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Triple-Type Feature Extraction for Palmprint Recognition

机译:掌上识别的三型特征提取

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摘要

Palmprint recognition has received tremendous research interests due to its outstanding user-friendliness such as non-invasive and good hygiene properties. Most recent palmprint recognition studies such as deep-learning methods usually learn discriminative features from palmprint images, which usually require a large number of labeled samples to achieve a reasonable good recognition performance. However, palmprint images are usually limited because it is relative difficult to collect enough palmprint samples, making most existing deep-learning-based methods ineffective. In this paper, we propose a heuristic palmprint recognition method by extracting triple types of palmprint features without requiring any training samples. We first extract the most important inherent features of a palmprint, including the texture, gradient and direction features, and encode them into triple-type feature codes. Then, we use the block-wise histograms of the triple-type feature codes to form the triple feature descriptors for palmprint representation. Finally, we employ a weighted matching-score level fusion to calculate the similarity between two compared palmprint images of triple-type feature descriptors for palmprint recognition. Extensive experimental results on the three widely used palmprint databases clearly show the promising effectiveness of the proposed method.
机译:由于其出色的用户友好性,如非侵入性和良好的卫生性质,Palmptect认可获得了巨大的研究兴趣。大多数最近的Palmprint识别研究,例如深度学习方法通​​常学习来自Palmprint图像的鉴别特征,这通常需要大量标记的样本来实现合理的良好识别性能。然而,Palmprint图像通常是有限的,因为收集足够的掌纹样本相对难以难以实现,使大多数基于深度学习的方法无效。在本文中,我们通过提取三种掌纹特征来提出启发式掌纹识别方法,而无需任何训练样本。我们首先提取PalmPrint的最重要的固有功能,包括纹理,渐变和方向特征,并将它们对其进行编码为三型特征代码。然后,我们使用三型特征码的块明智直方图来形成Palmprint表示的三重特征描述符。最后,我们采用加权匹配分数水平融合来计算用于掌纹识别的三型特征描述符的两个比较手掌图像之间的相似性。三种广泛使用的掌纹数据库的广泛实验结果清楚地表明了所提出的方法的有希望的效果。

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