Access the full text.
Sign up today, get DeepDyve free for 14 days.
P. Trathan, B. Wienecke, C. Barbraud, S. Jenouvrier, G. Kooyman, C. Bohec, D. Ainley, A. Ancel, D. Zitterbart, S. Chown, M. Larue, Robin Cristofari, J. Younger, Gemma Clucas, C. Bost, J. Brown, Harriet Gillett, P. Fretwell (2020)
The emperor penguin - Vulnerable to projected rates of warming and sea ice lossBiological Conservation
J. Hoef, K. Frost (2003)
A Bayesian hierarchical model for monitoring harbor seal changes in Prince William Sound, AlaskaEnvironmental and Ecological Statistics, 10
S. Wray, W. Cresswell, P. White, S. Harris (1992)
Wildlife telemetry - remote monitoring and tracking of animals
W. Smith, D. Ainley, K. Arrigo, M. Dinniman (2014)
The oceanography and ecology of the Ross Sea.Annual review of marine science, 6
H. Lynch, M. Larue (2014)
First global census of the Adélie Penguin, 131
S. Jenouvrier, M. Holland, J. Stroeve, M. Serreze, C. Barbraud, H. Weimerskirch, H. Caswell (2014)
Projected continent-wide declines of the emperor penguin under climate changeNature Climate Change, 4
P. Fretwell, M. Larue, P. Morin, G. Kooyman, B. Wienecke, N. Ratcliffe, A. Fox, A. Fleming, C. Porter, P. Trathan (2012)
An Emperor Penguin Population Estimate: The First Global, Synoptic Survey of a Species from SpacePLoS ONE, 7
S. Richter, Richard Gerum, A. Winterl, A. Houstin, M. Seifert, J. Peschel, B. Fabry, C. Bohec, D. Zitterbart (2018)
Phase transitions in huddling emperor penguinsJournal of Physics D: Applied Physics, 51
(2020)
R: a language and environment for statistical computing
S. Jenouvrier, J. Garnier, F. Patout, L. Desvillettes (2017)
Influence of dispersal processes on the global dynamics of Emperor penguin, a species threatened by climate changeBiological Conservation, 212
C. Foley, W. Fagan, H. Lynch (2020)
Correcting for within-season demographic turnover to estimate the island-wide population of King Penguins (Aptenodytes patagonicus) on South GeorgiaPolar Biology, 43
R. Kirkwood, G. Robertson (1997)
Seasonal change in the foraging ecology of emperor penguins on the Mawson Coast, AntarcticaMarine Ecology Progress Series, 156
A. Zuur, E. Ieno, C. Elphick (2010)
A protocol for data exploration to avoid common statistical problemsMethods in Ecology and Evolution, 1
A. Ancel, G. Kooyman, P. Ponganis, J. Gendner, J. Lignon, X. Mestre, N. Huin, P. Thorson, P. Robisson, Y. Maho (1992)
Foraging behaviour of emperor penguins as a resource detector in winter and summerNature, 360
Per Capita, E. Dawson, Myfan Jordan (1995)
About the authorsMachine Vision and Applications, 1
C. Barbraud, H. Weimerskirch (2001)
Emperor penguins and climate changeNature, 411
Y. Le Maho (1977)
The emperor penguin: a strategy to live and breed in the cold: morphology, physiology, ecology, and behavior distinguish the polar emperor penguin from other penguin species, particularly from its close relative, the king penguin, 65
(2020)
2020) R: a language and environment
A.F. Zuur, E.N. Leno, C.S. Elphick (2010)
A protocol for data exploration to avoid common statistical problems: data exploration, 1
(2019)
Bayesian Hierarchical ModelPractical Applications of Bayesian Reliability
P. Fretwell, P. Trathan (2020)
Discovery of new colonies by Sentinel2 reveals good and bad news for emperor penguinsRemote Sensing in Ecology and Conservation, 7
R. Sabalis, C. Lenton, C. Heaps, D. Stark, J. Clarke, Foster (2019)
VIENNA, AUSTRIA:Finding Edith
G. Kooyman, P. Ponganis (2016)
Rise and fall of Ross Sea emperor penguin colony populations: 2000 to 2012Antarctic Science, 29
C. McMahon, H. Howe, J. Hoff, R. Alderman, H. Brolsma, M. Hindell (2014)
Satellites, the All-Seeing Eyes in the Sky: Counting Elephant Seals from SpacePLoS ONE, 9
M. Wege, L. Salas, M. Larue (2020)
Citizen science and habitat modelling facilitates conservation planning for crabeater seals in the Weddell SeaDiversity and Distributions, 26
P. Fretwell, P. Trathan (2009)
Penguins from space: faecal stains reveal the location of emperor penguin coloniesGlobal Ecology and Biogeography, 18
S. Richter, Richard Gerum, W. Schneider, B. Fabry, C. Bohec, D. Zitterbart (2018)
A remote‐controlled observatory for behavioural and ecological research: A case study on emperor penguinsMethods in Ecology and Evolution, 9
S. Barber-Meyer, G. Kooyman, P. Ponganis (2007)
Estimating the relative abundance of emperor penguins at inaccessible colonies using satellite imageryPolar Biology, 30
Noah Strycker, M. Wethington, Alex Borowicz, Steven Forrest, C. Witharana, T. Hart, H. Lynch (2020)
A global population assessment of the Chinstrap penguin (Pygoscelis antarctica)Scientific Reports, 10
C. Gilbert, D. McCafferty, Y. Maho, J. Martrette, S. Giroud, S. Blanc, A. Ancel (2009)
One for all and all for one: the energetic benefits of huddling in endothermsBiological Reviews, 85
J. Sauer, B. Peterjohn, W. Link (1994)
Observer differences in the North American Breeding Bird SurveyThe Auk, 111
C. Brooks, S. Chown, Lucinda Douglass, B. Raymond, J. Shaw, Zephyr Sylvester, C. Torrens (2020)
Progress towards a representative network of Southern Ocean protected areasPLoS ONE, 15
C. Gilbert, G. Robertson, Y. Maho, A. Ancel (2007)
How do weather conditions affect the huddling behaviour of emperor penguins?Polar Biology, 31
C. Gilbert, G. Robertson, Y. Maho, Y. Naito, A. Ancel (2006)
Huddling behavior in emperor penguins: Dynamics of huddlingPhysiology & Behavior, 88
Appendix S1. Details of our population simulation and trend analyses for emperor penguin colonies in Antarc-tica, including code and model fitting procedures
A. Ancel, J.P. Gendner, J. Lignon, P. Jouventin, Y. Le Maho (1992)
Satellite radio?tracking of emperor penguins walking on sea?ice to refeed at sea?, Wildlife telemetry remote monitoring and tracking of animals
M. Larue, J. Rotella, R. Garrott, D. Siniff, D. Ainley, Glenn Stauffer, C. Porter, P. Morin (2011)
Satellite imagery can be used to detect variation in abundance of Weddell seals (Leptonychotes weddellii) in Erebus Bay, AntarcticaPolar Biology, 34
Martin Cobb (1995)
SummerAppalachian Heritage, 26
J. Schnoor (2007)
Citizen science.Environmental science & technology, 41 17
Y. Lemaho (1977)
The Emperor Penguin: A Strategy to Live and Breed in the Cold, 65
S. Jenouvrier, M. Holland, D. Iles, S. Labrousse, L. Landrum, J. Garnier, H. Caswell, H. Weimerskirch, M. Larue, R. Ji, C. Barbraud (2019)
The Paris Agreement objectives will likely halt future declines of emperor penguinsGlobal Change Biology, 26
Very high‐resolution satellite (VHR) imagery is a promising tool for estimating the abundance of wildlife populations, especially in remote regions where traditional surveys are limited by logistical challenges. Emperor penguins Aptenodytes forsteri were the first species to have a circumpolar population estimate derived via VHR imagery. Here we address an untested assumption from Fretwell et al. (2012) that a single image of an emperor penguin colony is a reasonable representation of the colony for the year the image was taken. We evaluated satellite‐related and environmental variables that might influence the calculated area of penguin pixels to reduce uncertainties in satellite‐based estimates of emperor penguin populations in the future. We focused our analysis on multiple VHR images from three representative colonies: Atka Bay, Stancomb‐Wills (Weddell Sea sector) and Coulman Island (Ross Sea sector) between September and December during 2011. We replicated methods in Fretwell et al. (2012), which included using supervised classification tools in ArcGIS 10.7 software to calculate area occupied by penguins (hereafter referred to as ‘population indices’) in each image. We found that population indices varied from 2 to nearly 6‐fold, suggesting that penguin pixel areas calculated from a single image may not provide a complete understanding of colony size for that year. Thus, we further highlight the important roles of: (i) sun azimuth and elevation through image resolution and (ii) penguin patchiness (aggregated vs. distributed) on the calculated areas. We found an effect of wind and temperature on penguin patchiness. Despite intra‐seasonal variability in population indices, simulations indicate that reliable, robust population trends are possible by including satellite‐related and environmental covariates and aggregating indices across time and space. Our work provides additional parameters that should be included in future models of population size for emperor penguins.
Remote Sensing in Ecology and Conservation – Wiley
Published: Apr 1, 2022
Keywords: Emperor penguin; intra‐seasonal variability; population estimates; population trend; satellite imagery; VHR imagery
Read and print from thousands of top scholarly journals.
Already have an account? Log in
Bookmark this article. You can see your Bookmarks on your DeepDyve Library.
To save an article, log in first, or sign up for a DeepDyve account if you don’t already have one.
Copy and paste the desired citation format or use the link below to download a file formatted for EndNote
Access the full text.
Sign up today, get DeepDyve free for 14 days.
All DeepDyve websites use cookies to improve your online experience. They were placed on your computer when you launched this website. You can change your cookie settings through your browser.