| ... | ... |
@@ -500,306 +500,321 @@ |
| 500 | 500 |
}; //class CandidateListPivotRule |
| 501 | 501 |
|
| 502 | 502 |
|
| 503 | 503 |
// Implementation of the Altering Candidate List pivot rule |
| 504 | 504 |
class AlteringListPivotRule |
| 505 | 505 |
{
|
| 506 | 506 |
private: |
| 507 | 507 |
|
| 508 | 508 |
// References to the NetworkSimplex class |
| 509 | 509 |
const IntVector &_source; |
| 510 | 510 |
const IntVector &_target; |
| 511 | 511 |
const CostVector &_cost; |
| 512 | 512 |
const IntVector &_state; |
| 513 | 513 |
const CostVector &_pi; |
| 514 | 514 |
int &_in_arc; |
| 515 | 515 |
int _search_arc_num; |
| 516 | 516 |
|
| 517 | 517 |
// Pivot rule data |
| 518 | 518 |
int _block_size, _head_length, _curr_length; |
| 519 | 519 |
int _next_arc; |
| 520 | 520 |
IntVector _candidates; |
| 521 | 521 |
CostVector _cand_cost; |
| 522 | 522 |
|
| 523 | 523 |
// Functor class to compare arcs during sort of the candidate list |
| 524 | 524 |
class SortFunc |
| 525 | 525 |
{
|
| 526 | 526 |
private: |
| 527 | 527 |
const CostVector &_map; |
| 528 | 528 |
public: |
| 529 | 529 |
SortFunc(const CostVector &map) : _map(map) {}
|
| 530 | 530 |
bool operator()(int left, int right) {
|
| 531 | 531 |
return _map[left] > _map[right]; |
| 532 | 532 |
} |
| 533 | 533 |
}; |
| 534 | 534 |
|
| 535 | 535 |
SortFunc _sort_func; |
| 536 | 536 |
|
| 537 | 537 |
public: |
| 538 | 538 |
|
| 539 | 539 |
// Constructor |
| 540 | 540 |
AlteringListPivotRule(NetworkSimplex &ns) : |
| 541 | 541 |
_source(ns._source), _target(ns._target), |
| 542 | 542 |
_cost(ns._cost), _state(ns._state), _pi(ns._pi), |
| 543 | 543 |
_in_arc(ns.in_arc), _search_arc_num(ns._search_arc_num), |
| 544 | 544 |
_next_arc(0), _cand_cost(ns._search_arc_num), _sort_func(_cand_cost) |
| 545 | 545 |
{
|
| 546 | 546 |
// The main parameters of the pivot rule |
| 547 | 547 |
const double BLOCK_SIZE_FACTOR = 1.0; |
| 548 | 548 |
const int MIN_BLOCK_SIZE = 10; |
| 549 | 549 |
const double HEAD_LENGTH_FACTOR = 0.1; |
| 550 | 550 |
const int MIN_HEAD_LENGTH = 3; |
| 551 | 551 |
|
| 552 | 552 |
_block_size = std::max( int(BLOCK_SIZE_FACTOR * |
| 553 | 553 |
std::sqrt(double(_search_arc_num))), |
| 554 | 554 |
MIN_BLOCK_SIZE ); |
| 555 | 555 |
_head_length = std::max( int(HEAD_LENGTH_FACTOR * _block_size), |
| 556 | 556 |
MIN_HEAD_LENGTH ); |
| 557 | 557 |
_candidates.resize(_head_length + _block_size); |
| 558 | 558 |
_curr_length = 0; |
| 559 | 559 |
} |
| 560 | 560 |
|
| 561 | 561 |
// Find next entering arc |
| 562 | 562 |
bool findEnteringArc() {
|
| 563 | 563 |
// Check the current candidate list |
| 564 | 564 |
int e; |
| 565 | 565 |
for (int i = 0; i < _curr_length; ++i) {
|
| 566 | 566 |
e = _candidates[i]; |
| 567 | 567 |
_cand_cost[e] = _state[e] * |
| 568 | 568 |
(_cost[e] + _pi[_source[e]] - _pi[_target[e]]); |
| 569 | 569 |
if (_cand_cost[e] >= 0) {
|
| 570 | 570 |
_candidates[i--] = _candidates[--_curr_length]; |
| 571 | 571 |
} |
| 572 | 572 |
} |
| 573 | 573 |
|
| 574 | 574 |
// Extend the list |
| 575 | 575 |
int cnt = _block_size; |
| 576 | 576 |
int limit = _head_length; |
| 577 | 577 |
|
| 578 | 578 |
for (e = _next_arc; e < _search_arc_num; ++e) {
|
| 579 | 579 |
_cand_cost[e] = _state[e] * |
| 580 | 580 |
(_cost[e] + _pi[_source[e]] - _pi[_target[e]]); |
| 581 | 581 |
if (_cand_cost[e] < 0) {
|
| 582 | 582 |
_candidates[_curr_length++] = e; |
| 583 | 583 |
} |
| 584 | 584 |
if (--cnt == 0) {
|
| 585 | 585 |
if (_curr_length > limit) goto search_end; |
| 586 | 586 |
limit = 0; |
| 587 | 587 |
cnt = _block_size; |
| 588 | 588 |
} |
| 589 | 589 |
} |
| 590 | 590 |
for (e = 0; e < _next_arc; ++e) {
|
| 591 | 591 |
_cand_cost[e] = _state[e] * |
| 592 | 592 |
(_cost[e] + _pi[_source[e]] - _pi[_target[e]]); |
| 593 | 593 |
if (_cand_cost[e] < 0) {
|
| 594 | 594 |
_candidates[_curr_length++] = e; |
| 595 | 595 |
} |
| 596 | 596 |
if (--cnt == 0) {
|
| 597 | 597 |
if (_curr_length > limit) goto search_end; |
| 598 | 598 |
limit = 0; |
| 599 | 599 |
cnt = _block_size; |
| 600 | 600 |
} |
| 601 | 601 |
} |
| 602 | 602 |
if (_curr_length == 0) return false; |
| 603 | 603 |
|
| 604 | 604 |
search_end: |
| 605 | 605 |
|
| 606 | 606 |
// Make heap of the candidate list (approximating a partial sort) |
| 607 | 607 |
make_heap( _candidates.begin(), _candidates.begin() + _curr_length, |
| 608 | 608 |
_sort_func ); |
| 609 | 609 |
|
| 610 | 610 |
// Pop the first element of the heap |
| 611 | 611 |
_in_arc = _candidates[0]; |
| 612 | 612 |
_next_arc = e; |
| 613 | 613 |
pop_heap( _candidates.begin(), _candidates.begin() + _curr_length, |
| 614 | 614 |
_sort_func ); |
| 615 | 615 |
_curr_length = std::min(_head_length, _curr_length - 1); |
| 616 | 616 |
return true; |
| 617 | 617 |
} |
| 618 | 618 |
|
| 619 | 619 |
}; //class AlteringListPivotRule |
| 620 | 620 |
|
| 621 | 621 |
public: |
| 622 | 622 |
|
| 623 | 623 |
/// \brief Constructor. |
| 624 | 624 |
/// |
| 625 | 625 |
/// The constructor of the class. |
| 626 | 626 |
/// |
| 627 | 627 |
/// \param graph The digraph the algorithm runs on. |
| 628 |
|
|
| 628 |
/// \param arc_mixing Indicate if the arcs have to be stored in a |
|
| 629 |
/// mixed order in the internal data structure. |
|
| 630 |
/// In special cases, it could lead to better overall performance, |
|
| 631 |
/// but it is usually slower. Therefore it is disabled by default. |
|
| 632 |
NetworkSimplex(const GR& graph, bool arc_mixing = false) : |
|
| 629 | 633 |
_graph(graph), _node_id(graph), _arc_id(graph), |
| 630 | 634 |
INF(std::numeric_limits<Value>::has_infinity ? |
| 631 | 635 |
std::numeric_limits<Value>::infinity() : |
| 632 | 636 |
std::numeric_limits<Value>::max()) |
| 633 | 637 |
{
|
| 634 | 638 |
// Check the value types |
| 635 | 639 |
LEMON_ASSERT(std::numeric_limits<Value>::is_signed, |
| 636 | 640 |
"The flow type of NetworkSimplex must be signed"); |
| 637 | 641 |
LEMON_ASSERT(std::numeric_limits<Cost>::is_signed, |
| 638 | 642 |
"The cost type of NetworkSimplex must be signed"); |
| 639 | 643 |
|
| 640 | 644 |
// Resize vectors |
| 641 | 645 |
_node_num = countNodes(_graph); |
| 642 | 646 |
_arc_num = countArcs(_graph); |
| 643 | 647 |
int all_node_num = _node_num + 1; |
| 644 | 648 |
int max_arc_num = _arc_num + 2 * _node_num; |
| 645 | 649 |
|
| 646 | 650 |
_source.resize(max_arc_num); |
| 647 | 651 |
_target.resize(max_arc_num); |
| 648 | 652 |
|
| 649 | 653 |
_lower.resize(_arc_num); |
| 650 | 654 |
_upper.resize(_arc_num); |
| 651 | 655 |
_cap.resize(max_arc_num); |
| 652 | 656 |
_cost.resize(max_arc_num); |
| 653 | 657 |
_supply.resize(all_node_num); |
| 654 | 658 |
_flow.resize(max_arc_num); |
| 655 | 659 |
_pi.resize(all_node_num); |
| 656 | 660 |
|
| 657 | 661 |
_parent.resize(all_node_num); |
| 658 | 662 |
_pred.resize(all_node_num); |
| 659 | 663 |
_forward.resize(all_node_num); |
| 660 | 664 |
_thread.resize(all_node_num); |
| 661 | 665 |
_rev_thread.resize(all_node_num); |
| 662 | 666 |
_succ_num.resize(all_node_num); |
| 663 | 667 |
_last_succ.resize(all_node_num); |
| 664 | 668 |
_state.resize(max_arc_num); |
| 665 | 669 |
|
| 666 |
// Copy the graph |
|
| 670 |
// Copy the graph |
|
| 667 | 671 |
int i = 0; |
| 668 | 672 |
for (NodeIt n(_graph); n != INVALID; ++n, ++i) {
|
| 669 | 673 |
_node_id[n] = i; |
| 670 | 674 |
} |
| 675 |
if (arc_mixing) {
|
|
| 676 |
// Store the arcs in a mixed order |
|
| 671 | 677 |
int k = std::max(int(std::sqrt(double(_arc_num))), 10); |
| 672 |
i = 0; |
|
| 678 |
int i = 0, j = 0; |
|
| 673 | 679 |
for (ArcIt a(_graph); a != INVALID; ++a) {
|
| 674 | 680 |
_arc_id[a] = i; |
| 675 | 681 |
_source[i] = _node_id[_graph.source(a)]; |
| 676 | 682 |
_target[i] = _node_id[_graph.target(a)]; |
| 677 |
if ((i += k) >= _arc_num) i = |
|
| 683 |
if ((i += k) >= _arc_num) i = ++j; |
|
| 684 |
} |
|
| 685 |
} else {
|
|
| 686 |
// Store the arcs in the original order |
|
| 687 |
int i = 0; |
|
| 688 |
for (ArcIt a(_graph); a != INVALID; ++a, ++i) {
|
|
| 689 |
_arc_id[a] = i; |
|
| 690 |
_source[i] = _node_id[_graph.source(a)]; |
|
| 691 |
_target[i] = _node_id[_graph.target(a)]; |
|
| 692 |
} |
|
| 678 | 693 |
} |
| 679 | 694 |
|
| 680 | 695 |
// Initialize maps |
| 681 | 696 |
for (int i = 0; i != _node_num; ++i) {
|
| 682 | 697 |
_supply[i] = 0; |
| 683 | 698 |
} |
| 684 | 699 |
for (int i = 0; i != _arc_num; ++i) {
|
| 685 | 700 |
_lower[i] = 0; |
| 686 | 701 |
_upper[i] = INF; |
| 687 | 702 |
_cost[i] = 1; |
| 688 | 703 |
} |
| 689 | 704 |
_have_lower = false; |
| 690 | 705 |
_stype = GEQ; |
| 691 | 706 |
} |
| 692 | 707 |
|
| 693 | 708 |
/// \name Parameters |
| 694 | 709 |
/// The parameters of the algorithm can be specified using these |
| 695 | 710 |
/// functions. |
| 696 | 711 |
|
| 697 | 712 |
/// @{
|
| 698 | 713 |
|
| 699 | 714 |
/// \brief Set the lower bounds on the arcs. |
| 700 | 715 |
/// |
| 701 | 716 |
/// This function sets the lower bounds on the arcs. |
| 702 | 717 |
/// If it is not used before calling \ref run(), the lower bounds |
| 703 | 718 |
/// will be set to zero on all arcs. |
| 704 | 719 |
/// |
| 705 | 720 |
/// \param map An arc map storing the lower bounds. |
| 706 | 721 |
/// Its \c Value type must be convertible to the \c Value type |
| 707 | 722 |
/// of the algorithm. |
| 708 | 723 |
/// |
| 709 | 724 |
/// \return <tt>(*this)</tt> |
| 710 | 725 |
template <typename LowerMap> |
| 711 | 726 |
NetworkSimplex& lowerMap(const LowerMap& map) {
|
| 712 | 727 |
_have_lower = true; |
| 713 | 728 |
for (ArcIt a(_graph); a != INVALID; ++a) {
|
| 714 | 729 |
_lower[_arc_id[a]] = map[a]; |
| 715 | 730 |
} |
| 716 | 731 |
return *this; |
| 717 | 732 |
} |
| 718 | 733 |
|
| 719 | 734 |
/// \brief Set the upper bounds (capacities) on the arcs. |
| 720 | 735 |
/// |
| 721 | 736 |
/// This function sets the upper bounds (capacities) on the arcs. |
| 722 | 737 |
/// If it is not used before calling \ref run(), the upper bounds |
| 723 | 738 |
/// will be set to \ref INF on all arcs (i.e. the flow value will be |
| 724 | 739 |
/// unbounded from above on each arc). |
| 725 | 740 |
/// |
| 726 | 741 |
/// \param map An arc map storing the upper bounds. |
| 727 | 742 |
/// Its \c Value type must be convertible to the \c Value type |
| 728 | 743 |
/// of the algorithm. |
| 729 | 744 |
/// |
| 730 | 745 |
/// \return <tt>(*this)</tt> |
| 731 | 746 |
template<typename UpperMap> |
| 732 | 747 |
NetworkSimplex& upperMap(const UpperMap& map) {
|
| 733 | 748 |
for (ArcIt a(_graph); a != INVALID; ++a) {
|
| 734 | 749 |
_upper[_arc_id[a]] = map[a]; |
| 735 | 750 |
} |
| 736 | 751 |
return *this; |
| 737 | 752 |
} |
| 738 | 753 |
|
| 739 | 754 |
/// \brief Set the costs of the arcs. |
| 740 | 755 |
/// |
| 741 | 756 |
/// This function sets the costs of the arcs. |
| 742 | 757 |
/// If it is not used before calling \ref run(), the costs |
| 743 | 758 |
/// will be set to \c 1 on all arcs. |
| 744 | 759 |
/// |
| 745 | 760 |
/// \param map An arc map storing the costs. |
| 746 | 761 |
/// Its \c Value type must be convertible to the \c Cost type |
| 747 | 762 |
/// of the algorithm. |
| 748 | 763 |
/// |
| 749 | 764 |
/// \return <tt>(*this)</tt> |
| 750 | 765 |
template<typename CostMap> |
| 751 | 766 |
NetworkSimplex& costMap(const CostMap& map) {
|
| 752 | 767 |
for (ArcIt a(_graph); a != INVALID; ++a) {
|
| 753 | 768 |
_cost[_arc_id[a]] = map[a]; |
| 754 | 769 |
} |
| 755 | 770 |
return *this; |
| 756 | 771 |
} |
| 757 | 772 |
|
| 758 | 773 |
/// \brief Set the supply values of the nodes. |
| 759 | 774 |
/// |
| 760 | 775 |
/// This function sets the supply values of the nodes. |
| 761 | 776 |
/// If neither this function nor \ref stSupply() is used before |
| 762 | 777 |
/// calling \ref run(), the supply of each node will be set to zero. |
| 763 | 778 |
/// (It makes sense only if non-zero lower bounds are given.) |
| 764 | 779 |
/// |
| 765 | 780 |
/// \param map A node map storing the supply values. |
| 766 | 781 |
/// Its \c Value type must be convertible to the \c Value type |
| 767 | 782 |
/// of the algorithm. |
| 768 | 783 |
/// |
| 769 | 784 |
/// \return <tt>(*this)</tt> |
| 770 | 785 |
template<typename SupplyMap> |
| 771 | 786 |
NetworkSimplex& supplyMap(const SupplyMap& map) {
|
| 772 | 787 |
for (NodeIt n(_graph); n != INVALID; ++n) {
|
| 773 | 788 |
_supply[_node_id[n]] = map[n]; |
| 774 | 789 |
} |
| 775 | 790 |
return *this; |
| 776 | 791 |
} |
| 777 | 792 |
|
| 778 | 793 |
/// \brief Set single source and target nodes and a supply value. |
| 779 | 794 |
/// |
| 780 | 795 |
/// This function sets a single source node and a single target node |
| 781 | 796 |
/// and the required flow value. |
| 782 | 797 |
/// If neither this function nor \ref supplyMap() is used before |
| 783 | 798 |
/// calling \ref run(), the supply of each node will be set to zero. |
| 784 | 799 |
/// (It makes sense only if non-zero lower bounds are given.) |
| 785 | 800 |
/// |
| 786 | 801 |
/// Using this function has the same effect as using \ref supplyMap() |
| 787 | 802 |
/// with such a map in which \c k is assigned to \c s, \c -k is |
| 788 | 803 |
/// assigned to \c t and all other nodes have zero supply value. |
| 789 | 804 |
/// |
| 790 | 805 |
/// \param s The source node. |
| 791 | 806 |
/// \param t The target node. |
| 792 | 807 |
/// \param k The required amount of flow from node \c s to node \c t |
| 793 | 808 |
/// (i.e. the supply of \c s and the demand of \c t). |
| 794 | 809 |
/// |
| 795 | 810 |
/// \return <tt>(*this)</tt> |
| 796 | 811 |
NetworkSimplex& stSupply(const Node& s, const Node& t, Value k) {
|
| 797 | 812 |
for (int i = 0; i != _node_num; ++i) {
|
| 798 | 813 |
_supply[i] = 0; |
| 799 | 814 |
} |
| 800 | 815 |
_supply[_node_id[s]] = k; |
| 801 | 816 |
_supply[_node_id[t]] = -k; |
| 802 | 817 |
return *this; |
| 803 | 818 |
} |
| 804 | 819 |
|
| 805 | 820 |
/// \brief Set the type of the supply constraints. |
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