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Walls Have No Ears: A Non-Intrusive WiFi-Based User Identification System for Mobile Devices

机译:墙无耳:基于非侵入式WiFi的移动设备用户识别系统

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摘要

With the development and popularization of WiFi, surfing on the Internet with mobile devices has become an indispensable part of people's daily life. However, as an infrastructure, WiFi access points (APs) are easily connected by some undesired users nearby. In this paper, we propose NiFi, a non-intrusive WiFi user-identification system based on WiFi signals that enable AP to automatically identify legitimate users in indoor environments, such as home, office, and hotel. The core idea is that legitimate and undesired users may have different physical constraints, e.g., moving area, walking path, and so on, leading to different signal sequences. NiFi analyzes and exploits the characteristics of signal sequences generated by mobile devices. NiFi proposes a practical and effective method to extract useful features and measures similarity for signal sequences while not relying on precise user location information. We implement NiFi on Commercial Off-The-Shelf APs, and the implementation does not require any modification to user devices. The experiment results demonstrate that NiFi is able to achieve an average identification accuracy at 90.83% with true positive rate at 98.89%.
机译:随着WiFi的发展和普及,使用移动设备在Internet上冲浪已成为人们日常生活中不可或缺的一部分。但是,作为基础设施,附近的一些不希望的用户可以轻松连接WiFi接入点(AP)。在本文中,我们提出NiFi,一种基于WiFi信号的非侵入式WiFi用户识别系统,该系统使AP能够自动识别室内环境(例如家庭,办公室和酒店)中的合法用户。核心思想是合法用户和不想要的用户可能具有不同的物理约束,例如运动区域,步行路径等,从而导致不同的信号序列。 NiFi分析并利用了移动设备生成的信号序列的特征。 NiFi提出了一种实用有效的方法来提取有用的特征并测量信号序列的相似性,同时又不依赖精确的用户位置信息。我们在商用现货AP上实施NiFi,该实施不需要对用户设备进行任何修改。实验结果表明,NiFi能够达到90.83%的平均识别准确率,真实阳性率为98.89%。

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