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首页> 外文期刊>Journal of medical systems >Luminance sticker based facial expression recognition using discrete wavelet transform for physically disabled persons.
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Luminance sticker based facial expression recognition using discrete wavelet transform for physically disabled persons.

机译:使用离散小波变换的残障人士基于亮度标签的面部表情识别。

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摘要

Developing tools to assist physically disabled and immobilized people through facial expression is a challenging area of research and has attracted many researchers recently. In this paper, luminance stickers based facial expression recognition is proposed. Recognition of facial expression is carried out by employing Discrete Wavelet Transform (DWT) as a feature extraction method. Different wavelet families with their different orders (db1 to db20, Coif1 to Coif 5 and Sym2 to Sym8) are utilized to investigate their performance in recognizing facial expression and to evaluate their computational time. Standard deviation is computed for the coefficients of first level of wavelet decomposition for every order of wavelet family. This standard deviation is used to form a set of feature vectors for classification. In this study, conventional validation and cross validation are performed to evaluate the efficiency of the suggested feature vectors. Three different classifiers namely Artificial Neural Network (ANN), k-Nearest Neighborhood (kNN) and Linear Discriminant Analysis (LDA) are used to classify a set of eight facial expressions. The experimental results demonstrate that the proposed method gives very promising classification accuracies.
机译:开发通过面部表情帮助肢体残疾和残障人士的工具是一个充满挑战的研究领域,并且最近吸引了许多研究人员。本文提出了一种基于亮度标签的面部表情识别方法。通过采用离散小波变换(DWT)作为特征提取方法来进行面部表情的识别。利用具有不同阶数(db1至db20,Coif1至Coif 5和Sym2至Sym8)的不同小波族来研究其在识别面部表情方面的性能并评估其计算时间。计算每个子波族阶数的第一级子波分解系数的标准差。该标准偏差用于形成一组用于分类的特征向量。在这项研究中,执行常规验证和交叉验证来评估建议特征向量的效率。三种不同的分类器,即人工神经网络(ANN),k最近邻(kNN)和线性判别分析(LDA)用于对八个面部表情进行分类。实验结果表明,该方法具有很好的分类精度。

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