论文标题

多数投票模型具有有限的可见性:对滤泡气泡的调查

Majority-vote model with limited visibility: an investigation into filter bubbles

论文作者

Vilela, Andre L. M., Pereira, Luiz Felipe C., Dias, Laercio, Stanley, H. Eugene, da Silva, Luciano R.

论文摘要

社会中舆论形成的动力是一个复杂的现象,许多变量起着重要作用。最近,算法过滤哪些内容的影响是用户供应到社交网络的内容。据说,该算法促进了营销策略,但也可以促进过滤器的形成,其中用户最有可能暴露于符合自己的意见。在两国多数票模型中,一个人采用了与大多数邻居相反的意见,其概率$ q $,定义为噪声参数。在这里,我们在多数票价模型的动态中介绍了可见性参数$ v $,该模型等于个人忽略每个邻居的意见的可能性。对于$ v = 0.5 $,每个人平均将忽略其相邻节点的一半的意见。我们采用蒙特卡洛模拟来计算临界噪声参数作为可见性$ q_c(v)$的函数,并获得模型的相图。我们发现,临界噪声是可见性参数的增加函数,因此$ v $的较低值偏爱dissensus。通过有限尺寸的缩放分析,我们获得了独立于可见性的模型的关键指数,并表明该模型属于Ising通用类别。我们将我们的结果与提交静态现场稀释的网络的情况进行比较,并发现有限的可见性模型是在社交网络中引起观点两极分化的一种更微妙的方式。

The dynamics of opinion formation in a society is a complex phenomenon where many variables play an important role. Recently, the influence of algorithms to filter which content is fed to social networks users has come under scrutiny. Supposedly, the algorithms promote marketing strategies, but can also facilitate the formation of filters bubbles in which a user is most likely exposed to opinions that conform to their own. In the two-state majority-vote model an individual adopts an opinion contrary to the majority of its neighbors with probability $q$, defined as the noise parameter. Here, we introduce a visibility parameter $V$ in the dynamics of the majority-vote model, which equals the probability of an individual ignoring the opinion of each one of its neighbors. For $V=0.5$ each individual will, on average, ignore the opinion of half of its neighboring nodes. We employ Monte Carlo simulations to calculate the critical noise parameter as a function of the visibility $q_c(V)$ and obtain the phase diagram of the model. We find that the critical noise is an increasing function of the visibility parameter, such that a lower value of $V$ favors dissensus. Via finite-size scaling analysis we obtain the critical exponents of the model, which are visibility-independent, and show that the model belongs to the Ising universality class. We compare our results to the case of a network submitted to a static site dilution, and find that the limited visibility model is a more subtle way of inducing opinion polarization in a social network.

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