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Modeling cascading failures with the crisis of trust in social networks

机译:用社交网络中的信任危机建模级联失败

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In social networks, some friends often post or disseminate malicious information, such as advertising messages, informal overseas purchasing messages, illegal messages, or rumors. Too much malicious information may cause a feeling of intense annoyance. When the feeling exceeds a certain threshold, it will lead social network users to distrust these friends, which we call the crisis of trust. The crisis of trust in social networks has already become a universal concern and an urgent unsolved problem. As a result of the crisis of trust, users will cut off their relationships with some of their untrustworthy friends. Once a few of these relationships are made unavailable, it is likely that other friends will decline trust, and a large portion of the social network will be influenced. The phenomenon in which the unavailability of a few relationships will trigger the failure of successive relationships is known as cascading failure dynamics. To our best knowledge, no one has formally proposed cascading failures dynamics with the crisis of trust in social networks. In this paper, we address this potential issue, quantify the trust between two users based on user similarity, and model the minimum tolerance with a nonlinear equation. Furthermore, we construct the processes of cascading failures dynamics by considering the unique features of social networks. Based on real social network datasets (Sina Weibo, Facebook and Twitter), we adopt two attack strategies (the highest trust attack (HT) and the lowest trust attack (LT)) to evaluate the proposed dynamics and to further analyze the changes of the topology, connectivity, cascading time and cascade effect under the above attacks. We numerically find that the sparse and inhomogeneous network structure in our cascading model can better improve the robustness of social networks than the dense and homogeneous structure. However, the network structure that seems like ripples is more vulnerable than the other two network structures. Our findings will be useful in further guiding the construction of social networks to effectively avoid the cascading propagation with the crisis of trust. Some research results can help social network service providers to avoid severe cascading failures. (C) 2015 Elsevier B.V. All rights reserved.
机译:在社交网络中,一些朋友经常发布或传播恶意信息,例如广告消息,非正式的海外购买消息,非法消息或谣言。过多的恶意信息可能会引起强烈的烦恼。当感觉超过一定阈值时,它将导致社交网络用户不信任这些朋友,我们称之为信任危机。对社交网络的信任危机已经成为普遍关注的问题和亟待解决的问题。由于信任危机,用户将切断与一些不信任朋友的关系。一旦使这些关系中的一些不可用,其他朋友就可能会拒绝信任,并且很大一部分社交网络将受到影响。少数几个关系的不可用性将触发连续关系的失败的现象称为级联失败动态。据我们所知,没有人正式提出社交网络信任危机引发的级联故障动态。在本文中,我们解决了这个潜在问题,根据用户相似性量化了两个用户之间的信任度,并使用非线性方程对最小公差进行建模。此外,我们通过考虑社交网络的独特功能来构建级联故障动态过程。基于真实的社交网络数据集(新浪微博,Facebook和Twitter),我们采用两种攻击策略(最高信任攻击(HT)和最低信任攻击(LT))评估提议的动态并进一步分析攻击的变化。在上述攻击下的拓扑,连通性,级联时间和级联效应。我们从数值上发现,在我们的级联模型中,稀疏和不均匀的网络结构比密集和同质的结构可以更好地提高社交网络的鲁棒性。但是,看起来像涟漪的网络结构比其他两个网络结构更容易受到攻击。我们的发现将有助于进一步指导社交网络的建设,以有效避免信任危机的级联传播。一些研究结果可以帮助社交网络服务提供商避免严重的级联故障。 (C)2015 Elsevier B.V.保留所有权利。

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