An individual-based model of skipjack tuna (Katsuwonus pelamis) movement in the tropical Pacific ocean

Publication date

2018-05-01

Authors

Scutt Phillips, JoeISNI 0000000507425316
Sen Gupta, Alex
Senina, Inna
van Sebille, ErikORCID 0000-0003-2041-0704ISNI 0000000388128000
Lange, Michael
Lehodey, Patrick
Hampton, John
Nicol, Simon

Editors

Advisors

Supervisors

Document Type

Article
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License

cc_by_nc_nd

Abstract

The distribution of marine species is often modeled using Eulerian approaches, in which changes to population density or abundance are calculated at fixed locations in space. Conversely, Lagrangian, or individual-based, models simulate the movement of individual particles moving in continuous space, with broader-scale patterns such as distribution being an emergent property of many, potentially adaptive, individuals. These models offer advantages in examining dynamics across spatiotemporal scales and making comparisons with observations from individual-scale data. Here, we introduce and describe such a model, the Individual-based Kinesis, Advection and Movement of Ocean ANimAls model (Ikamoana), which we use to replicate the movement processes of an existing Eulerian model for marine predators (the Spatial Ecosystem and Population Dynamics Model, SEAPODYM). Ikamoana simulates the movement of either individual or groups of animals by physical ocean currents, habitat-dependent stochastic movements (kinesis), and taxis movements representing active searching behaviours. Applying our model to Pacific skipjack tuna (Katsuwonus pelamis), we show that it accurately replicates the evolution of density distribution simulated by SEAPODYM with low time-mean error and a spatial correlation of density that exceeds 0.96 at all times. We demonstrate how the Lagrangian approach permits easy tracking of individuals’ trajectories for examining connectivity between different regions, and show how the model can provide independent estimates of transfer rates between commonly used assessment regions. In particular, we find that retention rates in most assessment regions are considerably smaller (up to a factor of 2) than those estimated by this population of skipjack's primary assessment model. Moreover, these rates are sensitive to ocean state (e.g. El Nino vs La Nina) and so assuming fixed transfer rates between regions may lead to spurious stock estimates. A novel feature of the Lagrangian approach is that individual schools can be tracked through time, and we demonstrate that movement between two assessment regions at broad temporal scales includes extended transits through other regions at finer-scales. Finally, we discuss the utility of this modeling framework for the management of marine reserves, designing effective monitoring programmes, and exploring hypotheses regarding the behaviour of hard-to-observe oceanic animals.

Keywords

Aquatic Science, Geology, SDG 14 - Life Below Water

Citation

Scutt Phillips, J, Sen Gupta, A, Senina, I, van Sebille, E, Lange, M, Lehodey, P, Hampton, J & Nicol, S 2018, 'An individual-based model of skipjack tuna (Katsuwonus pelamis) movement in the tropical Pacific ocean', Progress in Oceanography, vol. 164, pp. 63-74. https://doi.org/10.1016/j.pocean.2018.04.007