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Partwise bag-of-words-based multi-task learning for human action recognition

机译:基于部分词袋的多任务学习用于人类动作识别

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摘要

Proposed is a human action recognition method by partwise bag-of-words (BoW)-based multi-task learning. The authors present partwise BoW representation and furthermore formulate the action recognition task as a joint multi-task learning problem by transfer learning penalised by a graph structure and sparsity to discover latent correlation and boost performances. A large-scale experiment shows that this method can significantly improve performance over the standard BoW + SVM method. Moreover, the proposed method can achieve competing performances against the state-of-the-art methods for human action recognition in an effective and easy to follow way.
机译:提出了一种基于部分词袋(BoW)的多任务学习的人类动作识别方法。作者提出了部分BoW表示,并通过以图结构和稀疏性为代价的转移学习将动作识别任务表述为联合多任务学习问题,以发现潜在的相关性并提高性能。大规模实验表明,与标准BoW + SVM方法相比,该方法可以显着提高性能。而且,所提出的方法可以以有效且易于遵循的方式与用于人类动作识别的最新方法相抗衡。

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  • 来源
    《Electronics Letters》 |2013年第13期|803-805|共3页
  • 作者单位

    Department of Electronic Engineering, Tianjin University, Tianjin, People's Republic of China;

    Department of Electronic Engineering, Tianjin University, Tianjin, People's Republic of China;

    Key Laboratory of Computer Vision and Systems, Ministry of Education, Tianjin University of Technology, Tianjin, People's Republic of China;

    College of Life Sciences, Tianjin Normal University, Tianjin,People's Republic of China;

    Department of Electronic Engineering, Tianjin University, Tianjin, People's Republic of China;

    Microsoft, Redmond, WA, USA;

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