Influence Maximization in Real-World Closed Social Networks
Shixun Huang, Wenqing Lin, Zhifeng Bao, Jiachen Sun
摘要
In the last few years, many closed social networks such as WhatsAPP and WeChat have emerged to cater for people's growing demand of privacy and independence. In a closed social network, the posted content is not available to all users or senders can set limits on who can see the posted content. Under such a constraint, we study the problem of influence maximization in a closed social network. It aims to recommend users (not just the seed users) a limited number of existing friends who will help propagate the information, such that the seed users' influence spread can be maximized. We first prove that this problem is NP-hard. Then, we propose a highly effective yet efficient method to augment the diffusion network, which initially consists of seed users only. The augmentation is done by iteratively and intelligently selecting and inserting a limited number of edges from the original network. Through extensive experiments on real-world social networks including deployment into a real-world application, we demonstrate the effectiveness and efficiency of our proposed method.
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引用它的顶会 Paper9
- Rethinking and Accelerating Graph Condensation: A Training-Free Approach with Class PartitionXinyi Gao, Guanhua Ye, Tong Chen, Wentao Zhang 等WWW 2025 · 被引用 27 次
- Capacity Constrained Influence Maximization in Social NetworksShiqi Zhang, Yiqian Huang, Jiachen Sun, Wenqing Lin 等KDD 2023 · 被引用 19 次
- Efficient Influence Minimization via Node BlockingJinghao Wang, Yanping Wu, Xiaoyang Wang, Ying Zhang 等VLDB 2024 · 被引用 18 次
- Link Recommendation to Augment Influence Diffusion with Provable GuaranteesXiaolong Chen, Yifan Song, Jing TangWWW 2024 · 被引用 14 次
- Triangular Stability Maximization by Influence Spread over Social NetworksZheng Hu, Weiguo Zheng, Xiang LianVLDB 2023 · 被引用 10 次
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