Coherence-enhancing diffusion filtering

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Abstract

The completion of interrupted lines or the enhancement of flow-like structures is a challenging task in computer vision, human vision, and image processing. We address this problem by presenting a multiscale method in which a nonlinear diffusion filter is steered by the so-called interest operator (second-moment matrix, structure tensor). An m-dimensional formulation of this method is analyzed with respect to its well-posedness and scale-space properties. An efficient scheme is presented which uses a stabilization by a semi-implicit additive operator splitting (AOS), and the scale-space behaviour of this method is illustrated by applying it to both 2-D and 3-D images.

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APA

Weickert, J. (1999). Coherence-enhancing diffusion filtering. International Journal of Computer Vision, 31(2), 111–127. https://doi.org/10.1023/a:1008009714131

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