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Communication Dans Un Congrès Année : 2005

An Interactive EA for Multifractal Bayesian Denoising

Résumé

We present in this paper a multifractal bayesian denoising technique based on an interactive EA. The multifractal denoising algorithm that serves as a basis for this technique is adapted to complex images and signals, and depends on a set of parameters. As the tuning of these parameters is a difficult task, highly dependent on psychovisual and subjective factors, we propose to use an interactive EA to drive this process. Comparative denoising results are presented with automatic and interactive EA optimisation. The proposed technique yield efficient denoising in many cases, comparable to classical denoising techniques. The versatility of the interactive implementation is however a major advantage to handle difficult images like IR or medical images.
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Dates et versions

hal-00539290 , version 1 (24-01-2011)

Identifiants

  • HAL Id : hal-00539290 , version 1

Citer

Evelyne Lutton, Pierre Grenier, Jacques Lévy Véhel. An Interactive EA for Multifractal Bayesian Denoising. EvoIASP 2005, Mar 2005, Lausanne, Suisse. pp.1. ⟨hal-00539290⟩

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