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Measuring the Quality of IRIS Segmentation for Improved IRIS Recognition Performance

机译:测量虹膜分割质量,以改善IRIS识别性能

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In this paper, we present three versions of an open source software for biometric iris recognition called OSIRIS_V2, OSIRIS_V3, OSIRIS_V4 which correspond to different implementations of J. Daugman's approach. The experimental results on the database ICE2005 show that OSIRIS_V4 is the most reliable on difficult images while OSIRIS_V2 is the fastest. So, we propose a novel strategy for iris recognition using OSIRIS_V2 for good quality images and OSIRIS_V4 when the quality of the segmentation of OSIRIS_V2 is not sufficient to ensure good performance. To this end, we measure the quality of an iris segmentation thanks to a GMM model trained on good quality iris texture and we use a threshold on this quality value to shift between the 2 versions of OSIRIS. We show on ICE2005 database how the choice of this threshold value allows compromising between performance and processing speed of the complete process.
机译:在本文中,我们提供了三种版本的用于生物识别IRIS识别的开源软件,称为Osiris_v2,Osiris_v3,Osiris_v4,其对应于J.Augman方法的不同实现。数据库ICE2005上的实验结果表明,Osiris_v4在难以困难的图像上最可靠,而Osiris_v2是最快的。因此,我们提出了一种使用Osiris_v2为良好的质量图像和Osiris_v4为osiris_v4提出了一种新的策略,当osiris_v2的分割质量不足以确保良好的性能。为此,我们衡量虹膜分割的质量,这归功于GMM模型培训的质量良好的虹膜纹理,并且我们在这款质量值上使用阈值来转移2个版本的Osiris。我们在ICE2005数据库上显示了如何选择该阈值的选择允许在完整过程的性能和处理速度之间损害。

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