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基于图像矩和k均值算法的虹膜识别

Iris recognition using image moments and k-means algorithm.

作者信息

Khan Yaser Daanial, Khan Sher Afzal, Ahmad Farooq, Islam Saeed

机构信息

School of Science and Technology, University of Management and Technology, Lahore 54000, Pakistan ; Department of Computer Science, AbdulWali Khan University, Mardan 23200, Pakistan.

Department of Computer Science, AbdulWali Khan University, Mardan 23200, Pakistan.

出版信息

ScientificWorldJournal. 2014;2014:723595. doi: 10.1155/2014/723595. Epub 2014 Apr 1.

Abstract

This paper presents a biometric technique for identification of a person using the iris image. The iris is first segmented from the acquired image of an eye using an edge detection algorithm. The disk shaped area of the iris is transformed into a rectangular form. Described moments are extracted from the grayscale image which yields a feature vector containing scale, rotation, and translation invariant moments. Images are clustered using the k-means algorithm and centroids for each cluster are computed. An arbitrary image is assumed to belong to the cluster whose centroid is the nearest to the feature vector in terms of Euclidean distance computed. The described model exhibits an accuracy of 98.5%.

摘要

本文提出了一种利用虹膜图像进行人员身份识别的生物识别技术。首先使用边缘检测算法从采集到的眼睛图像中分割出虹膜。虹膜的圆盘状区域被转换为矩形形式。从灰度图像中提取描述矩,从而得到一个包含尺度、旋转和平移不变矩的特征向量。使用k均值算法对图像进行聚类,并计算每个聚类的质心。假设任意图像属于其质心在计算的欧几里得距离方面最接近特征向量的聚类。所描述的模型准确率为98.5%。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b0fc/3995185/858e519b3731/TSWJ2014-723595.001.jpg

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