From Unweighted to Weighted Dynamic Matching in Non-Bipartite Graphs: A Low-Loss Reduction
Aaron Bernstein, Jiale Chen
Abstract
We study the approximate maximum weight matching (MWM) problem in a fully dynamic graph subject to edge insertions and deletions. We design meta-algorithms that reduce the problem to the unweighted approximate maximum cardinality matching (MCM) problem. Despite recent progress on bipartite graphs – Bernstein-Dudeja-Langley (STOC 2021) and Bernstein-Chen-Dudeja-Langley-Sidford-Tu (SODA 2025) – the only previous meta-algorithm that applied to non-bipartite graphs suffered a approximation loss (Stubbs-Williams, ITCS 2017). We significantly close the weighted-and-unweighted gap by showing the first low-loss reduction that transforms any fully dynamic -approximate MCM algorithm on bipartite graphs into afully dynamic –approximate MWM algorithm on general (not necessarily bipartite) graphs, with only a overhead in the update time. Central to our approach is a new primal–dual framework that reduces the computation of an approximate MWM in general graphs to a sequence of approximate induced matching queries on an auxiliary bipartite extension. In addition, we give the first conditional lower bound on approximate partially dynamic matching with worst-case update time.
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- Deterministic Decremental Reachability, SCC, and Shortest Paths via Directed Expanders and Congestion BalancingAaron Bernstein, Maximilian Probst Gutenberg, Thatchaphol SaranurakFOCS 2020 · 35 citations
- A framework for dynamic matching in weighted graphsAaron Bernstein, Aditi Dudeja, Zachary LangleySTOC 2021 · 18 citations
- Deterministic (1+ε)-approximate maximum matching with poly(1/ε) passes in the semi-streaming model and beyondManuela Fischer, Slobodan Mitrovic, Jara UittoSTOC 2022 · 11 citations
- Dynamic (1+ϵ)-Approximate Matching Size in Truly Sublinear Update TimeSayan Bhattacharya, Peter Kiss, Thatchaphol SaranurakFOCS 2023 · 9 citations
- Matching Composition and Efficient Weight Reduction in Dynamic MatchingAaron Bernstein, Jiale Chen, Aditi Dudeja, Zachary Langley et al.SODA 2025 · 5 citations
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