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Palm Vein Recognition using Local Tetra Patterns

机译:掌静脉使用本地Tetra图案识别

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Palm Vein Recognition is an emerging touch-less and spoof-resistant means of biometric authentication. However, matching algorithms tend to lack accuracy, due to the complexity of vascular patterns and irregularities in subsequent samples of the same person. This paper proposes a method that describes the spatial structure of local texture using direction of central gray pixel, formulating a discrete set of features which generates a unique template that improves the accuracy of identification. The features from various samples pertaining to the same person are strategically combined. This creates a robust feature vector which is able to handle the irregularities encountered while acquiring images for the database, and improves the efficiency manifolds as compared to present techniques. Matching and score calculation was done using cosine similarity measure. The method was tested on the PUT Vein Database which contained 1200 samples. The results showed an Equal Error Rate of 0%.
机译:棕榈静脉识别是一种新兴的触感和恶搞的生物认证手段。然而,由于血管模式和同一人类随后的样本中的血管模式和不规则性的复杂性,匹配算法往往缺乏准确性。本文提出了一种方法,该方法描述了使用中央灰色像素的方向的局部纹理的空间结构,其制定了一种离散的特征,该特征集产生了提高识别精度的唯一模板。来自与同一个人有关的各种样本的特征是策略性组合的。这将创建一个稳健的特征向量,该特征向量能够处理在获取数据库的图像时遇到的不规则性,并且与本技术相比提高效率歧管。使用余弦相似度测量完成匹配和得分计算。该方法在含有1200个样本的PUT静脉数据库上进行测试。结果显示出0%的相同错误率。

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