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首页> 外文期刊>International Journal of Applied Pattern Recognition >Multi-resolution wavelet-based image fusion for iris recognition
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Multi-resolution wavelet-based image fusion for iris recognition

机译:基于多分辨率小波的图像融合用于虹膜识别

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摘要

Iris recognition is one of the most powerful techniques for biometric identification. The requirement of current scenario is to have a simple and efficient scheme for iris recognition with high performance of the system. Existing methods suffer from some undesirable side effects and reduced feature contrast which degrades the quality of the output image. Furthermore, some of these methods are rather complex and this contradicts the concept of the simplicity. Image fusion is an important tool for improving performance in image-based applications such as remote sensing, machine vision, medical imaging and so on. In this paper, an efficient approach for fusion of multiple iris images based on multi-resolution wavelet is presented. Root mean-square error (RMSE) and correlation coefficient (CORR) arc used as the assessment metrics for evaluation. The algorithm reduces the elapsed time and accelerates the verification process with high recognition accuracy. The Chinese Academy of Sciences - Institute of Automation (CASIA) iris database is used to simulate the studies. The approach used in the proposed work outperforms existing approaches with the fact that in the proposed iris recognition system, the feature level method preserves the information from the edges.
机译:虹膜识别是生物识别最强大的技术之一。当前场景的要求是具有用于系统的高性能的虹膜识别的简单有效的方案。现有方法具有一些不希望有的副作用,并且特征对比度降低,这降低了输出图像的质量。此外,其中一些方法相当复杂,这与简单性的概念相矛盾。图像融合是提高基于图像的应用程序(例如遥感,机器视觉,医学成像等)性能的重要工具。本文提出了一种基于多分辨率小波的多种虹膜图像融合方法。均方根误差(RMSE)和相关系数(CORR)用作评估的评估指标。该算法减少了经过时间,并以较高的识别精度加快了验证过程。中国科学院自动化研究所(CASIA)的虹膜数据库用于模拟研究。在拟议的工作中使用的方法优于现有方法,因为在拟议的虹膜识别系统中,特征级方法保留了边缘信息。

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