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Elastic face recognizer : invariant face recognition based on elastic graph matching model

机译:弹性人脸识别器:基于弹性图匹配模型的不变人脸识别

摘要

Human faces are difficult to interpret because they are highly variable. Over the last few decades, various techniques have been proposed for computer recognition of human faces. In this paper, we introduce an Elastic Graph Dynamic Link Model to automate the process of facial recognition. It is integrated with the Active Contour Model to provide an effective and efficient means of facial contour extraction and recognition. A portrait gallery of 100 distinct facial images is used for network training. Experimental results are presented for a database of 1,020 tested face images, which were obtained under conditions of widely varying facial expressions, viewing perspectives and image sizes. An overall average correct recognition rate of over 86% is attained.
机译:由于人脸变化多端,因此难以解释。在过去的几十年中,已经提出了各种技术来计算机识别人脸。在本文中,我们介绍了一种弹性图动态链接模型来自动执行面部识别过程。它与Active Contour模型集成在一起,可提供有效而高效的面部轮廓提取和识别方法。一个包含100个不同面部图像的肖像库用于网络训练。实验结果是针对1,020个测试过的面部图像的数据库提供的,这些数据库是在面部表情,观看视角和图像尺寸变化很大的条件下获得的。总体平均正确识别率超过86%。

著录项

  • 作者

    Lee RST;

  • 作者单位
  • 年度 2002
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类

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