OR-Tools  9.2
timetable.cc
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1// Copyright 2010-2021 Google LLC
2// Licensed under the Apache License, Version 2.0 (the "License");
3// you may not use this file except in compliance with the License.
4// You may obtain a copy of the License at
5//
6// http://www.apache.org/licenses/LICENSE-2.0
7//
8// Unless required by applicable law or agreed to in writing, software
9// distributed under the License is distributed on an "AS IS" BASIS,
10// WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
11// See the License for the specific language governing permissions and
12// limitations under the License.
13
15
16#include <algorithm>
17#include <cstdint>
18#include <functional>
19#include <memory>
20
23#include "ortools/util/sort.h"
24
25namespace operations_research {
26namespace sat {
27
28void AddReservoirConstraint(std::vector<AffineExpression> times,
29 std::vector<IntegerValue> deltas,
30 std::vector<Literal> presences, int64_t min_level,
31 int64_t max_level, Model* model) {
32 // We only create a side if it can fail.
33 IntegerValue min_possible(0);
34 IntegerValue max_possible(0);
35 for (const IntegerValue d : deltas) {
36 if (d > 0) {
37 max_possible += d;
38 } else {
39 min_possible += d;
40 }
41 }
42 if (max_possible > max_level) {
43 model->TakeOwnership(new ReservoirTimeTabling(
44 times, deltas, presences, IntegerValue(max_level), model));
45 }
46 if (min_possible < min_level) {
47 for (IntegerValue& ref : deltas) ref = -ref;
48 model->TakeOwnership(new ReservoirTimeTabling(
49 times, deltas, presences, IntegerValue(-min_level), model));
50 }
51}
52
54 const std::vector<AffineExpression>& times,
55 const std::vector<IntegerValue>& deltas,
56 const std::vector<Literal>& presences, IntegerValue capacity, Model* model)
57 : times_(times),
58 deltas_(deltas),
59 presences_(presences),
60 capacity_(capacity),
61 assignment_(model->GetOrCreate<Trail>()->Assignment()),
62 integer_trail_(model->GetOrCreate<IntegerTrail>()) {
63 auto* watcher = model->GetOrCreate<GenericLiteralWatcher>();
64 const int id = watcher->Register(this);
65 const int num_events = times.size();
66 for (int e = 0; e < num_events; e++) {
67 if (deltas_[e] > 0) {
68 watcher->WatchUpperBound(times_[e].var, id);
69 watcher->WatchLiteral(presences_[e], id);
70 }
71 if (deltas_[e] < 0) {
72 watcher->WatchLowerBound(times_[e].var, id);
73 watcher->WatchLiteral(presences_[e].Negated(), id);
74 }
75 }
76 watcher->NotifyThatPropagatorMayNotReachFixedPointInOnePass(id);
77}
78
80 const int num_events = times_.size();
81 if (!BuildProfile()) return false;
82 for (int e = 0; e < num_events; e++) {
83 if (assignment_.LiteralIsFalse(presences_[e])) continue;
84
85 // For positive delta, we can maybe increase the min.
86 if (deltas_[e] > 0 && !TryToIncreaseMin(e)) return false;
87
88 // For negative delta, we can maybe decrease the max.
89 if (deltas_[e] < 0 && !TryToDecreaseMax(e)) return false;
90 }
91 return true;
92}
93
94// We compute the lowest possible profile at time t.
95//
96// TODO(user): If we have precedences between events, we should be able to do
97// more.
98bool ReservoirTimeTabling::BuildProfile() {
99 // Starts by copying the "events" in the profile and sort them by time.
100 profile_.clear();
101 const int num_events = times_.size();
102 profile_.emplace_back(kMinIntegerValue, IntegerValue(0)); // Sentinel.
103 for (int e = 0; e < num_events; e++) {
104 if (deltas_[e] > 0) {
105 // Only consider present event for positive delta.
106 if (!assignment_.LiteralIsTrue(presences_[e])) continue;
107 const IntegerValue ub = integer_trail_->UpperBound(times_[e]);
108 profile_.push_back({ub, deltas_[e]});
109 } else if (deltas_[e] < 0) {
110 // Only consider non-absent event for negative delta.
111 if (assignment_.LiteralIsFalse(presences_[e])) continue;
112 profile_.push_back({integer_trail_->LowerBound(times_[e]), deltas_[e]});
113 }
114 }
115 profile_.emplace_back(kMaxIntegerValue, IntegerValue(0)); // Sentinel.
116 std::sort(profile_.begin(), profile_.end());
117
118 // Accumulate delta and collapse entries.
119 int last = 0;
120 for (const ProfileRectangle& rect : profile_) {
121 if (rect.start == profile_[last].start) {
122 profile_[last].height += rect.height;
123 } else {
124 ++last;
125 profile_[last].start = rect.start;
126 profile_[last].height = rect.height + profile_[last - 1].height;
127 }
128 }
129 profile_.resize(last + 1);
130
131 // Conflict?
132 for (const ProfileRectangle& rect : profile_) {
133 if (rect.height <= capacity_) continue;
134 FillReasonForProfileAtGivenTime(rect.start);
135 return integer_trail_->ReportConflict(literal_reason_, integer_reason_);
136 }
137
138 return true;
139}
140
141// TODO(user): Minimize with how high the profile needs to be. We can also
142// remove from the reason the absence of a negative event provided that the
143// level zero min of the event is greater than t anyway.
144//
145// TODO(user): Make sure the code work with fixed time since pushing always
146// true/false literal to the reason is not completely supported.
147void ReservoirTimeTabling::FillReasonForProfileAtGivenTime(
148 IntegerValue t, int event_to_ignore) {
149 integer_reason_.clear();
150 literal_reason_.clear();
151 const int num_events = times_.size();
152 for (int e = 0; e < num_events; e++) {
153 if (e == event_to_ignore) continue;
154 if (deltas_[e] > 0) {
155 if (!assignment_.LiteralIsTrue(presences_[e])) continue;
156 if (integer_trail_->UpperBound(times_[e]) > t) continue;
157 integer_reason_.push_back(times_[e].LowerOrEqual(t));
158 literal_reason_.push_back(presences_[e].Negated());
159 } else if (deltas_[e] < 0) {
160 if (assignment_.LiteralIsFalse(presences_[e])) {
161 literal_reason_.push_back(presences_[e]);
162 } else if (integer_trail_->LowerBound(times_[e]) > t) {
163 integer_reason_.push_back(times_[e].GreaterOrEqual(t + 1));
164 }
165 }
166 }
167}
168
169// Note that a negative event will always be in the profile, even if its
170// presence is still not settled.
171bool ReservoirTimeTabling::TryToDecreaseMax(int event) {
172 CHECK_LT(deltas_[event], 0);
173 const IntegerValue start = integer_trail_->LowerBound(times_[event]);
174 const IntegerValue end = integer_trail_->UpperBound(times_[event]);
175
176 // We already tested for conflict in BuildProfile().
177 if (start == end) return true;
178
179 // Find the profile rectangle that overlaps the start of the given event.
180 // The sentinel prevents out of bound exceptions.
181 DCHECK(std::is_sorted(profile_.begin(), profile_.end()));
182 int rec_id =
183 std::upper_bound(profile_.begin(), profile_.end(), start,
184 [&](IntegerValue value, const ProfileRectangle& rect) {
185 return value < rect.start;
186 }) -
187 profile_.begin();
188 --rec_id;
189
190 bool push = false;
191 IntegerValue new_end = end;
192 for (; profile_[rec_id].start < end; ++rec_id) {
193 if (profile_[rec_id].height - deltas_[event] > capacity_) {
194 new_end = profile_[rec_id].start;
195 push = true;
196 break;
197 }
198 }
199 if (!push) return true;
200
201 // The reason is simply why the capacity at new_end (without the event)
202 // would overflow.
203 FillReasonForProfileAtGivenTime(new_end, event);
204
205 // Note(user): I don't think this is possible since it would have been
206 // detected at profile construction, but then, since the bound might have been
207 // updated, better be defensive.
208 if (new_end < start) {
209 integer_reason_.push_back(times_[event].GreaterOrEqual(new_end + 1));
210 return integer_trail_->ReportConflict(literal_reason_, integer_reason_);
211 }
212
213 // First, the task MUST be present, otherwise we have a conflict.
214 //
215 // TODO(user): We actually need to look after 'end' to potentially push the
216 // presence in more situation.
217 if (!assignment_.LiteralIsTrue(presences_[event])) {
218 integer_trail_->EnqueueLiteral(presences_[event], literal_reason_,
219 integer_reason_);
220 }
221
222 // Push new_end too. Note that we don't need the presence reason.
223 return integer_trail_->Enqueue(times_[event].LowerOrEqual(new_end),
224 literal_reason_, integer_reason_);
225}
226
227bool ReservoirTimeTabling::TryToIncreaseMin(int event) {
228 CHECK_GT(deltas_[event], 0);
229 const IntegerValue start = integer_trail_->LowerBound(times_[event]);
230 const IntegerValue end = integer_trail_->UpperBound(times_[event]);
231
232 // We already tested for conflict in BuildProfile().
233 if (start == end) return true;
234
235 // Find the profile rectangle containing the end of the given event.
236 // The sentinel prevents out of bound exceptions.
237 //
238 // TODO(user): If the task is no present, we should actually look at the
239 // maximum profile after end to maybe push its absence.
240 DCHECK(std::is_sorted(profile_.begin(), profile_.end()));
241 int rec_id =
242 std::upper_bound(profile_.begin(), profile_.end(), end,
243 [&](IntegerValue value, const ProfileRectangle& rect) {
244 return value < rect.start;
245 }) -
246 profile_.begin();
247 --rec_id;
248
249 bool push = false;
250 IntegerValue new_start = start;
251 if (profile_[rec_id].height + deltas_[event] > capacity_) {
252 if (!assignment_.LiteralIsTrue(presences_[event])) {
253 // Push to false since it wasn't part of the profile and cannot fit.
254 push = true;
255 new_start = end + 1;
256 } else if (profile_[rec_id].start < end) {
257 // It must be at end in this case.
258 push = true;
259 new_start = end;
260 }
261 }
262 if (!push) {
263 for (; profile_[rec_id].start > start; --rec_id) {
264 if (profile_[rec_id - 1].height + deltas_[event] > capacity_) {
265 push = true;
266 new_start = profile_[rec_id].start;
267 break;
268 }
269 }
270 }
271 if (!push) return true;
272
273 // The reason is simply the capacity at new_start - 1;
274 FillReasonForProfileAtGivenTime(new_start - 1, event);
275 return integer_trail_->ConditionalEnqueue(
276 presences_[event], times_[event].GreaterOrEqual(new_start),
277 &literal_reason_, &integer_reason_);
278}
279
281 const std::vector<AffineExpression>& demands, AffineExpression capacity,
282 IntegerTrail* integer_trail, SchedulingConstraintHelper* helper)
283 : num_tasks_(helper->NumTasks()),
284 demands_(demands),
285 capacity_(capacity),
286 integer_trail_(integer_trail),
287 helper_(helper) {
288 // Each task may create at most two profile rectangles. Such pattern appear if
289 // the profile is shaped like the Hanoi tower. The additional space is for
290 // both extremities and the sentinels.
291 profile_.reserve(2 * num_tasks_ + 4);
292
293 // Reversible set of tasks to consider for propagation.
294 forward_num_tasks_to_sweep_ = num_tasks_;
295 forward_tasks_to_sweep_.resize(num_tasks_);
296 backward_num_tasks_to_sweep_ = num_tasks_;
297 backward_tasks_to_sweep_.resize(num_tasks_);
298
299 num_profile_tasks_ = 0;
300 profile_tasks_.resize(num_tasks_);
301 positions_in_profile_tasks_.resize(num_tasks_);
302
303 // Reversible bounds and starting height of the profile.
304 starting_profile_height_ = IntegerValue(0);
305
306 for (int t = 0; t < num_tasks_; ++t) {
307 forward_tasks_to_sweep_[t] = t;
308 backward_tasks_to_sweep_[t] = t;
309 profile_tasks_[t] = t;
310 positions_in_profile_tasks_[t] = t;
311 }
312}
313
315 const int id = watcher->Register(this);
316 helper_->WatchAllTasks(id, watcher);
317 watcher->WatchUpperBound(capacity_.var, id);
318 for (int t = 0; t < num_tasks_; t++) {
319 watcher->WatchLowerBound(demands_[t].var, id);
320 }
321 watcher->RegisterReversibleInt(id, &forward_num_tasks_to_sweep_);
322 watcher->RegisterReversibleInt(id, &backward_num_tasks_to_sweep_);
323 watcher->RegisterReversibleInt(id, &num_profile_tasks_);
324
325 // Changing the times or pushing task absence migth have side effects on the
326 // other intervals, so we would need to be called again in this case.
328}
329
330// Note that we relly on being called again to reach a fixed point.
332 // This can fail if the profile exceeds the resource capacity.
333 if (!BuildProfile()) return false;
334
335 // Update the minimum start times.
336 if (!SweepAllTasks(/*is_forward=*/true)) return false;
337
338 // We reuse the same profile, but reversed, to update the maximum end times.
339 if (!helper_->SynchronizeAndSetTimeDirection(false)) return false;
340 ReverseProfile();
341
342 // Update the maximum end times (reversed problem).
343 if (!SweepAllTasks(/*is_forward=*/false)) return false;
344
345 return true;
346}
347
348bool TimeTablingPerTask::BuildProfile() {
349 if (!helper_->SynchronizeAndSetTimeDirection(true)) return false;
350
351 // Update the set of tasks that contribute to the profile. Tasks that were
352 // contributing are still part of the profile so we only need to check the
353 // other tasks.
354 for (int i = num_profile_tasks_; i < num_tasks_; ++i) {
355 const int t1 = profile_tasks_[i];
356 if (helper_->IsPresent(t1) && helper_->StartMax(t1) < helper_->EndMin(t1)) {
357 // Swap values and positions.
358 const int t2 = profile_tasks_[num_profile_tasks_];
359 profile_tasks_[i] = t2;
360 profile_tasks_[num_profile_tasks_] = t1;
361 positions_in_profile_tasks_[t1] = num_profile_tasks_;
362 positions_in_profile_tasks_[t2] = i;
363 num_profile_tasks_++;
364 }
365 }
366
367 const auto& by_decreasing_start_max = helper_->TaskByDecreasingStartMax();
368 const auto& by_end_min = helper_->TaskByIncreasingEndMin();
369
370 // Build the profile.
371 // ------------------
372 profile_.clear();
373
374 // Start and height of the highest profile rectangle.
375 profile_max_height_ = kMinIntegerValue;
376 IntegerValue max_height_start = kMinIntegerValue;
377
378 // Add a sentinel to simplify the algorithm.
379 profile_.emplace_back(kMinIntegerValue, IntegerValue(0));
380
381 // Start and height of the currently built profile rectangle.
382 IntegerValue current_start = kMinIntegerValue;
383 IntegerValue current_height = starting_profile_height_;
384
385 // Next start/end of the compulsory parts to be processed. Note that only the
386 // task for which IsInProfile() is true must be considered.
387 int next_start = num_tasks_ - 1;
388 int next_end = 0;
389 while (next_end < num_tasks_) {
390 const IntegerValue old_height = current_height;
391
392 IntegerValue t = by_end_min[next_end].time;
393 if (next_start >= 0) {
394 t = std::min(t, by_decreasing_start_max[next_start].time);
395 }
396
397 // Process the starting compulsory parts.
398 while (next_start >= 0 && by_decreasing_start_max[next_start].time == t) {
399 const int task_index = by_decreasing_start_max[next_start].task_index;
400 if (IsInProfile(task_index)) current_height += DemandMin(task_index);
401 --next_start;
402 }
403
404 // Process the ending compulsory parts.
405 while (next_end < num_tasks_ && by_end_min[next_end].time == t) {
406 const int task_index = by_end_min[next_end].task_index;
407 if (IsInProfile(task_index)) current_height -= DemandMin(task_index);
408 ++next_end;
409 }
410
411 // Insert a new profile rectangle if any.
412 if (current_height != old_height) {
413 profile_.emplace_back(current_start, old_height);
414 if (current_height > profile_max_height_) {
415 profile_max_height_ = current_height;
416 max_height_start = t;
417 }
418 current_start = t;
419 }
420 }
421
422 // Build the last profile rectangle.
423 DCHECK_GE(current_height, 0);
424 profile_.emplace_back(current_start, IntegerValue(0));
425
426 // Add a sentinel to simplify the algorithm.
427 profile_.emplace_back(kMaxIntegerValue, IntegerValue(0));
428
429 // Increase the capacity variable if required.
430 return IncreaseCapacity(max_height_start, profile_max_height_);
431}
432
433void TimeTablingPerTask::ReverseProfile() {
434 // We keep the sentinels inchanged.
435 for (int i = 1; i + 1 < profile_.size(); ++i) {
436 profile_[i].start = -profile_[i + 1].start;
437 }
438 std::reverse(profile_.begin() + 1, profile_.end() - 1);
439}
440
441bool TimeTablingPerTask::SweepAllTasks(bool is_forward) {
442 // Tasks with a lower or equal demand will not be pushed.
443 const IntegerValue demand_threshold(
444 CapSub(CapacityMax().value(), profile_max_height_.value()));
445
446 // Select the correct members depending on the direction.
447 int& num_tasks =
448 is_forward ? forward_num_tasks_to_sweep_ : backward_num_tasks_to_sweep_;
449 std::vector<int>& tasks =
450 is_forward ? forward_tasks_to_sweep_ : backward_tasks_to_sweep_;
451
452 // TODO(user): On some problem, a big chunk of the time is spend just checking
453 // these conditions below because it requires indirect memory access to fetch
454 // the demand/size/presence/start ...
455 for (int i = num_tasks - 1; i >= 0; --i) {
456 const int t = tasks[i];
457 if (helper_->IsAbsent(t) ||
458 (helper_->IsPresent(t) && helper_->StartIsFixed(t))) {
459 // This tasks does not have to be considered for propagation in the rest
460 // of the sub-tree. Note that StartIsFixed() depends on the time
461 // direction, it is why we use two lists.
462 std::swap(tasks[i], tasks[--num_tasks]);
463 continue;
464 }
465
466 // Skip if demand is too low.
467 if (DemandMin(t) <= demand_threshold) {
468 if (DemandMax(t) == 0) {
469 // We can ignore this task for the rest of the subtree like above.
470 std::swap(tasks[i], tasks[--num_tasks]);
471 }
472
473 // This task does not have to be considered for propagation in this
474 // particular iteration, but maybe it does later.
475 continue;
476 }
477
478 // Skip if size is zero.
479 if (helper_->SizeMin(t) == 0) {
480 if (helper_->SizeMax(t) == 0) {
481 std::swap(tasks[i], tasks[--num_tasks]);
482 }
483 continue;
484 }
485
486 if (!SweepTask(t)) return false;
487 }
488
489 return true;
490}
491
492bool TimeTablingPerTask::SweepTask(int task_id) {
493 const IntegerValue start_max = helper_->StartMax(task_id);
494 const IntegerValue size_min = helper_->SizeMin(task_id);
495 const IntegerValue initial_start_min = helper_->StartMin(task_id);
496 const IntegerValue initial_end_min = helper_->EndMin(task_id);
497
498 IntegerValue new_start_min = initial_start_min;
499 IntegerValue new_end_min = initial_end_min;
500
501 // Find the profile rectangle that overlaps the minimum start time of task_id.
502 // The sentinel prevents out of bound exceptions.
503 DCHECK(std::is_sorted(profile_.begin(), profile_.end()));
504 int rec_id =
505 std::upper_bound(profile_.begin(), profile_.end(), new_start_min,
506 [&](IntegerValue value, const ProfileRectangle& rect) {
507 return value < rect.start;
508 }) -
509 profile_.begin();
510 --rec_id;
511
512 // A profile rectangle is in conflict with the task if its height exceeds
513 // conflict_height.
514 const IntegerValue conflict_height = CapacityMax() - DemandMin(task_id);
515
516 // True if the task is in conflict with at least one profile rectangle.
517 bool conflict_found = false;
518
519 // Last time point during which task_id was in conflict with a profile
520 // rectangle before being pushed.
521 IntegerValue last_initial_conflict = kMinIntegerValue;
522
523 // Push the task from left to right until it does not overlap any conflicting
524 // rectangle. Pushing the task may push the end of its compulsory part on the
525 // right but will not change its start. The main loop of the propagator will
526 // take care of rebuilding the profile with these possible changes and to
527 // propagate again in order to reach the timetabling consistency or to fail if
528 // the profile exceeds the resource capacity.
529 IntegerValue limit = std::min(start_max, new_end_min);
530 for (; profile_[rec_id].start < limit; ++rec_id) {
531 // If the profile rectangle is not conflicting, go to the next rectangle.
532 if (profile_[rec_id].height <= conflict_height) continue;
533
534 conflict_found = true;
535
536 // Compute the next minimum start and end times of task_id. The variables
537 // are not updated yet.
538 new_start_min = profile_[rec_id + 1].start; // i.e. profile_[rec_id].end
539 if (start_max < new_start_min) {
540 if (IsInProfile(task_id)) {
541 // Because the task is part of the profile, we cannot push it further.
542 new_start_min = start_max;
543 } else {
544 // We have a conflict or we can push the task absence. In both cases
545 // we don't need more than start_max + 1 in the explanation below.
546 new_start_min = start_max + 1;
547 }
548 }
549
550 new_end_min = std::max(new_end_min, new_start_min + size_min);
551 limit = std::min(start_max, new_end_min);
552
553 if (profile_[rec_id].start < initial_end_min) {
554 last_initial_conflict = std::min(new_start_min, initial_end_min) - 1;
555 }
556 }
557
558 if (!conflict_found) return true;
559
560 if (initial_start_min != new_start_min &&
561 !UpdateStartingTime(task_id, last_initial_conflict, new_start_min)) {
562 return false;
563 }
564
565 return true;
566}
567
568bool TimeTablingPerTask::UpdateStartingTime(int task_id, IntegerValue left,
569 IntegerValue right) {
570 helper_->ClearReason();
571
572 AddProfileReason(left, right);
573 if (capacity_.var != kNoIntegerVariable) {
574 helper_->MutableIntegerReason()->push_back(
575 integer_trail_->UpperBoundAsLiteral(capacity_.var));
576 }
577
578 // State of the task to be pushed.
579 helper_->AddEndMinReason(task_id, left + 1);
580 helper_->AddSizeMinReason(task_id, IntegerValue(1));
581 if (demands_[task_id].var != kNoIntegerVariable) {
582 helper_->MutableIntegerReason()->push_back(
583 integer_trail_->LowerBoundAsLiteral(demands_[task_id].var));
584 }
585
586 // Explain the increase of the minimum start and end times.
587 return helper_->IncreaseStartMin(task_id, right);
588}
589
590void TimeTablingPerTask::AddProfileReason(IntegerValue left,
591 IntegerValue right) {
592 for (int i = 0; i < num_profile_tasks_; ++i) {
593 const int t = profile_tasks_[i];
594
595 // Do not consider the task if it does not overlap for sure (left, right).
596 const IntegerValue start_max = helper_->StartMax(t);
597 if (right <= start_max) continue;
598 const IntegerValue end_min = helper_->EndMin(t);
599 if (end_min <= left) continue;
600
601 helper_->AddPresenceReason(t);
602 helper_->AddStartMaxReason(t, std::max(left, start_max));
603 helper_->AddEndMinReason(t, std::min(right, end_min));
604 if (demands_[t].var != kNoIntegerVariable) {
605 helper_->MutableIntegerReason()->push_back(
606 integer_trail_->LowerBoundAsLiteral(demands_[t].var));
607 }
608 }
609}
610
611bool TimeTablingPerTask::IncreaseCapacity(IntegerValue time,
612 IntegerValue new_min) {
613 if (new_min <= CapacityMin()) return true;
614
615 helper_->ClearReason();
616 AddProfileReason(time, time + 1);
617 if (capacity_.var == kNoIntegerVariable) {
618 return helper_->ReportConflict();
619 }
620
621 helper_->MutableIntegerReason()->push_back(
622 integer_trail_->UpperBoundAsLiteral(capacity_.var));
623 return helper_->PushIntegerLiteral(capacity_.GreaterOrEqual(new_min));
624}
625
626} // namespace sat
627} // namespace operations_research
int64_t max
Definition: alldiff_cst.cc:140
int64_t min
Definition: alldiff_cst.cc:139
#define CHECK_LT(val1, val2)
Definition: base/logging.h:702
#define CHECK_GT(val1, val2)
Definition: base/logging.h:704
#define DCHECK_GE(val1, val2)
Definition: base/logging.h:891
#define DCHECK(condition)
Definition: base/logging.h:886
An Assignment is a variable -> domains mapping, used to report solutions to the user.
void WatchLowerBound(IntegerVariable var, int id, int watch_index=-1)
Definition: integer.h:1559
void WatchUpperBound(IntegerVariable var, int id, int watch_index=-1)
Definition: integer.h:1577
int Register(PropagatorInterface *propagator)
Definition: integer.cc:1995
ABSL_MUST_USE_RESULT bool Enqueue(IntegerLiteral i_lit, absl::Span< const Literal > literal_reason, absl::Span< const IntegerLiteral > integer_reason)
Definition: integer.cc:1027
IntegerLiteral LowerBoundAsLiteral(IntegerVariable i) const
Definition: integer.h:1467
bool ReportConflict(absl::Span< const Literal > literal_reason, absl::Span< const IntegerLiteral > integer_reason)
Definition: integer.h:917
void EnqueueLiteral(Literal literal, absl::Span< const Literal > literal_reason, absl::Span< const IntegerLiteral > integer_reason)
Definition: integer.cc:1141
IntegerValue UpperBound(IntegerVariable i) const
Definition: integer.h:1439
IntegerValue LowerBound(IntegerVariable i) const
Definition: integer.h:1435
IntegerLiteral UpperBoundAsLiteral(IntegerVariable i) const
Definition: integer.h:1472
ABSL_MUST_USE_RESULT bool ConditionalEnqueue(Literal lit, IntegerLiteral i_lit, std::vector< Literal > *literal_reason, std::vector< IntegerLiteral > *integer_reason)
Definition: integer.cc:1034
Class that owns everything related to a particular optimization model.
Definition: sat/model.h:38
ReservoirTimeTabling(const std::vector< AffineExpression > &times, const std::vector< IntegerValue > &deltas, const std::vector< Literal > &presences, IntegerValue capacity, Model *model)
Definition: timetable.cc:53
ABSL_MUST_USE_RESULT bool PushIntegerLiteral(IntegerLiteral lit)
Definition: intervals.cc:426
std::vector< IntegerLiteral > * MutableIntegerReason()
Definition: intervals.h:313
void WatchAllTasks(int id, GenericLiteralWatcher *watcher, bool watch_start_max=true, bool watch_end_max=true) const
Definition: intervals.cc:508
const std::vector< TaskTime > & TaskByIncreasingEndMin()
Definition: intervals.cc:325
void AddEndMinReason(int t, IntegerValue lower_bound)
Definition: intervals.h:575
ABSL_MUST_USE_RESULT bool IncreaseStartMin(int t, IntegerValue new_start_min)
Definition: intervals.cc:453
ABSL_MUST_USE_RESULT bool SynchronizeAndSetTimeDirection(bool is_forward)
Definition: intervals.cc:295
const std::vector< TaskTime > & TaskByDecreasingStartMax()
Definition: intervals.cc:337
void AddStartMaxReason(int t, IntegerValue upper_bound)
Definition: intervals.h:568
void RegisterWith(GenericLiteralWatcher *watcher)
Definition: timetable.cc:314
TimeTablingPerTask(const std::vector< AffineExpression > &demands, AffineExpression capacity, IntegerTrail *integer_trail, SchedulingConstraintHelper *helper)
Definition: timetable.cc:280
bool LiteralIsTrue(Literal literal) const
Definition: sat_base.h:152
bool LiteralIsFalse(Literal literal) const
Definition: sat_base.h:149
int64_t value
IntVar * var
Definition: expr_array.cc:1874
double upper_bound
GRBmodel * model
void swap(IdMap< K, V > &a, IdMap< K, V > &b)
Definition: id_map.h:263
void AddReservoirConstraint(std::vector< AffineExpression > times, std::vector< IntegerValue > deltas, std::vector< Literal > presences, int64_t min_level, int64_t max_level, Model *model)
Definition: timetable.cc:28
constexpr IntegerValue kMaxIntegerValue(std::numeric_limits< IntegerValue::ValueType >::max() - 1)
constexpr IntegerValue kMinIntegerValue(-kMaxIntegerValue)
std::function< void(Model *)> LowerOrEqual(IntegerVariable v, int64_t ub)
Definition: integer.h:1696
const IntegerVariable kNoIntegerVariable(-1)
std::function< void(Model *)> GreaterOrEqual(IntegerVariable v, int64_t lb)
Definition: integer.h:1681
Collection of objects used to extend the Constraint Solver library.
int64_t CapSub(int64_t x, int64_t y)
int64_t time
Definition: resource.cc:1691
int64_t capacity
Rev< int64_t > start_max
Rev< int64_t > end_min
IntegerLiteral GreaterOrEqual(IntegerValue bound) const
Definition: integer.h:1406