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Color Invariants for Person Reidentification

机译:用于人识别的颜色不变式

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摘要

We revisit the problem of specific object recognition using color distributions. In some applications—such as specific person identification—it is highly likely that the color distributions will be multimodal and hence contain a special structure. Although the color distribution changes under different lighting conditions, some aspects of its structure turn out to be invariants. We refer to this structure as an intradistribution structure, and show that it is invariant under a wide range of imaging conditions while being discriminative enough to be practical. Our signature uses shape context descriptors to represent the intradistribution structure. Assuming the widely used diagonal model, we validate that our signature is invariant under certain illumination changes. Experimentally, we use color information as the only cue to obtain good recognition performance on publicly available databases covering both indoor and outdoor conditions. Combining our approach with the complementary covariance descriptor, we demonstrate results exceeding the state-of-the-art performance on the challenging VIPeR and CAVIAR4REID databases.
机译:我们重新讨论使用颜色分布进行特定对象识别的问题。在某些应用程序中(例如特定的人员身份识别),颜色分布很有可能是多峰的,因此包含特殊的结构。尽管颜色分布在不同的光照条件下会发生变化,但其结构的某些方面却是不变的。我们将此结构称为内部分布结构,并表明它在广泛的成像条件下都是不变的,同时具有足够的判别力以实用。我们的签名使用形状上下文描述符来表示内部分发结构。假设使用了广泛使用的对角线模型,我们验证了在某些光照变化下我们的签名不变。在实验上,我们使用颜色信息作为唯一提示,以便在覆盖室内和室外条件的公共数据库上获得良好的识别性能。将我们的方法与互补协方差描述符相结合,我们证明了在具有挑战性的VIPeR和CAVIAR4REID数据库上,结果超过了最新性能。

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