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基于伽柏特征和核 Fisher 判别分析的耳部识别

Ear recognition based on Gabor features and KFDA.

作者信息

Yuan Li, Mu Zhichun

机构信息

School of Automation and Electrical Engineering, University of Science and Technology Beijing, Beijing, 100083, China ; Visualization and Intelligent Systems Laboratory, University of California Riverside, Riverside, CA, 92507, USA.

School of Automation and Electrical Engineering, University of Science and Technology Beijing, Beijing, 100083, China.

出版信息

ScientificWorldJournal. 2014 Mar 17;2014:702076. doi: 10.1155/2014/702076. eCollection 2014.

Abstract

We propose an ear recognition system based on 2D ear images which includes three stages: ear enrollment, feature extraction, and ear recognition. Ear enrollment includes ear detection and ear normalization. The ear detection approach based on improved Adaboost algorithm detects the ear part under complex background using two steps: offline cascaded classifier training and online ear detection. Then Active Shape Model is applied to segment the ear part and normalize all the ear images to the same size. For its eminent characteristics in spatial local feature extraction and orientation selection, Gabor filter based ear feature extraction is presented in this paper. Kernel Fisher Discriminant Analysis (KFDA) is then applied for dimension reduction of the high-dimensional Gabor features. Finally distance based classifier is applied for ear recognition. Experimental results of ear recognition on two datasets (USTB and UND datasets) and the performance of the ear authentication system show the feasibility and effectiveness of the proposed approach.

摘要

我们提出了一种基于二维耳部图像的耳部识别系统,该系统包括三个阶段:耳部注册、特征提取和耳部识别。耳部注册包括耳部检测和耳部归一化。基于改进Adaboost算法的耳部检测方法分两步在复杂背景下检测耳部:离线级联分类器训练和在线耳部检测。然后应用主动形状模型分割耳部并将所有耳部图像归一化为相同大小。鉴于其在空间局部特征提取和方向选择方面的突出特性,本文提出了基于Gabor滤波器的耳部特征提取方法。然后应用核Fisher判别分析(KFDA)对高维Gabor特征进行降维。最后应用基于距离的分类器进行耳部识别。在两个数据集(USTB和UND数据集)上进行耳部识别的实验结果以及耳部认证系统的性能表明了所提方法的可行性和有效性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4286/3977125/0be10c98b09d/TSWJ2014-702076.001.jpg

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