Robustness in Multi-Objective Submodular Optimization: a Quantile Approach
Cédric Malherbe, Kevin Scaman
摘要
The optimization of multi-objective submodular systems appears in a wide variety of applications. However, there are currently very few techniques which are able to provide a robust allocation to such systems. In this work, we propose to design and analyse novel algorithms for the robust allocation of submodular systems through lens of quantile maximization. We start by observing that identifying an exact solution for this problem is computationally intractable. To tackle this issue, we propose a proxy for the quantile function using a softmax formulation, and show that this proxy is well suited to submodular optimization. Based on this relaxation, we propose a novel and simple algorithm called SOFTSAT. Theoretical properties are provided for this algorithm as well as novel approximation guarantees. Finally, we provide numerical experiments showing the efficiency of our algorithm with regards to state-of-the-art methods in a test bed of real-world applications, and show that SOFTSAT is particularly robust and well-suited to online scenarios.
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引用它的顶会 Paper2
- An Asymptotically Optimal Approximation Algorithm for Multiobjective Submodular Maximization at ScaleFabian Christian Spaeh, Atsushi MiyauchiICML 2025
- Measures of diversity and space-filling designs for categorical dataCédric Malherbe, Emilio Domínguez-Sánchez, Merwan Barlier, Igor Colin 等ICML 2024
它引用的顶会 Paper3
- Robustness Analysis of Non-Convex Stochastic Gradient Descent using Biased ExpectationsKevin Scaman, Cédric MalherbeNeurIPS 2020 · 被引用 37 次
- Beyond Submodular Maximization via One-Sided SmoothnessMehrdad Ghadiri, Richard Santiago, F. Bruce ShepherdSODA 2021 · 被引用 8 次
- A Parameterized Family of Meta-Submodular FunctionsMehrdad Ghadiri, Richard Santiago, F. Bruce ShepherdSODA 2024
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