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Person Re-identification by Unsupervised Color Spatial Pyramid Matching

机译:通过无监督颜色空间金字塔匹配对人员进行重新识别

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In this paper, we propose a novel unsupervised color spatial pyramid matching (UCSPM) approach for person re-identification. It is well motivated by our study on spatial pyramid to build effective structural object representation for person re-identification. Through the combination of illumination invariance color feature, UCSPM can well cope with the variations of viewpoint, illumination and pose. First, local superpixel regions are divided to accurately represent the color feature. Second, human body are divided into increasing fine vertical sub-regions to construct the spatial pyramid matching scheme. Third, the color feature and its spatial distribution information are used in a pyramid match kernel for calculating the similarity between person and person. The effectiveness of our approach is validated on the VIPeR dataset and CUHK campus dataset. Comparing with other approaches, our UCSPM improves the best unsupervised rank-1 matching rate on the VIPeR dataset by 3.08% with only one kind of feature-color.
机译:在本文中,我们提出了一种新颖的无监督色彩空间金字塔匹配(UCSPM)方法,用于人员重新识别。我们对空间金字塔的研究很好地激发了建立有效的结构对象表示以进行人的重新识别的动机。通过结合照度不变颜色特征,UCSPM可以很好地应对视点,照度和姿势的变化。首先,将局部超像素区域划分以准确表示颜色特征。其次,将人体分为逐渐增加的精细垂直子区域,以构建空间金字塔匹配方案。第三,在金字塔匹配核中使用颜色特征及其空间分布信息来计算人与人之间的相似度。我们的方法的有效性在VIPeR数据集和中大校园数据集上得到了验证。与其他方法相比,我们的UCSPM仅用一种特征颜色就将VIPeR数据集上的最佳无监督等级1匹配率提高了3.08%。

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