Automatic face recognition in a crowded scene using multi layered clutter filtering and independent component analysis

D. Chandrappa, M. Ravishankar
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引用次数: 5

Abstract

The objective of this work is the integration and optimization of an automatic face detection and recognition system for crowded scene. Face detection and recognition has many applications in a variety of fields such as authentication, security, video surveillance and human interaction systems. Identifying faces is quite simple for human beings because it comes naturally but it is not so easy to teach a computer to detect faces in an image and recognize them. In this paper new hybrid approach is proposed for face detection and recognition of faces in a given image, which is fully automated process. Face detection is performed by color segmentation, image segmentation and multi layered clutter filtering. The detected faces are given as input to Independent Component Analysis (ICA), which performs face recognition. The proposed approach has achieved high detection and Recognition rate for faces at cluttered background.
基于多层杂波滤波和独立分量分析的拥挤场景人脸自动识别
本工作的目标是集成和优化一个面向拥挤场景的人脸自动检测与识别系统。人脸检测与识别在身份认证、安防、视频监控、人机交互系统等领域有着广泛的应用。识别人脸对人类来说很简单,因为这是自然而然的事情,但教计算机检测图像中的人脸并识别它们就不那么容易了。本文提出了一种新的混合方法,用于人脸检测和识别给定图像中的人脸,这是一个完全自动化的过程。人脸检测主要通过颜色分割、图像分割和多层杂波滤波来实现。将检测到的人脸作为独立分量分析(ICA)的输入,进行人脸识别。该方法对杂乱背景下的人脸实现了较高的检测和识别率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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