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Precise temporal action localization by evolving temporal proposals

  • Haonan Qiu
  • , Yingbin Zheng
  • , Hao Ye*
  • , Yao Lu
  • , Feng Wang
  • , Liang He
  • *此作品的通讯作者
  • East China Normal University
  • CAS - Shanghai Advanced Research Institute
  • University of Washington

科研成果: 书/报告/会议事项章节会议稿件同行评审

摘要

Locating actions in long untrimmed videos has been a challenging problem in video content analysis. The performances of existing action localization approaches remain unsatisfactory in precisely determining the beginning and the end of an action. Imitating the human perception procedure with observations and refinements, we propose a novel three-phase action localization framework. Our framework is embedded with an Actionness Network to generate initial proposals through frame-wise similarity grouping, and then a Refinement Network to conduct boundary adjustment on these proposals. Finally, the refined proposals are sent to a Localization Network for further fine-grained location regression. The whole process can be deemed as multi-stage refinement using a novel non-local pyramid feature under various temporal granularities. We evaluate our framework on THUMOS14 benchmark and obtain a significant improvement over the state-of-the-arts approaches. Specifically, the performance gain is remarkable under precise localization with high IoU thresholds. Our proposed framework achieves mAP@IoU=0.5 of 34.2%.

源语言英语
主期刊名ICMR 2018 - Proceedings of the 2018 ACM International Conference on Multimedia Retrieval
出版商Association for Computing Machinery, Inc
388-396
页数9
ISBN(印刷版)9781450350464
DOI
出版状态已出版 - 5 6月 2018
活动8th ACM International Conference on Multimedia Retrieval, ICMR 2018 - Yokohama, 日本
期限: 11 6月 201814 6月 2018

出版系列

姓名ICMR 2018 - Proceedings of the 2018 ACM International Conference on Multimedia Retrieval

会议

会议8th ACM International Conference on Multimedia Retrieval, ICMR 2018
国家/地区日本
Yokohama
时期11/06/1814/06/18

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