Tell me something my friends do not know: diversity maximization in social networks

被引:0
|
作者
Antonis Matakos
Sijing Tu
Aristides Gionis
机构
[1] Aalto University,Department of Computer Science
[2] KTH Royal Institute of Technology,undefined
来源
Knowledge and Information Systems | 2020年 / 62卷
关键词
Diversity maximization; Filter bubble; Quadratic knapsack; Combinatorial optimization; Greedy algorithms;
D O I
暂无
中图分类号
学科分类号
摘要
Social media have a great potential to improve information dissemination in our society, yet they have been held accountable for a number of undesirable effects, such as polarization and filter bubbles. It is thus important to understand these negative phenomena and develop methods to combat them. In this paper, we propose a novel approach to address the problem of breaking filter bubbles in social media. We do so by aiming to maximize the diversity of the information exposed to connected social-media users. We formulate the problem of maximizing the diversity of exposure as a quadratic-knapsack problem. We show that the proposed diversity-maximization problem is inapproximable, and thus, we resort to polynomial nonapproximable algorithms, inspired by solutions developed for the quadratic-knapsack problem, as well as scalable greedy heuristics. We complement our algorithms with instance-specific upper bounds, which are used to provide empirical approximation guarantees for the given problem instances. Our experimental evaluation shows that a proposed greedy algorithm followed by randomized local search is the algorithm of choice given its quality-vs.-efficiency trade-off.
引用
收藏
页码:3697 / 3726
页数:29
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