Abstract
We study unlabeled multi-robot motion planning for unit-disk robots in a polygonal environment. Although the problem is hard in general, polynomial-time solutions exist under appropriate separation assumptions on start and target positions. Solovey et al. (RSS’15) provide a near-optimal solution assuming that start/target positions must have pairwise distance at least 4, and at least √5 ≈ 2.236 from obstacles. This raises the question of whether polynomial-time algorithms can be obtained in even more densely packed environments. In this paper we present a generalized algorithm that achieve different trade-offs on the robots-separation and obstacles-separation bounds, all significantly improving upon the state of the art. Specifically, we obtain polynomial-time constant-approximation algorithms to minimize the total path length when (i) the robots-separation is 2 2/3 and the obstacles-separation is1 2/3, or (ii) the robots-separation is ≈ 3.291 and the obstacles-separation ≈ 1.354. Additionally, we introduce a different strategy yielding a polynomial-time solution when the robots-separation is only 2, and the obstacles-separation is 3. Finally, we show that without any robots-separation assumption, obstacles-separation of at least 1.5 may be necessary for a solution to exist.
| Original language | English |
|---|---|
| Title of host publication | 42nd International Symposium on Computational Geometry, SoCG 2026 |
| Editors | Hee-Kap Ahn, Michael Hoffmann, Amir Nayyeri |
| Publisher | Schloss Dagstuhl- Leibniz-Zentrum fur Informatik GmbH, Dagstuhl Publishing |
| ISBN (Electronic) | 9783959774185 |
| DOIs | |
| State | Published - 27 May 2026 |
| Event | 42nd International Symposium on Computational Geometry, SoCG 2026 - New Brunswick, United States Duration: 2 Jun 2026 → 5 Jun 2026 |
Publication series
| Name | Leibniz International Proceedings in Informatics, LIPIcs |
|---|---|
| Volume | 367 |
| ISSN (Print) | 1868-8969 |
Conference
| Conference | 42nd International Symposium on Computational Geometry, SoCG 2026 |
|---|---|
| Country/Territory | United States |
| City | New Brunswick |
| Period | 2/06/26 → 5/06/26 |
Bibliographical note
Publisher Copyright:© Tsuri Farhana, Omrit Filtser, and Shalev Goldshtein;
Keywords
- multi-robot motion planning
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