Chaste Release::3.1
DeltaNotchOffLatticeSimulation.cpp
00001 /*
00002 
00003 Copyright (c) 2005-2012, University of Oxford.
00004 All rights reserved.
00005 
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00008 Square, Oxford OX1 2JD, UK.
00009 
00010 This file is part of Chaste.
00011 
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00034 */
00035 
00036 #include "DeltaNotchOffLatticeSimulation.hpp"
00037 #include "NodeBasedCellPopulation.hpp"
00038 #include "VertexBasedCellPopulation.hpp"
00039 #include "MeshBasedCellPopulation.hpp"
00040 #include "DeltaNotchCellCycleModel.hpp"
00041 
00042 template<unsigned DIM>
00043 DeltaNotchOffLatticeSimulation<DIM>::DeltaNotchOffLatticeSimulation(AbstractCellPopulation<DIM>& rCellPopulation,
00044                                                                   bool deleteCellPopulationInDestructor,
00045                                                                   bool initialiseCells)
00046     : OffLatticeSimulation<DIM>(rCellPopulation, deleteCellPopulationInDestructor, initialiseCells)
00047 {
00048 }
00049 
00050 template<unsigned DIM>
00051 DeltaNotchOffLatticeSimulation<DIM>::~DeltaNotchOffLatticeSimulation()
00052 {
00053 }
00054 
00055 template<unsigned DIM>
00056 void DeltaNotchOffLatticeSimulation<DIM>::SetupSolve()
00057 {
00058     OffLatticeSimulation<DIM>::SetupSolve();
00059     UpdateCellData();
00060 }
00061 
00062 template<unsigned DIM>
00063 void DeltaNotchOffLatticeSimulation<DIM>::UpdateAtEndOfTimeStep()
00064 {
00065     OffLatticeSimulation<DIM>::UpdateAtEndOfTimeStep();
00066     UpdateCellData();
00067 }
00068 
00069 template<unsigned DIM>
00070 void DeltaNotchOffLatticeSimulation<DIM>::UpdateCellData()
00071 {
00072     // Make sure the cell population is updated
00073     this->mrCellPopulation.Update();
00074 
00075     // First store each cell's Notch and Delta concentrations in CellData
00076     for (typename AbstractCellPopulation<DIM>::Iterator cell_iter = this->mrCellPopulation.Begin();
00077          cell_iter != this->mrCellPopulation.End();
00078          ++cell_iter)
00079     {
00080         DeltaNotchCellCycleModel* p_model = static_cast<DeltaNotchCellCycleModel*>(cell_iter->GetCellCycleModel());
00081         double this_delta = p_model->GetDelta();
00082         double this_notch = p_model->GetNotch();
00083 
00084         // Note that the state variables must be in the same order as listed in DeltaNotchOdeSystem
00085         cell_iter->GetCellData()->SetItem("notch", this_notch);
00086         cell_iter->GetCellData()->SetItem("delta", this_delta);
00087     }
00088 
00089     // Next iterate over the population to compute and store each cell's neighbouring Delta concentration in CellData
00090     for (typename AbstractCellPopulation<DIM>::Iterator cell_iter = this->mrCellPopulation.Begin();
00091          cell_iter != this->mrCellPopulation.End();
00092          ++cell_iter)
00093     {
00094         // Get the location index corresponding to this cell
00095         unsigned index = this->mrCellPopulation.GetLocationIndexUsingCell(*cell_iter);
00096 
00097         // Get the set of neighbouring location indices
00098         std::set<unsigned> neighbour_indices;
00099         if (dynamic_cast<AbstractCentreBasedCellPopulation<DIM>*>(&(this->mrCellPopulation)))
00100         {
00101             neighbour_indices = this->mrCellPopulation.GetNeighbouringNodeIndices(index);
00102         }
00103         else
00104         {
00105             neighbour_indices = static_cast<VertexBasedCellPopulation<DIM>*>(&(this->mrCellPopulation))->rGetMesh().GetNeighbouringElementIndices(index);
00106         }
00107 
00108         // Compute this cell's average neighbouring Delta concentration and store in CellData
00109         if (!neighbour_indices.empty())
00110         {
00111             double mean_delta = 0.0;
00112             for (std::set<unsigned>::iterator iter = neighbour_indices.begin();
00113                  iter != neighbour_indices.end();
00114                  ++iter)
00115             {
00116                 CellPtr p_cell = this->mrCellPopulation.GetCellUsingLocationIndex(*iter);
00117                 double this_delta = p_cell->GetCellData()->GetItem("delta");
00118                 mean_delta += this_delta/neighbour_indices.size();
00119             }
00120             cell_iter->GetCellData()->SetItem("mean delta", mean_delta);
00121         }
00122         else
00123         {
00124             // If simulation trips at this assertion it is because at least one of the cells has no neighbours (as defined by mesh/population/interaction distance)
00125             NEVER_REACHED;
00126         }
00127     }
00128 }
00129 
00131 // Explicit instantiation
00133 
00134 template class DeltaNotchOffLatticeSimulation<1>;
00135 template class DeltaNotchOffLatticeSimulation<2>;
00136 template class DeltaNotchOffLatticeSimulation<3>;
00137 
00138 // Serialization for Boost >= 1.36
00139 #include "SerializationExportWrapperForCpp.hpp"
00140 EXPORT_TEMPLATE_CLASS_SAME_DIMS(DeltaNotchOffLatticeSimulation)