Dive characteristics can predict foraging success in Australian fur seals (Arctocephalus pusillus doriferus) as validated by animal-borne video
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Kyler Abernathy | Greg Marshall | Andrew J Hoskins | Mark A Hindell | Jayson Semmens | M. Hindell | J. Arnould | G. Marshall | J. Semmens | D. Rosen | A. Baylis | A. Hoskins | Beth L. Volpov | Kathryn E. Wheatley | John P Y Arnould | David A S Rosen | Beth L Volpov | Holly J Lourie | Nicole Dorville | Alastair M M Baylis | Kathryn E Wheatley | K. Abernathy | Nicole A S Dorville | Holly J. Lourie
[1] D. Bates,et al. Mixed-Effects Models in S and S-PLUS , 2001 .
[2] Y. Naito,et al. Time/depth usage of Adélie penguins: an approach based on dive angles , 2001, Polar Biology.
[3] L. Fuiman,et al. Identification of foraging dives in free-ranging Weddell seals Leptonychotes weddellii: Confirmation using video records , 2008 .
[4] Donald L. Kramer,et al. The behavioral ecology of air breathing by aquatic animals , 1988 .
[5] A. Hedd,et al. Can stomach temperature telemetry be used to quantify prey consumption by seals? A re-examination , 1996, Polar Biology.
[6] D. Costa,et al. Identifying and quantifying prey consumption using stomach temperature change in pinnipeds , 2006, Journal of Experimental Biology.
[7] Kit M. Kovacs,et al. Functional classification of harbor seal (Phoca vitulina) dives using depth profiles, swimming velocity, and an index of foraging success , 1999 .
[8] J. Bengtson,et al. Diving and haulout behavior of crabeater seals in the Weddell Sea, Antarctica, during March 1986 , 1992, Polar Biology.
[9] G. J. Marshall,et al. Crittercam : An animal-borne imaging and data logging system , 1998 .
[10] W. Bowen,et al. Prey-dependent foraging tactics and prey profitability in a marine mammal , 2002 .
[11] Sara J. Iverson,et al. Marine Mammal Ecology and Conservation: A Handbook of Techniques , 2010 .
[12] Yves Handrich,et al. Identifying foraging events in deep diving southern elephant seals, Mirounga leonina, using acceleration data loggers , 2013 .
[13] M. Fedak,et al. How long should a dive last? A simple model of foraging decisions by breath-hold divers in a patchy environment , 2001, Animal Behaviour.
[14] S. Hooker,et al. Data Sampling Options for Animal-Borne Video Cameras: Considerations Based on Deployments with Antarctic Fur Seals , 2008 .
[15] Horst Bornemann,et al. Fine-scale feeding behavior of Weddell seals revealed by a mandible accelerometer , 2010 .
[16] Simon N. Wood,et al. Generalized Additive Models , 2006, Annual Review of Statistics and Its Application.
[17] L. Dill,et al. Informing the interpretation of dive profiles using animal-borne video: A marine turtle case study , 2011 .
[18] Dave Thompson,et al. Eat now, pay later? Evidence of deferred food-processing costs in diving seals , 2007, Biology Letters.
[19] Yasuhiko Naito,et al. Using a mandible accelerometer to study fine-scale foraging behavior of free-ranging Antarctic fur seals , 2012 .
[20] M. Bester,et al. Adult female survival, population trend, and the implications of early primiparity in a capital breeder, the southern elephant seal (Mirounga leonina) , 2004 .
[21] Mehdi Bakhtiari,et al. An Advanced Solid-state Animal-Borne Video and Environmental Data-Logging Device (“Crittercam”) for Marine Research , 2007 .
[22] Daniel P. Costa,et al. Continuous, deep diving in female northern elephant seals, Mirounga angustirostris , 1988 .
[23] Yasuhiko Naito,et al. Validation of a device for accurate timing of feeding events in marine animals , 2009, Polar Biology.
[24] Terrie M. Williams,et al. The cost of foraging by a marine predator, the Weddell seal Leptonychotes weddellii: pricing by the stroke , 2004, Journal of Experimental Biology.
[25] R Core Team,et al. R: A language and environment for statistical computing. , 2014 .
[26] Kristian Beedholm,et al. What a jerk: prey engulfment revealed by high-rate, super-cranial accelerometry on a harbour seal (Phoca vitulina) , 2014, Journal of Experimental Biology.
[27] L. Fuiman,et al. Classification of Weddell seal dives based on 3-dimensional movements and video-recorded observations , 2003 .
[28] E. Shepard. Identification of animal movement patterns using tri-axial accelerometry , 2008 .
[29] The influence of preceding dive cycles on the foraging decisions of Antarctic fur seals , 2015, Biology Letters.
[30] D. Crocker,et al. Measurements of foraging success in a highly pelagic marine predator, the northern elephant seal. , 2010, The Journal of animal ecology.
[31] J. Arnould,et al. Temporal Allocation of Foraging Effort in Female Australian Fur Seals (Arctocephalus pusillus doriferus) , 2013, PloS one.
[32] Akinori Takahashi,et al. Linking animal-borne video to accelerometers reveals prey capture variability , 2013, Proceedings of the National Academy of Sciences.
[33] A. Zuur,et al. Mixed Effects Models and Extensions in Ecology with R , 2009 .
[34] Peter L. Boveng,et al. Monitoring the Prey-Field of Marine Predators: Combining Digital Imaging With Datalogging Tags , 2002 .
[35] S. Wood. Generalized Additive Models: An Introduction with R , 2006 .
[36] Ian Jonsen,et al. Supervised accelerometry analysis can identify prey capture by penguins at sea , 2014, Journal of Experimental Biology.
[37] John Parslow,et al. Modelling of nutrient impacts in Port Phillip Bay : a semi-enclosed marine Australian ecosystem , 1999 .
[38] Deborah Austin,et al. Stomach temperature telemetry reveals temporal patterns of foraging success in a free-ranging marine mammal. , 2006, The Journal of animal ecology.
[39] J. Arnould,et al. Habitat selection by female Australian fur seals (Arctocephalus pusillus doriferus) , 2007 .
[40] Deborah Austin,et al. Linking movement, diving, and habitat to foraging success in a large marine predator. , 2006, Ecology.
[41] L. Fuiman,et al. Hunting behavior of a marine mammal beneath the antarctic fast Ice , 1999, Science.
[42] A. Trites,et al. Low prey abundance leads to less efficient foraging behavior in Steller sea lions , 2015 .
[43] Rory P. Wilson,et al. Moving towards acceleration for estimates of activity-specific metabolic rate in free-living animals: the case of the cormorant. , 2006, The Journal of animal ecology.
[44] D. Costa,et al. Utilisation of Intensive Foraging Zones by Female Australian Fur Seals , 2015, PloS one.
[45] A. Trites,et al. Evidence of partial deferment of digestion during diving in Steller sea lions (Eumetopias jubatus) , 2015 .
[46] M. Hindell,et al. Determining feeding events and prey encounter rates in a southern elephant seal : a method using swim speed and stomach temperature , 2008 .
[47] M. Heithaus,et al. FORAGING OF JUVENILE MONK SEALS AT FRENCH FRIGATE SHOALS, HAWAII , 2005 .
[48] Jason F. Schreer,et al. CLASSIFICATION OF WEDDELL SEAL DIVING BEHAVIOR , 1996 .
[49] Russel D. Andrews. Remotely releasable instruments for monitoring the foraging behaviour of pinnipeds , 1998 .
[50] D. Pemberton,et al. Pup Production and Distribution of the Australian Fur Seal, Arctocephalus pusillus doriferus, in Tasmania , 1994 .
[51] Shinichi Nakagawa,et al. A general and simple method for obtaining R2 from generalized linear mixed‐effects models , 2013 .
[52] Pascal Monestiez,et al. Can We Predict Foraging Success in a Marine Predator from Dive Patterns Only? Validation with Prey Capture Attempt Data , 2014, PloS one.
[53] M. Hindell,et al. Dive behaviour, foraging locations, and maternal-attendance patterns of Australian fur seals (Arctocephalus pusillus doriferus) , 2001 .
[54] Russel D. Andrews,et al. Head striking during fish capture attempts by Steller sea lions and the potential for using head surge acceleration to predict feeding behavior , 2009 .
[55] Jason F. Schreer,et al. COMPARATIVE DIVING PATTERNS OF PINNIPEDS AND SEABIRDS , 2001 .
[56] Alan Y. Chiang,et al. Generalized Additive Models: An Introduction With R , 2007, Technometrics.
[57] Gerald L. Kooyman,et al. Techniques used in measuring diving capacities of Weddell Seals , 1965, Polar Record.
[58] Harry R. Burton,et al. The Diving Behaviour of Adult Male and Female Southern Elephant Seals, Mirounga leonina (Pinnipedia : Phocidae) , 1991 .
[59] Yan Ropert-Coudert,et al. Foraging strategies and prey encounter rate of free-ranging Little Penguins , 2006 .
[60] Pascal Monestiez,et al. Prey capture attempts can be detected in Steller sea lions and other marine predators using accelerometers , 2010, Polar Biology.
[61] T. Bekkby,et al. VARIATION IN STOMACH TEMPERATURE AS INDICATOR OF MEAL SIZE IN HARBOR SEALS, PHOCA VITULINA , 1998 .
[62] P. Monestiez,et al. Horizontal and vertical movements as predictors of foraging success in a marine predator , 2012 .
[63] Kyler Abernathy,et al. Identification of Prey Captures in Australian Fur Seals (Arctocephalus pusillus doriferus) Using Head-Mounted Accelerometers: Field Validation with Animal-Borne Video Cameras , 2015, PloS one.