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Research Article

Linking animal-borne video to accelerometers reveals prey capture variability

Yuuki Y. Watanabe and Akinori Takahashi
  1. National Institute of Polar Research, Tachikawa, Tokyo 190-8518, Japan

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PNAS first published January 22, 2013; https://doi.org/10.1073/pnas.1216244110
Yuuki Y. Watanabe
National Institute of Polar Research, Tachikawa, Tokyo 190-8518, Japan
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  • For correspondence: watanabe.yuuki@nipr.ac.jp
Akinori Takahashi
National Institute of Polar Research, Tachikawa, Tokyo 190-8518, Japan
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  1. Edited by James H. Brown, University of New Mexico, Albuquerque, NM, and approved December 13, 2012 (received for review September 24, 2012)

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Abstract

Understanding foraging is important in ecology, as it determines the energy gains and, ultimately, the fitness of animals. However, monitoring prey captures of individual animals is difficult. Direct observations using animal-borne videos have short recording periods, and indirect signals (e.g., stomach temperature) are never validated in the field. We took an integrated approach to monitor prey captures by a predator by deploying a video camera (lasting for 85 min) and two accelerometers (on the head and back, lasting for 50 h) on free-swimming Adélie penguins. The movies showed that penguins moved the heads rapidly to capture krill in midwater and fish (Pagothenia borchgrevinki) underneath the sea ice. Captures were remarkably fast (two krill per second in swarms) and efficient (244 krill or 33 P. borchgrevinki in 78–89 min). Prey captures were detected by the signal of head acceleration relative to body acceleration with high sensitivity and specificity (0.83–0.90), as shown by receiver-operating characteristic analysis. Extension of signal analysis to the entire behavioral records showed that krill captures were spatially and temporally more variable than P. borchgrevinki captures. Notably, the frequency distribution of krill capture rate closely followed a power-law model, indicating that the foraging success of penguins depends on a small number of very successful dives. The three steps illustrated here (i.e., video observations, linking video to behavioral signals, and extension of signal analysis) are unique approaches to understanding the spatial and temporal variability of ecologically important events such as foraging.

  • biologging
  • marine predator
  • power-law distribution

Footnotes

  • ↵1To whom correspondence should be addressed. E-mail: watanabe.yuuki{at}nipr.ac.jp.
  • Author contributions: Y.Y.W. and A.T. designed research; Y.Y.W. and A.T. performed research; Y.Y.W. analyzed data; and Y.Y.W. wrote the paper.

  • The authors declare no conflict of interest.

  • This article is a PNAS Direct Submission.

  • This article contains supporting information online at www.pnas.org/lookup/suppl/doi:10.1073/pnas.1216244110/-/DCSupplemental.

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Variable prey capture in penguins
Yuuki Y. Watanabe, Akinori Takahashi
Proceedings of the National Academy of Sciences Jan 2013, 201216244; DOI: 10.1073/pnas.1216244110

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Variable prey capture in penguins
Yuuki Y. Watanabe, Akinori Takahashi
Proceedings of the National Academy of Sciences Jan 2013, 201216244; DOI: 10.1073/pnas.1216244110
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