综述了人脸检测的研究进展,包括神经网络和基于Haar特征的级联分类器在人脸检测中的应用

Ali Sharifara, M. Rahim, Yasaman Anisi
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引用次数: 80

摘要

人脸检测是近年来计算机视觉和模式识别领域研究应用的一个热点。它在监控系统中也起着至关重要的作用,这是人脸识别系统的第一步。人脸的高度变化使得人脸检测成为计算机视觉中的一个复杂问题。人脸检测系统旨在降低误报率,提高在复杂背景图像中人脸检测的准确率。本文主要介绍了基于特征、基于外观、基于知识和模板匹配的人脸检测方法的最新进展。同时,研究了类哈尔特征与神经网络结合应用的效果。最后,我们还讨论了如何进一步开展这项工作。
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A general review of human face detection including a study of neural networks and Haar feature-based cascade classifier in face detection
Face detection is an interesting area in research application of computer vision and pattern recognition, especially during the past several years. It is also plays a vital role in surveillance systems which is the first steps in face recognition systems. The high degree of variation in the appearance of human faces causes the face detection as a complex problem in computer vision. The face detection systems aimed to decrease false positive rate and increase the accuracy of detecting face especially in complex background images. The main aim of this paper is to present an up-to-date review of face detection methods including feature-based, appearance-based, knowledge-based and template matching. Also, the study presents the effect of applying Haar-like features along with neural networks. We also conclude this paper with some discussions on how the work can be taken further.
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