354 lines
14 KiB
C++
354 lines
14 KiB
C++
/*
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Copyright (c) 2015, Project OSRM contributors
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All rights reserved.
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Redistribution and use in source and binary forms, with or without modification,
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are permitted provided that the following conditions are met:
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Redistributions of source code must retain the above copyright notice, this list
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of conditions and the following disclaimer.
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Redistributions in binary form must reproduce the above copyright notice, this
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list of conditions and the following disclaimer in the documentation and/or
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other materials provided with the distribution.
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THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS "AS IS" AND
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ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED
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WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE
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DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT HOLDER OR CONTRIBUTORS BE LIABLE FOR
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ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES
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(INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES;
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LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON
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ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
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(INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF THIS
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SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
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*/
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#ifndef TRIP_HPP
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#define TRIP_HPP
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#include "plugin_base.hpp"
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#include "../algorithms/object_encoder.hpp"
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#include "../algorithms/tarjan_scc.hpp"
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#include "../algorithms/trip_nearest_neighbour.hpp"
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#include "../algorithms/trip_farthest_insertion.hpp"
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#include "../algorithms/trip_brute_force.hpp"
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#include "../data_structures/search_engine.hpp"
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#include "../data_structures/matrix_graph_wrapper.hpp" // wrapper to use tarjan
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// scc on dist table
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#include "../descriptors/descriptor_base.hpp" // to make json output
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#include "../descriptors/json_descriptor.hpp" // to make json output
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#include "../util/make_unique.hpp"
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#include "../util/timing_util.hpp" // to time runtime
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#include "../util/simple_logger.hpp" // for logging output
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#include "../util/dist_table_wrapper.hpp" // to access the dist
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// table more easily
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#include <osrm/json_container.hpp>
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#include <boost/assert.hpp>
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#include <cstdlib>
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#include <algorithm>
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#include <memory>
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#include <string>
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#include <utility>
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#include <vector>
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#include <iterator>
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template <class DataFacadeT> class RoundTripPlugin final : public BasePlugin
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{
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private:
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std::string descriptor_string;
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DataFacadeT *facade;
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std::unique_ptr<SearchEngine<DataFacadeT>> search_engine_ptr;
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public:
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explicit RoundTripPlugin(DataFacadeT *facade) : descriptor_string("trip"), facade(facade)
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{
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search_engine_ptr = osrm::make_unique<SearchEngine<DataFacadeT>>(facade);
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}
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const std::string GetDescriptor() const override final { return descriptor_string; }
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void GetPhantomNodes(const RouteParameters &route_parameters,
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PhantomNodeArray &phantom_node_vector)
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{
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const bool checksum_OK = (route_parameters.check_sum == facade->GetCheckSum());
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// find phantom nodes for all input coords
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for (const auto i : osrm::irange<std::size_t>(0, route_parameters.coordinates.size()))
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{
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// if client hints are helpful, encode hints
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if (checksum_OK && i < route_parameters.hints.size() &&
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!route_parameters.hints[i].empty())
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{
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PhantomNode current_phantom_node;
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ObjectEncoder::DecodeFromBase64(route_parameters.hints[i], current_phantom_node);
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if (current_phantom_node.is_valid(facade->GetNumberOfNodes()))
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{
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phantom_node_vector[i].emplace_back(std::move(current_phantom_node));
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continue;
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}
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}
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facade->IncrementalFindPhantomNodeForCoordinate(route_parameters.coordinates[i],
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phantom_node_vector[i], 1);
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if (phantom_node_vector[i].size() > 1)
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{
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phantom_node_vector[i].erase(std::begin(phantom_node_vector[i]));
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}
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BOOST_ASSERT(phantom_node_vector[i].front().is_valid(facade->GetNumberOfNodes()));
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}
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}
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// Object to hold all strongly connected components (scc) of a graph
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// to access all graphs with component ID i, get the iterators by:
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// auto start = std::begin(scc_component.component) + scc_component.range[i];
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// auto end = std::begin(scc_component.component) + scc_component.range[i+1];
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struct SCC_Component
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{
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// in_component: all NodeIDs sorted by component ID
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// in_range: index where a new component starts
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//
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// example: NodeID 0, 1, 2, 4, 5 are in component 0
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// NodeID 3, 6, 7, 8 are in component 1
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// => in_component = [0, 1, 2, 4, 5, 3, 6, 7, 8]
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// => in_range = [0, 5]
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SCC_Component(std::vector<NodeID> in_component, std::vector<size_t> in_range)
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: component(in_component), range(in_range)
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{
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range.push_back(in_component.size());
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BOOST_ASSERT_MSG(in_component.size() >= in_range.size(),
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"scc component and its ranges do not match");
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BOOST_ASSERT_MSG(in_component.size() > 0, "there's no scc component");
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BOOST_ASSERT_MSG(*std::max_element(in_range.begin(), in_range.end()) <=
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in_component.size(),
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"scc component ranges are out of bound");
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BOOST_ASSERT_MSG(*std::min_element(in_range.begin(), in_range.end()) >= 0,
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"invalid scc component range");
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BOOST_ASSERT_MSG(std::is_sorted(std::begin(in_range), std::end(in_range)),
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"invalid component ranges");
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};
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// constructor to use when whole graph is one single scc
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SCC_Component(std::vector<NodeID> in_component)
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: component(in_component), range({0, in_component.size()}){};
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std::size_t GetNumberOfComponents() const
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{
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BOOST_ASSERT_MSG(range.size() > 0, "there's no range");
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return range.size() - 1;
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}
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const std::vector<NodeID> component;
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std::vector<std::size_t> range;
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};
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// takes the number of locations and its distance matrix,
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// identifies and splits the graph in its strongly connected components (scc)
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// and returns an SCC_Component
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SCC_Component SplitUnaccessibleLocations(const std::size_t number_of_locations,
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const DistTableWrapper<EdgeWeight> &result_table)
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{
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if (std::find(std::begin(result_table), std::end(result_table), INVALID_EDGE_WEIGHT) ==
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std::end(result_table))
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{
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// whole graph is one scc
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std::vector<NodeID> location_ids(number_of_locations);
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std::iota(std::begin(location_ids), std::end(location_ids), 0);
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return SCC_Component(std::move(location_ids));
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}
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// Run TarjanSCC
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auto wrapper = std::make_shared<MatrixGraphWrapper<EdgeWeight>>(result_table.GetTable(),
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number_of_locations);
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auto scc = TarjanSCC<MatrixGraphWrapper<EdgeWeight>>(wrapper);
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scc.run();
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const auto number_of_components = scc.get_number_of_components();
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std::vector<std::size_t> range_insertion;
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std::vector<std::size_t> range;
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range_insertion.reserve(number_of_components);
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range.reserve(number_of_components);
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std::vector<NodeID> components(number_of_locations, 0);
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std::size_t prefix = 0;
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for (std::size_t j = 0; j < number_of_components; ++j)
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{
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range_insertion.push_back(prefix);
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range.push_back(prefix);
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prefix += scc.get_component_size(j);
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}
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for (std::size_t i = 0; i < number_of_locations; ++i)
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{
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components[range_insertion[scc.get_component_id(i)]] = i;
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++range_insertion[scc.get_component_id(i)];
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}
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return SCC_Component(std::move(components), std::move(range));
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}
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void SetLocPermutationOutput(const std::vector<NodeID> &permutation,
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osrm::json::Object &json_result)
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{
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osrm::json::Array json_permutation;
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json_permutation.values.insert(std::end(json_permutation.values), std::begin(permutation),
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std::end(permutation));
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json_result.values["permutation"] = json_permutation;
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}
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InternalRouteResult ComputeRoute(const PhantomNodeArray &phantom_node_vector,
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const RouteParameters &route_parameters,
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const std::vector<NodeID> &trip)
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{
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InternalRouteResult min_route;
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// given he final trip, compute total distance and return the route and location permutation
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PhantomNodes viapoint;
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const auto start = std::begin(trip);
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const auto end = std::end(trip);
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for (auto it = start; it != end; ++it)
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{
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const auto from_node = *it;
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// if from_node is the last node, compute the route from the last to the first location
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const auto to_node = std::next(it) != end ? *std::next(it) : *start;
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viapoint =
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PhantomNodes{phantom_node_vector[from_node][0], phantom_node_vector[to_node][0]};
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min_route.segment_end_coordinates.emplace_back(viapoint);
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}
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search_engine_ptr->shortest_path(min_route.segment_end_coordinates, route_parameters.uturns,
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min_route);
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BOOST_ASSERT_MSG(min_route.shortest_path_length < INVALID_EDGE_WEIGHT, "unroutable route");
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return min_route;
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}
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int HandleRequest(const RouteParameters &route_parameters,
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osrm::json::Object &json_result) override final
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{
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// check if all inputs are coordinates
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if (!check_all_coordinates(route_parameters.coordinates))
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{
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return 400;
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}
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// get phantom nodes
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PhantomNodeArray phantom_node_vector(route_parameters.coordinates.size());
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GetPhantomNodes(route_parameters, phantom_node_vector);
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const auto number_of_locations = phantom_node_vector.size();
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// compute the distance table of all phantom nodes
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const auto result_table = DistTableWrapper<EdgeWeight>(
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*search_engine_ptr->distance_table(phantom_node_vector), number_of_locations);
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if (result_table.size() == 0)
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{
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return 400;
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}
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const constexpr std::size_t BF_MAX_FEASABLE = 10;
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BOOST_ASSERT_MSG(result_table.size() == number_of_locations * number_of_locations,
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"Distance Table has wrong size.");
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// get scc components
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SCC_Component scc = SplitUnaccessibleLocations(number_of_locations, result_table);
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using NodeIDIterator = typename std::vector<NodeID>::const_iterator;
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std::vector<std::vector<NodeID>> route_result;
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route_result.reserve(scc.GetNumberOfComponents());
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TIMER_START(TRIP_TIMER);
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// run Trip computation for every SCC
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for (std::size_t k = 0; k < scc.GetNumberOfComponents(); ++k)
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{
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const auto component_size = scc.range[k + 1] - scc.range[k];
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BOOST_ASSERT_MSG(component_size >= 0, "invalid component size");
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if (component_size > 1)
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{
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std::vector<NodeID> scc_route;
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NodeIDIterator start = std::begin(scc.component) + scc.range[k];
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NodeIDIterator end = std::begin(scc.component) + scc.range[k + 1];
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if (component_size < BF_MAX_FEASABLE)
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{
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scc_route =
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osrm::trip::BruteForceTrip(start, end, number_of_locations, result_table);
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}
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else
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{
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scc_route = osrm::trip::FarthestInsertionTrip(start, end, number_of_locations,
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result_table);
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}
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// use this output if debugging of route is needed:
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// SimpleLogger().Write() << "Route #" << k << ": " << [&scc_route]()
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// {
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// std::string s = "";
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// for (auto x : scc_route)
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// {
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// s += std::to_string(x) + " ";
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// }
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// return s;
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// }();
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route_result.push_back(std::move(scc_route));
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}
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else
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{
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// if component only consists of one node, add it to the result routes
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route_result.emplace_back(scc.component[scc.range[k]]);
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}
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}
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// compute all round trip routes
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std::vector<InternalRouteResult> comp_route;
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comp_route.reserve(route_result.size());
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for (std::size_t r = 0; r < route_result.size(); ++r)
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{
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comp_route.push_back(
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ComputeRoute(phantom_node_vector, route_parameters, route_result[r]));
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}
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TIMER_STOP(TRIP_TIMER);
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SimpleLogger().Write() << "Trip calculation took: " << TIMER_MSEC(TRIP_TIMER) / 1000.
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<< "s";
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// prepare JSON output
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// create a json object for every trip
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osrm::json::Array trip;
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for (std::size_t i = 0; i < route_result.size(); ++i)
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{
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std::unique_ptr<BaseDescriptor<DataFacadeT>> descriptor =
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osrm::make_unique<JSONDescriptor<DataFacadeT>>(facade);
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descriptor->SetConfig(route_parameters);
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osrm::json::Object scc_trip;
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// set permutation output
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SetLocPermutationOutput(route_result[i], scc_trip);
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// set viaroute output
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descriptor->Run(comp_route[i], scc_trip);
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trip.values.push_back(std::move(scc_trip));
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}
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json_result.values["trips"] = std::move(trip);
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return 200;
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}
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};
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#endif // TRIP_HPP
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