Almost global problems in the LOCAL model

Abstract: The landscape of the distributed time complexity is nowadays well-understood for subpolynomial complexities. When we look at deterministic algorithms in the LOCAL model and locally checkable problems (LCLs) in bounded-degree graphs, the following picture emerges:

– There are lots of problems with time complexities of Θ(log∗ n) or Θ(log n).
– It is not possible to have a problem with complexity between ω(log∗ n) and o(log n).
– In general graphs, we can construct LCL problems with infinitely many complexities between ω(log n) and no(1).
– In trees, problems with such complexities do not exist.

However, the high end of the complexity spectrum was left open by prior work. In general graphs there are LCL problems with complexities of the form Θ(nα) for any rational 0 < α ≤ 1/2, while for trees only complexities of the form Θ(n1/k) are known. No LCL problem with complexity between ω(√n) and o(n) is known, and neither are there results that would show that such problems do not exist. We show that:

– In general graphs, we can construct LCL problems with infinitely many complexities between ω(√n) and o(n).
– In trees, problems with such complexities do not exist.

Put otherwise, we show that any LCL with a complexity o(n) can be solved in time O(√n) in trees, while the same is not true in general graphs

Location
Deutsche Nationalbibliothek Frankfurt am Main
Extent
Online-Ressource
Language
Englisch
Notes
Distributed computing. - 34, 4 (2021) , 259-281, ISSN: 1432-0452

Event
Veröffentlichung
(where)
Freiburg
(who)
Universität
(when)
2022
Creator
Balliu, Alkida
Brandt, Sebastian
Olivetti, Dennis
Suomela, Jukka

DOI
10.1007/s00446-020-00375-2
URN
urn:nbn:de:bsz:25-freidok-2263626
Rights
Open Access; Der Zugriff auf das Objekt ist unbeschränkt möglich.
Last update
15.08.2025, 7:30 AM CEST

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Time of origin

  • 2022

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