/*========================================================================= * * Copyright NumFOCUS * * Licensed under the Apache License, Version 2.0 (the "License"); * you may not use this file except in compliance with the License. * You may obtain a copy of the License at * * https://www.apache.org/licenses/LICENSE-2.0.txt * * Unless required by applicable law or agreed to in writing, software * distributed under the License is distributed on an "AS IS" BASIS, * WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied. * See the License for the specific language governing permissions and * limitations under the License. * *=========================================================================*/ #include "itkImageFileReader.h" #include "itkImageFileWriter.h" #include "itkLevelSetContainer.h" #include "itkLevelSetEquationChanAndVeseExternalTerm.h" #include "itkLevelSetEquationTermContainer.h" #include "itkLevelSetEquationContainer.h" #include "itkSinRegularizedHeavisideStepFunction.h" #include "itkLevelSetEvolution.h" #include "itkBinaryImageToLevelSetImageAdaptor.h" #include "itkLevelSetEvolutionNumberOfIterationsStoppingCriterion.h" #include "itkTestingMacros.h" int itkSingleLevelSetWhitakerImage2DTest(int argc, char * argv[]) { if (argc < 4) { std::cerr << "Missing parameters." << std::endl; std::cerr << "Usage:" << std::endl; std::cerr << itkNameOfTestExecutableMacro(argv) << " inputFilename numberOfIterations outputFilename" << std::endl; return EXIT_FAILURE; } constexpr unsigned int Dimension = 2; using InputPixelType = unsigned short; using InputImageType = itk::Image; using InputIteratorType = itk::ImageRegionIteratorWithIndex; using ReaderType = itk::ImageFileReader; using PixelType = float; using SparseLevelSetType = itk::WhitakerSparseLevelSetImage; using BinaryToSparseAdaptorType = itk::BinaryImageToLevelSetImageAdaptor; using IdentifierType = itk::IdentifierType; using LevelSetContainerType = itk::LevelSetContainer; using ChanAndVeseInternalTermType = itk::LevelSetEquationChanAndVeseInternalTerm; using ChanAndVeseExternalTermType = itk::LevelSetEquationChanAndVeseExternalTerm; using TermContainerType = itk::LevelSetEquationTermContainer; using EquationContainerType = itk::LevelSetEquationContainer; using LevelSetEvolutionType = itk::LevelSetEvolution; using LevelSetOutputRealType = SparseLevelSetType::OutputRealType; using HeavisideFunctionBaseType = itk::SinRegularizedHeavisideStepFunction; using InputIteratorType = itk::ImageRegionIteratorWithIndex; // load binary mask auto reader = ReaderType::New(); reader->SetFileName(argv[1]); reader->Update(); InputImageType::Pointer input = reader->GetOutput(); // Binary initialization auto binary = InputImageType::New(); binary->SetRegions(input->GetLargestPossibleRegion()); binary->CopyInformation(input); binary->Allocate(); binary->FillBuffer(InputPixelType{}); InputImageType::RegionType region; InputImageType::IndexType index; InputImageType::SizeType size; index.Fill(10); size.Fill(30); region.SetIndex(index); region.SetSize(size); InputIteratorType iIt(binary, region); iIt.GoToBegin(); while (!iIt.IsAtEnd()) { iIt.Set(itk::NumericTraits::OneValue()); ++iIt; } // Convert binary mask to sparse level set auto adaptor = BinaryToSparseAdaptorType::New(); adaptor->SetInputImage(binary); adaptor->Initialize(); std::cout << "Finished converting to sparse format" << std::endl; SparseLevelSetType::Pointer level_set = adaptor->GetModifiableLevelSet(); // Define the Heaviside function auto heaviside = HeavisideFunctionBaseType::New(); heaviside->SetEpsilon(1.0); // Insert the levelsets in a levelset container auto lscontainer = LevelSetContainerType::New(); lscontainer->SetHeaviside(heaviside); bool LevelSetNotYetAdded = lscontainer->AddLevelSet(0, level_set, false); if (!LevelSetNotYetAdded) { return EXIT_FAILURE; } std::cout << "Level set container created" << std::endl; // **************** CREATE ALL TERMS **************** // ----------------------------- // *** 1st Level Set phi *** // Create ChanAndVese internal term for phi_{1} auto cvInternalTerm0 = ChanAndVeseInternalTermType::New(); cvInternalTerm0->SetInput(input); cvInternalTerm0->SetCoefficient(1.0); std::cout << "LevelSet 1: CV internal term created" << std::endl; // Create ChanAndVese external term for phi_{1} auto cvExternalTerm0 = ChanAndVeseExternalTermType::New(); cvExternalTerm0->SetInput(input); cvExternalTerm0->SetCoefficient(1.0); std::cout << "LevelSet 1: CV external term created" << std::endl; // **************** CREATE ALL EQUATIONS **************** // Create Term Container auto termContainer0 = TermContainerType::New(); termContainer0->SetInput(input); termContainer0->SetCurrentLevelSetId(0); termContainer0->SetLevelSetContainer(lscontainer); termContainer0->AddTerm(0, cvInternalTerm0); termContainer0->AddTerm(1, cvExternalTerm0); std::cout << "Term container 0 created" << std::endl; auto equationContainer = EquationContainerType::New(); equationContainer->AddEquation(0, termContainer0); equationContainer->SetLevelSetContainer(lscontainer); using StoppingCriterionType = itk::LevelSetEvolutionNumberOfIterationsStoppingCriterion; auto criterion = StoppingCriterionType::New(); criterion->SetNumberOfIterations(std::stoi(argv[2])); auto evolution = LevelSetEvolutionType::New(); ITK_EXERCISE_BASIC_OBJECT_METHODS(evolution, LevelSetEvolution, LevelSetEvolutionBase); evolution->SetEquationContainer(equationContainer); ITK_TEST_SET_GET_VALUE(equationContainer, evolution->GetEquationContainer()); evolution->SetStoppingCriterion(criterion); ITK_TEST_SET_GET_VALUE(criterion, evolution->GetStoppingCriterion()); evolution->SetLevelSetContainer(lscontainer); itk::ThreadIdType numberOfWorkUnits = 1; evolution->SetNumberOfWorkUnits(numberOfWorkUnits); ITK_TEST_SET_GET_VALUE(numberOfWorkUnits, evolution->GetNumberOfWorkUnits()); try { evolution->Update(); } catch (const itk::ExceptionObject & err) { std::cerr << err << std::endl; return EXIT_FAILURE; } using OutputImageType = itk::Image; auto outputImage = OutputImageType::New(); outputImage->SetRegions(input->GetLargestPossibleRegion()); outputImage->CopyInformation(input); outputImage->Allocate(); outputImage->FillBuffer(0); using OutputIteratorType = itk::ImageRegionIteratorWithIndex; OutputIteratorType oIt(outputImage, outputImage->GetLargestPossibleRegion()); oIt.GoToBegin(); OutputImageType::IndexType idx; while (!oIt.IsAtEnd()) { idx = oIt.GetIndex(); oIt.Set(level_set->GetLabelMap()->GetPixel(idx)); ++oIt; } using OutputWriterType = itk::ImageFileWriter; auto writer = OutputWriterType::New(); writer->SetFileName(argv[3]); writer->SetInput(outputImage); try { writer->Update(); } catch (const itk::ExceptionObject & err) { std::cout << err << std::endl; } if (evolution->GetNumberOfWorkUnits() != 1) { return EXIT_FAILURE; } return EXIT_SUCCESS; }