Linkgraph: Split demand annotations from edge flow annotations
Use sparse storage format for demand annotations
This commit is contained in:
@@ -244,7 +244,8 @@ void AsymmetricScalerEq::SetDemands(LinkGraphJob &job, NodeID from_id, NodeID to
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*/
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inline void Scaler::SetDemands(LinkGraphJob &job, NodeID from_id, NodeID to_id, uint demand_forw)
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{
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job[from_id].DeliverSupply(to_id, demand_forw);
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job[from_id].DeliverSupply(demand_forw);
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job.demand_map[std::make_pair(from_id, to_id)] += demand_forw;
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}
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/**
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@@ -476,4 +477,25 @@ DemandCalculator::DemandCalculator(LinkGraphJob &job) :
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first_unseen++;
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}
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} while (first_unseen < size);
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if (job.demand_map.size() > 0) {
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job.demand_annotation_store.resize(job.demand_map.size());
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size_t start_idx = 0;
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size_t idx = 0;
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NodeID last_from = job.demand_map.begin()->first.first;
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auto flush = [&]() {
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job[last_from].SetDemandAnnotations({ job.demand_annotation_store.data() + start_idx, idx - start_idx });
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};
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for (auto &iter : job.demand_map) {
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if (iter.first.first != last_from) {
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flush();
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last_from = iter.first.first;
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start_idx = idx;
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}
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job.demand_annotation_store[idx] = { iter.first.second, iter.second, iter.second };
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idx++;
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}
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flush();
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job.demand_map.clear();
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}
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}
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@@ -212,9 +212,7 @@ void LinkGraphJob::Init()
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*/
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void LinkGraphJob::EdgeAnnotation::Init()
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{
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this->demand = 0;
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this->flow = 0;
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this->unsatisfied_demand = 0;
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}
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/**
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@@ -31,13 +31,21 @@ extern LinkGraphJobPool _link_graph_job_pool;
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* Class for calculation jobs to be run on link graphs.
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*/
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class LinkGraphJob : public LinkGraphJobPool::PoolItem<&_link_graph_job_pool>{
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public:
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/**
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* Annotation for a link graph demand edge.
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*/
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struct DemandAnnotation {
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NodeID dest; ///< Target node
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uint demand = 0; ///< Transport demand between the nodes.
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uint unsatisfied_demand = 0; ///< Demand over this edge that hasn't been satisfied yet.
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};
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private:
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/**
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* Annotation for a link graph edge.
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* Annotation for a link graph flow edge.
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*/
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struct EdgeAnnotation {
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uint demand; ///< Transport demand between the nodes.
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uint unsatisfied_demand; ///< Demand over this edge that hasn't been satisfied yet.
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uint flow; ///< Planned flow over this edge.
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void Init();
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};
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@@ -50,6 +58,7 @@ private:
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uint received_demand; ///< Received demand towards this node.
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PathList paths; ///< Paths through this node, sorted so that those with flow == 0 are in the back.
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FlowStatMap flows; ///< Planned flows to other nodes.
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span<DemandAnnotation> demands; ///< Demand annotations belonging to this node.
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void Init(uint supply);
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};
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@@ -79,6 +88,9 @@ protected:
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public:
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btree::btree_map<std::pair<NodeID, NodeID>, uint> demand_map; ///< Demand map.
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std::vector<DemandAnnotation> demand_annotation_store; ///< Demand annotation store.
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DynUniformArenaAllocator path_allocator; ///< Arena allocator used for paths
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/**
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@@ -96,18 +108,6 @@ public:
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AnnoEdge(EdgeAnnotation &anno) :
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anno(anno) {}
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/**
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* Get the transport demand between end the points of the edge.
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* @return Demand.
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*/
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uint Demand() const { return this->anno.demand; }
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/**
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* Get the transport demand that hasn't been satisfied by flows, yet.
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* @return Unsatisfied demand.
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*/
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uint UnsatisfiedDemand() const { return this->anno.unsatisfied_demand; }
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/**
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* Get the total flow on the edge.
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* @return Flow.
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@@ -129,26 +129,6 @@ public:
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assert(flow <= this->anno.flow);
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this->anno.flow -= flow;
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}
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/**
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* Add some (not yet satisfied) demand.
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* @param demand Demand to be added.
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*/
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void AddDemand(uint demand)
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{
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this->anno.demand += demand;
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this->anno.unsatisfied_demand += demand;
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}
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/**
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* Satisfy some demand.
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* @param demand Demand to be satisfied.
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*/
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void SatisfyDemand(uint demand)
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{
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assert(demand <= this->anno.unsatisfied_demand);
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this->anno.unsatisfied_demand -= demand;
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}
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};
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/**
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@@ -237,13 +217,11 @@ public:
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/**
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* Deliver some supply, adding demand to the respective edge.
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* @param to Destination for supply.
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* @param amount Amount of supply to be delivered.
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*/
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void DeliverSupply(NodeID to, uint amount)
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void DeliverSupply(uint amount)
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{
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this->node_anno.undelivered_supply -= amount;
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(*this)[to].AddDemand(amount);
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}
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/**
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@@ -254,6 +232,16 @@ public:
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{
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this->node_anno.received_demand += amount;
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}
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span<DemandAnnotation> GetDemandAnnotations() const
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{
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return this->node_anno.demands;
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}
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void SetDemandAnnotations(span<DemandAnnotation> demands)
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{
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this->node_anno.demands = demands;
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}
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};
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/**
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@@ -17,5 +17,6 @@
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typedef LinkGraphJob::Node Node;
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typedef LinkGraphJob::Edge Edge;
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typedef LinkGraphJob::AnnoEdge AnnoEdge;
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typedef LinkGraphJob::DemandAnnotation DemandAnnotation;
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#endif /* LINKGRAPHJOB_BASE_H */
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@@ -391,20 +391,20 @@ void MultiCommodityFlow::CleanupPaths(NodeID source_id, PathVector &paths)
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/**
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* Push flow along a path and update the unsatisfied_demand of the associated
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* edge.
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* @param edge Edge whose ends the path connects.
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* @param anno Distance annotation whose ends the path connects.
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* @param path End of the path the flow should be pushed on.
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* @param min_step_size Minimum flow size.
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* @param accuracy Accuracy of the calculation.
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* @param max_saturation If < UINT_MAX only push flow up to the given
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* saturation, otherwise the path can be "overloaded".
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*/
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uint MultiCommodityFlow::PushFlow(AnnoEdge &edge, Path *path, uint min_step_size, uint accuracy,
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uint MultiCommodityFlow::PushFlow(DemandAnnotation &anno, Path *path, uint min_step_size, uint accuracy,
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uint max_saturation)
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{
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assert(edge.UnsatisfiedDemand() > 0);
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uint flow = std::min(std::max(edge.Demand() / accuracy, min_step_size), edge.UnsatisfiedDemand());
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dbg_assert(anno.unsatisfied_demand > 0);
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uint flow = std::min(std::max(anno.demand / accuracy, min_step_size), anno.unsatisfied_demand);
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flow = path->AddFlow(flow, this->job, max_saturation);
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edge.SatisfyDemand(flow);
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anno.unsatisfied_demand -= flow;
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return flow;
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}
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@@ -571,10 +571,10 @@ MCF1stPass::MCF1stPass(LinkGraphJob &job) : MultiCommodityFlow(job)
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uint64 total_demand = 0;
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uint demand_count = 0;
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for (NodeID source = 0; source < size; ++source) {
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for (NodeID dest = 0; dest < size; ++dest) {
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AnnoEdge edge = job[source][dest];
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if (edge.UnsatisfiedDemand() > 0) {
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total_demand += edge.UnsatisfiedDemand();
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const Node &node = job[source];
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for (const DemandAnnotation &anno : node.GetDemandAnnotations()) {
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if (anno.unsatisfied_demand > 0) {
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total_demand += anno.unsatisfied_demand;
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demand_count++;
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}
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}
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@@ -593,24 +593,24 @@ MCF1stPass::MCF1stPass(LinkGraphJob &job) : MultiCommodityFlow(job)
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this->Dijkstra<DistanceAnnotation, GraphEdgeIterator>(source, paths);
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bool source_demand_left = false;
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for (NodeID dest = 0; dest < size; ++dest) {
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AnnoEdge edge = job[source][dest];
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if (edge.UnsatisfiedDemand() > 0) {
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for (DemandAnnotation &anno : job[source].GetDemandAnnotations()) {
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NodeID dest = anno.dest;
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if (anno.unsatisfied_demand > 0) {
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Path *path = paths[dest];
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assert(path != nullptr);
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/* Generally only allow paths that don't exceed the
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* available capacity. But if no demand has been assigned
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* yet, make an exception and allow any valid path *once*. */
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if (path->GetFreeCapacity() > 0 && this->PushFlow(edge, path,
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if (path->GetFreeCapacity() > 0 && this->PushFlow(anno, path,
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min_step_size, accuracy, this->max_saturation) > 0) {
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/* If a path has been found there is a chance we can
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* find more. */
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more_loops = more_loops || (edge.UnsatisfiedDemand() > 0);
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} else if (edge.UnsatisfiedDemand() == edge.Demand() &&
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more_loops = more_loops || (anno.unsatisfied_demand > 0);
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} else if (anno.unsatisfied_demand == anno.demand &&
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path->GetFreeCapacity() > INT_MIN) {
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this->PushFlow(edge, path, min_step_size, accuracy, UINT_MAX);
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this->PushFlow(anno, path, min_step_size, accuracy, UINT_MAX);
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}
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if (edge.UnsatisfiedDemand() > 0) source_demand_left = true;
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if (anno.unsatisfied_demand > 0) source_demand_left = true;
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}
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}
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if (!source_demand_left) finished_sources[source] = true;
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@@ -640,12 +640,12 @@ MCF2ndPass::MCF2ndPass(LinkGraphJob &job) : MultiCommodityFlow(job)
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this->Dijkstra<CapacityAnnotation, FlowEdgeIterator>(source, paths);
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bool source_demand_left = false;
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for (NodeID dest = 0; dest < size; ++dest) {
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AnnoEdge edge = this->job[source][dest];
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Path *path = paths[dest];
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if (edge.UnsatisfiedDemand() > 0 && path->GetFreeCapacity() > INT_MIN) {
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this->PushFlow(edge, path, 1, accuracy, UINT_MAX);
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if (edge.UnsatisfiedDemand() > 0) {
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for (DemandAnnotation &anno : this->job[source].GetDemandAnnotations()) {
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if (anno.unsatisfied_demand == 0) continue;
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Path *path = paths[anno.dest];
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if (path->GetFreeCapacity() > INT_MIN) {
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this->PushFlow(anno, path, 1, accuracy, UINT_MAX);
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if (anno.unsatisfied_demand > 0) {
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demand_left = true;
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source_demand_left = true;
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}
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@@ -24,7 +24,7 @@ protected:
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template<class Tannotation, class Tedge_iterator>
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void Dijkstra(NodeID from, PathVector &paths);
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uint PushFlow(AnnoEdge &edge, Path *path, uint min_step_size, uint accuracy, uint max_saturation);
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uint PushFlow(DemandAnnotation &anno, Path *path, uint min_step_size, uint accuracy, uint max_saturation);
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void CleanupPaths(NodeID source, PathVector &paths);
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