Tung Anh Vu

dblp:329/1346 · DBLP profile ↗
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5ranked-venue papers
0as first author
5since 2021 · last 2026
0000-0002-8902-5196ORCID · corroborated

Domains — the database's venue-derived domains; a paper can count in several

Theory of computation · 4 · 4 since 2021Artificial intelligence and machine learning · 1 · 1 since 2021Graphics, computer vision, multimedia, augmented reality and games · 1 · 1 since 2021
YearPublicationVenuePosition
2026 Generalized k-Center: Distinguishing Doubling and Highway Dimension
Andreas Emil Feldmann, Tung Anh Vu
Algorithmica2
2025 Solving Multiagent Path Finding on Highly Centralized Networks
abstract
The Mutliagent Path Finding (MAPF) problem consists of identifying the trajectories that a set of agents should follow inside a given network in order to reach their desired destinations as soon as possible, but without colliding with each other. We aim to minimize the maximum time any agent takes to reach their goal, ensuring optimal path length. In this work, we complement a recent thread of results that aim to systematically study the algorithmic behavior of this problem, through the parameterized complexity point of view. First, we show that MAPF is NP-hard when the given network has a star-like topology (bounded vertex cover number) or is a tree with 11 leaves. Both of these results fill important gaps in our understanding of the tractability of this problem that were left untreated in the recent work of Fioravantes et al., Exact Algorithms and Lowerbounds for Multiagent Path Finding: Power of Treelike Topology, presented in AAAI'24. Nevertheless, our main contribution is an exact algorithm that scales well as the input grows (FPT) when the topology of the given network is highly centralized (bounded distance to clique). This parameter is significant as it mirrors real-world networks. In such environments, a bunch of central hubs or nodes (e.g., processing areas) are connected to peripheral nodes.
Foivos Fioravantes, Dusan Knop, Jan Matyás Kristan, Nikolaos Melissinos, Michal Opler, Tung Anh Vu
AAAI6
2025 (Near)-Optimal Algorithms for Sparse Separable Convex Integer Programs
Christoph Hunkenschröder, Martin Koutecký, Asaf Levin, Tung Anh Vu
IPCO4
2023 Bounds on Functionality and Symmetric Difference - Two Intriguing Graph Parameters
Pavel Dvorák, Lukás Folwarczný, Michal Opler, Pavel Pudlák, Robert Sámal, Tung Anh Vu
WG6
2022 Generalized k-Center: Distinguishing Doubling and Highway Dimension
Andreas Emil Feldmann, Tung Anh Vu
WG2