Papers › TALL: Temporal Activity Localization via Language Query

TALL: Temporal Activity Localization via Language Query

5 May 2017ICCV 2017 10arXiv:1705.02101archive 2025-07-28

Jiyang Gao, Chen Sun, Zhenheng Yang, Ram Nevatia

This paper focuses on temporal localization of actions in untrimmed videos. Existing methods typically train classifiers for a pre-defined list of actions and apply them in a sliding window fashion. However, activities in the wild consist of a wide combination of actors, actions and objects; it is difficult to design a proper activity list that meets users' needs. We propose to localize activities by natural language queries. Temporal Activity Localization via Language (TALL) is challenging as it requires: (1) suitable design of text and video representations to allow cross-modal matching of actions and language queries; (2) ability to locate actions accurately given features from sliding windows of limited granularity. We propose a novel Cross-modal Temporal Regression Localizer (CTRL) to jointly model text query and video clips, output alignment scores and action boundary regression results for candidate clips. For evaluation, we adopt TaCoS dataset, and build a new dataset for this task on top of Charades by adding sentence temporal annotations, called Charades-STA. We also build complex sentence queries in Charades-STA for test. Experimental results show that CTRL outperforms previous methods significantly on both datasets.

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jiyanggao/TALL officialmentioned in papermentioned on GitHubtf report
WuJie1010/TSP-PRL mentioned on GitHubpytorch report
WuJie1010/Temporally-language-grounding mentioned on GitHubpytorch report
mrsalehi/ground-sentence-video mentioned on GitHubpytorch report
runzhouge/MAC mentioned on GitHubtfMIT report
tencentarc/umt mentioned on GitHubpytorchNOASSERTION report
yeliudev/R2-Tuning mentioned on GitHubpytorchBSD-3-Clause report
kingcong/tall mindspore report

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Natural Language QueriesSentenceTemporal Localizationregression

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Charades-STA

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