Scaling of swim speed in breath-hold divers.
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Akinori Takahashi | Nobuyuki Miyazaki | Masao Amano | Yuuki Y Watanabe | Katsufumi Sato | Y. Watanuki | Katsufumi Sato | N. Miyazaki | K. Aoki | M. Amano | Y. Mitani | A. Takahashi | T. Narazaki | Yutaka Watanuki | Takashi Iwata | S. Minamikawa | Yoko Mitani | Kagari Aoki | Tomoko Narazaki | Shingo Minamikawa | T. Iwata | Y. Watanabe | Takashi Iwata
[1] Yasuhiko Naito,et al. Factors affecting stroking patterns and body angle in diving Weddell seals under natural conditions , 2003, Journal of Experimental Biology.
[2] Wilson,et al. UNDERWATER SWIMMING AT LOW ENERGETIC COST BY PYGOSCELID PENGUINS , 1994, The Journal of experimental biology.
[3] J. Piatt,et al. Phylogenetic relationships within the Alcidae (Charadriiformes: Aves) inferred from total molecular evidence. , 1996, Molecular biology and evolution.
[4] P. W. Webb,et al. THE EFFECT OF SIZE AND SWIMMING SPEED ON LOCOMOTOR KINEMATICS OF RAINBOW TROUT , 1984 .
[5] P. Ponganis,et al. The physiological basis of diving to depth: birds and mammals. , 1998, Annual review of physiology.
[6] A. Baker,et al. Multiple gene evidence for expansion of extant penguins out of Antarctica due to global cooling , 2006, Proceedings of the Royal Society B: Biological Sciences.
[7] P Zamparo,et al. How fins affect the economy and efficiency of human swimming. , 2002, The Journal of experimental biology.
[8] Gary C. Packard,et al. The use of percentages and size-specific indices to normalize physiological data for variation in body size: wasted time, wasted effort? , 1999 .
[9] Yasuhiko Naito,et al. Dive depths of Weddell seals in relation to vertical prey distribution as estimated by image data , 2003 .
[10] Roger L. Gentry,et al. Swimming velocities in otariids , 1990 .
[11] Theodore Garland,et al. Phylogenetic Analysis of Covariance by Computer Simulation , 1993 .
[12] D. Crocker,et al. Swimming speed and foraging strategies of New Zealand sea lions (Phocarctos hookeri) , 2001 .
[13] S. Vogel. Life in Moving Fluids: The Physical Biology of Flow , 1981 .
[14] T. Garland,et al. Procedures for the Analysis of Comparative Data Using Phylogenetically Independent Contrasts , 1992 .
[15] John P. Croxall,et al. Dive durations in pinnipeds and seabirds , 1996 .
[16] T. Garland,et al. Phylogenetic approaches in comparative physiology , 2005, Journal of Experimental Biology.
[17] Anthony James Woakes,et al. Year-round recordings of behavioural and physiological parameters reveal the survival strategy of a poorly insulated diving endotherm during the Arctic winter , 2005, Journal of Experimental Biology.
[18] K. Kovacs,et al. Allometry of diving capacity in air-breathing vertebrates , 1997 .
[19] Terrie M. Williams,et al. The evolution of cost efficient swimming in marine mammals: limits to energetic optimization , 1999 .
[20] D. Maddison,et al. Mesquite: a modular system for evolutionary analysis. Version 2.6 , 2009 .
[21] Rory P. Wilson,et al. Diving Birds in Cold Water: Do Archimedes and Boyle Determine Energetic Costs? , 1992, The American Naturalist.
[22] D. Pauly,et al. Estimating mean body masses of marine mammals from maximum body lengths , 1998 .
[23] Tomonari Akamatsu,et al. Biosonar behaviour of free-ranging porpoises , 2005, Proceedings of the Royal Society B: Biological Sciences.
[24] Yasuhiko Naito,et al. Stroke and glide of wing–propelled divers: deep diving seabirds adjust surge frequency to buoyancy change with depth , 2003, Proceedings of the Royal Society of London. Series B: Biological Sciences.
[25] B. Nolet,et al. Costs of swimming measured at optimum speed: scale effects, differences between swimming styles, taxonomic groups and submerged and surface swimming. , 1990, Comparative biochemistry and physiology. A, Comparative physiology.
[26] Y. Watanuki,et al. Body mass and dive duration in alcids and penguins , 1999 .
[27] 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 .
[28] T. Williams,et al. Division of Comparative Physiology and Biochemistry , Society for Integrative and Comparative Biology Swimming Performance and Hydrodynamic Characteristics of Harbor Seals Phoca vitulina , 2016 .
[29] F. Hainsworth. Scaling: why is animal size so important? , 1985 .
[30] John Calambokidis,et al. Foraging behavior of humpback whales: kinematic and respiratory patterns suggest a high cost for a lunge , 2008, Journal of Experimental Biology.
[31] C. J. Pennycuick,et al. Modelling the Flying Bird , 2008 .
[32] T. Hung. Life in Moving Fluids—The physical biology of flow , 1988 .
[33] S. B. Blackwell,et al. A METHOD FOR CALIBRATING SWIM‐SPEED RECORDERS , 1999 .
[34] P. Ponganis,et al. Scaling of swim speed and stroke frequency in geometrically similar penguins: they swim optimally to minimize cost of transport , 2010, Proceedings of the Royal Society B: Biological Sciences.
[35] Sarah Wanless,et al. Swim speeds and stroke patterns in wing-propelled divers: a comparison among alcids and a penguin , 2006, Journal of Experimental Biology.
[36] Yves Handrich,et al. Stroke frequency, but not swimming speed, is related to body size in free-ranging seabirds, pinnipeds and cetaceans , 2006, Proceedings of the Royal Society B: Biological Sciences.
[37] Carol E. Sparling,et al. How fast does a seal swim? Variations in swimming behaviour under differing foraging conditions , 2007, Journal of Experimental Biology.
[38] K. Kovacs,et al. Diving behaviour of lactating bearded seals (Erignathus barbatus) in the Svalbard area , 2000 .
[39] Gerald L. Kooyman,et al. Diverse Divers: Physiology and behavior , 1989 .
[40] K. Sato,et al. Sea turtles compensate deflection of heading at the sea surface during directional travel , 2009, Journal of Experimental Biology.
[41] Geoffrey B. West,et al. The predominance of quarter-power scaling in biology , 2004 .
[42] Anthony James Woakes,et al. Body Cooling and Its Energetic Implications for Feeding and Diving of Tufted Ducks , 1998, Physiological Zoology.
[43] A. Radl,et al. Foraging behaviour and reproductive success in Magellanic penguins (Spheniscus magellanicus): a comparative study of two colonies in southern Chile , 1999 .
[44] M. Hindell,et al. Metabolic Limits on Dive Duration and Swimming Speed in the Southern Elephant Seal Mirounga leonina , 2000, Physiological and Biochemical Zoology.
[45] E. S. Hansen,et al. Foraging by Deep‐Diving Birds Is Not Constrained by an Aerobic Diving Limit: A Model of Avian Depth‐Dependent Diving Metabolic Rate , 2004, The American Naturalist.
[46] S. Hoerner. Fluid Dynamic Drag: Practical Information on Aerodynamic Drag and Hydrodynamic Resistance , 1965 .
[47] J. Felsenstein. Phylogenies and the Comparative Method , 1985, The American Naturalist.
[48] D. Siegel-Causey. Phylogeny of the Phalacrocoracidae , 1988 .
[49] EUMETOPIAS JUBATUS,et al. COST OF TRANSPORT IN STELLER SEA LIONS, , 2002 .
[50] W. Gurney,et al. The metabolic cost of swimming in marine homeotherms. , 1997, The Journal of experimental biology.
[51] J. D. Hoyo,et al. Handbook of the Birds of the World , 2010 .
[52] C. Lockyer,et al. Body weights of some species of large whales , 1976 .
[53] N. Okada,et al. Proceedings of the SMBE Tri-National Young Investigators' Workshop 2005. Baleen whale phylogeny and a past extensive radiation event revealed by SINE insertion analysis. , 2006, Molecular biology and evolution.
[54] J. Avise,et al. A molecular phylogeny for marine turtles: trait mapping, rate assessment, and conservation relevance. , 1993, Proceedings of the National Academy of Sciences of the United States of America.
[55] M. Pagel. A method for the analysis of comparative data , 1992 .
[56] Mark P. Johnson,et al. Ascent exhalations of Antarctic fur seals: a behavioural adaptation for breath–hold diving? , 2005, Proceedings of the Royal Society B: Biological Sciences.
[57] David A. S. Rosen,et al. COST OF TRANSPORT IN STELLER SEA LIONS, EUMETOPIAS JUBATUS , 2002 .
[58] D. Costa,et al. Aerobic dive limit: how often does it occur in nature? , 2001, Comparative biochemistry and physiology. Part A, Molecular & integrative physiology.
[59] R. Slade,et al. Phylogenetic relationships within the eared seals (Otariidae: Carnivora): implications for the historical biogeography of the family. , 2001, Molecular phylogenetics and evolution.
[60] Y. Naito,et al. Why do macaroni penguins choose shallow body angles that result in longer descent and ascent durations? , 2004, Journal of Experimental Biology.
[61] K Schmidt-Nielsen,et al. Locomotion: energy cost of swimming, flying, and running. , 1972, Science.
[62] Yan Ropert-Coudert,et al. Rush and grab strategies in foraging marine endotherms: the case for haste in penguins , 2002, Animal Behaviour.
[63] L. Halsey,et al. A Phylogenetic Analysis of the Allometry of Diving , 2006, The American Naturalist.
[64] A. Grafen. The phylogenetic regression. , 1989, Philosophical transactions of the Royal Society of London. Series B, Biological sciences.
[65] Peter L Tyack,et al. Swimming gaits, passive drag and buoyancy of diving sperm whales Physeter macrocephalus , 2004, Journal of Experimental Biology.
[66] I. Boyd,et al. Swimming speed and allocation of time during the dive cycle in Antarctic fur seals , 1995, Animal Behaviour.
[67] T. Williams. The Penguins: Spheniscidae , 1995 .
[68] Erick Greene,et al. Allometry of behavior. , 2008, Trends in ecology & evolution.
[69] Frank E. Fish,et al. Transitions from Drag-based to Lift-based Propulsion in Mammalian Swimming , 1996 .
[70] D. Weihs,et al. Submerged swimming of the great cormorant Phalacrocorax carbo sinensis is a variant of the burst-and-glide gait , 2005, Journal of Experimental Biology.
[71] Masao Amano,et al. Sperm whale diving behavior monitored using a suction-cup-attached TDR tag , 2003 .
[72] John Calambokidis,et al. Kinematics of foraging dives and lunge-feeding in fin whales , 2006, Journal of Experimental Biology.
[73] Yasuhiko Naito,et al. Body density affects stroke patterns in Baikal seals , 2006, Journal of Experimental Biology.
[74] J Calambokidis,et al. Sink or swim: strategies for cost-efficient diving by marine mammals. , 2000, Science.
[75] Y. Ropert‐Coudert,et al. Swim speeds of free-ranging great cormorants , 2006 .
[76] A. Hedenström,et al. OPTIMAL FLIGHT SPEED OF BIRDS , 1995 .
[77] Y. Naito,et al. DIVING BEHAVIOR AND SWIMMING SPEED OF A FREE‐RANGING HARBOR PORPOISE, PHOCOENA PHOCOENA , 2000 .
[78] Y. Handrich,et al. Hypothermia in foraging king penguins , 1997, Nature.
[79] David R. Jones,et al. Physiology of diving of birds and mammals. , 1997, Physiological reviews.
[80] Katsufumi Sato,et al. Buoyancy and maximal diving depth in penguins: do they control inhaling air volume? , 2002, The Journal of experimental biology.
[81] D. Weihs,et al. How do cormorants counter buoyancy during submerged swimming? , 2004, Journal of Experimental Biology.
[82] Anthony R. Ives,et al. Using the Past to Predict the Present: Confidence Intervals for Regression Equations in Phylogenetic Comparative Methods , 2000, The American Naturalist.
[83] S. Nicol,et al. Diving behaviour and energetics in breeding little penguins ( Eudyptula minor ) , 2009 .
[84] Yasuhiko Naito,et al. Foraging tactics of Baikal seals differ between day and night , 2004 .
[85] K. V. Ponganis,et al. ANALYSIS OF SWIM VELOCITIES DURING DEEP AND SHALLOW DIVES OF TWO NORTHERN FUR SEALS, CALLORHINUS URSINUS , 1992 .
[86] Tomonari Akamatsu,et al. Diving behaviour of freshwater finless porpoises (Neophocaena phocaenoides) in an oxbow of the Yangtze River, China , 2002 .
[87] Y. Naito,et al. Regulation of stroke and glide in a foot-propelled avian diver , 2005, Journal of Experimental Biology.
[88] G. Luna‐Jorquera,et al. DIVING BEHAVIOUR OF HUMBOLDT PENGUINS SPHENISCUS HUMBOLDTI IN NORTHERN CHILE , 1999 .