Influence Maximization for MOOC Learners Using BAT Optimization Algorithm

K. Aggarwal, Anuja Arora
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引用次数: 3

Abstract

The Ubiquitous behaviour of MOOCs for online learning has proven its importance specially in the Covid period. These platforms facilitate learners for peer support by communicating through the discussion forum. The communication held among learners is demonstrated through the social network (SN). The objective of this research is to analyse learner’s SN to find the seed of learners that maximizes the influence spread in the SN to handle its multi-objective research paradigm and avoid the influence maximization process of getting stuck in local optima. Henceforth, extensive experiments are performed using SN topological characteristics to build an effective objective function for the influence maximization problem, and BAT optimization algorithm is employed to achieve global optimum results to find out top influence spreader in course communication network. Efficient results have been obtained by the proposed approach which will help MOOC portals for substantial performance identification of influential learners as compared to ego-centric influential learner identification outcome.
利用BAT优化算法实现MOOC学习者影响最大化
mooc在在线学习方面的无处不在的行为已经证明了它的重要性,特别是在新冠疫情期间。这些平台通过论坛交流,为学习者提供同伴支持。学习者之间的交流是通过社会网络(social network, SN)来表现的。本研究的目的是通过对学习者的SN进行分析,找到使SN中影响传播最大化的学习者种子,以处理其多目标研究范式,避免陷入局部最优的影响最大化过程。因此,利用SN拓扑特征进行大量实验,为影响最大化问题构建有效的目标函数,并采用BAT优化算法实现全局最优结果,寻找课程通信网络中的顶级影响传播者。与以自我为中心的有影响力学习者识别结果相比,所提出的方法获得了有效的结果,这将有助于MOOC门户网站对有影响力学习者进行实质性的绩效识别。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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