust
2922 /// # #[cfg(feature = "deploy")] {
2923 /// # use hydro_lang::prelude::*;
2924 /// # use futures::StreamExt;
2925 /// # tokio_test::block_on(hydro_lang::test_util::stream_transform_test(|process| {
2926 /// let tick = process.tick();
2927 /// # // ticks are lazy by default, forces the second tick to run
2928 /// # tick.spin_batch(q!(1)).all_ticks().for_each(q!(|_| {}));
2929 /// # let batch_first_tick = process
2930 /// # .source_iter(q!(vec![(1, 2), (1, 3)]))
2931 /// # .batch(&tick, nondet!(/** test */))
2932 /// # .into_keyed();
2933 /// # let batch_second_tick = process
2934 /// # .source_iter(q!(vec![(1, 4), (2, 5)]))
2935 /// # .batch(&tick, nondet!(/** test */))
2936 /// # .defer_tick()
2937 /// # .into_keyed(); // appears on the second tick
2938 /// let changes_across_ticks = // { 1: [2, 3] } (first tick), { 1: [4], 2: [5] } (second tick)
2939 /// # batch_first_tick.chain(batch_second_tick);
2940 /// changes_across_ticks.clone().defer_tick().chain( // from the previous tick
2941 /// changes_across_ticks // from the current tick
2942 /// )
2943 /// # .entries().all_ticks()
2944 /// # }, |mut stream| async move {
2945 /// // First tick: { 1: [2, 3] }
2946 /// # let mut results = Vec::new();
2947 /// # for _ in 0..2 {
2948 /// # results.push(stream.next().await.unwrap());
2949 /// # }
2950 /// # results.sort();
2951 /// # assert_eq!(results, vec![(1, 2), (1, 3)]);
2952 /// // Second tick: { 1: [2, 3, 4], 2: [5] }
2953 /// # results.clear();
2954 /// # for _ in 0..4 {
2955 /// # results.push(stream.next().await.unwrap());
2956 /// # }
2957 /// # results.sort();
2958 /// # assert_eq!(results, vec![(1, 2), (1, 3), (1, 4), (2, 5)]);
2959 /// // Third tick: { 1: [4], 2: [5] }
2960 /// # results.clear();
2961 /// # for _ in 0..2 {
2962 /// # results.push(stream.next().await.unwrap());
2963 /// # }
2964 /// # results.sort();
2965 /// # assert_eq!(results, vec![(1, 4), (2, 5)]);
2966 /// # }));
2967 /// # }
2968 /// ```
2969 pub fn defer_tick(self) -> KeyedStream<K, V, Tick<L>, Bounded, O, R> {
2970 KeyedStream::new(
2971 self.location.clone(),
2972 HydroNode::DeferTick {
2973 input: Box::new(self.ir_node.replace(HydroNode::Placeholder)),
2974 metadata: self.location.new_node_metadata(KeyedStream::<
2975 K,
2976 V,
2977 Tick<L>,
2978 Bounded,
2979 O,
2980 R,
2981 >::collection_kind()),
2982 },
2983 )
2984 }
2985}
2986
2987#[cfg(test)]
2988mod tests {
2989 #[cfg(feature = "deploy")]
2990 use futures::{SinkExt, StreamExt};
2991 #[cfg(feature = "deploy")]
2992 use hydro_deploy::Deployment;
2993 #[cfg(any(feature = "deploy", feature = "sim"))]
2994 use stageleft::q;
2995
2996 #[cfg(any(feature = "deploy", feature = "sim"))]
2997 use crate::compile::builder::FlowBuilder;
2998 #[cfg(feature = "deploy")]
2999 use crate::live_collections::stream::ExactlyOnce;
3000 #[cfg(feature = "sim")]
3001 use crate::live_collections::stream::{NoOrder, TotalOrder};
3002 #[cfg(any(feature = "deploy", feature = "sim"))]
3003 use crate::location::Location;
3004 #[cfg(feature = "sim")]
3005 use crate::networking::TCP;
3006 #[cfg(any(feature = "deploy", feature = "sim"))]
3007 use crate::nondet::nondet;
3008 #[cfg(feature = "deploy")]
3009 use crate::properties::manual_proof;
3010
3011 #[cfg(feature = "deploy")]
3012 #[tokio::test]
3013 async fn get_unbounded_keyed_stream_bounded_singleton() {
3014 let mut deployment = Deployment::new();
3015
3016 let mut flow = FlowBuilder::new();
3017 let node = flow.process::<()>();
3018 let external = flow.external::<()>();
3019
3020 let (input_send, input_stream) =
3021 node.source_external_bincode::<_, (i32, i32), _, ExactlyOnce>(&external);
3022
3023 let key = node.singleton(q!(1));
3024
3025 let out = input_stream
3026 .into_keyed()
3027 .get(key)
3028 .send_bincode_external(&external);
3029
3030 let nodes = flow
3031 .with_process(&node, deployment.Localhost())
3032 .with_external(&external, deployment.Localhost())
3033 .deploy(&mut deployment);
3034
3035 deployment.deploy().await.unwrap();
3036
3037 let mut input_send = nodes.connect(input_send).await;
3038 let mut out = nodes.connect(out).await;
3039
3040 deployment.start().await.unwrap();
3041
3042 // First batch
3043 input_send.send((1, 10)).await.unwrap();
3044 input_send.send((2, 20)).await.unwrap();
3045 assert_eq!(out.next().await.unwrap(), 10);
3046
3047 // Second batch
3048 input_send.send((1, 11)).await.unwrap();
3049 input_send.send((2, 21)).await.unwrap();
3050 assert_eq!(out.next().await.unwrap(), 11);
3051 }
3052
3053 #[cfg(feature = "deploy")]
3054 #[tokio::test]
3055 async fn reduce_watermark_filter() {
3056 let mut deployment = Deployment::new();
3057
3058 let mut flow = FlowBuilder::new();
3059 let node = flow.process::<()>();
3060 let external = flow.external::<()>();
3061
3062 let node_tick = node.tick();
3063 let watermark = node_tick.singleton(q!(2));
3064
3065 let sum = node
3066 .source_stream(q!(tokio_stream::iter([
3067 (0, 100),
3068 (1, 101),
3069 (2, 102),
3070 (2, 102)
3071 ])))
3072 .into_keyed()
3073 .reduce_watermark(
3074 watermark,
3075 q!(|acc, v| {
3076 *acc += v;
3077 }),
3078 )
3079 .snapshot(&node_tick, nondet!(/** test */))
3080 .entries()
3081 .all_ticks()
3082 .send_bincode_external(&external);
3083
3084 let nodes = flow
3085 .with_process(&node, deployment.Localhost())
3086 .with_external(&external, deployment.Localhost())
3087 .deploy(&mut deployment);
3088
3089 deployment.deploy().await.unwrap();
3090
3091 let mut out = nodes.connect(sum).await;
3092
3093 deployment.start().await.unwrap();
3094
3095 assert_eq!(out.next().await.unwrap(), (2, 204));
3096 }
3097
3098 #[cfg(feature = "deploy")]
3099 #[tokio::test]
3100 async fn reduce_watermark_bounded() {
3101 let mut deployment = Deployment::new();
3102
3103 let mut flow = FlowBuilder::new();
3104 let node = flow.process::<()>();
3105 let external = flow.external::<()>();
3106
3107 let node_tick = node.tick();
3108 let watermark = node_tick.singleton(q!(2));
3109
3110 let sum = node
3111 .source_iter(q!([(0, 100), (1, 101), (2, 102), (2, 102)]))
3112 .into_keyed()
3113 .reduce_watermark(
3114 watermark,
3115 q!(|acc, v| {
3116 *acc += v;
3117 }),
3118 )
3119 .entries()
3120 .send_bincode_external(&external);
3121
3122 let nodes = flow
3123 .with_process(&node, deployment.Localhost())
3124 .with_external(&external, deployment.Localhost())
3125 .deploy(&mut deployment);
3126
3127 deployment.deploy().await.unwrap();
3128
3129 let mut out = nodes.connect(sum).await;
3130
3131 deployment.start().await.unwrap();
3132
3133 assert_eq!(out.next().await.unwrap(), (2, 204));
3134 }
3135
3136 #[cfg(feature = "deploy")]
3137 #[tokio::test]
3138 async fn reduce_watermark_garbage_collect() {
3139 let mut deployment = Deployment::new();
3140
3141 let mut flow = FlowBuilder::new();
3142 let node = flow.process::<()>();
3143 let external = flow.external::<()>();
3144 let (tick_send, tick_trigger) =
3145 node.source_external_bincode::<_, _, _, ExactlyOnce>(&external);
3146
3147 let node_tick = node.tick();
3148 let (watermark_complete_cycle, watermark) =
3149 node_tick.cycle_with_initial(node_tick.singleton(q!(2)));
3150 let next_watermark = watermark.clone().map(q!(|v| v + 1));
3151 watermark_complete_cycle.complete_next_tick(next_watermark);
3152
3153 let tick_triggered_input = node_tick
3154 .singleton(q!((3, 103)))
3155 .into_stream()
3156 .filter_if(
3157 tick_trigger
3158 .clone()
3159 .batch(&node_tick, nondet!(/** test */))
3160 .first()
3161 .is_some(),
3162 )
3163 .all_ticks();
3164
3165 let sum = node
3166 .source_stream(q!(tokio_stream::iter([
3167 (0, 100),
3168 (1, 101),
3169 (2, 102),
3170 (2, 102)
3171 ])))
3172 .merge_unordered(tick_triggered_input)
3173 .into_keyed()
3174 .reduce_watermark(
3175 watermark,
3176 q!(
3177 |acc, v| {
3178 *acc += v;
3179 },
3180 commutative = manual_proof!(/** integer addition is commutative */)
3181 ),
3182 )
3183 .snapshot(&node_tick, nondet!(/** test */))
3184 .entries()
3185 .all_ticks()
3186 .send_bincode_external(&external);
3187
3188 let nodes = flow
3189 .with_default_optimize()
3190 .with_process(&node, deployment.Localhost())
3191 .with_external(&external, deployment.Localhost())
3192 .deploy(&mut deployment);
3193
3194 deployment.deploy().await.unwrap();
3195
3196 let mut tick_send = nodes.connect(tick_send).await;
3197 let mut out_recv = nodes.connect(sum).await;
3198
3199 deployment.start().await.unwrap();
3200
3201 assert_eq!(out_recv.next().await.unwrap(), (2, 204));
3202
3203 tick_send.send(()).await.unwrap();
3204
3205 assert_eq!(out_recv.next().await.unwrap(), (3, 103));
3206 }
3207
3208 #[cfg(feature = "sim")]
3209 #[test]
3210 #[should_panic]
3211 fn sim_batch_nondet_size() {
3212 let mut flow = FlowBuilder::new();
3213 let node = flow.process::<()>();
3214
3215 let input = node.source_iter(q!([(1, 1), (1, 2), (2, 3)])).into_keyed();
3216
3217 let tick = node.tick();
3218 let out_recv = input
3219 .batch(&tick, nondet!(/** test */))
3220 .fold(q!(|| vec![]), q!(|acc, v| acc.push(v)))
3221 .entries()
3222 .all_ticks()
3223 .sim_output();
3224
3225 flow.sim().exhaustive(async || {
3226 out_recv
3227 .assert_yields_only_unordered([(1, vec![1, 2])])
3228 .await;
3229 });
3230 }
3231
3232 #[cfg(feature = "sim")]
3233 #[test]
3234 fn sim_batch_preserves_group_order() {
3235 let mut flow = FlowBuilder::new();
3236 let node = flow.process::<()>();
3237
3238 let input = node.source_iter(q!([(1, 1), (1, 2), (2, 3)])).into_keyed();
3239
3240 let tick = node.tick();
3241 let out_recv = input
3242 .batch(&tick, nondet!(/** test */))
3243 .all_ticks()
3244 .fold_early_stop(
3245 q!(|| 0),
3246 q!(|acc, v| {
3247 *acc = std::cmp::max(v, *acc);
3248 *acc >= 2
3249 }),
3250 )
3251 .entries()
3252 .sim_output();
3253
3254 let instances = flow.sim().exhaustive(async || {
3255 out_recv
3256 .assert_yields_only_unordered([(1, 2), (2, 3)])
3257 .await;
3258 });
3259
3260 assert_eq!(instances, 8);
3261 // - three cases: all three in a separate tick (pick where (2, 3) is)
3262 // - two cases: (1, 1) and (1, 2) together, (2, 3) before or after
3263 // - two cases: (1, 1) and (1, 2) separate, (2, 3) grouped with one of them
3264 // - one case: all three together
3265 }
3266
3267 #[cfg(feature = "sim")]
3268 #[test]
3269 fn sim_batch_unordered_shuffles() {
3270 let mut flow = FlowBuilder::new();
3271 let node = flow.process::<()>();
3272
3273 let input = node
3274 .source_iter(q!([(1, 1), (1, 2), (2, 3)]))
3275 .into_keyed()
3276 .weaken_ordering::<NoOrder>();
3277
3278 let tick = node.tick();
3279 let out_recv = input
3280 .batch(&tick, nondet!(/** test */))
3281 .all_ticks()
3282 .entries()
3283 .sim_output();
3284
3285 let instances = flow.sim().exhaustive(async || {
3286 out_recv
3287 .assert_yields_only_unordered([(1, 1), (1, 2), (2, 3)])
3288 .await;
3289 });
3290
3291 assert_eq!(instances, 13);
3292 // - 6 (3 * 2) cases: all three in a separate tick (pick where (2, 3) is), and order of (1, 1), (1, 2)
3293 // - two cases: (1, 1) and (1, 2) together, (2, 3) before or after (order of (1, 1), (1, 2) doesn't matter because batched is still unordered)
3294 // - 4 (2 * 2) cases: (1, 1) and (1, 2) separate, (2, 3) grouped with one of them, and order of (1, 1), (1, 2)
3295 // - one case: all three together (order of (1, 1), (1, 2) doesn't matter because batched is still unordered)
3296 }
3297
3298 #[cfg(feature = "sim")]
3299 #[test]
3300 #[should_panic]
3301 fn sim_observe_order_batched() {
3302 let mut flow = FlowBuilder::new();
3303 let node = flow.process::<()>();
3304
3305 let (port, input) = node.sim_input::<_, NoOrder, _>();
3306
3307 let tick = node.tick();
3308 let batch = input.into_keyed().batch(&tick, nondet!(/** test */));
3309 let out_recv = batch
3310 .assume_ordering::<TotalOrder>(nondet!(/** test */))
3311 .all_ticks()
3312 .first()
3313 .entries()
3314 .sim_output();
3315
3316 flow.sim().exhaustive(async || {
3317 port.send_many_unordered([(1, 1), (1, 2), (2, 1), (2, 2)]);
3318 out_recv
3319 .assert_yields_only_unordered([(1, 1), (2, 1)])
3320 .await; // fails with assume_ordering
3321 });
3322 }
3323
3324 #[cfg(feature = "sim")]
3325 #[test]
3326 fn sim_observe_order_batched_count() {
3327 let mut flow = FlowBuilder::new();
3328 let node = flow.process::<()>();
3329
3330 let (port, input) = node.sim_input::<_, NoOrder, _>();
3331
3332 let tick = node.tick();
3333 let batch = input.into_keyed().batch(&tick, nondet!(/** test */));
3334 let out_recv = batch
3335 .assume_ordering::<TotalOrder>(nondet!(/** test */))
3336 .all_ticks()
3337 .entries()
3338 .sim_output();
3339
3340 let instance_count = flow.sim().exhaustive(async || {
3341 port.send_many_unordered([(1, 1), (1, 2), (2, 1), (2, 2)]);
3342 let _ = out_recv.collect_sorted::<Vec<_>>().await;
3343 });
3344
3345 assert_eq!(instance_count, 104); // too complicated to enumerate here, but less than stream equivalent
3346 }
3347
3348 #[cfg(feature = "sim")]
3349 #[test]
3350 fn sim_top_level_assume_ordering() {
3351 use std::collections::HashMap;
3352
3353 let mut flow = FlowBuilder::new();
3354 let node = flow.process::<()>();
3355
3356 let (in_send, input) = node.sim_input::<_, NoOrder, _>();
3357
3358 let out_recv = input
3359 .into_keyed()
3360 .assume_ordering::<TotalOrder>(nondet!(/** test */))
3361 .fold_early_stop(
3362 q!(|| Vec::new()),
3363 q!(|acc, v| {
3364 acc.push(v);
3365 acc.len() >= 2
3366 }),
3367 )
3368 .entries()
3369 .sim_output();
3370
3371 let instance_count = flow.sim().exhaustive(async || {
3372 in_send.send_many_unordered([(1, 'a'), (1, 'b'), (2, 'c'), (2, 'd')]);
3373 let out: HashMap<_, _> = out_recv
3374 .collect_sorted::<Vec<_>>()
3375 .await
3376 .into_iter()
3377 .collect();
3378 // Each key accumulates its values; we get one entry per key
3379 assert_eq!(out.len(), 2);
3380 });
3381
3382 assert_eq!(instance_count, 24)
3383 }
3384
3385 #[cfg(feature = "sim")]
3386 #[test]
3387 fn sim_top_level_assume_ordering_cycle_back() {
3388 use std::collections::HashMap;
3389
3390 let mut flow = FlowBuilder::new();
3391 let node = flow.process::<()>();
3392 let node2 = flow.process::<()>();
3393
3394 let (in_send, input) = node.sim_input::<_, NoOrder, _>();
3395
3396 let (complete_cycle_back, cycle_back) =
3397 node.forward_ref::<super::KeyedStream<_, _, _, _, NoOrder>>();
3398 let ordered = input
3399 .into_keyed()
3400 .merge_unordered(cycle_back)
3401 .assume_ordering::<TotalOrder>(nondet!(/** test */));
3402 complete_cycle_back.complete(
3403 ordered
3404 .clone()
3405 .map(q!(|v| v + 1))
3406 .filter(q!(|v| v % 2 == 1))
3407 .entries()
3408 .send(&node2, TCP.fail_stop().bincode())
3409 .send(&node, TCP.fail_stop().bincode())
3410 .into_keyed(),
3411 );
3412
3413 let out_recv = ordered
3414 .fold_early_stop(
3415 q!(|| Vec::new()),
3416 q!(|acc, v| {
3417 acc.push(v);
3418 acc.len() >= 2
3419 }),
3420 )
3421 .entries()
3422 .sim_output();
3423
3424 let mut saw = false;
3425 let instance_count = flow.sim().exhaustive(async || {
3426 // Send (1, 0) and (1, 2). 0+1=1 is odd so cycles back.
3427 // We want to see [0, 1] - the cycled back value interleaved
3428 in_send.send_many_unordered([(1, 0), (1, 2)]);
3429 let out: HashMap<_, _> = out_recv
3430 .collect_sorted::<Vec<_>>()
3431 .await
3432 .into_iter()
3433 .collect();
3434
3435 // We want to see an instance where key 1 gets: 0, then 1 (cycled back from 0+1)
3436 if let Some(values) = out.get(&1)
3437 && *values == vec![0, 1]
3438 {
3439 saw = true;
3440 }
3441 });
3442
3443 assert!(
3444 saw,
3445 "did not see an instance with key 1 having [0, 1] in order"
3446 );
3447 assert_eq!(instance_count, 6);
3448 }
3449
3450 #[cfg(feature = "sim")]
3451 #[test]
3452 fn sim_top_level_assume_ordering_cross_key_cycle() {
3453 use std::collections::HashMap;
3454
3455 // This test demonstrates why releasing one entry at a time is important:
3456 // When one key's observed order cycles back into a different key, we need
3457 // to be able to interleave the cycled-back entry with pending items for
3458 // that other key.
3459 let mut flow = FlowBuilder::new();
3460 let node = flow.process::<()>();
3461 let node2 = flow.process::<()>();
3462
3463 let (in_send, input) = node.sim_input::<_, NoOrder, _>();
3464
3465 let (complete_cycle_back, cycle_back) =
3466 node.forward_ref::<super::KeyedStream<_, _, _, _, NoOrder>>();
3467 let ordered = input
3468 .into_keyed()
3469 .merge_unordered(cycle_back)
3470 .assume_ordering::<TotalOrder>(nondet!(/** test */));
3471
3472 // Cycle back: when we see (1, 10), emit (2, 100) to key 2
3473 complete_cycle_back.complete(
3474 ordered
3475 .clone()
3476 .filter(q!(|v| *v == 10))
3477 .map(q!(|_| 100))
3478 .entries()
3479 .map(q!(|(_, v)| (2, v))) // Change key from 1 to 2
3480 .send(&node2, TCP.fail_stop().bincode())
3481 .send(&node, TCP.fail_stop().bincode())
3482 .into_keyed(),
3483 );
3484
3485 let out_recv = ordered
3486 .fold_early_stop(
3487 q!(|| Vec::new()),
3488 q!(|acc, v| {
3489 acc.push(v);
3490 acc.len() >= 2
3491 }),
3492 )
3493 .entries()
3494 .sim_output();
3495
3496 // We want to see an instance where:
3497 // - (1, 10) is released first
3498 // - This causes (2, 100) to be cycled back
3499 // - (2, 100) is released BEFORE (2, 20) which was already pending
3500 let mut saw_cross_key_interleave = false;
3501 let instance_count = flow.sim().exhaustive(async || {
3502 // Send (1, 10), (1, 11) for key 1, and (2, 20), (2, 21) for key 2
3503 in_send.send_many_unordered([(1, 10), (1, 11), (2, 20), (2, 21)]);
3504 let out: HashMap<_, _> = out_recv
3505 .collect_sorted::<Vec<_>>()
3506 .await
3507 .into_iter()
3508 .collect();
3509
3510 // Check if we see the cross-key interleaving:
3511 // key 2 should have [100, 20] or [100, 21] - cycled back 100 before a pending item
3512 if let Some(values) = out.get(&2)
3513 && values.len() >= 2
3514 && values[0] == 100
3515 {
3516 saw_cross_key_interleave = true;
3517 }
3518 });
3519
3520 assert!(
3521 saw_cross_key_interleave,
3522 "did not see an instance where cycled-back 100 was released before pending items for key 2"
3523 );
3524 assert_eq!(instance_count, 60);
3525 }
3526
3527 #[cfg(feature = "sim")]
3528 #[test]
3529 fn sim_top_level_assume_ordering_cycle_back_tick() {
3530 use std::collections::HashMap;
3531
3532 let mut flow = FlowBuilder::new();
3533 let node = flow.process::<()>();
3534 let node2 = flow.process::<()>();
3535
3536 let (in_send, input) = node.sim_input::<_, NoOrder, _>();
3537
3538 let (complete_cycle_back, cycle_back) =
3539 node.forward_ref::<super::KeyedStream<_, _, _, _, NoOrder>>();
3540 let ordered = input
3541 .into_keyed()
3542 .merge_unordered(cycle_back)
3543 .assume_ordering::<TotalOrder>(nondet!(/** test */));
3544 complete_cycle_back.complete(
3545 ordered
3546 .clone()
3547 .batch(&node.tick(), nondet!(/** test */))
3548 .all_ticks()
3549 .map(q!(|v| v + 1))
3550 .filter(q!(|v| v % 2 == 1))
3551 .entries()
3552 .send(&node2, TCP.fail_stop().bincode())
3553 .send(&node, TCP.fail_stop().bincode())
3554 .into_keyed(),
3555 );
3556
3557 let out_recv = ordered
3558 .fold_early_stop(
3559 q!(|| Vec::new()),
3560 q!(|acc, v| {
3561 acc.push(v);
3562 acc.len() >= 2
3563 }),
3564 )
3565 .entries()
3566 .sim_output();
3567
3568 let mut saw = false;
3569 let instance_count = flow.sim().exhaustive(async || {
3570 in_send.send_many_unordered([(1, 0), (1, 2)]);
3571 let out: HashMap<_, _> = out_recv
3572 .collect_sorted::<Vec<_>>()
3573 .await
3574 .into_iter()
3575 .collect();
3576
3577 if let Some(values) = out.get(&1)
3578 && *values == vec![0, 1]
3579 {
3580 saw = true;
3581 }
3582 });
3583
3584 assert!(
3585 saw,
3586 "did not see an instance with key 1 having [0, 1] in order"
3587 );
3588 assert_eq!(instance_count, 58);
3589 }
3590
3591 #[cfg(feature = "sim")]
3592 #[test]
3593 fn sim_entries_partially_ordered_bounded() {
3594 let mut flow = FlowBuilder::new();
3595 let node = flow.process::<()>();
3596
3597 let (port, input) = node.sim_input::<_, TotalOrder, _>();
3598
3599 let tick = node.tick();
3600 let batch = input.into_keyed().batch(&tick, nondet!(/** test */));
3601 let out_recv = batch
3602 .entries_partially_ordered(nondet!(/** test */))
3603 .all_ticks()
3604 .sim_output();
3605
3606 let instance_count = flow.sim().exhaustive(async || {
3607 port.send((1, 'a'));
3608 port.send((1, 'b'));
3609 port.send((2, 'c'));
3610 let _: Vec<(i32, char)> = out_recv.collect().await;
3611 });
3612
3613 assert_eq!(instance_count, 12);
3614 }
3615
3616 #[cfg(feature = "sim")]
3617 #[test]
3618 fn sim_entries_partially_ordered_top_level() {
3619 let mut flow = FlowBuilder::new();
3620 let node = flow.process::<()>();
3621
3622 let (in_send, input) = node.sim_input::<_, TotalOrder, _>();
3623
3624 let out_recv = input
3625 .into_keyed()
3626 .entries_partially_ordered(nondet!(/** test */))
3627 .sim_output();
3628
3629 let instance_count = flow.sim().exhaustive(async || {
3630 in_send.send((1, 'a'));
3631 in_send.send((1, 'b'));
3632 in_send.send((2, 'c'));
3633 let _: Vec<(i32, char)> = out_recv.collect().await;
3634 });
3635
3636 assert_eq!(instance_count, 3);
3637 }
3638
3639 #[cfg(feature = "sim")]
3640 #[test]
3641 fn sim_entries_partially_ordered_cycle_back() {
3642 let mut flow = FlowBuilder::new();
3643 let node = flow.process::<()>();
3644 let node2 = flow.process::<()>();
3645
3646 let (in_send, input) = node.sim_input::<_, NoOrder, _>();
3647
3648 let (complete_cycle_back, cycle_back) =
3649 node.forward_ref::<super::KeyedStream<_, _, _, _, NoOrder>>();
3650 let ordered = input
3651 .into_keyed()
3652 .merge_unordered(cycle_back)
3653 .assume_ordering::<TotalOrder>(nondet!(/** test */));
3654
3655 let flat = ordered
3656 .clone()
3657 .entries_partially_ordered(nondet!(/** test */));
3658
3659 complete_cycle_back.complete(
3660 flat.clone()
3661 .map(q!(|(k, v): (i32, i32)| (k, v + 1)))
3662 .filter(q!(|(_, v)| *v % 2 == 1))
3663 .send(&node2, TCP.fail_stop().bincode())
3664 .send(&node, TCP.fail_stop().bincode())
3665 .into_keyed(),
3666 );
3667
3668 let out_recv = flat.sim_output();
3669
3670 let mut saw = false;
3671 let instance_count = flow.sim().exhaustive(async || {
3672 // Send (1, 0) and (1, 2). 0+1=1 is odd so cycles back as (1, 1).
3673 // We want to see (1, 1) before (1, 2) - the cycled back value beats the pending one
3674 in_send.send_many_unordered([(1, 0), (1, 2)]);
3675 let results: Vec<(i32, i32)> = out_recv.collect().await;
3676
3677 let pos_1 = results.iter().position(|v| *v == (1, 1));
3678 let pos_2 = results.iter().position(|v| *v == (1, 2));
3679 if let (Some(p1), Some(p2)) = (pos_1, pos_2)
3680 && p1 < p2
3681 {
3682 saw = true;
3683 }
3684 });
3685
3686 assert!(saw, "did not see an instance with (1, 1) before (1, 2)");
3687 assert_eq!(instance_count, 78);
3688 }
3689}