Person Re-identification Using Haar-based and DCD-based Signature

Sławomir Bąk, E. Corvée, F. Brémond, M. Thonnat
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引用次数: 190

Abstract

In many surveillance systems there is a requirement todetermine whether a given person of interest has alreadybeen observed over a network of cameras. This paperpresents two approaches for this person re-identificationproblem. In general the human appearance obtained in onecamera is usually different from the ones obtained in anothercamera. In order to re-identify people the human signatureshould handle difference in illumination, pose andcamera parameters. Our appearance models are based onhaar-like features and dominant color descriptors. The AdaBoostscheme is applied to both descriptors to achieve themost invariant and discriminative signature. The methodsare evaluated using benchmark video sequences with differentcamera views where people are automatically detectedusing Histograms of Oriented Gradients (HOG). The reidentificationperformance is presented using the cumulativematching characteristic (CMC) curve.
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使用基于haar和基于cd的签名重新识别人员
在许多监视系统中,需要确定是否已经通过摄像机网络观察到某个特定的感兴趣的人。本文针对这一问题提出了两种解决方法。一般来说,在一台摄像机中获得的人的外表通常与在另一台摄像机中获得的人的外表不同。为了重新识别人,人的签名应该处理光照、姿势和相机参数的差异。我们的外观模型是基于哈尔特征和主色描述符。将AdaBoostscheme应用于这两个描述符,以实现最不变性和最判别性签名。使用具有不同摄像机视图的基准视频序列对方法进行了评估,其中使用定向梯度直方图(HOG)自动检测人员。利用累积匹配特性(CMC)曲线描述了再识别性能。
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