Dataset

Data from: Moving on with foraging theory: Incorporating movement decisions into the functional response of a gregarious shorebird

van Gils, J. A. (Creator), van der Geest, M. (Creator), De Meulenaer, B. (Creator), Gillis, H. (Creator), Piersma, T. (Creator), Folmer, E. (Creator), University of Groningen, 8-Oct-2014

Dataset

  • Jan A. van Gils (Creator)
  • Matthijs van der Geest (Creator)
  • Brecht De Meulenaer (Creator)
  • Hanneke Gillis (Creator)
  • Theunis Piersma (Creator)
  • Eelke Folmer (Creator)

Description

1. Models relating intake rate to food abundance and competitor densities (generalized functional response models) can predict forager distributions and movements between patches, but we lack understanding of how distributions and small-scale movements by the foragers themselves affect intake rates. 2. Using a state-of-the-art approach based on continuous-time Markov chain dynamics, we add realism to classic functional response models by acknowledging that the chances to encounter food and competitors are influenced by movement decisions, and, vice versa, that movement decisions are influenced by these encounters. 3. We used a multi-state modelling framework to construct a stochastic functional response model in which foragers alternate between three behavioural states: searching, handling and moving. 4. Using behavioural observations on a molluscivore migrant shorebird (red knot, Calidris canutus canutus), at its main wintering area (Banc d'Arguin, Mauritania), we estimated transition rates between foraging states as a function of conspecific densities and densities of the two main bivalve prey. 5. Intake rate decreased with conspecific density. This interference effect was not due to decreased searching efficiency, but resulted from time lost to avoidance movements. 6. Red knots showed a strong functional response to one prey (Dosinia isocardia), but a weak response to the other prey (Loripes lucinalis). This corroborates predictions from a recently developed optimal diet model that accounts for the mildly toxic effects due to consuming Loripes. 7. Using model-averaging across the most plausible multi-state models, the fully parameterized functional response model was then used to predict intake rate for an independent dataset on habitat choice by red knot. 8. Comparison of the sites selected by red knots with random sampling sites showed that the birds fed at sites with higher than average Loripes and Dosinia densities, i.e. sites for which we predicted higher than average intake rates. 9. We discuss the limitations of Holling's classical functional response model that ignores movement and the limitations of contemporary movement ecological theory ignoring consumer-resource interactions. With the rapid advancement of technologies to track movements of individual foragers at fine spatial scales, the time seems ripe to integrate descriptive tracking studies with stochastic movement-based functional response models.

The data package contains four datasets.
Date made available8-Oct-2014
PublisherUniversity of Groningen
Temporal coverage2007 - 2008
Geographical coverageBanc d'Arguin, Mauritania, Iwik
Access to the dataset Open
Contact researchdata@rug.nl

    Keywords on Datasets

  • competition, continuous-time Markov chain, cryptic interference, diet, distribution, habitat choice, movement ecology, intake rate, predation, toxic prey, Calidris canutus, Loripes lucinalis, Dosinia isocardia, Zostera noltii
Related Publications
  1. Moving on with foraging theory: Incorporating movement decisions into the functional response of a gregarious shorebird

    van Gils, J. A., van der Geest, M., De Meulenaer, B., Gillis, H., Piersma, T. & Folmer, E. O., 5-Mar-2015, In : Journal of Animal Ecology. 84, 2, p. 554–564

    Research output: Contribution to journalArticleAcademicpeer-review

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