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Article type: Research Article
Authors: Mendi, Engin
Affiliations: Department of Computer Engineering, KTO Karatay University, Konya, Turkey
Note: [] Corresponding author. Engin Mendi, Department of Computer Engineering, KTO Karatay University, Konya 42040, Turkey. Tel.: +90 332 2217207; Fax: +90 332 2020044; E-mails: esmendi@ualr.edu, engin.mendi@karatay.edu.tr
Abstract: Image quality assessment has a great importance in several image processing applications. Recently, various objective image quality metrics have been proposed in order to predict human visual perception. In this paper, novel image quality metrics, S-SSIM (saliency-based structural similarity index) and S-VIF (saliency-based visual information fidelity), are proposed based on a visual attention model extracting frequency-tuned salient region. Saliency maps are produced from the color and luminance features of the image. SSIM and VIF in pixel domain are modified by the weighting factors of the saliency maps. We validated our approach using 2 image databases as test bed: These databases contain subjective scores for each image. Our results showed that our technique is more correlated with human subjective perception.
Keywords: Image quality assessment, visual attention, saliency maps, structural similarity, visual information fidelity
DOI: 10.3233/IFS-141387
Journal: Journal of Intelligent & Fuzzy Systems, vol. 28, no. 3, pp. 1039-1046, 2015
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