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Mask-guided dual attention-aware network for visible-infrared person re-identification

机译:用于可见红外人重新识别的屏蔽引导的双重关注网络

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摘要

Given a person of interest in RGB images, Visible-Infrared Person Re-identification (VI-REID) aims at searching for this person in infrared images. It faces a number of challenges due to large cross-modality discrepancies and intra-modality variations caused by illuminations, human poses, viewpoints and cluttered backgrounds, etc. This paper proposes a Mask-guided Dual Attention-aware Network (MDAN) for VI-REID. MDAN consists of two individual networks for two different modalities respectively, whose feature representations are driven by mask-guided attention-aware information and multi-loss constraints. Specifically, we first utilize masked image as a supplement to the original image, so as to enhance the contour and appearance information which are extremely important clues for matching the features of pedestrians from visible and infrared modalities. Second, a Residual Attention Module (RAM) is put forward to capture fine-grained features and subtle differences among pedestrians, so as to learn more discriminative features of pedestrians from heterogeneous modalities by adaptively calibrating feature responses along channel and spatial dimensions. Third, features from two individual streams of two modalities will be directly aggregated to form a cross-modality identity representation. Extensive experiments demonstrate that the proposed approach effectively improves the performance of VI-REID task and remarkably outperforms the state-of-the-art methods.
机译:鉴于RGB图像的兴趣人员,可见红外人重新识别(VI-REID)旨在搜索红外图像中的人。由于发光,人类姿势,观点和杂乱的背景引起的大横向模型差异和模态变化,它面临了许多挑战。本文提出了一种掩模引导的双重注意网络(MDAN),用于VI-里德。 MDAN分别由两个不同方式的两个单独网络组成,其特征表示由掩码引导的注意信息和多损害约束驱动。具体地,我们首先利用掩蔽图像作为对原始图像的补充的补充,以增强轮廓和外观信息,这些信息是用于匹配来自可见和红外模式的行人的特征的极其重要的线索。其次,剩余注意力模块(RAM)被提出以捕获行人的细粒度特征和微妙的差异,从而通过沿通道和空间尺寸自适应地校准特征​​响应来了解从异质模型的行人的更多辨别特征。第三,两个单独的两个方式的特征将直接汇总以形成跨模式标识表示。广泛的实验表明,所提出的方法有效提高了VI-REID任务的性能,并显着优于最先进的方法。

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