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REVISOR: Beyond Textual Reflection, Towards Multimodal Introspective Reasoning in Long-Form Video Understanding

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Self-reflection mechanisms that rely on purely text-based rethinking processes perform well in most multimodal tasks. However, when directly applied to long-form video understanding scenarios, they exhibit clear limitations. The fundamental reasons for this lie in two points: (1)long-form video understanding involves richer and more dynamic visual input, meaning rethinking only the text information is insufficient and necessitates a further rethinking process specifically targeting visual information; (2) purely text-based reflection mechanisms lack cross-modal interaction capabilities, preventing them from fully integrating visual information during reflection. Motivated by these insights, we propose REVISOR (REflective VIsual Segment Oriented Reasoning), a novel framework for tool-augmented multimodal reflection. REVISOR enables MLLMs to collaboratively construct introspective reflection processes across textual and visual modalities, significantly enhancing their reasoning capability for long-form video understanding. To ensure that REVISOR can learn to accurately review video segments highly relevant to the question during reinforcement learning, we designed the Dual Attribution Decoupled Reward (DADR) mechanism. Integrated into the GRPO training strategy, this mechanism enforces causal alignment between the model's reasoning and the selected video evidence. Notably, the REVISOR framework significantly enhances long-form video understanding capability of MLLMs without requiring supplementary supervised fine-tuning or external models, achieving impressive results on four benchmarks including VideoMME, LongVideoBench, MLVU, and LVBench.

Jiaze Li, Hao Yin, Wenhui Tan, Jingyang Chen, Boshen Xu, Yuxun Qu, Yijing Chen, Jianzhong Ju, Zhenbo Luo, Jian Luan• 2025

Related benchmarks

TaskDatasetResultRank
Long Video UnderstandingLVBench
Accuracy42
218
Long Video UnderstandingMLVU
Accuracy69.8
205
Long-form Video UnderstandingLongVideoBench
Accuracy57.5
135
Video UnderstandingVideo-MME without subtitles--
108
Long Video UnderstandingVideoMME
Accuracy65.7
89
Video UnderstandingLongVideoBench
Accuracy57.5
56
Temporal GroundingNExTGQA
Recall@0.711.9
20
Temporal Video GroundingCharades-STA
R@1 (IoU=0.7)31.8
7
Temporal Video GroundingCharades-STA
Recall@0.376.5
7
Video UnderstandingVideoMME without subtitles Long
Accuracy56.2
7
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