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Gait classification through CNN-based ensemble learning

机译:通过基于CNN的集合学习步态分类

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摘要

Gait is a biological characteristic for video surveillance and many other applications, which can be used to identify individuals at a large distance. In this paper, a gait classification framework based on CNN Ensemble (GCF-CNN) is proposed, which includes three modules: 1) Feature extraction and preprocessing: use random sampling with replacement strategy to generate a serial of training sets from gait silhouette images; 2) Gait models training: construct and train primary CNN classifiers using different hyper-parameters, and train them a secondary classifier to combine them; 3) Gait classification: utilize the trained two-level classifier to achieve gait classification. In addition, the proposed classification framework is evaluated on the CASIA Gait Database and OU-ISIR Gait Database. And it is demonstrated by comprehensive experiments that the proposed classification framework can achieve outstanding performance in correct classification rate with respect to several state-of-the-art methods.
机译:步态是视频监控的生物学特性和许多其他应用,可用于识别大距离的个体。在本文中,提出了一种基于CNN集合(GCF-CNN)的步态分类框架,包括三个模块:1)特征提取和预处理:使用随机采样与替换策略,从步态轮廓图像生成串行训练集; 2)步态模型培训:使用不同的超参数构建和列车初级CNN分类器,并培训辅助分类器来组合它们; 3)步态分类:利用训练有素的两级分类器来实现步态分类。此外,所提出的分类框架是在Casia Gait数据库和OU-ISIR步态数据库上进行评估。通过综合实验证明,拟议的分类框架可以在若干最先进的方法中以正确的分类率实现出色的性能。

著录项

  • 来源
    《Multimedia Tools and Applications 》 |2021年第1期| 1565-1581| 共17页
  • 作者

    Xiuhui Wang; Ke Yan;

  • 作者单位

    Key Laboratory of Electromagnetic Wave Information Technology and Metrology of Zhejiang Province College of Information Engineering China Jiliang University No. 258 Xueyuan Street Hangzhou 310018 China;

    Key Laboratory of Electromagnetic Wave Information Technology and Metrology of Zhejiang Province College of Information Engineering China Jiliang University No. 258 Xueyuan Street Hangzhou 310018 China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Ensemble learning; CNN; Gait recognition;

    机译:合奏学习;CNN;步态认可;

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