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008 140122s2014 gw s 000 0 eng d
020 _a9783642414466
024 7 _a10.1007/978-3-642-41446-6
_2doi
040 _aES-MaUEC
050 4 _aQP431
_b.F56 2014 EB
082 0 4 _223
245 0 0 _aFlow Sensing in Air and Water :
_bBehavioral, Neural and Engineering Principles of Operation
_cedited by Horst Bleckmann, Joachim Mogdans, Sheryl L. Coombs
264 1 _aBerlin, Heidelberg
_bSpringer International Publishing
_c2014
300 _a1 recurso en línea (XIII, 562 p.)
_b200 ilustraciones, 77 ilustraciones en color
336 _aTexto (visual)
_btxt
_2rdacontent
337 _aelectrónico
_bc
_2rdamedia
338 _arecurso electrónico
_bcr
_2rdacarrier
505 0 _aPart I: Spatio-Temporal Structure of Natural Aero- and Hydrodynamic Stimuli -- Natural Hydrodynamic Stimuli -- Laser-Based Optical Methods for the Sensory Ecology of Flow Sensing: From Classical PIV to Micro-PIV and Beyond -- Part II: Flow Sensing and Animal Behavior -- The Role of Flow and the Lateral Line in the Multisensory Guidance of Orienting Behaviours -- Hydrodynamic Perception in Seals and Sea Lions -- Hydrodynamic Imaging by Blind Mexican Cave Fish -- Flow Sensing in Sharks: Lateral Line Contributions to Navigation and Prey Capture -- The Slightest Whiff of Air: Airflow Sensing in Arthropods -- Air Flow Sensing by Bats -- Flies, Optic Flow and Multisensory Stabilization Reflexes -- Part III: Biomechanics of Flow Sensors -- Techniques for Studying Neuromast Function in Zebrafish -- Part IV: Evolution and Development of Flow Sensors -- Structural Diversity in the Lateral Line System of Fishes: Evolution, Development and Implications for Function -- Evolution of Polarized Hair Cells in Aquatic Vertebrates and Their Connection to Directionally Sensitive Neurons -- Patterning the Posterior Lateral Line in Teleosts: Evolution of Development -- Functional Architecture of Lateral Line Afferent Neurons in Larval Zebrafish -- Part V: Physiology of Flow Sensing -- Neuronal Basis of Source Localisation and the Processing of Bulk Water Flow with the Fish Lateral Line -- Hydrodynamic Object Formation: Perception, Neuronal Representation, and Multimodal Integration -- Part VI: Artificial Flow Sensors -- Crickets as Bio-Inspiration for MEMS-Based Flow-Sensing -- Complex Flow Detection by Fast Processing of Sensory Hair-Arrays -- Stress-Driven Artificial Hair Cell for Flow Sensing -- Snookie: an Autonomous Underwater Vehicle with Artificial Lateral-Line System
520 3 _aIn this book, leading scientists in the fields of sensory biology, neuroscience, physics and engineering explore the basic operational principles and behavioral uses of flow sensing in animals and how they might be applied to engineering applications such as autonomous control of underwater or aerial vehicles. Although humans possess no flow-sensing abilities, countless aquatic (e.g. fish, cephalopods and seals), terrestrial (e.g. crickets and spiders) and aerial (e.g. bats) animals have flow sensing abilities that underlie remarkable behavioral feats.These include the ability to follow silent hydrodynamic trails long after the trailblazer has left the scene, to form hydrodynamic images of their environment in total darkness, and to swim or fly efficiently and effortlessly in the face of destabilizing currents and winds.
942 _2lcc
_cLE
988 _aEBOOK, EBSPRINGERrevisando
650 7 _aSentidos
_9139194
_0comprobar BNE19900969408
_2embne
650 7 _aNeurobiología
_0comprobar BNE19900967574
_2embne
_9139039
700 1 _aBleckmann, Horst
_0nr 95004114
_eeditor literario
_948442
700 1 _aMogdans, Joachim
_0no2004070488
_eeditor literario
_948443
700 1 _aCoombs, Sheryl L.
_0Local
_eeditor literario
_984912
_0Local
856 4 0 _uhttps://go.openathens.net/redirector/universidadeuropea.es?url=https://link.springer.com/book/10.1007/978-3-642-41446-6
_zAcceso a este recurso digital (usuarios Universidad Europea de Madrid)
901 _ai9783642414466
907 _a.b12821524
_b18-10-17
_c01-10-14
998 _am
_a_alco
_a_vill
_b18-10-17
_cm
_dz
_eu
_feng
_ggw
_h0
945 _aQP431 .F56 2014 EB
_g1
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