Attention guided by human keypoint for infrared-visible person re-identification
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1.School of Electronic and Information Engineering, Changchun University of Science and Technology, Changchun 130022, China;2.College of Electronic Science and Engineering, Jilin University,Changchun 130012,China

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TP391.4

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    Abstract:

    Person re-identification is the task of retrieving a specified target from multiple data sources. The difference between infrared (IR) and visible light (VIS) images is large, and cross-modal retrieval of visible light and infrared images is one of the main challenges. In order to have the same retrieval ability even in low light or at night, the judgment needs to be achieved by combining cross-modal modeling of infrared images. In this paper, we propose a new method of guiding attention through human keypoints, where global features are split into local features by keypoint guidance, and then the original model is retrained with the generated local masks to strengthen the attention to different local information. Using this method, the model can better understand and utilize the key regions in the image, thus improving the accuracy of the person re-identification task.

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YU Peng, TIAN Xiao-Jian, QI Nan, PIAO Yan. Attention guided by human keypoint for infrared-visible person re-identification[J]. Journal of Infrared and Millimeter Waves,2024,43(6):871~878

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History
  • Received:August 09,2024
  • Revised:November 08,2024
  • Adopted:August 28,2024
  • Online: November 26,2024
  • Published:
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