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A comparison of global versus local color histograms for object recognition

机译:全局和局部颜色直方图用于对象识别的比较

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Global color distributions have been efficiently used as signatures for object recognition. However, these methods are very sensitive to partial occlusions and to background regions. Our approach is directed to minimize these effects by working with small neighborhoods. We compare global and local color representations on an automatic object recognition system. Local representations significantly outperformed global representations in terms of recognition rates. Local color distributions are a strong constraint when objects consist of distinctive local regions. Eigenspace techniques are applied to detect discriminant local representations and support vector machines are used during the recognition process in order to maximize the recognition rate.
机译:全局颜色分布已被有效地用作对象识别的签名。但是,这些方法对部分遮挡和背景区域非常敏感。我们的方法旨在通过与较小的社区合作来最大程度地减少这些影响。我们在自动物体识别系统上比较全局和局部颜色表示。就识别率而言,本地代表明显优于全球代表。当对象由独特的局部区域组成时,局部颜色分布是一个很强的约束条件。本征空间技术被应用于检测判别式局部表示,并且在识别过程中使用支持向量机以最大化识别率。

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