287 lines
8.1 KiB
C++
287 lines
8.1 KiB
C++
/*
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----
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This file is part of SECONDO.
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Copyright (C) 2004, University in Hagen, Department of Computer Science,
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Database Systems for New Applications.
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SECONDO is free software; you can redistribute it and/or modify
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it under the terms of the GNU General Public License as published by
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the Free Software Foundation; either version 2 of the License, or
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(at your option) any later version.
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SECONDO is distributed in the hope that it will be useful,
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but WITHOUT ANY WARRANTY; without even the implied warranty of
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MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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GNU General Public License for more details.
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You should have received a copy of the GNU General Public License
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along with SECONDO; if not, write to the Free Software
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Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
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----
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//paragraph [1] Title: [{\Large \bf \begin {center}] [\end {center}}]
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//[TOC] [\tableofcontents]
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//[_] [\_]
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[1] Implementation file for the class ~Hobby~
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[TOC]
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1 Overview
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This file contains all methods required for the class ~Hobby~.
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This class implements the (slightly modified) Hobby algorithm.
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To use this class, derive a data class from ~IntersectionAlgorithmData~ and
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overwrite the necessary methods.
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1 Includes
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*/
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#include <algorithm>
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#include "Hobby.h"
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using namespace std;
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namespace RobustPlaneSweep
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{
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/*
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1 Class ~Hobby~
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1.1 ~DetermineIntersectionsInternal~
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*/
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void Hobby::DetermineIntersectionsInternal()
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{
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_spacing = GetTransformation()->GetMinimalRoundedStep() / 2;
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BentleyOttmann::DetermineIntersectionsInternal();
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}
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/*
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1.1 ~GetStartNode~
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*/
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AvlTreeNode<InternalLineSegment*, SweepStateData*>*
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Hobby::GetStartNode(const Rational& searchY) const
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{
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AvlTreeNode<InternalLineSegment*, SweepStateData*>*
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currentNode = GetState()->GetTreeRoot();
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AvlTreeNode<InternalLineSegment*, SweepStateData*>* lastNode = NULL;
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while (currentNode != NULL) {
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lastNode = currentNode;
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if (searchY
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< currentNode->Value->GetYValueAt(GetState()->GetCurrentPoint())) {
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currentNode = currentNode->Left;
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} else {
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currentNode = currentNode->Right;
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}
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}
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return lastNode;
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}
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/*
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1.1 ~AddSegmentEvent~
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*/
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bool Hobby::AddSegmentEvent(int topSquareEdge,
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int bottomSquareEdge,
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int direction,
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InternalLineSegment* segment)
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{
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if (_addedSegments.insert(segment).second) {
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Rational yEnter = (segment)->GetYValueAt(_currentHammockStart);
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Rational yExit = (segment)->GetYValueAt(_currentHammockEnd);
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_events.push_back(HobbyEvent(HobbyEventType::SegmentEnter,
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yEnter,
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segment));
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_events.push_back(HobbyEvent(HobbyEventType::SegmentExit, yExit, segment));
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if (direction == 0) {
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if (yEnter < topSquareEdge && yExit < topSquareEdge) {
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return true;
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}
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} else {
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if (yEnter > bottomSquareEdge && yExit > bottomSquareEdge) {
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return true;
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}
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}
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}
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return false;
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}
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/*
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1.1 ~AddEvents~
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*/
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void Hobby::AddEvents()
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{
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for (unordered_set<InternalLineSegment*>::const_iterator segment =
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_openSegments.begin(); segment != _openSegments.end(); ++segment) {
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_events.push_back(HobbyEvent(HobbyEventType::SegmentExit,
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(*segment)->GetYValueAt(_currentHammockEnd),
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*segment));
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}
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InternalIntersectionPoint hammockStart(_currentHammockStart, 0);
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InternalIntersectionPoint hammockEnd(_currentHammockEnd, 0);
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vector<int> squares;
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for (unordered_set<int>::const_iterator i = _addedSquares.begin();
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i != _addedSquares.end(); ++i) {
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squares.push_back(*i);
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}
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sort(squares.begin(), squares.end());
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SweepState* state = GetState();
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state->SetCurrentPoint(hammockEnd);
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state->SetAssumeYEqual(false);
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int spacing4 = _spacing * 4;
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for (unsigned int i = 0; i < squares.size();) {
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int topSquare = squares[i];
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int bottomSquare = topSquare;
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while (++i < squares.size() && squares[i] <= (bottomSquare + spacing4)) {
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bottomSquare = squares[i];
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}
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int topSquareEdge = topSquare - _spacing;
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int bottomSquareEdge = bottomSquare + _spacing;
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AvlTreeNode<InternalLineSegment*, SweepStateData*>* startNode =
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GetStartNode(Rational(topSquareEdge));
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for (int direction = 0; direction < 2; ++direction) {
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AvlTreeNode<InternalLineSegment*, SweepStateData*>* node = startNode;
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bool loop = true;
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while (node != NULL && loop) {
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if (node->Value->IsSingleSegment()) {
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loop = !AddSegmentEvent(topSquareEdge,
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bottomSquareEdge,
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direction,
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node->Value->GetFirstSegment());
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} else {
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vector<InternalLineSegment*>* segments =
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node->Value->GetAllSegments();
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for (vector<InternalLineSegment*>::const_iterator segment =
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segments->begin();
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segment != segments->end(); ++segment) {
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loop = !AddSegmentEvent(topSquareEdge,
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bottomSquareEdge,
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direction,
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*segment);
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}
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delete segments;
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}
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node = (direction == 0 ? node->GetPrevious() : node->GetNext());
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}
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}
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}
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}
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/*
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1.1 ~ProcessEvents~
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*/
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void Hobby::ProcessEvents()
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{
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if (_events.empty()) {
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return;
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}
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AddEvents();
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sort(_events.begin(), _events.end());
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unordered_set<InternalLineSegment*> activeLineSegments;
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bool inToleranceSquare = false;
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int currentSquareY = 0;
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for (vector<HobbyEvent>::const_iterator
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e = _events.begin();
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e != _events.end(); ++e) {
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if (e->GetEventType() == HobbyEventType::BeginTolaranceSquare) {
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if (inToleranceSquare) {
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throw new logic_error("wrong event order! (still in tolerance square)");
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}
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inToleranceSquare = true;
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currentSquareY = GetTransformation()->RoundRational(e->GetY() + _spacing);
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for (unordered_set<InternalLineSegment*>::const_iterator s =
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activeLineSegments.begin(); s != activeLineSegments.end(); ++s) {
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if (_ignoredIntersections.find(std::make_pair(currentSquareY, *s))
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== _ignoredIntersections.end()) {
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(*s)->AddHobbyIntersection(_currentHammock,
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currentSquareY,
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_spacing);
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}
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}
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} else if (e->GetEventType() == HobbyEventType::EndTolaranceSquare) {
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if (!inToleranceSquare) {
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throw new logic_error("wrong event oder! (not in tolerance square)");
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}
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/*
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for (unordered_set<InternalLineSegment*>::const_iterator s =
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activeLineSegments.begin(); s != activeLineSegments.end(); ++s) {
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if (_ignoredIntersections.find(std::make_pair(currentSquareY, *s))
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== _ignoredIntersections.end()) {
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(*s)->AddHobbyIntersection(_currentHammock,
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currentSquareY,
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_spacing);
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}
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}
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*/
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inToleranceSquare = false;
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} else if (e->GetEventType() == HobbyEventType::SegmentStart
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|| e->GetEventType() == HobbyEventType::SegmentEnd
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|| e->GetEventType() == HobbyEventType::SegmentEnter
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|| e->GetEventType() == HobbyEventType::SegmentExit) {
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if (activeLineSegments.find(e->GetSegment()) !=
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activeLineSegments.end()) {
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activeLineSegments.erase(e->GetSegment());
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} else {
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activeLineSegments.insert(e->GetSegment());
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}
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if (inToleranceSquare) {
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if (_ignoredIntersections.find(std::make_pair(currentSquareY,
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e->GetSegment()))
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== _ignoredIntersections.end()) {
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e->GetSegment()->AddHobbyIntersection(_currentHammock,
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currentSquareY,
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_spacing);
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}
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}
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} else {
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throw new logic_error("not supported event type!");
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}
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}
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_events.clear();
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_addedSegments.clear();
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_openSegments.clear();
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_addedSquares.clear();
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_ignoredIntersections.clear();
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}
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}
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