Kinematics and center of mass mechanics during terrestrial locomotion in northern lapwings (Vanellus vanellus, Charadriiformes).
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E Andrada | J A Nyakatura | J. A. Nyakatura | E. Andrada | M. Fischer | N Grimm | H Weise | M S Fischer | Martin S. Fischer | N. Grimm | H. Weise | J. Nyakatura
[1] M. Hildebrand. Analysis of Vertebrate Structure , 1974 .
[2] R. Nudds,et al. Energetics and kinematics of walking in the barnacle goose (Branta leucopsis). , 2010, Comparative biochemistry and physiology. Part A, Molecular & integrative physiology.
[3] Daniel Schmitt,et al. Compliant walking in primates , 1999 .
[4] Stephen M Gatesy,et al. Guineafowl hind limb function. II: Electromyographic analysis and motor pattern evolution , 1999, Journal of morphology.
[5] T. Paton,et al. Phylogenetic relationships and divergence times of Charadriiformes genera: multigene evidence for the Cretaceous origin of at least 14 clades of shorebirds , 2007, Biology Letters.
[6] G. Mayr,et al. The Early Eocene bird Gallinuloides wyomingensis - a stem group representative of Galliformes , 2004 .
[7] Reinhard Blickhan,et al. Grounded Running: An Overlooked Strategy for Robots , 2012, AMS.
[8] Denham B. Heliams,et al. Running in ostriches (Struthio camelus): three-dimensional joint axes alignment and joint kinematics , 2007, Journal of Experimental Biology.
[9] Peter Aerts,et al. Toe function and dynamic pressure distribution in ostrich locomotion , 2011, Journal of Experimental Biology.
[10] Jonas Rubenson,et al. Gait selection in the ostrich: mechanical and metabolic characteristics of walking and running with and without an aerial phase , 2004, Proceedings of the Royal Society of London. Series B: Biological Sciences.
[11] R. Blickhan. The spring-mass model for running and hopping. , 1989, Journal of biomechanics.
[12] P. Aerts,et al. Terrestrial locomotion in the black-billed magpie: kinematic analysis of walking, running and out-of-phase hopping. , 2000, The Journal of experimental biology.
[13] P. Aerts,et al. The intertarsal joint of the ostrich (Struthio camelus): Anatomical examination and function of passive structures in locomotion , 2009, Journal of anatomy.
[14] P. Butler,et al. Pedestrian locomotion energetics and gait characteristics of a diving bird, the great cormorant, Phalacrocorax carbo , 2008, Journal of Comparative Physiology B.
[15] A. Biewener,et al. Walking and running in the red-legged running frog, Kassina maculata , 2004, Journal of Experimental Biology.
[16] Daniel DeMenthon,et al. Measurement of body segment mass, center of gravity, and determination of moments of inertia by double pendulum in Lemur fulvus , 1987, American journal of primatology.
[17] A. R. Biknevicius,et al. Whole-body mechanics and kinematics of terrestrial locomotion in the Elegant-crested Tinamou Eudromia elegans , 2007 .
[18] A. Ruina,et al. Multiple walking speed-frequency relations are predicted by constrained optimization. , 2001, Journal of theoretical biology.
[19] Terrestrial locomotion in the white stork ( Ciconia ciconia ): spatio-temporal gait characteristics , 2004 .
[20] Andre Seyfarth,et al. Does a crouched leg posture enhance running stability and robustness? , 2011, Journal of theoretical biology.
[21] F. James Rohlf,et al. Biometry: The Principles and Practice of Statistics in Biological Research , 1969 .
[22] Stephen M. Gatesy,et al. Caudofemoral musculature and the evolution of theropod locomotion , 1990, Paleobiology.
[23] Monica A. Daley,et al. Running stability is enhanced by a proximo-distal gradient in joint neuromechanical control , 2007, Journal of Experimental Biology.
[24] Alan M. Wilson,et al. Ontogenetic scaling of locomotor kinetics and kinematics of the ostrich (Struthio camelus) , 2010, Journal of Experimental Biology.
[25] G. Cavagna,et al. Mechanical work in terrestrial locomotion: two basic mechanisms for minimizing energy expenditure. , 1977, The American journal of physiology.
[26] T. McMahon,et al. Scaling Stride Frequency and Gait to Animal Size: Mice to Horses , 1974, Science.
[27] John R. Hutchinson,et al. The evolutionary continuum of limb function from early theropods to birds , 2009, Naturwissenschaften.
[28] R. M. Alexander,et al. Optimization and gaits in the locomotion of vertebrates. , 1989, Physiological reviews.
[29] M. Fujita. Kinematic parameters of the walking of herons, ground-feeders, and waterfowl. , 2004, Comparative biochemistry and physiology. Part A, Molecular & integrative physiology.
[30] V. Hugel,et al. Walking, paddling, waddling: 3D kinematics anatidae locomotion (Callonetta leucophrys). , 2012, Journal of experimental zoology. Part A, Ecological genetics and physiology.
[31] J. Steeves,et al. Ontogeny of bipedal locomotion: walking and running in the chick. , 1996, The Journal of physiology.
[32] M. Fischer,et al. Comparative intralimb coordination in avian bipedal locomotion , 2012, Journal of Experimental Biology.
[33] A. R. Biknevicius,et al. Posture, gait and the ecological relevance of locomotor costs and energy-saving mechanisms in tetrapods. , 2007, Zoology.
[34] R. Alexander,et al. A dynamic similarity hypothesis for the gaits of quadrupedal mammals , 2009 .
[35] M. Daley,et al. Birds achieve high robustness in uneven terrain through active control of landing conditions , 2012, Journal of Experimental Biology.
[36] S. Olson,et al. Paleognathous Carinate Birds from the Early Tertiary of North America , 1981, Science.
[37] G. Cavagna,et al. Energetics and mechanics of terrestrial locomotion. III. Energy changes of the centre of mass as a function of speed and body size in birds and mammals. , 1982, The Journal of experimental biology.
[38] A. Baker,et al. Multiple gene sequences resolve phylogenetic relationships in the shorebird suborder Scolopaci (Aves: Charadriiformes). , 2012, Molecular phylogenetics and evolution.
[39] G. Cavagna. Force platforms as ergometers. , 1975, Journal of applied physiology.
[40] A. Biewener. Scaling body support in mammals: limb posture and muscle mechanics. , 1989, Science.
[41] S. Reilly,et al. Locomotion in the quail (Coturnix japonica): the kinematics of walking and increasing speed , 2000, Journal of morphology.
[42] S. Gatesy,et al. LOCOMOTOR MODULES AND THE EVOLUTION OF AVIAN FLIGHT , 1996, Evolution; international journal of organic evolution.
[43] D. B. Baier,et al. A critical ligamentous mechanism in the evolution of avian flight , 2007, Nature.
[44] A. R. Biknevicius,et al. Correlation of symmetrical gaits and whole body mechanics: debunking myths in locomotor biodynamics. , 2006, Journal of experimental zoology. Part A, Comparative experimental biology.
[45] Alan M. Wilson,et al. Mechanics of cutting maneuvers by ostriches (Struthio camelus) , 2007, Journal of Experimental Biology.
[46] R. M. Alexander. Elastic Energy Stores in Running Vertebrates , 1984 .
[47] A. Biewener. Patterns of mechanical energy change in tetrapod gait: pendula, springs and work. , 2006, Journal of experimental zoology. Part A, Comparative experimental biology.
[48] W. A. Cox,et al. A Phylogenomic Study of Birds Reveals Their Evolutionary History , 2008, Science.
[49] Pierre Blazevic,et al. Bird terrestrial locomotion as revealed by 3D kinematics. , 2011, Zoology.
[50] M. Bennett. Allometry of the leg muscles of birds , 1996 .
[51] R. Nudds,et al. Evidence for energy savings from aerial running in the Svalbard rock ptarmigan (Lagopus muta hyperborea) , 2011, Proceedings of the Royal Society B: Biological Sciences.
[52] S. Gatesy,et al. Bipedal locomotion: effects of speed, size and limb posture in birds and humans , 1991 .
[53] R. Kram,et al. Biomechanics: Penguin waddling is not wasteful , 2000, Nature.
[54] M. Daley,et al. Two explanations for the compliant running paradox: reduced work of bouncing viscera and increased stability in uneven terrain , 2010, Biology Letters.
[55] A. Abourachid. Kinematic parameters of terrestrial locomotion in cursorial (ratites), swimming (ducks), and striding birds (quail and guinea fowl). , 2001, Comparative biochemistry and physiology. Part A, Molecular & integrative physiology.
[56] T. Paton,et al. Phylogenetic relationships and divergence times of Charadriiformes genera: multigene evidence for the Cretaceous origin of at least 14 clades of shorebirds , 2008, Biology Letters.
[57] S. Renous,et al. Bipedal locomotion in ratites (Paleognatiform): examples of cursorial birds , 2008 .
[58] P. Houde. Ostrich ancestors found in the Northern Hemisphere suggest new hypothesis of ratite origins , 1986, Nature.
[59] T J Roberts,et al. Muscular Force in Running Turkeys: The Economy of Minimizing Work , 1997, Science.
[60] Stephen M Gatesy,et al. Guineafowl hind limb function. I: Cineradiographic analysis and speed effects , 1999, Journal of morphology.
[61] N. Heglund,et al. Speed, stride frequency and energy cost per stride: how do they change with body size and gait? , 1988, The Journal of experimental biology.
[62] C. T. Farley,et al. Mechanics of locomotion in lizards. , 1997, The Journal of experimental biology.
[63] A. Barbosa,et al. Hindlimb morphology and locomotor performance in waders: an evolutionary approach , 1999 .