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Ear Recognition based on 2D Images

机译:基于2D图像的EAR识别

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Research of ear recognition and its application is a new subject in the field of biometrics authentication. Ear normalization and alignment is a fundamental module in the ear recognition system. Traditional manually normalization method is not suitable for an automatic recognition system. In this paper, an automatic ear normalization method is proposed based on improved Active Shape Model (ASM). This algorithm is applied on the USTB ear database for ear normalization. Then Full-space linear Discriminant Analysis (FSLDA) is applied for ear recognition on the normalized ear images with different rotation variations. Experiments are performed on USTB ear image database. Recognition rates show that based on the right ear images, the acceptable head rotation range for ear recognition is between the right rotation of 20 degree to the left rotation of 10 degree.
机译:耳识别及其应用的研究是生物识别认证领域的新主题。耳归一化和对准是耳识别系统中的基本模块。传统的手动规范化方法不适用于自动识别系统。本文基于改进的有源形状模型(ASM)提出了一种自动耳归一化方法。该算法应用于USTB耳朵数据库以进行耳标准化。然后,全空间线性判别分析(FSLDA)应用于具有不同旋转变化的标准化耳朵图像上的耳识别。在USTB耳朵图像数据库上执行实验。识别率表明,基于右耳图像,耳膜识别的可接受的头部旋转范围是20度到左旋转10度的右旋转。

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