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alpar (Alpar Juttner)
alpar@cs.elte.hu
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@@ -409,232 +409,234 @@
409 409
    ///
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    /// This function returns the number of arcs on the found cycle.
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    ///
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    /// \pre \ref run() or \ref findMinMean() must be called before
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    /// using this function.
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    int cycleArcNum() const {
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      return _best_size;
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    }
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    /// \brief Return the mean length of the found cycle.
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    ///
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    /// This function returns the mean length of the found cycle.
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    ///
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    /// \note <tt>alg.cycleMean()</tt> is just a shortcut of the
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    /// following code.
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    /// \code
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    ///   return static_cast<double>(alg.cycleLength()) / alg.cycleArcNum();
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    /// \endcode
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    ///
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    /// \pre \ref run() or \ref findMinMean() must be called before
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    /// using this function.
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    double cycleMean() const {
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      return static_cast<double>(_best_length) / _best_size;
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    }
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    /// \brief Return the found cycle.
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    ///
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    /// This function returns a const reference to the path structure
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    /// storing the found cycle.
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    ///
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    /// \pre \ref run() or \ref findCycle() must be called before using
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    /// this function.
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    const Path& cycle() const {
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      return *_cycle_path;
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    }
444 444

	
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    ///@}
446 446

	
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  private:
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    // Initialization
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    void init() {
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      if (!_cycle_path) {
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        _local_path = true;
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        _cycle_path = new Path;
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      }
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      _cycle_path->clear();
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      _best_found = false;
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      _best_length = 0;
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      _best_size = 1;
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      _cycle_path->clear();
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      for (NodeIt u(_gr); u != INVALID; ++u)
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        _data[u].clear();
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    }
463 463

	
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    // Find strongly connected components and initialize _comp_nodes
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    // and _out_arcs
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    void findComponents() {
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      _comp_num = stronglyConnectedComponents(_gr, _comp);
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      _comp_nodes.resize(_comp_num);
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      if (_comp_num == 1) {
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        _comp_nodes[0].clear();
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        for (NodeIt n(_gr); n != INVALID; ++n) {
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          _comp_nodes[0].push_back(n);
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          _out_arcs[n].clear();
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          for (OutArcIt a(_gr, n); a != INVALID; ++a) {
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            _out_arcs[n].push_back(a);
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          }
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        }
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      } else {
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        for (int i = 0; i < _comp_num; ++i)
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          _comp_nodes[i].clear();
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        for (NodeIt n(_gr); n != INVALID; ++n) {
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          int k = _comp[n];
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          _comp_nodes[k].push_back(n);
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          _out_arcs[n].clear();
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          for (OutArcIt a(_gr, n); a != INVALID; ++a) {
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            if (_comp[_gr.target(a)] == k) _out_arcs[n].push_back(a);
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          }
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        }
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      }
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    }
491 491

	
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    // Initialize path data for the current component
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    bool initComponent(int comp) {
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      _nodes = &(_comp_nodes[comp]);
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      int n = _nodes->size();
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      if (n < 1 || (n == 1 && _out_arcs[(*_nodes)[0]].size() == 0)) {
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        return false;
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      }      
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      for (int i = 0; i < n; ++i) {
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        _data[(*_nodes)[i]].resize(n + 1, PathData(INF));
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      }
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      return true;
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    }
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    // Process all rounds of computing path data for the current component.
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    // _data[v][k] is the length of a shortest directed walk from the root
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    // node to node v containing exactly k arcs.
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    void processRounds() {
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      Node start = (*_nodes)[0];
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      _data[start][0] = PathData(0);
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      _process.clear();
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      _process.push_back(start);
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      int k, n = _nodes->size();
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      int next_check = 4;
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      bool terminate = false;
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      for (k = 1; k <= n && int(_process.size()) < n && !terminate; ++k) {
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        processNextBuildRound(k);
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        if (k == next_check || k == n) {
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          terminate = checkTermination(k);
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          next_check = next_check * 3 / 2;
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        }
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      }
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      for ( ; k <= n && !terminate; ++k) {
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        processNextFullRound(k);
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        if (k == next_check || k == n) {
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          terminate = checkTermination(k);
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          next_check = next_check * 3 / 2;
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        }
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      }
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    }
532 532

	
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    // Process one round and rebuild _process
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    void processNextBuildRound(int k) {
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      std::vector<Node> next;
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      Node u, v;
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      Arc e;
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      LargeValue d;
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      for (int i = 0; i < int(_process.size()); ++i) {
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        u = _process[i];
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        for (int j = 0; j < int(_out_arcs[u].size()); ++j) {
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          e = _out_arcs[u][j];
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          v = _gr.target(e);
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          d = _data[u][k-1].dist + _length[e];
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          if (_tolerance.less(d, _data[v][k].dist)) {
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            if (_data[v][k].dist == INF) next.push_back(v);
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            _data[v][k] = PathData(d, e);
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          }
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        }
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      }
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      _process.swap(next);
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    }
553 553

	
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    // Process one round using _nodes instead of _process
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    void processNextFullRound(int k) {
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      Node u, v;
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      Arc e;
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      LargeValue d;
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      for (int i = 0; i < int(_nodes->size()); ++i) {
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        u = (*_nodes)[i];
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        for (int j = 0; j < int(_out_arcs[u].size()); ++j) {
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          e = _out_arcs[u][j];
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          v = _gr.target(e);
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          d = _data[u][k-1].dist + _length[e];
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          if (_tolerance.less(d, _data[v][k].dist)) {
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            _data[v][k] = PathData(d, e);
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          }
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        }
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      }
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    }
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    // Check early termination
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    bool checkTermination(int k) {
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      typedef std::pair<int, int> Pair;
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      typename GR::template NodeMap<Pair> level(_gr, Pair(-1, 0));
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      typename GR::template NodeMap<LargeValue> pi(_gr);
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      int n = _nodes->size();
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      LargeValue length;
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      int size;
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      Node u;
581 581
      
582 582
      // Search for cycles that are already found
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      _curr_found = false;
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      for (int i = 0; i < n; ++i) {
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        u = (*_nodes)[i];
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        if (_data[u][k].dist == INF) continue;
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        for (int j = k; j >= 0; --j) {
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          if (level[u].first == i && level[u].second > 0) {
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            // A cycle is found
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            length = _data[u][level[u].second].dist - _data[u][j].dist;
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            size = level[u].second - j;
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            if (!_curr_found || length * _curr_size < _curr_length * size) {
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              _curr_length = length;
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              _curr_size = size;
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              _curr_node = u;
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              _curr_level = level[u].second;
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              _curr_found = true;
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            }
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          }
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          level[u] = Pair(i, j);
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          u = _gr.source(_data[u][j].pred);
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          if (j != 0) {
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	    u = _gr.source(_data[u][j].pred);
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	  }
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        }
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      }
604 606

	
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      // If at least one cycle is found, check the optimality condition
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      LargeValue d;
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      if (_curr_found && k < n) {
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        // Find node potentials
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        for (int i = 0; i < n; ++i) {
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          u = (*_nodes)[i];
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          pi[u] = INF;
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          for (int j = 0; j <= k; ++j) {
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            if (_data[u][j].dist < INF) {
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              d = _data[u][j].dist * _curr_size - j * _curr_length;
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              if (_tolerance.less(d, pi[u])) pi[u] = d;
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            }
617 619
          }
618 620
        }
619 621

	
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        // Check the optimality condition for all arcs
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        bool done = true;
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        for (ArcIt a(_gr); a != INVALID; ++a) {
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          if (_tolerance.less(_length[a] * _curr_size - _curr_length,
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                              pi[_gr.target(a)] - pi[_gr.source(a)]) ) {
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            done = false;
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            break;
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          }
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        }
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        return done;
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      }
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      return (k == n);
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    }
633 635

	
634 636
  }; //class HartmannOrlin
635 637

	
636 638
  ///@}
637 639

	
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} //namespace lemon
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#endif //LEMON_HARTMANN_ORLIN_H
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