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FUNQUE: Fusion of Unified Quality Evaluators

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arxiv 2202.11241 v2 pith:M5EZLHUV submitted 2022-02-23 cs.CV eess.IV

classification cs.CVeess.IV
keywords qualitymodelsfunqueevaluatorsstate-of-the-artunifiedaccountsachieve
verification ladder T0 review T1 audit T2 compute T3 formal
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Fusion-based quality assessment has emerged as a powerful method for developing high-performance quality models from quality models that individually achieve lower performances. A prominent example of such an algorithm is VMAF, which has been widely adopted as an industry standard for video quality prediction along with SSIM. In addition to advancing the state-of-the-art, it is imperative to alleviate the computational burden presented by the use of a heterogeneous set of quality models. In this paper, we unify "atom" quality models by computing them on a common transform domain that accounts for the Human Visual System, and we propose FUNQUE, a quality model that fuses unified quality evaluators. We demonstrate that in comparison to the state-of-the-art, FUNQUE offers significant improvements in both correlation against subjective scores and efficiency, due to computation sharing.

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