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A hierarchical feature fusion framework for adaptive visual tracking

机译:用于自适应视觉跟踪的分层特征融合框架

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摘要

A Hierarchical Model Fusion (HMF) framework for object tracking in video sequences is presented. The Bayesian tracking equations are extended to account for multiple object models. With these equations as a basis a particle filter algorithm is developed to efficiently cope with the multi-modal distributions emerging from cluttered scenes. The update of each object model takes place hierarchically so that the lower dimensional object models, which are updated first, guide the search in the parameter space of the subsequent object models to relevant regions thus reducing the computational complexity. A method for object model adaptation is also developed. We apply the proposed framework by fusing salient points, blobs, and edges as features and verify experimentally its effectiveness in challenging conditions.
机译:提出了一种用于视频序列中对象跟踪的分层模型融合(HMF)框架。贝叶斯跟踪方程式被扩展以说明多个对象模型。以这些方程为基础,开发了一种粒子滤波算法,以有效应对混乱场景中出现的多峰分布。每个对象模型的更新是分层进行的,因此首先更新的低维对象模型将后续对象模型的参数空间中的搜索引导到相关区域,从而降低了计算复杂性。还开发了一种用于对象模型适配的方法。我们通过融合突出点,斑点和边缘作为特征来应用所提出的框架,并通过实验验证其在挑战性条件下的有效性。

著录项

  • 来源
    《Image and Vision Computing》 |2011年第9期|p.594-606|共13页
  • 作者单位

    NCSR Demokritos, Institute for Informatics and Telecommunications, Computational Intelligence Laboratory, 15310, Aghia Paraskevi, Athens, Greece,University of Athens, Department of Informatics, 15771 Athens, Greece;

    NCSR Demokritos, Institute for Informatics and Telecommunications, Computational Intelligence Laboratory, 15310, Aghia Paraskevi, Athens, Greece;

    NCSR Demokritos, Institute for Informatics and Telecommunications, Computational Intelligence Laboratory, 15310, Aghia Paraskevi, Athens, Greece;

    University of Athens, Department of Informatics, 15771 Athens, Greece;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    visual tracking; particle filter; sequential monte-carlo;

    机译:视觉跟踪;颗粒过滤器顺序蒙特卡洛;

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