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社交网络的可控性与随机信息的策略性运用。

Controllability of social networks and the strategic use of random information.

作者信息

Cremonini Marco, Casamassima Francesca

机构信息

University of Milan, Via Bramante 65, Crema, CR Italy.

Sogetel, Via Conca del Naviglio 18, Milano, Italy.

出版信息

Comput Soc Netw. 2017;4(1):10. doi: 10.1186/s40649-017-0046-2. Epub 2017 Oct 13.

Abstract

BACKGROUND

This work is aimed at studying realistic social control strategies for social networks based on the introduction of random information into the state of selected driver agents. Deliberately exposing selected agents to random information is a technique already experimented in recommender systems or search engines, and represents one of the few options for influencing the behavior of a social context that could be accepted as ethical, could be fully disclosed to members, and does not involve the use of force or of deception.

METHODS

Our research is based on a model of knowledge diffusion applied to a time-varying adaptive network and considers two well-known strategies for influencing social contexts: One is the selection of few influencers for manipulating their actions in order to drive the whole network to a certain behavior; the other, instead, drives the network behavior acting on the state of a large subset of ordinary, scarcely influencing users. The two approaches have been studied in terms of network and diffusion effects. The network effect is analyzed through the changes induced on network average degree and clustering coefficient, while the diffusion effect is based on two ad hoc metrics which are defined to measure the degree of knowledge diffusion and skill level, as well as the polarization of agent interests.

RESULTS

The results, obtained through simulations on synthetic networks, show a rich dynamics and strong effects on the communication structure and on the distribution of knowledge and skills.

CONCLUSIONS

These findings support our hypothesis that the strategic use of random information could represent a realistic approach to social network controllability, and that with both strategies, in principle, the control effect could be remarkable.

摘要

背景

本研究旨在基于向选定驱动主体的状态引入随机信息,来探讨社交网络切实可行的社会控制策略。有意让选定主体接触随机信息,这一技术已在推荐系统或搜索引擎中有所试验,它是影响社会环境行为的少数几种可被视为符合道德规范、能向成员充分披露且不涉及武力或欺骗手段的选择之一。

方法

我们的研究基于一个应用于时变自适应网络的知识传播模型,并考虑了两种影响社会环境的知名策略:一种是挑选少数有影响力的人来操纵他们的行为,从而推动整个网络走向某种特定行为;另一种则是通过作用于大量普通且影响力较小的用户的状态来驱动网络行为。我们从网络和传播效应方面对这两种方法进行了研究。通过网络平均度和聚类系数的变化来分析网络效应,而传播效应则基于两个专门定义的指标,用于衡量知识传播程度、技能水平以及主体兴趣的极化程度。

结果

通过对合成网络的模拟得到的结果显示出丰富的动态变化,并且对通信结构以及知识和技能的分布产生了强烈影响。

结论

这些发现支持了我们的假设,即随机信息的策略性使用可能是实现社交网络可控性的一种切实可行的方法,并且原则上,这两种策略的控制效果可能都很显著。

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