

Binary Tomography Reconstruction From Few Projections With Level-set Regularization Methods For Bone Microstructure Study
Abstract
A second level-set type method is investigated which includes the binary constraints in an augmented Lagrangian. For comparison, we consider a classical TV regularization method. The three schemes are applied to a simple disk image and to bone cross-sections images of various size without and with an additive Gaussian noise. The best binary reconstruction results are obtained with the TV algorithm for the simple disk image. Lower reconstruction errors are achieved with the level-set approaches methods for a more complex bone geometry and for the higher noise levels.
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