基于Bresenham线算法的掌纹ROI提取

Gaurav Jaswal, A. Kaul, R. Nath
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引用次数: 4

摘要

手部生物识别技术是一种准确、便捷的身份认证方法,在信息安全领域受到广泛欢迎。近年来,人们提出了许多与掌纹识别相关的研究。为了获得更好的识别效果,对感兴趣区域进行准确的分割是至关重要的。本文提出了一种新的掌纹ROI提取算法,该算法从全手图像中提取固定大小的区域。四边形ROI覆盖手掌上最大可能的区域,因此包含更多的特征。对基本坐标系进行修改,在手指底部找到精确的基准点,从而利用布雷斯纳姆直线算法绘制出边长最长的正方形。测试使用了中国科学院、理大和印度理工学院德里分校的非接触式掌纹数据库。针对匹配问题,采用了一种新颖的深度匹配算法。结果与两种最先进的算法进行了比较。实验结果表明,该算法在EER下降不超过20%的情况下优于传统算法。由此可见,该算法能够更加一致地提取掌纹ROI,从而有助于提高传统掌纹生物识别系统的性能。
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Palm print ROI extraction using Bresenham line algorithm
Hand based biometrie authentication is becoming so popular in the field of information security because it is an accurate and easily accessible procedure to legalize the human identity. Many studies related to palm print recognition have been proposed recently. To achieve superior recognition results, an accurate segmentation of region of interest is very crucial. In this article, a novel palm print ROI extraction algorithm has been presented which extracts a fixed size region from a full hand image. The quadrangular shape ROI covers the maximum possible area over palm and thus consists of more features. The basic coordinate system is modified to find accurate base points at fingers bottom so that a square with longest side can be drawn using Bresenham's line algorithm. The publically available CASIA, PolyU and IIT Delhi Contactless palm print databases have been used for testing. Addressing to the matching problem, a novel Deep-Matching algorithm has been used. The results have been compared with two state-of-art algorithms. It has been observed that proposed algorithm outperforms with EER drop not more than 20%. With this it is clear that the proposed algorithm has been extracting palm ROI more consistently and hence assist to improve the performance of traditional palm print biometric system.
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