lemon/graph_to_eps.h
author Peter Kovacs <kpeter@inf.elte.hu>
Sun, 15 Jun 2008 22:05:23 +0200
changeset 171 02f4d5d9bfd7
parent 143 c3b45bb643b0
child 184 716b220697a0
permissions -rw-r--r--
Improve and redesign test programs + unify their output (ticket #25)
- Move graph related utilities form test_tools.h to graph_test.h.
- Move the contents of graph_utils_test.h to graph_utils_test.cc.
- Rename map_test.h -> graph_maps_test.h.
- Rename digraph_test.h -> graph_test.h.
- Many improvements in the following files:
* digraph_test.cc
* graph_test.cc
* graph_test.h
* graph_maps_test.h
* graph_utils_test.cc
* bfs_test.cc
* dfs_test.cc
* counter_test.cc
- Test programs print messages only if it really seems necessary.
- Remove \file commands form .cc test files.
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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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#ifndef LEMON_GRAPH_TO_EPS_H
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#define LEMON_GRAPH_TO_EPS_H
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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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#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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#define WIN32_LEAN_AND_MEAN
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#define NOMINMAX
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#include<windows.h>
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#endif
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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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///\ingroup eps_io
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///\file
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///\brief A well configurable tool for visualizing graphs
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namespace lemon {
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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 &map;
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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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///Default traits class of \ref GraphToEps
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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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  const Graph &g;
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  std::ostream& os;
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  typedef ConstMap<typename Graph::Node,dim2::Point<double> > CoordsMapType;
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  CoordsMapType _coords;
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  ConstMap<typename Graph::Node,double > _nodeSizes;
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  ConstMap<typename Graph::Node,int > _nodeShapes;
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  ConstMap<typename Graph::Node,Color > _nodeColors;
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  ConstMap<typename Graph::Arc,Color > _arcColors;
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  ConstMap<typename Graph::Arc,double > _arcWidths;
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  double _arcWidthScale;
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  double _nodeScale;
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  double _xBorder, _yBorder;
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  double _scale;
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  double _nodeBorderQuotient;
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  bool _drawArrows;
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  double _arrowLength, _arrowWidth;
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  bool _showNodes, _showArcs;
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  bool _enableParallel;
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  double _parArcDist;
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  bool _showNodeText;
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  ConstMap<typename Graph::Node,bool > _nodeTexts;  
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  double _nodeTextSize;
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  bool _showNodePsText;
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  ConstMap<typename Graph::Node,bool > _nodePsTexts;  
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  char *_nodePsTextsPreamble;
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  bool _undirected;
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  bool _pleaseRemoveOsStream;
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  bool _scaleToA4;
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  std::string _title;
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  std::string _copyright;
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  enum NodeTextColorType 
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    { DIST_COL=0, DIST_BW=1, CUST_COL=2, SAME_COL=3 } _nodeTextColorType;
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  ConstMap<typename Graph::Node,Color > _nodeTextColors;
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  bool _autoNodeScale;
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  bool _autoArcWidthScale;
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  bool _absoluteNodeSizes;
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  bool _absoluteArcWidths;
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  bool _negY;
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  bool _preScale;
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  ///Constructor
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  ///Constructor
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  ///\param _g is a reference to the graph to be printed
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  ///\param _os is a reference to the output stream.
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  ///\param _os is a reference to the output stream.
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  ///\param _pros If it is \c true, then the \c ostream referenced by \c _os
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  ///will be explicitly deallocated by the destructor.
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  ///By default it is <tt>std::cout</tt>
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  DefaultGraphToEpsTraits(const G &_g,std::ostream& _os=std::cout,
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			  bool _pros=false) :
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    g(_g), os(_os),
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    _coords(dim2::Point<double>(1,1)), _nodeSizes(1), _nodeShapes(0),
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    _nodeColors(WHITE), _arcColors(BLACK),
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    _arcWidths(1.0), _arcWidthScale(0.003),
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    _nodeScale(.01), _xBorder(10), _yBorder(10), _scale(1.0),
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    _nodeBorderQuotient(.1),
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    _drawArrows(false), _arrowLength(1), _arrowWidth(0.3),
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    _showNodes(true), _showArcs(true),
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    _enableParallel(false), _parArcDist(1),
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    _showNodeText(false), _nodeTexts(false), _nodeTextSize(1),
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    _showNodePsText(false), _nodePsTexts(false), _nodePsTextsPreamble(0),
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    _undirected(lemon::UndirectedTagIndicator<G>::value),
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    _pleaseRemoveOsStream(_pros), _scaleToA4(false),
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    _nodeTextColorType(SAME_COL), _nodeTextColors(BLACK),
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    _autoNodeScale(false),
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    _autoArcWidthScale(false),
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    _absoluteNodeSizes(false),
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    _absoluteArcWidths(false),
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    _negY(false),
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    _preScale(true)
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  {}
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};
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///Auxiliary class to implement the named parameters of \ref graphToEps()
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///Auxiliary class to implement the named parameters of \ref graphToEps()
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template<class T> class GraphToEps : public T 
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{
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  // Can't believe it is required by the C++ standard
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  using T::g;
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  using T::os;
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  using T::_coords;
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  using T::_nodeSizes;
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  using T::_nodeShapes;
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  using T::_nodeColors;
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  using T::_arcColors;
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  using T::_arcWidths;
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  using T::_arcWidthScale;
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  using T::_nodeScale;
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  using T::_xBorder;
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  using T::_yBorder;
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  using T::_scale;
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  using T::_nodeBorderQuotient;
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  using T::_drawArrows;
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  using T::_arrowLength;
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  using T::_arrowWidth;
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  using T::_showNodes;
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  using T::_showArcs;
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  using T::_enableParallel;
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  using T::_parArcDist;
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  using T::_showNodeText;
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  using T::_nodeTexts;  
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  using T::_nodeTextSize;
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  using T::_showNodePsText;
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  using T::_nodePsTexts;  
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  using T::_nodePsTextsPreamble;
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  using T::_undirected;
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  using T::_pleaseRemoveOsStream;
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  using T::_scaleToA4;
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  using T::_title;
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  using T::_copyright;
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  using T::NodeTextColorType;
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  using T::CUST_COL;
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  using T::DIST_COL;
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  using T::DIST_BW;
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  using T::_nodeTextColorType;
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  using T::_nodeTextColors;
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  using T::_autoNodeScale;
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  using T::_autoArcWidthScale;
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  using T::_absoluteNodeSizes;
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  using T::_absoluteArcWidths;
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  using T::_negY;
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  using T::_preScale;
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  // dradnats ++C eht yb deriuqer si ti eveileb t'naC
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  typedef typename T::Graph 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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  static const int INTERPOL_PREC;
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  static const double A4HEIGHT;
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  static const double A4WIDTH;
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  static const double A4BORDER;
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  bool dontPrint;
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public:
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  ///Node shapes
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  ///Node shapes
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  ///
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  enum NodeShapes { 
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    /// = 0
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    ///\image html nodeshape_0.png
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    ///\image latex nodeshape_0.eps "CIRCLE shape (0)" width=2cm
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    CIRCLE=0, 
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    /// = 1
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    ///\image html nodeshape_1.png
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    ///\image latex nodeshape_1.eps "SQUARE shape (1)" width=2cm
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    ///
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    SQUARE=1, 
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    /// = 2
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    ///\image html nodeshape_2.png
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    ///\image latex nodeshape_2.eps "DIAMOND shape (2)" width=2cm
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    ///
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    DIAMOND=2,
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    /// = 3
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    ///\image html nodeshape_3.png
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    ///\image latex nodeshape_2.eps "MALE shape (4)" width=2cm
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    ///
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    MALE=3,
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    /// = 4
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    ///\image html nodeshape_4.png
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    ///\image latex nodeshape_2.eps "FEMALE shape (4)" width=2cm
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    ///
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    FEMALE=4
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  };
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private:
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  class arcLess {
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    const Graph &g;
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  public:
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    arcLess(const Graph &_g) : g(_g) {}
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    bool operator()(Arc a,Arc b) const 
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    {
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      Node ai=std::min(g.source(a),g.target(a));
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      Node aa=std::max(g.source(a),g.target(a));
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      Node bi=std::min(g.source(b),g.target(b));
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      Node ba=std::max(g.source(b),g.target(b));
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      return ai<bi ||
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	(ai==bi && (aa < ba || 
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		    (aa==ba && ai==g.source(a) && bi==g.target(b))));
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    }
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  };
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  bool isParallel(Arc e,Arc f) const
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  {
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    return (g.source(e)==g.source(f)&&
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	    g.target(e)==g.target(f)) ||
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      (g.source(e)==g.target(f)&&
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       g.target(e)==g.source(f));
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  }
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  template<class TT>
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  static std::string psOut(const dim2::Point<TT> &p) 
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    {
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      std::ostringstream os;	
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      os << p.x << ' ' << p.y;
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      return os.str();
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    }
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  static std::string psOut(const Color &c) 
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    {
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      std::ostringstream os;	
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      os << c.red() << ' ' << c.green() << ' ' << c.blue();
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      return os.str();
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    }
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public:
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  GraphToEps(const T &t) : T(t), dontPrint(false) {};
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  template<class X> struct CoordsTraits : public T {
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  typedef X CoordsMapType;
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    const X &_coords;
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    CoordsTraits(const T &t,const X &x) : T(t), _coords(x) {}
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  };
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  ///Sets the map of the node coordinates
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  ///Sets the map of the node coordinates.
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  ///\param x must be a node map with dim2::Point<double> or
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  ///\ref dim2::Point "dim2::Point<int>" values. 
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  template<class X> GraphToEps<CoordsTraits<X> > coords(const X &x) {
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    dontPrint=true;
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    return GraphToEps<CoordsTraits<X> >(CoordsTraits<X>(*this,x));
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  }
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  template<class X> struct NodeSizesTraits : public T {
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    const X &_nodeSizes;
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    NodeSizesTraits(const T &t,const X &x) : T(t), _nodeSizes(x) {}
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  };
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  ///Sets the map of the node sizes
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  ///Sets the map of the node sizes
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  ///\param x must be a node map with \c double (or convertible) values. 
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  template<class X> GraphToEps<NodeSizesTraits<X> > nodeSizes(const X &x)
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  {
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    dontPrint=true;
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    return GraphToEps<NodeSizesTraits<X> >(NodeSizesTraits<X>(*this,x));
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  }
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  template<class X> struct NodeShapesTraits : public T {
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    const X &_nodeShapes;
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    NodeShapesTraits(const T &t,const X &x) : T(t), _nodeShapes(x) {}
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  };
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  ///Sets the map of the node shapes
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  ///Sets the map of the node shapes.
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  ///The available shape values
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  ///can be found in \ref NodeShapes "enum NodeShapes".
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  ///\param x must be a node map with \c int (or convertible) values. 
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  ///\sa NodeShapes
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  template<class X> GraphToEps<NodeShapesTraits<X> > nodeShapes(const X &x)
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  {
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    dontPrint=true;
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    return GraphToEps<NodeShapesTraits<X> >(NodeShapesTraits<X>(*this,x));
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  }
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  template<class X> struct NodeTextsTraits : public T {
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    const X &_nodeTexts;
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    NodeTextsTraits(const T &t,const X &x) : T(t), _nodeTexts(x) {}
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  };
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  ///Sets the text printed on the nodes
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  ///Sets the text printed on the nodes
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  ///\param x must be a node map with type that can be pushed to a standard
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  ///ostream. 
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  template<class X> GraphToEps<NodeTextsTraits<X> > nodeTexts(const X &x)
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  {
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    dontPrint=true;
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    _showNodeText=true;
alpar@128
   386
    return GraphToEps<NodeTextsTraits<X> >(NodeTextsTraits<X>(*this,x));
alpar@128
   387
  }
alpar@128
   388
  template<class X> struct NodePsTextsTraits : public T {
alpar@128
   389
    const X &_nodePsTexts;
alpar@128
   390
    NodePsTextsTraits(const T &t,const X &x) : T(t), _nodePsTexts(x) {}
alpar@128
   391
  };
alpar@128
   392
  ///Inserts a PostScript block to the nodes
alpar@128
   393
alpar@128
   394
  ///With this command it is possible to insert a verbatim PostScript
alpar@128
   395
  ///block to the nodes.
alpar@128
   396
  ///The PS current point will be moved to the centre of the node before
alpar@128
   397
  ///the PostScript block inserted.
alpar@128
   398
  ///
alpar@128
   399
  ///Before and after the block a newline character is inserted so you
alpar@128
   400
  ///don't have to bother with the separators.
alpar@128
   401
  ///
alpar@128
   402
  ///\param x must be a node map with type that can be pushed to a standard
alpar@128
   403
  ///ostream.
alpar@128
   404
  ///
alpar@128
   405
  ///\sa nodePsTextsPreamble()
alpar@128
   406
  template<class X> GraphToEps<NodePsTextsTraits<X> > nodePsTexts(const X &x)
alpar@128
   407
  {
alpar@128
   408
    dontPrint=true;
alpar@128
   409
    _showNodePsText=true;
alpar@128
   410
    return GraphToEps<NodePsTextsTraits<X> >(NodePsTextsTraits<X>(*this,x));
alpar@128
   411
  }
alpar@128
   412
  template<class X> struct ArcWidthsTraits : public T {
alpar@128
   413
    const X &_arcWidths;
alpar@128
   414
    ArcWidthsTraits(const T &t,const X &x) : T(t), _arcWidths(x) {}
alpar@128
   415
  };
alpar@128
   416
  ///Sets the map of the arc widths
alpar@128
   417
alpar@128
   418
  ///Sets the map of the arc widths
kpeter@157
   419
  ///\param x must be an arc map with \c double (or convertible) values. 
alpar@128
   420
  template<class X> GraphToEps<ArcWidthsTraits<X> > arcWidths(const X &x)
alpar@128
   421
  {
alpar@128
   422
    dontPrint=true;
alpar@128
   423
    return GraphToEps<ArcWidthsTraits<X> >(ArcWidthsTraits<X>(*this,x));
alpar@128
   424
  }
alpar@128
   425
alpar@128
   426
  template<class X> struct NodeColorsTraits : public T {
alpar@128
   427
    const X &_nodeColors;
alpar@128
   428
    NodeColorsTraits(const T &t,const X &x) : T(t), _nodeColors(x) {}
alpar@128
   429
  };
alpar@128
   430
  ///Sets the map of the node colors
alpar@128
   431
alpar@128
   432
  ///Sets the map of the node colors
alpar@128
   433
  ///\param x must be a node map with \ref Color values.
alpar@128
   434
  ///
alpar@128
   435
  ///\sa Palette
alpar@128
   436
  template<class X> GraphToEps<NodeColorsTraits<X> >
alpar@128
   437
  nodeColors(const X &x)
alpar@128
   438
  {
alpar@128
   439
    dontPrint=true;
alpar@128
   440
    return GraphToEps<NodeColorsTraits<X> >(NodeColorsTraits<X>(*this,x));
alpar@128
   441
  }
alpar@128
   442
  template<class X> struct NodeTextColorsTraits : public T {
alpar@128
   443
    const X &_nodeTextColors;
alpar@128
   444
    NodeTextColorsTraits(const T &t,const X &x) : T(t), _nodeTextColors(x) {}
alpar@128
   445
  };
alpar@128
   446
  ///Sets the map of the node text colors
alpar@128
   447
alpar@128
   448
  ///Sets the map of the node text colors
alpar@128
   449
  ///\param x must be a node map with \ref Color values. 
alpar@128
   450
  ///
alpar@128
   451
  ///\sa Palette
alpar@128
   452
  template<class X> GraphToEps<NodeTextColorsTraits<X> >
alpar@128
   453
  nodeTextColors(const X &x)
alpar@128
   454
  {
alpar@128
   455
    dontPrint=true;
alpar@128
   456
    _nodeTextColorType=CUST_COL;
alpar@128
   457
    return GraphToEps<NodeTextColorsTraits<X> >
alpar@128
   458
      (NodeTextColorsTraits<X>(*this,x));
alpar@128
   459
  }
alpar@128
   460
  template<class X> struct ArcColorsTraits : public T {
alpar@128
   461
    const X &_arcColors;
alpar@128
   462
    ArcColorsTraits(const T &t,const X &x) : T(t), _arcColors(x) {}
alpar@128
   463
  };
alpar@128
   464
  ///Sets the map of the arc colors
alpar@128
   465
alpar@128
   466
  ///Sets the map of the arc colors
kpeter@157
   467
  ///\param x must be an arc map with \ref Color values. 
alpar@128
   468
  ///
alpar@128
   469
  ///\sa Palette
alpar@128
   470
  template<class X> GraphToEps<ArcColorsTraits<X> >
alpar@128
   471
  arcColors(const X &x)
alpar@128
   472
  {
alpar@128
   473
    dontPrint=true;
alpar@128
   474
    return GraphToEps<ArcColorsTraits<X> >(ArcColorsTraits<X>(*this,x));
alpar@128
   475
  }
alpar@128
   476
  ///Sets a global scale factor for node sizes
alpar@128
   477
alpar@128
   478
  ///Sets a global scale factor for node sizes.
alpar@128
   479
  /// 
alpar@128
   480
  /// If nodeSizes() is not given, this function simply sets the node
alpar@128
   481
  /// sizes to \c d.  If nodeSizes() is given, but
alpar@128
   482
  /// autoNodeScale() is not, then the node size given by
alpar@128
   483
  /// nodeSizes() will be multiplied by the value \c d.
alpar@128
   484
  /// If both nodeSizes() and autoNodeScale() are used, then the
alpar@128
   485
  /// node sizes will be scaled in such a way that the greatest size will be
alpar@128
   486
  /// equal to \c d.
alpar@128
   487
  /// \sa nodeSizes()
alpar@128
   488
  /// \sa autoNodeScale()
alpar@132
   489
  GraphToEps<T> &nodeScale(double d=.01) {_nodeScale=d;return *this;}
alpar@128
   490
  ///Turns on/off the automatic node width scaling.
alpar@128
   491
alpar@128
   492
  ///Turns on/off the automatic node width scaling.
alpar@128
   493
  ///
alpar@128
   494
  ///\sa nodeScale()
alpar@128
   495
  ///
alpar@128
   496
  GraphToEps<T> &autoNodeScale(bool b=true) {
alpar@128
   497
    _autoNodeScale=b;return *this;
alpar@128
   498
  }
alpar@128
   499
alpar@128
   500
  ///Turns on/off the absolutematic node width scaling.
alpar@128
   501
alpar@128
   502
  ///Turns on/off the absolutematic node width scaling.
alpar@128
   503
  ///
alpar@128
   504
  ///\sa nodeScale()
alpar@128
   505
  ///
alpar@128
   506
  GraphToEps<T> &absoluteNodeSizes(bool b=true) {
alpar@128
   507
    _absoluteNodeSizes=b;return *this;
alpar@128
   508
  }
alpar@128
   509
alpar@128
   510
  ///Negates the Y coordinates.
alpar@128
   511
alpar@128
   512
  ///Negates the Y coordinates.
alpar@128
   513
  ///
alpar@128
   514
  GraphToEps<T> &negateY(bool b=true) {
alpar@128
   515
    _negY=b;return *this;
alpar@128
   516
  }
alpar@128
   517
alpar@133
   518
  ///Turn on/off pre-scaling
alpar@128
   519
alpar@128
   520
  ///By default graphToEps() rescales the whole image in order to avoid
alpar@128
   521
  ///very big or very small bounding boxes.
alpar@128
   522
  ///
alpar@128
   523
  ///This (p)rescaling can be turned off with this function.
alpar@128
   524
  ///
alpar@128
   525
  GraphToEps<T> &preScale(bool b=true) {
alpar@128
   526
    _preScale=b;return *this;
alpar@128
   527
  }
alpar@128
   528
alpar@128
   529
  ///Sets a global scale factor for arc widths
alpar@128
   530
alpar@128
   531
  /// Sets a global scale factor for arc widths.
alpar@128
   532
  ///
alpar@128
   533
  /// If arcWidths() is not given, this function simply sets the arc
alpar@128
   534
  /// widths to \c d.  If arcWidths() is given, but
alpar@128
   535
  /// autoArcWidthScale() is not, then the arc withs given by
alpar@128
   536
  /// arcWidths() will be multiplied by the value \c d.
alpar@128
   537
  /// If both arcWidths() and autoArcWidthScale() are used, then the
alpar@128
   538
  /// arc withs will be scaled in such a way that the greatest width will be
alpar@128
   539
  /// equal to \c d.
alpar@132
   540
  GraphToEps<T> &arcWidthScale(double d=.003) {_arcWidthScale=d;return *this;}
alpar@128
   541
  ///Turns on/off the automatic arc width scaling.
alpar@128
   542
alpar@128
   543
  ///Turns on/off the automatic arc width scaling.
alpar@128
   544
  ///
alpar@128
   545
  ///\sa arcWidthScale()
alpar@128
   546
  ///
alpar@128
   547
  GraphToEps<T> &autoArcWidthScale(bool b=true) {
alpar@128
   548
    _autoArcWidthScale=b;return *this;
alpar@128
   549
  }
alpar@128
   550
  ///Turns on/off the absolutematic arc width scaling.
alpar@128
   551
alpar@128
   552
  ///Turns on/off the absolutematic arc width scaling.
alpar@128
   553
  ///
alpar@128
   554
  ///\sa arcWidthScale()
alpar@128
   555
  ///
alpar@128
   556
  GraphToEps<T> &absoluteArcWidths(bool b=true) {
alpar@128
   557
    _absoluteArcWidths=b;return *this;
alpar@128
   558
  }
alpar@128
   559
  ///Sets a global scale factor for the whole picture
alpar@128
   560
alpar@128
   561
  ///Sets a global scale factor for the whole picture
alpar@128
   562
  ///
alpar@128
   563
alpar@128
   564
  GraphToEps<T> &scale(double d) {_scale=d;return *this;}
alpar@128
   565
  ///Sets the width of the border around the picture
alpar@128
   566
alpar@128
   567
  ///Sets the width of the border around the picture
alpar@128
   568
  ///
alpar@133
   569
  GraphToEps<T> &border(double b=10) {_xBorder=_yBorder=b;return *this;}
alpar@128
   570
  ///Sets the width of the border around the picture
alpar@128
   571
alpar@128
   572
  ///Sets the width of the border around the picture
alpar@128
   573
  ///
alpar@128
   574
  GraphToEps<T> &border(double x, double y) {
alpar@128
   575
    _xBorder=x;_yBorder=y;return *this;
alpar@128
   576
  }
alpar@128
   577
  ///Sets whether to draw arrows
alpar@128
   578
alpar@128
   579
  ///Sets whether to draw arrows
alpar@128
   580
  ///
alpar@128
   581
  GraphToEps<T> &drawArrows(bool b=true) {_drawArrows=b;return *this;}
alpar@128
   582
  ///Sets the length of the arrowheads
alpar@128
   583
alpar@128
   584
  ///Sets the length of the arrowheads
alpar@128
   585
  ///
alpar@133
   586
  GraphToEps<T> &arrowLength(double d=1.0) {_arrowLength*=d;return *this;}
alpar@128
   587
  ///Sets the width of the arrowheads
alpar@128
   588
alpar@128
   589
  ///Sets the width of the arrowheads
alpar@128
   590
  ///
alpar@133
   591
  GraphToEps<T> &arrowWidth(double d=.3) {_arrowWidth*=d;return *this;}
alpar@128
   592
  
alpar@128
   593
  ///Scales the drawing to fit to A4 page
alpar@128
   594
alpar@128
   595
  ///Scales the drawing to fit to A4 page
alpar@128
   596
  ///
alpar@128
   597
  GraphToEps<T> &scaleToA4() {_scaleToA4=true;return *this;}
alpar@128
   598
  
alpar@128
   599
  ///Enables parallel arcs
alpar@128
   600
alpar@128
   601
  ///Enables parallel arcs
alpar@128
   602
  GraphToEps<T> &enableParallel(bool b=true) {_enableParallel=b;return *this;}
alpar@128
   603
  
alpar@128
   604
  ///Sets the distance 
alpar@128
   605
  
alpar@128
   606
  ///Sets the distance 
alpar@128
   607
  ///
alpar@128
   608
  GraphToEps<T> &parArcDist(double d) {_parArcDist*=d;return *this;}
alpar@128
   609
  
alpar@128
   610
  ///Hides the arcs
alpar@128
   611
  
alpar@128
   612
  ///Hides the arcs
alpar@128
   613
  ///
alpar@128
   614
  GraphToEps<T> &hideArcs(bool b=true) {_showArcs=!b;return *this;}
alpar@128
   615
  ///Hides the nodes
alpar@128
   616
  
alpar@128
   617
  ///Hides the nodes
alpar@128
   618
  ///
alpar@128
   619
  GraphToEps<T> &hideNodes(bool b=true) {_showNodes=!b;return *this;}
alpar@128
   620
  
alpar@128
   621
  ///Sets the size of the node texts
alpar@128
   622
  
alpar@128
   623
  ///Sets the size of the node texts
alpar@128
   624
  ///
alpar@128
   625
  GraphToEps<T> &nodeTextSize(double d) {_nodeTextSize=d;return *this;}
alpar@128
   626
alpar@128
   627
  ///Sets the color of the node texts to be different from the node color
alpar@128
   628
alpar@128
   629
  ///Sets the color of the node texts to be as different from the node color
alpar@128
   630
  ///as it is possible
alpar@128
   631
  ///
alpar@128
   632
  GraphToEps<T> &distantColorNodeTexts()
alpar@128
   633
  {_nodeTextColorType=DIST_COL;return *this;}
alpar@128
   634
  ///Sets the color of the node texts to be black or white and always visible.
alpar@128
   635
alpar@128
   636
  ///Sets the color of the node texts to be black or white according to
alpar@128
   637
  ///which is more 
alpar@128
   638
  ///different from the node color
alpar@128
   639
  ///
alpar@128
   640
  GraphToEps<T> &distantBWNodeTexts()
alpar@128
   641
  {_nodeTextColorType=DIST_BW;return *this;}
alpar@128
   642
alpar@128
   643
  ///Gives a preamble block for node Postscript block.
alpar@128
   644
  
alpar@128
   645
  ///Gives a preamble block for node Postscript block.
alpar@128
   646
  ///
alpar@128
   647
  ///\sa nodePsTexts()
alpar@128
   648
  GraphToEps<T> & nodePsTextsPreamble(const char *str) {
alpar@128
   649
    _nodePsTextsPreamble=str ;return *this;
alpar@128
   650
  }
alpar@128
   651
  ///Sets whether the the graph is undirected
alpar@128
   652
alpar@133
   653
  ///Sets whether the the graph is undirected.
alpar@128
   654
  ///
alpar@133
   655
  ///This setting is the default for undirected graphs.
alpar@133
   656
  ///
alpar@133
   657
  ///\sa directed()
alpar@133
   658
   GraphToEps<T> &undirected(bool b=true) {_undirected=b;return *this;}
alpar@128
   659
alpar@128
   660
  ///Sets whether the the graph is directed
alpar@128
   661
alpar@128
   662
  ///Sets whether the the graph is directed.
alpar@128
   663
  ///Use it to show the edges as a pair of directed ones.
alpar@133
   664
  ///
alpar@133
   665
  ///This setting is the default for digraphs.
alpar@133
   666
  ///
alpar@133
   667
  ///\sa undirected()
alpar@131
   668
  GraphToEps<T> &directed(bool b=true) {_undirected=!b;return *this;}
alpar@133
   669
  
alpar@128
   670
  ///Sets the title.
alpar@128
   671
alpar@128
   672
  ///Sets the title of the generated image,
alpar@128
   673
  ///namely it inserts a <tt>%%Title:</tt> DSC field to the header of
alpar@128
   674
  ///the EPS file.
alpar@128
   675
  GraphToEps<T> &title(const std::string &t) {_title=t;return *this;}
alpar@128
   676
  ///Sets the copyright statement.
alpar@128
   677
alpar@128
   678
  ///Sets the copyright statement of the generated image,
alpar@128
   679
  ///namely it inserts a <tt>%%Copyright:</tt> DSC field to the header of
alpar@128
   680
  ///the EPS file.
alpar@128
   681
  GraphToEps<T> &copyright(const std::string &t) {_copyright=t;return *this;}
alpar@128
   682
alpar@128
   683
protected:
alpar@128
   684
  bool isInsideNode(dim2::Point<double> p, double r,int t) 
alpar@128
   685
  {
alpar@128
   686
    switch(t) {
alpar@128
   687
    case CIRCLE:
alpar@128
   688
    case MALE:
alpar@128
   689
    case FEMALE:
alpar@128
   690
      return p.normSquare()<=r*r;
alpar@128
   691
    case SQUARE:
alpar@128
   692
      return p.x<=r&&p.x>=-r&&p.y<=r&&p.y>=-r;
alpar@128
   693
    case DIAMOND:
alpar@128
   694
      return p.x+p.y<=r && p.x-p.y<=r && -p.x+p.y<=r && -p.x-p.y<=r;
alpar@128
   695
    }
alpar@128
   696
    return false;
alpar@128
   697
  }
alpar@128
   698
alpar@128
   699
public:
alpar@128
   700
  ~GraphToEps() { }
alpar@128
   701
  
alpar@128
   702
  ///Draws the graph.
alpar@128
   703
alpar@128
   704
  ///Like other functions using
alpar@128
   705
  ///\ref named-templ-func-param "named template parameters",
alpar@133
   706
  ///this function calls the algorithm itself, i.e. in this case
alpar@128
   707
  ///it draws the graph.
alpar@128
   708
  void run() {
alpar@133
   709
    //\todo better 'epsilon' would be nice here.
alpar@128
   710
    const double EPSILON=1e-9;
alpar@128
   711
    if(dontPrint) return;
alpar@128
   712
    
alpar@131
   713
    _graph_to_eps_bits::_NegY<typename T::CoordsMapType>
alpar@131
   714
      mycoords(_coords,_negY);
alpar@128
   715
alpar@128
   716
    os << "%!PS-Adobe-2.0 EPSF-2.0\n";
alpar@128
   717
    if(_title.size()>0) os << "%%Title: " << _title << '\n';
alpar@128
   718
     if(_copyright.size()>0) os << "%%Copyright: " << _copyright << '\n';
alpar@128
   719
//        << "%%Copyright: XXXX\n"
alpar@128
   720
    os << "%%Creator: LEMON, graphToEps()\n";
deba@134
   721
deba@134
   722
    {    
deba@134
   723
#ifndef WIN32 
alpar@128
   724
      timeval tv;
alpar@128
   725
      gettimeofday(&tv, 0);
deba@134
   726
deba@134
   727
      char cbuf[26];
alpar@128
   728
      ctime_r(&tv.tv_sec,cbuf);
alpar@128
   729
      os << "%%CreationDate: " << cbuf;
deba@134
   730
#else
deba@134
   731
      SYSTEMTIME time;
deba@134
   732
      char buf1[11], buf2[9], buf3[5];
deba@134
   733
      
deba@134
   734
      GetSystemTime(&time);
deba@134
   735
      if (GetDateFormat(LOCALE_USER_DEFAULT, 0, &time, 
deba@134
   736
			"ddd MMM dd", buf1, 11) &&
deba@134
   737
	  GetTimeFormat(LOCALE_USER_DEFAULT, 0, &time, 
deba@134
   738
			"HH':'mm':'ss", buf2, 9) &&
deba@134
   739
	  GetDateFormat(LOCALE_USER_DEFAULT, 0, &time, 
deba@134
   740
				"yyyy", buf3, 5)) {
deba@134
   741
	os << "%%CreationDate: " << buf1 << ' ' 
deba@134
   742
	   << buf2 << ' ' << buf3 << std::endl;
deba@134
   743
      }	  
deba@134
   744
#endif
alpar@128
   745
    }
alpar@128
   746
alpar@128
   747
    if (_autoArcWidthScale) {
alpar@128
   748
      double max_w=0;
alpar@128
   749
      for(ArcIt e(g);e!=INVALID;++e)
alpar@128
   750
	max_w=std::max(double(_arcWidths[e]),max_w);
alpar@128
   751
      ///\todo better 'epsilon' would be nice here.
alpar@128
   752
      if(max_w>EPSILON) {
alpar@128
   753
	_arcWidthScale/=max_w;
alpar@128
   754
      }
alpar@128
   755
    }
alpar@128
   756
alpar@128
   757
    if (_autoNodeScale) {
alpar@128
   758
      double max_s=0;
alpar@128
   759
      for(NodeIt n(g);n!=INVALID;++n)
alpar@128
   760
	max_s=std::max(double(_nodeSizes[n]),max_s);
alpar@128
   761
      ///\todo better 'epsilon' would be nice here.
alpar@128
   762
      if(max_s>EPSILON) {
alpar@128
   763
	_nodeScale/=max_s;
alpar@128
   764
      }
alpar@128
   765
    }
alpar@128
   766
alpar@128
   767
    double diag_len = 1;
alpar@128
   768
    if(!(_absoluteNodeSizes&&_absoluteArcWidths)) {
alpar@128
   769
      dim2::BoundingBox<double> bb;
alpar@128
   770
      for(NodeIt n(g);n!=INVALID;++n) bb.add(mycoords[n]);
alpar@128
   771
      if (bb.empty()) {
alpar@128
   772
	bb = dim2::BoundingBox<double>(dim2::Point<double>(0,0));
alpar@128
   773
      }
alpar@128
   774
      diag_len = std::sqrt((bb.bottomLeft()-bb.topRight()).normSquare());
alpar@128
   775
      if(diag_len<EPSILON) diag_len = 1;
alpar@128
   776
      if(!_absoluteNodeSizes) _nodeScale*=diag_len;
alpar@128
   777
      if(!_absoluteArcWidths) _arcWidthScale*=diag_len;
alpar@128
   778
    }
alpar@128
   779
    
alpar@128
   780
    dim2::BoundingBox<double> bb;
alpar@128
   781
    for(NodeIt n(g);n!=INVALID;++n) {
alpar@128
   782
      double ns=_nodeSizes[n]*_nodeScale;
alpar@128
   783
      dim2::Point<double> p(ns,ns);
alpar@128
   784
      switch(_nodeShapes[n]) {
alpar@128
   785
      case CIRCLE:
alpar@128
   786
      case SQUARE:
alpar@128
   787
      case DIAMOND:
alpar@128
   788
	bb.add(p+mycoords[n]);
alpar@128
   789
	bb.add(-p+mycoords[n]);
alpar@128
   790
	break;
alpar@128
   791
      case MALE:
alpar@128
   792
	bb.add(-p+mycoords[n]);
alpar@128
   793
	bb.add(dim2::Point<double>(1.5*ns,1.5*std::sqrt(3.0)*ns)+mycoords[n]);
alpar@128
   794
	break;
alpar@128
   795
      case FEMALE:
alpar@128
   796
	bb.add(p+mycoords[n]);
alpar@128
   797
	bb.add(dim2::Point<double>(-ns,-3.01*ns)+mycoords[n]);
alpar@128
   798
	break;
alpar@128
   799
      }
alpar@128
   800
    }
alpar@128
   801
    if (bb.empty()) {
alpar@128
   802
      bb = dim2::BoundingBox<double>(dim2::Point<double>(0,0));
alpar@128
   803
    }
alpar@128
   804
    
alpar@128
   805
    if(_scaleToA4)
alpar@128
   806
      os <<"%%BoundingBox: 0 0 596 842\n%%DocumentPaperSizes: a4\n";
alpar@128
   807
    else {
alpar@128
   808
      if(_preScale) {
alpar@128
   809
	//Rescale so that BoundingBox won't be neither to big nor too small.
alpar@128
   810
	while(bb.height()*_scale>1000||bb.width()*_scale>1000) _scale/=10;
alpar@128
   811
	while(bb.height()*_scale<100||bb.width()*_scale<100) _scale*=10;
alpar@128
   812
      }
alpar@128
   813
      
alpar@128
   814
      os << "%%BoundingBox: "
alpar@128
   815
	 << int(floor(bb.left()   * _scale - _xBorder)) << ' '
alpar@128
   816
	 << int(floor(bb.bottom() * _scale - _yBorder)) << ' '
alpar@128
   817
	 << int(ceil(bb.right()  * _scale + _xBorder)) << ' '
alpar@128
   818
	 << int(ceil(bb.top()    * _scale + _yBorder)) << '\n';
alpar@128
   819
    }
alpar@128
   820
    
alpar@128
   821
    os << "%%EndComments\n";
alpar@128
   822
    
alpar@128
   823
    //x1 y1 x2 y2 x3 y3 cr cg cb w
alpar@128
   824
    os << "/lb { setlinewidth setrgbcolor newpath moveto\n"
alpar@128
   825
       << "      4 2 roll 1 index 1 index curveto stroke } bind def\n";
alpar@128
   826
    os << "/l { setlinewidth setrgbcolor newpath moveto lineto stroke } bind def\n";
alpar@128
   827
    //x y r
alpar@128
   828
    os << "/c { newpath dup 3 index add 2 index moveto 0 360 arc closepath } bind def\n";
alpar@128
   829
    //x y r
alpar@128
   830
    os << "/sq { newpath 2 index 1 index add 2 index 2 index add moveto\n"
alpar@128
   831
       << "      2 index 1 index sub 2 index 2 index add lineto\n"
alpar@128
   832
       << "      2 index 1 index sub 2 index 2 index sub lineto\n"
alpar@128
   833
       << "      2 index 1 index add 2 index 2 index sub lineto\n"
alpar@128
   834
       << "      closepath pop pop pop} bind def\n";
alpar@128
   835
    //x y r
alpar@128
   836
    os << "/di { newpath 2 index 1 index add 2 index moveto\n"
alpar@128
   837
       << "      2 index             2 index 2 index add lineto\n"
alpar@128
   838
       << "      2 index 1 index sub 2 index             lineto\n"
alpar@128
   839
       << "      2 index             2 index 2 index sub lineto\n"
alpar@128
   840
       << "      closepath pop pop pop} bind def\n";
alpar@128
   841
    // x y r cr cg cb
alpar@128
   842
    os << "/nc { 0 0 0 setrgbcolor 5 index 5 index 5 index c fill\n"
alpar@128
   843
       << "     setrgbcolor " << 1+_nodeBorderQuotient << " div c fill\n"
alpar@128
   844
       << "   } bind def\n";
alpar@128
   845
    os << "/nsq { 0 0 0 setrgbcolor 5 index 5 index 5 index sq fill\n"
alpar@128
   846
       << "     setrgbcolor " << 1+_nodeBorderQuotient << " div sq fill\n"
alpar@128
   847
       << "   } bind def\n";
alpar@128
   848
    os << "/ndi { 0 0 0 setrgbcolor 5 index 5 index 5 index di fill\n"
alpar@128
   849
       << "     setrgbcolor " << 1+_nodeBorderQuotient << " div di fill\n"
alpar@128
   850
       << "   } bind def\n";
alpar@128
   851
    os << "/nfemale { 0 0 0 setrgbcolor 3 index "
alpar@128
   852
       << _nodeBorderQuotient/(1+_nodeBorderQuotient)
alpar@128
   853
       << " 1.5 mul mul setlinewidth\n"
alpar@128
   854
       << "  newpath 5 index 5 index moveto "
alpar@128
   855
       << "5 index 5 index 5 index 3.01 mul sub\n"
alpar@128
   856
       << "  lineto 5 index 4 index .7 mul sub 5 index 5 index 2.2 mul sub moveto\n"
alpar@128
   857
       << "  5 index 4 index .7 mul add 5 index 5 index 2.2 mul sub lineto stroke\n"
alpar@128
   858
       << "  5 index 5 index 5 index c fill\n"
alpar@128
   859
       << "  setrgbcolor " << 1+_nodeBorderQuotient << " div c fill\n"
alpar@128
   860
       << "  } bind def\n";
alpar@128
   861
    os << "/nmale {\n"
alpar@128
   862
       << "  0 0 0 setrgbcolor 3 index "
alpar@128
   863
       << _nodeBorderQuotient/(1+_nodeBorderQuotient)
alpar@128
   864
       <<" 1.5 mul mul setlinewidth\n"
alpar@128
   865
       << "  newpath 5 index 5 index moveto\n"
alpar@128
   866
       << "  5 index 4 index 1 mul 1.5 mul add\n"
alpar@128
   867
       << "  5 index 5 index 3 sqrt 1.5 mul mul add\n"
alpar@128
   868
       << "  1 index 1 index lineto\n"
alpar@128
   869
       << "  1 index 1 index 7 index sub moveto\n"
alpar@128
   870
       << "  1 index 1 index lineto\n"
alpar@128
   871
       << "  exch 5 index 3 sqrt .5 mul mul sub exch 5 index .5 mul sub lineto\n"
alpar@128
   872
       << "  stroke\n"
alpar@128
   873
       << "  5 index 5 index 5 index c fill\n"
alpar@128
   874
       << "  setrgbcolor " << 1+_nodeBorderQuotient << " div c fill\n"
alpar@128
   875
       << "  } bind def\n";
alpar@128
   876
    
alpar@128
   877
alpar@128
   878
    os << "/arrl " << _arrowLength << " def\n";
alpar@128
   879
    os << "/arrw " << _arrowWidth << " def\n";
alpar@128
   880
    // l dx_norm dy_norm
alpar@128
   881
    os << "/lrl { 2 index mul exch 2 index mul exch rlineto pop} bind def\n";
alpar@128
   882
    //len w dx_norm dy_norm x1 y1 cr cg cb
alpar@128
   883
    os << "/arr { setrgbcolor /y1 exch def /x1 exch def /dy exch def /dx exch def\n"
alpar@128
   884
       << "       /w exch def /len exch def\n"
alpar@128
   885
      //	 << "       0.1 setlinewidth x1 y1 moveto dx len mul dy len mul rlineto stroke"
alpar@128
   886
       << "       newpath x1 dy w 2 div mul add y1 dx w 2 div mul sub moveto\n"
alpar@128
   887
       << "       len w sub arrl sub dx dy lrl\n"
alpar@128
   888
       << "       arrw dy dx neg lrl\n"
alpar@128
   889
       << "       dx arrl w add mul dy w 2 div arrw add mul sub\n"
alpar@128
   890
       << "       dy arrl w add mul dx w 2 div arrw add mul add rlineto\n"
alpar@128
   891
       << "       dx arrl w add mul neg dy w 2 div arrw add mul sub\n"
alpar@128
   892
       << "       dy arrl w add mul neg dx w 2 div arrw add mul add rlineto\n"
alpar@128
   893
       << "       arrw dy dx neg lrl\n"
alpar@128
   894
       << "       len w sub arrl sub neg dx dy lrl\n"
alpar@128
   895
       << "       closepath fill } bind def\n";
alpar@128
   896
    os << "/cshow { 2 index 2 index moveto dup stringwidth pop\n"
alpar@128
   897
       << "         neg 2 div fosi .35 mul neg rmoveto show pop pop} def\n";
alpar@128
   898
alpar@128
   899
    os << "\ngsave\n";
alpar@128
   900
    if(_scaleToA4)
alpar@128
   901
      if(bb.height()>bb.width()) {
alpar@128
   902
	double sc= std::min((A4HEIGHT-2*A4BORDER)/bb.height(),
alpar@128
   903
		  (A4WIDTH-2*A4BORDER)/bb.width());
alpar@128
   904
	os << ((A4WIDTH -2*A4BORDER)-sc*bb.width())/2 + A4BORDER << ' '
alpar@128
   905
	   << ((A4HEIGHT-2*A4BORDER)-sc*bb.height())/2 + A4BORDER
alpar@128
   906
	   << " translate\n"
alpar@128
   907
	   << sc << " dup scale\n"
alpar@128
   908
	   << -bb.left() << ' ' << -bb.bottom() << " translate\n";
alpar@128
   909
      }
alpar@128
   910
      else {
alpar@128
   911
	//\todo Verify centering
alpar@128
   912
	double sc= std::min((A4HEIGHT-2*A4BORDER)/bb.width(),
alpar@128
   913
		  (A4WIDTH-2*A4BORDER)/bb.height());
alpar@128
   914
	os << ((A4WIDTH -2*A4BORDER)-sc*bb.height())/2 + A4BORDER << ' '
alpar@128
   915
	   << ((A4HEIGHT-2*A4BORDER)-sc*bb.width())/2 + A4BORDER 
alpar@128
   916
	   << " translate\n"
alpar@128
   917
	   << sc << " dup scale\n90 rotate\n"
alpar@128
   918
	   << -bb.left() << ' ' << -bb.top() << " translate\n";	
alpar@128
   919
	}
alpar@128
   920
    else if(_scale!=1.0) os << _scale << " dup scale\n";
alpar@128
   921
    
alpar@128
   922
    if(_showArcs) {
alpar@128
   923
      os << "%Arcs:\ngsave\n";      
alpar@128
   924
      if(_enableParallel) {
alpar@128
   925
	std::vector<Arc> el;
alpar@128
   926
	for(ArcIt e(g);e!=INVALID;++e)
alpar@128
   927
	  if((!_undirected||g.source(e)<g.target(e))&&_arcWidths[e]>0
alpar@128
   928
	     &&g.source(e)!=g.target(e))
alpar@128
   929
	    el.push_back(e);
alpar@128
   930
	std::sort(el.begin(),el.end(),arcLess(g));
alpar@128
   931
	
alpar@128
   932
	typename std::vector<Arc>::iterator j;
alpar@128
   933
	for(typename std::vector<Arc>::iterator i=el.begin();i!=el.end();i=j) {
alpar@128
   934
	  for(j=i+1;j!=el.end()&&isParallel(*i,*j);++j) ;
alpar@128
   935
alpar@128
   936
	  double sw=0;
alpar@128
   937
	  for(typename std::vector<Arc>::iterator e=i;e!=j;++e)
alpar@128
   938
	    sw+=_arcWidths[*e]*_arcWidthScale+_parArcDist;
alpar@128
   939
	  sw-=_parArcDist;
alpar@128
   940
	  sw/=-2.0;
alpar@128
   941
	  dim2::Point<double>
alpar@128
   942
	    dvec(mycoords[g.target(*i)]-mycoords[g.source(*i)]);
alpar@128
   943
	  double l=std::sqrt(dvec.normSquare()); 
alpar@133
   944
	  //\todo better 'epsilon' would be nice here.
alpar@128
   945
	  dim2::Point<double> d(dvec/std::max(l,EPSILON));
alpar@128
   946
 	  dim2::Point<double> m;
alpar@128
   947
// 	  m=dim2::Point<double>(mycoords[g.target(*i)]+mycoords[g.source(*i)])/2.0;
alpar@128
   948
alpar@128
   949
//  	  m=dim2::Point<double>(mycoords[g.source(*i)])+
alpar@128
   950
// 	    dvec*(double(_nodeSizes[g.source(*i)])/
alpar@128
   951
// 	       (_nodeSizes[g.source(*i)]+_nodeSizes[g.target(*i)]));
alpar@128
   952
alpar@128
   953
 	  m=dim2::Point<double>(mycoords[g.source(*i)])+
alpar@128
   954
	    d*(l+_nodeSizes[g.source(*i)]-_nodeSizes[g.target(*i)])/2.0;
alpar@128
   955
alpar@128
   956
	  for(typename std::vector<Arc>::iterator e=i;e!=j;++e) {
alpar@128
   957
	    sw+=_arcWidths[*e]*_arcWidthScale/2.0;
alpar@128
   958
	    dim2::Point<double> mm=m+rot90(d)*sw/.75;
alpar@128
   959
	    if(_drawArrows) {
alpar@128
   960
	      int node_shape;
alpar@128
   961
	      dim2::Point<double> s=mycoords[g.source(*e)];
alpar@128
   962
	      dim2::Point<double> t=mycoords[g.target(*e)];
alpar@128
   963
	      double rn=_nodeSizes[g.target(*e)]*_nodeScale;
alpar@128
   964
	      node_shape=_nodeShapes[g.target(*e)];
alpar@128
   965
	      dim2::Bezier3 bez(s,mm,mm,t);
alpar@128
   966
	      double t1=0,t2=1;
alpar@128
   967
	      for(int ii=0;ii<INTERPOL_PREC;++ii)
alpar@128
   968
		if(isInsideNode(bez((t1+t2)/2)-t,rn,node_shape)) t2=(t1+t2)/2;
alpar@128
   969
		else t1=(t1+t2)/2;
alpar@128
   970
	      dim2::Point<double> apoint=bez((t1+t2)/2);
alpar@128
   971
	      rn = _arrowLength+_arcWidths[*e]*_arcWidthScale;
alpar@128
   972
	      rn*=rn;
alpar@128
   973
	      t2=(t1+t2)/2;t1=0;
alpar@128
   974
	      for(int ii=0;ii<INTERPOL_PREC;++ii)
alpar@128
   975
		if((bez((t1+t2)/2)-apoint).normSquare()>rn) t1=(t1+t2)/2;
alpar@128
   976
		else t2=(t1+t2)/2;
alpar@128
   977
	      dim2::Point<double> linend=bez((t1+t2)/2);	      
alpar@128
   978
	      bez=bez.before((t1+t2)/2);
alpar@128
   979
// 	      rn=_nodeSizes[g.source(*e)]*_nodeScale;
alpar@128
   980
// 	      node_shape=_nodeShapes[g.source(*e)];
alpar@128
   981
// 	      t1=0;t2=1;
alpar@128
   982
// 	      for(int i=0;i<INTERPOL_PREC;++i)
alpar@128
   983
// 		if(isInsideNode(bez((t1+t2)/2)-t,rn,node_shape)) t1=(t1+t2)/2;
alpar@128
   984
// 		else t2=(t1+t2)/2;
alpar@128
   985
// 	      bez=bez.after((t1+t2)/2);
alpar@128
   986
	      os << _arcWidths[*e]*_arcWidthScale << " setlinewidth "
alpar@128
   987
		 << _arcColors[*e].red() << ' '
alpar@128
   988
		 << _arcColors[*e].green() << ' '
alpar@128
   989
		 << _arcColors[*e].blue() << " setrgbcolor newpath\n"
alpar@128
   990
		 << bez.p1.x << ' ' <<  bez.p1.y << " moveto\n"
alpar@128
   991
		 << bez.p2.x << ' ' << bez.p2.y << ' '
alpar@128
   992
		 << bez.p3.x << ' ' << bez.p3.y << ' '
alpar@128
   993
		 << bez.p4.x << ' ' << bez.p4.y << " curveto stroke\n";
alpar@128
   994
	      dim2::Point<double> dd(rot90(linend-apoint));
alpar@128
   995
	      dd*=(.5*_arcWidths[*e]*_arcWidthScale+_arrowWidth)/
alpar@128
   996
		std::sqrt(dd.normSquare());
alpar@128
   997
	      os << "newpath " << psOut(apoint) << " moveto "
alpar@128
   998
		 << psOut(linend+dd) << " lineto "
alpar@128
   999
		 << psOut(linend-dd) << " lineto closepath fill\n";
alpar@128
  1000
	    }
alpar@128
  1001
	    else {
alpar@128
  1002
	      os << mycoords[g.source(*e)].x << ' '
alpar@128
  1003
		 << mycoords[g.source(*e)].y << ' '
alpar@128
  1004
		 << mm.x << ' ' << mm.y << ' '
alpar@128
  1005
		 << mycoords[g.target(*e)].x << ' '
alpar@128
  1006
		 << mycoords[g.target(*e)].y << ' '
alpar@128
  1007
		 << _arcColors[*e].red() << ' '
alpar@128
  1008
		 << _arcColors[*e].green() << ' '
alpar@128
  1009
		 << _arcColors[*e].blue() << ' '
alpar@128
  1010
		 << _arcWidths[*e]*_arcWidthScale << " lb\n";
alpar@128
  1011
	    }
alpar@128
  1012
	    sw+=_arcWidths[*e]*_arcWidthScale/2.0+_parArcDist;
alpar@128
  1013
	  }
alpar@128
  1014
	}
alpar@128
  1015
      }
alpar@128
  1016
      else for(ArcIt e(g);e!=INVALID;++e)
alpar@128
  1017
	if((!_undirected||g.source(e)<g.target(e))&&_arcWidths[e]>0
alpar@128
  1018
	   &&g.source(e)!=g.target(e))
alpar@128
  1019
	  if(_drawArrows) {
alpar@128
  1020
	    dim2::Point<double> d(mycoords[g.target(e)]-mycoords[g.source(e)]);
alpar@128
  1021
	    double rn=_nodeSizes[g.target(e)]*_nodeScale;
alpar@128
  1022
	    int node_shape=_nodeShapes[g.target(e)];
alpar@128
  1023
	    double t1=0,t2=1;
alpar@128
  1024
	    for(int i=0;i<INTERPOL_PREC;++i)
alpar@128
  1025
	      if(isInsideNode((-(t1+t2)/2)*d,rn,node_shape)) t1=(t1+t2)/2;
alpar@128
  1026
	      else t2=(t1+t2)/2;
alpar@128
  1027
	    double l=std::sqrt(d.normSquare());
alpar@128
  1028
	    d/=l;
alpar@128
  1029
	    
alpar@128
  1030
	    os << l*(1-(t1+t2)/2) << ' '
alpar@128
  1031
	       << _arcWidths[e]*_arcWidthScale << ' '
alpar@128
  1032
	       << d.x << ' ' << d.y << ' '
alpar@128
  1033
	       << mycoords[g.source(e)].x << ' '
alpar@128
  1034
	       << mycoords[g.source(e)].y << ' '
alpar@128
  1035
	       << _arcColors[e].red() << ' '
alpar@128
  1036
	       << _arcColors[e].green() << ' '
alpar@128
  1037
	       << _arcColors[e].blue() << " arr\n";
alpar@128
  1038
	  }
alpar@128
  1039
	  else os << mycoords[g.source(e)].x << ' '
alpar@128
  1040
		  << mycoords[g.source(e)].y << ' '
alpar@128
  1041
		  << mycoords[g.target(e)].x << ' '
alpar@128
  1042
		  << mycoords[g.target(e)].y << ' '
alpar@128
  1043
		  << _arcColors[e].red() << ' '
alpar@128
  1044
		  << _arcColors[e].green() << ' '
alpar@128
  1045
		  << _arcColors[e].blue() << ' '
alpar@128
  1046
		  << _arcWidths[e]*_arcWidthScale << " l\n";
alpar@128
  1047
      os << "grestore\n";
alpar@128
  1048
    }
alpar@128
  1049
    if(_showNodes) {
alpar@128
  1050
      os << "%Nodes:\ngsave\n";
alpar@128
  1051
      for(NodeIt n(g);n!=INVALID;++n) {
alpar@128
  1052
	os << mycoords[n].x << ' ' << mycoords[n].y << ' '
alpar@128
  1053
	   << _nodeSizes[n]*_nodeScale << ' '
alpar@128
  1054
	   << _nodeColors[n].red() << ' '
alpar@128
  1055
	   << _nodeColors[n].green() << ' '
alpar@128
  1056
	   << _nodeColors[n].blue() << ' ';
alpar@128
  1057
	switch(_nodeShapes[n]) {
alpar@128
  1058
	case CIRCLE:
alpar@128
  1059
	  os<< "nc";break;
alpar@128
  1060
	case SQUARE:
alpar@128
  1061
	  os<< "nsq";break;
alpar@128
  1062
	case DIAMOND:
alpar@128
  1063
	  os<< "ndi";break;
alpar@128
  1064
	case MALE:
alpar@128
  1065
	  os<< "nmale";break;
alpar@128
  1066
	case FEMALE:
alpar@128
  1067
	  os<< "nfemale";break;
alpar@128
  1068
	}
alpar@128
  1069
	os<<'\n';
alpar@128
  1070
      }
alpar@128
  1071
      os << "grestore\n";
alpar@128
  1072
    }
alpar@128
  1073
    if(_showNodeText) {
alpar@128
  1074
      os << "%Node texts:\ngsave\n";
alpar@128
  1075
      os << "/fosi " << _nodeTextSize << " def\n";
alpar@128
  1076
      os << "(Helvetica) findfont fosi scalefont setfont\n";
alpar@128
  1077
      for(NodeIt n(g);n!=INVALID;++n) {
alpar@128
  1078
	switch(_nodeTextColorType) {
alpar@128
  1079
	case DIST_COL:
alpar@128
  1080
	  os << psOut(distantColor(_nodeColors[n])) << " setrgbcolor\n";
alpar@128
  1081
	  break;
alpar@128
  1082
	case DIST_BW:
alpar@128
  1083
	  os << psOut(distantBW(_nodeColors[n])) << " setrgbcolor\n";
alpar@128
  1084
	  break;
alpar@128
  1085
	case CUST_COL:
alpar@128
  1086
	  os << psOut(distantColor(_nodeTextColors[n])) << " setrgbcolor\n";
alpar@128
  1087
	  break;
alpar@128
  1088
	default:
alpar@128
  1089
	  os << "0 0 0 setrgbcolor\n";
alpar@128
  1090
	}
alpar@128
  1091
	os << mycoords[n].x << ' ' << mycoords[n].y
alpar@128
  1092
	   << " (" << _nodeTexts[n] << ") cshow\n";
alpar@128
  1093
      }
alpar@128
  1094
      os << "grestore\n";
alpar@128
  1095
    }
alpar@128
  1096
    if(_showNodePsText) {
alpar@128
  1097
      os << "%Node PS blocks:\ngsave\n";
alpar@128
  1098
      for(NodeIt n(g);n!=INVALID;++n)
alpar@128
  1099
	os << mycoords[n].x << ' ' << mycoords[n].y
alpar@128
  1100
	   << " moveto\n" << _nodePsTexts[n] << "\n";
alpar@128
  1101
      os << "grestore\n";
alpar@128
  1102
    }
alpar@128
  1103
    
alpar@128
  1104
    os << "grestore\nshowpage\n";
alpar@128
  1105
alpar@128
  1106
    //CleanUp:
alpar@128
  1107
    if(_pleaseRemoveOsStream) {delete &os;}
alpar@130
  1108
  }
alpar@130
  1109
alpar@130
  1110
  ///\name Aliases
alpar@130
  1111
  ///These are just some aliases to other parameter setting functions.
alpar@130
  1112
alpar@130
  1113
  ///@{
alpar@130
  1114
alpar@130
  1115
  ///An alias for arcWidths()
alpar@130
  1116
alpar@130
  1117
  ///An alias for arcWidths()
alpar@130
  1118
  ///
alpar@130
  1119
  template<class X> GraphToEps<ArcWidthsTraits<X> > edgeWidths(const X &x)
alpar@130
  1120
  {
alpar@130
  1121
    return arcWidths(x);
alpar@130
  1122
  }
alpar@130
  1123
alpar@130
  1124
  ///An alias for arcColors()
alpar@130
  1125
alpar@130
  1126
  ///An alias for arcColors()
alpar@130
  1127
  ///
alpar@130
  1128
  template<class X> GraphToEps<ArcColorsTraits<X> >
alpar@130
  1129
  edgeColors(const X &x)
alpar@130
  1130
  {
alpar@130
  1131
    return arcColors(x);
alpar@130
  1132
  }
alpar@130
  1133
alpar@130
  1134
  ///An alias for arcWidthScale()
alpar@130
  1135
alpar@130
  1136
  ///An alias for arcWidthScale()
alpar@130
  1137
  ///
alpar@130
  1138
  GraphToEps<T> &edgeWidthScale(double d) {return arcWidthScale(d);}
alpar@130
  1139
alpar@130
  1140
  ///An alias for autoArcWidthScale()
alpar@130
  1141
alpar@130
  1142
  ///An alias for autoArcWidthScale()
alpar@130
  1143
  ///
alpar@130
  1144
  GraphToEps<T> &autoEdgeWidthScale(bool b=true)
alpar@130
  1145
  {
alpar@130
  1146
    return autoArcWidthScale(b);
alpar@130
  1147
  }
alpar@130
  1148
  
alpar@130
  1149
  ///An alias for absoluteArcWidths()
alpar@130
  1150
alpar@130
  1151
  ///An alias for absoluteArcWidths()
alpar@130
  1152
  ///
alpar@130
  1153
  GraphToEps<T> &absoluteEdgeWidths(bool b=true)
alpar@130
  1154
  {
alpar@130
  1155
    return absoluteArcWidths(b);
alpar@130
  1156
  }
alpar@130
  1157
  
alpar@130
  1158
  ///An alias for parArcDist()
alpar@130
  1159
alpar@130
  1160
  ///An alias for parArcDist()
alpar@130
  1161
  ///
alpar@130
  1162
  GraphToEps<T> &parEdgeDist(double d) {return parArcDist(d);}
alpar@130
  1163
  
alpar@130
  1164
  ///An alias for hideArcs()
alpar@130
  1165
  
alpar@130
  1166
  ///An alias for hideArcs()
alpar@130
  1167
  ///
alpar@130
  1168
  GraphToEps<T> &hideEdges(bool b=true) {return hideArcs(b);}
alpar@130
  1169
alpar@130
  1170
  ///@}
alpar@128
  1171
};
alpar@128
  1172
alpar@128
  1173
template<class T>
alpar@128
  1174
const int GraphToEps<T>::INTERPOL_PREC = 20;
alpar@128
  1175
template<class T>
alpar@128
  1176
const double GraphToEps<T>::A4HEIGHT = 841.8897637795276;
alpar@128
  1177
template<class T>
alpar@128
  1178
const double GraphToEps<T>::A4WIDTH  = 595.275590551181;
alpar@128
  1179
template<class T>
alpar@128
  1180
const double GraphToEps<T>::A4BORDER = 15;
alpar@128
  1181
alpar@128
  1182
alpar@128
  1183
///Generates an EPS file from a graph
alpar@128
  1184
alpar@128
  1185
///\ingroup eps_io
alpar@128
  1186
///Generates an EPS file from a graph.
alpar@128
  1187
///\param g is a reference to the graph to be printed
alpar@128
  1188
///\param os is a reference to the output stream.
alpar@128
  1189
///By default it is <tt>std::cout</tt>
alpar@128
  1190
///
alpar@128
  1191
///This function also has a lot of
alpar@128
  1192
///\ref named-templ-func-param "named parameters",
alpar@128
  1193
///they are declared as the members of class \ref GraphToEps. The following
alpar@128
  1194
///example shows how to use these parameters.
alpar@128
  1195
///\code
alpar@128
  1196
/// graphToEps(g,os).scale(10).coords(coords)
alpar@128
  1197
///              .nodeScale(2).nodeSizes(sizes)
alpar@128
  1198
///              .arcWidthScale(.4).run();
alpar@128
  1199
///\endcode
alpar@128
  1200
///\warning Don't forget to put the \ref GraphToEps::run() "run()"
alpar@128
  1201
///to the end of the parameter list.
alpar@128
  1202
///\sa GraphToEps
alpar@128
  1203
///\sa graphToEps(G &g, const char *file_name)
alpar@128
  1204
template<class G>
alpar@128
  1205
GraphToEps<DefaultGraphToEpsTraits<G> > 
alpar@128
  1206
graphToEps(G &g, std::ostream& os=std::cout)
alpar@128
  1207
{
alpar@128
  1208
  return 
alpar@128
  1209
    GraphToEps<DefaultGraphToEpsTraits<G> >(DefaultGraphToEpsTraits<G>(g,os));
alpar@128
  1210
}
alpar@128
  1211
 
alpar@128
  1212
///Generates an EPS file from a graph
alpar@128
  1213
alpar@128
  1214
///\ingroup eps_io
alpar@128
  1215
///This function does the same as
alpar@128
  1216
///\ref graphToEps(G &g,std::ostream& os)
alpar@128
  1217
///but it writes its output into the file \c file_name
alpar@128
  1218
///instead of a stream.
alpar@128
  1219
///\sa graphToEps(G &g, std::ostream& os)
alpar@128
  1220
template<class G>
alpar@128
  1221
GraphToEps<DefaultGraphToEpsTraits<G> > 
alpar@128
  1222
graphToEps(G &g,const char *file_name)
alpar@128
  1223
{
alpar@128
  1224
  return GraphToEps<DefaultGraphToEpsTraits<G> >
alpar@128
  1225
    (DefaultGraphToEpsTraits<G>(g,*new std::ofstream(file_name),true));
alpar@128
  1226
}
alpar@128
  1227
alpar@128
  1228
///Generates an EPS file from a graph
alpar@128
  1229
alpar@128
  1230
///\ingroup eps_io
alpar@128
  1231
///This function does the same as
alpar@128
  1232
///\ref graphToEps(G &g,std::ostream& os)
alpar@128
  1233
///but it writes its output into the file \c file_name
alpar@128
  1234
///instead of a stream.
alpar@128
  1235
///\sa graphToEps(G &g, std::ostream& os)
alpar@128
  1236
template<class G>
alpar@128
  1237
GraphToEps<DefaultGraphToEpsTraits<G> > 
alpar@128
  1238
graphToEps(G &g,const std::string& file_name)
alpar@128
  1239
{
alpar@128
  1240
  return GraphToEps<DefaultGraphToEpsTraits<G> >
alpar@128
  1241
    (DefaultGraphToEpsTraits<G>(g,*new std::ofstream(file_name.c_str()),true));
alpar@128
  1242
}
alpar@128
  1243
alpar@128
  1244
} //END OF NAMESPACE LEMON
alpar@128
  1245
alpar@128
  1246
#endif // LEMON_GRAPH_TO_EPS_H