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A spectral domain feature extraction scheme for palm-print recognition

机译:用于掌纹识别的谱域特征提取方案

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In this paper, a spectral feature extraction algorithm is proposed for palm-print recognition, which can efficiently capture the detail spatial variations in a palm-print image. The entire image is segmented into several narrow-width bands and the task of feature extraction is carried out in each band using two dimensional Fourier transform. It is shown that the proposed dominant spectral feature selection algorithm is capable of capturing the variation within the palm-print image, which provides not only the advantage of very low feature dimension but also a very high within-class compactness and between-class separability. Extensive experimentations have been carried out upon different publicly available standard palm-print image databases and the recognition performance obtained by the proposed method is compared with those of some of the recent methods. It is found that the proposed method offers a very high degree of recognition accuracy along with huge computational savings.
机译:本文提出了一种用于掌纹识别的光谱特征提取算法,该算法可以有效地捕获掌纹图像中的细节空间变化。将整个图像分割成几个窄带,并使用二维傅立叶变换在每个带中执行特征提取任务。结果表明,所提出的优势谱特征选择算法能够捕获掌纹图像内的变化,不仅具有特征尺寸非常低的优点,而且具有很高的类内紧凑性和类间可分离性。已经对不同的公开可用的标准掌纹图像数据库进行了广泛的实验,并将通过该方法获得的识别性能与一些最新方法进行了比较。发现所提出的方法提供了非常高的识别精度以及巨大的计算节省。

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