基于竞争编码的多光谱掌纹识别二维log-Gabor滤波器

Meriem Dorsaf Bounneche, L. Boubchir, A. A. Chérif, A. Bouridane, B. Nekhoul
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引用次数: 3

摘要

本文提出了一种基于多分辨率二维log-Gabor滤波的多光谱掌纹识别方法,旨在提高基于编码的多光谱图像识别性能。建议的办法包括以下三个主要步骤:(i)特征提取步骤采用2D log-Gabor滤波器组,其中最终的特征映射使用位竞争编码组成;(ii)匹配步骤使用归一化的位汉明距离来有效捕获特征映射之间的相似性;(iii)在决策步骤中,通过新颖的特征融合技术将特征映射融合以获得最终分数,从而消除相邻光谱带特征的固有冗余。在多光谱掌纹MS-PolyU数据库上进行的实验表明,该方法在验证和识别模式上优于目前最先进的方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
2D log-Gabor filters for competitive coding-based multi-spectral palmprint recognition
This paper presents a novel multi-spectral palmprint recognition approach based on multi-resolution 2D log-Gabor filtering aiming to enhance the recognition performances of the coding-based approaches using multi-spectral images. The proposed approach consists of the following three major steps: (i) the feature extraction step employs a 2D log-Gabor filter bank where the final feature map is composed using the bitwise competitive coding, (ii) the matching step uses the normalized bitwise Hamming distance to capture efficiently the similarities between feature maps, and (iii) in the decision step, the feature maps are fused to get a final score through a novel feature fusion technique allowing to eliminate the inherent redundancy of the features of neighboring spectral bands. The experiment carried out on the multi-spectral palmprint MS-PolyU database have shown that the proposed method outperforms to the state-of-the-art methods for the verification and identification modes.
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