Papers › Gradient magnitude similarity deviation on multiple scales for color image quality assessment

Gradient magnitude similarity deviation on multiple scales for color image quality assessment

19 Jun 2017IEEE International Conference on Acoustics, Speech and Signal Processing 2017 6archive 2025-07-28

Bo Zhang, Pedro V. Sander, Amine Bermak

Recently, various image quality assessment (IQA) metrics based on gradient similarity have been developed. In this paper, we extend the work of gradient magnitude similarity deviation (GMSD) and propose a more efficient metric. First, a novel similarity index is proposed, which gives the flexibility to tune the masking parameter to more closely match the human vision system (HVS). Then, we propose a multi-scale GMSD method by incorporating scores of luminance distortion at different scales. Furthermore, a method for measuring chromatic distortions in YIQ color space based on our metric is proposed. The final IQA index, MS-GMSD c , is obtained by combining luminance and chrominance scores. Experimental results on four comprehensive datasets clearly show that, compared with 14 state-of-the-art IQA methods, our method achieves the best performance for both grayscale and chromatic image assessment.

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Image Quality Assessment

Results from the paper archive 2025-07-28

TaskDatasetModelMetricValueRank at snapshotLeaderboardReport
Image Quality Assessment MSU FR VQA Database MS-GMSD SRCC 0.8949 #5 of 6 Archive leaderboard report

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