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Real-time methods for face recognition.

机译:面部识别的实时方法。

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摘要

Identification of individuals on the basis of facial features is the most natural method of distinguishing one individual from another. Automating such a process, based upon quantifiable measures, is of great interest in a variety of applications, such as passport identification and automatic teller machine verification. The most crucial aspect of such applications is their tolerance with respect to variations in facial expressions and the noise introduced by the operating environment.;In this thesis, various face recognition methods are evaluated under conditions of real-time response, varying operating factors, and implementation feasibility. The approaches are based on histogram mapping, wavelet transform, Karhunen and Loeve transform, and optical correlation techniques.;A brief review of the basic concepts in optics is first presented. This is followed by a detailed review of optical methods in pattern recognition. A comprehensive background of algorithmic approaches for face recognition is described. A detailed analysis of the photobook system, which is based on the Karhunen and Loeve transform (KLT), is presented. It is argued that, even though the KLT possesses many useful attributes in image processing applications, the performance of KLT face recognition systems is based entirely upon the initial training set. A method for choosing the proper training set is presented. Novel statistical methods that exploit the stationary behaviour of the operating environment are introduced. It is shown that under the condition that control may be exercised on the operating environment, these methods provide a satisfactory result in real-time. The application of histogram, moment, and 2-D discrete wavelet transforms in statistical methods is described. A novel optical correlation based system is presented. It is shown that such a system tolerates changes in facial expressions and can operate under real time constraints.
机译:根据面部特征识别个人是区分一个人和另一个人的最自然的方法。基于可量化的度量来使这样的过程自动化在诸如护照识别和自动柜员机验证之类的各种应用中引起了极大的兴趣。此类应用程序最关键的方面是其对面部表情变化和操作环境所引入的噪声的容忍度。;本论文在实时响应,变化的操作因素和条件下对各种面部识别方法进行了评估。实施可行性。该方法基于直方图映射,小波变换,Karhunen和Loeve变换以及光学相关技术。;首先简要介绍了光学的基本概念。接下来是对模式识别中光学方法的详细介绍。描述了用于面部识别的算法方法的全面背景。介绍了基于Karhunen和Loeve变换(KLT)的照相簿系统的详细分析。有人认为,即使KLT在图像处理应用程序中具有许多有用的属性,KLT人脸识别系统的性能也完全基于初始训练集。提出了一种选择合适的训练集的方法。介绍了利用操作环境的静态行为的新型统计方法。结果表明,在可以对操作环境进行控制的条件下,这些方法实时提供令人满意的结果。描述了直方图,矩和二维离散小波变换在统计方法中的应用。提出了一种新颖的基于光学相关性的系统。结果表明,这种系统可以容忍面部表情的变化,并且可以在实时约束下运行。

著录项

  • 作者

    David, Afshin.;

  • 作者单位

    University of Ottawa (Canada).;

  • 授予单位 University of Ottawa (Canada).;
  • 学科 Engineering Electronics and Electrical.
  • 学位 M.A.Sc.
  • 年度 1996
  • 页码 135 p.
  • 总页数 135
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:49:13

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