Dynamic Connectivity with Expected Polylogarithmic Worst-Case Update Time
Simon Meierhans, Maximilian Probst Gutenberg
摘要
Whether a graph G = (V, E) is connected is arguably its most fundamental property. Naturally, connectivity was the first characteristic studied for dynamic graphs, i.e. graphs that undergo edge insertions and deletions. While connectivity algorithms with polylogarithmic amortized update time have been known since the 90s, achieving worst-case guarantees has proven more elusive.
Two recent breakthroughs have made important progress on this question: (1) Kapron, King and Mountjoy [SODA'13; Best Paper] gave a Monte-Carlo algorithm with polylogarithmic worst-case update time, and (2) Nanongkai, Saranurak and Wulff-Nilsen [STOC'17, FOCS'17] obtained a Las-Vegas data structure, however, with subpolynomial worst-case update time. Their algorithm was subsequently .
In this article, we present a new dynamic connectivity algorithm based on the popular core graph framework that maintains a hierarchy interleaving vertex and edge sparsification. Previous dynamic implementations of the core graph framework required subpolynomial update time. In contrast, we show how to implement it for dynamic connectivity with polylogarithmic expected worst-case update time.
We further show that the algorithm can be de-randomized efficiently: a deterministic static algorithm for computing a connectivity edge-sparsifier of low congestion in time T (m) • m on an m-edge graph yields a deterministic dynamic connectivity algorithm with O(T (m)) worst-case update time. Via current state-of-the-art algorithms [STOC'24], we obtain T (m) = m o(1) and recover deterministic subpolynomial worst-case update time.
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它引用的顶会 Paper4
- A Deterministic Algorithm for Balanced Cut with Applications to Dynamic Connectivity, Flows, and BeyondJulia Chuzhoy, Yu Gao, Jason Li, Danupon Nanongkai 等FOCS 2020 · 被引用 76 次
- The Expander Hierarchy and its Applications to Dynamic Graph AlgorithmsGramoz Goranci, Harald Räcke, Thatchaphol Saranurak, Zihan TanSODA 2021 · 被引用 41 次
- A Dynamic Shortest Paths Toolbox: Low-Congestion Vertex Sparsifiers and Their ApplicationsRasmus Kyng, Simon Meierhans, Maximilian Probst GutenbergSTOC 2024 · 被引用 2 次
- Expander Pruning with Polylogarithmic Worst-Case Recourse and Update TimeSimon Meierhans, Maximilian Probst Gutenberg, Thatchaphol SaranurakSODA 2026
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