基于多角度数据增强的深度眼周识别方法

Bo Liu, Songze Lei, Yonggang Li, Ao Shan, Baihua Dong
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引用次数: 1

摘要

摘要眼周识别技术是一种广泛应用于身份验证的生物特征识别技术。由于其高精度、高易用性和高安全性,使得眼周识别具有广阔的应用前景和科研价值。为了解决实际应用中眼睛的角度旋转问题,本文提出了一种基于多角度数据增强的深度学习眼周识别方法。该方法是将原始数据集从小角度旋转到大角度,使数据量扩展到原始的7倍,同时增加了数据的多样性。分别使用InceptionV3网络和MobileNetV2轻量级网络进行实验验证,多角度测试获得了较好的结果,表明所提方法能够提高模型的泛化能力,具有较好的鲁棒性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Deep Periocular Recognition Method via Multi-Angle Data Augmentation
Abstract Periocular recognition technology is a biometric recognition technology widely used in identity verification. Because of its high precision, high ease of use and high security, Periocular recognition has a broad application prospect and scientific research value. In order to solve the problem of angular rotation of eyes in practical application, this paper proposes a deep learning periocular recognition method based on multi-angle data augmentation. The method is to rotate the original data set from small angle to large angle, so that the amount of data is expanded to 7 times of the original, and the diversity of data is increased at the same time. The InceptionV3 network and MobileNetV2 lightweight network are used for experimental verification respectively, and good results are obtained from multi-angle tests, indicating that the proposed method can improve the generalization ability of the model and has good robustness.
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