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Multi-Task Network for Person Reidentification

신원 확인을 위한 멀티 태스크 네트워크

  • Cao, Zongjing (Division of Computer Science and Engineering, Chonbuk National University) ;
  • Lee, Hyo Jong (Division of Computer Science and Engineering, Chonbuk National University)
  • 조종경 (전북대학교 컴퓨터공학부) ;
  • 이효종 (전북대학교 컴퓨터공학부)
  • Published : 2019.05.10

Abstract

Because of the difference in network structure and loss function, Verification and identification models have their respective advantages and limitations for person reidentification (re-ID). In this work, we propose a multi-task network simultaneously computes the identification loss and verification loss for person reidentification. Given a pair of images as network input, the multi-task network simultaneously outputs the identities of the two images and whether the images belong to the same identity. In experiments, we analyze the major factors affect the accuracy of person reidentification. To address the occlusion problem and improve the generalization ability of reID models, we use the Random Erasing Augmentation (REA) method to preprocess the images. The method can be easily applied to different pre-trained networks, such as ResNet and VGG. The experimental results on the Market1501 datasets show significant and consistent improvements over the state-of-the-art methods.

Keywords