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Video-MTR: Reinforced Multi-Turn Reasoning for Long Video Understanding

About

Long-form video understanding, characterized by long-range temporal dependencies and multiple events, remains a challenge. Existing methods often rely on static reasoning or external visual-language models (VLMs), which face issues like complexity and sub-optimal performance due to the lack of end-to-end training. In this paper, we propose Video-MTR, a reinforced multi-turn reasoning framework designed to enable iterative key video segment selection and question comprehension. Unlike traditional video reasoning pipeline, which generate predictions in a single turn, Video-MTR performs reasoning in multiple turns, selecting video segments progressively based on the evolving understanding of previously processed segments and the current question. This iterative process allows for a more refined and contextually aware analysis of the video. To ensure intermediate reasoning process, we introduce a novel gated bi-level reward system, combining trajectory-level rewards based on answer correctness and turn-level rewards emphasizing frame-query relevance. This system optimizes both video segment selection and question comprehension, eliminating the need for external VLMs and allowing end-to-end training. Extensive experiments on benchmarks like VideoMME, MLVU, and EgoSchema demonstrate that Video-MTR outperforms existing methods in both accuracy and efficiency, advancing the state-of-the-art in long video understanding.

Yuan Xie, Tianshui Chen, Zheng Ge, Lionel Ni• 2025

Related benchmarks

TaskDatasetResultRank
Video UnderstandingVideoMME
Score (Long)51
248
Video Question AnsweringVideoMME
Accuracy59
210
Video Question AnsweringLongVideoBench
Accuracy56.4
180
Video Question AnsweringMLVU
Accuracy48.4
143
Video UnderstandingVideo-MME without subtitles
Overall Score59
89
Video UnderstandingMLVU--
80
Video Question AnsweringMLVU
M-Avg Score59.7
40
Video Question AnsweringLVBench
Overall Score38.6
32
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