论文标题

迈向棕榈静脉模式的合成图像:评论

Towards the Generation of Synthetic Images of Palm Vein Patterns: A Review

论文作者

Salazar-Jurado, Edwin H., Hernández-García, Ruber, Vilches-Ponce, Karina, Barrientos, Ricardo J., Mora, Marco, Jaswal, Gaurav

论文摘要

随着计算机视觉和深度学习的最新成功,使用静脉生物识别技术自动识别自动识别方面取得了显着进步。但是,为棕榈静脉识别收集大规模的现实世界训练数据已变得具有挑战性,这主要是由于获取时所包含的噪音和不规则变化。同时,现有的棕榈静脉识别数据集通常是在近红外光下收集的,缺乏对属性(例如姿势)的详细注释,因此对静脉识别的不同属性的影响进行了很少的研究。因此,本文研究了生成的合成静脉图像的适用性,以弥补迫切缺乏公开可用的大规模数据集的适用性。首先,我们概述了棕榈静脉识别的最新研究进展,从基本背景知识到静脉解剖结构,数据获取,公共数据库和质量评估程序。然后,我们专注于最先进的方法,这些方法允许生成生物识别目的的血管结构以及及其各自的应用领域的生物网络建模。此外,我们回顾了有关样式转移和基于生物学性质的合成棕榈静脉图像算法的现有研究。之后,我们为创建一个合成数据库的一般流程图进行了形式,该数据库比较了真实的棕榈静脉图像并生成合成样品,以了解对逼真的静脉成像系统的发展。最终,我们通过讨论生成合成棕榈静脉图像的挑战,见解和未来观点来得出结论。

With the recent success of computer vision and deep learning, remarkable progress has been achieved on automatic personal recognition using vein biometrics. However, collecting large-scale real-world training data for palm vein recognition has turned out to be challenging, mainly due to the noise and irregular variations included at the time of acquisition. Meanwhile, existing palm vein recognition datasets are usually collected under near-infrared light, lacking detailed annotations on attributes (e.g., pose), so the influences of different attributes on vein recognition have been poorly investigated. Therefore, this paper examines the suitability of synthetic vein images generated to compensate for the urgent lack of publicly available large-scale datasets. Firstly, we present an overview of recent research progress on palm vein recognition, from the basic background knowledge to vein anatomical structure, data acquisition, public database, and quality assessment procedures. Then, we focus on the state-of-the-art methods that have allowed the generation of vascular structures for biometric purposes and the modeling of biological networks with their respective application domains. In addition, we review the existing research on the generation of style transfer and biological nature-based synthetic palm vein image algorithms. Afterward, we formalize a general flowchart for the creation of a synthetic database comparing real palm vein images and generated synthetic samples to obtain some understanding into the development of the realistic vein imaging system. Ultimately, we conclude by discussing the challenges, insights, and future perspectives in generating synthetic palm vein images for further works.

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