| ... | ... |
@@ -862,97 +862,97 @@ |
| 862 | 862 |
for (NodeIt n(_graph); n != INVALID; ++n) {
|
| 863 | 863 |
_excess[_node_id[n]] = sup[n]; |
| 864 | 864 |
} |
| 865 | 865 |
for (int a = _first_out[_root]; a != _res_arc_num; ++a) {
|
| 866 | 866 |
int u = _target[a]; |
| 867 | 867 |
int ra = _reverse[a]; |
| 868 | 868 |
_res_cap[a] = -_sum_supply + 1; |
| 869 | 869 |
_res_cap[ra] = -_excess[u]; |
| 870 | 870 |
_cost[a] = 0; |
| 871 | 871 |
_cost[ra] = 0; |
| 872 | 872 |
_excess[u] = 0; |
| 873 | 873 |
} |
| 874 | 874 |
} else {
|
| 875 | 875 |
for (ArcIt a(_graph); a != INVALID; ++a) {
|
| 876 | 876 |
Value fa = flow[a]; |
| 877 | 877 |
_res_cap[_arc_idf[a]] = cap[a] - fa; |
| 878 | 878 |
_res_cap[_arc_idb[a]] = fa; |
| 879 | 879 |
} |
| 880 | 880 |
for (int a = _first_out[_root]; a != _res_arc_num; ++a) {
|
| 881 | 881 |
int ra = _reverse[a]; |
| 882 | 882 |
_res_cap[a] = 0; |
| 883 | 883 |
_res_cap[ra] = 0; |
| 884 | 884 |
_cost[a] = 0; |
| 885 | 885 |
_cost[ra] = 0; |
| 886 | 886 |
} |
| 887 | 887 |
} |
| 888 | 888 |
|
| 889 | 889 |
return OPTIMAL; |
| 890 | 890 |
} |
| 891 | 891 |
|
| 892 | 892 |
// Execute the algorithm and transform the results |
| 893 | 893 |
void start(Method method) {
|
| 894 | 894 |
// Maximum path length for partial augment |
| 895 | 895 |
const int MAX_PATH_LENGTH = 4; |
| 896 | 896 |
|
| 897 | 897 |
// Initialize data structures for buckets |
| 898 | 898 |
_max_rank = _alpha * _res_node_num; |
| 899 | 899 |
_buckets.resize(_max_rank); |
| 900 | 900 |
_bucket_next.resize(_res_node_num + 1); |
| 901 | 901 |
_bucket_prev.resize(_res_node_num + 1); |
| 902 | 902 |
_rank.resize(_res_node_num + 1); |
| 903 | 903 |
|
| 904 | 904 |
// Execute the algorithm |
| 905 | 905 |
switch (method) {
|
| 906 | 906 |
case PUSH: |
| 907 | 907 |
startPush(); |
| 908 | 908 |
break; |
| 909 | 909 |
case AUGMENT: |
| 910 |
startAugment(); |
|
| 910 |
startAugment(_res_node_num - 1); |
|
| 911 | 911 |
break; |
| 912 | 912 |
case PARTIAL_AUGMENT: |
| 913 | 913 |
startAugment(MAX_PATH_LENGTH); |
| 914 | 914 |
break; |
| 915 | 915 |
} |
| 916 | 916 |
|
| 917 | 917 |
// Compute node potentials for the original costs |
| 918 | 918 |
_arc_vec.clear(); |
| 919 | 919 |
_cost_vec.clear(); |
| 920 | 920 |
for (int j = 0; j != _res_arc_num; ++j) {
|
| 921 | 921 |
if (_res_cap[j] > 0) {
|
| 922 | 922 |
_arc_vec.push_back(IntPair(_source[j], _target[j])); |
| 923 | 923 |
_cost_vec.push_back(_scost[j]); |
| 924 | 924 |
} |
| 925 | 925 |
} |
| 926 | 926 |
_sgr.build(_res_node_num, _arc_vec.begin(), _arc_vec.end()); |
| 927 | 927 |
|
| 928 | 928 |
typename BellmanFord<StaticDigraph, LargeCostArcMap> |
| 929 | 929 |
::template SetDistMap<LargeCostNodeMap>::Create bf(_sgr, _cost_map); |
| 930 | 930 |
bf.distMap(_pi_map); |
| 931 | 931 |
bf.init(0); |
| 932 | 932 |
bf.start(); |
| 933 | 933 |
|
| 934 | 934 |
// Handle non-zero lower bounds |
| 935 | 935 |
if (_have_lower) {
|
| 936 | 936 |
int limit = _first_out[_root]; |
| 937 | 937 |
for (int j = 0; j != limit; ++j) {
|
| 938 | 938 |
if (!_forward[j]) _res_cap[j] += _lower[j]; |
| 939 | 939 |
} |
| 940 | 940 |
} |
| 941 | 941 |
} |
| 942 | 942 |
|
| 943 | 943 |
// Initialize a cost scaling phase |
| 944 | 944 |
void initPhase() {
|
| 945 | 945 |
// Saturate arcs not satisfying the optimality condition |
| 946 | 946 |
for (int u = 0; u != _res_node_num; ++u) {
|
| 947 | 947 |
int last_out = _first_out[u+1]; |
| 948 | 948 |
LargeCost pi_u = _pi[u]; |
| 949 | 949 |
for (int a = _first_out[u]; a != last_out; ++a) {
|
| 950 | 950 |
int v = _target[a]; |
| 951 | 951 |
if (_res_cap[a] > 0 && _cost[a] + pi_u - _pi[v] < 0) {
|
| 952 | 952 |
Value delta = _res_cap[a]; |
| 953 | 953 |
_excess[u] -= delta; |
| 954 | 954 |
_excess[v] += delta; |
| 955 | 955 |
_res_cap[a] = 0; |
| 956 | 956 |
_res_cap[_reverse[a]] += delta; |
| 957 | 957 |
} |
| 958 | 958 |
} |
| ... | ... |
@@ -1039,97 +1039,97 @@ |
| 1039 | 1039 |
int new_rank_v = old_rank_v; |
| 1040 | 1040 |
if (nrc < LargeCost(_max_rank)) |
| 1041 | 1041 |
new_rank_v = r + 1 + int(nrc); |
| 1042 | 1042 |
|
| 1043 | 1043 |
// Change the rank of v |
| 1044 | 1044 |
if (new_rank_v < old_rank_v) {
|
| 1045 | 1045 |
_rank[v] = new_rank_v; |
| 1046 | 1046 |
_next_out[v] = _first_out[v]; |
| 1047 | 1047 |
|
| 1048 | 1048 |
// Remove v from its old bucket |
| 1049 | 1049 |
if (old_rank_v < _max_rank) {
|
| 1050 | 1050 |
if (_buckets[old_rank_v] == v) {
|
| 1051 | 1051 |
_buckets[old_rank_v] = _bucket_next[v]; |
| 1052 | 1052 |
} else {
|
| 1053 | 1053 |
_bucket_next[_bucket_prev[v]] = _bucket_next[v]; |
| 1054 | 1054 |
_bucket_prev[_bucket_next[v]] = _bucket_prev[v]; |
| 1055 | 1055 |
} |
| 1056 | 1056 |
} |
| 1057 | 1057 |
|
| 1058 | 1058 |
// Insert v to its new bucket |
| 1059 | 1059 |
_bucket_next[v] = _buckets[new_rank_v]; |
| 1060 | 1060 |
_bucket_prev[_buckets[new_rank_v]] = v; |
| 1061 | 1061 |
_buckets[new_rank_v] = v; |
| 1062 | 1062 |
} |
| 1063 | 1063 |
} |
| 1064 | 1064 |
} |
| 1065 | 1065 |
} |
| 1066 | 1066 |
|
| 1067 | 1067 |
// Finish search if there are no more active nodes |
| 1068 | 1068 |
if (_excess[u] > 0) {
|
| 1069 | 1069 |
total_excess -= _excess[u]; |
| 1070 | 1070 |
if (total_excess <= 0) break; |
| 1071 | 1071 |
} |
| 1072 | 1072 |
} |
| 1073 | 1073 |
if (total_excess <= 0) break; |
| 1074 | 1074 |
} |
| 1075 | 1075 |
|
| 1076 | 1076 |
// Relabel nodes |
| 1077 | 1077 |
for (int u = 0; u != _res_node_num; ++u) {
|
| 1078 | 1078 |
int k = std::min(_rank[u], r); |
| 1079 | 1079 |
if (k > 0) {
|
| 1080 | 1080 |
_pi[u] -= _epsilon * k; |
| 1081 | 1081 |
_next_out[u] = _first_out[u]; |
| 1082 | 1082 |
} |
| 1083 | 1083 |
} |
| 1084 | 1084 |
} |
| 1085 | 1085 |
|
| 1086 | 1086 |
/// Execute the algorithm performing augment and relabel operations |
| 1087 |
void startAugment(int max_length |
|
| 1087 |
void startAugment(int max_length) {
|
|
| 1088 | 1088 |
// Paramters for heuristics |
| 1089 | 1089 |
const int EARLY_TERM_EPSILON_LIMIT = 1000; |
| 1090 | 1090 |
const double GLOBAL_UPDATE_FACTOR = 3.0; |
| 1091 | 1091 |
|
| 1092 | 1092 |
const int global_update_freq = int(GLOBAL_UPDATE_FACTOR * |
| 1093 | 1093 |
(_res_node_num + _sup_node_num * _sup_node_num)); |
| 1094 | 1094 |
int next_update_limit = global_update_freq; |
| 1095 | 1095 |
|
| 1096 | 1096 |
int relabel_cnt = 0; |
| 1097 | 1097 |
|
| 1098 | 1098 |
// Perform cost scaling phases |
| 1099 | 1099 |
std::vector<int> path; |
| 1100 | 1100 |
for ( ; _epsilon >= 1; _epsilon = _epsilon < _alpha && _epsilon > 1 ? |
| 1101 | 1101 |
1 : _epsilon / _alpha ) |
| 1102 | 1102 |
{
|
| 1103 | 1103 |
// Early termination heuristic |
| 1104 | 1104 |
if (_epsilon <= EARLY_TERM_EPSILON_LIMIT) {
|
| 1105 | 1105 |
if (earlyTermination()) break; |
| 1106 | 1106 |
} |
| 1107 | 1107 |
|
| 1108 | 1108 |
// Initialize current phase |
| 1109 | 1109 |
initPhase(); |
| 1110 | 1110 |
|
| 1111 | 1111 |
// Perform partial augment and relabel operations |
| 1112 | 1112 |
while (true) {
|
| 1113 | 1113 |
// Select an active node (FIFO selection) |
| 1114 | 1114 |
while (_active_nodes.size() > 0 && |
| 1115 | 1115 |
_excess[_active_nodes.front()] <= 0) {
|
| 1116 | 1116 |
_active_nodes.pop_front(); |
| 1117 | 1117 |
} |
| 1118 | 1118 |
if (_active_nodes.size() == 0) break; |
| 1119 | 1119 |
int start = _active_nodes.front(); |
| 1120 | 1120 |
|
| 1121 | 1121 |
// Find an augmenting path from the start node |
| 1122 | 1122 |
path.clear(); |
| 1123 | 1123 |
int tip = start; |
| 1124 | 1124 |
while (_excess[tip] >= 0 && int(path.size()) < max_length) {
|
| 1125 | 1125 |
int u; |
| 1126 | 1126 |
LargeCost min_red_cost, rc, pi_tip = _pi[tip]; |
| 1127 | 1127 |
int last_out = _first_out[tip+1]; |
| 1128 | 1128 |
for (int a = _next_out[tip]; a != last_out; ++a) {
|
| 1129 | 1129 |
u = _target[a]; |
| 1130 | 1130 |
if (_res_cap[a] > 0 && _cost[a] + pi_tip - _pi[u] < 0) {
|
| 1131 | 1131 |
path.push_back(a); |
| 1132 | 1132 |
_next_out[tip] = a; |
| 1133 | 1133 |
tip = u; |
| 1134 | 1134 |
goto next_step; |
| 1135 | 1135 |
} |
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