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      Occluded Person Re-identification

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          Abstract

          Person re-identification (re-id) suffers from a serious occlusion problem when applied to crowded public places. In this paper, we propose to retrieve a full-body person image by using a person image with occlusions. This differs significantly from the conventional person re-id problem where it is assumed that person images are detected without any occlusion. We thus call this new problem the occluded person re-identitification. To address this new problem, we propose a novel Attention Framework of Person Body (AFPB) based on deep learning, consisting of 1) an Occlusion Simulator (OS) which automatically generates artificial occlusions for full-body person images, and 2) multi-task losses that force the neural network not only to discriminate a person's identity but also to determine whether a sample is from the occluded data distribution or the full-body data distribution. Experiments on a new occluded person re-id dataset and three existing benchmarks modified to include full-body person images and occluded person images show the superiority of the proposed method.

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          Author and article information

          Journal
          08 April 2018
          Article
          1804.02792
          f664da41-a37d-4f92-a019-d4c1017993d7

          http://arxiv.org/licenses/nonexclusive-distrib/1.0/

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          Custom metadata
          6 pages,7 figures,IEEE International Conference of Multimedia and Expo 2018
          cs.CV cs.AI cs.MM

          Computer vision & Pattern recognition,Artificial intelligence,Graphics & Multimedia design

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