1#![warn(missing_docs)]
2
3extern crate proc_macro;
4
5use std::collections::{BTreeMap, BTreeSet};
6use std::fmt::Debug;
7use std::iter::FusedIterator;
8
9use itertools::Itertools;
10use proc_macro2::{Ident, Literal, Span, TokenStream};
11use quote::{ToTokens, format_ident, quote, quote_spanned};
12use serde::{Deserialize, Serialize};
13use slotmap::{Key, SecondaryMap, SlotMap, SparseSecondaryMap};
14use syn::spanned::Spanned;
15
16use super::graph_write::{Dot, GraphWrite, Mermaid};
17use super::ops::{
18 DelayType, OPERATORS, OperatorWriteOutput, WriteContextArgs, find_op_op_constraints,
19 null_write_iterator_fn,
20};
21use super::{
22 CONTEXT, Color, DiMulGraph, GRAPH, GraphEdgeId, GraphLoopId, GraphNode, GraphNodeId,
23 GraphSubgraphId, HANDOFF_NODE_STR, MODULE_BOUNDARY_NODE_STR, OperatorInstance, PortIndexValue,
24 Varname, change_spans, get_operator_generics,
25};
26use crate::diagnostic::{Diagnostic, Diagnostics, Level};
27use crate::pretty_span::{PrettyRowCol, PrettySpan};
28use crate::process_singletons;
29
30#[derive(Default, Debug, Serialize, Deserialize)]
40pub struct DfirGraph {
41 nodes: SlotMap<GraphNodeId, GraphNode>,
43
44 #[serde(skip)]
47 operator_instances: SecondaryMap<GraphNodeId, OperatorInstance>,
48 operator_tag: SecondaryMap<GraphNodeId, String>,
50 graph: DiMulGraph<GraphNodeId, GraphEdgeId>,
52 ports: SecondaryMap<GraphEdgeId, (PortIndexValue, PortIndexValue)>,
54
55 node_loops: SecondaryMap<GraphNodeId, GraphLoopId>,
57 loop_nodes: SlotMap<GraphLoopId, Vec<GraphNodeId>>,
59 loop_parent: SparseSecondaryMap<GraphLoopId, GraphLoopId>,
61 root_loops: Vec<GraphLoopId>,
63 loop_children: SecondaryMap<GraphLoopId, Vec<GraphLoopId>>,
65
66 node_subgraph: SecondaryMap<GraphNodeId, GraphSubgraphId>,
68
69 subgraph_nodes: SlotMap<GraphSubgraphId, Vec<GraphNodeId>>,
71
72 node_singleton_references: SparseSecondaryMap<GraphNodeId, Vec<Option<GraphNodeId>>>,
74 node_varnames: SparseSecondaryMap<GraphNodeId, Varname>,
76
77 handoff_delay_type: SparseSecondaryMap<GraphNodeId, DelayType>,
81}
82
83impl DfirGraph {
85 pub fn new() -> Self {
87 Default::default()
88 }
89}
90
91impl DfirGraph {
93 pub fn node(&self, node_id: GraphNodeId) -> &GraphNode {
95 self.nodes.get(node_id).expect("Node not found.")
96 }
97
98 pub fn node_op_inst(&self, node_id: GraphNodeId) -> Option<&OperatorInstance> {
103 self.operator_instances.get(node_id)
104 }
105
106 pub fn node_varname(&self, node_id: GraphNodeId) -> Option<&Varname> {
108 self.node_varnames.get(node_id)
109 }
110
111 pub fn node_subgraph(&self, node_id: GraphNodeId) -> Option<GraphSubgraphId> {
113 self.node_subgraph.get(node_id).copied()
114 }
115
116 pub fn node_degree_in(&self, node_id: GraphNodeId) -> usize {
118 self.graph.degree_in(node_id)
119 }
120
121 pub fn node_degree_out(&self, node_id: GraphNodeId) -> usize {
123 self.graph.degree_out(node_id)
124 }
125
126 pub fn node_successors(
128 &self,
129 src: GraphNodeId,
130 ) -> impl '_
131 + DoubleEndedIterator<Item = (GraphEdgeId, GraphNodeId)>
132 + ExactSizeIterator
133 + FusedIterator
134 + Clone
135 + Debug {
136 self.graph.successors(src)
137 }
138
139 pub fn node_predecessors(
141 &self,
142 dst: GraphNodeId,
143 ) -> impl '_
144 + DoubleEndedIterator<Item = (GraphEdgeId, GraphNodeId)>
145 + ExactSizeIterator
146 + FusedIterator
147 + Clone
148 + Debug {
149 self.graph.predecessors(dst)
150 }
151
152 pub fn node_successor_edges(
154 &self,
155 src: GraphNodeId,
156 ) -> impl '_
157 + DoubleEndedIterator<Item = GraphEdgeId>
158 + ExactSizeIterator
159 + FusedIterator
160 + Clone
161 + Debug {
162 self.graph.successor_edges(src)
163 }
164
165 pub fn node_predecessor_edges(
167 &self,
168 dst: GraphNodeId,
169 ) -> impl '_
170 + DoubleEndedIterator<Item = GraphEdgeId>
171 + ExactSizeIterator
172 + FusedIterator
173 + Clone
174 + Debug {
175 self.graph.predecessor_edges(dst)
176 }
177
178 pub fn node_successor_nodes(
180 &self,
181 src: GraphNodeId,
182 ) -> impl '_
183 + DoubleEndedIterator<Item = GraphNodeId>
184 + ExactSizeIterator
185 + FusedIterator
186 + Clone
187 + Debug {
188 self.graph.successor_vertices(src)
189 }
190
191 pub fn node_predecessor_nodes(
193 &self,
194 dst: GraphNodeId,
195 ) -> impl '_
196 + DoubleEndedIterator<Item = GraphNodeId>
197 + ExactSizeIterator
198 + FusedIterator
199 + Clone
200 + Debug {
201 self.graph.predecessor_vertices(dst)
202 }
203
204 pub fn node_ids(&self) -> slotmap::basic::Keys<'_, GraphNodeId, GraphNode> {
206 self.nodes.keys()
207 }
208
209 pub fn nodes(&self) -> slotmap::basic::Iter<'_, GraphNodeId, GraphNode> {
211 self.nodes.iter()
212 }
213
214 pub fn insert_node(
216 &mut self,
217 node: GraphNode,
218 varname_opt: Option<Ident>,
219 loop_opt: Option<GraphLoopId>,
220 ) -> GraphNodeId {
221 let node_id = self.nodes.insert(node);
222 if let Some(varname) = varname_opt {
223 self.node_varnames.insert(node_id, Varname(varname));
224 }
225 if let Some(loop_id) = loop_opt {
226 self.node_loops.insert(node_id, loop_id);
227 self.loop_nodes[loop_id].push(node_id);
228 }
229 node_id
230 }
231
232 pub fn insert_node_op_inst(&mut self, node_id: GraphNodeId, op_inst: OperatorInstance) {
234 assert!(matches!(
235 self.nodes.get(node_id),
236 Some(GraphNode::Operator(_))
237 ));
238 let old_inst = self.operator_instances.insert(node_id, op_inst);
239 assert!(old_inst.is_none());
240 }
241
242 pub fn insert_node_op_insts_all(&mut self, diagnostics: &mut Diagnostics) {
244 let mut op_insts = Vec::new();
245 for (node_id, node) in self.nodes() {
246 let GraphNode::Operator(operator) = node else {
247 continue;
248 };
249 if self.node_op_inst(node_id).is_some() {
250 continue;
251 };
252
253 let Some(op_constraints) = find_op_op_constraints(operator) else {
255 diagnostics.push(Diagnostic::spanned(
256 operator.path.span(),
257 Level::Error,
258 format!("Unknown operator `{}`", operator.name_string()),
259 ));
260 continue;
261 };
262
263 let (input_ports, output_ports) = {
265 let mut input_edges: Vec<(&PortIndexValue, GraphNodeId)> = self
266 .node_predecessors(node_id)
267 .map(|(edge_id, pred_id)| (self.edge_ports(edge_id).1, pred_id))
268 .collect();
269 input_edges.sort();
271 let input_ports: Vec<PortIndexValue> = input_edges
272 .into_iter()
273 .map(|(port, _pred)| port)
274 .cloned()
275 .collect();
276
277 let mut output_edges: Vec<(&PortIndexValue, GraphNodeId)> = self
279 .node_successors(node_id)
280 .map(|(edge_id, succ)| (self.edge_ports(edge_id).0, succ))
281 .collect();
282 output_edges.sort();
284 let output_ports: Vec<PortIndexValue> = output_edges
285 .into_iter()
286 .map(|(port, _succ)| port)
287 .cloned()
288 .collect();
289
290 (input_ports, output_ports)
291 };
292
293 let generics = get_operator_generics(diagnostics, operator);
295 {
297 let generics_span = generics
299 .generic_args
300 .as_ref()
301 .map(Spanned::span)
302 .unwrap_or_else(|| operator.path.span());
303
304 if !op_constraints
305 .persistence_args
306 .contains(&generics.persistence_args.len())
307 {
308 diagnostics.push(Diagnostic::spanned(
309 generics.persistence_args_span().unwrap_or(generics_span),
310 Level::Error,
311 format!(
312 "`{}` should have {} persistence lifetime arguments, actually has {}.",
313 op_constraints.name,
314 op_constraints.persistence_args.human_string(),
315 generics.persistence_args.len()
316 ),
317 ));
318 }
319 if !op_constraints.type_args.contains(&generics.type_args.len()) {
320 diagnostics.push(Diagnostic::spanned(
321 generics.type_args_span().unwrap_or(generics_span),
322 Level::Error,
323 format!(
324 "`{}` should have {} generic type arguments, actually has {}.",
325 op_constraints.name,
326 op_constraints.type_args.human_string(),
327 generics.type_args.len()
328 ),
329 ));
330 }
331 }
332
333 op_insts.push((
334 node_id,
335 OperatorInstance {
336 op_constraints,
337 input_ports,
338 output_ports,
339 singletons_referenced: operator.singletons_referenced.clone(),
340 generics,
341 arguments_pre: operator.args.clone(),
342 arguments_raw: operator.args_raw.clone(),
343 },
344 ));
345 }
346
347 for (node_id, op_inst) in op_insts {
348 self.insert_node_op_inst(node_id, op_inst);
349 }
350 }
351
352 pub fn insert_intermediate_node(
364 &mut self,
365 edge_id: GraphEdgeId,
366 new_node: GraphNode,
367 ) -> (GraphNodeId, GraphEdgeId) {
368 let span = Some(new_node.span());
369
370 let op_inst_opt = 'oc: {
372 let GraphNode::Operator(operator) = &new_node else {
373 break 'oc None;
374 };
375 let Some(op_constraints) = find_op_op_constraints(operator) else {
376 break 'oc None;
377 };
378 let (input_port, output_port) = self.ports.get(edge_id).cloned().unwrap();
379
380 let mut dummy_diagnostics = Diagnostics::new();
381 let generics = get_operator_generics(&mut dummy_diagnostics, operator);
382 assert!(dummy_diagnostics.is_empty());
383
384 Some(OperatorInstance {
385 op_constraints,
386 input_ports: vec![input_port],
387 output_ports: vec![output_port],
388 singletons_referenced: operator.singletons_referenced.clone(),
389 generics,
390 arguments_pre: operator.args.clone(),
391 arguments_raw: operator.args_raw.clone(),
392 })
393 };
394
395 let node_id = self.nodes.insert(new_node);
397 if let Some(op_inst) = op_inst_opt {
399 self.operator_instances.insert(node_id, op_inst);
400 }
401 let (e0, e1) = self
403 .graph
404 .insert_intermediate_vertex(node_id, edge_id)
405 .unwrap();
406
407 let (src_idx, dst_idx) = self.ports.remove(edge_id).unwrap();
409 self.ports
410 .insert(e0, (src_idx, PortIndexValue::Elided(span)));
411 self.ports
412 .insert(e1, (PortIndexValue::Elided(span), dst_idx));
413
414 (node_id, e1)
415 }
416
417 pub fn remove_intermediate_node(&mut self, node_id: GraphNodeId) {
420 assert_eq!(
421 1,
422 self.node_degree_in(node_id),
423 "Removed intermediate node must have one predecessor"
424 );
425 assert_eq!(
426 1,
427 self.node_degree_out(node_id),
428 "Removed intermediate node must have one successor"
429 );
430 assert!(
431 self.node_subgraph.is_empty() && self.subgraph_nodes.is_empty(),
432 "Should not remove intermediate node after subgraph partitioning"
433 );
434
435 assert!(self.nodes.remove(node_id).is_some());
436 let (new_edge_id, (pred_edge_id, succ_edge_id)) =
437 self.graph.remove_intermediate_vertex(node_id).unwrap();
438 self.operator_instances.remove(node_id);
439 self.node_varnames.remove(node_id);
440
441 let (src_port, _) = self.ports.remove(pred_edge_id).unwrap();
442 let (_, dst_port) = self.ports.remove(succ_edge_id).unwrap();
443 self.ports.insert(new_edge_id, (src_port, dst_port));
444 }
445
446 pub(crate) fn node_color(&self, node_id: GraphNodeId) -> Option<Color> {
452 if matches!(self.node(node_id), GraphNode::Handoff { .. }) {
453 return Some(Color::Hoff);
454 }
455
456 if let GraphNode::Operator(op) = self.node(node_id)
458 && (op.name_string() == "resolve_futures_blocking"
459 || op.name_string() == "resolve_futures_blocking_ordered")
460 {
461 return Some(Color::Push);
462 }
463
464 let inn_degree = self.node_predecessor_nodes(node_id).len();
466 let out_degree = self.node_successor_nodes(node_id).len();
468
469 match (inn_degree, out_degree) {
470 (0, 0) => None, (0, 1) => Some(Color::Pull),
472 (1, 0) => Some(Color::Push),
473 (1, 1) => None, (_many, 0 | 1) => Some(Color::Pull),
475 (0 | 1, _many) => Some(Color::Push),
476 (_many, _to_many) => Some(Color::Comp),
477 }
478 }
479
480 pub fn set_operator_tag(&mut self, node_id: GraphNodeId, tag: String) {
482 self.operator_tag.insert(node_id, tag);
483 }
484}
485
486impl DfirGraph {
488 pub fn set_node_singleton_references(
491 &mut self,
492 node_id: GraphNodeId,
493 singletons_referenced: Vec<Option<GraphNodeId>>,
494 ) -> Option<Vec<Option<GraphNodeId>>> {
495 self.node_singleton_references
496 .insert(node_id, singletons_referenced)
497 }
498
499 pub fn node_singleton_references(&self, node_id: GraphNodeId) -> &[Option<GraphNodeId>] {
502 self.node_singleton_references
503 .get(node_id)
504 .map(std::ops::Deref::deref)
505 .unwrap_or_default()
506 }
507}
508
509impl DfirGraph {
511 pub fn merge_modules(&mut self) -> Result<(), Diagnostic> {
519 let mod_bound_nodes = self
520 .nodes()
521 .filter(|(_nid, node)| matches!(node, GraphNode::ModuleBoundary { .. }))
522 .map(|(nid, _node)| nid)
523 .collect::<Vec<_>>();
524
525 for mod_bound_node in mod_bound_nodes {
526 self.remove_module_boundary(mod_bound_node)?;
527 }
528
529 Ok(())
530 }
531
532 fn remove_module_boundary(&mut self, mod_bound_node: GraphNodeId) -> Result<(), Diagnostic> {
536 assert!(
537 self.node_subgraph.is_empty() && self.subgraph_nodes.is_empty(),
538 "Should not remove intermediate node after subgraph partitioning"
539 );
540
541 let mut mod_pred_ports = BTreeMap::new();
542 let mut mod_succ_ports = BTreeMap::new();
543
544 for mod_out_edge in self.node_predecessor_edges(mod_bound_node) {
545 let (pred_port, succ_port) = self.edge_ports(mod_out_edge);
546 mod_pred_ports.insert(succ_port.clone(), (mod_out_edge, pred_port.clone()));
547 }
548
549 for mod_inn_edge in self.node_successor_edges(mod_bound_node) {
550 let (pred_port, succ_port) = self.edge_ports(mod_inn_edge);
551 mod_succ_ports.insert(pred_port.clone(), (mod_inn_edge, succ_port.clone()));
552 }
553
554 if mod_pred_ports.keys().collect::<BTreeSet<_>>()
555 != mod_succ_ports.keys().collect::<BTreeSet<_>>()
556 {
557 let GraphNode::ModuleBoundary { input, import_expr } = self.node(mod_bound_node) else {
559 panic!();
560 };
561
562 if *input {
563 return Err(Diagnostic {
564 span: *import_expr,
565 level: Level::Error,
566 message: format!(
567 "The ports into the module did not match. input: {:?}, expected: {:?}",
568 mod_pred_ports.keys().map(|x| x.to_string()).join(", "),
569 mod_succ_ports.keys().map(|x| x.to_string()).join(", ")
570 ),
571 });
572 } else {
573 return Err(Diagnostic {
574 span: *import_expr,
575 level: Level::Error,
576 message: format!(
577 "The ports out of the module did not match. output: {:?}, expected: {:?}",
578 mod_succ_ports.keys().map(|x| x.to_string()).join(", "),
579 mod_pred_ports.keys().map(|x| x.to_string()).join(", "),
580 ),
581 });
582 }
583 }
584
585 for (port, (pred_edge, pred_port)) in mod_pred_ports {
586 let (succ_edge, succ_port) = mod_succ_ports.remove(&port).unwrap();
587
588 let (src, _) = self.edge(pred_edge);
589 let (_, dst) = self.edge(succ_edge);
590 self.remove_edge(pred_edge);
591 self.remove_edge(succ_edge);
592
593 let new_edge_id = self.graph.insert_edge(src, dst);
594 self.ports.insert(new_edge_id, (pred_port, succ_port));
595 }
596
597 self.graph.remove_vertex(mod_bound_node);
598 self.nodes.remove(mod_bound_node);
599
600 Ok(())
601 }
602}
603
604impl DfirGraph {
606 pub fn edge(&self, edge_id: GraphEdgeId) -> (GraphNodeId, GraphNodeId) {
608 let (src, dst) = self.graph.edge(edge_id).expect("Edge not found.");
609 (src, dst)
610 }
611
612 pub fn edge_ports(&self, edge_id: GraphEdgeId) -> (&PortIndexValue, &PortIndexValue) {
614 let (src_port, dst_port) = self.ports.get(edge_id).expect("Edge not found.");
615 (src_port, dst_port)
616 }
617
618 pub fn edge_ids(&self) -> slotmap::basic::Keys<'_, GraphEdgeId, (GraphNodeId, GraphNodeId)> {
620 self.graph.edge_ids()
621 }
622
623 pub fn edges(
625 &self,
626 ) -> impl '_
627 + ExactSizeIterator<Item = (GraphEdgeId, (GraphNodeId, GraphNodeId))>
628 + FusedIterator
629 + Clone
630 + Debug {
631 self.graph.edges()
632 }
633
634 pub fn insert_edge(
636 &mut self,
637 src: GraphNodeId,
638 src_port: PortIndexValue,
639 dst: GraphNodeId,
640 dst_port: PortIndexValue,
641 ) -> GraphEdgeId {
642 let edge_id = self.graph.insert_edge(src, dst);
643 self.ports.insert(edge_id, (src_port, dst_port));
644 edge_id
645 }
646
647 pub fn remove_edge(&mut self, edge: GraphEdgeId) {
649 let (_src, _dst) = self.graph.remove_edge(edge).unwrap();
650 let (_src_port, _dst_port) = self.ports.remove(edge).unwrap();
651 }
652}
653
654impl DfirGraph {
656 pub fn subgraph(&self, subgraph_id: GraphSubgraphId) -> &Vec<GraphNodeId> {
658 self.subgraph_nodes
659 .get(subgraph_id)
660 .expect("Subgraph not found.")
661 }
662
663 pub fn subgraph_ids(&self) -> slotmap::basic::Keys<'_, GraphSubgraphId, Vec<GraphNodeId>> {
665 self.subgraph_nodes.keys()
666 }
667
668 pub fn subgraphs(&self) -> slotmap::basic::Iter<'_, GraphSubgraphId, Vec<GraphNodeId>> {
670 self.subgraph_nodes.iter()
671 }
672
673 pub fn insert_subgraph(
675 &mut self,
676 node_ids: Vec<GraphNodeId>,
677 ) -> Result<GraphSubgraphId, (GraphNodeId, GraphSubgraphId)> {
678 for &node_id in node_ids.iter() {
680 if let Some(&old_sg_id) = self.node_subgraph.get(node_id) {
681 return Err((node_id, old_sg_id));
682 }
683 }
684 let subgraph_id = self.subgraph_nodes.insert_with_key(|sg_id| {
685 for &node_id in node_ids.iter() {
686 self.node_subgraph.insert(node_id, sg_id);
687 }
688 node_ids
689 });
690
691 Ok(subgraph_id)
692 }
693
694 pub fn remove_from_subgraph(&mut self, node_id: GraphNodeId) -> bool {
696 if let Some(old_sg_id) = self.node_subgraph.remove(node_id) {
697 self.subgraph_nodes[old_sg_id].retain(|&other_node_id| other_node_id != node_id);
698 true
699 } else {
700 false
701 }
702 }
703
704 pub fn handoff_delay_type(&self, node_id: GraphNodeId) -> Option<DelayType> {
706 self.handoff_delay_type.get(node_id).copied()
707 }
708
709 pub fn set_handoff_delay_type(&mut self, node_id: GraphNodeId, delay_type: DelayType) {
711 self.handoff_delay_type.insert(node_id, delay_type);
712 }
713
714 fn find_pull_to_push_idx(&self, subgraph_nodes: &[GraphNodeId]) -> usize {
716 subgraph_nodes
717 .iter()
718 .position(|&node_id| {
719 self.node_color(node_id)
720 .is_some_and(|color| Color::Pull != color)
721 })
722 .unwrap_or(subgraph_nodes.len())
723 }
724}
725
726impl DfirGraph {
728 fn node_as_ident(&self, node_id: GraphNodeId, is_pred: bool) -> Ident {
730 let name = match &self.nodes[node_id] {
731 GraphNode::Operator(_) => format!("op_{:?}", node_id.data()),
732 GraphNode::Handoff { .. } => format!(
733 "hoff_{:?}_{}",
734 node_id.data(),
735 if is_pred { "recv" } else { "send" }
736 ),
737 GraphNode::ModuleBoundary { .. } => panic!(),
738 };
739 let span = match (is_pred, &self.nodes[node_id]) {
740 (_, GraphNode::Operator(operator)) => operator.span(),
741 (true, &GraphNode::Handoff { src_span, .. }) => src_span,
742 (false, &GraphNode::Handoff { dst_span, .. }) => dst_span,
743 (_, GraphNode::ModuleBoundary { .. }) => panic!(),
744 };
745 Ident::new(&name, span)
746 }
747
748 fn node_as_singleton_ident(&self, node_id: GraphNodeId, span: Span) -> Ident {
750 Ident::new(&format!("singleton_op_{:?}", node_id.data()), span)
751 }
752
753 fn helper_resolve_singletons(&self, node_id: GraphNodeId, span: Span) -> Vec<Ident> {
755 self.node_singleton_references(node_id)
756 .iter()
757 .map(|singleton_node_id| {
758 self.node_as_singleton_ident(
760 singleton_node_id
761 .expect("Expected singleton to be resolved but was not, this is a bug."),
762 span,
763 )
764 })
765 .collect::<Vec<_>>()
766 }
767
768 fn helper_collect_subgraph_handoffs(
771 &self,
772 ) -> SecondaryMap<GraphSubgraphId, (Vec<GraphNodeId>, Vec<GraphNodeId>)> {
773 let mut subgraph_handoffs: SecondaryMap<
775 GraphSubgraphId,
776 (Vec<GraphNodeId>, Vec<GraphNodeId>),
777 > = self
778 .subgraph_nodes
779 .keys()
780 .map(|k| (k, Default::default()))
781 .collect();
782
783 for (hoff_id, node) in self.nodes() {
785 if !matches!(node, GraphNode::Handoff { .. }) {
786 continue;
787 }
788 for (_edge, succ_id) in self.node_successors(hoff_id) {
790 let succ_sg = self.node_subgraph(succ_id).unwrap();
791 subgraph_handoffs[succ_sg].0.push(hoff_id);
792 }
793 for (_edge, pred_id) in self.node_predecessors(hoff_id) {
795 let pred_sg = self.node_subgraph(pred_id).unwrap();
796 subgraph_handoffs[pred_sg].1.push(hoff_id);
797 }
798 }
799
800 subgraph_handoffs
801 }
802
803 pub fn as_code(
819 &self,
820 root: &TokenStream,
821 include_type_guards: bool,
822 prefix: TokenStream,
823 diagnostics: &mut Diagnostics,
824 ) -> Result<TokenStream, Diagnostics> {
825 fn slotmap_raw_idx(key: impl Key) -> usize {
830 (key.data().as_ffi() & 0xFFFF_FFFF) as usize
831 }
832
833 let df = Ident::new(GRAPH, Span::call_site());
834 let context = Ident::new(CONTEXT, Span::call_site());
835
836 let handoff_nodes: Vec<_> = self
838 .nodes
839 .iter()
840 .filter_map(|(node_id, node)| match node {
841 GraphNode::Operator(_) => None,
842 &GraphNode::Handoff { src_span, dst_span } => Some((node_id, (src_span, dst_span))),
843 GraphNode::ModuleBoundary { .. } => panic!(),
844 })
845 .collect();
846
847 let buffer_code: Vec<TokenStream> = handoff_nodes
848 .iter()
849 .map(|&(node_id, (src_span, dst_span))| {
850 let span = src_span.join(dst_span).unwrap_or(src_span);
851 let buf_ident = Ident::new(&format!("hoff_{:?}_buf", node_id.data()), span);
852 quote_spanned! {span=>
853 let mut #buf_ident: Vec<_> = Vec::new();
854 }
855 })
856 .collect();
857
858 let subgraph_handoffs = self.helper_collect_subgraph_handoffs();
860
861 let mut defer_tick_buf_idents: Vec<Ident> = Vec::new();
871 let all_subgraphs = {
872 let mut sg_preds = SecondaryMap::<_, Vec<_>>::with_capacity(self.subgraph_nodes.len());
874 for (hoff_id, node) in self.nodes() {
875 if !matches!(node, GraphNode::Handoff { .. }) {
876 continue;
878 }
879 assert_eq!(1, self.node_successors(hoff_id).len());
880 assert_eq!(1, self.node_predecessors(hoff_id).len());
881 let (_edge_id, pred) = self.node_predecessors(hoff_id).next().unwrap();
882 let (_edge_id, succ) = self.node_successors(hoff_id).next().unwrap();
883 let pred_sg = self.node_subgraph(pred).unwrap();
884 let succ_sg = self.node_subgraph(succ).unwrap();
885 if pred_sg == succ_sg {
886 panic!("bug: unexpected subgraph self-handoff cycle");
887 }
888 if let Some(delay_type) = self.handoff_delay_type(hoff_id) {
889 debug_assert!(matches!(delay_type, DelayType::Tick | DelayType::TickLazy));
890 sg_preds.entry(pred_sg).unwrap().or_default().push(succ_sg);
894
895 if !matches!(delay_type, DelayType::TickLazy) {
897 defer_tick_buf_idents.push(Ident::new(
898 &format!("hoff_{:?}_buf", hoff_id.data()),
899 node.span(),
900 ));
901 }
902 } else {
903 sg_preds.entry(succ_sg).unwrap().or_default().push(pred_sg);
904 }
905 }
906
907 for dst_id in self.node_ids() {
910 for src_ref_id in self
911 .node_singleton_references(dst_id)
912 .iter()
913 .copied()
914 .flatten()
915 {
916 let src_sg = self
917 .node_subgraph(src_ref_id)
918 .expect("bug: singleton ref node must belong to a subgraph");
919 let dst_sg = self
920 .node_subgraph(dst_id)
921 .expect("bug: singleton ref consumer must belong to a subgraph");
922 if src_sg != dst_sg {
923 sg_preds.entry(dst_sg).unwrap().or_default().push(src_sg);
924 }
925 }
926 }
927
928 let topo_sort = super::graph_algorithms::topo_sort(self.subgraph_ids(), |sg_id| {
929 sg_preds.get(sg_id).into_iter().flatten().copied()
930 })
931 .expect("bug: unexpected cycle between subgraphs within the tick");
932
933 topo_sort
934 .into_iter()
935 .map(|sg_id| (sg_id, self.subgraph(sg_id)))
936 .collect::<Vec<_>>()
937 };
938
939 let mut op_prologue_code = Vec::new();
940 let mut op_prologue_after_code = Vec::new();
941 let mut subgraph_blocks = Vec::new();
942 {
943 for &(subgraph_id, subgraph_nodes) in all_subgraphs.iter() {
944 let sg_metrics_idx = slotmap_raw_idx(subgraph_id);
945 let (recv_hoffs, send_hoffs) = &subgraph_handoffs[subgraph_id];
946
947 let recv_port_idents: Vec<Ident> = recv_hoffs
949 .iter()
950 .map(|&hoff_id| self.node_as_ident(hoff_id, true))
951 .collect();
952 let send_port_idents: Vec<Ident> = send_hoffs
953 .iter()
954 .map(|&hoff_id| self.node_as_ident(hoff_id, false))
955 .collect();
956
957 let recv_buf_idents: Vec<Ident> = recv_hoffs
959 .iter()
960 .map(|&hoff_id| {
961 let span = self.nodes[hoff_id].span();
962 Ident::new(&format!("hoff_{:?}_buf", hoff_id.data()), span)
963 })
964 .collect();
965 let send_buf_idents: Vec<Ident> = send_hoffs
966 .iter()
967 .map(|&hoff_id| {
968 let span = self.nodes[hoff_id].span();
969 Ident::new(&format!("hoff_{:?}_buf", hoff_id.data()), span)
970 })
971 .collect();
972
973 let recv_port_code: Vec<TokenStream> = recv_port_idents
976 .iter()
977 .zip(recv_buf_idents.iter())
978 .zip(recv_hoffs.iter())
979 .map(|((port_ident, buf_ident), &hoff_id)| {
980 let hoff_idx = slotmap_raw_idx(hoff_id);
981 let work_done = Ident::new("__dfir_work_done", Span::call_site());
985 let metrics = Ident::new("__dfir_metrics", Span::call_site());
986 quote_spanned! {port_ident.span()=>
987 {
988 let hoff_len = #buf_ident.len();
989 if hoff_len > 0 {
990 #work_done = true;
991 }
992 let hoff_metrics = &#metrics.handoffs[
993 #root::util::slot_vec::Key::<#root::scheduled::HandoffTag>::from_raw(#hoff_idx)
994 ];
995 hoff_metrics.total_items_count.update(|x| x + hoff_len);
996 hoff_metrics.curr_items_count.set(hoff_len);
997 }
998 let #port_ident = #root::dfir_pipes::pull::iter(#buf_ident.drain(..));
999 }
1000 })
1001 .collect();
1002
1003 let send_port_code: Vec<TokenStream> = send_port_idents
1005 .iter()
1006 .zip(send_buf_idents.iter())
1007 .map(|(port_ident, buf_ident)| {
1008 quote_spanned! {port_ident.span()=>
1009 let #port_ident = #root::dfir_pipes::push::vec_push(&mut #buf_ident);
1010 }
1011 })
1012 .collect();
1013
1014 let loop_id = self.node_loop(subgraph_nodes[0]);
1016
1017 let mut subgraph_op_iter_code = Vec::new();
1018 let mut subgraph_op_iter_after_code = Vec::new();
1019 {
1020 let pull_to_push_idx = self.find_pull_to_push_idx(subgraph_nodes);
1021
1022 let (pull_half, push_half) = subgraph_nodes.split_at(pull_to_push_idx);
1023 let nodes_iter = pull_half.iter().chain(push_half.iter().rev());
1024
1025 for (idx, &node_id) in nodes_iter.enumerate() {
1026 let node = &self.nodes[node_id];
1027 assert!(
1028 matches!(node, GraphNode::Operator(_)),
1029 "Handoffs are not part of subgraphs."
1030 );
1031 let op_inst = &self.operator_instances[node_id];
1032
1033 let op_span = node.span();
1034 let op_name = op_inst.op_constraints.name;
1035 let root = change_spans(root.clone(), op_span);
1037 let op_constraints = OPERATORS
1038 .iter()
1039 .find(|op| op_name == op.name)
1040 .unwrap_or_else(|| panic!("Failed to find op: {}", op_name));
1041
1042 let ident = self.node_as_ident(node_id, false);
1043
1044 {
1045 let mut input_edges = self
1048 .graph
1049 .predecessor_edges(node_id)
1050 .map(|edge_id| (self.edge_ports(edge_id).1, edge_id))
1051 .collect::<Vec<_>>();
1052 input_edges.sort();
1054
1055 let inputs = input_edges
1056 .iter()
1057 .map(|&(_port, edge_id)| {
1058 let (pred, _) = self.edge(edge_id);
1059 self.node_as_ident(pred, true)
1060 })
1061 .collect::<Vec<_>>();
1062
1063 let mut output_edges = self
1065 .graph
1066 .successor_edges(node_id)
1067 .map(|edge_id| (&self.ports[edge_id].0, edge_id))
1068 .collect::<Vec<_>>();
1069 output_edges.sort();
1071
1072 let outputs = output_edges
1073 .iter()
1074 .map(|&(_port, edge_id)| {
1075 let (_, succ) = self.edge(edge_id);
1076 self.node_as_ident(succ, false)
1077 })
1078 .collect::<Vec<_>>();
1079
1080 let is_pull = idx < pull_to_push_idx;
1081
1082 let singleton_output_ident = &if op_constraints.has_singleton_output {
1083 self.node_as_singleton_ident(node_id, op_span)
1084 } else {
1085 Ident::new(&format!("{}_has_no_singleton_output", op_name), op_span)
1087 };
1088
1089 let df_local = &Ident::new(GRAPH, op_span.resolved_at(df.span()));
1098 let context = &Ident::new(CONTEXT, op_span.resolved_at(context.span()));
1099
1100 let singletons_resolved =
1101 self.helper_resolve_singletons(node_id, op_span);
1102 let arguments = &process_singletons::postprocess_singletons(
1103 op_inst.arguments_raw.clone(),
1104 singletons_resolved.clone(),
1105 context,
1106 );
1107 let arguments_handles =
1108 &process_singletons::postprocess_singletons_handles(
1109 op_inst.arguments_raw.clone(),
1110 singletons_resolved.clone(),
1111 );
1112
1113 let source_tag = 'a: {
1114 if let Some(tag) = self.operator_tag.get(node_id).cloned() {
1115 break 'a tag;
1116 }
1117
1118 #[cfg(nightly)]
1119 if proc_macro::is_available() {
1120 let op_span = op_span.unwrap();
1121 break 'a format!(
1122 "loc_{}_{}_{}_{}_{}",
1123 crate::pretty_span::make_source_path_relative(
1124 &op_span.file()
1125 )
1126 .display()
1127 .to_string()
1128 .replace(|x: char| !x.is_ascii_alphanumeric(), "_"),
1129 op_span.start().line(),
1130 op_span.start().column(),
1131 op_span.end().line(),
1132 op_span.end().column(),
1133 );
1134 }
1135
1136 format!(
1137 "loc_nopath_{}_{}_{}_{}",
1138 op_span.start().line,
1139 op_span.start().column,
1140 op_span.end().line,
1141 op_span.end().column
1142 )
1143 };
1144
1145 let work_fn = format_ident!(
1146 "{}__{}__{}",
1147 ident,
1148 op_name,
1149 source_tag,
1150 span = op_span
1151 );
1152 let work_fn_async = format_ident!("{}__async", work_fn, span = op_span);
1153
1154 let context_args = WriteContextArgs {
1155 root: &root,
1156 df_ident: df_local,
1157 context,
1158 subgraph_id,
1159 node_id,
1160 loop_id,
1161 op_span,
1162 op_tag: self.operator_tag.get(node_id).cloned(),
1163 work_fn: &work_fn,
1164 work_fn_async: &work_fn_async,
1165 ident: &ident,
1166 is_pull,
1167 inputs: &inputs,
1168 outputs: &outputs,
1169 singleton_output_ident,
1170 op_name,
1171 op_inst,
1172 arguments,
1173 arguments_handles,
1174 };
1175
1176 let write_result =
1177 (op_constraints.write_fn)(&context_args, diagnostics);
1178 let OperatorWriteOutput {
1179 write_prologue,
1180 write_prologue_after,
1181 write_iterator,
1182 write_iterator_after,
1183 } = write_result.unwrap_or_else(|()| {
1184 assert!(
1185 diagnostics.has_error(),
1186 "Operator `{}` returned `Err` but emitted no diagnostics, this is a bug.",
1187 op_name,
1188 );
1189 OperatorWriteOutput {
1190 write_iterator: null_write_iterator_fn(&context_args),
1191 ..Default::default()
1192 }
1193 });
1194
1195 op_prologue_code.push(syn::parse_quote! {
1196 #[allow(non_snake_case)]
1197 #[inline(always)]
1198 fn #work_fn<T>(thunk: impl ::std::ops::FnOnce() -> T) -> T {
1199 thunk()
1200 }
1201
1202 #[allow(non_snake_case)]
1203 #[inline(always)]
1204 async fn #work_fn_async<T>(
1205 thunk: impl ::std::future::Future<Output = T>,
1206 ) -> T {
1207 thunk.await
1208 }
1209 });
1210 op_prologue_code.push(write_prologue);
1211 op_prologue_after_code.push(write_prologue_after);
1212 subgraph_op_iter_code.push(write_iterator);
1213
1214 if include_type_guards {
1215 let type_guard = if is_pull {
1216 quote_spanned! {op_span=>
1217 let #ident = {
1218 #[allow(non_snake_case)]
1219 #[inline(always)]
1220 pub fn #work_fn<Item, Input>(input: Input)
1221 -> impl #root::dfir_pipes::pull::Pull<Item = Item, Meta = (), CanPend = Input::CanPend, CanEnd = Input::CanEnd>
1222 where
1223 Input: #root::dfir_pipes::pull::Pull<Item = Item, Meta = ()>,
1224 {
1225 #root::pin_project_lite::pin_project! {
1226 #[repr(transparent)]
1227 struct Pull<Item, Input: #root::dfir_pipes::pull::Pull<Item = Item>> {
1228 #[pin]
1229 inner: Input
1230 }
1231 }
1232
1233 impl<Item, Input> #root::dfir_pipes::pull::Pull for Pull<Item, Input>
1234 where
1235 Input: #root::dfir_pipes::pull::Pull<Item = Item>,
1236 {
1237 type Ctx<'ctx> = Input::Ctx<'ctx>;
1238
1239 type Item = Item;
1240 type Meta = Input::Meta;
1241 type CanPend = Input::CanPend;
1242 type CanEnd = Input::CanEnd;
1243
1244 #[inline(always)]
1245 fn pull(
1246 self: ::std::pin::Pin<&mut Self>,
1247 ctx: &mut Self::Ctx<'_>,
1248 ) -> #root::dfir_pipes::pull::PullStep<Self::Item, Self::Meta, Self::CanPend, Self::CanEnd> {
1249 #root::dfir_pipes::pull::Pull::pull(self.project().inner, ctx)
1250 }
1251
1252 #[inline(always)]
1253 fn size_hint(&self) -> (usize, Option<usize>) {
1254 #root::dfir_pipes::pull::Pull::size_hint(&self.inner)
1255 }
1256 }
1257
1258 Pull {
1259 inner: input
1260 }
1261 }
1262 #work_fn::<_, _>( #ident )
1263 };
1264 }
1265 } else {
1266 quote_spanned! {op_span=>
1267 let #ident = {
1268 #[allow(non_snake_case)]
1269 #[inline(always)]
1270 pub fn #work_fn<Item, Psh>(psh: Psh) -> impl #root::dfir_pipes::push::Push<Item, (), CanPend = Psh::CanPend>
1271 where
1272 Psh: #root::dfir_pipes::push::Push<Item, ()>
1273 {
1274 #root::pin_project_lite::pin_project! {
1275 #[repr(transparent)]
1276 struct PushGuard<Psh> {
1277 #[pin]
1278 inner: Psh,
1279 }
1280 }
1281
1282 impl<Item, Psh> #root::dfir_pipes::push::Push<Item, ()> for PushGuard<Psh>
1283 where
1284 Psh: #root::dfir_pipes::push::Push<Item, ()>,
1285 {
1286 type Ctx<'ctx> = Psh::Ctx<'ctx>;
1287
1288 type CanPend = Psh::CanPend;
1289
1290 #[inline(always)]
1291 fn poll_ready(
1292 self: ::std::pin::Pin<&mut Self>,
1293 ctx: &mut Self::Ctx<'_>,
1294 ) -> #root::dfir_pipes::push::PushStep<Self::CanPend> {
1295 #root::dfir_pipes::push::Push::poll_ready(self.project().inner, ctx)
1296 }
1297
1298 #[inline(always)]
1299 fn start_send(
1300 self: ::std::pin::Pin<&mut Self>,
1301 item: Item,
1302 meta: (),
1303 ) {
1304 #root::dfir_pipes::push::Push::start_send(self.project().inner, item, meta)
1305 }
1306
1307 #[inline(always)]
1308 fn poll_flush(
1309 self: ::std::pin::Pin<&mut Self>,
1310 ctx: &mut Self::Ctx<'_>,
1311 ) -> #root::dfir_pipes::push::PushStep<Self::CanPend> {
1312 #root::dfir_pipes::push::Push::poll_flush(self.project().inner, ctx)
1313 }
1314
1315 #[inline(always)]
1316 fn size_hint(
1317 self: ::std::pin::Pin<&mut Self>,
1318 hint: (usize, Option<usize>),
1319 ) {
1320 #root::dfir_pipes::push::Push::size_hint(self.project().inner, hint)
1321 }
1322 }
1323
1324 PushGuard {
1325 inner: psh
1326 }
1327 }
1328 #work_fn( #ident )
1329 };
1330 }
1331 };
1332 subgraph_op_iter_code.push(type_guard);
1333 }
1334 subgraph_op_iter_after_code.push(write_iterator_after);
1335 }
1336 }
1337
1338 {
1339 let pull_ident = if 0 < pull_to_push_idx {
1341 self.node_as_ident(subgraph_nodes[pull_to_push_idx - 1], false)
1342 } else {
1343 recv_port_idents[0].clone()
1345 };
1346
1347 #[rustfmt::skip]
1348 let push_ident = if let Some(&node_id) =
1349 subgraph_nodes.get(pull_to_push_idx)
1350 {
1351 self.node_as_ident(node_id, false)
1352 } else if 1 == send_port_idents.len() {
1353 send_port_idents[0].clone()
1355 } else {
1356 diagnostics.push(Diagnostic::spanned(
1357 pull_ident.span(),
1358 Level::Error,
1359 "Degenerate subgraph detected, is there a disconnected `null()` or other degenerate pipeline somewhere?",
1360 ));
1361 continue;
1362 };
1363
1364 let pivot_span = pull_ident
1366 .span()
1367 .join(push_ident.span())
1368 .unwrap_or_else(|| push_ident.span());
1369 let pivot_fn_ident =
1370 Ident::new(&format!("pivot_run_sg_{:?}", subgraph_id.0), pivot_span);
1371 let root = change_spans(root.clone(), pivot_span);
1372 subgraph_op_iter_code.push(quote_spanned! {pivot_span=>
1373 #[inline(always)]
1374 fn #pivot_fn_ident<Pul, Psh, Item>(pull: Pul, push: Psh)
1375 -> impl ::std::future::Future<Output = ()>
1376 where
1377 Pul: #root::dfir_pipes::pull::Pull<Item = Item>,
1378 Psh: #root::dfir_pipes::push::Push<Item, Pul::Meta>,
1379 {
1380 #root::dfir_pipes::pull::Pull::send_push(pull, push)
1381 }
1382 (#pivot_fn_ident)(#pull_ident, #push_ident).await;
1383 });
1384 }
1385 };
1386
1387 let sg_fut_ident = subgraph_id.as_ident(Span::call_site());
1391
1392 let send_metrics_code: Vec<TokenStream> = send_hoffs
1394 .iter()
1395 .zip(send_buf_idents.iter())
1396 .map(|(&hoff_id, buf_ident)| {
1397 let hoff_idx = slotmap_raw_idx(hoff_id);
1398 quote! {
1399 __dfir_metrics.handoffs[
1400 #root::util::slot_vec::Key::<#root::scheduled::HandoffTag>::from_raw(#hoff_idx)
1401 ].curr_items_count.set(#buf_ident.len());
1402 }
1403 })
1404 .collect();
1405
1406 subgraph_blocks.push(quote! {
1407 let #sg_fut_ident = async {
1408 let #context = &#df;
1409 #( #recv_port_code )*
1410 #( #send_port_code )*
1411 #( #subgraph_op_iter_code )*
1412 #( #subgraph_op_iter_after_code )*
1413 };
1414 {
1415 let sg_metrics = &__dfir_metrics.subgraphs[
1416 #root::util::slot_vec::Key::<#root::scheduled::SubgraphTag>::from_raw(#sg_metrics_idx)
1417 ];
1418 #root::scheduled::metrics::InstrumentSubgraph::new(
1419 #sg_fut_ident, sg_metrics
1420 ).await;
1421 sg_metrics.total_run_count.update(|x| x + 1);
1422 }
1423 #( #send_metrics_code )*
1424 });
1425
1426 }
1429 }
1430
1431 if diagnostics.has_error() {
1432 return Err(std::mem::take(diagnostics));
1433 }
1434 let _ = diagnostics; let meta_graph_json = serde_json::to_string(&self).unwrap();
1437 let meta_graph_json = Literal::string(&meta_graph_json);
1438
1439 let serde_diagnostics: Vec<_> = diagnostics.iter().map(Diagnostic::to_serde).collect();
1440 let diagnostics_json = serde_json::to_string(&*serde_diagnostics).unwrap();
1441 let diagnostics_json = Literal::string(&diagnostics_json);
1442
1443 let metrics_init_code = {
1445 let handoff_inits = handoff_nodes.iter().map(|&(node_id, _)| {
1446 let idx = slotmap_raw_idx(node_id);
1447 quote! {
1448 dfir_metrics.handoffs.insert(
1449 #root::util::slot_vec::Key::from_raw(#idx),
1450 ::std::default::Default::default(),
1451 );
1452 }
1453 });
1454 let subgraph_inits = all_subgraphs.iter().map(|&(sg_id, _)| {
1455 let idx = slotmap_raw_idx(sg_id);
1456 quote! {
1457 dfir_metrics.subgraphs.insert(
1458 #root::util::slot_vec::Key::from_raw(#idx),
1459 ::std::default::Default::default(),
1460 );
1461 }
1462 });
1463 handoff_inits.chain(subgraph_inits).collect::<Vec<_>>()
1464 };
1465
1466 Ok(quote! {
1469 {
1470 #prefix
1471
1472 use #root::{var_expr, var_args};
1473
1474 let __dfir_wake_state = ::std::sync::Arc::new(
1475 #root::scheduled::context::WakeState::default()
1476 );
1477
1478 let __dfir_metrics = {
1479 let mut dfir_metrics = #root::scheduled::metrics::DfirMetrics::default();
1480 #( #metrics_init_code )*
1481 ::std::rc::Rc::new(dfir_metrics)
1482 };
1483
1484 #[allow(unused_mut)]
1485 let mut #df = #root::scheduled::context::Context::new(
1486 ::std::clone::Clone::clone(&__dfir_wake_state),
1487 __dfir_metrics,
1488 );
1489
1490 #( #buffer_code )*
1491 #( #op_prologue_code )*
1492 #( #op_prologue_after_code )*
1493
1494 let mut __dfir_work_done = true;
1499 #[allow(unused_qualifications, unused_mut, unused_variables, clippy::await_holding_refcell_ref)]
1500 let __dfir_inline_tick = async move |#df: &mut #root::scheduled::context::Context| {
1501 let __dfir_metrics = #df.metrics();
1502 #( #subgraph_blocks )*
1503
1504 if false #( || !#defer_tick_buf_idents.is_empty() )* {
1510 #df.schedule_subgraph(
1511 #root::scheduled::SubgraphId::from_raw(0),
1512 true,
1513 );
1514 }
1515
1516 #df.__end_tick();
1517 ::std::mem::take(&mut __dfir_work_done)
1518 };
1519 #root::scheduled::context::Dfir::new(
1520 __dfir_inline_tick,
1521 #df,
1522 Some(#meta_graph_json),
1523 Some(#diagnostics_json),
1524 )
1525 }
1526 })
1527 }
1528
1529 pub fn node_color_map(&self) -> SparseSecondaryMap<GraphNodeId, Color> {
1532 let mut node_color_map: SparseSecondaryMap<GraphNodeId, Color> = self
1533 .node_ids()
1534 .filter_map(|node_id| {
1535 let op_color = self.node_color(node_id)?;
1536 Some((node_id, op_color))
1537 })
1538 .collect();
1539
1540 for sg_nodes in self.subgraph_nodes.values() {
1542 let pull_to_push_idx = self.find_pull_to_push_idx(sg_nodes);
1543
1544 for (idx, node_id) in sg_nodes.iter().copied().enumerate() {
1545 let is_pull = idx < pull_to_push_idx;
1546 node_color_map.insert(node_id, if is_pull { Color::Pull } else { Color::Push });
1547 }
1548 }
1549
1550 node_color_map
1551 }
1552
1553 pub fn to_mermaid(&self, write_config: &WriteConfig) -> String {
1555 let mut output = String::new();
1556 self.write_mermaid(&mut output, write_config).unwrap();
1557 output
1558 }
1559
1560 pub fn write_mermaid(
1562 &self,
1563 output: impl std::fmt::Write,
1564 write_config: &WriteConfig,
1565 ) -> std::fmt::Result {
1566 let mut graph_write = Mermaid::new(output);
1567 self.write_graph(&mut graph_write, write_config)
1568 }
1569
1570 pub fn to_dot(&self, write_config: &WriteConfig) -> String {
1572 let mut output = String::new();
1573 let mut graph_write = Dot::new(&mut output);
1574 self.write_graph(&mut graph_write, write_config).unwrap();
1575 output
1576 }
1577
1578 pub fn write_dot(
1580 &self,
1581 output: impl std::fmt::Write,
1582 write_config: &WriteConfig,
1583 ) -> std::fmt::Result {
1584 let mut graph_write = Dot::new(output);
1585 self.write_graph(&mut graph_write, write_config)
1586 }
1587
1588 pub(crate) fn write_graph<W>(
1590 &self,
1591 mut graph_write: W,
1592 write_config: &WriteConfig,
1593 ) -> Result<(), W::Err>
1594 where
1595 W: GraphWrite,
1596 {
1597 fn helper_edge_label(
1598 src_port: &PortIndexValue,
1599 dst_port: &PortIndexValue,
1600 ) -> Option<String> {
1601 let src_label = match src_port {
1602 PortIndexValue::Path(path) => Some(path.to_token_stream().to_string()),
1603 PortIndexValue::Int(index) => Some(index.value.to_string()),
1604 _ => None,
1605 };
1606 let dst_label = match dst_port {
1607 PortIndexValue::Path(path) => Some(path.to_token_stream().to_string()),
1608 PortIndexValue::Int(index) => Some(index.value.to_string()),
1609 _ => None,
1610 };
1611 let label = match (src_label, dst_label) {
1612 (Some(l1), Some(l2)) => Some(format!("{}\n{}", l1, l2)),
1613 (Some(l1), None) => Some(l1),
1614 (None, Some(l2)) => Some(l2),
1615 (None, None) => None,
1616 };
1617 label
1618 }
1619
1620 let node_color_map = self.node_color_map();
1622
1623 graph_write.write_prologue()?;
1625
1626 let mut skipped_handoffs = BTreeSet::new();
1628 let mut subgraph_handoffs = <BTreeMap<GraphSubgraphId, Vec<GraphNodeId>>>::new();
1629 for (node_id, node) in self.nodes() {
1630 if matches!(node, GraphNode::Handoff { .. }) {
1631 if write_config.no_handoffs {
1632 skipped_handoffs.insert(node_id);
1633 continue;
1634 } else {
1635 let pred_node = self.node_predecessor_nodes(node_id).next().unwrap();
1636 let pred_sg = self.node_subgraph(pred_node);
1637 let succ_node = self.node_successor_nodes(node_id).next().unwrap();
1638 let succ_sg = self.node_subgraph(succ_node);
1639 if let Some((pred_sg, succ_sg)) = pred_sg.zip(succ_sg)
1640 && pred_sg == succ_sg
1641 {
1642 subgraph_handoffs.entry(pred_sg).or_default().push(node_id);
1643 }
1644 }
1645 }
1646 graph_write.write_node_definition(
1647 node_id,
1648 &if write_config.op_short_text {
1649 node.to_name_string()
1650 } else if write_config.op_text_no_imports {
1651 let full_text = node.to_pretty_string();
1653 let mut output = String::new();
1654 for sentence in full_text.split('\n') {
1655 if sentence.trim().starts_with("use") {
1656 continue;
1657 }
1658 output.push('\n');
1659 output.push_str(sentence);
1660 }
1661 output.into()
1662 } else {
1663 node.to_pretty_string()
1664 },
1665 if write_config.no_pull_push {
1666 None
1667 } else {
1668 node_color_map.get(node_id).copied()
1669 },
1670 )?;
1671 }
1672
1673 for (edge_id, (src_id, mut dst_id)) in self.edges() {
1675 if skipped_handoffs.contains(&src_id) {
1677 continue;
1678 }
1679
1680 let (src_port, mut dst_port) = self.edge_ports(edge_id);
1681 if skipped_handoffs.contains(&dst_id) {
1682 let mut handoff_succs = self.node_successors(dst_id);
1683 assert_eq!(1, handoff_succs.len());
1684 let (succ_edge, succ_node) = handoff_succs.next().unwrap();
1685 dst_id = succ_node;
1686 dst_port = self.edge_ports(succ_edge).1;
1687 }
1688
1689 let label = helper_edge_label(src_port, dst_port);
1690 let delay_type = self
1691 .node_op_inst(dst_id)
1692 .and_then(|op_inst| (op_inst.op_constraints.input_delaytype_fn)(dst_port));
1693 graph_write.write_edge(src_id, dst_id, delay_type, label.as_deref(), false)?;
1694 }
1695
1696 if !write_config.no_references {
1698 for dst_id in self.node_ids() {
1699 for src_ref_id in self
1700 .node_singleton_references(dst_id)
1701 .iter()
1702 .copied()
1703 .flatten()
1704 {
1705 let delay_type = Some(DelayType::Stratum);
1706 let label = None;
1707 graph_write.write_edge(src_ref_id, dst_id, delay_type, label, true)?;
1708 }
1709 }
1710 }
1711
1712 let loop_subgraphs = self.subgraph_ids().map(|sg_id| {
1720 let loop_id = if write_config.no_loops {
1721 None
1722 } else {
1723 self.subgraph_loop(sg_id)
1724 };
1725 (loop_id, sg_id)
1726 });
1727 let loop_subgraphs = into_group_map(loop_subgraphs);
1728 for (loop_id, subgraph_ids) in loop_subgraphs {
1729 if let Some(loop_id) = loop_id {
1730 graph_write.write_loop_start(loop_id)?;
1731 }
1732
1733 let subgraph_varnames_nodes = subgraph_ids.into_iter().flat_map(|sg_id| {
1735 self.subgraph(sg_id).iter().copied().map(move |node_id| {
1736 let opt_sg_id = if write_config.no_subgraphs {
1737 None
1738 } else {
1739 Some(sg_id)
1740 };
1741 (opt_sg_id, (self.node_varname(node_id), node_id))
1742 })
1743 });
1744 let subgraph_varnames_nodes = into_group_map(subgraph_varnames_nodes);
1745 for (sg_id, varnames) in subgraph_varnames_nodes {
1746 if let Some(sg_id) = sg_id {
1747 graph_write.write_subgraph_start(sg_id)?;
1748 }
1749
1750 let varname_nodes = varnames.into_iter().map(|(varname, node)| {
1752 let varname = if write_config.no_varnames {
1753 None
1754 } else {
1755 varname
1756 };
1757 (varname, node)
1758 });
1759 let varname_nodes = into_group_map(varname_nodes);
1760 for (varname, node_ids) in varname_nodes {
1761 if let Some(varname) = varname {
1762 graph_write.write_varname_start(&varname.0.to_string(), sg_id)?;
1763 }
1764
1765 for node_id in node_ids {
1767 graph_write.write_node(node_id)?;
1768 }
1769
1770 if varname.is_some() {
1771 graph_write.write_varname_end()?;
1772 }
1773 }
1774
1775 if sg_id.is_some() {
1776 graph_write.write_subgraph_end()?;
1777 }
1778 }
1779
1780 if loop_id.is_some() {
1781 graph_write.write_loop_end()?;
1782 }
1783 }
1784
1785 graph_write.write_epilogue()?;
1787
1788 Ok(())
1789 }
1790
1791 pub fn surface_syntax_string(&self) -> String {
1793 let mut string = String::new();
1794 self.write_surface_syntax(&mut string).unwrap();
1795 string
1796 }
1797
1798 pub fn write_surface_syntax(&self, write: &mut impl std::fmt::Write) -> std::fmt::Result {
1800 for (key, node) in self.nodes.iter() {
1801 match node {
1802 GraphNode::Operator(op) => {
1803 writeln!(write, "{:?} = {};", key.data(), op.to_token_stream())?;
1804 }
1805 GraphNode::Handoff { .. } => {
1806 writeln!(write, "// {:?} = <handoff>;", key.data())?;
1807 }
1808 GraphNode::ModuleBoundary { .. } => panic!(),
1809 }
1810 }
1811 writeln!(write)?;
1812 for (_e, (src_key, dst_key)) in self.graph.edges() {
1813 writeln!(write, "{:?} -> {:?};", src_key.data(), dst_key.data())?;
1814 }
1815 Ok(())
1816 }
1817
1818 pub fn mermaid_string_flat(&self) -> String {
1820 let mut string = String::new();
1821 self.write_mermaid_flat(&mut string).unwrap();
1822 string
1823 }
1824
1825 pub fn write_mermaid_flat(&self, write: &mut impl std::fmt::Write) -> std::fmt::Result {
1827 writeln!(write, "flowchart TB")?;
1828 for (key, node) in self.nodes.iter() {
1829 match node {
1830 GraphNode::Operator(operator) => writeln!(
1831 write,
1832 " %% {span}\n {id:?}[\"{row_col} <tt>{code}</tt>\"]",
1833 span = PrettySpan(node.span()),
1834 id = key.data(),
1835 row_col = PrettyRowCol(node.span()),
1836 code = operator
1837 .to_token_stream()
1838 .to_string()
1839 .replace('&', "&")
1840 .replace('<', "<")
1841 .replace('>', ">")
1842 .replace('"', """)
1843 .replace('\n', "<br>"),
1844 ),
1845 GraphNode::Handoff { .. } => {
1846 writeln!(write, r#" {:?}{{"{}"}}"#, key.data(), HANDOFF_NODE_STR)
1847 }
1848 GraphNode::ModuleBoundary { .. } => {
1849 writeln!(
1850 write,
1851 r#" {:?}{{"{}"}}"#,
1852 key.data(),
1853 MODULE_BOUNDARY_NODE_STR
1854 )
1855 }
1856 }?;
1857 }
1858 writeln!(write)?;
1859 for (_e, (src_key, dst_key)) in self.graph.edges() {
1860 writeln!(write, " {:?}-->{:?}", src_key.data(), dst_key.data())?;
1861 }
1862 Ok(())
1863 }
1864}
1865
1866impl DfirGraph {
1868 pub fn loop_ids(&self) -> slotmap::basic::Keys<'_, GraphLoopId, Vec<GraphNodeId>> {
1870 self.loop_nodes.keys()
1871 }
1872
1873 pub fn loops(&self) -> slotmap::basic::Iter<'_, GraphLoopId, Vec<GraphNodeId>> {
1875 self.loop_nodes.iter()
1876 }
1877
1878 pub fn insert_loop(&mut self, parent_loop: Option<GraphLoopId>) -> GraphLoopId {
1880 let loop_id = self.loop_nodes.insert(Vec::new());
1881 self.loop_children.insert(loop_id, Vec::new());
1882 if let Some(parent_loop) = parent_loop {
1883 self.loop_parent.insert(loop_id, parent_loop);
1884 self.loop_children
1885 .get_mut(parent_loop)
1886 .unwrap()
1887 .push(loop_id);
1888 } else {
1889 self.root_loops.push(loop_id);
1890 }
1891 loop_id
1892 }
1893
1894 pub fn node_loop(&self, node_id: GraphNodeId) -> Option<GraphLoopId> {
1896 self.node_loops.get(node_id).copied()
1897 }
1898
1899 pub fn subgraph_loop(&self, subgraph_id: GraphSubgraphId) -> Option<GraphLoopId> {
1901 let &node_id = self.subgraph(subgraph_id).first().unwrap();
1902 let out = self.node_loop(node_id);
1903 debug_assert!(
1904 self.subgraph(subgraph_id)
1905 .iter()
1906 .all(|&node_id| self.node_loop(node_id) == out),
1907 "Subgraph nodes should all have the same loop context."
1908 );
1909 out
1910 }
1911
1912 pub fn loop_parent(&self, loop_id: GraphLoopId) -> Option<GraphLoopId> {
1914 self.loop_parent.get(loop_id).copied()
1915 }
1916
1917 pub fn loop_children(&self, loop_id: GraphLoopId) -> &Vec<GraphLoopId> {
1919 self.loop_children.get(loop_id).unwrap()
1920 }
1921}
1922
1923#[derive(Clone, Debug, Default)]
1925#[cfg_attr(feature = "clap-derive", derive(clap::Args))]
1926pub struct WriteConfig {
1927 #[cfg_attr(feature = "clap-derive", arg(long))]
1929 pub no_subgraphs: bool,
1930 #[cfg_attr(feature = "clap-derive", arg(long))]
1932 pub no_varnames: bool,
1933 #[cfg_attr(feature = "clap-derive", arg(long))]
1935 pub no_pull_push: bool,
1936 #[cfg_attr(feature = "clap-derive", arg(long))]
1938 pub no_handoffs: bool,
1939 #[cfg_attr(feature = "clap-derive", arg(long))]
1941 pub no_references: bool,
1942 #[cfg_attr(feature = "clap-derive", arg(long))]
1944 pub no_loops: bool,
1945
1946 #[cfg_attr(feature = "clap-derive", arg(long))]
1948 pub op_short_text: bool,
1949 #[cfg_attr(feature = "clap-derive", arg(long))]
1951 pub op_text_no_imports: bool,
1952}
1953
1954#[derive(Copy, Clone, Debug)]
1956#[cfg_attr(feature = "clap-derive", derive(clap::Parser, clap::ValueEnum))]
1957pub enum WriteGraphType {
1958 Mermaid,
1960 Dot,
1962}
1963
1964fn into_group_map<K, V>(iter: impl IntoIterator<Item = (K, V)>) -> BTreeMap<K, Vec<V>>
1966where
1967 K: Ord,
1968{
1969 let mut out: BTreeMap<_, Vec<_>> = BTreeMap::new();
1970 for (k, v) in iter {
1971 out.entry(k).or_default().push(v);
1972 }
1973 out
1974}