基于adaboost的深度级联人脸检测算法

Wen Yu, Jiapeng Xiu, Chen Liu, Zhengqiu Yang
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引用次数: 4

摘要

本文提出了一种基于AdaBoost算法结合Haar分类器深度级联的OpenCV人脸检测算法。为了解决AdaBoost算法由于缺乏深度级联分类而导致训练深度不够和Haar分类器不准确的问题。在人脸特征提取之前,采用AdaBoost算法对人脸样本进行训练,训练强分类器。然后利用OpenCV Haar分类器对这些强分类器进行深度分类,相当于级联AdaBoost算法,利用高效率的特征矩阵和积分图像方法来加快Haar类图像特征值的提取速度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A depth cascade face detection algorithm based on adaboost
In this paper, a face detection algorithm based on AdaBoost algorithm combined with Haar classifier depth cascade about OpenCV is proposed. In order to solve the problem that the training depth of AdaBoost algorithm is not enough and the Haar classifier is not accurate because of the lack of depth cascade classification. Before the face feature extraction, AdaBoost algorithm is used to train the face samples to train the strong classifier. Then using OpenCV Haar classifier to depth classification for these strong classifier, it equal to cascade the AdaBoost algorithm, using high efficiency characteristic matrix and integral image method to accelerate the extraction rate of image feature values of the Haar-like.
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