金融身份认证中的三维人脸识别算法优化

Cong Luo, Xiangbo Fan, Ying Yan, Han Jin, Xuan Wang
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引用次数: 0

摘要

身份认证是计算机网络世界中最基本的组成部分之一。它是信息安全的关键技术。它在保护系统和数据安全方面起着重要的作用。生物特征识别技术为身份认证提供了一种可靠、方便的方法。与其他生物特征识别技术相比,人脸识别以其方便、友好、易于接受等特点成为研究的热点。随着人脸识别技术的成熟和进步,其商业应用也越来越广泛。互联网金融、电子商务等与资产相关的领域已经开始尝试使用人脸识别技术作为认证手段,因此人们对人脸识别系统的安全需求也越来越高。然而,人脸识别系统作为一种生物特征识别系统,仍然存在固有的安全漏洞,面临模板攻击、假冒攻击等安全威胁。鉴于此,本文研究了三维人脸识别算法在金融身份认证领域的应用。在利用神经网络算法提取人脸信息特征的基础上,将K-L变换应用于图像高维向量映射,使人脸识别更加清晰。因此,可以减少图像损失。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Optimization of Three-dimensional Face Recognition Algorithms in Financial Identity Authentication
Identity authentication is one of the most basic components in the computer network world. It is the key technology of information security. It plays an important role in the protection of system and data security. Biometric recognition technology provides a reliable and convenient way for identity authentication. Compared with other biometric recognition technologies, face recognition has become a hot research topic because of its convenience, friendliness and easy acceptance. With the maturity and progress of face recognition technology, its commercial application has become more and more widespread. Internet finance, e-commerce and other asset-related areas have begun to try to use face recognition technology as a means of authentication, so people’s security needs for face recognition systems are also increasing. However, as a biometric recognition system, face recognition system still has inherent security vulnerabilities and faces security threats such as template attack and counterfeit attack. In view of this, this paper studies the application of threedimensional face recognition algorithm in the field of financial identity authentication. On the basis of feature extraction of face information using neural network algorithm, K-L transform is applied to image high-dimensional vector mapping to make face recognition clearer. Thus, the image loss can be reduced.
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