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  5. Opinion Dynamics Incorporating Higher-Order Interactions

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Preprint
English
2021

Opinion Dynamics Incorporating Higher-Order Interactions

0 Datasets

0 Files

English
2021
arXiv (Cornell University)
DOI: 10.48550/arxiv.2102.03569

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Guanrong Chen
Guanrong Chen

City University Of Hong Kong

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Zuobai Zhang
Wanyue Xu
Zhongzhi Zhang
+1 more

Abstract

The issue of opinion sharing and formation has received considerable attention in the academic literature, and a few models have been proposed to study this problem. However, existing models are limited to the interactions among nearest neighbors, ignoring those second, third, and higher-order neighbors, despite the fact that higher-order interactions occur frequently in real social networks. In this paper, we develop a new model for opinion dynamics by incorporating long-range interactions based on higher-order random walks. We prove that the model converges to a fixed opinion vector, which may differ greatly from those models without higher-order interactions. Since direct computation of the equilibrium opinion is computationally expensive, which involves the operations of huge-scale matrix multiplication and inversion, we design a theoretically convergence-guaranteed estimation algorithm that approximates the equilibrium opinion vector nearly linearly in both space and time with respect to the number of edges in the graph. We conduct extensive experiments on various social networks, demonstrating that the new algorithm is both highly efficient and effective.

How to cite this publication

Zuobai Zhang, Wanyue Xu, Zhongzhi Zhang, Guanrong Chen (2021). Opinion Dynamics Incorporating Higher-Order Interactions. arXiv (Cornell University), DOI: 10.48550/arxiv.2102.03569.

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Publication Details

Type

Preprint

Year

2021

Authors

4

Datasets

0

Total Files

0

Language

English

Journal

arXiv (Cornell University)

DOI

10.48550/arxiv.2102.03569

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