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008 171029s2017 sz o 000 0 eng d
020 _a3319682016
_q(electronic bk.)
020 _a9783319682013
_q(electronic bk.)
020 _z3319682008
020 _z9783319682006
040 _aYDX
_beng
_epn
_cYDX
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_dES-MaUEC
_bspa
050 4 _aQB500
_b2017 EB
245 0 0 _aSensory motor and behavioral research in space
_cReinhard Hilbig [and others].
264 1 _aCham, Switzerland
_bSpringer International Publishing
_c2017
300 _a1 recurso en línea
336 _aTexto
_btxt
_2rdacontent
337 _aelectrónico
_bc
_2rdamedia
338 _arecurso electrónico
_bcr
_2rdacarrier
347 _atext file
_bPDF
490 0 _aSpringerBriefs in space life sciences
500 _a
505 0 _a""Foreword""; ""Preface to the Series""; ""Contents""; ""Chapter 1: Posture and Locomotion""; ""1.1 Introduction""; ""1.2 Posture Control on Earth""; ""1.3 Short-Term Adaptation of Posture Control to Altered Gravity""; ""1.3.1 Gravity-Dependency of the Sensory System""; ""1.3.2 Motor Control of Upright Posture in Hypogravity""; ""1.3.2.1 Kinematic Chain and Muscular Joint Stiffening""; ""1.3.2.2 Forward Body Projection and Muscle Flexor Activation""; ""1.3.2.3 Balance Strategy in Hypogravity""; ""1.3.2.4 Modulation of Postural Reflexes""; ""1.4 Posture Control After Long-Term Space Flight""
505 8 _a""1.4.1 Sensory Adaptations Due to Long-Term Space Flight""""1.4.2 Motor Control of Upright Posture After Space Missions""; ""1.4.2.1 Shift to Long-Latency Postural Reflexes and Increased Fall Risk""; ""1.4.2.2 Changes in Balance Strategy""; ""1.4.2.3 Flexor Activation and Antagonistic Muscle Coordination""; ""1.4.2.4 Recovery After Space Missions""; ""1.5 Locomotor Determinants on Earth""; ""1.6 Acute Adaptations of Bipedalism in Response to Gravitational Changes""; ""1.6.1 Acute Adaptations of the Sensory System""; ""1.6.2 Motor Control of Locomotion in Hypogravity""
505 8 _a""1.6.2.1 Biomechanics of the Locomotor Pattern in Hypogravity""""1.6.2.2 Gravity-Induced Changes in Motor Control""; ""1.6.2.3 Advantageous Locomotor Techniques in Hypogravity""; ""1.6.2.4 The Role of the Stretch-Shortening Cycle in Reduced Gravity""; ""1.6.2.5 Gravity Prediction and Neuromuscular Control of the Stretch-Shortening Cycle in Reduced Gravity""; ""1.7 Locomotion After Long-Term Space Flight""; ""1.7.1 Sensory Adaptation After Space Mission""; ""1.7.2 Motor Control of Locomotion After Space Mission""; ""1.7.2.1 Biomechanics of the Gait Pattern After Space Flight""
505 8 _a""1.7.2.2 The Leg Segments: Gait Deficits and Motor Coordination""""1.7.2.3 Muscle Synergies and Antagonistic Coordination""; ""1.7.2.4 The Upper Segment: Trunk Movement, Head Motion and Gaze""; ""1.7.2.5 Sensorimotor Recovery of Locomotor Skills After Earth Return""; ""1.8 Earth Benefit of Space Research""; ""1.9 Conclusion and Outlook""; ""References""; ""Chapter 2: Spatially Oriented Behaviour""; ""2.1 Introduction""; ""2.2 Spatial Perception in Weightlessness (Fig. 2.1)""; ""2.3 Spatial Object Manipulation in Weightlessness (Fig. 2.2)""; ""2.4 Spatial Navigation in Weightlessness""
505 8 _a""2.5 Preflight Training of Spatially Oriented Behaviour""""2.6 Applications for Life on Earth""; ""References""; ""Chapter 3: Cognitive and Psychomotor Performance""; ""3.1 Introduction""; ""3.2 Stressors in Space""; ""3.3 Impact of Space Flight-Related Stressors on Cognitive and Psychomotor Performance""; ""3.3.1 Basic Cognitive Functions""; ""3.3.2 Spatial Cognition""; ""3.3.3 Psychomotor Functions""; ""3.3.4 Executive Functions""; ""3.4 Summary and Conclusions""; ""References""; ""Chapter 4: Impact of Micro- and Hypergravity on Neurovestibular Issues of Fish""; ""4.1 Introduction""
520 3 _aThis volume of the series SpringerBriefs in Space Life Sciences describes findings from space and accompanying ground research related to spatial orientation, posture and locomotion, cognition and psychomotor function. The results are not only of importance to health and performance of astronauts during their space mission, but also impact people on Earth, especially in the ageing societies of the Western countries. The space environment produces mismatches between sensory inputs from canal and otolith afferents which are difficult to study in humans, and are therefore studied in the fish model. Brain and vestibular organ of fish are analyzed under altered gravitational conditions; particularly weightlessness and structural failures as well as malfunctions in different inner ear components are investigated and discussed. The book is aiming at students, engineers and scientists in space and aging research, as well as psychology, neurosciences and sensory motor research.
988 _aEBOOK, EBSPRINGER_2017
650 7 _aAstronomía
_2embne
_9405013
700 1 _aBock, Otmar.
_eeditor literario
700 1 _aGollhofer, Albert.
_eeditor literario
700 1 _aHilbig, Reinhard.
_eeditor literario
700 1 _aManzey, Dietrich,
_d1956-
_eeditor literario
856 4 0 _uhttps://go.openathens.net/redirector/universidadeuropea.es?url=http://link.springer.com/10.1007/978-3-319-68201-3
_zAcceso a este recurso digital (usuarios Universidad Europea de Madrid)
942 _2lcc
_cLE
998 _b02/2018
_dz
_e-
_zSI