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A Feature Extraction Method for Personal Identification System

机译:个人识别系统的特征提取方法

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摘要

Recently in the world, many researches for individual identification method using biometrics axe widely done. Especially, personal identification using faces are used because of needless for physical contact. However, when the number of registrant of a system increase, the recognition accuracy of system will get worse certainly. Therefore, in order to improve the recognition accuracy, it is necessary to extract the feature area effectively for getting the high recognition accuracy. In this paper, we analyze and examine about the individual feature in a face using the GA and the SPCA. Thus, by removing the area which is not valuable, we think that recognition accuracy becomes high. Then, in order to show the effectiveness of the proposed method, we show computer simulations by using real image.
机译:近年来,在世界范围内,进行了许多使用生物识别技术进行个体识别的研究。特别地,由于不需要物理接触,因此使用使用面部的个人识别。但是,当系统的注册者数量增加时,系统的识别精度肯定会变差。因此,为了提高识别精度,需要有效地提取特征区域以获得高识别精度。在本文中,我们使用GA和SPCA分析和检查了面部的单个特征。因此,我们认为通过去除不重要的区域,识别精度变高。然后,为了证明所提方法的有效性,我们利用实像进行了计算机仿真。

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