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2D Multi-Band PCA and its Application for Ear Recognition

机译:2D多频段PCA及其耳识别应用

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Principal Component Analysis (PCA) has been successfully used for many application including ear recognition. However, its performance is limited due to its significant data dependency. This paper presents a two dimensional multi-band PCA (2D-MBPCA) method, which has shown a significantly higher performance to that of the PCA. The proposed method divided the input gray image into a number of images, based on the intensity of its pixels using either a dynamic or predefined equal range of threshold values. PCA is then applied on the resulting set of images to extract their features. The resulting features are used to find the best match. The application of the proposed 2D-MBPCA for ear recognition using two benchmark ear image datasets, shows the merit of the proposed technique to that of the standard PCA.
机译:主要成分分析(PCA)已成功用于许多应用程序,包括EAR识别。但是,由于其显着的数据依赖性,其性能受到限制。本文介绍了二维多频带PCA(2D-MBPCA)方法,其对PCA的性能显着更高。所提出的方法基于其像素的强度使用动态或预定义的相等范围的阈值,将输入灰度图像划分为多个图像。然后将PCA应用于生成的图像集中以提取其特征。生成的功能用于找到最佳匹配。所提出的2D-MBPCA用于使用两个基准耳图像数据集的耳识别,显示了所提出的技术对标准PCA的优点。

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