Streaming Stochastic Submodular Maximization with On-Demand User Requests
Honglian Wang, Sijing Tu, Lutz Oettershagen, Aristides Gionis
摘要
We explore a novel problem in streaming submodular maximization, inspired by the dynamics of news-recommendation platforms. We consider a setting where users can visit a news website at any time, and upon each visit, the website must display up to news items. User interactions are inherently stochastic: each news item presented to the user is consumed with a certain acceptance probability by the user, and each news item covers certain topics. Our goal is to design a streaming algorithm that maximizes the expected total topic coverage. To address this problem, we establish a connection to submodular maximization subject to a matroid constraint. We show that we can effectively adapt previous methods to address our problem when the number of user visits is known in advance or linear-size memory in the stream length is available. However, in more realistic scenarios where only an upper bound on the visits and sublinear memory is available, the algorithms fail to guarantee any bounded performance. To overcome these limitations, we introduce a new online streaming algorithm that achieves a competitive ratio of , where controls the approximation quality. Moreover, it requires only a single pass over the stream, and uses memory independent of the stream length. Empirically, our algorithms consistently outperform the baselines.
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- Streaming Submodular Maximization under a k-Set System ConstraintRan Haba, Ehsan Kazemi, Moran Feldman, Amin KarbasiICML 2020 · 被引用 43 次
- Fairness in Streaming Submodular Maximization over a Matroid ConstraintMarwa El Halabi, Federico Fusco, Ashkan Norouzi-Fard, Jakab Tardos 等ICML 2023 · 被引用 15 次
- Maximizing Submodular Functions for Recommendation in the Presence of BiasesAnay Mehrotra, Nisheeth K. VishnoiWWW 2023 · 被引用 11 次
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