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Person Re-identification: What Features Are Important?

机译:人员重新识别:哪些功能很重要?

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State-of-the-art person re-identification methods seek robust person matching through combining various feature types. Often, these features are implicitly assigned with a single vector of global weights, which are assumed to be universally good for all individuals, independent to their different appearances. In this study, we show that certain features play more important role than others under different circumstances. Consequently, we propose a novel unsupervised approach for learning a bottom-up feature importance, so features extracted from different individuals are weighted adaptively driven by their unique and inherent appearance attributes. Extensive experiments on two public datasets demonstrate that attribute-sensitive feature importance facilitates more accurate person matching when it is fused together with global weights obtained using existing methods.
机译:最新的人员重新识别方法通过组合各种特征类型来寻求鲁棒的人员匹配。通常,这些特征会隐含地分配一个全局权重向量,这些向量被认为对所有个体都普遍有益,而与他们的不同外表无关。在这项研究中,我们表明,在不同情况下,某些功能比其他功能更重要。因此,我们提出了一种新颖的无监督方法来学习自下而上的特征重要性,因此,从不同个体提取的特征将通过其独特和固有的外观属性来自适应地加权。在两个公共数据集上进行的大量实验表明,将属性敏感的特征重要性与使用现有方法获得的全局权重融合在一起时,可以促进更精确的人员匹配。

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