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Inter-Device Periocular Recognition Under Near-Infrared Light

机译:近红外光下的设备间眼周识别

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Periocular biometrics is a relatively new field of research, and only several publications on this topic can be found in the literature. It can become a promising feature that can be used independently or as a complement to other biometrics. In this work, the recognition rates of periocular biometrics on a single acquisition device and inter-device database is verified and the impact of different image sources on the performance of recognition algorithms is investigated. For this purpose a NearInfrared Light database was collected. The database contains images taken by two acquisition devices. In order to test the periocular biometric trait, three feature extraction methods are chosen: Histograms of Oriented Gradients, Local Binary Patterns and Scale Invariant Feature Transform. The fusion of these methods is also proposed and it is tested on inter-device database. The feasibility of applying periocular recognition as an individual decision module for a biometric system is assessed. Experimental results yield Equal Error Rate of 17.65 for right eye using inter-device database of 640 gallery periocular images for each eye side taken from 32 different individuals (20 images per individual for each eye side). These results are obtained by the optimal weighted sum fusion of the three feature extraction methods.
机译:眼周生物统计是一个相对较新的研究领域,在文献中只能找到有关该主题的几篇出版物。它可以成为有前途的功能,可以独立使用或作为其他生物识别技术的补充。在这项工作中,验证了单个采集设备和设备间数据库上眼周生物特征的识别率,并研究了不同图像源对识别算法性能的影响。为此,收集了近红外数据库。该数据库包含由两个采集设备拍摄的图像。为了测试眼周生物特征,选择了三种特征提取方法:定向梯度直方图,局部二元模式和尺度不变特征变换。还提出了这些方法的融合,并在设备间数据库中进行了测试。评估了应用眼周识别作为生物识别系统的单独决策模块的可行性。实验结果得出,使用设备间数据库从32个不同的个体获取的每只眼侧的640张眼周图像的设备间数据库,右眼的平均错误率达到17.65,每只眼侧的每人20张图像。这些结果是通过三种特征提取方法的最佳加权和融合获得的。

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