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Modeling a Low Vision Observer: Application in Comparison of Image Enhancement Methods
Chapitre d'ouvrage   Open Access

Modeling a Low Vision Observer: Application in Comparison of Image Enhancement Methods

Cédric Walbrecq, Dominique Lafon-Pham et Isabelle Marc
HCI International 2020 – Late Breaking Posters, p.119-126
08/11/2020

Résumé

Computational model Low vision Contrast sensitivity function Contrast enhancement
Numerous image processing methods have been proposed to help low vision people, often relied on contrast enhancement algorithms. Their assessment is usually performed by tests on low vision subjects, which are expensive and time consuming. This paper presents a low vision observer model, fully customizable to fit various impaired visual performances, which may be used for early algorithm assessment, and avoiding unnecessary human tests. This model is fitted to visual performances of a subject with degenerative retinal disease, and applied to images processed by two edge enhancement algorithms, allowing to explain their performances in terms of blur reduction and color saturation improvement.

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