diff --git a/Modules/Segmentation/Interactions/mitkSegTool2D.cpp b/Modules/Segmentation/Interactions/mitkSegTool2D.cpp index b57199fabf..0b1e788f0b 100644 --- a/Modules/Segmentation/Interactions/mitkSegTool2D.cpp +++ b/Modules/Segmentation/Interactions/mitkSegTool2D.cpp @@ -1,446 +1,440 @@ /*=================================================================== The Medical Imaging Interaction Toolkit (MITK) Copyright (c) German Cancer Research Center, Division of Medical and Biological Informatics. All rights reserved. This software is distributed WITHOUT ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See LICENSE.txt or http://www.mitk.org for details. ===================================================================*/ #include "mitkSegTool2D.h" #include "mitkToolManager.h" #include "mitkDataStorage.h" #include "mitkBaseRenderer.h" #include "mitkPlaneGeometry.h" #include "mitkExtractImageFilter.h" #include "mitkExtractDirectedPlaneImageFilter.h" //Include of the new ImageExtractor #include "mitkExtractDirectedPlaneImageFilterNew.h" #include "mitkPlanarCircle.h" #include "mitkOverwriteSliceImageFilter.h" #include "mitkOverwriteDirectedPlaneImageFilter.h" #include "usGetModuleContext.h" //Includes for 3DSurfaceInterpolation #include "mitkImageToContourFilter.h" #include "mitkSurfaceInterpolationController.h" //includes for resling and overwriting #include #include #include #include #include #include "mitkOperationEvent.h" #include "mitkUndoController.h" #include "mitkAbstractTransformGeometry.h" #define ROUND(a) ((a)>0 ? (int)((a)+0.5) : -(int)(0.5-(a))) mitk::SegTool2D::SegTool2D(const char* type) :Tool(type), m_LastEventSender(NULL), m_LastEventSlice(0), m_Contourmarkername ("Position"), m_ShowMarkerNodes (false), m_3DInterpolationEnabled(true) { } mitk::SegTool2D::~SegTool2D() { } float mitk::SegTool2D::CanHandleEvent( InteractionEvent const *stateEvent) const { const InteractionPositionEvent* positionEvent = dynamic_cast( stateEvent ); if (!positionEvent) return 0.0; if ( positionEvent->GetSender()->GetMapperID() != BaseRenderer::Standard2D ) return 0.0; // we don't want anything but 2D return 1.0; - -// //This are the mouse event that are used by the statemachine patterns for zooming and panning. This must be possible although a tool is activ -// if (stateEvent->GetId() == EIDRIGHTMOUSEBTN || stateEvent->GetId() == EIDMIDDLEMOUSEBTN || stateEvent->GetId() == EIDRIGHTMOUSEBTNANDCTRL || -// stateEvent->GetId() == EIDMIDDLEMOUSERELEASE || stateEvent->GetId() == EIDRIGHTMOUSERELEASE || stateEvent->GetId() == EIDRIGHTMOUSEBTNANDMOUSEMOVE || -// stateEvent->GetId() == EIDMIDDLEMOUSEBTNANDMOUSEMOVE || stateEvent->GetId() == EIDCTRLANDRIGHTMOUSEBTNANDMOUSEMOVE || stateEvent->GetId() == EIDCTRLANDRIGHTMOUSEBTNRELEASE ) -// { -// //Since the usual segmentation tools currently do not need right click interaction but the mitkDisplayVectorInteractor -// return 0.0; -// } -// else -// { -// return 1.0; -// } - } bool mitk::SegTool2D::DetermineAffectedImageSlice( const Image* image, const PlaneGeometry* plane, int& affectedDimension, int& affectedSlice ) { assert(image); assert(plane); // compare normal of plane to the three axis vectors of the image Vector3D normal = plane->GetNormal(); Vector3D imageNormal0 = image->GetSlicedGeometry()->GetAxisVector(0); Vector3D imageNormal1 = image->GetSlicedGeometry()->GetAxisVector(1); Vector3D imageNormal2 = image->GetSlicedGeometry()->GetAxisVector(2); normal.Normalize(); imageNormal0.Normalize(); imageNormal1.Normalize(); imageNormal2.Normalize(); imageNormal0.SetVnlVector( vnl_cross_3d(normal.GetVnlVector(),imageNormal0.GetVnlVector()) ); imageNormal1.SetVnlVector( vnl_cross_3d(normal.GetVnlVector(),imageNormal1.GetVnlVector()) ); imageNormal2.SetVnlVector( vnl_cross_3d(normal.GetVnlVector(),imageNormal2.GetVnlVector()) ); double eps( 0.00001 ); // axial if ( imageNormal2.GetNorm() <= eps ) { affectedDimension = 2; } // sagittal else if ( imageNormal1.GetNorm() <= eps ) { affectedDimension = 1; } // frontal else if ( imageNormal0.GetNorm() <= eps ) { affectedDimension = 0; } else { affectedDimension = -1; // no idea return false; } // determine slice number in image BaseGeometry* imageGeometry = image->GetGeometry(0); Point3D testPoint = imageGeometry->GetCenter(); Point3D projectedPoint; plane->Project( testPoint, projectedPoint ); Point3D indexPoint; imageGeometry->WorldToIndex( projectedPoint, indexPoint ); affectedSlice = ROUND( indexPoint[affectedDimension] ); MITK_DEBUG << "indexPoint " << indexPoint << " affectedDimension " << affectedDimension << " affectedSlice " << affectedSlice; // check if this index is still within the image if ( affectedSlice < 0 || affectedSlice >= static_cast(image->GetDimension(affectedDimension)) ) return false; return true; } mitk::Image::Pointer mitk::SegTool2D::GetAffectedImageSliceAs2DImage(const InteractionPositionEvent* positionEvent, const Image* image) { if (!positionEvent) return NULL; assert( positionEvent->GetSender() ); // sure, right? unsigned int timeStep = positionEvent->GetSender()->GetTimeStep( image ); // get the timestep of the visible part (time-wise) of the image // first, we determine, which slice is affected const PlaneGeometry* planeGeometry( dynamic_cast (positionEvent->GetSender()->GetCurrentWorldPlaneGeometry() ) ); return this->GetAffectedImageSliceAs2DImage(planeGeometry, image, timeStep); } mitk::Image::Pointer mitk::SegTool2D::GetAffectedImageSliceAs2DImage(const PlaneGeometry* planeGeometry, const Image* image, unsigned int timeStep) { if ( !image || !planeGeometry ) return NULL; //Make sure that for reslicing and overwriting the same alogrithm is used. We can specify the mode of the vtk reslicer vtkSmartPointer reslice = vtkSmartPointer::New(); //set to false to extract a slice reslice->SetOverwriteMode(false); reslice->Modified(); //use ExtractSliceFilter with our specific vtkImageReslice for overwriting and extracting mitk::ExtractSliceFilter::Pointer extractor = mitk::ExtractSliceFilter::New(reslice); extractor->SetInput( image ); extractor->SetTimeStep( timeStep ); extractor->SetWorldGeometry( planeGeometry ); extractor->SetVtkOutputRequest(false); extractor->SetResliceTransformByGeometry( image->GetTimeGeometry()->GetGeometryForTimeStep( timeStep ) ); extractor->Modified(); extractor->Update(); Image::Pointer slice = extractor->GetOutput(); /*============= BEGIN undo feature block ========================*/ //specify the undo operation with the non edited slice m_undoOperation = new DiffSliceOperation(const_cast(image), extractor->GetVtkOutput(), dynamic_cast(slice->GetGeometry()), timeStep, const_cast(planeGeometry)); /*============= END undo feature block ========================*/ return slice; } mitk::Image::Pointer mitk::SegTool2D::GetAffectedWorkingSlice(const InteractionPositionEvent* positionEvent) { DataNode* workingNode( m_ToolManager->GetWorkingData(0) ); if ( !workingNode ) return NULL; Image* workingImage = dynamic_cast(workingNode->GetData()); if ( !workingImage ) return NULL; return GetAffectedImageSliceAs2DImage( positionEvent, workingImage ); } mitk::Image::Pointer mitk::SegTool2D::GetAffectedReferenceSlice(const InteractionPositionEvent* positionEvent) { DataNode* referenceNode( m_ToolManager->GetReferenceData(0) ); if ( !referenceNode ) return NULL; Image* referenceImage = dynamic_cast(referenceNode->GetData()); if ( !referenceImage ) return NULL; return GetAffectedImageSliceAs2DImage( positionEvent, referenceImage ); } void mitk::SegTool2D::WriteBackSegmentationResult (const InteractionPositionEvent* positionEvent, Image* slice) { if(!positionEvent) return; const PlaneGeometry* planeGeometry( dynamic_cast (positionEvent->GetSender()->GetCurrentWorldPlaneGeometry() ) ); const AbstractTransformGeometry* abstractTransformGeometry( dynamic_cast (positionEvent->GetSender()->GetCurrentWorldPlaneGeometry() ) ); if( planeGeometry && slice && !abstractTransformGeometry) { DataNode* workingNode( m_ToolManager->GetWorkingData(0) ); Image* image = dynamic_cast(workingNode->GetData()); unsigned int timeStep = positionEvent->GetSender()->GetTimeStep( image ); this->WriteBackSegmentationResult(planeGeometry, slice, timeStep); } } void mitk::SegTool2D::WriteBackSegmentationResult (const PlaneGeometry* planeGeometry, Image* slice, unsigned int timeStep) { if(!planeGeometry || !slice) return; SliceInformation sliceInfo (slice, const_cast(planeGeometry), timeStep); this->WriteSliceToVolume(sliceInfo); DataNode* workingNode( m_ToolManager->GetWorkingData(0) ); Image* image = dynamic_cast(workingNode->GetData()); if (m_3DInterpolationEnabled && image->GetDimension() == 3) { slice->DisconnectPipeline(); ImageToContourFilter::Pointer contourExtractor = ImageToContourFilter::New(); contourExtractor->SetInput(slice); contourExtractor->Update(); mitk::Surface::Pointer contour = contourExtractor->GetOutput(); mitk::PlaneGeometry::Pointer plane = const_cast(planeGeometry); - this->AddContourmarker(); - mitk::SurfaceInterpolationController::GetInstance()->AddNewContour( contour, plane); - contour->DisconnectPipeline(); + if (contour->GetVtkPolyData()->GetNumberOfPoints() > 0) + { + this->AddContourmarker(); + mitk::SurfaceInterpolationController::GetInstance()->AddNewContour( contour, plane); + contour->DisconnectPipeline(); + } + else + { + // Remove contour! + mitk::SurfaceInterpolationController::GetInstance()->RemoveContour(plane); + } } - mitk::RenderingManager::GetInstance()->RequestUpdateAll(); } void mitk::SegTool2D::WriteBackSegmentationResult(std::vector sliceList) { mitk::SurfaceInterpolationController::ContourPositionPairList contourList; contourList.reserve(sliceList.size()); ImageToContourFilter::Pointer contourExtractor = ImageToContourFilter::New(); DataNode* workingNode( m_ToolManager->GetWorkingData(0) ); Image* image = dynamic_cast(workingNode->GetData()); for (unsigned int i = 0; i < sliceList.size(); ++i) { SliceInformation currentSliceInfo = sliceList.at(i); this->WriteSliceToVolume(currentSliceInfo); if (m_3DInterpolationEnabled && image->GetDimension() == 3) { currentSliceInfo.slice->DisconnectPipeline(); contourExtractor->SetInput(currentSliceInfo.slice); contourExtractor->Update(); mitk::Surface::Pointer contour = contourExtractor->GetOutput(); contour->DisconnectPipeline(); mitk::SurfaceInterpolationController::ContourPositionPair pair; pair.contour = contour; pair.plane = currentSliceInfo.plane;; contourList.push_back(pair); } } mitk::SurfaceInterpolationController::GetInstance()->AddNewContours(contourList); } void mitk::SegTool2D::WriteSliceToVolume(mitk::SegTool2D::SliceInformation sliceInfo) { DataNode* workingNode( m_ToolManager->GetWorkingData(0) ); Image* image = dynamic_cast(workingNode->GetData()); //Make sure that for reslicing and overwriting the same alogrithm is used. We can specify the mode of the vtk reslicer vtkSmartPointer reslice = vtkSmartPointer::New(); //Set the slice as 'input' reslice->SetInputSlice(sliceInfo.slice->GetVtkImageData()); //set overwrite mode to true to write back to the image volume reslice->SetOverwriteMode(true); reslice->Modified(); mitk::ExtractSliceFilter::Pointer extractor = mitk::ExtractSliceFilter::New(reslice); extractor->SetInput( image ); extractor->SetTimeStep( sliceInfo.timestep ); extractor->SetWorldGeometry( sliceInfo.plane ); extractor->SetVtkOutputRequest(true); extractor->SetResliceTransformByGeometry( image->GetGeometry( sliceInfo.timestep ) ); extractor->Modified(); extractor->Update(); //the image was modified within the pipeline, but not marked so image->Modified(); image->GetVtkImageData()->Modified(); /*============= BEGIN undo feature block ========================*/ //specify the undo operation with the edited slice m_doOperation = new DiffSliceOperation(image, extractor->GetVtkOutput(),dynamic_cast(sliceInfo.slice->GetGeometry()), sliceInfo.timestep, sliceInfo.plane); //create an operation event for the undo stack OperationEvent* undoStackItem = new OperationEvent( DiffSliceOperationApplier::GetInstance(), m_doOperation, m_undoOperation, "Segmentation" ); //add it to the undo controller UndoController::GetCurrentUndoModel()->SetOperationEvent( undoStackItem ); //clear the pointers as the operation are stored in the undocontroller and also deleted from there m_undoOperation = NULL; m_doOperation = NULL; /*============= END undo feature block ========================*/ } void mitk::SegTool2D::SetShowMarkerNodes(bool status) { m_ShowMarkerNodes = status; } void mitk::SegTool2D::SetEnable3DInterpolation(bool enabled) { m_3DInterpolationEnabled = enabled; } unsigned int mitk::SegTool2D::AddContourmarker() { us::ServiceReference serviceRef = us::GetModuleContext()->GetServiceReference(); PlanePositionManagerService* service = us::GetModuleContext()->GetService(serviceRef); + unsigned int slicePosition = m_LastEventSender->GetSliceNavigationController()->GetSlice()->GetPos(); // the first geometry is needed otherwise restoring the position is not working const mitk::PlaneGeometry* plane = dynamic_cast (dynamic_cast< const mitk::SlicedGeometry3D*>( m_LastEventSender->GetSliceNavigationController()->GetCurrentGeometry3D())->GetPlaneGeometry(0)); unsigned int size = service->GetNumberOfPlanePositions(); unsigned int id = service->AddNewPlanePosition(plane, slicePosition); mitk::PlanarCircle::Pointer contourMarker = mitk::PlanarCircle::New(); mitk::Point2D p1; plane->Map(plane->GetCenter(), p1); mitk::Point2D p2 = p1; p2[0] -= plane->GetSpacing()[0]; p2[1] -= plane->GetSpacing()[1]; contourMarker->PlaceFigure( p1 ); contourMarker->SetCurrentControlPoint( p1 ); contourMarker->SetPlaneGeometry( const_cast(plane)); std::stringstream markerStream; mitk::DataNode* workingNode (m_ToolManager->GetWorkingData(0)); markerStream << m_Contourmarkername ; markerStream << " "; markerStream << id+1; DataNode::Pointer rotatedContourNode = DataNode::New(); rotatedContourNode->SetData(contourMarker); rotatedContourNode->SetProperty( "name", StringProperty::New(markerStream.str()) ); rotatedContourNode->SetProperty( "isContourMarker", BoolProperty::New(true)); rotatedContourNode->SetBoolProperty( "PlanarFigureInitializedWindow", true, m_LastEventSender ); rotatedContourNode->SetProperty( "includeInBoundingBox", BoolProperty::New(false)); rotatedContourNode->SetProperty( "helper object", mitk::BoolProperty::New(!m_ShowMarkerNodes)); rotatedContourNode->SetProperty( "planarfigure.drawcontrolpoints", BoolProperty::New(false)); rotatedContourNode->SetProperty( "planarfigure.drawname", BoolProperty::New(false)); rotatedContourNode->SetProperty( "planarfigure.drawoutline", BoolProperty::New(false)); rotatedContourNode->SetProperty( "planarfigure.drawshadow", BoolProperty::New(false)); if (plane) { if ( id == size ) { m_ToolManager->GetDataStorage()->Add(rotatedContourNode, workingNode); } else { mitk::NodePredicateProperty::Pointer isMarker = mitk::NodePredicateProperty::New("isContourMarker", mitk::BoolProperty::New(true)); mitk::DataStorage::SetOfObjects::ConstPointer markers = m_ToolManager->GetDataStorage()->GetDerivations(workingNode,isMarker); for ( mitk::DataStorage::SetOfObjects::const_iterator iter = markers->begin(); iter != markers->end(); ++iter) { std::string nodeName = (*iter)->GetName(); unsigned int t = nodeName.find_last_of(" "); unsigned int markerId = atof(nodeName.substr(t+1).c_str())-1; if(id == markerId) { return id; } } m_ToolManager->GetDataStorage()->Add(rotatedContourNode, workingNode); } } return id; } void mitk::SegTool2D::InteractiveSegmentationBugMessage( const std::string& message ) { MITK_ERROR << "********************************************************************************" << std::endl << " " << message << std::endl << "********************************************************************************" << std::endl << " " << std::endl << " If your image is rotated or the 2D views don't really contain the patient image, try to press the button next to the image selection. " << std::endl << " " << std::endl << " Please file a BUG REPORT: " << std::endl << " http://bugs.mitk.org" << std::endl << " Contain the following information:" << std::endl << " - What image were you working on?" << std::endl << " - Which region of the image?" << std::endl << " - Which tool did you use?" << std::endl << " - What did you do?" << std::endl << " - What happened (not)? What did you expect?" << std::endl; } diff --git a/Modules/Segmentation/Interactions/mitkSegTool2D.h b/Modules/Segmentation/Interactions/mitkSegTool2D.h index 35d8fa6c5a..591c6700ab 100644 --- a/Modules/Segmentation/Interactions/mitkSegTool2D.h +++ b/Modules/Segmentation/Interactions/mitkSegTool2D.h @@ -1,172 +1,171 @@ /*=================================================================== The Medical Imaging Interaction Toolkit (MITK) Copyright (c) German Cancer Research Center, Division of Medical and Biological Informatics. All rights reserved. This software is distributed WITHOUT ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See LICENSE.txt or http://www.mitk.org for details. ===================================================================*/ #ifndef mitkSegTool2D_h_Included #define mitkSegTool2D_h_Included #include "mitkCommon.h" #include #include "mitkTool.h" #include "mitkImage.h" #include "mitkStateEvent.h" #include "mitkInteractionPositionEvent.h" #include "mitkPlanePositionManager.h" #include "mitkRestorePlanePositionOperation.h" #include "mitkInteractionConst.h" #include namespace mitk { class BaseRenderer; /** \brief Abstract base class for segmentation tools. \sa Tool \ingroup Interaction \ingroup ToolManagerEtAl Implements 2D segmentation specific helper methods, that might be of use to all kind of 2D segmentation tools. At the moment these are: - Determination of the slice where the user paints upon (DetermineAffectedImageSlice) - Projection of a 3D contour onto a 2D plane/slice SegTool2D tries to structure the interaction a bit. If you pass "PressMoveRelease" as the interaction type of your derived tool, you might implement the methods OnMousePressed, OnMouseMoved, and OnMouseReleased. Yes, your guess about when they are called is correct. \warning Only to be instantiated by mitk::ToolManager. $Author$ */ class MitkSegmentation_EXPORT SegTool2D : public Tool { public: mitkClassMacro(SegTool2D, Tool); /** \brief Calculates for a given Image and PlaneGeometry, which slice of the image (in index corrdinates) is meant by the plane. \return false, if no slice direction seems right (e.g. rotated planes) \param affectedDimension The image dimension, which is constant for all points in the plane, e.g. Axial --> 2 \param affectedSlice The index of the image slice */ static bool DetermineAffectedImageSlice( const Image* image, const PlaneGeometry* plane, int& affectedDimension, int& affectedSlice ); void SetShowMarkerNodes(bool); /** * \brief Enables or disables the 3D interpolation after writing back the 2D segmentation result, and defaults to true. */ void SetEnable3DInterpolation(bool); protected: SegTool2D(); // purposely hidden SegTool2D(const char*); // purposely hidden virtual ~SegTool2D(); struct SliceInformation { mitk::Image::Pointer slice; mitk::PlaneGeometry* plane; unsigned int timestep; SliceInformation () {} SliceInformation (mitk::Image* slice, mitk::PlaneGeometry* plane, unsigned int timestep) { this->slice = slice; this->plane = plane; this->timestep = timestep; } }; /** * \brief Calculates how good the data, this statemachine handles, is hit by the event. * */ virtual float CanHandleEvent( InteractionEvent const *stateEvent) const; /** \brief Extract the slice of an image that the user just scribbles on. \return NULL if SegTool2D is either unable to determine which slice was affected, or if there was some problem getting the image data at that position. */ Image::Pointer GetAffectedImageSliceAs2DImage(const InteractionPositionEvent*, const Image* image); /** \brief Extract the slice of an image cut by given plane. \return NULL if SegTool2D is either unable to determine which slice was affected, or if there was some problem getting the image data at that position. */ Image::Pointer GetAffectedImageSliceAs2DImage(const PlaneGeometry* planeGeometry, const Image* image, unsigned int timeStep); /** \brief Extract the slice of the currently selected working image that the user just scribbles on. \return NULL if SegTool2D is either unable to determine which slice was affected, or if there was some problem getting the image data at that position, or just no working image is selected. */ Image::Pointer GetAffectedWorkingSlice(const InteractionPositionEvent*); /** \brief Extract the slice of the currently selected reference image that the user just scribbles on. \return NULL if SegTool2D is either unable to determine which slice was affected, or if there was some problem getting the image data at that position, or just no reference image is selected. */ Image::Pointer GetAffectedReferenceSlice(const InteractionPositionEvent*); void WriteBackSegmentationResult (const InteractionPositionEvent*, Image*); void WriteBackSegmentationResult (const PlaneGeometry* planeGeometry, Image*, unsigned int timeStep); void WriteBackSegmentationResult (std::vector sliceList); /** \brief Adds a new node called Contourmarker to the datastorage which holds a mitk::PlanarFigure. By selecting this node the slicestack will be reoriented according to the PlanarFigure's Geometry */ - unsigned int AddContourmarker (); void InteractiveSegmentationBugMessage( const std::string& message ); BaseRenderer* m_LastEventSender; unsigned int m_LastEventSlice; private: void WriteSliceToVolume (SliceInformation sliceInfo); //The prefix of the contourmarkername. Suffix is a consecutive number const std::string m_Contourmarkername; bool m_ShowMarkerNodes; bool m_3DInterpolationEnabled; DiffSliceOperation* m_doOperation; DiffSliceOperation* m_undoOperation; }; } // namespace #endif diff --git a/Modules/SegmentationUI/Qmitk/QmitkSlicesInterpolator.cpp b/Modules/SegmentationUI/Qmitk/QmitkSlicesInterpolator.cpp index daa43e86ba..1917913159 100644 --- a/Modules/SegmentationUI/Qmitk/QmitkSlicesInterpolator.cpp +++ b/Modules/SegmentationUI/Qmitk/QmitkSlicesInterpolator.cpp @@ -1,1090 +1,1089 @@ /*=================================================================== The Medical Imaging Interaction Toolkit (MITK) Copyright (c) German Cancer Research Center, Division of Medical and Biological Informatics. All rights reserved. This software is distributed WITHOUT ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See LICENSE.txt or http://www.mitk.org for details. ===================================================================*/ #include "QmitkSlicesInterpolator.h" #include "QmitkStdMultiWidget.h" #include "QmitkSelectableGLWidget.h" #include "mitkToolManager.h" #include "mitkDataNodeFactory.h" #include "mitkLevelWindowProperty.h" #include "mitkColorProperty.h" #include "mitkProperties.h" #include "mitkRenderingManager.h" #include "mitkOverwriteSliceImageFilter.h" #include "mitkProgressBar.h" #include "mitkGlobalInteraction.h" #include "mitkOperationEvent.h" #include "mitkUndoController.h" #include "mitkInteractionConst.h" #include "mitkApplyDiffImageOperation.h" #include "mitkDiffImageApplier.h" #include "mitkSegTool2D.h" #include "mitkCoreObjectFactory.h" #include "mitkSurfaceToImageFilter.h" #include "mitkSliceNavigationController.h" #include #include #include #include #include #include #include #include #include #include #include //#define ROUND(a) ((a)>0 ? (int)((a)+0.5) : -(int)(0.5-(a))) const std::map QmitkSlicesInterpolator::createActionToSliceDimension() { std::map actionToSliceDimension; foreach(mitk::SliceNavigationController* slicer, m_ControllerToDeleteObserverTag.keys()) { actionToSliceDimension[new QAction(QString::fromStdString(slicer->GetViewDirectionAsString()),0)] = slicer; } return actionToSliceDimension; } QmitkSlicesInterpolator::QmitkSlicesInterpolator(QWidget* parent, const char* /*name*/) :QWidget(parent), // ACTION_TO_SLICEDIMENSION( createActionToSliceDimension() ), m_Interpolator( mitk::SegmentationInterpolationController::New() ), m_SurfaceInterpolator(mitk::SurfaceInterpolationController::GetInstance()), m_ToolManager(NULL), m_Initialized(false), m_LastSNC(0), m_LastSliceIndex(0), m_2DInterpolationEnabled(false), m_3DInterpolationEnabled(false) { m_GroupBoxEnableExclusiveInterpolationMode = new QGroupBox("Interpolation", this); QVBoxLayout* vboxLayout = new QVBoxLayout(m_GroupBoxEnableExclusiveInterpolationMode); m_CmbInterpolation = new QComboBox(m_GroupBoxEnableExclusiveInterpolationMode); m_CmbInterpolation->addItem("Disabled"); m_CmbInterpolation->addItem("2-Dimensional"); m_CmbInterpolation->addItem("3-Dimensional"); vboxLayout->addWidget(m_CmbInterpolation); m_BtnApply2D = new QPushButton("Confirm for single slice", m_GroupBoxEnableExclusiveInterpolationMode); vboxLayout->addWidget(m_BtnApply2D); m_BtnApplyForAllSlices2D = new QPushButton("Confirm for all slices", m_GroupBoxEnableExclusiveInterpolationMode); vboxLayout->addWidget(m_BtnApplyForAllSlices2D); m_BtnApply3D = new QPushButton("Confirm", m_GroupBoxEnableExclusiveInterpolationMode); vboxLayout->addWidget(m_BtnApply3D); m_ChkShowPositionNodes = new QCheckBox("Show Position Nodes", m_GroupBoxEnableExclusiveInterpolationMode); vboxLayout->addWidget(m_ChkShowPositionNodes); this->HideAllInterpolationControls(); connect(m_CmbInterpolation, SIGNAL(currentIndexChanged(int)), this, SLOT(OnInterpolationMethodChanged(int))); connect(m_BtnApply2D, SIGNAL(clicked()), this, SLOT(OnAcceptInterpolationClicked())); connect(m_BtnApplyForAllSlices2D, SIGNAL(clicked()), this, SLOT(OnAcceptAllInterpolationsClicked())); connect(m_BtnApply3D, SIGNAL(clicked()), this, SLOT(OnAccept3DInterpolationClicked())); connect(m_ChkShowPositionNodes, SIGNAL(toggled(bool)), this, SLOT(OnShowMarkers(bool))); connect(m_ChkShowPositionNodes, SIGNAL(toggled(bool)), this, SIGNAL(SignalShowMarkerNodes(bool))); QHBoxLayout* layout = new QHBoxLayout(this); layout->addWidget(m_GroupBoxEnableExclusiveInterpolationMode); this->setLayout(layout); itk::ReceptorMemberCommand::Pointer command = itk::ReceptorMemberCommand::New(); command->SetCallbackFunction( this, &QmitkSlicesInterpolator::OnInterpolationInfoChanged ); InterpolationInfoChangedObserverTag = m_Interpolator->AddObserver( itk::ModifiedEvent(), command ); itk::ReceptorMemberCommand::Pointer command2 = itk::ReceptorMemberCommand::New(); command2->SetCallbackFunction( this, &QmitkSlicesInterpolator::OnSurfaceInterpolationInfoChanged ); SurfaceInterpolationInfoChangedObserverTag = m_SurfaceInterpolator->AddObserver( itk::ModifiedEvent(), command2 ); // feedback node and its visualization properties m_FeedbackNode = mitk::DataNode::New(); mitk::CoreObjectFactory::GetInstance()->SetDefaultProperties( m_FeedbackNode ); m_FeedbackNode->SetProperty( "binary", mitk::BoolProperty::New(true) ); m_FeedbackNode->SetProperty( "outline binary", mitk::BoolProperty::New(true) ); m_FeedbackNode->SetProperty( "color", mitk::ColorProperty::New(255.0, 255.0, 0.0) ); m_FeedbackNode->SetProperty( "texture interpolation", mitk::BoolProperty::New(false) ); m_FeedbackNode->SetProperty( "layer", mitk::IntProperty::New( 20 ) ); m_FeedbackNode->SetProperty( "levelwindow", mitk::LevelWindowProperty::New( mitk::LevelWindow(0, 1) ) ); m_FeedbackNode->SetProperty( "name", mitk::StringProperty::New("Interpolation feedback") ); m_FeedbackNode->SetProperty( "opacity", mitk::FloatProperty::New(0.8) ); m_FeedbackNode->SetProperty( "helper object", mitk::BoolProperty::New(true) ); m_InterpolatedSurfaceNode = mitk::DataNode::New(); m_InterpolatedSurfaceNode->SetProperty( "color", mitk::ColorProperty::New(255.0,255.0,0.0) ); m_InterpolatedSurfaceNode->SetProperty( "name", mitk::StringProperty::New("Surface Interpolation feedback") ); m_InterpolatedSurfaceNode->SetProperty( "opacity", mitk::FloatProperty::New(0.5) ); m_InterpolatedSurfaceNode->SetProperty( "includeInBoundingBox", mitk::BoolProperty::New(false)); m_InterpolatedSurfaceNode->SetProperty( "helper object", mitk::BoolProperty::New(true) ); m_InterpolatedSurfaceNode->SetVisibility(false); m_3DContourNode = mitk::DataNode::New(); m_3DContourNode->SetProperty( "color", mitk::ColorProperty::New(0.0, 0.0, 0.0) ); m_3DContourNode->SetProperty("helper object", mitk::BoolProperty::New(true)); m_3DContourNode->SetProperty( "name", mitk::StringProperty::New("Drawn Contours") ); m_3DContourNode->SetProperty("material.representation", mitk::VtkRepresentationProperty::New(VTK_WIREFRAME)); m_3DContourNode->SetProperty("material.wireframeLineWidth", mitk::FloatProperty::New(2.0f)); m_3DContourNode->SetProperty("3DContourContainer", mitk::BoolProperty::New(true)); m_3DContourNode->SetProperty( "includeInBoundingBox", mitk::BoolProperty::New(false)); m_3DContourNode->SetVisibility(false, mitk::BaseRenderer::GetInstance( mitk::BaseRenderer::GetRenderWindowByName("stdmulti.widget1"))); m_3DContourNode->SetVisibility(false, mitk::BaseRenderer::GetInstance( mitk::BaseRenderer::GetRenderWindowByName("stdmulti.widget2"))); m_3DContourNode->SetVisibility(false, mitk::BaseRenderer::GetInstance( mitk::BaseRenderer::GetRenderWindowByName("stdmulti.widget3"))); m_3DContourNode->SetVisibility(false, mitk::BaseRenderer::GetInstance( mitk::BaseRenderer::GetRenderWindowByName("stdmulti.widget4"))); QWidget::setContentsMargins(0, 0, 0, 0); if ( QWidget::layout() != NULL ) { QWidget::layout()->setContentsMargins(0, 0, 0, 0); } //For running 3D Interpolation in background // create a QFuture and a QFutureWatcher connect(&m_Watcher, SIGNAL(started()), this, SLOT(StartUpdateInterpolationTimer())); connect(&m_Watcher, SIGNAL(finished()), this, SLOT(OnSurfaceInterpolationFinished())); connect(&m_Watcher, SIGNAL(finished()), this, SLOT(StopUpdateInterpolationTimer())); m_Timer = new QTimer(this); connect(m_Timer, SIGNAL(timeout()), this, SLOT(ChangeSurfaceColor())); } void QmitkSlicesInterpolator::SetDataStorage( mitk::DataStorage::Pointer storage ) { m_DataStorage = storage; m_SurfaceInterpolator->SetDataStorage(storage); } mitk::DataStorage* QmitkSlicesInterpolator::GetDataStorage() { if ( m_DataStorage.IsNotNull() ) { return m_DataStorage; } else { return NULL; } } void QmitkSlicesInterpolator::Initialize(mitk::ToolManager* toolManager, const QList &controllers) { Q_ASSERT(!controllers.empty()); if (m_Initialized) { // remove old observers Uninitialize(); } m_ToolManager = toolManager; if (m_ToolManager) { // set enabled only if a segmentation is selected mitk::DataNode* node = m_ToolManager->GetWorkingData(0); QWidget::setEnabled( node != NULL ); // react whenever the set of selected segmentation changes m_ToolManager->WorkingDataChanged += mitk::MessageDelegate( this, &QmitkSlicesInterpolator::OnToolManagerWorkingDataModified ); m_ToolManager->ReferenceDataChanged += mitk::MessageDelegate( this, &QmitkSlicesInterpolator::OnToolManagerReferenceDataModified ); // connect to the slice navigation controller. after each change, call the interpolator foreach(mitk::SliceNavigationController* slicer, controllers) { //Has to be initialized m_LastSNC = slicer; m_TimeStep.insert(slicer, slicer->GetTime()->GetPos()); itk::MemberCommand::Pointer deleteCommand = itk::MemberCommand::New(); deleteCommand->SetCallbackFunction( this, &QmitkSlicesInterpolator::OnSliceNavigationControllerDeleted); m_ControllerToDeleteObserverTag.insert(slicer, slicer->AddObserver(itk::DeleteEvent(), deleteCommand)); itk::MemberCommand::Pointer timeChangedCommand = itk::MemberCommand::New(); timeChangedCommand->SetCallbackFunction( this, &QmitkSlicesInterpolator::OnTimeChanged); m_ControllerToTimeObserverTag.insert(slicer, slicer->AddObserver(mitk::SliceNavigationController::TimeGeometryEvent(NULL,0), timeChangedCommand)); itk::MemberCommand::Pointer sliceChangedCommand = itk::MemberCommand::New(); sliceChangedCommand->SetCallbackFunction( this, &QmitkSlicesInterpolator::OnSliceChanged); m_ControllerToSliceObserverTag.insert(slicer, slicer->AddObserver(mitk::SliceNavigationController::GeometrySliceEvent(NULL,0), sliceChangedCommand)); } ACTION_TO_SLICEDIMENSION = createActionToSliceDimension(); } m_Initialized = true; } void QmitkSlicesInterpolator::Uninitialize() { if (m_ToolManager.IsNotNull()) { m_ToolManager->WorkingDataChanged -= mitk::MessageDelegate(this, &QmitkSlicesInterpolator::OnToolManagerWorkingDataModified); m_ToolManager->ReferenceDataChanged -= mitk::MessageDelegate(this, &QmitkSlicesInterpolator::OnToolManagerReferenceDataModified); } foreach(mitk::SliceNavigationController* slicer, m_ControllerToSliceObserverTag.keys()) { slicer->RemoveObserver(m_ControllerToDeleteObserverTag.take(slicer)); slicer->RemoveObserver(m_ControllerToTimeObserverTag.take(slicer)); slicer->RemoveObserver(m_ControllerToSliceObserverTag.take(slicer)); } ACTION_TO_SLICEDIMENSION.clear(); m_ToolManager = NULL; m_Initialized = false; } QmitkSlicesInterpolator::~QmitkSlicesInterpolator() { if (m_Initialized) { // remove old observers Uninitialize(); } if(m_DataStorage->Exists(m_3DContourNode)) m_DataStorage->Remove(m_3DContourNode); if(m_DataStorage->Exists(m_InterpolatedSurfaceNode)) m_DataStorage->Remove(m_InterpolatedSurfaceNode); // remove observer m_Interpolator->RemoveObserver( InterpolationInfoChangedObserverTag ); m_SurfaceInterpolator->RemoveObserver( SurfaceInterpolationInfoChangedObserverTag ); delete m_Timer; } /** External enableization... */ void QmitkSlicesInterpolator::setEnabled( bool enable ) { QWidget::setEnabled(enable); //Set the gui elements of the different interpolation modi enabled if (enable) { if (m_2DInterpolationEnabled) { this->Show2DInterpolationControls(true); m_Interpolator->Activate2DInterpolation(true); } else if (m_3DInterpolationEnabled) { this->Show3DInterpolationControls(true); this->Show3DInterpolationResult(true); } } //Set all gui elements of the interpolation disabled else { this->HideAllInterpolationControls(); this->Show3DInterpolationResult(false); } } void QmitkSlicesInterpolator::On2DInterpolationEnabled(bool status) { OnInterpolationActivated(status); m_Interpolator->Activate2DInterpolation(status); } void QmitkSlicesInterpolator::On3DInterpolationEnabled(bool status) { On3DInterpolationActivated(status); } void QmitkSlicesInterpolator::OnInterpolationDisabled(bool status) { if (status) { OnInterpolationActivated(!status); On3DInterpolationActivated(!status); this->Show3DInterpolationResult(false); } } void QmitkSlicesInterpolator::HideAllInterpolationControls() { this->Show2DInterpolationControls(false); this->Show3DInterpolationControls(false); } void QmitkSlicesInterpolator::Show2DInterpolationControls(bool show) { m_BtnApply2D->setVisible(show); m_BtnApplyForAllSlices2D->setVisible(show); } void QmitkSlicesInterpolator::Show3DInterpolationControls(bool show) { m_BtnApply3D->setVisible(show); m_ChkShowPositionNodes->setVisible(show); } void QmitkSlicesInterpolator::OnInterpolationMethodChanged(int index) { switch(index) { case 0: // Disabled m_GroupBoxEnableExclusiveInterpolationMode->setTitle("Interpolation"); this->HideAllInterpolationControls(); this->OnInterpolationActivated(false); this->On3DInterpolationActivated(false); this->Show3DInterpolationResult(false); m_Interpolator->Activate2DInterpolation(false); break; case 1: // 2D m_GroupBoxEnableExclusiveInterpolationMode->setTitle("Interpolation (Enabled)"); this->HideAllInterpolationControls(); this->Show2DInterpolationControls(true); this->OnInterpolationActivated(true); this->On3DInterpolationActivated(false); m_Interpolator->Activate2DInterpolation(true); break; case 2: // 3D m_GroupBoxEnableExclusiveInterpolationMode->setTitle("Interpolation (Enabled)"); this->HideAllInterpolationControls(); this->Show3DInterpolationControls(true); this->OnInterpolationActivated(false); this->On3DInterpolationActivated(true); m_Interpolator->Activate2DInterpolation(false); break; default: MITK_ERROR << "Unknown interpolation method!"; m_CmbInterpolation->setCurrentIndex(0); break; } } void QmitkSlicesInterpolator::OnShowMarkers(bool state) { mitk::DataStorage::SetOfObjects::ConstPointer allContourMarkers = m_DataStorage->GetSubset(mitk::NodePredicateProperty::New("isContourMarker" , mitk::BoolProperty::New(true))); for (mitk::DataStorage::SetOfObjects::ConstIterator it = allContourMarkers->Begin(); it != allContourMarkers->End(); ++it) { it->Value()->SetProperty("helper object", mitk::BoolProperty::New(!state)); } } void QmitkSlicesInterpolator::OnToolManagerWorkingDataModified() { if (m_ToolManager->GetWorkingData(0) != 0) { m_Segmentation = dynamic_cast(m_ToolManager->GetWorkingData(0)->GetData()); } else { //If no workingdata is set, remove the interpolation feedback this->GetDataStorage()->Remove(m_FeedbackNode); m_FeedbackNode->SetData(NULL); this->GetDataStorage()->Remove(m_3DContourNode); m_3DContourNode->SetData(NULL); this->GetDataStorage()->Remove(m_InterpolatedSurfaceNode); m_InterpolatedSurfaceNode->SetData(NULL); return; } //Updating the current selected segmentation for the 3D interpolation SetCurrentContourListID(); if (m_2DInterpolationEnabled) { OnInterpolationActivated( true ); // re-initialize if needed } this->CheckSupportedImageDimension(); } void QmitkSlicesInterpolator::OnToolManagerReferenceDataModified() { } void QmitkSlicesInterpolator::OnTimeChanged(itk::Object* sender, const itk::EventObject& e) { //Check if we really have a GeometryTimeEvent if (!dynamic_cast(&e)) return; mitk::SliceNavigationController* slicer = dynamic_cast(sender); Q_ASSERT(slicer); m_TimeStep[slicer]/* = event.GetPos()*/; //TODO Macht das hier wirklich Sinn???? if (m_LastSNC == slicer) { slicer->SendSlice();//will trigger a new interpolation } } void QmitkSlicesInterpolator::OnSliceChanged(itk::Object *sender, const itk::EventObject &e) { //Check whether we really have a GeometrySliceEvent if (!dynamic_cast(&e)) return; mitk::SliceNavigationController* slicer = dynamic_cast(sender); if (TranslateAndInterpolateChangedSlice(e, slicer)) { slicer->GetRenderer()->RequestUpdate(); } } bool QmitkSlicesInterpolator::TranslateAndInterpolateChangedSlice(const itk::EventObject& e, mitk::SliceNavigationController* slicer) { if (!m_2DInterpolationEnabled) return false; try { const mitk::SliceNavigationController::GeometrySliceEvent& event = dynamic_cast(e); mitk::TimeGeometry* tsg = event.GetTimeGeometry(); if (tsg && m_TimeStep.contains(slicer)) { mitk::SlicedGeometry3D* slicedGeometry = dynamic_cast(tsg->GetGeometryForTimeStep(m_TimeStep[slicer]).GetPointer()); if (slicedGeometry) { m_LastSNC = slicer; mitk::PlaneGeometry* plane = dynamic_cast(slicedGeometry->GetPlaneGeometry( event.GetPos() )); if (plane) Interpolate( plane, m_TimeStep[slicer], slicer ); return true; } } } catch(std::bad_cast) { return false; // so what } return false; } void QmitkSlicesInterpolator::Interpolate( mitk::PlaneGeometry* plane, unsigned int timeStep, mitk::SliceNavigationController* slicer ) { if (m_ToolManager) { mitk::DataNode* node = m_ToolManager->GetWorkingData(0); if (node) { m_Segmentation = dynamic_cast(node->GetData()); if (m_Segmentation) { int clickedSliceDimension(-1); int clickedSliceIndex(-1); // calculate real slice position, i.e. slice of the image and not slice of the TimeSlicedGeometry mitk::SegTool2D::DetermineAffectedImageSlice( m_Segmentation, plane, clickedSliceDimension, clickedSliceIndex ); mitk::Image::Pointer interpolation = m_Interpolator->Interpolate( clickedSliceDimension, clickedSliceIndex, plane, timeStep ); m_FeedbackNode->SetData( interpolation ); m_LastSNC = slicer; m_LastSliceIndex = clickedSliceIndex; } } } } void QmitkSlicesInterpolator::OnSurfaceInterpolationFinished() { mitk::Surface::Pointer interpolatedSurface = m_SurfaceInterpolator->GetInterpolationResult(); mitk::DataNode* workingNode = m_ToolManager->GetWorkingData(0); if(interpolatedSurface.IsNotNull() && workingNode && workingNode->IsVisible(mitk::BaseRenderer::GetInstance( mitk::BaseRenderer::GetRenderWindowByName("stdmulti.widget3")))) { m_BtnApply3D->setEnabled(true); m_InterpolatedSurfaceNode->SetData(interpolatedSurface); m_3DContourNode->SetData(m_SurfaceInterpolator->GetContoursAsSurface()); this->Show3DInterpolationResult(true); if( !m_DataStorage->Exists(m_InterpolatedSurfaceNode) && !m_DataStorage->Exists(m_3DContourNode)) { m_DataStorage->Add(m_3DContourNode); m_DataStorage->Add(m_InterpolatedSurfaceNode); } } else if (interpolatedSurface.IsNull()) { m_BtnApply3D->setEnabled(false); if (m_DataStorage->Exists(m_InterpolatedSurfaceNode)) { this->Show3DInterpolationResult(false); } } foreach (mitk::SliceNavigationController* slicer, m_ControllerToTimeObserverTag.keys()) { slicer->GetRenderer()->RequestUpdate(); } } void QmitkSlicesInterpolator::OnAcceptInterpolationClicked() { if (m_Segmentation && m_FeedbackNode->GetData()) { //making interpolation separately undoable mitk::UndoStackItem::IncCurrObjectEventId(); mitk::UndoStackItem::IncCurrGroupEventId(); mitk::UndoStackItem::ExecuteIncrement(); //Make sure that for reslicing and overwriting the same alogrithm is used. We can specify the mode of the vtk reslicer vtkSmartPointer reslice = vtkSmartPointer::New(); // Set slice as input mitk::Image::Pointer slice = dynamic_cast(m_FeedbackNode->GetData()); reslice->SetInputSlice(slice->GetSliceData()->GetVtkImageAccessor(slice)->GetVtkImageData()); //set overwrite mode to true to write back to the image volume reslice->SetOverwriteMode(true); reslice->Modified(); mitk::ExtractSliceFilter::Pointer extractor = mitk::ExtractSliceFilter::New(reslice); extractor->SetInput( m_Segmentation ); unsigned int timestep = m_LastSNC->GetTime()->GetPos(); extractor->SetTimeStep( timestep ); extractor->SetWorldGeometry( m_LastSNC->GetCurrentPlaneGeometry() ); extractor->SetVtkOutputRequest(true); extractor->SetResliceTransformByGeometry( m_Segmentation->GetTimeGeometry()->GetGeometryForTimeStep( timestep ) ); extractor->Modified(); extractor->Update(); //the image was modified within the pipeline, but not marked so m_Segmentation->Modified(); m_Segmentation->GetVtkImageData()->Modified(); m_FeedbackNode->SetData(NULL); mitk::RenderingManager::GetInstance()->RequestUpdateAll(); } } void QmitkSlicesInterpolator::AcceptAllInterpolations(mitk::SliceNavigationController* slicer) { /* * What exactly is done here: * 1. We create an empty diff image for the current segmentation * 2. All interpolated slices are written into the diff image * 3. Then the diffimage is applied to the original segmentation */ if (m_Segmentation) { //making interpolation separately undoable mitk::UndoStackItem::IncCurrObjectEventId(); mitk::UndoStackItem::IncCurrGroupEventId(); mitk::UndoStackItem::ExecuteIncrement(); mitk::Image::Pointer image3D = m_Segmentation; unsigned int timeStep( slicer->GetTime()->GetPos() ); if (m_Segmentation->GetDimension() == 4) { mitk::ImageTimeSelector::Pointer timeSelector = mitk::ImageTimeSelector::New(); timeSelector->SetInput( m_Segmentation ); timeSelector->SetTimeNr( timeStep ); timeSelector->Update(); image3D = timeSelector->GetOutput(); } // create a empty diff image for the undo operation mitk::Image::Pointer diffImage = mitk::Image::New(); diffImage->Initialize( image3D ); // Create scope for ImageWriteAccessor so that the accessor is destroyed // after the image is initialized. Otherwise later image access will lead to an error { mitk::ImageWriteAccessor imAccess(diffImage); // Set all pixels to zero mitk::PixelType pixelType( mitk::MakeScalarPixelType() ); memset( imAccess.GetData(), 0, (pixelType.GetBpe() >> 3) * diffImage->GetDimension(0) * diffImage->GetDimension(1) * diffImage->GetDimension(2) ); } // Since we need to shift the plane it must be clone so that the original plane isn't altered mitk::PlaneGeometry::Pointer reslicePlane = slicer->GetCurrentPlaneGeometry()->Clone(); int sliceDimension(-1); int sliceIndex(-1); mitk::SegTool2D::DetermineAffectedImageSlice( m_Segmentation, reslicePlane, sliceDimension, sliceIndex ); unsigned int zslices = m_Segmentation->GetDimension( sliceDimension ); mitk::ProgressBar::GetInstance()->AddStepsToDo(zslices); mitk::Point3D origin = reslicePlane->GetOrigin(); unsigned int totalChangedSlices(0); for (unsigned int sliceIndex = 0; sliceIndex < zslices; ++sliceIndex) { // Transforming the current origin of the reslice plane // so that it matches the one of the next slice m_Segmentation->GetSlicedGeometry()->WorldToIndex(origin, origin); origin[sliceDimension] = sliceIndex; m_Segmentation->GetSlicedGeometry()->IndexToWorld(origin, origin); reslicePlane->SetOrigin(origin); //Set the slice as 'input' mitk::Image::Pointer interpolation = m_Interpolator->Interpolate( sliceDimension, sliceIndex, reslicePlane, timeStep ); if (interpolation.IsNotNull()) // we don't check if interpolation is necessary/sensible - but m_Interpolator does { //Setting up the reslicing pipeline which allows us to write the interpolation results back into //the image volume vtkSmartPointer reslice = vtkSmartPointer::New(); //set overwrite mode to true to write back to the image volume reslice->SetInputSlice(interpolation->GetSliceData()->GetVtkImageAccessor(interpolation)->GetVtkImageData()); reslice->SetOverwriteMode(true); reslice->Modified(); mitk::ExtractSliceFilter::Pointer diffslicewriter = mitk::ExtractSliceFilter::New(reslice); diffslicewriter->SetInput( diffImage ); diffslicewriter->SetTimeStep( timeStep ); diffslicewriter->SetWorldGeometry(reslicePlane); diffslicewriter->SetVtkOutputRequest(true); diffslicewriter->SetResliceTransformByGeometry( diffImage->GetTimeGeometry()->GetGeometryForTimeStep( timeStep ) ); diffslicewriter->Modified(); diffslicewriter->Update(); ++totalChangedSlices; } mitk::ProgressBar::GetInstance()->Progress(); } mitk::RenderingManager::GetInstance()->RequestUpdateAll(); if (totalChangedSlices > 0) { // store undo stack items if ( true ) { // create do/undo operations mitk::ApplyDiffImageOperation* doOp = new mitk::ApplyDiffImageOperation( mitk::OpTEST, m_Segmentation, diffImage, timeStep ); mitk::ApplyDiffImageOperation* undoOp = new mitk::ApplyDiffImageOperation( mitk::OpTEST, m_Segmentation, diffImage, timeStep ); undoOp->SetFactor( -1.0 ); std::stringstream comment; comment << "Confirm all interpolations (" << totalChangedSlices << ")"; mitk::OperationEvent* undoStackItem = new mitk::OperationEvent( mitk::DiffImageApplier::GetInstanceForUndo(), doOp, undoOp, comment.str() ); mitk::UndoController::GetCurrentUndoModel()->SetOperationEvent( undoStackItem ); // acutally apply the changes here to the original image mitk::DiffImageApplier::GetInstanceForUndo()->ExecuteOperation( doOp ); } } m_FeedbackNode->SetData(NULL); mitk::RenderingManager::GetInstance()->RequestUpdateAll(); } } void QmitkSlicesInterpolator::FinishInterpolation(mitk::SliceNavigationController* slicer) { //this redirect is for calling from outside if (slicer == NULL) OnAcceptAllInterpolationsClicked(); else AcceptAllInterpolations( slicer ); } void QmitkSlicesInterpolator::OnAcceptAllInterpolationsClicked() { QMenu orientationPopup(this); std::map::const_iterator it; for(it = ACTION_TO_SLICEDIMENSION.begin(); it != ACTION_TO_SLICEDIMENSION.end(); it++) orientationPopup.addAction(it->first); connect( &orientationPopup, SIGNAL(triggered(QAction*)), this, SLOT(OnAcceptAllPopupActivated(QAction*)) ); orientationPopup.exec( QCursor::pos() ); } void QmitkSlicesInterpolator::OnAccept3DInterpolationClicked() { if (m_InterpolatedSurfaceNode.IsNotNull() && m_InterpolatedSurfaceNode->GetData()) { mitk::SurfaceToImageFilter::Pointer s2iFilter = mitk::SurfaceToImageFilter::New(); s2iFilter->MakeOutputBinaryOn(); s2iFilter->SetInput(dynamic_cast(m_InterpolatedSurfaceNode->GetData())); // check if ToolManager holds valid ReferenceData if (m_ToolManager->GetReferenceData(0) == NULL || m_ToolManager->GetWorkingData(0) == NULL) { return; } s2iFilter->SetImage(dynamic_cast(m_ToolManager->GetReferenceData(0)->GetData())); s2iFilter->Update(); mitk::DataNode* segmentationNode = m_ToolManager->GetWorkingData(0); segmentationNode->SetData(s2iFilter->GetOutput()); m_CmbInterpolation->setCurrentIndex(0); mitk::RenderingManager::GetInstance()->RequestUpdateAll(); this->Show3DInterpolationResult(false); } } void QmitkSlicesInterpolator::OnAcceptAllPopupActivated(QAction* action) { try { std::map::const_iterator iter = ACTION_TO_SLICEDIMENSION.find( action ); if (iter != ACTION_TO_SLICEDIMENSION.end()) { mitk::SliceNavigationController* slicer = iter->second; AcceptAllInterpolations( slicer ); } } catch(...) { /* Showing message box with possible memory error */ QMessageBox errorInfo; errorInfo.setWindowTitle("Interpolation Process"); errorInfo.setIcon(QMessageBox::Critical); errorInfo.setText("An error occurred during interpolation. Possible cause: Not enough memory!"); errorInfo.exec(); //additional error message on std::cerr std::cerr << "Ill construction in " __FILE__ " l. " << __LINE__ << std::endl; } } void QmitkSlicesInterpolator::OnInterpolationActivated(bool on) { m_2DInterpolationEnabled = on; try { if ( m_DataStorage.IsNotNull() ) { if (on && !m_DataStorage->Exists(m_FeedbackNode)) { m_DataStorage->Add( m_FeedbackNode ); } } } catch(...) { // don't care (double add/remove) } if (m_ToolManager) { mitk::DataNode* workingNode = m_ToolManager->GetWorkingData(0); mitk::DataNode* referenceNode = m_ToolManager->GetReferenceData(0); QWidget::setEnabled( workingNode != NULL ); m_BtnApply2D->setEnabled( on ); m_FeedbackNode->SetVisibility( on ); if (!on) { mitk::RenderingManager::GetInstance()->RequestUpdateAll(); return; } if (workingNode) { mitk::Image* segmentation = dynamic_cast(workingNode->GetData()); if (segmentation) { m_Interpolator->SetSegmentationVolume( segmentation ); if (referenceNode) { mitk::Image* referenceImage = dynamic_cast(referenceNode->GetData()); m_Interpolator->SetReferenceVolume( referenceImage ); // may be NULL } } } } UpdateVisibleSuggestion(); } void QmitkSlicesInterpolator::Run3DInterpolation() { m_SurfaceInterpolator->Interpolate(); } void QmitkSlicesInterpolator::StartUpdateInterpolationTimer() { m_Timer->start(500); } void QmitkSlicesInterpolator::StopUpdateInterpolationTimer() { m_Timer->stop(); m_InterpolatedSurfaceNode->SetProperty("color", mitk::ColorProperty::New(255.0,255.0,0.0)); mitk::RenderingManager::GetInstance()->RequestUpdate(mitk::BaseRenderer::GetInstance( mitk::BaseRenderer::GetRenderWindowByName("stdmulti.widget4"))->GetRenderWindow()); } void QmitkSlicesInterpolator::ChangeSurfaceColor() { float currentColor[3]; m_InterpolatedSurfaceNode->GetColor(currentColor); float yellow[3] = {255.0,255.0,0.0}; if( currentColor[2] == yellow[2]) { m_InterpolatedSurfaceNode->SetProperty("color", mitk::ColorProperty::New(255.0,255.0,255.0)); } else { m_InterpolatedSurfaceNode->SetProperty("color", mitk::ColorProperty::New(yellow)); } m_InterpolatedSurfaceNode->Update(); mitk::RenderingManager::GetInstance()->RequestUpdate(mitk::BaseRenderer::GetInstance( mitk::BaseRenderer::GetRenderWindowByName("stdmulti.widget4"))->GetRenderWindow()); } void QmitkSlicesInterpolator::On3DInterpolationActivated(bool on) { m_3DInterpolationEnabled = on; this->CheckSupportedImageDimension(); try { if ( m_DataStorage.IsNotNull() && m_ToolManager && m_3DInterpolationEnabled) { mitk::DataNode* workingNode = m_ToolManager->GetWorkingData(0); if (workingNode) { bool isInterpolationResult(false); workingNode->GetBoolProperty("3DInterpolationResult",isInterpolationResult); if ((workingNode->IsVisible(mitk::BaseRenderer::GetInstance( mitk::BaseRenderer::GetRenderWindowByName("stdmulti.widget3")))) && !isInterpolationResult && m_3DInterpolationEnabled) { int ret = QMessageBox::Yes; if (m_SurfaceInterpolator->EstimatePortionOfNeededMemory() > 0.5) { QMessageBox msgBox; msgBox.setText("Due to short handed system memory the 3D interpolation may be very slow!"); msgBox.setInformativeText("Are you sure you want to activate the 3D interpolation?"); msgBox.setStandardButtons(QMessageBox::No | QMessageBox::Yes); ret = msgBox.exec(); } if (m_Watcher.isRunning()) m_Watcher.waitForFinished(); if (ret == QMessageBox::Yes) { m_Future = QtConcurrent::run(this, &QmitkSlicesInterpolator::Run3DInterpolation); m_Watcher.setFuture(m_Future); } else { m_CmbInterpolation->setCurrentIndex(0); } } else if (!m_3DInterpolationEnabled) { this->Show3DInterpolationResult(false); m_BtnApply3D->setEnabled(m_3DInterpolationEnabled); } } else { QWidget::setEnabled( false ); m_ChkShowPositionNodes->setEnabled(m_3DInterpolationEnabled); } } if (!m_3DInterpolationEnabled) { this->Show3DInterpolationResult(false); m_BtnApply3D->setEnabled(m_3DInterpolationEnabled); } } catch(...) { MITK_ERROR<<"Error with 3D surface interpolation!"; } mitk::RenderingManager::GetInstance()->RequestUpdateAll(); } void QmitkSlicesInterpolator::EnableInterpolation(bool on) { // only to be called from the outside world // just a redirection to OnInterpolationActivated OnInterpolationActivated(on); } void QmitkSlicesInterpolator::Enable3DInterpolation(bool on) { // only to be called from the outside world // just a redirection to OnInterpolationActivated On3DInterpolationActivated(on); } void QmitkSlicesInterpolator::UpdateVisibleSuggestion() { if (m_2DInterpolationEnabled && m_LastSNC) { // determine which one is the current view, try to do an initial interpolation mitk::BaseRenderer* renderer = m_LastSNC->GetRenderer(); if (renderer && renderer->GetMapperID() == mitk::BaseRenderer::Standard2D) { const mitk::TimeGeometry* timeGeometry = dynamic_cast( renderer->GetWorldGeometry() ); if (timeGeometry) { mitk::SliceNavigationController::GeometrySliceEvent event( const_cast(timeGeometry), renderer->GetSlice() ); TranslateAndInterpolateChangedSlice(event, m_LastSNC); } } } mitk::RenderingManager::GetInstance()->RequestUpdateAll(); } void QmitkSlicesInterpolator::OnInterpolationInfoChanged(const itk::EventObject& /*e*/) { // something (e.g. undo) changed the interpolation info, we should refresh our display UpdateVisibleSuggestion(); } void QmitkSlicesInterpolator::OnSurfaceInterpolationInfoChanged(const itk::EventObject& /*e*/) { if(m_3DInterpolationEnabled) { if (m_Watcher.isRunning()) m_Watcher.waitForFinished(); m_Future = QtConcurrent::run(this, &QmitkSlicesInterpolator::Run3DInterpolation); m_Watcher.setFuture(m_Future); } } void QmitkSlicesInterpolator:: SetCurrentContourListID() { // New ContourList = hide current interpolation Show3DInterpolationResult(false); if ( m_DataStorage.IsNotNull() && m_ToolManager && m_LastSNC ) { mitk::DataNode* workingNode = m_ToolManager->GetWorkingData(0); if (workingNode) { bool isInterpolationResult(false); workingNode->GetBoolProperty("3DInterpolationResult",isInterpolationResult); bool isVisible (workingNode->IsVisible(m_LastSNC->GetRenderer())); if (isVisible && !isInterpolationResult) { QWidget::setEnabled( true ); //TODO Aufruf hier pruefen! mitk::Vector3D spacing = workingNode->GetData()->GetGeometry( m_LastSNC->GetTime()->GetPos() )->GetSpacing(); double minSpacing (100); double maxSpacing (0); for (int i =0; i < 3; i++) { if (spacing[i] < minSpacing) { minSpacing = spacing[i]; } else if (spacing[i] > maxSpacing) { maxSpacing = spacing[i]; } } - m_SurfaceInterpolator->SetSegmentationImage(dynamic_cast(workingNode->GetData())); m_SurfaceInterpolator->SetMaxSpacing(maxSpacing); m_SurfaceInterpolator->SetMinSpacing(minSpacing); m_SurfaceInterpolator->SetDistanceImageVolume(50000); mitk::Image* segmentationImage = dynamic_cast(workingNode->GetData()); if (segmentationImage->GetDimension() == 3) - m_SurfaceInterpolator->SetCurrentSegmentationInterpolationList(segmentationImage); + m_SurfaceInterpolator->SetCurrentInterpolationSession(segmentationImage); else MITK_INFO<<"3D Interpolation is only supported for 3D images at the moment!"; if (m_3DInterpolationEnabled) { if (m_Watcher.isRunning()) m_Watcher.waitForFinished(); m_Future = QtConcurrent::run(this, &QmitkSlicesInterpolator::Run3DInterpolation); m_Watcher.setFuture(m_Future); } } } else { QWidget::setEnabled(false); } } } void QmitkSlicesInterpolator::Show3DInterpolationResult(bool status) { if (m_InterpolatedSurfaceNode.IsNotNull()) m_InterpolatedSurfaceNode->SetVisibility(status); if (m_3DContourNode.IsNotNull()) m_3DContourNode->SetVisibility(status, mitk::BaseRenderer::GetInstance( mitk::BaseRenderer::GetRenderWindowByName("stdmulti.widget4"))); mitk::RenderingManager::GetInstance()->RequestUpdateAll(); } void QmitkSlicesInterpolator::CheckSupportedImageDimension() { if (m_3DInterpolationEnabled && m_Segmentation->GetDimension() != 3) { QMessageBox info; info.setWindowTitle("3D Interpolation Process"); info.setIcon(QMessageBox::Information); info.setText("3D Interpolation is only supported for 3D images at the moment!"); info.exec(); m_CmbInterpolation->setCurrentIndex(0); } } void QmitkSlicesInterpolator::OnSliceNavigationControllerDeleted(const itk::Object *sender, const itk::EventObject& /*e*/) { //Don't know how to avoid const_cast here?! mitk::SliceNavigationController* slicer = dynamic_cast(const_cast(sender)); if (slicer) { m_ControllerToTimeObserverTag.remove(slicer); m_ControllerToSliceObserverTag.remove(slicer); m_ControllerToDeleteObserverTag.remove(slicer); } } diff --git a/Modules/SurfaceInterpolation/Testing/mitkSurfaceInterpolationControllerTest.cpp b/Modules/SurfaceInterpolation/Testing/mitkSurfaceInterpolationControllerTest.cpp index 0fed5cca44..82dbc32a50 100644 --- a/Modules/SurfaceInterpolation/Testing/mitkSurfaceInterpolationControllerTest.cpp +++ b/Modules/SurfaceInterpolation/Testing/mitkSurfaceInterpolationControllerTest.cpp @@ -1,344 +1,397 @@ /*=================================================================== The Medical Imaging Interaction Toolkit (MITK) Copyright (c) German Cancer Research Center, Division of Medical and Biological Informatics. All rights reserved. This software is distributed WITHOUT ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See LICENSE.txt or http://www.mitk.org for details. ===================================================================*/ #include #include #include #include #include class mitkSurfaceInterpolationControllerTestSuite : public mitk::TestFixture { CPPUNIT_TEST_SUITE(mitkSurfaceInterpolationControllerTestSuite); MITK_TEST(TestSingleton); MITK_TEST(TestSetCurrentInterpolationSession); MITK_TEST(TestRemoveAllInterpolationSessions); MITK_TEST(TestRemoveInterpolationSession); MITK_TEST(TestOnSegmentationDeleted); /// \todo Workaround for memory leak in TestAddNewContour. Bug 18096. vtkDebugLeaks::SetExitError(0); MITK_TEST(TestAddNewContour); + MITK_TEST(TestRemoveContour); CPPUNIT_TEST_SUITE_END(); private: mitk::SurfaceInterpolationController::Pointer m_Controller; public: mitk::Image::Pointer createImage(unsigned int *dimensions) { mitk::Image::Pointer newImage = mitk::Image::New(); mitk::PixelType p_type = mitk::MakeScalarPixelType(); newImage->Initialize(p_type, 3, dimensions); return newImage; } mitk::PlaneGeometry::Pointer createPlaneForContour(mitk::BaseGeometry* geo, vtkPolyData* contour, mitk::PlaneGeometry::PlaneOrientation orientation) { mitk::PlaneGeometry::Pointer plane = mitk::PlaneGeometry::New(); mitk::Point3D p = contour->GetPoint(0); geo->WorldToIndex(p,p); unsigned int sliceIndex; if (orientation == mitk::PlaneGeometry::Axial) { sliceIndex = p[2]; } else if (orientation == mitk::PlaneGeometry::Sagittal) { sliceIndex = p[0]; } else { sliceIndex = p[1]; } plane->InitializeStandardPlane(geo, orientation, sliceIndex, true, false); mitk::Point3D origin = plane->GetOrigin(); mitk::Vector3D normal; normal = plane->GetNormal(); normal.Normalize(); origin += normal * 0.5; plane->SetOrigin(origin); return plane; } void setUp() { m_Controller = mitk::SurfaceInterpolationController::GetInstance(); vtkSmartPointer polygonSource = vtkSmartPointer::New(); polygonSource->SetRadius(100); polygonSource->SetNumberOfSides(7); polygonSource->Update(); mitk::Surface::Pointer surface = mitk::Surface::New(); surface->SetVtkPolyData(polygonSource->GetOutput()); } void TestSingleton() { mitk::SurfaceInterpolationController::Pointer controller2 = mitk::SurfaceInterpolationController::GetInstance(); CPPUNIT_ASSERT_MESSAGE("SurfaceInterpolationController pointers are not equal!", m_Controller.GetPointer() == controller2.GetPointer()); } void TestSetCurrentInterpolationSession() { // Create image for testing unsigned int dimensions1[] = {10, 10, 10}; mitk::Image::Pointer segmentation_1 = createImage(dimensions1); unsigned int dimensions2[] = {20, 10, 30}; mitk::Image::Pointer segmentation_2 = createImage(dimensions2); // Test 1 m_Controller->SetCurrentInterpolationSession(segmentation_1); MITK_ASSERT_EQUAL(m_Controller->GetCurrentSegmentation(), segmentation_1->Clone(), "Segmentation images are not equal"); CPPUNIT_ASSERT_MESSAGE("Segmentation images are not equal", m_Controller->GetCurrentSegmentation().GetPointer() == segmentation_1.GetPointer()); CPPUNIT_ASSERT_MESSAGE("Number of interpolation session not 1", m_Controller->GetNumberOfInterpolationSessions() == 1); // Test 2 m_Controller->SetCurrentInterpolationSession(segmentation_2); MITK_ASSERT_EQUAL(m_Controller->GetCurrentSegmentation(), segmentation_2->Clone(), "Segmentation images are not equal"); CPPUNIT_ASSERT_MESSAGE("Segmentation images are not equal", m_Controller->GetCurrentSegmentation().GetPointer() == segmentation_2.GetPointer()); CPPUNIT_ASSERT_MESSAGE("Number of interpolation session not 2", m_Controller->GetNumberOfInterpolationSessions() == 2); // Test 3 m_Controller->SetCurrentInterpolationSession(segmentation_1); MITK_ASSERT_EQUAL(m_Controller->GetCurrentSegmentation(), segmentation_1->Clone(), "Segmentation images are not equal"); CPPUNIT_ASSERT_MESSAGE("Segmentation images are not equal", m_Controller->GetCurrentSegmentation().GetPointer() == segmentation_1.GetPointer()); CPPUNIT_ASSERT_MESSAGE("Number of interpolation session not 2", m_Controller->GetNumberOfInterpolationSessions() == 2); // Test 4 m_Controller->SetCurrentInterpolationSession(segmentation_1); MITK_ASSERT_EQUAL(m_Controller->GetCurrentSegmentation(), segmentation_1->Clone(), "Segmentation images are not equal"); CPPUNIT_ASSERT_MESSAGE("Segmentation images are not equal", m_Controller->GetCurrentSegmentation().GetPointer() == segmentation_1.GetPointer()); CPPUNIT_ASSERT_MESSAGE("Number of interpolation session not 2", m_Controller->GetNumberOfInterpolationSessions() == 2); // Test 5 m_Controller->SetCurrentInterpolationSession(0); CPPUNIT_ASSERT_MESSAGE("Segmentation images are not equal", m_Controller->GetCurrentSegmentation().IsNull()); CPPUNIT_ASSERT_MESSAGE("Number of interpolation session not 2", m_Controller->GetNumberOfInterpolationSessions() == 2); } void TestRemoveAllInterpolationSessions() { // Create image for testing unsigned int dimensions1[] = {10, 10, 10}; mitk::Image::Pointer segmentation_1 = createImage(dimensions1); unsigned int dimensions2[] = {20, 10, 30}; mitk::Image::Pointer segmentation_2 = createImage(dimensions2); // Test 1 m_Controller->SetCurrentInterpolationSession(segmentation_1); m_Controller->SetCurrentInterpolationSession(segmentation_2); m_Controller->RemoveAllInterpolationSessions(); CPPUNIT_ASSERT_MESSAGE("Number of interpolation session not 0", m_Controller->GetNumberOfInterpolationSessions() == 0); } void TestRemoveInterpolationSession() { // Create image for testing unsigned int dimensions1[] = {10, 10, 10}; mitk::Image::Pointer segmentation_1 = createImage(dimensions1); unsigned int dimensions2[] = {20, 10, 30}; mitk::Image::Pointer segmentation_2 = createImage(dimensions2); // Test 1 m_Controller->SetCurrentInterpolationSession(segmentation_1); m_Controller->SetCurrentInterpolationSession(segmentation_2); CPPUNIT_ASSERT_MESSAGE("Number of interpolation session not 2", m_Controller->GetNumberOfInterpolationSessions() == 2); // Test current segmentation should not be null if another one was removed m_Controller->RemoveInterpolationSession(segmentation_1); CPPUNIT_ASSERT_MESSAGE("Number of interpolation session not 1", m_Controller->GetNumberOfInterpolationSessions() == 1); CPPUNIT_ASSERT_MESSAGE("Segmentation images are not equal", m_Controller->GetCurrentSegmentation().GetPointer() == segmentation_2.GetPointer()); CPPUNIT_ASSERT_MESSAGE("Current segmentation is null after another one was removed", m_Controller->GetCurrentSegmentation().IsNotNull()); m_Controller->SetCurrentInterpolationSession(segmentation_1); CPPUNIT_ASSERT_MESSAGE("Number of interpolation session not 2", m_Controller->GetNumberOfInterpolationSessions() == 2); // Test current segmentation should not be null if another one was removed m_Controller->RemoveInterpolationSession(segmentation_1); CPPUNIT_ASSERT_MESSAGE("Number of interpolation session not 1", m_Controller->GetNumberOfInterpolationSessions() == 1); CPPUNIT_ASSERT_MESSAGE("Current segmentation is not null after session was removed", m_Controller->GetCurrentSegmentation().IsNull()); } void TestOnSegmentationDeleted() { { // Create image for testing unsigned int dimensions1[] = {10, 10, 10}; mitk::Image::Pointer segmentation_1 = createImage(dimensions1); m_Controller->SetCurrentInterpolationSession(segmentation_1); } CPPUNIT_ASSERT_MESSAGE("Number of interpolation session not 0", m_Controller->GetNumberOfInterpolationSessions() == 0); } void TestAddNewContour() { // Create segmentation image unsigned int dimensions1[] = {10, 10, 10}; mitk::Image::Pointer segmentation_1 = createImage(dimensions1); mitk::BaseGeometry* geo_1 = segmentation_1->GetGeometry(); m_Controller->SetCurrentInterpolationSession(segmentation_1); // Create some contours vtkSmartPointer p_source = vtkSmartPointer::New(); p_source->SetNumberOfSides(20); p_source->SetCenter(4.0,4.0,4.0); p_source->SetRadius(4); p_source->SetNormal(0,1,0); p_source->Update(); vtkPolyData* poly_1 = p_source->GetOutput(); mitk::Surface::Pointer surf_1 = mitk::Surface::New(); surf_1->SetVtkPolyData(poly_1); vtkSmartPointer p_source_2 = vtkSmartPointer::New(); p_source_2->SetNumberOfSides(80); p_source_2->SetCenter(4.0,4.0,4.0); p_source_2->SetRadius(4); p_source_2->SetNormal(1, 0, 0); p_source_2->Update(); vtkPolyData* poly_2 = p_source_2->GetOutput(); mitk::Surface::Pointer surf_2 = mitk::Surface::New(); surf_2->SetVtkPolyData(poly_2); vtkSmartPointer p_source_3 = vtkSmartPointer::New(); p_source_3->SetNumberOfSides(10); p_source_3->SetCenter(4.0,4.0,3.0); p_source_3->SetRadius(4); p_source_3->SetNormal(0,0,1); p_source_3->Update(); vtkPolyData* poly_3 = p_source_3->GetOutput(); mitk::Surface::Pointer surf_3 = mitk::Surface::New(); surf_3->SetVtkPolyData(poly_3); // Create planes for contours mitk::PlaneGeometry::Pointer plane_1 = createPlaneForContour(geo_1, poly_1, mitk::PlaneGeometry::Frontal); mitk::PlaneGeometry::Pointer plane_2 = createPlaneForContour(geo_1, poly_2, mitk::PlaneGeometry::Sagittal); mitk::PlaneGeometry::Pointer plane_3 = createPlaneForContour(geo_1, poly_3, mitk::PlaneGeometry::Axial); // Add contours m_Controller->AddNewContour(surf_1, plane_1); m_Controller->AddNewContour(surf_2, plane_2); m_Controller->AddNewContour(surf_3, plane_3); // Check if all contours are there mitk::PlaneGeometry::Pointer plane_1_clone = plane_1->Clone(); mitk::PlaneGeometry::Pointer plane_2_clone = plane_2->Clone(); mitk::PlaneGeometry::Pointer plane_3_clone = plane_3->Clone(); mitk::Surface* contour_1 = const_cast(m_Controller->GetContour(plane_1_clone)); mitk::Surface* contour_2 = const_cast(m_Controller->GetContour(plane_2_clone)); mitk::Surface* contour_3 = const_cast(m_Controller->GetContour(plane_3_clone)); CPPUNIT_ASSERT_MESSAGE("Wrong number of contours!", m_Controller->GetNumberOfContours() == 3); CPPUNIT_ASSERT_MESSAGE("Contours not equal!", mitk::Equal(*(surf_1->GetVtkPolyData()), *(contour_1->GetVtkPolyData()), 0.000001, true)); CPPUNIT_ASSERT_MESSAGE("Contours not equal!", mitk::Equal(*(surf_2->GetVtkPolyData()), *(contour_2->GetVtkPolyData()), 0.000001, true)); CPPUNIT_ASSERT_MESSAGE("Contours not equal!", mitk::Equal(*(surf_3->GetVtkPolyData()), *(contour_3->GetVtkPolyData()), 0.000001, true)); // Create another segmentation image unsigned int dimensions2[] = {20, 20, 20}; mitk::Image::Pointer segmentation_2 = createImage(dimensions2); mitk::BaseGeometry* geo_2 = segmentation_2->GetGeometry(); m_Controller->SetCurrentInterpolationSession(segmentation_2); // Create some contours vtkSmartPointer p_source_4 = vtkSmartPointer::New(); p_source_4->SetNumberOfSides(8); p_source_4->SetCenter(10.0,10.0,10.0); p_source_4->SetRadius(5); p_source_4->SetNormal(0,1,0); p_source_4->Update(); vtkPolyData* poly_4 = p_source_4->GetOutput(); mitk::Surface::Pointer surf_4 = mitk::Surface::New(); surf_4->SetVtkPolyData(poly_4); vtkSmartPointer p_source_5 = vtkSmartPointer::New(); p_source_5->SetNumberOfSides(16); p_source_5->SetCenter(3.0,10.0,10.0); p_source_5->SetRadius(8); p_source_5->SetNormal(1, 0, 0); p_source_5->Update(); vtkPolyData* poly_5 = p_source_5->GetOutput(); mitk::Surface::Pointer surf_5 = mitk::Surface::New(); surf_5->SetVtkPolyData(poly_5); vtkSmartPointer p_source_6 = vtkSmartPointer::New(); p_source_6->SetNumberOfSides(100); p_source_6->SetCenter(10.0,10.0,3.0); p_source_6->SetRadius(5); p_source_6->SetNormal(0,0,1); p_source_6->Update(); vtkPolyData* poly_6 = p_source_6->GetOutput(); mitk::Surface::Pointer surf_6 = mitk::Surface::New(); surf_6->SetVtkPolyData(poly_6); // Create planes for contours mitk::PlaneGeometry::Pointer plane_4 = createPlaneForContour(geo_2, poly_4, mitk::PlaneGeometry::Frontal); mitk::PlaneGeometry::Pointer plane_5 = createPlaneForContour(geo_2, poly_5, mitk::PlaneGeometry::Sagittal); mitk::PlaneGeometry::Pointer plane_6 = createPlaneForContour(geo_2, poly_6, mitk::PlaneGeometry::Axial); // Add contours m_Controller->AddNewContour(surf_4, plane_4); m_Controller->AddNewContour(surf_5, plane_5); m_Controller->AddNewContour(surf_6, plane_6); // Check if all contours are there mitk::PlaneGeometry::Pointer plane_4_clone = plane_4->Clone(); mitk::PlaneGeometry::Pointer plane_5_clone = plane_5->Clone(); mitk::PlaneGeometry::Pointer plane_6_clone = plane_6->Clone(); mitk::Surface* contour_4 = const_cast(m_Controller->GetContour(plane_4_clone)); mitk::Surface* contour_5 = const_cast(m_Controller->GetContour(plane_5_clone)); mitk::Surface* contour_6 = const_cast(m_Controller->GetContour(plane_6_clone)); CPPUNIT_ASSERT_MESSAGE("Wrong number of contours!", m_Controller->GetNumberOfContours() == 3); CPPUNIT_ASSERT_MESSAGE("Contours not equal!", mitk::Equal(*(surf_4->GetVtkPolyData()), *(contour_4->GetVtkPolyData()), 0.000001, true)); CPPUNIT_ASSERT_MESSAGE("Contours not equal!", mitk::Equal(*(surf_5->GetVtkPolyData()), *(contour_5->GetVtkPolyData()), 0.000001, true)); CPPUNIT_ASSERT_MESSAGE("Contours not equal!", mitk::Equal(*(surf_6->GetVtkPolyData()), *(contour_6->GetVtkPolyData()), 0.000001, true)); // Modify some contours vtkSmartPointer p_source_7 = vtkSmartPointer::New(); p_source_7->SetNumberOfSides(200); p_source_7->SetCenter(3.0,10.0,10.0); p_source_7->SetRadius(5); p_source_7->SetNormal(1, 0, 0); p_source_7->Update(); vtkPolyData* poly_7 = p_source_7->GetOutput(); mitk::Surface::Pointer surf_7 = mitk::Surface::New(); surf_7->SetVtkPolyData(poly_7); m_Controller->AddNewContour(surf_7, plane_5); mitk::Surface* contour_7 = const_cast(m_Controller->GetContour(plane_5_clone)); CPPUNIT_ASSERT_MESSAGE("Contours not equal!", mitk::Equal(*(surf_7->GetVtkPolyData()), *(contour_7->GetVtkPolyData()), 0.000001, true)); // Change session and test if all contours are available m_Controller->SetCurrentInterpolationSession(segmentation_1); mitk::Surface* contour_8 = const_cast(m_Controller->GetContour(plane_1_clone)); mitk::Surface* contour_9 = const_cast(m_Controller->GetContour(plane_2_clone)); mitk::Surface* contour_10 = const_cast(m_Controller->GetContour(plane_3_clone)); CPPUNIT_ASSERT_MESSAGE("Wrong number of contours!", m_Controller->GetNumberOfContours() == 3); CPPUNIT_ASSERT_MESSAGE("Contours not equal!", mitk::Equal(*(surf_1->GetVtkPolyData()), *(contour_8->GetVtkPolyData()), 0.000001, true)); CPPUNIT_ASSERT_MESSAGE("Contours not equal!", mitk::Equal(*(surf_2->GetVtkPolyData()), *(contour_9->GetVtkPolyData()), 0.000001, true)); CPPUNIT_ASSERT_MESSAGE("Contours not equal!", mitk::Equal(*(surf_3->GetVtkPolyData()), *(contour_10->GetVtkPolyData()), 0.000001, true)); } + void TestRemoveContour() + { + // Create segmentation image + unsigned int dimensions1[] = {10, 10, 10}; + mitk::Image::Pointer segmentation_1 = createImage(dimensions1); + mitk::Geometry3D* geo_1 = segmentation_1->GetGeometry(); + m_Controller->SetCurrentInterpolationSession(segmentation_1); + + // Create some contours + vtkSmartPointer p_source = vtkSmartPointer::New(); + p_source->SetNumberOfSides(20); + p_source->SetCenter(4.0,4.0,4.0); + p_source->SetRadius(4); + p_source->SetNormal(0,1,0); + p_source->Update(); + vtkPolyData* poly_1 = p_source->GetOutput(); + mitk::Surface::Pointer surf_1 = mitk::Surface::New(); + surf_1->SetVtkPolyData(poly_1); + + vtkSmartPointer p_source_2 = vtkSmartPointer::New(); + p_source_2->SetNumberOfSides(80); + p_source_2->SetCenter(4.0,4.0,4.0); + p_source_2->SetRadius(4); + p_source_2->SetNormal(1, 0, 0); + p_source_2->Update(); + vtkPolyData* poly_2 = p_source_2->GetOutput(); + mitk::Surface::Pointer surf_2 = mitk::Surface::New(); + surf_2->SetVtkPolyData(poly_2); + + // Create planes for contours + mitk::PlaneGeometry::Pointer plane_1 = createPlaneForContour(geo_1, poly_1, mitk::PlaneGeometry::Frontal); + mitk::PlaneGeometry::Pointer plane_2 = createPlaneForContour(geo_1, poly_2, mitk::PlaneGeometry::Sagittal); + + // Add contours + m_Controller->AddNewContour(surf_1, plane_1); + m_Controller->AddNewContour(surf_2, plane_2); + MITK_INFO<<"[NUM CONTOURS]: "<GetNumberOfContours(); + CPPUNIT_ASSERT_MESSAGE("Wrong number of contours!", m_Controller->GetNumberOfContours() == 2); + + // Remove a contour + bool success = m_Controller->RemoveContour(plane_1); + CPPUNIT_ASSERT_MESSAGE("Remove failed - contour not removed correctly!", (m_Controller->GetNumberOfContours() == 1) && success); + + // Test remove non existing contour + mitk::PlaneGeometry::Pointer plane_3 = plane_1->Clone(); + mitk::Point3D origin = plane_3->GetOrigin(); + origin += 0.5; + plane_3->SetOrigin(origin); + + success = m_Controller->RemoveContour(plane_3); + CPPUNIT_ASSERT_MESSAGE("Remove failed - contour was unintentionally removed!", (m_Controller->GetNumberOfContours() == 1) && !success); + } }; MITK_TEST_SUITE_REGISTRATION(mitkSurfaceInterpolationController) diff --git a/Modules/SurfaceInterpolation/mitkComputeContourSetNormalsFilter.h b/Modules/SurfaceInterpolation/mitkComputeContourSetNormalsFilter.h index 199e2bd539..13cd949a2d 100644 --- a/Modules/SurfaceInterpolation/mitkComputeContourSetNormalsFilter.h +++ b/Modules/SurfaceInterpolation/mitkComputeContourSetNormalsFilter.h @@ -1,109 +1,113 @@ /*=================================================================== The Medical Imaging Interaction Toolkit (MITK) Copyright (c) German Cancer Research Center, Division of Medical and Biological Informatics. All rights reserved. This software is distributed WITHOUT ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See LICENSE.txt or http://www.mitk.org for details. ===================================================================*/ #ifndef mitkComputeContourSetNormalsFilter_h_Included #define mitkComputeContourSetNormalsFilter_h_Included #include #include "mitkSurfaceToSurfaceFilter.h" #include "mitkProgressBar.h" #include "mitkSurface.h" #include "vtkCellArray.h" #include "vtkPolyData.h" #include "vtkSmartPointer.h" #include "vtkDoubleArray.h" #include "vtkMath.h" #include "vtkCellData.h" #include "vtkLine.h" #include "mitkImage.h" namespace mitk { /** \brief Filter to compute the normales for contours based on vtkPolygons This filter takes a number of extracted contours and computes the normals for each contour edge point. The normals can be accessed by calling: filter->GetOutput(i)->GetVtkPolyData()->GetCellData()->GetNormals(); See also the method GetNormalsAsSurface() Note: If a segmentation binary image is provided this filter assures that the computed normals do not point into the segmentation image $Author: fetzer$ */ class MitkSurfaceInterpolation_EXPORT ComputeContourSetNormalsFilter : public SurfaceToSurfaceFilter { public: mitkClassMacro(ComputeContourSetNormalsFilter,SurfaceToSurfaceFilter); itkFactorylessNewMacro(Self) itkCloneMacro(Self) - itkSetMacro(SegmentationBinaryImage, mitk::Image::Pointer); /* \brief Returns the computed normals as a surface */ mitk::Surface::Pointer GetNormalsAsSurface(); //Resets the filter, i.e. removes all inputs and outputs void Reset(); void SetMaxSpacing(double); /** \brief Set whether the mitkProgressBar should be used \a Parameter true for using the progress bar, false otherwise */ void SetUseProgressBar(bool); /** \brief Set the stepsize which the progress bar should proceed \a Parameter The stepsize for progressing */ void SetProgressStepSize(unsigned int stepSize); + void SetSegmentationBinaryImage(mitk::Image* segmentationImage) + { + m_SegmentationBinaryImage = segmentationImage; + } + protected: ComputeContourSetNormalsFilter(); virtual ~ComputeContourSetNormalsFilter(); virtual void GenerateData(); virtual void GenerateOutputInformation(); private: //The segmentation out of which the contours were extracted. Can be used to determine the direction of the normals - mitk::Image::Pointer m_SegmentationBinaryImage; + mitk::Image* m_SegmentationBinaryImage; double m_MaxSpacing; unsigned int m_NegativeNormalCounter; unsigned int m_PositiveNormalCounter; bool m_UseProgressBar; unsigned int m_ProgressStepSize; };//class }//namespace #endif diff --git a/Modules/SurfaceInterpolation/mitkCreateDistanceImageFromSurfaceFilter.cpp b/Modules/SurfaceInterpolation/mitkCreateDistanceImageFromSurfaceFilter.cpp index 0599d2e9c3..0443b9b479 100644 --- a/Modules/SurfaceInterpolation/mitkCreateDistanceImageFromSurfaceFilter.cpp +++ b/Modules/SurfaceInterpolation/mitkCreateDistanceImageFromSurfaceFilter.cpp @@ -1,632 +1,626 @@ /*=================================================================== The Medical Imaging Interaction Toolkit (MITK) Copyright (c) German Cancer Research Center, Division of Medical and Biological Informatics. All rights reserved. This software is distributed WITHOUT ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See LICENSE.txt or http://www.mitk.org for details. ===================================================================*/ #include "mitkCreateDistanceImageFromSurfaceFilter.h" #include "mitkImageCast.h" mitk::CreateDistanceImageFromSurfaceFilter::CreateDistanceImageFromSurfaceFilter() { m_DistanceImageVolume = 50000; this->m_UseProgressBar = false; this->m_ProgressStepSize = 5; mitk::Image::Pointer output = mitk::Image::New(); this->SetNthOutput(0, output.GetPointer()); } mitk::CreateDistanceImageFromSurfaceFilter::~CreateDistanceImageFromSurfaceFilter() { } void mitk::CreateDistanceImageFromSurfaceFilter::GenerateData() { //First of all we have to build the equation-system from the existing contour-edge-points this->CreateSolutionMatrixAndFunctionValues(); - //Then we solve the equation-system via QR - decomposition. The interpolation weights are obtained in that way vnl_qr solver (m_SolutionMatrix); m_Weights = solver.solve(m_FunctionValues); //Setting progressbar if (this->m_UseProgressBar) mitk::ProgressBar::GetInstance()->Progress(2); //The last step is to create the distance map with the interpolated distance function this->CreateDistanceImage(); m_Centers.clear(); m_FunctionValues.clear(); m_Normals.clear(); m_Weights.clear(); m_SolutionMatrix.clear(); //Setting progressbar if (this->m_UseProgressBar) mitk::ProgressBar::GetInstance()->Progress(3); } void mitk::CreateDistanceImageFromSurfaceFilter::CreateSolutionMatrixAndFunctionValues() { unsigned int numberOfInputs = this->GetNumberOfIndexedInputs(); if (numberOfInputs == 0) { MITK_ERROR << "mitk::CreateDistanceImageFromSurfaceFilter: No input available. Please set an input!" << std::endl; itkExceptionMacro("mitk::CreateDistanceImageFromSurfaceFilter: No input available. Please set an input!"); return; } //First of all we have to extract the nomals and the surface points. //Duplicated points can be eliminated Surface* currentSurface; vtkSmartPointer polyData; vtkSmartPointer currentCellNormals; vtkSmartPointer existingPolys; vtkSmartPointer existingPoints; double p[3]; PointType currentPoint; PointType normal; for (unsigned int i = 0; i < numberOfInputs; i++) { currentSurface = const_cast( this->GetInput(i) ); polyData = currentSurface->GetVtkPolyData(); if (polyData->GetNumberOfPolys() == 0) { MITK_INFO << "mitk::CreateDistanceImageFromSurfaceFilter: No input-polygons available. Please be sure the input surface consists of polygons!" << std::endl; } currentCellNormals = vtkDoubleArray::SafeDownCast(polyData->GetCellData()->GetNormals()); existingPolys = polyData->GetPolys(); existingPoints = polyData->GetPoints(); existingPolys->InitTraversal(); vtkIdType* cell (NULL); vtkIdType cellSize (0); for( existingPolys->InitTraversal(); existingPolys->GetNextCell(cellSize, cell);) { for ( vtkIdType j = 0; j < cellSize; j++ ) { existingPoints->GetPoint(cell[j], p); currentPoint.copy_in(p); int count = std::count(m_Centers.begin() ,m_Centers.end(),currentPoint); if (count == 0) { double currentNormal[3]; currentCellNormals->GetTuple(cell[j], currentNormal); normal.copy_in(currentNormal); m_Normals.push_back(normal); m_Centers.push_back(currentPoint); } }//end for all points }//end for all cells }//end for all outputs //For we can now calculate the exact size of the centers we initialize the data structures unsigned int numberOfCenters = m_Centers.size(); m_Centers.reserve(numberOfCenters*3); m_FunctionValues.set_size(numberOfCenters*3); m_FunctionValues.fill(0); //Create inner points for (unsigned int i = 0; i < numberOfCenters; i++) { currentPoint = m_Centers.at(i); normal = m_Normals.at(i); currentPoint[0] = currentPoint[0] - normal[0]; currentPoint[1] = currentPoint[1] - normal[1]; currentPoint[2] = currentPoint[2] - normal[2]; m_Centers.push_back(currentPoint); m_FunctionValues.put(numberOfCenters+i, -1); } //Create outer points for (unsigned int i = 0; i < numberOfCenters; i++) { currentPoint = m_Centers.at(i); normal = m_Normals.at(i); currentPoint[0] = currentPoint[0] + normal[0]; currentPoint[1] = currentPoint[1] + normal[1]; currentPoint[2] = currentPoint[2] + normal[2]; m_Centers.push_back(currentPoint); m_FunctionValues.put(numberOfCenters*2+i, 1); } //Now we have created all centers and all function values. Next step is to create the solution matrix numberOfCenters = m_Centers.size(); m_SolutionMatrix.set_size(numberOfCenters, numberOfCenters); m_Weights.set_size(numberOfCenters); PointType p1; PointType p2; double norm; for (unsigned int i = 0; i < numberOfCenters; i++) { for (unsigned int j = 0; j < numberOfCenters; j++) { //Calculate the RBF value. Currently using Phi(r) = r with r is the euclidian distance between two points p1 = m_Centers.at(i); p2 = m_Centers.at(j); p1 = p1 - p2; norm = p1.two_norm(); m_SolutionMatrix(i,j) = norm; } } } void mitk::CreateDistanceImageFromSurfaceFilter::CreateDistanceImage() { DistanceImageType::Pointer distanceImg = DistanceImageType::New(); // Determine the bounds of the input points in index- and world-coordinates DistanceImageType::PointType minPointInWorldCoordinates, maxPointInWorldCoordinates; DistanceImageType::IndexType minPointInIndexCoordinates, maxPointInIndexCoordinates; DetermineBounds( minPointInWorldCoordinates, maxPointInWorldCoordinates, minPointInIndexCoordinates, maxPointInIndexCoordinates ); // Calculate the extent of the region that contains all given points in MM. // To do this, we take the difference between the maximal and minimal // index-coordinates (must not be less than 1) and multiply it with the // spacing of the reference-image. Vector3D extentMM; for (unsigned int dim = 0; dim < 3; ++dim) { extentMM[dim] = (int) ( (std::max( std::abs(maxPointInIndexCoordinates[dim] - minPointInIndexCoordinates[dim]), (DistanceImageType::IndexType::IndexValueType) 1 ) + 1.0) // (max-index - min-index)+1 because the pixels between index 3 and 5 cover 2+1=3 pixels (pixel 3,4, and 5) * m_ReferenceImage->GetSpacing()[dim] ) + 1; // (int) ((...) + 1) -> we round up to the next BIGGER int value } /* * Now create an empty distance image. The create image will always have the same sizeOfRegion, independent from * the original image (e.g. always consists of 500000 pixels) and will have an isotropic spacing. * The spacing is calculated like the following: * The image's volume = 500000 Pixels = extentX*spacing*extentY*spacing*extentZ*spacing * So the spacing is: spacing = ( 500000 / extentX*extentY*extentZ )^(1/3) */ double basis = (extentMM[0]*extentMM[1]*extentMM[2]) / m_DistanceImageVolume; double exponent = 1.0/3.0; double distImgSpacing = pow(basis, exponent); int tempSpacing = (distImgSpacing+0.05)*10; m_DistanceImageSpacing = (double)tempSpacing/10.0; // calculate the number of pixels of the distance image for each direction unsigned int numberOfXPixel = extentMM[0] / m_DistanceImageSpacing; unsigned int numberOfYPixel = extentMM[1] / m_DistanceImageSpacing; unsigned int numberOfZPixel = extentMM[2] / m_DistanceImageSpacing; // We increase the sizeOfRegion by 4 as we decrease the origin by 2 later. // This expansion of the region is necessary to achieve a complete // interpolation. DistanceImageType::SizeType sizeOfRegion; sizeOfRegion[0] = numberOfXPixel + 4; sizeOfRegion[1] = numberOfYPixel + 4; sizeOfRegion[2] = numberOfZPixel + 4; // The region starts at index 0,0,0 DistanceImageType::IndexType initialOriginAsIndex; initialOriginAsIndex.Fill(0); DistanceImageType::PointType originAsWorld = minPointInWorldCoordinates; DistanceImageType::RegionType lpRegion; lpRegion.SetSize(sizeOfRegion); lpRegion.SetIndex(initialOriginAsIndex); // We initialize the itk::Image with // * origin and direction to have it correctly placed and rotated in the world // * the largest possible region to set the extent to be calculated // * the isotropic spacing that we have calculated above distanceImg->SetOrigin( originAsWorld ); distanceImg->SetDirection( m_ReferenceImage->GetDirection() ); distanceImg->SetRegions( lpRegion ); distanceImg->SetSpacing( m_DistanceImageSpacing ); distanceImg->Allocate(); //First of all the image is initialized with the value 10 for each pixel distanceImg->FillBuffer(10); // Now we move the origin of the distanceImage 2 index-Coordinates // in all directions DistanceImageType::IndexType originAsIndex; distanceImg->TransformPhysicalPointToIndex( originAsWorld, originAsIndex ); originAsIndex[0] -= 2; originAsIndex[1] -= 2; originAsIndex[2] -= 2; distanceImg->TransformIndexToPhysicalPoint( originAsIndex, originAsWorld ); distanceImg->SetOrigin( originAsWorld ); /* * Now we must calculate the distance for each pixel. But instead of calculating the distance value * for all of the image's pixels we proceed similar to the region growing algorithm: * * 1. Take the first pixel from the narrowband_point_list and calculate the distance for each neighbor (6er) * 2. If the current index's distance value is below a certain threshold push it into the list * 3. Next iteration take the next index from the list and originAsIndex with 1. again * * This is done until the narrowband_point_list is empty. */ std::queue narrowbandPoints; PointType currentPoint = m_Centers.at(0); double distance = this->CalculateDistanceValue(currentPoint); // create itk::Point from vnl_vector DistanceImageType::PointType currentPointAsPoint; currentPointAsPoint[0] = currentPoint[0]; currentPointAsPoint[1] = currentPoint[1]; currentPointAsPoint[2] = currentPoint[2]; // Transform the input point in world-coordinates to index-coordinates DistanceImageType::IndexType currentIndex; distanceImg->TransformPhysicalPointToIndex( currentPointAsPoint, currentIndex ); assert( lpRegion.IsInside(currentIndex) ); // we are quite certain this should hold narrowbandPoints.push(currentIndex); distanceImg->SetPixel(currentIndex, distance); NeighborhoodImageIterator::RadiusType radius; radius.Fill(1); NeighborhoodImageIterator nIt(radius, distanceImg, distanceImg->GetLargestPossibleRegion()); unsigned int relativeNbIdx[] = {4, 10, 12, 14, 16, 22}; bool isInBounds = false; while ( !narrowbandPoints.empty() ) { nIt.SetLocation(narrowbandPoints.front()); narrowbandPoints.pop(); unsigned int* relativeNb = &relativeNbIdx[0]; for (int i = 0; i < 6; i++) { nIt.GetPixel(*relativeNb, isInBounds); if( isInBounds && nIt.GetPixel(*relativeNb) == 10) { currentIndex = nIt.GetIndex(*relativeNb); // Transform the currently checked point from index-coordinates to // world-coordinates distanceImg->TransformIndexToPhysicalPoint( currentIndex, currentPointAsPoint ); // create a vnl_vector currentPoint[0] = currentPointAsPoint[0]; currentPoint[1] = currentPointAsPoint[1]; currentPoint[2] = currentPointAsPoint[2]; // and check the distance distance = this->CalculateDistanceValue(currentPoint); if ( abs(distance) <= m_DistanceImageSpacing ) { nIt.SetPixel(*relativeNb, distance); narrowbandPoints.push(currentIndex); } } relativeNb++; } } ImageIterator imgRegionIterator (distanceImg, distanceImg->GetLargestPossibleRegion()); imgRegionIterator.GoToBegin(); double prevPixelVal = 1; DistanceImageType::IndexType _size; _size.Fill(-1); _size += sizeOfRegion; double center [3] = {_size[0]/2.0, _size[1]/2.0, _size[2]/2.0}; MITK_INFO<<"Size: ["<<_size[0]<<","<<_size[1]<<","<<_size[2]<<"] Center: ["<GetOutput(); // Cast the created distance-Image from itk::Image to the mitk::Image // that is our output. CastToMitkImage(distanceImg, resultImage); } void mitk::CreateDistanceImageFromSurfaceFilter::FillImageRegion(DistanceImageType::RegionType reqRegion, DistanceImageType::PixelType pixelValue, DistanceImageType::Pointer image) { image->SetRequestedRegion(reqRegion); ImageIterator it (image, image->GetRequestedRegion()); while (!it.IsAtEnd()) { it.Set(pixelValue); ++it; } } double mitk::CreateDistanceImageFromSurfaceFilter::CalculateDistanceValue(PointType p) { double distanceValue (0); PointType p1; PointType p2; double norm; CenterList::iterator centerIter; InterpolationWeights::iterator weightsIter; for ( centerIter=m_Centers.begin(), weightsIter=m_Weights.begin(); centerIter!=m_Centers.end() && weightsIter!=m_Weights.end(); centerIter++, weightsIter++ ) { p1 = *centerIter; p2 = p-p1; norm = p2.two_norm(); distanceValue = distanceValue + norm* (*weightsIter); } return distanceValue; } void mitk::CreateDistanceImageFromSurfaceFilter::GenerateOutputInformation() { } void mitk::CreateDistanceImageFromSurfaceFilter::PrintEquationSystem() { - std::ofstream esfile; - esfile.open("C:/Users/fetzer/Desktop/equationSystem/es.txt"); - esfile<<"Nummber of rows: "<SetInput( 0, const_cast( surface ) ); } void mitk::CreateDistanceImageFromSurfaceFilter::SetInput( unsigned int idx, const mitk::Surface* surface ) { if ( this->GetInput(idx) != surface ) { this->SetNthInput( idx, const_cast( surface ) ); this->Modified(); } } const mitk::Surface* mitk::CreateDistanceImageFromSurfaceFilter::GetInput() { if (this->GetNumberOfIndexedInputs() < 1) return NULL; return static_cast(this->ProcessObject::GetInput(0)); } const mitk::Surface* mitk::CreateDistanceImageFromSurfaceFilter::GetInput( unsigned int idx) { if (this->GetNumberOfIndexedInputs() < 1) return NULL; return static_cast(this->ProcessObject::GetInput(idx)); } void mitk::CreateDistanceImageFromSurfaceFilter::RemoveInputs(mitk::Surface* input) { DataObjectPointerArraySizeType nb = this->GetNumberOfIndexedInputs(); for(DataObjectPointerArraySizeType i = 0; i < nb; i++) { if( this->GetInput(i) == input ) { this->RemoveInput(i); return; } } } void mitk::CreateDistanceImageFromSurfaceFilter::Reset() { for (unsigned int i = 0; i < this->GetNumberOfIndexedInputs(); i++) { this->PopBackInput(); } this->SetNumberOfIndexedInputs(0); this->SetNumberOfIndexedOutputs(1); mitk::Image::Pointer output = mitk::Image::New(); this->SetNthOutput(0, output.GetPointer()); } void mitk::CreateDistanceImageFromSurfaceFilter::SetUseProgressBar(bool status) { this->m_UseProgressBar = status; } void mitk::CreateDistanceImageFromSurfaceFilter::SetProgressStepSize(unsigned int stepSize) { this->m_ProgressStepSize = stepSize; } void mitk::CreateDistanceImageFromSurfaceFilter::SetReferenceImage( itk::ImageBase<3>::Pointer referenceImage ) { m_ReferenceImage = referenceImage; } void mitk::CreateDistanceImageFromSurfaceFilter::DetermineBounds( DistanceImageType::PointType &minPointInWorldCoordinates, DistanceImageType::PointType &maxPointInWorldCoordinates, DistanceImageType::IndexType &minPointInIndexCoordinates, DistanceImageType::IndexType &maxPointInIndexCoordinates ) { PointType firstCenter = m_Centers.at(0); DistanceImageType::PointType tmpPoint; tmpPoint[0] = firstCenter[0]; tmpPoint[1] = firstCenter[1]; tmpPoint[2] = firstCenter[2]; // transform the first point from world-coordinates to index-coordinates DistanceImageType::IndexType tmpIndex; m_ReferenceImage->TransformPhysicalPointToIndex( tmpPoint, tmpIndex ); // initialize the variables with this first point int xmin = tmpIndex[0]; int ymin = tmpIndex[1]; int zmin = tmpIndex[2]; int xmax = tmpIndex[0]; int ymax = tmpIndex[1]; int zmax = tmpIndex[2]; // iterate over the rest of the points CenterList::iterator centerIter = m_Centers.begin(); for ( ++centerIter; centerIter!=m_Centers.end(); centerIter++) { tmpPoint[0] = (*centerIter)[0]; tmpPoint[1] = (*centerIter)[1]; tmpPoint[2] = (*centerIter)[2]; // transform each point from world-coordinates to index-coordinates m_ReferenceImage->TransformPhysicalPointToIndex( tmpPoint, tmpIndex ); // and set the variables accordingly to find the minimum // and maximum in all directions in index-coordinates if (xmin > tmpIndex[0]) { xmin = tmpIndex[0]; } if (ymin > tmpIndex[1]) { ymin = tmpIndex[1]; } if (zmin > tmpIndex[2]) { zmin = tmpIndex[2]; } if (xmax < tmpIndex[0]) { xmax = tmpIndex[0]; } if (ymax < tmpIndex[1]) { ymax = tmpIndex[1]; } if (zmax < tmpIndex[2]) { zmax = tmpIndex[2]; } } // put the found coordinates into Index-Points minPointInIndexCoordinates[0] = xmin; minPointInIndexCoordinates[1] = ymin; minPointInIndexCoordinates[2] = zmin; maxPointInIndexCoordinates[0] = xmax; maxPointInIndexCoordinates[1] = ymax; maxPointInIndexCoordinates[2] = zmax; // and transform them into world-coordinates m_ReferenceImage->TransformIndexToPhysicalPoint( minPointInIndexCoordinates, minPointInWorldCoordinates ); m_ReferenceImage->TransformIndexToPhysicalPoint( maxPointInIndexCoordinates, maxPointInWorldCoordinates ); } diff --git a/Modules/SurfaceInterpolation/mitkSurfaceInterpolationController.cpp b/Modules/SurfaceInterpolation/mitkSurfaceInterpolationController.cpp index a6e05165b8..06cc094955 100644 --- a/Modules/SurfaceInterpolation/mitkSurfaceInterpolationController.cpp +++ b/Modules/SurfaceInterpolation/mitkSurfaceInterpolationController.cpp @@ -1,367 +1,385 @@ /*=================================================================== The Medical Imaging Interaction Toolkit (MITK) Copyright (c) German Cancer Research Center, Division of Medical and Biological Informatics. All rights reserved. This software is distributed WITHOUT ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See LICENSE.txt or http://www.mitk.org for details. ===================================================================*/ #include "mitkSurfaceInterpolationController.h" #include "mitkMemoryUtilities.h" #include "mitkImageAccessByItk.h" #include "mitkImageCast.h" #include "mitkImageToSurfaceFilter.h" mitk::SurfaceInterpolationController::SurfaceInterpolationController() :m_SelectedSegmentation(0) { m_ReduceFilter = ReduceContourSetFilter::New(); m_NormalsFilter = ComputeContourSetNormalsFilter::New(); m_InterpolateSurfaceFilter = CreateDistanceImageFromSurfaceFilter::New(); m_ReduceFilter->SetUseProgressBar(false); m_NormalsFilter->SetUseProgressBar(false); m_InterpolateSurfaceFilter->SetUseProgressBar(false); m_Contours = Surface::New(); m_PolyData = vtkSmartPointer::New(); vtkSmartPointer points = vtkSmartPointer::New(); m_PolyData->SetPoints(points); m_InterpolationResult = 0; m_CurrentNumberOfReducedContours = 0; } mitk::SurfaceInterpolationController::~SurfaceInterpolationController() { //Removing all observers std::map::iterator dataIter = m_SegmentationObserverTags.begin(); for (; dataIter != m_SegmentationObserverTags.end(); ++dataIter ) { (*dataIter).first->RemoveObserver( (*dataIter).second ); } m_SegmentationObserverTags.clear(); } mitk::SurfaceInterpolationController* mitk::SurfaceInterpolationController::GetInstance() { static mitk::SurfaceInterpolationController::Pointer m_Instance; if ( m_Instance.IsNull() ) { m_Instance = SurfaceInterpolationController::New(); } return m_Instance; } void mitk::SurfaceInterpolationController::AddNewContour (mitk::Surface::Pointer newContour, PlaneGeometry::Pointer plane) { ContourPositionPair pair; pair.contour = newContour; pair.plane = plane; this->AddToInterpolationPipeline(pair); this->Modified(); } void mitk::SurfaceInterpolationController::AddNewContours(ContourPositionPairList newContours) { for (unsigned int i = 0; i < newContours.size(); ++i) { this->AddToInterpolationPipeline(newContours.at(i)); } this->Modified(); } void mitk::SurfaceInterpolationController::AddToInterpolationPipeline(ContourPositionPair pair) { int pos (-1); ContourPositionPairList currentContourList = m_ListOfInterpolationSessions[m_SelectedSegmentation]; mitk::PlaneGeometry* plane = pair.plane; mitk::Surface* newContour = pair.contour; for (unsigned int i = 0; i < currentContourList.size(); i++) { mitk::PlaneGeometry::Pointer planeFromList = currentContourList.at(i).plane; if ( mitk::Equal(*plane, *planeFromList, mitk::eps, false) ) { pos = i; break; } } //Don't save a new empty contour if (pos == -1 && newContour->GetVtkPolyData()->GetNumberOfPoints() > 0) { m_ReduceFilter->SetInput(m_ListOfInterpolationSessions[m_SelectedSegmentation].size(), newContour); m_ListOfInterpolationSessions[m_SelectedSegmentation].push_back(pair); } else if (pos != -1 && newContour->GetVtkPolyData()->GetNumberOfPoints() > 0) { m_ListOfInterpolationSessions[m_SelectedSegmentation].at(pos) = pair; m_ReduceFilter->SetInput(pos, newContour); } m_ReduceFilter->Update(); m_CurrentNumberOfReducedContours = m_ReduceFilter->GetNumberOfOutputs(); for (unsigned int i = 0; i < m_CurrentNumberOfReducedContours; i++) { m_NormalsFilter->SetInput(i, m_ReduceFilter->GetOutput(i)); m_InterpolateSurfaceFilter->SetInput(i, m_NormalsFilter->GetOutput(i)); } } +bool mitk::SurfaceInterpolationController::RemoveContour(mitk::PlaneGeometry *plane) +{ + ContourPositionPairList::iterator it = m_ListOfInterpolationSessions[m_SelectedSegmentation].begin(); + while (it != m_ListOfInterpolationSessions[m_SelectedSegmentation].end()) + { + ContourPositionPair pair = (*it); + if (mitk::Equal(*plane, *pair.plane, mitk::eps, false)) + { + m_ListOfInterpolationSessions[m_SelectedSegmentation].erase(it); + this->ReinitializeInterpolation(); + return true; + } + ++it; + } + return false; +} + const mitk::Surface* mitk::SurfaceInterpolationController::GetContour(mitk::PlaneGeometry::Pointer plane) { ContourPositionPairList contourList = m_ListOfInterpolationSessions[m_SelectedSegmentation]; for (unsigned int i = 0; i < contourList.size(); ++i) { ContourPositionPair pair = contourList.at(i); if (mitk::Equal(*plane, *pair.plane, mitk::eps, false)) return pair.contour; } return 0; } unsigned int mitk::SurfaceInterpolationController::GetNumberOfContours() { return m_ListOfInterpolationSessions[m_SelectedSegmentation].size(); } void mitk::SurfaceInterpolationController::Interpolate() { if (m_CurrentNumberOfReducedContours< 2) { //If no interpolation is possible reset the interpolation result m_InterpolationResult = 0; return; } //Setting up progress bar /* * Removed due to bug 12441. ProgressBar messes around with Qt event queue which is fatal for segmentation */ //mitk::ProgressBar::GetInstance()->AddStepsToDo(8); // update the filter and get teh resulting distance-image m_InterpolateSurfaceFilter->Update(); Image::Pointer distanceImage = m_InterpolateSurfaceFilter->GetOutput(); // create a surface from the distance-image mitk::ImageToSurfaceFilter::Pointer imageToSurfaceFilter = mitk::ImageToSurfaceFilter::New(); imageToSurfaceFilter->SetInput( distanceImage ); imageToSurfaceFilter->SetThreshold( 0 ); imageToSurfaceFilter->SetSmooth(true); imageToSurfaceFilter->SetSmoothIteration(20); imageToSurfaceFilter->Update(); m_InterpolationResult = imageToSurfaceFilter->GetOutput(); vtkSmartPointer polyDataAppender = vtkSmartPointer::New(); for (unsigned int i = 0; i < m_ReduceFilter->GetNumberOfOutputs(); i++) { polyDataAppender->AddInputData(m_ReduceFilter->GetOutput(i)->GetVtkPolyData()); } polyDataAppender->Update(); m_Contours->SetVtkPolyData(polyDataAppender->GetOutput()); //Last progress step /* * Removed due to bug 12441. ProgressBar messes around with Qt event queue which is fatal for segmentation */ //mitk::ProgressBar::GetInstance()->Progress(8); m_InterpolationResult->DisconnectPipeline(); } mitk::Surface::Pointer mitk::SurfaceInterpolationController::GetInterpolationResult() { return m_InterpolationResult; } mitk::Surface* mitk::SurfaceInterpolationController::GetContoursAsSurface() { return m_Contours; } void mitk::SurfaceInterpolationController::SetDataStorage(DataStorage::Pointer ds) { m_DataStorage = ds; } void mitk::SurfaceInterpolationController::SetMinSpacing(double minSpacing) { m_ReduceFilter->SetMinSpacing(minSpacing); } void mitk::SurfaceInterpolationController::SetMaxSpacing(double maxSpacing) { m_ReduceFilter->SetMaxSpacing(maxSpacing); m_NormalsFilter->SetMaxSpacing(maxSpacing); } void mitk::SurfaceInterpolationController::SetDistanceImageVolume(unsigned int distImgVolume) { m_InterpolateSurfaceFilter->SetDistanceImageVolume(distImgVolume); } -void mitk::SurfaceInterpolationController::SetSegmentationImage(Image* /*workingImage*/) -{ -// m_NormalsFilter->SetSegmentationBinaryImage(workingImage); -} - mitk::Image::Pointer mitk::SurfaceInterpolationController::GetCurrentSegmentation() { return m_SelectedSegmentation; } mitk::Image* mitk::SurfaceInterpolationController::GetImage() { return m_InterpolateSurfaceFilter->GetOutput(); } double mitk::SurfaceInterpolationController::EstimatePortionOfNeededMemory() { double numberOfPointsAfterReduction = m_ReduceFilter->GetNumberOfPointsAfterReduction()*3; double sizeOfPoints = pow(numberOfPointsAfterReduction,2)*sizeof(double); double totalMem = mitk::MemoryUtilities::GetTotalSizeOfPhysicalRam(); double percentage = sizeOfPoints/totalMem; return percentage; } unsigned int mitk::SurfaceInterpolationController::GetNumberOfInterpolationSessions() { return m_ListOfInterpolationSessions.size(); } template void mitk::SurfaceInterpolationController::GetImageBase(itk::Image* input, itk::ImageBase<3>::Pointer& result) { result->Graft(input); } void mitk::SurfaceInterpolationController::SetCurrentSegmentationInterpolationList(mitk::Image::Pointer segmentation) { this->SetCurrentInterpolationSession(segmentation); } void mitk::SurfaceInterpolationController::SetCurrentInterpolationSession(mitk::Image::Pointer currentSegmentationImage) { if (currentSegmentationImage.GetPointer() == m_SelectedSegmentation) return; - m_ReduceFilter->Reset(); - m_NormalsFilter->Reset(); - m_InterpolateSurfaceFilter->Reset(); - if (currentSegmentationImage.IsNull()) { m_SelectedSegmentation = 0; return; } - ContourListMap::iterator it = m_ListOfInterpolationSessions.find(currentSegmentationImage.GetPointer()); m_SelectedSegmentation = currentSegmentationImage.GetPointer(); - itk::ImageBase<3>::Pointer itkImage = itk::ImageBase<3>::New(); - AccessFixedDimensionByItk_1( m_SelectedSegmentation, GetImageBase, 3, itkImage ); - m_InterpolateSurfaceFilter->SetReferenceImage( itkImage.GetPointer() ); - + ContourListMap::iterator it = m_ListOfInterpolationSessions.find(currentSegmentationImage.GetPointer()); + // If the session does not exist yet create a new ContourPositionPairList otherwise reinitialize the interpolation pipeline if (it == m_ListOfInterpolationSessions.end()) { ContourPositionPairList newList; m_ListOfInterpolationSessions.insert(std::pair(m_SelectedSegmentation, newList)); m_InterpolationResult = 0; m_CurrentNumberOfReducedContours = 0; itk::MemberCommand::Pointer command = itk::MemberCommand::New(); command->SetCallbackFunction(this, &SurfaceInterpolationController::OnSegmentationDeleted); m_SegmentationObserverTags.insert( std::pair( m_SelectedSegmentation, m_SelectedSegmentation->AddObserver( itk::DeleteEvent(), command ) ) ); - } - else - { - for (unsigned int i = 0; i < m_ListOfInterpolationSessions[m_SelectedSegmentation].size(); i++) - { - m_ReduceFilter->SetInput(i, m_ListOfInterpolationSessions[m_SelectedSegmentation].at(i).contour); - } - m_ReduceFilter->Update(); - - m_CurrentNumberOfReducedContours = m_ReduceFilter->GetNumberOfOutputs(); - - for (unsigned int i = 0; i < m_CurrentNumberOfReducedContours; i++) - { - m_NormalsFilter->SetInput(i, m_ReduceFilter->GetOutput(i)); - m_InterpolateSurfaceFilter->SetInput(i, m_NormalsFilter->GetOutput(i)); - } - } - Modified(); + this->ReinitializeInterpolation(); } void mitk::SurfaceInterpolationController::RemoveSegmentationFromContourList(mitk::Image *segmentation) { this->RemoveInterpolationSession(segmentation); } void mitk::SurfaceInterpolationController::RemoveInterpolationSession(mitk::Image::Pointer segmentationImage) { if (segmentationImage) { if (m_SelectedSegmentation == segmentationImage) { - SetSegmentationImage(NULL); + m_NormalsFilter->SetSegmentationBinaryImage(NULL); m_SelectedSegmentation = 0; } m_ListOfInterpolationSessions.erase(segmentationImage); // Remove observer std::map::iterator pos = m_SegmentationObserverTags.find(segmentationImage); if (pos != m_SegmentationObserverTags.end()) { segmentationImage->RemoveObserver((*pos).second); m_SegmentationObserverTags.erase(pos); } } } void mitk::SurfaceInterpolationController::RemoveAllInterpolationSessions() { //Removing all observers std::map::iterator dataIter = m_SegmentationObserverTags.begin(); while (dataIter != m_SegmentationObserverTags.end()) { mitk::Image* image = (*dataIter).first; image->RemoveObserver((*dataIter).second); ++dataIter; } m_SegmentationObserverTags.clear(); m_SelectedSegmentation = 0; m_ListOfInterpolationSessions.clear(); } void mitk::SurfaceInterpolationController::OnSegmentationDeleted(const itk::Object *caller, const itk::EventObject &/*event*/) { mitk::Image* tempImage = dynamic_cast(const_cast(caller)); if (tempImage) { if (m_SelectedSegmentation == tempImage) { - SetSegmentationImage(NULL); + m_NormalsFilter->SetSegmentationBinaryImage(NULL); m_SelectedSegmentation = 0; } m_SegmentationObserverTags.erase(tempImage); m_ListOfInterpolationSessions.erase(tempImage); } } + +void mitk::SurfaceInterpolationController::ReinitializeInterpolation() +{ + m_NormalsFilter->SetSegmentationBinaryImage(m_SelectedSegmentation); + + // If session has changed reset the pipeline + m_ReduceFilter->Reset(); + m_NormalsFilter->Reset(); + m_InterpolateSurfaceFilter->Reset(); + + itk::ImageBase<3>::Pointer itkImage = itk::ImageBase<3>::New(); + AccessFixedDimensionByItk_1( m_SelectedSegmentation, GetImageBase, 3, itkImage ); + m_InterpolateSurfaceFilter->SetReferenceImage(itkImage.GetPointer()); + + for (unsigned int i = 0; i < m_ListOfInterpolationSessions[m_SelectedSegmentation].size(); i++) + { + m_ReduceFilter->SetInput(i, m_ListOfInterpolationSessions[m_SelectedSegmentation].at(i).contour); + } + + m_ReduceFilter->Update(); + + m_CurrentNumberOfReducedContours = m_ReduceFilter->GetNumberOfOutputs(); + + for (unsigned int i = 0; i < m_CurrentNumberOfReducedContours; i++) + { + m_NormalsFilter->SetInput(i, m_ReduceFilter->GetOutput(i)); + m_InterpolateSurfaceFilter->SetInput(i, m_NormalsFilter->GetOutput(i)); + } + Modified(); +} diff --git a/Modules/SurfaceInterpolation/mitkSurfaceInterpolationController.h b/Modules/SurfaceInterpolation/mitkSurfaceInterpolationController.h index 36235eb579..4e204a3318 100644 --- a/Modules/SurfaceInterpolation/mitkSurfaceInterpolationController.h +++ b/Modules/SurfaceInterpolation/mitkSurfaceInterpolationController.h @@ -1,221 +1,222 @@ /*=================================================================== The Medical Imaging Interaction Toolkit (MITK) Copyright (c) German Cancer Research Center, Division of Medical and Biological Informatics. All rights reserved. This software is distributed WITHOUT ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See LICENSE.txt or http://www.mitk.org for details. ===================================================================*/ #ifndef mitkSurfaceInterpolationController_h_Included #define mitkSurfaceInterpolationController_h_Included #include "mitkCommon.h" #include #include "mitkRestorePlanePositionOperation.h" #include "mitkSurface.h" #include "mitkInteractionConst.h" #include "mitkColorProperty.h" #include "mitkProperties.h" #include "mitkCreateDistanceImageFromSurfaceFilter.h" #include "mitkReduceContourSetFilter.h" #include "mitkComputeContourSetNormalsFilter.h" #include "mitkDataNode.h" #include "mitkDataStorage.h" #include "mitkWeakPointer.h" #include "vtkPolygon.h" #include "vtkPoints.h" #include "vtkCellArray.h" #include "vtkPolyData.h" #include "vtkSmartPointer.h" #include "vtkAppendPolyData.h" #include "vtkMarchingCubes.h" #include "vtkImageData.h" #include "mitkVtkRepresentationProperty.h" #include "vtkProperty.h" #include "mitkProgressBar.h" namespace mitk { class MitkSurfaceInterpolation_EXPORT SurfaceInterpolationController : public itk::Object { public: mitkClassMacro(SurfaceInterpolationController, itk::Object) itkFactorylessNewMacro(Self) itkCloneMacro(Self) struct ContourPositionPair { Surface::Pointer contour; mitk::PlaneGeometry::Pointer plane; }; typedef std::vector ContourPositionPairList; typedef std::map ContourListMap; static SurfaceInterpolationController* GetInstance(); /** * @brief Adds a new extracted contour to the list * @param newContour the contour to be added * @param plane the image plane in which the contour lies. If plane already exists the related * contour will be updated */ void AddNewContour (Surface::Pointer newContour, PlaneGeometry::Pointer plane); /** * @brief Adds new extracted contours to the list. If one or more contours at a given position * already exist they will be updated respectively * @param newContours the list of the contours and the respective positions */ void AddNewContours (ContourPositionPairList newContours); + /** + * @brief Removes the contour for a given plane for the current selected segmenation + * @param plane the plane for which the contour should be returned + * @return true if a contour was found and removed, false if no contour was found + */ + bool RemoveContour (mitk::PlaneGeometry* plane); + /** * @brief Returns the contour for a given plane for the current selected segmenation * @param plane the plane for which the contour should be returned * @return the contour as an mitk::Surface. If no contour is available for the plane NULL is returned */ const mitk::Surface* GetContour (PlaneGeometry::Pointer plane); /** * @brief Returns the number of available contours for the current selected segmentation * @return the number of contours */ unsigned int GetNumberOfContours(); /** * Interpolates the 3D surface from the given extracted contours */ void Interpolate (); mitk::Surface::Pointer GetInterpolationResult(); /** * Sets the minimum spacing of the current selected segmentation * This is needed since the contour points we reduced before they are used to interpolate the surface */ void SetMinSpacing(double minSpacing); /** * Sets the minimum spacing of the current selected segmentation * This is needed since the contour points we reduced before they are used to interpolate the surface */ void SetMaxSpacing(double maxSpacing); /** * Sets the volume i.e. the number of pixels that the distance image should have * By evaluation we found out that 50.000 pixel delivers a good result */ void SetDistanceImageVolume(unsigned int distImageVolume); - /** - * Sets the current segmentation which is used by the interpolation - * This is needed because the calculation of the normals needs to now wheather a normal points inside a segmentation or not - */ - void SetSegmentationImage(Image* workingImage); - /** * @brief Get the current selected segmentation for which the interpolation is performed * @return the current segmentation image */ mitk::Image::Pointer GetCurrentSegmentation(); Surface* GetContoursAsSurface(); void SetDataStorage(DataStorage::Pointer ds); /** * Sets the current list of contourpoints which is used for the surface interpolation * @param segmentation The current selected segmentation * \deprecatedSince{2014_03} */ DEPRECATED (void SetCurrentSegmentationInterpolationList(mitk::Image::Pointer segmentation)); /** * Sets the current list of contourpoints which is used for the surface interpolation * @param segmentation The current selected segmentation */ void SetCurrentInterpolationSession(mitk::Image::Pointer currentSegmentationImage); /** * Removes the segmentation and all its contours from the list * @param segmentation The segmentation to be removed * \deprecatedSince{2014_03} */ DEPRECATED (void RemoveSegmentationFromContourList(mitk::Image* segmentation)); /** * @brief Remove interpolation session * @param segmentationImage the session to be removed */ void RemoveInterpolationSession(mitk::Image::Pointer segmentationImage); /** * @brief Removes all sessions */ void RemoveAllInterpolationSessions(); mitk::Image* GetImage(); /** * Estimates the memory which is needed to build up the equationsystem for the interpolation. * \returns The percentage of the real memory which will be used by the interpolation */ double EstimatePortionOfNeededMemory(); unsigned int GetNumberOfInterpolationSessions(); protected: SurfaceInterpolationController(); ~SurfaceInterpolationController(); template void GetImageBase(itk::Image* input, itk::ImageBase<3>::Pointer& result); private: void OnSegmentationDeleted(const itk::Object *caller, const itk::EventObject &event); void ReinitializeInterpolation(); void AddToInterpolationPipeline(ContourPositionPair pair); ContourPositionPairList::iterator m_Iterator; ReduceContourSetFilter::Pointer m_ReduceFilter; ComputeContourSetNormalsFilter::Pointer m_NormalsFilter; CreateDistanceImageFromSurfaceFilter::Pointer m_InterpolateSurfaceFilter; Surface::Pointer m_Contours; vtkSmartPointer m_PolyData; mitk::DataStorage::Pointer m_DataStorage; ContourListMap m_ListOfInterpolationSessions; mitk::Surface::Pointer m_InterpolationResult; unsigned int m_CurrentNumberOfReducedContours; mitk::Image* m_SelectedSegmentation; std::map m_SegmentationObserverTags; }; } #endif