VTK  9.2.6
vtkStreamTracer.h
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1/*=========================================================================
2
3 Program: Visualization Toolkit
4 Module: vtkStreamTracer.h
5
6 Copyright (c) Ken Martin, Will Schroeder, Bill Lorensen
7 All rights reserved.
8 See Copyright.txt or http://www.kitware.com/Copyright.htm for details.
9
10 This software is distributed WITHOUT ANY WARRANTY; without even
11 the implied warranty of MERCHANTABILITY or FITNESS FOR A PARTICULAR
12 PURPOSE. See the above copyright notice for more information.
13
14=========================================================================*/
103#ifndef vtkStreamTracer_h
104#define vtkStreamTracer_h
105
106#include "vtkFiltersFlowPathsModule.h" // For export macro
107#include "vtkPolyDataAlgorithm.h"
108
109#include "vtkDataSetAttributesFieldList.h" // Needed to identify common data arrays
110#include "vtkInitialValueProblemSolver.h" // Needed for constants
111
114class vtkDataArray;
116class vtkDoubleArray;
117class vtkExecutive;
118class vtkGenericCell;
119class vtkIdList;
120class vtkIntArray;
121class vtkPoints;
122
123#include <vector> // for std::vector
124
125// Helper struct to convert between different length scales.
126struct VTKFILTERSFLOWPATHS_EXPORT vtkIntervalInformation
127{
128 double Interval;
129 int Unit;
130
131 static double ConvertToLength(double interval, int unit, double cellLength);
132 static double ConvertToLength(vtkIntervalInformation& interval, double cellLength);
133};
134
146 void* clientdata, vtkPoints* points, vtkDataArray* velocity, int integrationDirection);
147
148class VTKFILTERSFLOWPATHS_EXPORT vtkStreamTracer : public vtkPolyDataAlgorithm
149{
150public:
159
161
165 void PrintSelf(ostream& os, vtkIndent indent) override;
167
169
174 vtkSetVector3Macro(StartPosition, double);
175 vtkGetVector3Macro(StartPosition, double);
177
179
188
195
196 // The previously-supported TIME_UNIT is excluded in this current
197 // enumeration definition because the underlying step size is ALWAYS in
198 // arc length unit (LENGTH_UNIT) while the 'real' time interval (virtual
199 // for steady flows) that a particle actually takes to trave in a single
200 // step is obtained by dividing the arc length by the LOCAL speed. The
201 // overall elapsed time (i.e., the life span) of the particle is the sum
202 // of those individual step-wise time intervals. The arc-length-to-time
203 // conversion only occurs for vorticity computation and for generating a
204 // point data array named 'IntegrationTime'.
205 enum Units
206 {
207 LENGTH_UNIT = 1,
208 CELL_LENGTH_UNIT = 2
209 };
210
212 {
217 UNKNOWN
218 };
219
221 {
225 OUT_OF_LENGTH = 4,
226 OUT_OF_STEPS = 5,
227 STAGNATION = 6,
228 FIXED_REASONS_FOR_TERMINATION_COUNT
229 };
230
232
243 vtkGetObjectMacro(Integrator, vtkInitialValueProblemSolver);
244 void SetIntegratorType(int type);
246 void SetIntegratorTypeToRungeKutta2() { this->SetIntegratorType(RUNGE_KUTTA2); }
247 void SetIntegratorTypeToRungeKutta4() { this->SetIntegratorType(RUNGE_KUTTA4); }
248 void SetIntegratorTypeToRungeKutta45() { this->SetIntegratorType(RUNGE_KUTTA45); }
250
261
269
271
274 vtkSetMacro(MaximumPropagation, double);
275 vtkGetMacro(MaximumPropagation, double);
277
285 int GetIntegrationStepUnit() { return this->IntegrationStepUnit; }
286
288
295 vtkSetMacro(InitialIntegrationStep, double);
296 vtkGetMacro(InitialIntegrationStep, double);
298
300
306 vtkSetMacro(MinimumIntegrationStep, double);
307 vtkGetMacro(MinimumIntegrationStep, double);
309
311
317 vtkSetMacro(MaximumIntegrationStep, double);
318 vtkGetMacro(MaximumIntegrationStep, double);
320
322
325 vtkSetMacro(MaximumError, double);
326 vtkGetMacro(MaximumError, double);
328
330
338 vtkSetMacro(MaximumNumberOfSteps, vtkIdType);
339 vtkGetMacro(MaximumNumberOfSteps, vtkIdType);
341
343
347 vtkSetMacro(TerminalSpeed, double);
348 vtkGetMacro(TerminalSpeed, double);
350
352
355 vtkGetMacro(SurfaceStreamlines, bool);
356 vtkSetMacro(SurfaceStreamlines, bool);
357 vtkBooleanMacro(SurfaceStreamlines, bool);
359
360 enum
361 {
364 BOTH
365 };
366
367 enum
368 {
370 INTERPOLATOR_WITH_CELL_LOCATOR
371 };
372
374
381 vtkSetClampMacro(IntegrationDirection, int, FORWARD, BOTH);
382 vtkGetMacro(IntegrationDirection, int);
383 void SetIntegrationDirectionToForward() { this->SetIntegrationDirection(FORWARD); }
384 void SetIntegrationDirectionToBackward() { this->SetIntegrationDirection(BACKWARD); }
385 void SetIntegrationDirectionToBoth() { this->SetIntegrationDirection(BOTH); }
387
389
394 vtkSetMacro(ComputeVorticity, bool);
395 vtkGetMacro(ComputeVorticity, bool);
397
399
403 vtkSetMacro(RotationScale, double);
404 vtkGetMacro(RotationScale, double);
406
417
427 void SetInterpolatorType(int interpType);
428
430
434 vtkGetMacro(ForceSerialExecution, bool);
435 vtkSetMacro(ForceSerialExecution, bool);
436 vtkBooleanMacro(ForceSerialExecution, bool);
438
448 CustomTerminationCallbackType callback, void* clientdata, int reasonForTermination);
449
459 double& step, double& minStep, double& maxStep, int direction, double cellLength);
460
462
466 void GenerateNormals(vtkPolyData* output, double* firstNormal, const char* vecName);
468 vtkGenericCell* cell, double pcoords[3], vtkDoubleArray* cellVectors, double vorticity[3]);
470
472
482 vtkSetMacro(UseLocalSeedSource, bool);
483 vtkGetMacro(UseLocalSeedSource, bool);
484 vtkBooleanMacro(UseLocalSeedSource, bool);
486
487protected:
490
491 // Create a default executive.
493
494 // hide the superclass' AddInput() from the user and the compiler
496 {
497 vtkErrorMacro(<< "AddInput() must be called with a vtkDataSet not a vtkDataObject.");
498 }
499
502
503 void Integrate(vtkPointData* inputData, vtkPolyData* output, vtkDataArray* seedSource,
504 vtkIdList* seedIds, vtkIntArray* integrationDirections,
505 vtkAbstractInterpolatedVelocityField* func, int maxCellSize, int vecType,
506 const char* vecFieldName, double& propagation, vtkIdType& numSteps, double& integrationTime,
507 std::vector<CustomTerminationCallbackType>& customTerminationCallback,
508 std::vector<void*>& customTerminationClientData, std::vector<int>& customReasonForTermination);
509
510 double SimpleIntegrate(double seed[3], double lastPoint[3], double stepSize,
513
515
516 // starting from global x-y-z position
517 double StartPosition[3];
518
519 static const double EPSILON;
521
522 // Used by subclasses, leave alone
524
529
531 void InitializeSeeds(vtkDataArray*& seeds, vtkIdList*& seedIds,
532 vtkIntArray*& integrationDirections, vtkDataSet* source);
533
536
537 // Prototype showing the integrator type to be set by the user.
539
542
545
546 // Compute streamlines only on surface.
548
550
551 // These are used to manage complex input types such as
552 // multiblock / composite datasets. Basically the filter input is
553 // converted to a composite dataset, and the point data attributes
554 // are intersected to produce a common set of output data arrays.
555 vtkCompositeDataSet* InputData; // convert input data to composite dataset
556 vtkDataSetAttributesFieldList InputPD; // intersect attributes of all datasets
557 bool
558 HasMatchingPointAttributes; // does the point data in the multiblocks have the same attributes?
559
560 // Control execution as serial or threaded
562 bool SerialExecution; // internal use to combine information
563
564 std::vector<CustomTerminationCallbackType> CustomTerminationCallback;
565 std::vector<void*> CustomTerminationClientData;
567
568 // Only relevant for this derived parallel version of vtkStreamTracer,
569 // but needs to be defined in this class to have a uniform interface
570 // betwen this class and the parallel override vtkPStreamTracer
572
573 friend class PStreamTracerUtils;
574
575private:
576 vtkStreamTracer(const vtkStreamTracer&) = delete;
577 void operator=(const vtkStreamTracer&) = delete;
578};
579
580#endif
An abstract class for obtaining the interpolated velocity values at a point.
Proxy object to connect input/output ports.
abstract superclass for composite (multi-block or AMR) datasets
abstract superclass for arrays of numeric data
general representation of visualization data
helps manage arrays from multiple vtkDataSetAttributes.
represent and manipulate attribute data in a dataset
abstract class to specify dataset behavior
Definition vtkDataSet.h:72
dynamic, self-adjusting array of double
Superclass for all pipeline executives in VTK.
provides thread-safe access to cells
list of point or cell ids
Definition vtkIdList.h:43
a simple class to control print indentation
Definition vtkIndent.h:49
Store zero or more vtkInformation instances.
Store vtkAlgorithm input/output information.
Integrate a set of ordinary differential equations (initial value problem) in time.
dynamic, self-adjusting array of int
Definition vtkIntArray.h:55
represent and manipulate point attribute data
represent and manipulate 3D points
Definition vtkPoints.h:49
Superclass for algorithms that produce only polydata as output.
concrete dataset represents vertices, lines, polygons, and triangle strips
Streamline generator.
void SetIntegratorTypeToRungeKutta45()
Set/get the integrator type to be used for streamline generation.
int FillInputPortInformation(int, vtkInformation *) override
Fill the input port information objects for this algorithm.
int SetupOutput(vtkInformation *inInfo, vtkInformation *outInfo)
std::vector< void * > CustomTerminationClientData
vtkDataSetAttributesFieldList InputPD
void SetSourceData(vtkDataSet *source)
Specify the source object used to generate starting points (seeds).
vtkDataSet * GetSource()
Specify the source object used to generate starting points (seeds).
double InitialIntegrationStep
vtkAbstractInterpolatedVelocityField * InterpolatorPrototype
void SetInterpolatorTypeToCellLocator()
Set the velocity field interpolator type to one that uses a cell locator to perform spatial searching...
void PrintSelf(ostream &os, vtkIndent indent) override
Standard methods to obtain type information and print object state.
void CalculateVorticity(vtkGenericCell *cell, double pcoords[3], vtkDoubleArray *cellVectors, double vorticity[3])
Helper methods to generate normals on streamlines.
double MinimumIntegrationStep
@ INTERPOLATOR_WITH_DATASET_POINT_LOCATOR
void SetIntegratorTypeToRungeKutta4()
Set/get the integrator type to be used for streamline generation.
void SetIntegrator(vtkInitialValueProblemSolver *)
Set/get the integrator type to be used for streamline generation.
void SetSourceConnection(vtkAlgorithmOutput *algOutput)
Specify the source object used to generate starting points (seeds).
std::vector< int > CustomReasonForTermination
int CheckInputs(vtkAbstractInterpolatedVelocityField *&func, int *maxCellSize)
void ConvertIntervals(double &step, double &minStep, double &maxStep, int direction, double cellLength)
The following methods should not be called by the user.
void GenerateNormals(vtkPolyData *output, double *firstNormal, const char *vecName)
Helper methods to generate normals on streamlines.
static const double EPSILON
vtkIdType MaximumNumberOfSteps
void SetIntegrationDirectionToForward()
Specify whether the streamline is integrated in the upstream or downstream direction,...
std::vector< CustomTerminationCallbackType > CustomTerminationCallback
static vtkStreamTracer * New()
Construct the object to start from position (0,0,0), with forward integration, terminal speed 1....
vtkCompositeDataSet * InputData
void SetInterpolatorType(int interpType)
Set the type of the velocity field interpolator to determine whether INTERPOLATOR_WITH_DATASET_POINT_...
double MaximumIntegrationStep
int RequestData(vtkInformation *, vtkInformationVector **, vtkInformationVector *) override
This is called by the superclass.
vtkExecutive * CreateDefaultExecutive() override
Create a default executive.
void Integrate(vtkPointData *inputData, vtkPolyData *output, vtkDataArray *seedSource, vtkIdList *seedIds, vtkIntArray *integrationDirections, vtkAbstractInterpolatedVelocityField *func, int maxCellSize, int vecType, const char *vecFieldName, double &propagation, vtkIdType &numSteps, double &integrationTime, std::vector< CustomTerminationCallbackType > &customTerminationCallback, std::vector< void * > &customTerminationClientData, std::vector< int > &customReasonForTermination)
void SetIntegrationDirectionToBackward()
Specify whether the streamline is integrated in the upstream or downstream direction,...
void SetInterpolatorTypeToDataSetPointLocator()
Set the velocity field interpolator type to one that uses a point locator to perform local spatial se...
int GetIntegratorType()
Set/get the integrator type to be used for streamline generation.
void AddCustomTerminationCallback(CustomTerminationCallbackType callback, void *clientdata, int reasonForTermination)
Adds a custom termination callback.
void InitializeSeeds(vtkDataArray *&seeds, vtkIdList *&seedIds, vtkIntArray *&integrationDirections, vtkDataSet *source)
void SetIntegratorTypeToRungeKutta2()
Set/get the integrator type to be used for streamline generation.
void SetIntegrationDirectionToBoth()
Specify whether the streamline is integrated in the upstream or downstream direction,...
double SimpleIntegrate(double seed[3], double lastPoint[3], double stepSize, vtkAbstractInterpolatedVelocityField *func)
~vtkStreamTracer() override
void AddInput(vtkDataObject *)
vtkInitialValueProblemSolver * Integrator
void SetInterpolatorPrototype(vtkAbstractInterpolatedVelocityField *ivf)
The object used to interpolate the velocity field during integration is of the same class as this pro...
void SetIntegrationStepUnit(int unit)
Specify a uniform integration step unit for MinimumIntegrationStep, InitialIntegrationStep,...
void SetIntegratorType(int type)
Set/get the integrator type to be used for streamline generation.
static double ConvertToLength(double interval, int unit, double cellLength)
static double ConvertToLength(vtkIntervalInformation &interval, double cellLength)
boost::graph_traits< vtkGraph * >::vertex_descriptor source(boost::graph_traits< vtkGraph * >::edge_descriptor e, vtkGraph *)
bool(* CustomTerminationCallbackType)(void *clientdata, vtkPoints *points, vtkDataArray *velocity, int integrationDirection)
Used to specify custom conditions which are evaluated to determine whether a streamline should be ter...
int vtkIdType
Definition vtkType.h:332