An iris segmentation scheme based on bendlets

被引:0
|
作者
Nasser Aghazadeh
Mandana Abbasi
Parisa Noras
机构
[1] Izmir Institute of Technology,Department of Mathematics
[2] Azarbaijan Shahid Madani University,Image Processing Laboratory, Department of Applied Mathematics
来源
关键词
Bendlets; Image denoising; Iris detection; Iris segmentation;
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暂无
中图分类号
学科分类号
摘要
Due to the effect of agents such as ambiance, transition channel, and other agents, images are polluted by noise during collection, transition, and compaction, leading to decrease image quality. Noise can decrease the accuracy of the next stages of image processing systems. Therefore, one of the vital stages in the novel processing systems is denoising. This article offers a novel image denoising approach using bendlets. Other multi-scale transformations (such as wavelets, curvelets, and shearlets) cannot recognize properties such as location, direction, and curvature of discontinuities well in piecewise stable images. To solve this problem, bendlets are suggested in this article. Bendlets differ from other multi-scale transformations in that an additional bending parameter is utilized for recognizing the curvature of discontinuities. Bendlets need a fewer number of coefficients to identify curvatures than other multi-scale transformations. Furthermore, they help to make the edges more obvious. The suggested approach is utilized on the UBIRIS.V2 database. It earns better accuracy and stability than other multi-scale transformations.
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页码:2683 / 2693
页数:10
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