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EvoVid: Temporal-Centric Self-Evolution for Video Large Language Models

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Recent Video Large Language Models (Video-LLMs) have demonstrated strong capabilities in video reasoning through reinforcement learning (RL). However, existing RL pipelines rely heavily on human-annotated tasks and solutions, making them costly to scale and fundamentally constrained by human expertise. Self-evolving frameworks have recently emerged as a promising alternative through autonomous Questioner-Solver self-play. Unfortunately, these approaches are primarily designed for static modalities such as text and images, fundamentally failing to capture the temporal dynamics that are central to video reasoning. In this work, we propose $\textbf{EvoVid}$, a temporal-centric self-evolving framework that enables Video-LLMs to improve directly from raw, unannotated videos. Specifically, we introduce two complementary temporal-centric rewards: a temporal-aware Questioner reward that encourages temporally dependent question generation through temporal perturbation sensitivity, and a temporal-grounded Solver reward that provides automatic temporal supervision via inherent video segment localization. Extensive experiments across four base models and six benchmarks demonstrate consistent improvements over both base models and existing self-evolving baselines, achieving competitive performance with supervised methods. These results highlight temporal-centric self-evolution as an effective and scalable paradigm for video understanding and reasoning.

Shiqi Huang, Ziyue Wang, Zhongrong Zuo, Han Qiu, Qi She, Bihan Wen• 2026

Related benchmarks

TaskDatasetResultRank
Temporal Video UnderstandingTempCompass
Accuracy74.3
141
Video ReasoningVideoMMMU
Accuracy50
89
Video ReasoningVideo-Holmes
Accuracy36.6
83
General Video UnderstandingVideo-MME
Accuracy53.8
82
Video UnderstandingMMVU
Accuracy67
76
Video ReasoningVSI-Bench
Accuracy43.1
51
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