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/* -*- C++ -*- |
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* |
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* This file is a part of LEMON, a generic C++ optimization library |
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* |
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* Copyright (C) 2003-2008 |
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* Egervary Jeno Kombinatorikus Optimalizalasi Kutatocsoport |
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* (Egervary Research Group on Combinatorial Optimization, EGRES). |
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* |
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* Permission to use, modify and distribute this software is granted |
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* provided that this copyright notice appears in all copies. For |
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* precise terms see the accompanying LICENSE file. |
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* |
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* This software is provided "AS IS" with no warranty of any kind, |
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* express or implied, and with no claim as to its suitability for any |
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* purpose. |
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* |
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*/ |
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|
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#ifndef LEMON_GRAPH_TO_EPS_H |
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#define LEMON_GRAPH_TO_EPS_H |
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#include <sys/time.h> |
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|
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#ifdef WIN32 |
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#include <lemon/bits/mingw32_time.h> |
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#endif |
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|
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#include<iostream> |
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#include<fstream> |
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#include<sstream> |
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#include<algorithm> |
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#include<vector> |
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|
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#ifndef WIN32 |
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#include<sys/time.h> |
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#include<ctime> |
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#else |
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#include<windows.h> |
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#endif |
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|
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#include<lemon/math.h> |
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#include<lemon/bits/invalid.h> |
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#include<lemon/dim2.h> |
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#include<lemon/maps.h> |
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#include<lemon/color.h> |
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#include<lemon/bits/bezier.h> |
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|
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|
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///\ingroup eps_io |
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///\file |
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///\brief A well configurable tool for visualizing graphs |
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|
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namespace lemon {
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|
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namespace _graph_to_eps_bits {
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template<class MT> |
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class _NegY {
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public: |
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typedef typename MT::Key Key; |
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typedef typename MT::Value Value; |
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const MT ↦ |
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int yscale; |
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_NegY(const MT &m,bool b) : map(m), yscale(1-b*2) {}
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Value operator[](Key n) { return Value(map[n].x,map[n].y*yscale);}
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}; |
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} |
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|
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///Default traits class of \ref GraphToEps |
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|
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///Default traits class of \ref GraphToEps |
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/// |
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///\c G is the type of the underlying graph. |
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template<class G> |
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struct DefaultGraphToEpsTraits |
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{
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typedef G Graph; |
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typedef typename Graph::Node Node; |
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typedef typename Graph::NodeIt NodeIt; |
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typedef typename Graph::Arc Arc; |
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typedef typename Graph::ArcIt ArcIt; |
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typedef typename Graph::InArcIt InArcIt; |
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typedef typename Graph::OutArcIt OutArcIt; |
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|
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|
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const Graph &g; |
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|
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std::ostream& os; |
| ... | ... |
@@ -672,103 +671,120 @@ |
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///namely it inserts a <tt>%%Title:</tt> DSC field to the header of |
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///the EPS file. |
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GraphToEps<T> &title(const std::string &t) {_title=t;return *this;}
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///Sets the copyright statement. |
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|
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///Sets the copyright statement of the generated image, |
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///namely it inserts a <tt>%%Copyright:</tt> DSC field to the header of |
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///the EPS file. |
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GraphToEps<T> ©right(const std::string &t) {_copyright=t;return *this;}
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|
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protected: |
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bool isInsideNode(dim2::Point<double> p, double r,int t) |
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{
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switch(t) {
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case CIRCLE: |
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case MALE: |
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case FEMALE: |
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return p.normSquare()<=r*r; |
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case SQUARE: |
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return p.x<=r&&p.x>=-r&&p.y<=r&&p.y>=-r; |
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case DIAMOND: |
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return p.x+p.y<=r && p.x-p.y<=r && -p.x+p.y<=r && -p.x-p.y<=r; |
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} |
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return false; |
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} |
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|
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public: |
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~GraphToEps() { }
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|
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///Draws the graph. |
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|
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///Like other functions using |
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///\ref named-templ-func-param "named template parameters", |
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///this function calls the algorithm itself, i.e. in this case |
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///it draws the graph. |
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void run() {
|
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//\todo better 'epsilon' would be nice here. |
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const double EPSILON=1e-9; |
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if(dontPrint) return; |
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|
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_graph_to_eps_bits::_NegY<typename T::CoordsMapType> |
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mycoords(_coords,_negY); |
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|
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os << "%!PS-Adobe-2.0 EPSF-2.0\n"; |
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if(_title.size()>0) os << "%%Title: " << _title << '\n'; |
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if(_copyright.size()>0) os << "%%Copyright: " << _copyright << '\n'; |
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// << "%%Copyright: XXXX\n" |
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os << "%%Creator: LEMON, graphToEps()\n"; |
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|
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{
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|
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|
|
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{
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#ifndef WIN32 |
|
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timeval tv; |
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gettimeofday(&tv, 0); |
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|
|
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char cbuf[26]; |
|
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ctime_r(&tv.tv_sec,cbuf); |
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os << "%%CreationDate: " << cbuf; |
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#else |
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SYSTEMTIME time; |
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char buf1[11], buf2[9], buf3[5]; |
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|
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GetSystemTime(&time); |
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if (GetDateFormat(LOCALE_USER_DEFAULT, 0, &time, |
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"ddd MMM dd", buf1, 11) && |
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GetTimeFormat(LOCALE_USER_DEFAULT, 0, &time, |
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"HH':'mm':'ss", buf2, 9) && |
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GetDateFormat(LOCALE_USER_DEFAULT, 0, &time, |
|
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"yyyy", buf3, 5)) {
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os << "%%CreationDate: " << buf1 << ' ' |
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<< buf2 << ' ' << buf3 << std::endl; |
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} |
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#endif |
|
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} |
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|
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if (_autoArcWidthScale) {
|
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double max_w=0; |
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for(ArcIt e(g);e!=INVALID;++e) |
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max_w=std::max(double(_arcWidths[e]),max_w); |
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///\todo better 'epsilon' would be nice here. |
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if(max_w>EPSILON) {
|
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_arcWidthScale/=max_w; |
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} |
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} |
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|
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if (_autoNodeScale) {
|
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double max_s=0; |
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for(NodeIt n(g);n!=INVALID;++n) |
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max_s=std::max(double(_nodeSizes[n]),max_s); |
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///\todo better 'epsilon' would be nice here. |
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if(max_s>EPSILON) {
|
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_nodeScale/=max_s; |
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} |
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} |
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|
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double diag_len = 1; |
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if(!(_absoluteNodeSizes&&_absoluteArcWidths)) {
|
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dim2::BoundingBox<double> bb; |
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for(NodeIt n(g);n!=INVALID;++n) bb.add(mycoords[n]); |
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if (bb.empty()) {
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bb = dim2::BoundingBox<double>(dim2::Point<double>(0,0)); |
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} |
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diag_len = std::sqrt((bb.bottomLeft()-bb.topRight()).normSquare()); |
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if(diag_len<EPSILON) diag_len = 1; |
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if(!_absoluteNodeSizes) _nodeScale*=diag_len; |
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if(!_absoluteArcWidths) _arcWidthScale*=diag_len; |
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} |
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|
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dim2::BoundingBox<double> bb; |
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for(NodeIt n(g);n!=INVALID;++n) {
|
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double ns=_nodeSizes[n]*_nodeScale; |
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dim2::Point<double> p(ns,ns); |
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switch(_nodeShapes[n]) {
|
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case CIRCLE: |
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case SQUARE: |
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case DIAMOND: |
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bb.add(p+mycoords[n]); |
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bb.add(-p+mycoords[n]); |
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break; |
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case MALE: |
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bb.add(-p+mycoords[n]); |
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