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Salient Color Names for Person Re-identification

机译:用于人员重新识别的显着颜色名称

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Color naming, which relates colors with color names, can help people with a semantic analysis of images in many computer vision applications. In this paper, we propose a novel salient color names based color descriptor (SCNCD) to describe colors. SCNCD utilizes salient color names to guarantee that a higher probability will be assigned to the color name which is nearer to the color. Based on SCNCD, color distributions over color names in different color spaces are then obtained and fused to generate a feature representation. Moreover, the effect of background information is employed and analyzed for person re-identification. With a simple metric learning method, the proposed approach outperforms the state-of-the-art performance (without user's feedback optimization) on two challenging datasets (VIPeR and PRID 450S). More importantly, the proposed feature can be obtained very fast if we compute SCNCD of each color in advance.
机译:颜色命名将颜色与颜色名称相关联,可以帮助人们在许多计算机视觉应用程序中对图像进行语义分析。在本文中,我们提出了一种新颖的基于显着颜色名称的颜色描述符(SCNCD)来描述颜色。 SCNCD利用显着的颜色名称来确保将更高的概率分配给更接近该颜色的颜色名称。基于SCNCD,然后获得不同颜色空间中颜色名称上的颜色分布,并将其融合以生成特征表示。此外,采用背景信息的效果并对其进行分析以进行人员重新识别。通过简单的度量学习方法,在两个具有挑战性的数据集(VIPeR和PRID 450S)上,所提出的方法优于最新的性能(无用户反馈优化)。更重要的是,如果我们预先计算每种颜色的SCNCD,则可以非常快地获得所建议的功能。

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