DocumentCode :
598071
Title :
SR-SIM: A fast and high performance IQA index based on spectral residual
Author :
Lin Zhang ; Hongyu Li
Author_Institution :
Sch. of Software Eng., Tongji Univ., Shanghai, China
fYear :
2012
fDate :
Sept. 30 2012-Oct. 3 2012
Firstpage :
1473
Lastpage :
1476
Abstract :
Automatic image quality assessment (IQA) attempts to use computational models to measure the image quality in consistency with subjective ratings. In the past decades, dozens of IQA models have been proposed. Though some of them can predict subjective image quality accurately, their computational costs are usually very high. To meet real-time requirements, in this paper, we propose a novel fast and effective IQA index, namely spectral residual based similarity (SR-SIM), based on a specific visual saliency model, spectral residual visual saliency. SR-SIM is designed based on the hypothesis that an image´s visual saliency map is closely related to its perceived quality. Extensive experiments conducted on three large-scale IQA datasets indicate that SR-SIM could achieve better prediction performance than the other state-of-the-art IQA indices evaluated. Moreover, SR-SIM can have a quite low computational complexity. The Matlab source code of SR-SIM and the evaluation results are available online at http://sse.tongji.edu.cn/linzhang/IQA/SR-SIM/SR-SIM.htm.
Keywords :
computational complexity; image processing; spectral analysis; IQA index; Matlab source code; SR-SIM; automatic image perceived quality assessment; computational complexity; computational costs; image visual saliency mapping; large-scale IQA datasets; spectral residual visual saliency-based similarity; subjective image quality prediction; subjective ratings; Computational efficiency; Computational modeling; Humans; IP networks; Image quality; Indexes; Visualization; IQA; spectral residual; visual saliency;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Image Processing (ICIP), 2012 19th IEEE International Conference on
Conference_Location :
Orlando, FL
ISSN :
1522-4880
Print_ISBN :
978-1-4673-2534-9
Electronic_ISBN :
1522-4880
Type :
conf
DOI :
10.1109/ICIP.2012.6467149
Filename :
6467149
Link To Document :
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