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Discriminant quaternion local binary pattern embedding for person re-identification through prototype formation and color categorization

机译:判别四元数局部二进制图案嵌入,通过原型形成和颜色分类重新识别人

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摘要

Re-identifying objects is one of the fundamental elements for visual surveillance, in the sense that images of the same object at different time or places should be assigned with the same label. In this work, we propose a new embedding scheme for person re-identification under nonoverlapping target cameras. Inspired by the prototype approach derived from cognition field, we propose to use prototype images as a reference set to achieve a discriminative representation of a person's appearance. To enhance the discrimination between different persons, we learn a linear subspace in a training phase during which person correspondences are assumed to be known. The robustness of the algorithm against results that are counterintuitive to a human operator is improved by proposing the Color Categorization procedure. By doing so, our method becomes very flexible when tracing a person in a camera network even under large illumination changes. The proposed framework was tested on VIPeR, the most challenging dataset for person re-identification. Results confirm that our method outperforms the state of the art techniques.
机译:重新标识对象是视觉监视的基本要素之一,在某种意义上,应该在同一时间或地点为同一对象的图像分配相同的标签。在这项工作中,我们提出了一种新的嵌入方案,用于非重叠目标相机下的人员重新识别。受从认知领域衍生的原型方法的启发,我们建议使用原型图像作为参考集,以实现对人的外貌的区分性表示。为了增强不同人之间的区别,我们在训练阶段学习线性子空间,在此阶段假定人们的对应关系已知。通过提出颜色分类程序,可以提高算法针对与操作员违反直觉的结果的鲁棒性。这样,即使在光照变化较大的情况下,在摄像机网络中追踪人时,我们的方法也变得非常灵活。拟议的框架已在VIPeR上进行了测试,这是人员重新识别最具挑战性的数据集。结果证实我们的方法优于最新技术。

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