22#include "absl/container/flat_hash_set.h"
23#include "absl/strings/str_cat.h"
24#include "absl/strings/str_format.h"
25#include "absl/strings/str_join.h"
49class NoCycle :
public Constraint {
51 NoCycle(Solver*
const s,
const std::vector<IntVar*>& nexts,
54 ~NoCycle()
override {}
56 void InitialPropagate()
override;
57 void NextChange(
int index);
58 void ActiveBound(
int index);
59 void NextBound(
int index);
60 void ComputeSupports();
61 void ComputeSupport(
int index);
62 std::string DebugString()
const override;
64 void Accept(ModelVisitor*
const visitor)
const override {
70 visitor->VisitIntegerArgument(
"assume_paths", assume_paths_);
71 visitor->VisitInt64ToBoolExtension(sink_handler_, -size(), size());
76 int64_t size()
const {
return nexts_.size(); }
78 const std::vector<IntVar*> nexts_;
79 const std::vector<IntVar*> active_;
81 RevArray<int64_t> starts_;
82 RevArray<int64_t> ends_;
83 RevArray<bool> marked_;
84 bool all_nexts_bound_;
85 std::vector<int64_t> outbound_supports_;
86 std::vector<int64_t> support_leaves_;
87 std::vector<int64_t> unsupported_;
89 std::vector<int64_t> sinks_;
93NoCycle::NoCycle(Solver*
const s,
const std::vector<IntVar*>& nexts,
94 const std::vector<IntVar*>& active,
100 starts_(nexts.size(), -1),
101 ends_(nexts.size(), -1),
102 marked_(nexts.size(), false),
103 all_nexts_bound_(false),
104 outbound_supports_(nexts.size(), -1),
105 sink_handler_(
std::move(sink_handler)),
106 assume_paths_(assume_paths) {
107 support_leaves_.reserve(size());
108 unsupported_.reserve(size());
109 for (
int i = 0; i < size(); ++i) {
110 starts_.SetValue(s, i, i);
111 ends_.SetValue(s, i, i);
112 iterators_[i] = nexts_[i]->MakeDomainIterator(
true);
116void NoCycle::InitialPropagate() {
118 for (
int i = 0; i < size(); ++i) {
119 outbound_supports_[i] = -1;
120 IntVar*
next = nexts_[i];
121 for (
int j =
next->Min(); j < 0; ++j) {
122 if (!sink_handler_(j)) {
123 next->RemoveValue(j);
126 for (
int j =
next->Max(); j >= size(); --j) {
127 if (!sink_handler_(j)) {
128 next->RemoveValue(j);
132 solver()->SaveAndSetValue(&all_nexts_bound_,
true);
133 for (
int i = 0; i < size(); ++i) {
134 if (nexts_[i]->Bound()) {
137 solver()->SaveAndSetValue(&all_nexts_bound_,
false);
143void NoCycle::Post() {
144 if (size() == 0)
return;
145 for (
int i = 0; i < size(); ++i) {
146 IntVar*
next = nexts_[i];
148 solver(),
this, &NoCycle::NextChange,
"NextChange", i);
149 next->WhenDomain(support_demon);
151 solver(),
this, &NoCycle::ActiveBound,
"ActiveBound", i);
152 active_[i]->WhenBound(active_demon);
155 int64_t min_min = nexts_[0]->Min();
156 int64_t max_max = nexts_[0]->Max();
157 for (
int i = 1; i < size(); ++i) {
158 const IntVar*
next = nexts_[i];
163 for (
int i = min_min; i <= max_max; ++i) {
164 if (sink_handler_(i)) {
170void NoCycle::NextChange(
int index) {
171 IntVar*
const next_var = nexts_[
index];
172 if (next_var->Bound()) {
175 if (!all_nexts_bound_) {
176 bool all_nexts_bound =
true;
177 for (
int i = 0; i < size(); ++i) {
178 if (!nexts_[i]->Bound()) {
179 all_nexts_bound =
false;
183 solver()->SaveAndSetValue(&all_nexts_bound_, all_nexts_bound);
185 if (all_nexts_bound_) {
188 if (!next_var->Contains(outbound_supports_[
index])) {
189 ComputeSupport(
index);
193void NoCycle::ActiveBound(
int index) {
194 if (nexts_[
index]->Bound()) {
199void NoCycle::NextBound(
int index) {
200 if (active_[
index]->Min() == 0)
return;
201 if (marked_[
index])
return;
202 Solver*
const s = solver();
205 marked_.SetValue(s,
index,
true);
206 const int64_t
next = nexts_[
index]->Value();
207 const int64_t chain_start = starts_[
index];
208 const int64_t chain_end = !sink_handler_(
next) ? ends_[
next] :
next;
209 if (!sink_handler_(chain_start)) {
210 ends_.SetValue(s, chain_start, chain_end);
211 if (!sink_handler_(chain_end)) {
212 starts_.SetValue(s, chain_end, chain_start);
213 nexts_[chain_end]->RemoveValue(chain_start);
214 if (!assume_paths_) {
215 for (
int i = 0; i < size(); ++i) {
217 bool found = (current == chain_end);
220 while (!found && count < size() && !sink_handler_(current) &&
221 nexts_[current]->Bound()) {
222 current = nexts_[current]->Value();
223 found = (current == chain_end);
227 nexts_[chain_end]->RemoveValue(i);
243void NoCycle::ComputeSupports() {
245 unsupported_.clear();
248 support_leaves_.clear();
251 const int sink_size = sinks_.size();
252 for (
int i = 0; i < size(); ++i) {
253 const IntVar*
next = nexts_[i];
255 if (active_[i]->Max() != 0) {
256 const int64_t current_support = outbound_supports_[i];
259 if (current_support >= 0 && sink_handler_(current_support) &&
260 next->Contains(current_support)) {
261 support_leaves_.push_back(i);
265 outbound_supports_[i] = -1;
266 if (sink_size < next->Size()) {
267 for (
int j = 0; j < sink_size; ++j) {
268 if (
next->Contains(sinks_[j])) {
269 outbound_supports_[i] = sinks_[j];
270 support_leaves_.push_back(i);
276 if (sink_handler_(
value)) {
277 outbound_supports_[i] =
value;
278 support_leaves_.push_back(i);
284 if (outbound_supports_[i] == -1) {
285 unsupported_.push_back(i);
292 size_t leaves_begin = 0;
293 size_t leaves_end = support_leaves_.size();
294 while (!unsupported_.empty()) {
296 for (int64_t unsupported_index = 0; unsupported_index < unsupported_.size();
297 ++unsupported_index) {
298 const int64_t unsupported = unsupported_[unsupported_index];
299 const IntVar*
const next = nexts_[unsupported];
300 for (
int i = leaves_begin; i < leaves_end; ++i) {
301 if (
next->Contains(support_leaves_[i])) {
302 outbound_supports_[unsupported] = support_leaves_[i];
303 support_leaves_.push_back(unsupported);
305 unsupported_[unsupported_index] = unsupported_.back();
306 unsupported_.pop_back();
315 if (leaves_end == support_leaves_.size()) {
318 leaves_begin = leaves_end;
319 leaves_end = support_leaves_.size();
322 for (int64_t unsupported_index = 0; unsupported_index < unsupported_.size();
323 ++unsupported_index) {
324 active_[unsupported_[unsupported_index]]->SetMax(0);
328void NoCycle::ComputeSupport(
int index) {
331 if (active_[
index]->Max() != 0) {
333 if (sink_handler_(
next)) {
338 int64_t next_support = outbound_supports_[
next];
339 if (next_support >= 0) {
341 bool ancestor_found =
false;
342 while (next_support < outbound_supports_.size() &&
343 !sink_handler_(next_support)) {
344 if (next_support ==
index) {
345 ancestor_found =
true;
348 next_support = outbound_supports_[next_support];
350 if (!ancestor_found) {
362std::string NoCycle::DebugString()
const {
368class Circuit :
public Constraint {
370 Circuit(Solver*
const s,
const std::vector<IntVar*>& nexts,
bool sub_circuit)
373 size_(nexts_.size()),
378 outbound_support_(size_, -1),
379 inbound_support_(size_, -1),
380 temp_support_(size_, -1),
381 inbound_demon_(nullptr),
382 outbound_demon_(nullptr),
385 sub_circuit_(sub_circuit) {
386 for (
int i = 0; i < size_; ++i) {
387 domains_[i] = nexts_[i]->MakeDomainIterator(
true);
391 ~Circuit()
override {}
393 void Post()
override {
395 solver(),
this, &Circuit::CheckReachabilityToRoot,
396 "CheckReachabilityToRoot");
398 solver(),
this, &Circuit::CheckReachabilityFromRoot,
399 "CheckReachabilityFromRoot");
400 for (
int i = 0; i < size_; ++i) {
401 if (!nexts_[i]->Bound()) {
403 solver(),
this, &Circuit::NextBound,
"NextBound", i);
404 nexts_[i]->WhenBound(bound_demon);
406 solver(),
this, &Circuit::NextDomain,
"NextDomain", i);
407 nexts_[i]->WhenDomain(domain_demon);
410 solver()->AddConstraint(solver()->MakeAllDifferent(nexts_));
413 void InitialPropagate()
override {
414 Solver*
const s = solver();
418 for (
int i = 0; i < size_; ++i) {
419 nexts_[i]->SetRange(0, size_ - 1);
421 nexts_[i]->RemoveValue(i);
424 for (
int i = 0; i < size_; ++i) {
425 starts_.SetValue(s, i, i);
426 ends_.SetValue(s, i, i);
427 lengths_.SetValue(s, i, 1);
429 for (
int i = 0; i < size_; ++i) {
430 if (nexts_[i]->Bound()) {
434 CheckReachabilityFromRoot();
435 CheckReachabilityToRoot();
438 std::string DebugString()
const override {
439 return absl::StrFormat(
"%sCircuit(%s)", sub_circuit_ ?
"Sub" :
"",
443 void Accept(ModelVisitor*
const visitor)
const override {
444 visitor->BeginVisitConstraint(ModelVisitor::kCircuit,
this);
445 visitor->VisitIntegerVariableArrayArgument(ModelVisitor::kNextsArgument,
447 visitor->VisitIntegerArgument(ModelVisitor::kPartialArgument, sub_circuit_);
448 visitor->EndVisitConstraint(ModelVisitor::kCircuit,
this);
452 bool Inactive(
int index)
const {
456 void NextBound(
int index) {
457 Solver*
const s = solver();
458 const int destination = nexts_[
index]->Value();
459 const int root = root_.
Value();
460 if (destination !=
index) {
464 const int new_end = ends_.Value(destination);
465 const int new_start = starts_.Value(
index);
466 starts_.SetValue(s, new_end, new_start);
467 ends_.SetValue(s, new_start, new_end);
470 lengths_.Value(new_start) + lengths_.Value(destination));
473 nexts_[destination]->RemoveValue(destination);
475 if (lengths_.Value(new_start) < size_ - 1 - num_inactives_.
Value()) {
476 nexts_[new_end]->RemoveValue(new_start);
480 num_inactives_.
Incr(solver());
492 void NextDomain(
int index) {
493 if (root_.
Value() == -1) {
496 if (!nexts_[
index]->Contains(outbound_support_[
index])) {
497 EnqueueDelayedDemon(outbound_demon_);
499 if (!nexts_[
index]->Contains(inbound_support_[
index])) {
500 EnqueueDelayedDemon(inbound_demon_);
504 void TryInsertReached(
int candidate, int64_t after) {
505 if (!reached_[after]) {
506 reached_[after] =
true;
507 insertion_queue_.push_back(after);
508 temp_support_[candidate] = after;
512 void CheckReachabilityFromRoot() {
513 if (root_.
Value() == -1) {
518 temp_support_.assign(size_, -1);
521 reached_.assign(size_,
false);
522 insertion_queue_.clear();
524 const int root_value = root_.
Value();
525 reached_[root_value] =
true;
526 insertion_queue_.push_back(root_value);
528 while (processed < insertion_queue_.size() &&
529 insertion_queue_.size() + num_inactives_.
Value() < size_) {
530 const int candidate = insertion_queue_[processed++];
531 IntVar*
const var = nexts_[candidate];
532 switch (
var->Size()) {
534 TryInsertReached(candidate,
var->Min());
538 TryInsertReached(candidate,
var->Min());
539 TryInsertReached(candidate,
var->Max());
543 IntVarIterator*
const domain = domains_[candidate];
544 for (
const int64_t
value : InitAndGetValues(domain)) {
545 TryInsertReached(candidate,
value);
552 for (
int i = 0; i < size_; ++i) {
554 nexts_[i]->SetValue(i);
558 outbound_support_.swap(temp_support_);
561 void CheckReachabilityToRoot() {
563 if (root_.
Value() == -1) {
567 insertion_queue_.clear();
568 insertion_queue_.push_back(root_.
Value());
569 temp_support_[root_.
Value()] = nexts_[root_.
Value()]->Min();
572 for (
int i = 0; i < size_; ++i) {
573 if (!Inactive(i) && i != root_.
Value()) {
574 to_visit_.push_back(i);
577 const int inactive = num_inactives_.
Value();
578 while (processed < insertion_queue_.size() &&
579 insertion_queue_.size() + inactive < size_) {
580 const int inserted = insertion_queue_[processed++];
581 std::vector<int> rejected;
583 const int candidate = to_visit_[
index];
584 if (nexts_[candidate]->Contains(inserted)) {
585 insertion_queue_.push_back(candidate);
586 temp_support_[candidate] = inserted;
588 rejected.push_back(candidate);
591 to_visit_.swap(rejected);
593 for (
int i = 0; i < to_visit_.size(); ++i) {
594 const int node = to_visit_[i];
595 nexts_[node]->SetValue(node);
597 temp_support_.swap(inbound_support_);
600 const std::vector<IntVar*> nexts_;
602 std::vector<int> insertion_queue_;
603 std::vector<int> to_visit_;
604 std::vector<bool> reached_;
605 RevArray<int> starts_;
607 RevArray<int> lengths_;
608 std::vector<IntVarIterator*> domains_;
609 std::vector<int> outbound_support_;
610 std::vector<int> inbound_support_;
611 std::vector<int> temp_support_;
612 Demon* inbound_demon_;
613 Demon* outbound_demon_;
615 NumericalRev<int> num_inactives_;
616 const bool sub_circuit_;
620Constraint* Solver::MakeNoCycle(
const std::vector<IntVar*>& nexts,
621 const std::vector<IntVar*>& active,
624 CHECK_EQ(nexts.size(), active.size());
625 if (sink_handler ==
nullptr) {
626 const int64_t size = nexts.size();
627 sink_handler = [size](int64_t
index) {
return index >= size; };
629 return RevAlloc(
new NoCycle(
this, nexts, active, sink_handler, assume_paths));
632Constraint* Solver::MakeNoCycle(
const std::vector<IntVar*>& nexts,
633 const std::vector<IntVar*>& active,
635 return MakeNoCycle(nexts, active, std::move(sink_handler),
true);
639Constraint* Solver::MakeCircuit(
const std::vector<IntVar*>& nexts) {
640 return RevAlloc(
new Circuit(
this, nexts,
false));
643Constraint* Solver::MakeSubCircuit(
const std::vector<IntVar*>& nexts) {
644 return RevAlloc(
new Circuit(
this, nexts,
true));
652 BasePathCumul(
Solver*
const s,
const std::vector<IntVar*>& nexts,
653 const std::vector<IntVar*>& active,
654 const std::vector<IntVar*>& cumuls);
655 ~BasePathCumul()
override {}
656 void Post()
override;
658 void ActiveBound(
int index);
659 virtual void NextBound(
int index) = 0;
660 virtual bool AcceptLink(
int i,
int j)
const = 0;
661 void UpdateSupport(
int index);
662 void CumulRange(
int index);
666 int64_t size()
const {
return nexts_.size(); }
667 int cumul_size()
const {
return cumuls_.size(); }
669 const std::vector<IntVar*> nexts_;
670 const std::vector<IntVar*> active_;
676BasePathCumul::BasePathCumul(Solver*
const s,
const std::vector<IntVar*>& nexts,
677 const std::vector<IntVar*>& active,
678 const std::vector<IntVar*>& cumuls)
683 prevs_(cumuls.size(), -1),
686 for (
int i = 0; i < size(); ++i) {
691void BasePathCumul::InitialPropagate() {
692 for (
int i = 0; i < size(); ++i) {
693 if (nexts_[i]->Bound()) {
701void BasePathCumul::Post() {
702 for (
int i = 0; i < size(); ++i) {
703 IntVar*
var = nexts_[i];
708 solver(),
this, &BasePathCumul::UpdateSupport,
"UpdateSupport", i);
711 solver(),
this, &BasePathCumul::ActiveBound,
"ActiveBound", i);
712 active_[i]->WhenBound(active_demon);
714 for (
int i = 0; i < cumul_size(); ++i) {
722void BasePathCumul::ActiveBound(
int index) {
723 if (nexts_[
index]->Bound()) {
728void BasePathCumul::CumulRange(
int index) {
729 if (
index < size()) {
730 if (nexts_[
index]->Bound()) {
733 UpdateSupport(
index);
739 for (
int i = 0; i < size(); ++i) {
747void BasePathCumul::UpdateSupport(
int index) {
749 if (support < 0 || !AcceptLink(
index, support)) {
751 for (
int i =
var->Min(); i <= var->Max(); ++i) {
752 if (i != support && AcceptLink(
index, i)) {
757 active_[
index]->SetMax(0);
761std::string BasePathCumul::DebugString()
const {
762 std::string out =
"PathCumul(";
763 for (
int i = 0; i < size(); ++i) {
764 out += nexts_[i]->DebugString() +
" " +
cumuls_[i]->DebugString();
772class PathCumul :
public BasePathCumul {
774 PathCumul(Solver*
const s,
const std::vector<IntVar*>& nexts,
775 const std::vector<IntVar*>& active,
776 const std::vector<IntVar*>& cumuls,
777 const std::vector<IntVar*>& transits)
778 : BasePathCumul(s, nexts, active, cumuls), transits_(transits) {}
779 ~PathCumul()
override {}
780 void Post()
override;
781 void NextBound(
int index)
override;
782 bool AcceptLink(
int i,
int j)
const override;
783 void TransitRange(
int index);
785 void Accept(ModelVisitor*
const visitor)
const override {
786 visitor->BeginVisitConstraint(ModelVisitor::kPathCumul,
this);
787 visitor->VisitIntegerVariableArrayArgument(ModelVisitor::kNextsArgument,
789 visitor->VisitIntegerVariableArrayArgument(ModelVisitor::kActiveArgument,
791 visitor->VisitIntegerVariableArrayArgument(ModelVisitor::kCumulsArgument,
793 visitor->VisitIntegerVariableArrayArgument(ModelVisitor::kTransitsArgument,
795 visitor->EndVisitConstraint(ModelVisitor::kPathCumul,
this);
799 const std::vector<IntVar*> transits_;
802void PathCumul::Post() {
803 BasePathCumul::Post();
804 for (
int i = 0; i < size(); ++i) {
806 solver(),
this, &PathCumul::TransitRange,
"TransitRange", i);
807 transits_[i]->WhenRange(transit_demon);
811void PathCumul::NextBound(
int index) {
812 if (active_[
index]->Min() == 0)
return;
813 const int64_t
next = nexts_[
index]->Value();
816 IntVar* transit = transits_[
index];
817 cumul_next->SetMin(cumul->Min() + transit->Min());
818 cumul_next->SetMax(
CapAdd(cumul->Max(), transit->Max()));
819 cumul->SetMin(
CapSub(cumul_next->Min(), transit->Max()));
820 cumul->SetMax(
CapSub(cumul_next->Max(), transit->Min()));
821 transit->SetMin(
CapSub(cumul_next->Min(), cumul->Max()));
822 transit->SetMax(
CapSub(cumul_next->Max(), cumul->Min()));
828void PathCumul::TransitRange(
int index) {
829 if (nexts_[
index]->Bound()) {
832 UpdateSupport(
index);
837 for (
int i = 0; i < size(); ++i) {
845bool PathCumul::AcceptLink(
int i,
int j)
const {
846 const IntVar*
const cumul_i =
cumuls_[i];
847 const IntVar*
const cumul_j =
cumuls_[j];
848 const IntVar*
const transit_i = transits_[i];
849 return transit_i->Min() <=
CapSub(cumul_j->Max(), cumul_i->Min()) &&
850 CapSub(cumul_j->Min(), cumul_i->Max()) <= transit_i->Max();
857 StampedVector() :
stamp_(0) {}
858 const std::vector<T>& Values(Solver* solver) {
862 void PushBack(Solver* solver,
const T&
value) {
864 values_.push_back(
value);
866 void Clear(Solver* solver) {
868 stamp_ = solver->fail_stamp();
872 void CheckStamp(Solver* solver) {
873 if (solver->fail_stamp() >
stamp_) {
878 std::vector<T> values_;
883class DelayedPathCumul :
public Constraint {
885 DelayedPathCumul(Solver*
const solver,
const std::vector<IntVar*>& nexts,
886 const std::vector<IntVar*>& active,
887 const std::vector<IntVar*>& cumuls,
888 const std::vector<IntVar*>& transits)
889 : Constraint(solver),
894 cumul_transit_demons_(cumuls.size(), nullptr),
895 path_demon_(nullptr),
897 chain_starts_(cumuls.size(), -1),
898 chain_ends_(cumuls.size(), -1),
899 is_chain_start_(cumuls.size(), false),
900 prevs_(cumuls.size(), -1),
902 was_bound_(nexts.size(), false),
903 has_cumul_demon_(cumuls.size(), false) {
904 for (int64_t i = 0; i <
cumuls_.size(); ++i) {
906 solver,
this, &DelayedPathCumul::CumulRange,
"CumulRange", i);
907 chain_starts_[i] = i;
911 solver,
this, &DelayedPathCumul::PropagatePaths,
"PropagatePaths");
912 for (
int i = 0; i < nexts_.size(); ++i) {
916 ~DelayedPathCumul()
override {}
917 void Post()
override {
918 solver()->RegisterDemon(path_demon_);
919 for (
int i = 0; i < nexts_.size(); ++i) {
920 if (!nexts_[i]->Bound()) {
922 solver(),
this, &DelayedPathCumul::NextBound,
"NextBound", i);
923 nexts_[i]->WhenBound(demon);
926 for (
int i = 0; i < active_.size(); ++i) {
927 if (!active_[i]->Bound()) {
929 solver(),
this, &DelayedPathCumul::ActiveBound,
"ActiveBound", i);
930 active_[i]->WhenBound(demon);
934 void InitialPropagate()
override {
935 touched_.Clear(solver());
936 for (
int i = 0; i < nexts_.size(); ++i) {
937 if (nexts_[i]->Bound()) {
941 for (
int i = 0; i < active_.size(); ++i) {
942 if (active_[i]->Bound()) {
949 void NextBound(
int index) {
950 if (active_[
index]->Min() > 0) {
953 touched_.PushBack(solver(),
index);
954 EnqueueDelayedDemon(path_demon_);
957 void ActiveBound(
int index) {
958 if (nexts_[
index]->Bound()) {
962 void PropagatePaths() {
964 const std::vector<int>& touched_values = touched_.Values(solver());
965 for (
const int touched : touched_values) {
966 chain_starts_[touched] = touched;
967 chain_ends_[touched] = touched;
968 is_chain_start_[touched] =
false;
969 const int next = nexts_[touched]->Min();
972 is_chain_start_[
next] =
false;
974 for (
const int touched : touched_values) {
975 if (touched >= nexts_.size())
continue;
976 IntVar*
const next_var = nexts_[touched];
977 if (!was_bound_[touched] && next_var->Bound() &&
978 active_[touched]->Min() > 0) {
979 const int64_t
next = next_var->Min();
980 was_bound_.SetValue(solver(), touched,
true);
981 chain_starts_[chain_ends_[
next]] = chain_starts_[touched];
982 chain_ends_[chain_starts_[touched]] = chain_ends_[
next];
983 is_chain_start_[
next] =
false;
984 is_chain_start_[chain_starts_[touched]] =
true;
988 for (
const int touched : touched_values) {
990 if (is_chain_start_[touched]) {
992 int64_t current = touched;
993 int64_t
next = nexts_[current]->Min();
994 while (current != chain_ends_[touched]) {
996 PropagateLink(current,
next);
998 if (current != chain_ends_[touched]) {
999 next = nexts_[current]->Min();
1003 int64_t prev =
prevs_[current];
1004 while (current != touched) {
1005 PropagateLink(prev, current);
1007 if (current != touched) {
1015 while (current != chain_ends_[touched]) {
1016 if (!has_cumul_demon_[current]) {
1017 Demon*
const demon = cumul_transit_demons_[current];
1018 cumuls_[current]->WhenRange(demon);
1019 transits_[current]->WhenRange(demon);
1020 has_cumul_demon_.SetValue(solver(), current,
true);
1022 current = nexts_[current]->Min();
1024 if (!has_cumul_demon_[current]) {
1025 Demon*
const demon = cumul_transit_demons_[current];
1026 cumuls_[current]->WhenRange(demon);
1027 if (current < transits_.size()) {
1028 transits_[current]->WhenRange(demon);
1029 UpdateSupport(current);
1031 has_cumul_demon_.SetValue(solver(), current,
true);
1035 touched_.Clear(solver());
1038 void Accept(ModelVisitor*
const visitor)
const override {
1039 visitor->BeginVisitConstraint(ModelVisitor::kDelayedPathCumul,
this);
1040 visitor->VisitIntegerVariableArrayArgument(ModelVisitor::kNextsArgument,
1042 visitor->VisitIntegerVariableArrayArgument(ModelVisitor::kActiveArgument,
1044 visitor->VisitIntegerVariableArrayArgument(ModelVisitor::kCumulsArgument,
1046 visitor->VisitIntegerVariableArrayArgument(ModelVisitor::kTransitsArgument,
1048 visitor->EndVisitConstraint(ModelVisitor::kDelayedPathCumul,
this);
1051 std::string DebugString()
const override {
1052 std::string out =
"DelayedPathCumul(";
1053 for (
int i = 0; i < nexts_.size(); ++i) {
1054 out += nexts_[i]->DebugString() +
" " +
cumuls_[i]->DebugString();
1061 void CumulRange(int64_t
index) {
1062 if (
index < nexts_.size()) {
1063 if (nexts_[
index]->Bound()) {
1064 if (active_[
index]->Min() > 0) {
1068 UpdateSupport(
index);
1074 for (
int i = 0; i < nexts_.size(); ++i) {
1081 void UpdateSupport(
int index) {
1083 if (support < 0 || !AcceptLink(
index, support)) {
1085 for (
int i =
next->Min(); i <= next->Max(); ++i) {
1086 if (i != support && AcceptLink(
index, i)) {
1091 active_[
index]->SetMax(0);
1094 void PropagateLink(int64_t
index, int64_t
next) {
1097 IntVar*
const transit = transits_[
index];
1098 const int64_t transit_min = transit->Min();
1099 const int64_t transit_max = transit->Max();
1100 next_cumul_var->SetMin(
CapAdd(cumul_var->Min(), transit_min));
1101 next_cumul_var->SetMax(
CapAdd(cumul_var->Max(), transit_max));
1102 const int64_t next_cumul_min = next_cumul_var->Min();
1103 const int64_t next_cumul_max = next_cumul_var->Max();
1104 cumul_var->SetMin(
CapSub(next_cumul_min, transit_max));
1105 cumul_var->SetMax(
CapSub(next_cumul_max, transit_min));
1106 transit->SetMin(
CapSub(next_cumul_min, cumul_var->Max()));
1107 transit->SetMax(
CapSub(next_cumul_max, cumul_var->Min()));
1109 bool AcceptLink(
int index,
int next)
const {
1112 IntVar*
const transit = transits_[
index];
1113 return transit->Min() <=
CapSub(next_cumul_var->Max(), cumul_var->Min()) &&
1114 CapSub(next_cumul_var->Min(), cumul_var->Max()) <= transit->Max();
1117 const std::vector<IntVar*> nexts_;
1118 const std::vector<IntVar*> active_;
1119 const std::vector<IntVar*>
cumuls_;
1120 const std::vector<IntVar*> transits_;
1121 std::vector<Demon*> cumul_transit_demons_;
1123 StampedVector<int> touched_;
1124 std::vector<int64_t> chain_starts_;
1125 std::vector<int64_t> chain_ends_;
1126 std::vector<bool> is_chain_start_;
1129 RevArray<bool> was_bound_;
1130 RevArray<bool> has_cumul_demon_;
1135class IndexEvaluator2PathCumul :
public BasePathCumul {
1137 IndexEvaluator2PathCumul(Solver*
const s,
const std::vector<IntVar*>& nexts,
1138 const std::vector<IntVar*>& active,
1139 const std::vector<IntVar*>& cumuls,
1140 Solver::IndexEvaluator2 transit_evaluator);
1141 ~IndexEvaluator2PathCumul()
override {}
1142 void NextBound(
int index)
override;
1143 bool AcceptLink(
int i,
int j)
const override;
1145 void Accept(ModelVisitor*
const visitor)
const override {
1146 visitor->BeginVisitConstraint(ModelVisitor::kPathCumul,
this);
1147 visitor->VisitIntegerVariableArrayArgument(ModelVisitor::kNextsArgument,
1149 visitor->VisitIntegerVariableArrayArgument(ModelVisitor::kActiveArgument,
1151 visitor->VisitIntegerVariableArrayArgument(ModelVisitor::kCumulsArgument,
1157 visitor->EndVisitConstraint(ModelVisitor::kPathCumul,
this);
1161 Solver::IndexEvaluator2 transits_evaluator_;
1164IndexEvaluator2PathCumul::IndexEvaluator2PathCumul(
1165 Solver*
const s,
const std::vector<IntVar*>& nexts,
1166 const std::vector<IntVar*>& active,
const std::vector<IntVar*>& cumuls,
1167 Solver::IndexEvaluator2 transit_evaluator)
1168 : BasePathCumul(s, nexts, active, cumuls),
1169 transits_evaluator_(
std::move(transit_evaluator)) {}
1171void IndexEvaluator2PathCumul::NextBound(
int index) {
1172 if (active_[
index]->Min() == 0)
return;
1173 const int64_t
next = nexts_[
index]->Value();
1176 const int64_t transit = transits_evaluator_(
index,
next);
1177 cumul_next->SetMin(cumul->Min() + transit);
1178 cumul_next->SetMax(
CapAdd(cumul->Max(), transit));
1179 cumul->SetMin(
CapSub(cumul_next->Min(), transit));
1180 cumul->SetMax(
CapSub(cumul_next->Max(), transit));
1186bool IndexEvaluator2PathCumul::AcceptLink(
int i,
int j)
const {
1187 const IntVar*
const cumul_i =
cumuls_[i];
1188 const IntVar*
const cumul_j =
cumuls_[j];
1189 const int64_t transit = transits_evaluator_(i, j);
1190 return transit <=
CapSub(cumul_j->Max(), cumul_i->Min()) &&
1191 CapSub(cumul_j->Min(), cumul_i->Max()) <= transit;
1196class IndexEvaluator2SlackPathCumul :
public BasePathCumul {
1198 IndexEvaluator2SlackPathCumul(Solver*
const s,
1199 const std::vector<IntVar*>& nexts,
1200 const std::vector<IntVar*>& active,
1201 const std::vector<IntVar*>& cumuls,
1202 const std::vector<IntVar*>& slacks,
1203 Solver::IndexEvaluator2 transit_evaluator);
1204 ~IndexEvaluator2SlackPathCumul()
override {}
1205 void Post()
override;
1206 void NextBound(
int index)
override;
1207 bool AcceptLink(
int i,
int j)
const override;
1208 void SlackRange(
int index);
1210 void Accept(ModelVisitor*
const visitor)
const override {
1211 visitor->BeginVisitConstraint(ModelVisitor::kPathCumul,
this);
1212 visitor->VisitIntegerVariableArrayArgument(ModelVisitor::kNextsArgument,
1214 visitor->VisitIntegerVariableArrayArgument(ModelVisitor::kActiveArgument,
1216 visitor->VisitIntegerVariableArrayArgument(ModelVisitor::kCumulsArgument,
1222 visitor->EndVisitConstraint(ModelVisitor::kPathCumul,
this);
1226 const std::vector<IntVar*> slacks_;
1227 Solver::IndexEvaluator2 transits_evaluator_;
1230IndexEvaluator2SlackPathCumul::IndexEvaluator2SlackPathCumul(
1231 Solver*
const s,
const std::vector<IntVar*>& nexts,
1232 const std::vector<IntVar*>& active,
const std::vector<IntVar*>& cumuls,
1233 const std::vector<IntVar*>& slacks,
1234 Solver::IndexEvaluator2 transit_evaluator)
1235 : BasePathCumul(s, nexts, active, cumuls),
1237 transits_evaluator_(
std::move(transit_evaluator)) {}
1239void IndexEvaluator2SlackPathCumul::Post() {
1240 BasePathCumul::Post();
1241 for (
int i = 0; i < size(); ++i) {
1243 solver(),
this, &IndexEvaluator2SlackPathCumul::SlackRange,
1245 slacks_[i]->WhenRange(slack_demon);
1249void IndexEvaluator2SlackPathCumul::SlackRange(
int index) {
1250 if (nexts_[
index]->Bound()) {
1253 UpdateSupport(
index);
1258 for (
int i = 0; i < size(); ++i) {
1266void IndexEvaluator2SlackPathCumul::NextBound(
int index) {
1267 if (active_[
index]->Min() == 0)
return;
1268 const int64_t
next = nexts_[
index]->Value();
1271 IntVar*
const slack = slacks_[
index];
1272 const int64_t transit = transits_evaluator_(
index,
next);
1273 const int64_t cumul_next_minus_transit_min =
1274 CapSub(cumul_next->Min(), transit);
1275 const int64_t cumul_next_minus_transit_max =
1276 CapSub(cumul_next->Max(), transit);
1277 cumul_next->SetMin(
CapAdd(
CapAdd(cumul->Min(), transit), slack->Min()));
1278 cumul_next->SetMax(
CapAdd(
CapAdd(cumul->Max(), transit), slack->Max()));
1279 cumul->SetMin(
CapSub(cumul_next_minus_transit_min, slack->Max()));
1280 cumul->SetMax(
CapSub(cumul_next_minus_transit_max, slack->Min()));
1281 slack->SetMin(
CapSub(cumul_next_minus_transit_min, cumul->Max()));
1282 slack->SetMax(
CapSub(cumul_next_minus_transit_max, cumul->Min()));
1288bool IndexEvaluator2SlackPathCumul::AcceptLink(
int i,
int j)
const {
1289 const IntVar*
const cumul_i =
cumuls_[i];
1290 const IntVar*
const cumul_j =
cumuls_[j];
1291 const IntVar*
const slack = slacks_[i];
1292 const int64_t transit = transits_evaluator_(i, j);
1293 return CapAdd(transit, slack->Min()) <=
1294 CapSub(cumul_j->Max(), cumul_i->Min()) &&
1295 CapSub(cumul_j->Min(), cumul_i->Max()) <=
1296 CapAdd(slack->Max(), transit);
1300Constraint* Solver::MakePathCumul(
const std::vector<IntVar*>& nexts,
1301 const std::vector<IntVar*>& active,
1302 const std::vector<IntVar*>& cumuls,
1303 const std::vector<IntVar*>& transits) {
1304 CHECK_EQ(nexts.size(), active.size());
1305 CHECK_EQ(transits.size(), nexts.size());
1306 return RevAlloc(
new PathCumul(
this, nexts, active, cumuls, transits));
1309Constraint* Solver::MakePathCumul(
const std::vector<IntVar*>& nexts,
1310 const std::vector<IntVar*>& active,
1311 const std::vector<IntVar*>& cumuls,
1313 CHECK_EQ(nexts.size(), active.size());
1314 return RevAlloc(
new IndexEvaluator2PathCumul(
this, nexts, active, cumuls,
1315 std::move(transit_evaluator)));
1318Constraint* Solver::MakePathCumul(
const std::vector<IntVar*>& nexts,
1319 const std::vector<IntVar*>& active,
1320 const std::vector<IntVar*>& cumuls,
1321 const std::vector<IntVar*>& slacks,
1323 CHECK_EQ(nexts.size(), active.size());
1324 return RevAlloc(
new IndexEvaluator2SlackPathCumul(
1325 this, nexts, active, cumuls, slacks, std::move(transit_evaluator)));
1328Constraint* Solver::MakeDelayedPathCumul(
const std::vector<IntVar*>& nexts,
1329 const std::vector<IntVar*>& active,
1330 const std::vector<IntVar*>& cumuls,
1331 const std::vector<IntVar*>& transits) {
1332 CHECK_EQ(nexts.size(), active.size());
1333 CHECK_EQ(transits.size(), nexts.size());
1334 return RevAlloc(
new DelayedPathCumul(
this, nexts, active, cumuls, transits));
1340class PathConnectedConstraint :
public Constraint {
1342 PathConnectedConstraint(
Solver* solver, std::vector<IntVar*> nexts,
1343 const std::vector<int64_t>& sources,
1344 std::vector<int64_t> sinks,
1345 std::vector<IntVar*>
status)
1347 sources_(sources.size(), -1),
1348 index_to_path_(nexts.size(), -1),
1349 sinks_(
std::move(sinks)),
1350 nexts_(
std::move(nexts)),
1352 touched_(nexts_.size()) {
1353 CHECK_EQ(status_.size(), sources_.size());
1354 CHECK_EQ(status_.size(), sinks_.size());
1355 for (
int i = 0; i < status_.size(); ++i) {
1356 const int64_t source = sources[i];
1357 sources_.SetValue(solver, i, source);
1358 if (source < index_to_path_.size()) {
1359 index_to_path_.SetValue(solver, source, i);
1363 void Post()
override {
1364 for (
int i = 0; i < nexts_.size(); ++i) {
1366 solver(),
this, &PathConnectedConstraint::NextBound,
"NextValue", i));
1368 for (
int i = 0; i < status_.size(); ++i) {
1369 if (sources_[i] < nexts_.size()) {
1370 status_[i]->SetRange(0, 1);
1372 status_[i]->SetValue(0);
1377 for (
int i = 0; i < status_.size(); ++i) {
1382 std::string output =
"PathConnected(";
1383 std::vector<std::string> elements;
1384 for (IntVar*
const next : nexts_) {
1385 elements.push_back(
next->DebugString());
1387 for (
int i = 0; i < sources_.size(); ++i) {
1388 elements.push_back(absl::StrCat(sources_[i]));
1390 for (int64_t sink : sinks_) {
1391 elements.push_back(absl::StrCat(sink));
1393 for (IntVar*
const status : status_) {
1394 elements.push_back(
status->DebugString());
1396 output += absl::StrJoin(elements,
",") +
")";
1401 void NextBound(
int index) {
1402 const int path = index_to_path_[
index];
1407 void EvaluatePath(
int path) {
1408 touched_.SparseClearAll();
1409 int64_t source = sources_[path];
1410 const int64_t
end = sinks_[path];
1411 while (source !=
end) {
1412 if (source >= nexts_.size() || touched_[source]) {
1413 status_[path]->SetValue(0);
1416 touched_.Set(source);
1417 IntVar*
const next = nexts_[source];
1418 if (
next->Bound()) {
1419 source =
next->Min();
1421 sources_.SetValue(
solver(), path, source);
1422 index_to_path_.SetValue(
solver(), source, path);
1426 status_[path]->SetValue(1);
1429 RevArray<int64_t> sources_;
1430 RevArray<int> index_to_path_;
1431 const std::vector<int64_t> sinks_;
1432 const std::vector<IntVar*> nexts_;
1433 const std::vector<IntVar*> status_;
1434 SparseBitset<int64_t> touched_;
1439 std::vector<int64_t> sources,
1440 std::vector<int64_t> sinks,
1441 std::vector<IntVar*>
status) {
1442 return RevAlloc(
new PathConnectedConstraint(
1443 this, std::move(nexts), sources, std::move(sinks), std::move(
status)));
1447class PathTransitPrecedenceConstraint :
public Constraint {
1449 enum PrecedenceType {
1454 PathTransitPrecedenceConstraint(
1455 Solver* solver, std::vector<IntVar*> nexts, std::vector<IntVar*> transits,
1456 const std::vector<std::pair<int, int>>& precedences,
1457 absl::flat_hash_map<int, PrecedenceType> precedence_types)
1458 : Constraint(solver),
1459 nexts_(
std::move(nexts)),
1460 transits_(
std::move(transits)),
1461 predecessors_(nexts_.size()),
1462 successors_(nexts_.size()),
1463 precedence_types_(
std::move(precedence_types)),
1464 starts_(nexts_.size(), -1),
1465 ends_(nexts_.size(), -1),
1466 transit_cumuls_(nexts_.size(), 0) {
1467 for (
int i = 0; i < nexts_.size(); ++i) {
1468 starts_.SetValue(solver, i, i);
1469 ends_.SetValue(solver, i, i);
1471 for (
const auto& precedence : precedences) {
1472 if (precedence.second < nexts_.size()) {
1473 predecessors_[precedence.second].push_back(precedence.first);
1475 if (precedence.first < nexts_.size()) {
1476 successors_[precedence.first].push_back(precedence.second);
1480 ~PathTransitPrecedenceConstraint()
override {}
1481 void Post()
override {
1482 for (
int i = 0; i < nexts_.size(); ++i) {
1484 solver(),
this, &PathTransitPrecedenceConstraint::NextBound,
1487 for (
int i = 0; i < transits_.size(); ++i) {
1489 solver(),
this, &PathTransitPrecedenceConstraint::NextBound,
1490 "TransitRange", i));
1494 for (
int i = 0; i < nexts_.size(); ++i) {
1495 if (nexts_[i]->Bound()) {
1501 std::string output =
"PathPrecedence(";
1503 if (!transits_.empty()) {
1506 for (
int i = 0; i < predecessors_.size(); ++i) {
1507 for (
const int predecessor : predecessors_[i]) {
1508 elements.push_back(absl::StrCat(
"(", predecessor,
", ", i,
")"));
1511 output += absl::StrJoin(elements,
",") +
")";
1514 void Accept(ModelVisitor*
const visitor)
const override {
1519 void NextBound(
int index) {
1520 if (!nexts_[
index]->Bound())
return;
1524 if (
end < nexts_.size()) starts_.SetValue(solver(),
end,
start);
1526 int current =
start;
1527 PrecedenceType type = ANY;
1528 auto it = precedence_types_.find(
start);
1529 if (it != precedence_types_.end()) {
1535 int64_t transit_cumul = 0;
1536 const bool has_transits = !transits_.empty();
1537 while (current < nexts_.size() && current !=
end) {
1538 transit_cumuls_[current] = transit_cumul;
1539 marked_.insert(current);
1541 if (!predecessors_[current].empty() && !pushed_.empty()) {
1544 for (
const int predecessor : predecessors_[current]) {
1545 if (pushed_.back() == predecessor) {
1553 if (forbidden_.find(current) != forbidden_.end()) {
1554 for (
const int successor : successors_[current]) {
1555 if (marked_.find(successor) != marked_.end()) {
1556 if (!has_transits ||
1557 CapSub(transit_cumul, transit_cumuls_[successor]) > 0) {
1563 if (!successors_[current].empty()) {
1566 pushed_.push_back(current);
1569 pushed_.push_front(current);
1575 for (
const int predecessor : predecessors_[current]) {
1576 forbidden_.insert(predecessor);
1579 transit_cumul =
CapAdd(transit_cumul, transits_[current]->Min());
1581 current = nexts_[current]->Min();
1583 if (forbidden_.find(current) != forbidden_.end()) {
1584 for (
const int successor : successors_[current]) {
1585 if (marked_.find(successor) != marked_.end()) {
1586 if (!has_transits ||
1587 CapSub(transit_cumul, transit_cumuls_[successor]) > 0) {
1595 const std::vector<IntVar*> nexts_;
1596 const std::vector<IntVar*> transits_;
1597 std::vector<std::vector<int>> predecessors_;
1598 std::vector<std::vector<int>> successors_;
1599 const absl::flat_hash_map<int, PrecedenceType> precedence_types_;
1600 RevArray<int> starts_;
1601 RevArray<int> ends_;
1602 absl::flat_hash_set<int> forbidden_;
1603 absl::flat_hash_set<int> marked_;
1604 std::deque<int> pushed_;
1605 std::vector<int64_t> transit_cumuls_;
1608Constraint* MakePathTransitTypedPrecedenceConstraint(
1609 Solver* solver, std::vector<IntVar*> nexts, std::vector<IntVar*> transits,
1610 const std::vector<std::pair<int, int>>& precedences,
1611 absl::flat_hash_map<int, PathTransitPrecedenceConstraint::PrecedenceType>
1613 if (precedences.empty()) {
1614 return solver->MakeTrueConstraint();
1616 return solver->RevAlloc(
new PathTransitPrecedenceConstraint(
1617 solver, std::move(nexts), std::move(transits), precedences,
1618 std::move(precedence_types)));
1624 std::vector<IntVar*> nexts,
1625 const std::vector<std::pair<int, int>>& precedences) {
1626 return MakePathTransitPrecedenceConstraint(std::move(nexts), {}, precedences);
1630 std::vector<IntVar*> nexts,
1631 const std::vector<std::pair<int, int>>& precedences,
1632 const std::vector<int>& lifo_path_starts,
1633 const std::vector<int>& fifo_path_starts) {
1634 absl::flat_hash_map<int, PathTransitPrecedenceConstraint::PrecedenceType>
1636 for (
int start : lifo_path_starts) {
1637 precedence_types[
start] = PathTransitPrecedenceConstraint::LIFO;
1639 for (
int start : fifo_path_starts) {
1640 precedence_types[
start] = PathTransitPrecedenceConstraint::FIFO;
1642 return MakePathTransitTypedPrecedenceConstraint(
1643 this, std::move(nexts), {}, precedences, std::move(precedence_types));
1647 std::vector<IntVar*> nexts, std::vector<IntVar*> transits,
1648 const std::vector<std::pair<int, int>>& precedences) {
1649 return MakePathTransitTypedPrecedenceConstraint(
1650 this, std::move(nexts), std::move(transits), precedences, {{}});
#define CHECK_EQ(val1, val2)
#define CHECK_GE(val1, val2)
A constraint is the main modeling object.
virtual void InitialPropagate()=0
This method performs the initial propagation of the constraint.
virtual void Accept(ModelVisitor *const visitor) const
Accepts the given visitor.
std::string DebugString() const override
virtual void Post()=0
This method is called when the constraint is processed by the solver.
static const char kActiveArgument[]
argument names:
static const char kNextsArgument[]
static const char kNoCycle[]
void Incr(Solver *const s)
void SetValue(Solver *const s, const T &val)
std::function< int64_t(int64_t, int64_t)> IndexEvaluator2
std::function< bool(int64_t)> IndexFilter1
void Fail()
Abandon the current branch in the search tree. A backtrack will follow.
std::vector< IntVarIterator * > iterators_
const std::vector< IntVar * > cumuls_
std::vector< int > supports_
Collection of objects used to extend the Constraint Solver library.
int64_t CapAdd(int64_t x, int64_t y)
int64_t CapSub(int64_t x, int64_t y)
Demon * MakeDelayedConstraintDemon0(Solver *const s, T *const ct, void(T::*method)(), const std::string &name)
std::string JoinDebugStringPtr(const std::vector< T > &v, const std::string &separator)
Demon * MakeDelayedConstraintDemon1(Solver *const s, T *const ct, void(T::*method)(P), const std::string &name, P param1)
Demon * MakeConstraintDemon1(Solver *const s, T *const ct, void(T::*method)(P), const std::string &name, P param1)
std::optional< int64_t > end