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The Effects of the Social Structure of Digital Networks on Viral Marketing Performance

机译:数字网络的社会结构对病毒式营销绩效的影响

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Viral marketing is a form of peer-to-peer communication in which individuals are encouraged to pass on promotional messages within their social networks. Conventional wisdom holds that the viral marketing process is both random and unmanageable. In this paper, we deconstruct the process and investigate the formation of the activated digital network as distinct from the underlying social network. We then consider the impact of the social structure of digital networks (random, scale free, and small world) and of the transmission behavior of individuals on campaign performance. Specifically, we identify alternative social network models to understand the mediating effects of the social structures of these models on viral marketing campaigns. Next, we analyse an actual viral marketing campaign and use the empirical data to develop and validate a computer simulation model for viral marketing. Finally, we conduct a number of simulation experiments to predict the spread of a viral message within different types of social network structures under different assumptions and scenarios. Our findings confirm that the social structure of digital networks play a critical role in the spread of a viral message. Managers seeking to optimize campaign performance should give consideration to these findings before designing and implementing viral marketing campaigns. We also demonstrate how a simulation model is used to quantify the impact of campaign management inputs and how these learnings can support managerial decision making.
机译:病毒式营销是点对点交流的一种形式,其中鼓励个人在其社交网络中传递促销信息。传统观点认为,病毒式营销过程既随机又难以控制。在本文中,我们解构了该过程,并研究了与底层社交网络不同的激活数字网络的形成。然后,我们考虑数字网络的社会结构(随机,无标度和小世界)的影响以及个人对竞选绩效的传播行为的影响。具体而言,我们确定了可供选择的社交网络模型,以了解这些模型的社会结构对病毒式营销活动的中介作用。接下来,我们分析实际的病毒营销活动,并使用经验数据来开发和验证用于病毒营销的计算机仿真模型。最后,我们进行了许多模拟实验,以预测在不同的假设和场景下,病毒消息在不同类型的社交网络结构中的传播。我们的发现证实,数字网络的社会结构在传播病毒信息方面起着至关重要的作用。寻求优化营销活动绩效的管理人员应在设计和实施病毒式营销营销活动之前考虑这些发现。我们还将演示如何使用模拟模型来量化营销活动管理输入的影响,以及这些学习如何支持管理决策。

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