Efficient and Effective Algorithms for Revenue Maximization in Social Advertising
Kai Han, Benwei Wu, Jing Tang, Shuang Cui, Çigdem Aslay, Laks V. S. Lakshmanan
摘要
We consider the revenue maximization problem in social advertising, where a social network platform owner needs to select seed users for a group of advertisers, each with a payment budget, such that the total expected revenue that the owner gains from the advertisers by propagating their ads in the network is maximized. Previous studies on this problem show that it is intractable and present approximation algorithms. We revisit this problem from a fresh perspective and develop novel efficient approximation algorithms, both under the setting where an exact influence oracle is assumed and under one where this assumption is relaxed. Our approximation ratios significantly improve upon the previous ones. Furthermore, we empirically show, using extensive experiments on four datasets, that our algorithms considerably outperform the existing methods on both the solution quality and computation efficiency.
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引用它的顶会 Paper4
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它引用的顶会 Paper5
- Influence Maximization Revisited: Efficient Reverse Reachable Set Generation with Bound TightenedQintian Guo, Sibo Wang, Zhewei Wei, Ming ChenSIGMOD 2020 · 被引用 80 次
- Efficient Algorithms for Budgeted Influence Maximization on Massive Social NetworksSong Bian, Qintian Guo, Sibo Wang, Jeffrey Xu YuVLDB 2020 · 被引用 64 次
- Pricing Influential Nodes in Online Social NetworksYuqing Zhu, Jing Tang, Xueyan TangVLDB 2020 · 被引用 28 次
- Efficient Approximation Algorithms for Adaptive Target Profit MaximizationKeke Huang, Jing Tang, Xiaokui Xiao, Aixin Sun 等ICDE 2020 · 被引用 22 次
- The Solution Distribution of Influence Maximization: A High-level Experimental Study on Three Algorithmic ApproachesNaoto OhsakaSIGMOD 2020 · 被引用 15 次
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