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Datasets and Recipes for Video Temporal Grounding via Reinforcement Learning

About

Video Temporal Grounding (VTG) aims to localize relevant temporal segments in videos given natural language queries. Despite recent progress with large vision-language models (LVLMs) and instruction-tuning, existing approaches often suffer from limited temporal awareness and poor generalization. In this work, we introduce a two-stage training framework that integrates supervised fine-tuning with reinforcement learning (RL) to improve both the accuracy and robustness of VTG models. Our approach first leverages high-quality curated cold start data for SFT initialization, followed by difficulty-controlled RL to further enhance temporal localization and reasoning abilities. Comprehensive experiments on multiple VTG benchmarks demonstrate that our method consistently outperforms existing models, particularly in challenging and open-domain scenarios. We conduct an in-depth analysis of training strategies and dataset curation, highlighting the importance of both high-quality cold start data and difficulty-controlled RL. To facilitate further research and industrial adoption, we release all intermediate datasets, models, and code to the community.

Ruizhe Chen, Zhiting Fan, Tianze Luo, Heqing Zou, Zhaopeng Feng, Guiyang Xie, Hansheng Zhang, Zhuochen Wang, Zuozhu Liu, Huaijian Zhang• 2025

Related benchmarks

TaskDatasetResultRank
Video GroundingCharades-STA
R@1 IoU=0.536.1
113
Video UnderstandingMLVU
M-AVG69.7
54
Video UnderstandingVideo-MME Long
Accuracy (Long, wo Sub)52.7
32
Grounded Video Question AnsweringCG-Bench
mIoU2.43
31
Grounded Video Question AnsweringNExT-GQA (test)
mIoU29.2
24
Video UnderstandingLVBench--
23
Video Event GroundingActivityNet
Recall@0.533.7
17
Temporal Video GroundingActivityNet TimeLens (test)
Recall@0.346.7
17
Temporal Video GroundingQVHighlights TimeLens (test)
Recall @ IoU=0.355.8
17
Temporal Video GroundingCharades-TimeLens (test)
R@0.3 (IoU=0.3)44.5
17
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