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Smartwatch-Based Legitimate User Identification for Cloud-Based Secure Services

机译:基于Smartwatch的合法用户身份,用于基于云的安全服务

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摘要

Smartphones are ubiquitously integrated into our home and work environment and users frequently use them as the portal to cloud-based secure services. Since smartphones can easily be stolen or coopted, the advent of smartwatches provides an intriguing platform legitimate user identification for applications like online banking and many other cloud-based services. However, to access security-critical online services, it is highly desirable to accurately identifying the legitimate user accessing such services and data whether coming from the cloud or any other source. Such identification must be done in an automatic and non-bypassable way. For such applications, this work proposes a two-fold feasibility study; (1) activity recognition and (2) gait-based legitimate user identification based on individual activity. To achieve the above-said goals, the first aim of this work was to propose a semicontrolled environment system which overcomes the limitations of users' age, gender, and smartwatch wearing style. The second aim of this work was to investigate the ambulatory activity performed by any user. Thus, this paper proposes a novel system for implicit and continuous legitimate user identification based on their behavioral characteristics by leveraging the sensors already ubiquitously built into smartwatches. The design system gives legitimate user identification using machine learning techniques and multiple sensory data with 98.68% accuracy.
机译:智能手机无处不在地集成到我们的家庭和工作环境中,用户经常将其用作基于云的安全服务的门户。由于智能手机很容易被盗或被采用,因此智能手表的出现为在线银行和许多其他基于云的服务等应用程序提供了一个有趣的平台,即合法的用户标识。但是,为了访问对安全性至关重要的在线服务,非常需要准确地标识访问此类服务和数据的合法用户,无论这些用户是来自云还是其他任何来源。这种识别必须以自动且不可绕过的方式进行。对于此类应用,这项工作提出了两项​​可行性研究; (1)活动识别和(2)基于个人活动的基于步态的合法用户识别。为了实现上述目标,这项工作的首要目的是提出一种克服用户年龄,性别和智能手表佩戴方式限制的半受控环境系统。这项工作的第二个目的是调查任何用户执行的门诊活动。因此,本文通过利用已经普遍存在于智能手表中的传感器,基于其行为特征提出了一种用于隐式和连续合法用户识别的新颖系统。该设计系统使用机器学习技术和98.28%的准确度的多种感官数据为合法的用户提供识别。

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  • 来源
    《Mobile Information Systems》 |2018年第2期|5107024.1-5107024.14|共14页
  • 作者单位

    Innopolis Univ, Inst Robot, Kazan 420500, Tatarstan, Russia|Univ Messina, Messina, Italy;

    Univ Jeddah, Fac Comp & Informat Technol, Jeddah, Saudi Arabia;

    South China Normal Univ, Sch Comp Sci, Graph & Comp Lab, Guangzhou, Guangdong, Peoples R China;

    Innopolis Univ, Inst Robot, Kazan 420500, Tatarstan, Russia;

    Univ Jeddah, Fac Comp & Informat Technol, Jeddah, Saudi Arabia;

    Innopolis Univ, Inst Technol & Software Dev, Kazan 420500, Tatarstan, Russia|Innopolis Univ, Serv Sci & Engn Lab, Kazan 420500, Tatarstan, Russia;

    COMSATS Univ, Dept Comp Sci, Wah Campus, Islamabad, Pakistan;

    Univ Messina, Messina, Italy;

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