Image Restoration and Decomposition via Bounded Total Variation and Negative Hilbert-Sobolev Spaces

被引:0
作者
Linh H. Lieu
Luminita A. Vese
机构
[1] University of California,Department of Mathematics
[2] Davis,Department of Mathematics
[3] University of California,undefined
[4] Los Angeles,undefined
来源
Applied Mathematics and Optimization | 2008年 / 58卷
关键词
Functional minimization; Functions of bounded variation; Negative Hilbert-Sobolev spaces; Duality; Image restoration; Image decomposition; Image deblurring; Image analysis; Fourier transform;
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摘要
We propose a new class of models for image restoration and decomposition by functional minimization. Following ideas of Y. Meyer in a total variation minimization framework of L. Rudin, S. Osher, and E. Fatemi, our model decomposes a given (degraded or textured) image u0 into a sum u+v. Here u∈BV is a function of bounded variation (a cartoon component), while the noisy (or textured) component v is modeled by tempered distributions belonging to the negative Hilbert-Sobolev space H−s. The proposed models can be seen as generalizations of a model proposed by S. Osher, A. Solé, L. Vese and have been also motivated by D. Mumford and B. Gidas. We present existence, uniqueness and two characterizations of minimizers using duality and the notion of convex functions of measures with linear growth, following I. Ekeland and R. Temam, F. Demengel and R. Temam. We also give a numerical algorithm for solving the minimization problem, and we present numerical results of denoising, deblurring, and decompositions of both synthetic and real images.
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