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Person Re-Identification Net of Spindle Net Fusing Facial Feature

机译:纺锤净熔断面部特征的人重新识别网

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摘要

In the field of person re-identification, the extraction of pedestrian features is mainly focused on the extraction of features from the whole pedestrian or limb torso, and the facial features are less used. The facial features is integrated into the network to enhance pedestrian recognition accuracy rate. By introducing the MTCNN facial extraction network in the framework of person re-identification network Spindle Net, and improves the accuracy of person re-identification by improving the weight of facial features in the overall pedestrian characteristics. The experimental results show that the accuracy of Rank-1 on the CUHK01, CUHK03, VIPeR, PRID, i-LIDS, and 3DPeS data sets is 7% higher than that of Spindle Net.
机译:在人的重新识别领域中,行人特征的提取主要集中在整个行人或肢体躯干中的提取,并且面部特征较少。面部特征集成到网络中,以提高行人识别精度率。通过在人重新识别网络主轴网的框架中引入MTCNN面部提取网络,通过提高整个行人特征中的面部特征的重量来提高人重新识别的准确性。实验结果表明,CUHK01,CUHK03,VIP,PRID,I-LID和3DPES数据集上的RANK-1上的准确性高于主轴网的7%。

著录项

  • 作者

    Dan Wu; Ming Fang; Feiran Fu;

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  • 年度 2019
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  • 原文格式 PDF
  • 正文语种 chi/zho
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