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Local Discriminant Direction Binary Pattern for Palmprint Representation and Recognition

机译:Palmprint表示和识别的本地判别方向二进制模式

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摘要

Direction-based methods are the most powerful and popular palmprint recognition methods. However, there is no existing work that completely analyzes the essential differences among different direction-based methods and explores the most discriminant direction representation of a palmprint. In this paper, we attempt to establish the connection between the direction feature extraction model and the discriminability of direction features, and we propose a novel exponential and Gaussian fusion model (EGM) to characterize the discriminative power of different directions. The EGM can provide us with a new insight into the optimal direction feature selection of palmprints. Moreover, we propose a local discriminant direction binary pattern (LDDBP) to completely represent the direction features of a palmprint. Guided by the EGM, the most discriminant directions can be exploited to form the LDDBP-based descriptor for palmprint representation and recognition. Extensive experiment results conducted on four widely used palmprint databases demonstrate the superiority of the proposed LDDBP method over the state-of-the-art direction-based methods.
机译:基于方向的方法是最强大和最受欢迎的Palmprint识别方法。然而,没有现有的工作,可以完全分析基于不同方向的方法的基本差异,并探讨了棕榈纹的最判别方向表示。在本文中,我们尝试建立方向特征提取模型与方向特征的可辨别性之间的连接,并提出了一种新颖的指数和高斯融合模型(EGM)来表征不同方向的辨别力。 EGM可以向我们提供新的洞察力,进入最佳方向特征选择的掌纹。此外,我们提出了局部判别方向二进制图案(LDDBP),以完全代表棕榈纹的方向特征。由EGM引导,可以利用最多判别的方向以形成用于掌纹表示和识别的基于LDDBP的描述符。在四个广泛使用的Palmprint数据库中进行了广泛的实验结果,证明了所提出的LDDBP方法的优越性在最先进的基于方向的方法上。

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