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Multi-view Based Pose Alignment Method for Person Re-identification

机译:基于多视角的姿态重新对准人识别方法

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This paper proposes a Multi-View based Pose Alignment (MVPA) method for person re-identification (re-id). Most recent methods solve re-id as a matching process based on single image. However, when poses vary or viewpoints change, the performance seriously deteriorates. This paper aims to learn a representation insensitive to view and pose. Specifically, we establish a set of Multi-view based Person Pose Templates (MPPT) and propose a Pose-Guided Person image Generation (iPG~2) model to synthesize multi-view and uniform-pose based images. The representation learned from multi-view images can significantly enhances the accuracy of re-id. We evaluate our method on two popular datasets, i.e., Market-1501 and DukeMTMC-reID. The results show that our framework promotes the performance of re-id a lot and surpass other methods.
机译:本文提出了一种基于多视图的姿势对齐(MVPA)方法来进行人的重新识别(re-id)。最新方法将re-id解决为基于单个图像的匹配过程。但是,当姿势变化或视点改变时,性能会严重下降。本文旨在学习一种对视图和姿势不敏感的表示形式。具体来说,我们建立了一组基于多视图的人姿势模板(MPPT),并提出了一种基于姿势的人图像生成(iPG〜2)模型来合成基于多视图和统一姿势的图像。从多视图图像中学习的表示形式可以显着提高re-id的准确性。我们在两个流行的数据集Market-1501和DukeMTMC-reID上评估了我们的方法。结果表明,我们的框架大大提高了re-id的性能,并超越了其他方法。

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