Human Performance in a Realistic Instrument-Control Task during Short-Term Microgravity
暂无分享,去创建一个
Otmar Bock | Fabian Steinberg | Michael Kalicinski | Marc Dalecki | O. Bock | M. Dalecki | F. Steinberg | Michael Kalicinski
[1] M. T. Verklan,et al. The Neurolab Spacelab Mission: Neuroscience Research in Space , 2006 .
[2] Otmar Bock,et al. Characteristics of grasping movements in a laboratory and in an everyday-like context. , 2013, Human movement science.
[3] B Fowler,et al. Human sensorimotor coordination during spaceflight: an analysis of pointing and tracking responses during the "Neurolab" Space Shuttle mission. , 2001, Aviation, space, and environmental medicine.
[4] O Bock. Grasping of virtual objects in changed gravity. , 1996, Aviation, space, and environmental medicine.
[5] J Sauer,et al. Cognitive fatigue and complex decision making under prolonged isolation and confinement. , 1996, Advances in space biology and medicine.
[6] L Macho,et al. The response of endocrine system to stress loads during space flight in human subject. , 2003, Advances in space research : the official journal of the Committee on Space Research.
[7] P A Hancock,et al. Human occupational and performance limits under stress: the thermal environment as a prototypical example. , 1998, Ergonomics.
[8] O. Bock,et al. Influence of cognitive functions and behavioral context on grasping kinematics , 2012, Experimental Brain Research.
[9] O. Bock,et al. Speed-accuracy trade-off of grasping movements during microgravity. , 2002, Aviation, space, and environmental medicine.
[10] L N Kornilova,et al. Orientation illusions in spaceflight. , 1997, Journal of vestibular research : equilibrium & orientation.
[11] D. Manzey,et al. Mental performance during short-term and long-term spaceflight , 1998, Brain Research Reviews.
[12] A. Aubert,et al. Spectral characteristics of heart rate fluctuations during parabolic flight , 2005, European Journal of Applied Physiology.
[13] Charles R Doarn,et al. Assessment of simulated surgical skills in parabolic microgravity. , 2005, Aviation, space, and environmental medicine.
[14] G. R. J. Hockey. Compensatory control in the regulation of human performance under stress and high workload: A cognitive-energetical framework , 1997, Biological Psychology.
[15] C. Kirschbaum,et al. Human hypothalamus–pituitary–adrenal axis responses to acute psychosocial stress in laboratory settings , 2010, Neuroscience & Biobehavioral Reviews.
[16] G. Metz. Stress as a Modulator of Motor System Function and Pathology , 2007, Reviews in the neurosciences.
[17] Gabriel G. de la Torre. Cognitive Neuroscience in Space , 2014, Life.
[18] Barry Fowler,et al. Is Dual-Task Performance Necessarily Impaired in Space? , 2000, Hum. Factors.
[19] Bernd Lorenz,et al. Dual-Task Performance in Space: Results from a Single-Case Study during a Short-Term Space Mission , 1995, Hum. Factors.
[20] J. McIntyre,et al. Kinematic and dynamic processes for the control of pointing movements in humans revealed by short-term exposure to microgravity , 2005, Neuroscience.
[21] V. Brümmer,et al. The effect of parabolic flight on perceived physical, motivational and psychological state in men and women: Correlation with neuroendocrine stress parameters and electrocortical activity , 2009, Stress.
[22] V V Polyakov,et al. Changes in the autonomic reactivity pattern to psychological load under long-term microgravity--twelve men during 6-month spaceflights. , 2003, Aviakosmicheskaia i ekologicheskaia meditsina = Aerospace and environmental medicine.
[23] J. Kleinert. Adjektivliste zur Erfassung der Wahrgenommenen Körperlichen Verfassung (WKV) , 2006 .
[24] G R Hockey,et al. European isolation and confinement study. Cognitive fatigue in complex decision-making. , 1993, Advances in space biology and medicine.
[25] Ronald C Merrell,et al. Microgravity effects on fine motor skills: tying surgical knots during parabolic flight. , 2006, Aviation, space, and environmental medicine.
[26] Jacob Cohen. Statistical Power Analysis for the Behavioral Sciences , 1969, The SAGE Encyclopedia of Research Design.
[27] I Kozlovskaya,et al. Pointing arm movements in short- and long-term spaceflights. , 1997, Aviation, space, and environmental medicine.
[28] Otmar Bock,et al. Cognitive demand of human sensorimotor performance during an extended space mission: a dual-task study. , 2010, Aviation, space, and environmental medicine.
[29] Nick Kanas,et al. Space Psychology and Psychiatry , 2003 .
[30] Otmar Bock,et al. Sensorimotor performance and computational demand during short-term exposure to microgravity. , 2003, Aviation, space, and environmental medicine.
[31] I. Howard,et al. Accuracy of aimed arm movements in changed gravity. , 1992, Aviation, space, and environmental medicine.
[32] F. Holsboer,et al. Stress and the brain: from adaptation to disease , 2005, Nature Reviews Neuroscience.
[33] Paul DiZio,et al. Motor function in microgravity: movement in weightlessness , 1996, Current Opinion in Neurobiology.
[34] Craig R Sherman,et al. Motion sickness: review of causes and preventive strategies. , 2006, Journal of travel medicine.
[35] A. Sockloff,et al. Statistical power analysis for the behavioral sciences: (revised edition), by Jacob Cohen. New York: Academic Press, 1977, xv + 474 pp., $24.50. , 1978 .
[36] Herbert Heuer,et al. Impairments of manual tracking performance during spaceflight: more converging evidence from a 20-day space mission , 2000, Ergonomics.
[37] Kornilova Ln,et al. Orientation illusions in spaceflight. , 1997 .
[38] Otmar Bock,et al. Problems of sensorimotor coordination in weightlessness , 1998, Brain Research Reviews.
[39] H. Gr. Compensatory control in the regulation of human performance under stress and high workload; a cognitive-energetical framework. , 1997 .