Entropy Regularization and Faster Decremental Matching in General Graphs
Jiale Chen, Aaron Sidford, Ta-Wei Tu
摘要
We provide an algorithm that maintains, against an adaptive adversary, a (1-ε)-approximate maximum matching in n-node m-edge general (not necessarily bipartite) undirected graph undergoing edge deletions with high probability with (amortized) O(poly(ε -1 , log n)) time per update. We also obtain the same update time for maintaining a fractional approximate weighted matching (and hence an approximation to the value of the maximum weight matching) and an integral approximate weighted matching in dense graphs. 1 Our unweighted result improves upon the prior state-of-the-art which includes a poly(log n) • 2 O(1/ε 2 ) update time [Assadi-Bernstein-Dudeja 2022] and an O( √ mε -2 ) update time [Gupta-Peng 2013], and our weighted result improves upon the O( √ mε -O(1/ε) log n) update time due to [Gupta-Peng 2013].
To obtain our results, we generalize a recent optimization approach to dynamic algorithms from [Jambulapati-Jin-Sidford-Tian 2022]. We show that repeatedly solving entropy-regularized optimization problems yields a lazy updating scheme for fractional decremental problems with a near-optimal number of updates. To apply this framework we develop optimization methods compatible with it and new dynamic rounding algorithms for the matching polytope.
1 Independently and concurrently, Aditi Dudeja obtained new decremental weighted matching results for general graphs [Dud24a].
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引用它的顶会 Paper5
- Matching Composition and Efficient Weight Reduction in Dynamic MatchingAaron Bernstein, Jiale Chen, Aditi Dudeja, Zachary Langley 等SODA 2025 · 被引用 5 次
- Deterministic Dynamic Maximal Matching in Sublinear Update TimeAaron Bernstein, Sayan Bhattacharya, Peter Kiss, Thatchaphol SaranurakSTOC 2025 · 被引用 2 次
- Almost-Linear Time Algorithms for Decremental Graphs: Min-Cost Flow and More via DualityJan van den Brand, Li Chen, Rasmus Kyng, Yang P. Liu 等FOCS 2024 · 被引用 1 次
- From Unweighted to Weighted Dynamic Matching in Non-Bipartite Graphs: A Low-Loss ReductionAaron Bernstein, Jiale ChenSODA 2026
- Low-Sensitivity Matching via Sampling from Gibbs DistributionsYuichi Yoshida, Zihan ZhangSODA 2026
它引用的顶会 Paper18
- Bipartite Matching in Nearly-linear Time on Moderately Dense GraphsJan van den Brand, Yin Tat Lee, Danupon Nanongkai, Richard Peng 等FOCS 2020 · 被引用 72 次
- Deterministic Decremental Reachability, SCC, and Shortest Paths via Directed Expanders and Congestion BalancingAaron Bernstein, Maximilian Probst Gutenberg, Thatchaphol SaranurakFOCS 2020 · 被引用 35 次
- Unit Capacity Maxflow in Almost TimeTarun Kathuria, Yang P. Liu, Aaron SidfordFOCS 2020 · 被引用 21 次
- A framework for dynamic matching in weighted graphsAaron Bernstein, Aditi Dudeja, Zachary LangleySTOC 2021 · 被引用 18 次
- Faster Sparse Minimum Cost Flow by Electrical Flow LocalizationKyriakos Axiotis, Aleksander Madry, Adrian VladuFOCS 2021 · 被引用 14 次
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