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Rapid detection of spammers through collaborative information sharing across multiple service providers

机译:通过在多个服务提供商之间共享协作信息来快速检测垃圾邮件发送者

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Spammers and telemarketers target a very large number of recipients usually dispersed across many Service Providers (SPs). Collaboration and Information sharing between SPs would increase the detection accuracy but detection effectiveness depends on the amount of information shared between SPs. Having service provider's exchange call detail records would arguably attain the best detection accuracy but would require significant network resources. Moreover, SPs are likely to feel uncomfortable in sharing their call records because call records contain user's private information as well as operational details of their networks. The challenge towards the design of collaborative Spam over Internet Telephony (SPIT) detection system is two-fold: it should attain high detection accuracy with a small false positive, and should fully protect the privacy of users and their service providers. In this paper, we propose a COllaborative Spit Detection System (COSDS) a collaborative SPIT detection system for the Voice over IP (VoIP) network where service providers collaborate for the effective and early detection of SPIT callers without raising privacy concerns. To this extent, COSDS relies on a trusted Centralized Repository (CR) and exchange of non-sensitive reputation scores. The CR computes global reputation of users by aggregating the reputation scores provided by the respective collaborating SPs. The data exchanged to the CR is not sensitive regarding users privacy, and cannot be used to infer the relationship network of users. We evaluate the performance of our system using synthetic data that we have generated by simulating the realistic social behavior of spammers and non-spammers in a network. The results show that the COSDS approach has better detection accuracy as compared to the traditional stand-alone detection systems. For instances, in a setup where spammers are making calls to recipients of many SPs, COSDS successfully identifies spammers with the True Positive (TP) rate of around 80% and false positive (FP) rate of around 2% on a first day, which further increases to 100% TP rate and zero FP rate in three days. COSDS approach is fast, requires a small communication overhead, ensures privacy of users and collaborating SP, and requires only few iterations for the reputation convergence within the SP. (C) 2018 Elsevier B.V. All rights reserved.
机译:垃圾邮件发送者和电话销售者将通常分布在许多服务提供商(SP)中的大量收件人作为目标。 SP之间的协作和信息共享将提高检测准确性,但是检测效果取决于SP之间共享的信息量。可以说,拥有服务提供商的交换呼叫详细记录将获得最佳的检测准确性,但将需要大量的网络资源。此外,由于呼叫记录包含用户的私人信息及其网络的操作详细信息,因此SP在共享其呼叫记录时可能会感到不舒服。设计协作式互联网电话垃圾邮件(SPIT)检测系统面临的挑战有两方面:它应以很小的误报率实现高检测精度,并应充分保护用户及其服务提供商的隐私。在本文中,我们为IP语音(VoIP)网络提出了协作式吐槽检测系统(COSDS),一种协作式SPIT检测系统,服务提供商可以在不引起隐私担忧的情况下进行协作,以有效地及早发现SPIT呼叫者。在此程度上,COSDS依赖于受信任的中央存储库(CR)和非敏感信誉得分的交换。 CR通过汇总由各个协作SP提供的信誉分数来计算用户的全球信誉。交换给CR的数据对用户隐私不敏感,并且不能用于推断用户的关系网络。我们使用通过模拟网络中垃圾邮件发送者和非垃圾邮件发送者的实际社会行为而生成的综合数据,来评估系统的性能。结果表明,与传统的独立检测系统相比,COSDS方法具有更好的检测精度。例如,在垃圾邮件发送者向许多SP的接收者进行呼叫的设置中,COSDS在第一天成功识别出垃圾邮件发送者的“真阳性”(TP)率约为80%,而“假阳性”(FP)率约为2%。在三天内进一步提高了TP率和FP率为100%。 COSDS方法快速,需要小的通信开销,确保用户的私密性和SP的协作,并且只需要很少的迭代就可以在SP中进行信誉融合。 (C)2018 Elsevier B.V.保留所有权利。

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