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VersusQ: Pairwise Margin Reasoning for Generalizable Video Quality Assessment

About

Large Multimodal Models (LMMs) have shown promise for video quality assessment, but most methods still predict an absolute score for each video. Such pointwise supervision often mixes perceptual quality with dataset-specific calibration, including annotation protocols, rating habits, and score distributions. As a result, the learned scoring rule may work well within a benchmark but transfer poorly across unseen domains. We argue that relative comparisons alleviate the absolute-scale calibration bias by focusing purely on perceptual differences rather than dataset-specific rating habits. Consequently, we propose \textbf{VersusQ}, a pairwise margin reasoning framework driven entirely by direct comparisons. Specifically, VersusQ performs LMM-based comparison between two videos, reasons about their visual and temporal quality differences, and predicts a signed continuous margin that captures both the preferred choice and the degree of difference. Furthermore, to align interpretable comparison rationales with fine-grained numerical differences, we introduce Margin-Coupled GRPO, which jointly optimizes rollout-based relational reasoning and continuous margin regression. Extensive experiments on multiple public VQA benchmarks demonstrate that VersusQ achieves state-of-the-art performance, strong cross-domain generalization, and reliable fine-grained ranking under heterogeneous evaluation scenarios.

Shibei Meng, Binxin Yang, Yuan Liu, Jiexuan Zhang, Zhengyao Lv, Hubery Yin, Qiang Xu• 2026

Related benchmarks

TaskDatasetResultRank
Video Quality AssessmentLIVE-VQC
SRCC0.801
151
Video Quality AssessmentLSVQ (test)
SRCC0.884
122
Video Quality AssessmentLSVQ 1080p
SRCC0.824
116
Video Quality AssessmentLIVE-YT-Gaming
SRCC0.774
64
Blind Video Quality AssessmentWaterloo-IVC-4K
SRCC0.587
46
Video Quality AssessmentKoNViD
SRCC0.879
15
Video Quality AssessmentVDPVE
SRCC0.723
14
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