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首页> 外文期刊>Pattern Recognition: The Journal of the Pattern Recognition Society >RECOGNITION OF HUMAN FRONT FACES USING KNOWLEDGE-BASED FEATURE EXTRACTION AND NEURO-FUZZY ALGORITHM
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RECOGNITION OF HUMAN FRONT FACES USING KNOWLEDGE-BASED FEATURE EXTRACTION AND NEURO-FUZZY ALGORITHM

机译:基于知识的特征提取和神经模糊算法的人脸识别

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摘要

A recognition method of human front faces using knowledge-based feature extraction and a neuro-fuzzy algorithm is proposed. In the preprocessing step we extract the face part from the homogeneous background by tracking face boundaries, where we assume that the face part is located in the center of a captured image. Then, based on a priori knowledge of human faces, we extract five normalized features. In the recognition step we propose a neuro-fuzzy algorithm that employs a trapezoidal fuzzy membership function and modified error backpropagation (EBP) algorithm. The former absorbs Variation of feature values and the latter shows good learning efficiency. Computer simulation results with 80 test images of 20 persons show that the proposed neuro-fuzzy method yields higher recognition rate than the conventional ones. Copyright (C) 1996 Pattern Recognition Society. [References: 23]
机译:提出了一种基于知识的特征提取和神经模糊算法的人脸识别方法。在预处理步骤中,我们通过跟踪人脸边界从均匀背景中提取人脸部分,其中我们假设人脸部分位于捕获图像的中心。然后,基于对人脸的先验知识,我们提取了五个归一化特征。在识别步骤中,我们提出了一种神经模糊算法,该算法采用梯形模糊隶属度函数和改进的误差反向传播(EBP)算法。前者吸收特征值的变化,而后者表现出良好的学习效率。计算机仿真结果与20个人的80张测试图像相吻合,表明所提出的神经模糊方法的识别率高于传统方法。版权所有(C)1996模式识别学会。 [参考:23]

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