Geographical Variation in Bill Size across Bird Species Provides Evidence for Allen’s Rule
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[1] B. Rensch. SOME PROBLEMS OF GEOGRAPHICAL VARIATION AND SPECIES‐FORMATION. , 1938 .
[2] L. Bull. Geographical variation in the morphology of the Wedge-tailed Shearwater (Puffinus pacificus) , 2006 .
[3] S. Lindsay. Geographic Size and Non-Size Variation in Rocky Mountain Tamiasciurus hudsonicus: Significance in Relation to Allen's Rule and Vicariant Biogeography , 1987 .
[4] M. Nice,et al. Darwin's Finches , 1947 .
[5] R. Selander,et al. EVOLUTION IN THE HOUSE SPARROW. II. ADAPTIVE DIFFERENTIATION IN NORTH AMERICAN POPULATIONS , 1971, Evolution; international journal of organic evolution.
[6] P. K. Phillips,et al. An infrared, thermographic study of surface temperature in three ratites: ostrich, emu and double-wattled cassowary , 1994 .
[7] Peter R. Grant,et al. Evolution of Character Displacement in Darwin's Finches , 2006, Science.
[8] P. F. Scholander. CLIMATIC RULES , 1956 .
[9] B. Grant,et al. Evolution of Darwin’s finches caused by a rare climatic event , 1993, Proceedings of the Royal Society of London. Series B: Biological Sciences.
[10] D. Wiedenfeld. Geographical Morphology of Male Yellow Warblers , 1991 .
[11] T. F. Hansen,et al. Phylogenies and the Comparative Method: A General Approach to Incorporating Phylogenetic Information into the Analysis of Interspecific Data , 1997, The American Naturalist.
[12] Uffe Midtgård,et al. Blood vessels and the occurrence of arteriovenous anastomoses in cephalic heat loss areas of mallards, Anas platyrhynchos (Aves) , 1984, Zoomorphology.
[13] Thomas P. Ryan,et al. Modern Regression Methods , 1996 .
[14] Glenn J. Tattersall,et al. Body temperature depression and peripheral heat loss accompany the metabolic and ventilatory responses to hypoxia in low and high altitude birds , 2008, Journal of Experimental Biology.
[15] R. Nudds,et al. AN INTERSPECIFIC TEST OF ALLEN'S RULE: EVOLUTIONARY IMPLICATIONS FOR ENDOTHERMIC SPECIES , 2007, Evolution; international journal of organic evolution.
[16] Maria A. Serrat,et al. Temperature regulates limb length in homeotherms by directly modulating cartilage growth , 2008, Proceedings of the National Academy of Sciences.
[17] P. Laiolo,et al. Ecogeographic correlates of morphometric variation in the Red‐billed Chough Pyrrhocorax pyrrhocorax and the Alpine Chough Pyrrhocorax graculus , 2008 .
[18] J. B. Steen,et al. THE IMPORTANCE OF THE LEGS IN THE THERMOREGULATION OF BIRDS. , 1965, Acta physiologica Scandinavica.
[19] R. Lazenby,et al. Osteometric variation in the Inuit second metacarpal: a test of Allen's Rule , 1999 .
[20] S. J. Brumleve,et al. TEMPERATURE GRADIENTS IN THE LEGS OF COLD-ACCLIMATIZED PHEASANTS. , 1964, The American journal of physiology.
[21] K. Johansen,et al. Vascular responses to temperature in the foot of the giant fulmar,Macronectes giganteus , 1973, Journal of comparative physiology.
[22] Glenn J Tattersall,et al. Heat Exchange from the Toucan Bill Reveals a Controllable Vascular Thermal Radiator , 2009, Science.
[23] Ernst Mayr,et al. GEOGRAPHICAL CHARACTER GRADIENTS AND CLIMATIC ADAPTATION , 1956 .
[24] J. P. Griffing. Body measurements of black-tailed jackrabbits of southeastern New Mexico with implications of Allen's rule. , 1974, Journal of mammalogy.
[25] K. Gaston,et al. Spatial patterns in the body sizes of bird species in the New World , 1996 .
[26] D. Snow,et al. TRENDS IN GEOGRAPHICAL VARIATION IN PALAEARCTIC MEMBERS OF THE GENUS PARUS , 1954 .
[27] G. H. Albrecht,et al. Tail-Length Evolution in Fascicularis-Group Macaques (Cercopithecidae: Macaca) , 1999, International Journal of Primatology.
[28] J. A. Allen. The influence of physical conditions in the genesis of species , 1877 .
[29] Carleton Ray. The application of Bergmann's and Allen's rules to the poikilotherms , 1960 .
[30] R. Cartar,et al. Metabolic correlates of leg length in breeding arctic shorebirds: the cost of getting high , 2005 .
[31] M. Westoby,et al. Larger seeds in tropical floras: consistent patterns independent of growth form and dispersal mode , 1997 .
[32] P. F. Scholander. EVOLUTION OF CLIMATIC ADAPTATION IN HOMEOTHERMS , 1955 .
[33] Y. Benjamini,et al. Global warming, Bergmann's rule and body mass – are they related? The chukar partridge (Alectoris chukar) case , 2002 .
[34] P. Jones,et al. Representing Twentieth-Century Space–Time Climate Variability. Part I: Development of a 1961–90 Mean Monthly Terrestrial Climatology , 1999 .
[35] J. E. Heath,et al. Dependency of surface temperature regulation on body size in terrestrial mammals , 1995 .
[36] R. G. Davies,et al. Global biogeography and ecology of body size in birds. , 2009, Ecology letters.
[37] R. Greenberg. Dissimilar bill shapes in new world tropical versus temperate forest foliage-gleaning birds , 1981, Oecologia.
[38] T. Schoener. Large-Billed Insectivorous Birds: A Precipitous Diversity Gradient , 1971 .
[39] L. Partridge,et al. CANARY ISLAND BLUE TITS AND ENGLISH COAL TITS: CONVERGENT EVOLUTION? , 1977, Evolution; international journal of organic evolution.
[40] Gustav Fischer Verlag,et al. INFRARED THERMOGRAPHY : PRINCIPLES AND APPLICATIONS , 1998 .
[41] R. Stevenson. Allen's Rule in North American rabbits (Sylvilagus) and Hares (Lepus) is an Exception, Not a Rule , 1986 .
[42] J. E. Heath,et al. Regulation of heat loss in the duck by vasomotion in the bill , 1980 .