Deletion Robust Submodular Maximization over Matroids
Paul Duetting, Federico Fusco, Silvio Lattanzi, Ashkan Norouzi-Fard, Morteza Zadimoghaddam
Abstract
Maximizing a monotone submodular function is a fundamental task in machine learning. In this paper, we study the deletion robust version of the problem under the classic matroids constraint. Here the goal is to extract a small size summary of the dataset that contains a high value independent set even after an adversary deleted some elements. We present constant-factor approximation algorithms, whose space complexity depends on the rank of the matroid and the number of deleted elements. In the centralized setting we present a -approximation algorithm with summary size . In the streaming setting we provide a -approximation algorithm with summary size and memory . We complement our theoretical results with an in-depth experimental analysis showing the effectiveness of our algorithms on real-world datasets.
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Cited by top-tier papers8
- Fully Dynamic Submodular Maximization over MatroidsPaul Duetting, Federico Fusco, Silvio Lattanzi, Ashkan Norouzi-Fard et al.ICML 2023 · 13 citations
- Dynamic Algorithms for Matroid Submodular MaximizationKiarash Banihashem, Leyla Biabani, Samira Goudarzi, MohammadTaghi Hajiaghayi et al.SODA 2024 · 5 citations
- Deletion-Robust Submodular Maximization with Knapsack ConstraintsShuang Cui, Kai Han, He HuangAAAI 2024 · 3 citations
- Consistent Submodular MaximizationPaul Duetting, Federico Fusco, Silvio Lattanzi, Ashkan Norouzi-Fard et al.ICML 2024 · 3 citations
- A Dynamic Algorithm for Weighted Submodular Cover ProblemKiarash Banihashem, Samira Goudarzi, MohammadTaghi Hajiaghayi, Peyman Jabbarzade et al.ICML 2024 · 2 citations
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- Dynamic Submodular MaximizationMorteza MonemizadehNeurIPS 2020 · 13 citations
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