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privy: Privacy Preserving Collaboration Across Multiple Service Providers to Combat Telecom Spams

机译:PREDY:隐私保留在多个服务提供商中的合作,以打击电信垃圾邮件

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Nuisance or unsolicited calls and instant messages come at any time in a variety of different ways. These calls would not only exasperate recipients with the unwanted ringing, impacting their productivity, but also lead to a direct financial loss to users and service providers. Telecommunication Service Providers (TSPs) often employ standalone detection systems to classify call originators as spammers or non-spammers using their behavioral patterns. These approaches perform well when spammers target a large number of recipients of one service provider. However, professional spammers try to evade the standalone systems by intelligently reducing the number of spam calls sent to one service provider, and instead distribute calls to the recipients of many service providers. Naturally, collaboration among service providers could provide an effective defense, but it brings the challenge of privacy protection and system resources required for the collaboration process. In this paper, we propose a novel decentralized collaborative system named privy for the effective blocking of spammers who target multiple TSPs. More specifically, we develop a system that aggregates the feedback scores reported by the collaborating TSPs without employing any trusted third party system, while preserving the privacy of users and collaborators. We evaluate the system performance of privy using both the synthetic and real call detail records. We find that privy can correctly block spammers in a quicker time, as compared to standalone systems. Further, we also analyze the security and privacy properties of the privy system under different adversarial models.
机译:滋扰或未经请求的电话和即时消息随时以各种不同的方式出现。这些呼叫不仅会使收件人迷毒,不需要的振铃,影响其生产力,而且导致用户和服务提供商的直接财务损失。电信服务提供商(TSP)通常采用独立的检测系统,将呼叫发起者作为垃圾邮件发送或非垃圾邮件发送者分类为垃圾邮件发送者或使用其行为模式。当垃圾邮件发送者针对一个服务提供商的大量收件人时,这些方法表现良好。然而,专业垃圾邮件发送者尝试通过智能地减少发送到一个服务提供商的垃圾邮件呼叫数量,而是将呼叫分发给许多服务提供商的收件人的呼叫。当然,服务提供商之间的合作可以提供有效的防御,但它带来了合作过程所需的隐私保护和系统资源的挑战。在本文中,我们提出了一种特权的新型分散协作系统,用于瞄准多个TSP的垃圾邮件发送者。更具体地说,我们开发一个系统,它会聚合协作TSP报告的反馈分数,而不会使用任何可信的第三方系统,同时保留用户和协作者的隐私。我们使用合成和实际呼叫详细记录评估了PREVY的系统性能。与独立系统相比,我们发现PRECY可以在更快的时间内正确地阻止垃圾邮件发送者。此外,我们还在不同的对抗模型下分析了PREDY系统的安全性和隐私属性。

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