Chaste  Release::2017.1
TysonNovakCellCycleModel.cpp
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35 
36 #include "TysonNovakCellCycleModel.hpp"
37 #include "StemCellProliferativeType.hpp"
38 #include "TransitCellProliferativeType.hpp"
39 
40 TysonNovakCellCycleModel::TysonNovakCellCycleModel(boost::shared_ptr<AbstractCellCycleModelOdeSolver> pOdeSolver)
41  : AbstractOdeBasedCellCycleModel(SimulationTime::Instance()->GetTime(), pOdeSolver)
42 {
43  if (!mpOdeSolver)
44  {
45 #ifdef CHASTE_CVODE
47  mpOdeSolver->Initialise();
48  // Chaste solvers always check for stopping events, CVODE needs to be instructed to do so
49  mpOdeSolver->CheckForStoppingEvents();
50  mpOdeSolver->SetMaxSteps(10000);
51  mpOdeSolver->SetTolerances(1e-6, 1e-8);
52 #else
54  mpOdeSolver->SetSizeOfOdeSystem(6);
55  mpOdeSolver->Initialise();
56  SetDt(0.1/90.0);
57 #endif //CHASTE_CVODE
58  }
59 }
60 
63 {
64  /*
65  * Initialize only those member variables defined in this class.
66  * Create the new cell-cycle model's ODE system and use the current
67  * values of the state variables in mpOdeSystem as an initial condition.
68  *
69  * The member variable mDivideTime is initialized in the
70  * AbstractOdeBasedCellCycleModel constructor.
71  *
72  * The member variables mBirthTime, mReadyToDivide and mDimension
73  * are initialized in the AbstractCellCycleModel constructor.
74  *
75  * Note that the cell proliferative type is (re)set as soon as
76  * InitialiseDaughterCell() is called on the new cell-cycle model.
77  */
78  assert(rModel.GetOdeSystem());
81 }
82 
84 {
85  assert(mpOdeSystem == nullptr);
88 
90 }
91 
93 {
95 
96  assert(mpOdeSystem != nullptr);
97 
110 #ifdef CHASTE_CVODE
112 #else
114 #endif //CHASTE_CVODE
115 }
116 
118 {
119  if (mpCell->GetCellProliferativeType()->IsType<StemCellProliferativeType>())
120  {
121  /*
122  * This method is usually called within a CellBasedSimulation, after the CellPopulation
123  * has called CellPropertyRegistry::TakeOwnership(). This means that were we to call
124  * CellPropertyRegistry::Instance() here when setting the CellProliferativeType, we
125  * would be creating a new CellPropertyRegistry. In this case the cell proliferative
126  * type counts, as returned by AbstractCellPopulation::GetCellProliferativeTypeCount(),
127  * would be incorrect. We must therefore access the CellProliferativeType via the cell's
128  * CellPropertyCollection.
129  */
130  boost::shared_ptr<AbstractCellProperty> p_transit_type =
131  mpCell->rGetCellPropertyCollection().GetCellPropertyRegistry()->Get<TransitCellProliferativeType>();
132  mpCell->SetCellProliferativeType(p_transit_type);
133  }
134 }
135 
137 {
138  return new TysonNovakCellCycleModel(*this);
139 }
140 
142 {
143  return 1.25;
144 }
145 
147 {
148  return 1.25;
149 }
150 
152 {
153  return false;
154 }
155 
157 {
158  // No new parameters to output, so just call method on direct parent class
160 }
161 
162 // Serialization for Boost >= 1.36
165 #include "CellCycleModelOdeSolverExportWrapper.hpp"
166 EXPORT_CELL_CYCLE_MODEL_ODE_SOLVER(TysonNovakCellCycleModel)
void SetStateVariables(const std::vector< double > &rStateVariables)
void SetOdeSystem(AbstractOdeSystem *pOdeSystem)
boost::shared_ptr< AbstractCellCycleModelOdeSolver > mpOdeSolver
virtual void OutputCellCycleModelParameters(out_stream &rParamsFile)
AbstractCellCycleModel * CreateCellCycleModel()
void SetStateVariables(const VECTOR &rStateVariables)
static boost::shared_ptr< CellCycleModelOdeSolver< CELL_CYCLE_MODEL, ODE_SOLVER > > Instance()
TysonNovakCellCycleModel(const TysonNovakCellCycleModel &rModel)
AbstractOdeSystem * GetOdeSystem() const
virtual void OutputCellCycleModelParameters(out_stream &rParamsFile)
#define CHASTE_CLASS_EXPORT(T)