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Design of a morphological moving object signature and application to human identification

机译:形态学运动目标签名的设计及其在人体识别中的应用

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Many computer vision systems try to infer semantic information about a video scene content by looking at the time series of the silhouettes of the moving objects. This paper proposes a new inter-frame feature set (signature) based on piecewise surfacic descriptions of binary silhouettes. It captures the dynamics of moving objects and compacts it into a robust set of features suitable for classification. To assess its ability to represent motion information, we use it to build a complete gait recognition algorithm that we test on a database of 21 different subjects. To highlight the efficiency of our signature, we use frontal views instead of side views of persons, which is less discussed in literature and is considered to be harder as the movement of legs is not visible. In that context, the high recognition rates obtained (over 95% of correct identifications) proves that our signature is appropriate to describe moving objects.
机译:许多计算机视觉系统试图通过查看运动对象的轮廓的时间序列来推断有关视频场景内容的语义信息。本文基于二进制轮廓的分段表面描述,提出了一种新的帧间特征集(签名)。它捕获移动物体的动态并将其压缩为一组适合分类的强大功能。为了评估其表示运动信息的能力,我们使用它来构建完整的步态识别算法,并在包含21个不同主题的数据库中进行测试。为了突出我们签名的效率,我们使用正视图而不是人的侧视图,这在文献中很少讨论,并且由于看不见腿的运动而被认为更难。在这种情况下,获得的高识别率(正确识别的95%以上)证明我们的签名适合描述运动物体。

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