Spatiotemporal modelling of marine movement data using Template Model Builder (TMB)

Marie Auger-Méthé, Christoffer M. Albertsen, Ian D. Jonsen, Andrew E. Derocher, Damian C. Lidgard, Katharine R. Studholme, W. Don Bowen, Glenn T. Crossin, Joanna Mills Flemming

Producción científica: Contribución a una revistaArtículorevisión exhaustiva

42 Citas (Scopus)

Resumen

Tracking of marine animals has increased exponentially in the past decade, and the resulting data could lead to an in-depth understanding of the causes and consequences of movement in the ocean. However, most common marine tracking systems are associated with large measurement errors. Accounting for these errors requires the use of hierarchical models, which are often difficult to fit to data. Using 3 case studies, we demonstrate that Template Model Builder (TMB), a new R package, is an accurate, efficient and flexible framework for modelling movement data. First, to demonstrate that TMB is as accurate but 30 times faster than bsam, a popular R package used to apply state-space models to Argos data, we modelled polar bear Ursus maritimus Argos data and compared the locations estimated by the models to GPS locations of these same bears. Second, to demonstrate how TMBs gain in efficiency and frequentist framework facilitate model comparison, we developed models with different error structures and compared them to find the most effective model for light-based geolocations of rhinoceros auklets Cerorhinca monocerata. Finally, to maximize efficiency through TMBs use of the Laplace approximation of the marginal likelihood, we modelled behavioural changes with continuous rather than discrete states. This new model directly accounts for the irregular sampling intervals characteristic of Fastloc-GPS data of grey seals Halichoerus grypus. Using real and simulated data, we show that TMB is a fast and powerful tool for modelling marine movement data. We discuss how TMBs potential reaches beyond marine movement studies.

Idioma originalEnglish
Páginas (desde-hasta)237-249
Número de páginas13
PublicaciónMarine Ecology - Progress Series
Volumen565
DOI
EstadoPublished - feb. 17 2017

Nota bibliográfica

Publisher Copyright:
© The authors 2017.

ASJC Scopus Subject Areas

  • Ecology, Evolution, Behavior and Systematics
  • Aquatic Science
  • Ecology

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