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Low complexity iris recognition using curvelet transform

机译:使用Curvelet变换的低复杂度虹膜识别

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In this paper, a low complexity technique is proposed for iris recognition in the curvelet transform domain. The proposed method does not require the detection of outer boundary and decreases unwanted artefacts such as the eyelid and eyelash. Thus, the time required for preprocessing of an iris image is significantly reduced. The zero-crossings of the transform coefficients are used to generate the iris codes. Since only the coefficients from approximation subbands are used, it reduces the length of the code. The iris codes are matched employing the correlation coefficient. Extensive experiments are carried out using a number of standard databases such as CASIA- V3, UBIRIS.v1 and UPOL. The results reveal that the proposed method using the curvelet transform provides a very high degree of accuracy (about 100%) over a wide range of images with a low equal error rate (EER) and a significant reduction in the computational time, as compared to those of the state-of-the-art techniques.
机译:本文提出了一种低复杂性技术,用于虹吸变换域中的虹膜识别。所提出的方法不需要检测外边界,并且减少不需要的人工制品,例如眼睑和睫毛。因此,显着减少了预处理的预处理所需的时间。变换系数的零点用于生成虹膜码。由于仅使用近似子带的系数,因此它减少了代码的长度。使用相关系数匹配虹膜码。使用许多标准数据库进行广泛的实验,例如Casia-V3,Ubiris.v1和Upol。结果表明,使用Curvele变换的提出方法在宽范围的图像中提供了非常高的精度(约100%),其具有低相同的错误率(eer)和计算时间的显着降低,与那些最先进的技术。

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