Go reconfigure: how fish change shape as they swim and evolve.
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Chun Wai Liew | John H Long | Marianne E Porter | J. H. Long | C. Liew | M. Porter | R. Root | Robert G Root
[1] Morphology, mechanics, and locomotion: the relation between the notochord and swimming motions in sturgeon , 1995 .
[2] G. V. Lauder,et al. Red and white muscle activity and kinematics of the escape response of the bluegill sunfish during swimming , 1993, Journal of Comparative Physiology A.
[3] Melina E. Hale,et al. EVOLUTION OF BEHAVIOR AND NEURAL CONTROL OF THE FAST-START ESCAPE RESPONSE , 2002 .
[4] J. H. Long. Muscles, Elastic Energy, and the Dynamics of Body Stiffness in Swimming Eels' , 1998 .
[5] John H. Long,et al. Flapping flexible fish , 2007 .
[7] A. Lammert,et al. Biomimetic evolutionary analysis: testing the adaptive value of vertebrate tail stiffness in autonomous swimming robots , 2006, Journal of Experimental Biology.
[8] Haym Hirsh,et al. A genetic algorithm for continuous design space search , 1997, Artif. Intell. Eng..
[9] C. A. Pell,et al. Mechanical control of swimming speed: stiffness and axial wave form in undulating fish models , 1995, The Journal of experimental biology.
[10] Paul W. Webb,et al. Stability and Maneuverability , 2005 .
[11] Bruce M. Adcock,et al. Force transmission via axial tendons in undulating fish: a dynamic analysis. , 2002, Comparative biochemistry and physiology. Part A, Molecular & integrative physiology.
[12] Paul W. Webb,et al. Simple Physical Principles and Vertebrate Aquatic Locomotion , 1988 .
[13] Chun Wai Liew. Using a genetic algorithm to optimize the gape of a snake jaw , 2004, SAC '04.
[14] J. L. Nayler. Mathematical Biofluiddynamics. Sir James Lighthill. Regional Conference Series in Applied Mathematics. Society for Industrial and Applied Mathematics, Philadelphia. 281 pp. Illustrated. , 1976, The Aeronautical Journal (1968).
[15] Hannah Rosenblum,et al. Biomimetic evolutionary analysis: Robotically-simulated vertebrates in a predator-prey ecology , 2009, 2009 IEEE Symposium on Artificial Life.
[16] Paul W. Webb,et al. Body Form, Locomotion and Foraging in Aquatic Vertebrates , 1984 .
[17] Chun Wai Liew,et al. Exploration or Convergence? Another Meta-Control Mechanism for GAs , 2005, FLAIRS Conference.
[18] J. H. Long. Morphology, mechanics, and locomotion: the relation between the notochord and swimming motions in sturgeon , 2004, Environmental Biology of Fishes.
[19] Hale,et al. Mechanics of the fast-start: muscle function and the role of intramuscular pressure in the escape behavior of amia calva and polypterus palmas , 1998, The Journal of experimental biology.
[20] Adam P. Summers,et al. Maneuvering in juvenile carcharhinid and sphyrnid sharks: the role of the hammerhead shark cephalofoil. , 2003, Zoology.
[21] C. A. Pell,et al. A navigational primitive: biorobotic implementation of cycloptic helical klinotaxis in planar motion , 2004, IEEE Journal of Oceanic Engineering.
[22] Melina E. Hale,et al. Functions of fish skin: flexural stiffness and steady swimming of longnose gar, Lepisosteus osseus , 1996, The Journal of experimental biology.
[23] John H. Long,et al. The Importance of Body Stiffness in Undulatory Propulsion , 1996 .
[24] John H Long,et al. The notochord of hagfish Myxine glutinosa: visco-elastic properties and mechanical functions during steady swimming. , 2002, The Journal of experimental biology.
[25] Anshul Mittal,et al. A GENETIC ALGORITHM , 2010 .
[26] R. C. Eaton,et al. The Mauthner cell and other identified neurons of the brainstem escape network of fish , 2001, Progress in Neurobiology.
[27] M. Lighthill. Note on the swimming of slender fish , 1960, Journal of Fluid Mechanics.
[28] J. H. Long,et al. Turning maneuvers in sharks: Predicting body curvature from axial morphology , 2009, Journal of morphology.