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Outlier detection in reputation management system for P2P networks using rough set theory

机译:基于粗糙集理论的P2P网络信誉管理系统的离群检测。

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Peer-to-peer (P2P) networks are distributed, decentralized, dynamic networks that are self-organized and self-managed. P2P networks have emerged over the past several years as an effective and scalable medium for sharing distributed resources. However, determining the reliability and trustworthiness of the participating peers still remains a major security challenge. Reputation-based trust management calculates peer trust as a measure of recommendations received from other peers. Malicious peers may give wrong reputation scores and also collude with other peers to make themselves or others appear trustworthy. In this paper, we propose the use of outlier detection technique to detect false testimony as outliers. We have applied rough set theory, an efficient and intelligent mathematical tool, to detect the outliers in the trust scores. We present the detailed methodology for implementing rough set theory for P2P network and detecting outlier scores in reputation metrics given by other peers and compared the model with the mechanism to detect outliers with the Eigen Trust model and eBay system. Trust computation without the outlier scores would be more accurate and enable proper verification and evaluation of peer trustworthiness. Copyright © 2013 John Wiley & Sons, Ltd.
机译:对等(P2P)网络是自组织和自管理的分布式,分散,动态网络。在过去的几年中,P2P网络已成为共享分布式资源的有效且可扩展的媒介。但是,确定参与对等方的可靠性和可信赖性仍然是主要的安全挑战。基于信誉的信任管理计算对等信任,以衡量从其他对等接收的建议。恶意的同伴可能会给出错误的信誉评分,并且还会与其他同伴串通以使自己或他人显得可信赖。在本文中,我们建议使用离群值检测技术将虚假证词检测为离群值。我们已经应用了粗糙集理论(一种有效且智能的数学工具)来检测信任分数中的异常值。我们提供了用于P2P网络的粗糙集理论并检测其他对等方给出的信誉指标中异常值的详细方法,并将该模型与通过Eigen Trust模型和eBay系统检测异常值的机制进行了比较。没有异常值的信任计算将更加准确,并使对等方信任度的正确验证和评估成为可能。版权所有©2013 John Wiley&Sons,Ltd.

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