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分层标识符:在移动支付应用程序用户隐私窃听中的应用。

Hierarchical Identifier: Application to User Privacy Eavesdropping on Mobile Payment App.

作者信息

Wang Yaru, Zheng Ning, Xu Ming, Qiao Tong, Zhang Qiang, Yan Feipeng, Xu Jian

机构信息

School of Computer Science and Technology, Hangzhou Dianzi University, Hangzhou 310018, China.

School of Cyberspace, Hangzhou Dianzi University, Hangzhou 310018, China.

出版信息

Sensors (Basel). 2019 Jul 11;19(14):3052. doi: 10.3390/s19143052.

Abstract

Mobile payment apps have been widely-adopted, which brings great convenience to people's lives. However, at the same time, user's privacy is possibly eavesdropped and maliciously exploited by attackers. In this paper, we consider a possible way for an attacker to monitor people's privacy on a mobile payment app, where the attacker aims to identify the user's financial transactions at the trading stage via analyzing the encrypted network traffic. To achieve this goal, a hierarchical identification system is established, which can acquire users' privacy information in three different manners. First, it identifies the mobile payment app from traffic data, then classifies specific actions on the mobile payment app, and finally, detects the detailed steps within the action. In our proposed system, we extract reliable features from the collected traffic data generated on the mobile payment app, then use a series of well-performing ensemble learning strategies to deal with three identification tasks. Compared with prior works, the experimental results demonstrate that our proposed hierarchical identification system performs better.

摘要

移动支付应用程序已被广泛采用,这给人们的生活带来了极大便利。然而,与此同时,用户隐私可能会被攻击者窃听和恶意利用。在本文中,我们考虑了攻击者在移动支付应用程序上监控人们隐私的一种可能方式,即攻击者旨在通过分析加密网络流量在交易阶段识别用户的金融交易。为实现这一目标,建立了一个分层识别系统,该系统可以通过三种不同方式获取用户的隐私信息。首先,它从流量数据中识别移动支付应用程序,然后对移动支付应用程序上的特定操作进行分类,最后,检测操作中的详细步骤。在我们提出的系统中,我们从移动支付应用程序上收集的流量数据中提取可靠特征,然后使用一系列性能良好的集成学习策略来处理三个识别任务。与先前的工作相比,实验结果表明我们提出的分层识别系统性能更好。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ff5c/6678344/3cc35dffe13e/sensors-19-03052-g001.jpg

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