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A multi-objective linear threshold influence spread model solved by swarm intelligence-based methods

机译:基于群体智能的方法解决的多目标线性阈值影响扩展模型

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摘要

The influence maximization problem (IMP) is one of the most important topics in social network analysis. It consists of finding the smallest seed of users that maximizes the influence spread in a social network. The main influence spread models are the linear threshold model (LT-model) and the independent cascade model (IC-model). These models have mainly been treated by using the singleobjective paradigm which covers just one perspective: maximize the influence spread starting by given seed size, or minimize the seed set to reach a given number of influenced nodes. Sometimes, this minimization problem has been called the least cost influence problem (LCI). In this work, we propose a new optimization model for both perspectives under conflict, through the LT-model, by applying a binary multi-objective approach. Swarm intelligence methods are implemented to solve our proposal on real networks. Results are promising and suggest that the new multi-objective solution proposed can be properly solved in harder instances. (C) 2020 Elsevier B.V. All rights reserved.Y
机译:影响最大化问题(IMP)是在社会网络分析中最重要的课题之一。这包括寻找最大化在社交网络的影响力传播用户的最小的种子。主要影响扩散模型的线性阈值模型(LT-模型)和独立级联模型(IC-模型)。最大限度地发挥影响力蔓延给出种子大小启动,或减少种子将达到影响节点的给定数量:这些模型主要是通过使用singleobjective范式,仅涉及一个角度处理。有时候,这个最小化问题已经被称为最低成本的影响问题(LCI)。在这项工作中,我们提出了两种观点一种新的优化模型下的冲突,通过LT-模型,通过应用二进制多目标的方法。群智能方法是为了解决我们在真实的网络方案。结果很有希望,并提出建议的新型多目标解决方案可以在更难的情况下得到适当的解决。 (C)2020爱思唯尔B.V.所有权利reserved.Y

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