Motion based retrieval of dynamic objects in videos

Che-Bin Liu, N. Ahuja
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引用次数: 9

Abstract

Most existing video retrieval systems use low-level visual features such as color histogram, shape, texture, or motion. In this paper, we explore the use of higher-level motion representation for video retrieval of dynamic objects. We use three motion representations, which together can retrieve a large variety of motion patterns. Our approach works on top of a tracking unit and assumes that each dynamic object has been tracked and circumscribed in a minimal bounding box in each video frame. We represent the motion attributes of each object in terms of changes in the image context of its circumscribing box. The changes are described via motion templates [4], self-similarity plots [3], and image dynamics [9]. Initially, defined criteria of the retrieval process are interactively refined using relevance feedback from the user. Experimental results demonstrate the use of the proposed motion models in retrieving objects undergoing complex motion.
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视频中基于运动的动态对象检索
大多数现有的视频检索系统使用低级视觉特征,如颜色直方图、形状、纹理或运动。在本文中,我们探讨了在动态对象的视频检索中使用更高级的运动表示。我们使用三种运动表示,它们一起可以检索到各种各样的运动模式。我们的方法在跟踪单元的基础上工作,并假设每个动态对象在每个视频帧中都被跟踪和限定在最小的边界框中。我们表示每个对象的运动属性在其边界框的图像上下文中的变化。这些变化通过运动模板[4]、自相似图[3]和图像动力学[9]来描述。最初,检索过程的定义标准使用来自用户的相关性反馈交互式地改进。实验结果表明,所提出的运动模型可用于检索经过复杂运动的物体。
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