基于adaboost的低虚警彩色图像人脸检测

S. Inalou, S. Kasaei
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引用次数: 19

摘要

本文提出了一种将AdaBoost算法与肤色信息和支持向量机(SVM)相结合的人脸检测方法。首先,采用基于AdaBoost的级联分类器对图像中的人脸进行检测。由于噪声和光照的变化,一些非人脸也可能被检测到,因此我们在YCbCr颜色空间中使用肤色模型来去除一些检测到的非人脸。最后,我们利用支持向量机更准确地检测人脸。实验结果表明,该方法在检测非人脸数量方面优于基本AdaBoost方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
AdaBoost-Based Face Detection in Color Images with Low False Alarm
In this paper, we have proposed a new face detection method which combines the AdaBoost algorithm with skin color information and support vector machine (SVM). First, a cascade classifier based on AdaBoost is used to detect faces in images. Due to noise and illumination changes some nonfaces might be detected too, therefore we have used a skin color model in the YCbCr color space to remove some of the detected nonfaces. Finally, we have utilized SVM to detect faces more accurately. Experimental results show that the performance of the proposed method is higher than the basic AdaBoost in the sense of detecting fewer nonfaces.
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