Behavioral sequences across multiple animal species in the wild share common structural features

P Pranav Minasandra (Department for the Ecology of Animal Societies) E Emily M. Grout (Department for the Ecology of Animal Societies) K Katrina Brock (Department for the Ecology of Animal Societies) M Margaret C. Crofoot (Department for the Ecology of Animal Societies) V Vlad Demartsev (Department for the Ecology of Animal Societies) A Andrew S. Gersick (Department of Ecology and Evolutionary Biology) B Ben T. Hirsch (Smithsonian Tropical Research Institute) K Kay E. Holekamp (Department of Integrative Biology, Michigan State University) L Lily Johnson-Ulrich (Kalahari Meerkat Project, Kuruman River Reserve) A Amlan Nayak (Department for the Ecology of Animal Societies) J Josué Ortega (Department for the Ecology of Animal Societies) M Marie A. Roch (Department of Computer Science) E Eli D. Strauss (Department for the Ecology of Animal Societies) A Ariana Strandburg-Peshkin (Centre for the Advanced Study of Collective Behaviour, University of Konstanz)

Abstract

Animal behavior can be decomposed into a sequence of discrete activity bouts over time. Analyzing the statistical structure of such behavioral sequences can provide insights into the drivers of behavioral decisions. Laboratory studies, predominantly in invertebrates, have suggested that behavioral sequences exhibit multiple timescales and long-range memory, but whether these results can be generalized to other taxa and to animals in natural settings remains unclear. By analyzing accelerometer-inferred predictions of behavioral states in three species of social mammals (meerkats, white-nosed coatis, and spotted hyenas) in the wild, we found surprisingly consistent structuring of behavioral sequences across all behavioral states, all individuals, and all study species. Behavioral bouts were characterized by decreasing hazard functions, wherein the longer a behavioral bout had progressed, the less likely it was to end within the next instant. The predictability of an animal’s future behavioral state as a function of its present state always decreased as a truncated power-law for predictions made farther into the future, with very similar estimates for the power law exponent across all species. Finally, the distributions of bout durations were also heavy-tailed. Why such shared structural principles emerge remains unknown, and we explore multiple plausible explanations, including environmental nonstationarity, behavioral self-reinforcement, and the hierarchical nature of behavior. The existence of highly consistent patterns in behavioral sequences across our study species suggests that these phenomena could be widespread in nature, and points to the existence of fundamental properties of behavioral dynamics that could drive such convergent patterns.

Article Details

Volume / Issue Vol. 122, Issue 20
Published May 20, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (14)

P

Pranav Minasandra

Department for the Ecology of Animal Societies

E

Emily M. Grout

Department for the Ecology of Animal Societies

K

Katrina Brock

Department for the Ecology of Animal Societies

M

Margaret C. Crofoot

Department for the Ecology of Animal Societies

V

Vlad Demartsev

Department for the Ecology of Animal Societies

A

Andrew S. Gersick

Department of Ecology and Evolutionary Biology

B

Ben T. Hirsch

Smithsonian Tropical Research Institute

K

Kay E. Holekamp

Department of Integrative Biology, Michigan State University

L

Lily Johnson-Ulrich

Kalahari Meerkat Project, Kuruman River Reserve

A

Amlan Nayak

Department for the Ecology of Animal Societies

J

Josué Ortega

Department for the Ecology of Animal Societies

M

Marie A. Roch

Department of Computer Science

E

Eli D. Strauss

Department for the Ecology of Animal Societies

A

Ariana Strandburg-Peshkin

Centre for the Advanced Study of Collective Behaviour, University of Konstanz