Papers › Image quality assessment: from error visibility to structural similarity

Image quality assessment: from error visibility to structural similarity

13 Apr 2004IEEE Transactions on Image Processing 2004 4archive 2025-07-28

Zhou Wang, A.C. Bovik, H.R. Sheikh; E.P. Simoncelli

Objective methods for assessing perceptual image quality traditionally attempted to quantify the visibility of errors (differences) between a distorted image and a reference image using a variety of known properties of the human visual system. Under the assumption that human visual perception is highly adapted for extracting structural information from a scene, we introduce an alternative complementary framework for quality assessment based on the degradation of structural information. As a specific example of this concept, we develop a structural similarity index and demonstrate its promise through a set of intuitive examples, as well as comparison to both subjective ratings and state-of-the-art objective methods on a database of images compressed with JPEG and JPEG2000. A MATLAB implementation of the proposed algorithm is available online at http://www.cns.nyu.edu//spl sim/lcv/ssim/.

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Tasks

Full reference image quality assessmentImage Quality AssessmentSSIMVideo Quality Assessment

Results from the paper archive 2025-07-28

TaskDatasetModelMetricValueRank at snapshotLeaderboardReport
Full reference image quality assessment KADID10K SSIM SRCC 0.6329 #11 of 11 Archive leaderboard report
Full reference image quality assessment TID2008 SSIM PLCC 0.7732 #12 of 13 Archive leaderboard report
Full reference image quality assessment TID2008 SSIM SRCC 0.7749 #12 of 13 Archive leaderboard report
Video Quality Assessment MSU FR VQA Database SSIM KLCC 0.7615 #11 of 20 Archive leaderboard report
Video Quality Assessment MSU FR VQA Database SSIM PLCC 0.9253 #11 of 20 Archive leaderboard report
Video Quality Assessment MSU FR VQA Database SSIM SRCC 0.8999 #11 of 20 Archive leaderboard report
Video Quality Assessment MSU SR-QA Dataset SSIM KLCC 0.17175 #52 of 60 Archive leaderboard report
Video Quality Assessment MSU SR-QA Dataset SSIM PLCC 0.20670 #52 of 60 Archive leaderboard report
Video Quality Assessment MSU SR-QA Dataset SSIM SROCC 0.22468 #52 of 60 Archive leaderboard report
Video Quality Assessment MSU SR-QA Dataset SSIM Type FR #52 of 60 Archive leaderboard report

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