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首页> 外文期刊>Journal of Signal and Information Processing >The Study of Multi-Expression Classification Algorithm Based on Adaboost and Mutual Independent Feature
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The Study of Multi-Expression Classification Algorithm Based on Adaboost and Mutual Independent Feature

机译:基于Adaboost和相互独立特征的多表达分类算法研究

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摘要

In the paper conventional Adaboost algorithm is improved and local features of face such as eyes and mouth are separated as mutual independent elements for facial feature extraction and classification. The multi-expression classification algorithm which is based on Adaboost and mutual independent feature is proposed. In order to effectively and quickly train threshold values of weak classifiers of features, Sample of training is carried out simple improvement. We obtain a good classification results through experiments.
机译:本文改进了传统的Adaboost算法,将脸部的局部特征(如眼睛和嘴巴)分离为相互独立的元素,用于面部特征的提取和分类。提出了一种基于Adaboost和相互独立特征的多表达式分类算法。为了有效,快速地训练特征的弱分类器阈值,对训练样本进行了简单的改进。通过实验我们获得了很好的分类结果。

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