Generalized ellipsoids and anisotropic filtering for segmentation improvement in 3D medical imaging

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摘要

Deformable models have demonstrated to be very useful techniques for image segmentation. However, they present several weak points. Two of the main problems with deformable models are the following: (1) results are often dependent on the initial model location, and (2) the generation of image potentials is very sensitive to noise. Modeling and preprocessing methods presented in this paper contribute to solve these problems. We propose an initialization tool to obtain a good approximation to global shape and location of a given object into a 3D image. We also introduce a novel technique for corner preserving anisotropic diffusion filtering to improve contrast and corner measures. This is useful for both guiding initialization (global shape) and subsequent deformation for fine tuning (local shape).

论文关键词:Registration,Deformable models,Segmentation,Anisotropic diffusion,Surface patch saliency,3D medical images

论文评审过程:Received 6 August 2001, Revised 8 November 2002, Accepted 14 January 2003, Available online 19 March 2003.

论文官网地址:https://doi.org/10.1016/S0262-8856(03)00006-4