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Journal Article

Tail‐dependent spatial synchrony arises from nonlinear driver–response relationships

Jonathan A. Walter; Max C. N. Castorani; Tom W. Bell; Lawrence W. Sheppard; Kyle C. Cavanaugh; Daniel C. Reuman
Ecology Letters · Vol. 25, Issue 5 · pp. 1189-1201 · 2022

Abstract

Spatial synchrony may be tail‐dependent, that is, stronger when populations are abundant than scarce, or vice‐versa. Here, ‘tail‐dependent’ follows from distributions having a lower tail consisting of relatively low values and an upper tail of relatively high values. We present a general theory of how the distribution and correlation structure of an environmental driver translates into tail‐dependent spatial synchrony through a non‐linear response, and examine empirical evidence for theoretical predictions in giant kelp along the California coastline. In sheltered areas, kelp declines synchronously (lower‐tail dependence) when waves are relatively intense, because waves below a certain height do little damage to kelp. Conversely, in exposed areas, kelp is synchronised primarily by periods of calmness that cause shared recovery (upper‐tail dependence). We find evidence for geographies of tail dependence in synchrony, which helps structure regional population resilience: areas where population declines are asynchronous may be more resilient to disturbance because remnant populations facilitate reestablishment.

Bibliographic Information

JournalEcology Letters
PublisherWiley
Publication Date2022-05-01
Publication Year2022
Volume25
Issue5
Pages1189-1201
Document TypeJournal Article
Print ISSN1461-023X
eISSN1461-0248
DOI10.1111/ele.13991
SubjectEcology & Organismal Biology

Access Information

NARA Access Coverage1998-01-01~Current
Journal Homepagehttps://onlinelibrary.wiley.com/loi/14610248
Publisher PageOpen Publisher Page
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