基于鼠标行为的神经网络多因素认证

D. Hema, S. Bhanumathi
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引用次数: 1

摘要

随着基于密码的身份验证漏洞的增加,多级安全性的使用也在增加。这是一个III级的安全保护,通过身份验证,它使用手写签名使用鼠标移动。基于用户鼠标行为模式的安全是网络安全层的一种范式。它使用数字签名来建立一个安全的系统认证。假设是,即使今天存在签名验证和各自的发行机构,也没有在更广泛的受众中感受到它们的渗透。为了使其经济实惠,通俗友好,本文描述了基于用户行为的安全性。记录的行为被转换为输入,以构建系统可理解的特征。这些录音是在培训系统中进行的。在训练阶段,记录鼠标移动的每个位置及其曲率。该数据由数据字符分类器处理并提供给分析器,使其基于点之间的距离计算特征以构建用户配置文件。集成了安全消息令牌机制,用于多因素安全身份验证。它使用令牌器云服务及其移动应用程序来接收令牌。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Mouse behaviour based multi-factor authentication using neural networks
Increased usage of multilevel security is noticed along with a rise in vulnerabilities for password based authentication. This is a level III security protection by authentication, which uses handwritten signature using mouse movement. User mouse behavioral pattern based security is a paradigm for online security layers. It uses digital signature to establish authentication with a secure system. The hypothesis is that even if signature verification and respective issuing authorities exists today, their penetration is not felt among a wider audience. To make it affordable and common man, friendly this paper describes user behavior based security. The recorded behavior is transformed as inputs to construct system understandable features. These recordings are carried out in a training system. During the training phase, every position of mouse movement and its curvature is recorded. This data is processed by a data character classifier and provided to an analyzer such that it computes a feature based on distance between points to build a user profile. A secure messaging token mechanism is integrated for multi factor secure authentication. It uses tokenizer cloud service and its mobile app to receive the token.
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