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User authentication based on smartphone application usage patterns through learning classifier systems

机译:基于智能手机应用程序使用模式通过学习分类器系统的用户身份验证

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Smartphones have become more ubiquitous than ever. People are installing various applications on their smart-phone to fit into their lifestyle. Existing research shows that there are patterns within the ways people access those applications, whether it involves particular locations, particular ranges of time, or many other factors. In this research, through a collaboration with a commercial company, we collected usage data from a popular smartphone application that gives its users access to digital flyers information for shops and supermarkets throughout Japan. Our early experiments found that the pattern information contained inside the data could be used to authenticate users. In this research, we are proposing a behavioral authentication model implementing customized learning classifier systems to search through vast amount of possible patterns to authenticate users of the application. Our early findings for this ongoing research demonstrate that our model can feasibly be a good alternative for additional authentication factor to implicitly authenticate users beyond the initial registration.
机译:智能手机比以往任何时候都变得更加丰富。人们正在智能手机上安装各种应用,以适应他们的生活方式。现有研究表明,人们访问这些应用程序中有模式,无论它涉及特定位置,特定时间范围,还是许多其他因素。在本研究中,通过与商业公司的合作,我们从流行的智能手机应用程序中收集了使用数据,这些应用程序使其用户可以在日本历史上访问商店和超市的数字传单信息。我们的早期实验发现,数据内包含的模式信息可用于验证用户。在该研究中,我们建议实现自定义学习分类器系统的行为认证模型,以便通过大量可能的模式来验证应用程序的用户。我们对此持续研究的早期调查结果表明,我们的模型可以是额外的认证因素可行的替代方案,以隐式地认证超出初始注册的用户。

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