A phase transition in excursions from infinity of the "fast" fragmentation-coalescence process
Abstract
An important property of Kingman's coalescent is that, starting from a state with an infinite number of blocks, over any positive time horizon, it transitions into an almost surely finite number of blocks. This is known as `coming down from infinity'. Moreover, of the many different (exchangeable) stochastic coalescent models, Kingman's coalescent is the `fastest' to come down from infinity. In this article we study what happens when we counteract this `fastest' coalescent with the action of an extreme form of fragmentation. We augment Kingman's coalescent, where any two blocks merge at rate , with a fragmentation mechanism where each block fragments at constant rate, , into it's constituent elements. We prove that there exists a phase transition at , between regimes where the resulting `fast' fragmentation-coalescence process is able to come down from infinity or not. In the case that we develop an excursion theory for the fast fragmentation-coalescence process out of which a number of interesting quantities can be computed explicitly.
Keywords
Cite
@article{arxiv.1602.05241,
title = {A phase transition in excursions from infinity of the "fast" fragmentation-coalescence process},
author = {Andreas E. Kyprianou and Steven Pagett and Tim Rogers and Jason Schweinsberg},
journal= {arXiv preprint arXiv:1602.05241},
year = {2017}
}
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