eng
Schloss Dagstuhl – Leibniz-Zentrum für Informatik
Leibniz International Proceedings in Informatics
1868-8969
2022-09-15
29:1
29:22
10.4230/LIPIcs.APPROX/RANDOM.2022.29
article
A Fully Adaptive Strategy for Hamiltonian Cycles in the Semi-Random Graph Process
Gao, Pu
1
MacRury, Calum
2
Prałat, Paweł
3
Department of Combinatorics and Optimization, University of Waterloo, Canada
Department of Computer Science, University of Toronto, Canada
Department of Mathematics, Toronto Metropolitan University, Canada
The semi-random graph process is a single player game in which the player is initially presented an empty graph on n vertices. In each round, a vertex u is presented to the player independently and uniformly at random. The player then adaptively selects a vertex v, and adds the edge uv to the graph. For a fixed monotone graph property, the objective of the player is to force the graph to satisfy this property with high probability in as few rounds as possible.
We focus on the problem of constructing a Hamiltonian cycle in as few rounds as possible. In particular, we present an adaptive strategy for the player which achieves it in α n rounds, where α < 2.01678 is derived from the solution to some system of differential equations. We also show that the player cannot achieve the desired property in less than β n rounds, where β > 1.26575. These results improve the previously best known bounds and, as a result, the gap between the upper and lower bounds is decreased from 1.39162 to 0.75102.
https://drops.dagstuhl.de/storage/00lipics/lipics-vol245-approx-random2022/LIPIcs.APPROX-RANDOM.2022.29/LIPIcs.APPROX-RANDOM.2022.29.pdf
Random graphs and processes
Online adaptive algorithms
Hamiltonian cycles
Differential equation method