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首页> 外文期刊>EURASIP journal on advances in signal processing >An Efficient Feature Extraction Method with Pseudo-Zernike Moment in RBF Neural Network-Based Human Face Recognition System
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An Efficient Feature Extraction Method with Pseudo-Zernike Moment in RBF Neural Network-Based Human Face Recognition System

机译:基于RBF神经网络的人脸识别系统中基于伪Zernike矩的有效特征提取方法

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This paper introduces a novel method for the recognition of human faces in digital images using a new feature extraction method that combines the global and local information in frontal view of facial images. Radial basis function (RBF) neural network with a hybrid learning algorithm (HLA) has been used as a classifier. The proposed feature extraction method includes human face localization derived from the shape information. An efficient distance measure as facial candidate threshold (FCT) is defined to distinguish between face and nonface images. Pseudo-Zernike moment invariant (PZMI) with an efficient method for selecting moment order has been used. A newly defined parameter named axis correction ratio (ACR) of images for disregarding irrelevant information of face images is introduced. In this paper, the effect of these parameters in disregarding irrelevant information in recognition rate improvement is studied. Also we evaluate the effect of orders of PZMI in recognition rate of the proposed technique as well as RBF neural network learning speed. Simulation results on the face database of Olivetti Research Laboratory (ORL) indicate that the proposed method for human face recognition yielded a recognition rate of 99.3%.
机译:本文介绍了一种新的方法,该方法使用一种新的特征提取方法在数字图像中识别人脸,该方法将全局和局部信息组合在面部图像的正面视图中。具有混合学习算法(HLA)的径向基函数(RBF)神经网络已用作分类器。所提出的特征提取方法包括从形状信息导出的人脸定位。定义了一种有效的距离度量作为面部候选阈值(FCT),以区分面部图像和非面部图像。伪Zernike矩不变式(PZMI)具有有效的矩阶选择方法。介绍了一种新定义的参数,称为图像的轴校正率(ACR),用于忽略人脸图像的无关信息。本文研究了这些参数在忽略识别率提高中无关信息的影响。我们还评估了PZMI顺序对所提出技术的识别率以及RBF神经网络学习速度的影响。在Olivetti研究实验室(ORL)的人脸数据库上的仿真结果表明,所提出的人脸识别方法产生了99.3%的识别率。

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