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An integrative approach to face and expression recognition from three-dimensional scans.

机译:一种从三维扫描中识别人脸和表情的综合方法。

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摘要

Biometrics is afield of study which pursues the association of a person's identity with his/her physiological or behavioral characteristics.; As one aspect of biometrics, face recognition has attracted special attention because it is a natural and noninvasive means to identify individuals. Most of the previous studies in face recognition are based on two-dimensional (2D) intensity images. Face recognition based on 2D intensity images, however, is sensitive to environment illumination and subject orientation changes, affecting the recognition results. With the development of three-dimensional (3D) scanners, 3D face recognition is being explored as an alternative to the traditional 2D methods for face recognition.; This dissertation proposes a method in which the expression and the identity of a face are determined in an integrated fashion from 3D scans. In this framework, there is a front end expression recognition module which sorts the incoming 3D face according to the expression detected in the 3D scans. Then, scans with neutral expressions are processed by a corresponding 3D neutral face recognition module. Alternatively, if a scan displays a non-neutral expression, e.g., a smiling expression, it will be routed to an appropriate specialized recognition module for smiling face recognition.; The expression recognition method proposed in this dissertation is innovative in that it uses information from 3D scans to perform the classification task. A smiling face recognition module was developed, based on the statistical modeling of the variance between faces with neutral expression and faces with a smiling expression.; The proposed expression and face recognition framework was tested with a database containing 120 3D scans from 30 subjects (Half are neutral faces and half are smiling faces). It is shown that the proposed framework achieves a recognition rate 10% higher than attempting the identification with only the neutral face recognition module.
机译:生物识别是一个研究领域,致力于将一个人的身份与其生理或行为特征联系起来。作为生物识别技术的一个方面,人脸识别引起了特别的注意,因为它是识别个人的自然且非侵入性的手段。以往的大多数人脸识别研究都是基于二维(2D)强度图像。但是,基于2D强度图像的面部识别对环境照明和对象方向变化敏感,从而影响识别结果。随着三维(3D)扫描仪的发展,人们正在探索3D人脸识别技术,以替代传统的2D人脸识别方法。本文提出了一种方法,其中从3D扫描中以整合的方式确定面部的表情和身份。在此框架中,有一个前端表情识别模块,可以根据在3D扫描中检测到的表情对传入的3D人脸进行排序。然后,具有中性表情的扫描由相应的3D中性人脸识别模块处理。可选地,如果扫描显示非中性表情,例如微笑表情,则将其路由到适当的专门识别模块以进行微笑脸部识别。本文提出的表情识别方法具有创新性,它利用来自3D扫描的信息来执行分类任务。基于具有中性表情的面部和具有微笑表情的面部之间的方差的统计模型,开发了微笑面部识别模块。拟议的表情和面部识别框架已通过包含30个对象的120次3D扫描的数据库进行了测试(一半为中性面孔,一半为笑脸)。结果表明,与仅采用中性脸部识别模块进行识别相比,所提出的框架的识别率高出10%。

著录项

  • 作者

    Li, Chao.;

  • 作者单位

    Florida International University.;

  • 授予单位 Florida International University.;
  • 学科 Engineering Electronics and Electrical.; Computer Science.
  • 学位 Ph.D.
  • 年度 2006
  • 页码 155 p.
  • 总页数 155
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 无线电电子学、电信技术;自动化技术、计算机技术;
  • 关键词

  • 入库时间 2022-08-17 11:39:50

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