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2D-human face recognition using SIFT and SURF descriptors of face's feature regions

机译:2D-人类脸部识别使用脸部特征区域的筛选和冲浪描述符

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摘要

Face recognition is the process of identifying people through facial images. It has become vital for security and surveillance applications and required everywhere including institutions, organizations, offices, and social places. There are a number of challenges faced in face recognition which includes face pose, age, gender, illumination, and other variable condition. Another challenge is that the database size for these applications is usually small. So, training and recognition become difficult. Face recognition methods can be divided into two major categories, appearance-based method and feature-based method. In this paper, the authors have presented the feature-based method for 2D face images. speeded up robust features (SURF) and scale-invariant feature transform (SIFT) are used for feature extraction. Five public datasets, namely Yale2B, Face 94, M2VTS, ORL, and FERET, are used for experimental work. Various combinations of SIFT and SURF features with two classification techniques, namely decision tree and random forest, have experimented in this work. A maximum recognition accuracy of 99.7% has been reported by the authors with a combination of SIFT (64-components) and SURF (32-components).
机译:人脸识别是通过面部图像识别人的过程。安全性和监测应用程序对安全和监督申请至关重要,包括机构,组织,办公室和社会地方在内的任何地方。面对面识别面临着许多挑战,包括面向姿势,年龄,性别,照明和其他可变条件。另一个挑战是这些应用程序的数据库大小通常很小。所以,培训和识别变得困难。面部识别方法可分为两个主要类别,基于外观的方法和基于特征的方法。本文介绍了基于特征的2D面部图像的方法。加速强大的功能(冲浪)和比例不变的功能变换(SIFT)用于特征提取。五个公共数据集,即Yale2B,Face 94,M2VTS,ORL和FERET用于实验工作。具有两个分类技术,即决策树和随机森林的各种组合,即决策树和随机林,在这项工作中进行了实验。作者的最大识别精度为99.7%,具有SIFT(64分量)和冲浪(32组件)的组合。

著录项

  • 来源
    《The Visual Computer》 |2021年第3期|447-456|共10页
  • 作者单位

    Gokaraju Rangaraju Inst Engn & Technol Dept Comp Sci & Engn Hyderabad Telangana India;

    New Jersey City Univ Dept Profess Secur Studies Cyber Secur Jersey City NJ USA;

    Maharaja Ranjit Singh Punjab Tech Univ Dept Computat Sci Bathinda Punjab India;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Face recognition; SURF; SIFT; Decision tree; Random forest;

    机译:面部识别;冲浪;筛选;决策树;随机森林;
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