基于稀疏表示的级联人脸识别系统

A. Baig, R. Nawaz
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引用次数: 2

摘要

人脸识别被许多人认为是生物识别领域的关键领域之一。与其他方式相比,它有一些非常显著的优势,包括普遍可接受性和隐蔽获取。另一方面,它在姿势和表情变化等方面提供了一些非常独特的挑战。这些挑战使得开发一个提供非常高准确率的实时面部识别系统变得困难。尽管如此,研究人员还是做了一些尝试来提供一个强大的实时面部识别系统。也许,最好和最新的尝试是通过稀疏表示来表示整个系统。在本文中,我们利用基于级联分类器的方法扩展了这项工作。结果表明,该方法在保持实时性的同时,提高了精度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Cascaded face recognition system via sparse representation
Facial recognition is considered by many to be one of the key areas in the field of biometrics. It has a few very significant advantages over other modalities including universal acceptability and covert acqusition. On the flip side, it provides some very unique challenges in terms of pose and expression variation etc. These challenges make it difficult to develop a real time facial recognition system that provides a very high accuracy rate. Nontheless a few attempts have been made by researchers to provide a robust real time facial recognition system. Probably, the best and most recent attempt is to represent the whole system via sparse representation. In this paper we extend this work by utilizing the cascaded classifier based approach. The results show that the proposed approach provides improved accuracy while still performing in real time.
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