StratLearner: Learning a Strategy for Misinformation Prevention in Social Networks
Guangmo Tong
摘要
Given a combinatorial optimization problem taking an input, can we learn a strategy to solve it from the examples of input-solution pairs without knowing its objective function? In this paper, we consider such a setting and study the misinformation prevention problem. Given the examples of attacker-protector pairs, our goal is to learn a strategy to compute protectors against future attackers, without the need of knowing the underlying diffusion model. To this end, we design a structured prediction framework, where the main idea is to parameterize the scoring function using random features constructed through distance functions on randomly sampled subgraphs, which leads to a kernelized scoring function with weights learnable via the large margin method. Evidenced by experiments, our method can produce near-optimal protectors without using any information of the diffusion model, and it outperforms other possible graph-based and learning-based methods by an evident margin. 34th Conference on Neural Information Processing Systems (NeurIPS 2020),
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引用它的顶会 Paper3
- Misinformation Mitigation under Differential Propagation Rates and Temporal PenaltiesMichael Simpson, Laks V. S. Lakshmanan, Farnoosh HashemiVLDB 2022 · 被引用 11 次
- USCO-Solver: Solving Undetermined Stochastic Combinatorial Optimization ProblemsGuangmo TongNeurIPS 2021 · 被引用 7 次
- Social-Inverse: Inverse Decision-making of Social Contagion Management with Task MigrationsGuangmo TongNeurIPS 2022 · 被引用 3 次
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