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A Computational Model of Internet Addiction Phenomena in Social Networks

机译:社交网络中互联网成瘾现象的计算模型

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摘要

Addiction is a complex phenomenon, stemming from environmental, biological and psychological causes. It is defined as a natural response of the body to external stimuli, such as drugs, alcohol, but also job, love and Internet technologies, that become compulsive needs, difficult to remove. At the neurological level, the Dopamine System plays a key role in the addiction process. Mathematical models of the Dopamine System have been proposed to study addiction to nicotine, drugs and gambling. In this paper, we propose a Hybrid Automata model of the Dopamine System, based on the mathematical model proposed by Gutkin et al. Our model allows different kinds of addiction causes to be described. In particular, we consider the problem of Internet addiction and its spread through interaction on social networks. This study is undertaken by performing simulations of virtual social networks by varying the network topology and the interaction propensity of users. We show that scale-free networks favour the emergence of addiction phenomena, in particular when users having a high propensity to interaction are present.
机译:成瘾是一种复杂的现象,源于环境,生物学和心理原因。它被定义为身体对外部刺激(例如药物,酒精)以及工作,爱情和互联网技术的自然反应,这些刺激成为强迫性需求,难以消除。在神经学方面,多巴胺系统在成瘾过程中起关键作用。已经提出了多巴胺系统的数学模型来研究尼古丁,毒品和赌博的成瘾性。在本文中,我们基于Gutkin等人提出的数学模型,提出了多巴胺系统的混合自动机模型。我们的模型允许描述各种成瘾原因。特别是,我们考虑了网络成瘾问题及其通过社交网络上的互动传播的问题。通过更改网络拓扑和用户的交互倾向来执行虚拟社交网络的仿真来进行这项研究。我们显示,无标度的网络有利于成瘾现象的出现,尤其是当存在具有高度互动倾向的用户时。

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