2016-07-04 06:19:49 -04:00
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#include "extractor/guidance/constants.hpp"
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#include "extractor/guidance/intersection_scenario_three_way.hpp"
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2016-08-10 07:35:21 -04:00
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#include "extractor/guidance/sliproad_handler.hpp"
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2016-07-04 06:19:49 -04:00
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#include "extractor/guidance/toolkit.hpp"
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#include "util/guidance/toolkit.hpp"
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#include <limits>
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#include <utility>
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#include <boost/assert.hpp>
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using EdgeData = osrm::util::NodeBasedDynamicGraph::EdgeData;
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using osrm::util::guidance::getTurnDirection;
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using osrm::util::guidance::angularDeviation;
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namespace osrm
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{
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namespace extractor
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{
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namespace guidance
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{
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SliproadHandler::SliproadHandler(const IntersectionGenerator &intersection_generator,
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const util::NodeBasedDynamicGraph &node_based_graph,
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const std::vector<QueryNode> &node_info_list,
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const util::NameTable &name_table,
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const SuffixTable &street_name_suffix_table)
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: IntersectionHandler(node_based_graph, node_info_list, name_table, street_name_suffix_table),
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intersection_generator(intersection_generator)
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{
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}
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// included for interface reasons only
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bool SliproadHandler::canProcess(const NodeID /*nid*/,
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const EdgeID /*via_eid*/,
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const Intersection & /*intersection*/) const
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{
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return true;
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}
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Intersection SliproadHandler::
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operator()(const NodeID, const EdgeID source_edge_id, Intersection intersection) const
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{
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auto intersection_node_id = node_based_graph.GetTarget(source_edge_id);
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// if there is no turn, there is no sliproad
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if (intersection.size() <= 2)
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return intersection;
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2016-08-10 07:35:21 -04:00
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const auto findNextIntersectionForRoad =
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[&](const NodeID at_node, const ConnectedRoad &road, NodeID *output_node) {
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auto intersection = intersection_generator(at_node, road.turn.eid);
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auto in_edge = road.turn.eid;
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// skip over traffic lights
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if (intersection.size() == 2)
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{
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const auto node = node_based_graph.GetTarget(in_edge);
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in_edge = intersection[1].turn.eid;
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if (output_node)
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*output_node = node_based_graph.GetTarget(in_edge);
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intersection = intersection_generator(node, in_edge);
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}
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return intersection;
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};
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const std::size_t obvious_turn_index = [&]() -> std::size_t {
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const auto index = findObviousTurn(source_edge_id, intersection);
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if (index != 0)
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return index;
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else if (intersection.size() == 3 &&
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intersection[1].turn.instruction.type == TurnType::Fork)
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{
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// Forks themselves do not contain a `obvious` turn index. If we look at a fork that has
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// a one-sided sliproad, however, the non-sliproad can be considered `obvious`. Here we
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// assume that this could be the case and check for a potential sliproad/non-sliproad
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// situation.
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const auto intersection_following_index_one =
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findNextIntersectionForRoad(intersection_node_id, intersection[1], NULL);
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const auto intersection_following_index_two =
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findNextIntersectionForRoad(intersection_node_id, intersection[2], NULL);
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// a sliproad has to enter a road without choice
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const auto couldBeSliproad = [](const Intersection &intersection) {
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if (intersection.size() != 3)
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return false;
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if ((intersection[1].entry_allowed && intersection[2].entry_allowed) ||
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intersection[0].entry_allowed)
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return false;
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return true;
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};
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if (couldBeSliproad(intersection_following_index_one))
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return 2;
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else if (couldBeSliproad(intersection_following_index_two))
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return 1;
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else
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return 0;
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}
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else
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return 0;
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}();
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if (obvious_turn_index == 0)
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return intersection;
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2016-07-04 06:19:49 -04:00
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const auto &next_road = intersection[obvious_turn_index];
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const auto linkTest = [this, next_road](const ConnectedRoad &road) {
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return !node_based_graph.GetEdgeData(road.turn.eid).roundabout && road.entry_allowed &&
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angularDeviation(road.turn.angle, STRAIGHT_ANGLE) <= 2 * NARROW_TURN_ANGLE &&
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!hasRoundaboutType(road.turn.instruction) &&
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angularDeviation(next_road.turn.angle, road.turn.angle) >
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std::numeric_limits<double>::epsilon();
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};
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bool hasNarrow =
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std::find_if(intersection.begin(), intersection.end(), linkTest) != intersection.end();
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if (!hasNarrow)
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return intersection;
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const auto source_edge_data = node_based_graph.GetEdgeData(source_edge_id);
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const bool hasNext = obvious_turn_index != 0;
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if (!hasNext)
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return intersection;
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// check whether the continue road is valid
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const auto check_valid = [this, source_edge_data](const ConnectedRoad &road) {
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const auto road_edge_data = node_based_graph.GetEdgeData(road.turn.eid);
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// Test to see if the source edge and the one we're looking at are the same road
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return road_edge_data.road_classification == source_edge_data.road_classification &&
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road_edge_data.name_id != EMPTY_NAMEID &&
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road_edge_data.name_id == source_edge_data.name_id && road.entry_allowed;
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};
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if (!check_valid(next_road))
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return intersection;
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// Threshold check, if the intersection is too far away, don't bother continuing
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const auto &next_road_data = node_based_graph.GetEdgeData(next_road.turn.eid);
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if (next_road_data.distance > MAX_SLIPROAD_THRESHOLD)
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{
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return intersection;
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}
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auto next_intersection_node = node_based_graph.GetTarget(next_road.turn.eid);
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2016-08-10 07:35:21 -04:00
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const auto next_road_next_intersection =
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findNextIntersectionForRoad(intersection_node_id, next_road, &next_intersection_node);
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std::unordered_set<NameID> target_road_names;
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for (const auto &road : next_road_next_intersection)
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{
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const auto &target_data = node_based_graph.GetEdgeData(road.turn.eid);
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target_road_names.insert(target_data.name_id);
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}
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for (auto &road : intersection)
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{
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if (linkTest(road))
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{
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EdgeID candidate_in = road.turn.eid;
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const auto target_intersection = [&](NodeID node) {
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auto intersection = intersection_generator(node, candidate_in);
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// skip over traffic lights
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if (intersection.size() == 2)
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{
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node = node_based_graph.GetTarget(candidate_in);
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candidate_in = intersection[1].turn.eid;
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intersection = intersection_generator(node, candidate_in);
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}
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return intersection;
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}(intersection_node_id);
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for (const auto &candidate_road : target_intersection)
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{
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const auto &candidate_data = node_based_graph.GetEdgeData(candidate_road.turn.eid);
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if (target_road_names.count(candidate_data.name_id) > 0)
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{
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if (node_based_graph.GetTarget(candidate_road.turn.eid) ==
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next_intersection_node)
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{
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road.turn.instruction.type = TurnType::Sliproad;
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break;
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}
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else
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{
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2016-07-26 09:00:58 -04:00
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const auto skip_traffic_light_intersection = intersection_generator(
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node_based_graph.GetTarget(candidate_in), candidate_road.turn.eid);
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2016-07-04 06:19:49 -04:00
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if (skip_traffic_light_intersection.size() == 2 &&
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node_based_graph.GetTarget(
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skip_traffic_light_intersection[1].turn.eid) ==
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next_intersection_node)
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{
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road.turn.instruction.type = TurnType::Sliproad;
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break;
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}
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}
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}
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}
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}
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}
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if (next_road.turn.instruction.type == TurnType::Fork)
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{
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const auto &next_data = node_based_graph.GetEdgeData(next_road.turn.eid);
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if (next_data.name_id == source_edge_data.name_id)
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{
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if (angularDeviation(next_road.turn.angle, STRAIGHT_ANGLE) < 5)
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intersection[obvious_turn_index].turn.instruction.type = TurnType::Suppressed;
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else
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intersection[obvious_turn_index].turn.instruction.type = TurnType::Continue;
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intersection[obvious_turn_index].turn.instruction.direction_modifier =
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getTurnDirection(intersection[obvious_turn_index].turn.angle);
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}
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else if (next_data.name_id != EMPTY_NAMEID)
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{
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intersection[obvious_turn_index].turn.instruction.type = TurnType::NewName;
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intersection[obvious_turn_index].turn.instruction.direction_modifier =
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getTurnDirection(intersection[obvious_turn_index].turn.angle);
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}
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else
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{
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intersection[obvious_turn_index].turn.instruction.type = TurnType::Suppressed;
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}
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}
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return intersection;
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}
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} // namespace guidance
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} // namespace extractor
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} // namespace osrm
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