基于SVM的虹膜分类的简单特征生成方法

A. Ali
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引用次数: 6

摘要

虹膜是人眼上一般用来识别人的区域。图案对每个人来说都是独一无二的,必须转换成一种表现形式,赋予纹理意义。然而,如果给定图像的强度水平对比度较差,则该过程可能会受到阻碍。本文提出了一种增强图像的方法,以获得丰富的虹膜纹理。首先,利用常用的分割方法,对虹膜区域进行局部化并变换为矩形;然后,我们对图像应用移动平均来去除随机噪声。在这个阶段,将施加一个修正,以产生均匀的灰度分布。然后,采用直方图均衡化的方法,得到均匀的对比度和更加润色的虹膜图案。最后,利用增强后的图像生成一维实值作为虹膜签名。利用支持向量机(SVM)对虹膜图像进行分类,取得了良好的分类效果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Simple features generation method for SVM based iris classification
Iris pattern is the region on human eye that generally used for identifying person. The pattern is unique for each person and must be transformed into a representation that gives meaning to the textures. However, this process could be hampered if the given image has poor contrast of intensity level. This paper suggests an approach to enhance the image in order to obtain abundant iris texture. First, using common method of segmentation, the iris region is localized and transformed to rectangular form. Then, we apply the moving average on the image to reduce random noise. At this stage, an amendment will be imposed to produce uniform gray levels distribution. After that, histogram equalization method will be applied to produce equalized contrast and more embellish iris pattern. Finally, this enhanced image is used to produce one dimensional real value as iris signature. Support Vector Machines (SVM) is used to classify the iris images and the results are promising.
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