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单样本条件下基于图像增强和Fourier频谱的人脸识别
引用本文:何家忠,杜明辉.单样本条件下基于图像增强和Fourier频谱的人脸识别[J].科学技术与工程,2006,6(8):984-986.
作者姓名:何家忠  杜明辉
作者单位:华南理工大学电子与信息学院,广州,510640
基金项目:广东省自然科学基金(05006593)资助.
摘    要:目前有许多处理正面视觉人脸的识别方法,当有充分数量的有代表性的样本时,能取得较好的识别效果。然而当处理单样本识别问题时,现有的许多方法的识别率将明显下降或甚至不适用。为了加强单训练样本的分类信息,训练样本与其基于受扰动的奇异值的重构图组合成新样本,Fourier频谱作为人脸识别特征,在ORL人脸库上的实验结果表明了该方法的有效性。

关 键 词:人脸识别  Fourier变换  奇异值分解
文章编号:1671-1815(2006)08-0984-03
收稿时间:2005-12-22
修稿时间:2005年12月22

Face Recognition Based on Image Enhancement and Fourier Spectrum for One Training Image per Person
HE Jiazhong,DU Minghui.Face Recognition Based on Image Enhancement and Fourier Spectrum for One Training Image per Person[J].Science Technology and Engineering,2006,6(8):984-986.
Authors:HE Jiazhong  DU Minghui
Abstract:At present there are many methods that could deal well with frontal view face recognition when there is sufficient number of representative training samples. However, few of them can work well when only one training sample per class is available. In order to enhance the classification information of the single training sample, each training sample is combined with its reconstructed image gotten by perturbing the image's singular values into a new training sample. The Fourier spectrum is used as feature for recognition. Experimental results on ORL show the effectiveness of the method.
Keywords:face recognition fourier transform singular value decomposition
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