Reaction time to the onset and offset of electrocutaneous stimuli as a function of rise and decay time.
Reaction time to onset and offset of electrocutaneous stimulus as function of rise and decay time
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Reaction time to onset and offset of electrocutaneous stimulus as function of rise and decay time
Attention theory and parameter measurements of human ability to discriminate two sensory events successively and sensory channel uncertainty influence on reaction time
Facility of reaction time to stimulus by signal of differing sense modality
Correction for guessing in choice reaction time, giving additional results for Ollman choice reaction time performance model
Probability and payoff as factors influencing two- choice reaction time
Reaction time to electrocutaneous onset and offset stimulation
The effect of prolonged angular acceleration on choice reaction time to an accelerating visual stimulus was investigated, with 10 commercial airline pilots serving as subjects. The pattern of reaction times during and following acceleration was compared with the pattern of velocity estimates reported during identical trials. Both reaction times and velocity estimates increased at the onset of acceleration, declined prior to the termination of acceleration, and showed an aftereffect. These results are inconsistent with the torsion-pendulum theory of semicircular canal function and suggest that the vestibular adaptation is of central origin.
Reaction time to electrocutaneous stimulation confirmed as being faster to onset than to cessation of stimulation
Psychophysiological reaction time in sensory perception
Average evoked potentials and reaction times to visual stimuli
An anaytical study of hydrogen air kinetics was performed. Calculations were made over a range of pressure from 0.2 to 4.0 atm, temperatures from 850 to 2000 K, and mixture equivalence ratios from 0.2 to 2.0. The finite rate chemistry model included 60 reactions in 20 species of the H2-O2-N2 system. The calculations also included an assessment of how small amounts of the chemicals H2O, NOx, H2O2, and O3 in the initial mixture affect ignition and reaction times, and how the variation of the third body efficiency of H2O relative of N2 in certain key reactions may affect reaction time. The results indicate that for mixture equivalence ratios between 0.5 and 1.7, ignition times are nearly constant; however, the presence of H2O and NO can have significant effects on ignition times, depending on the mixture temperature. Reaction time is dominantly influenced by pressure but is nearly independent of initial temperature, equivalence ratio, and the addition of chemicals. Effects of kinetics on reaction at supersonic combustor conditions are discussed.
Thirteen airline pilots were studied to determine the effect of preceding rotary accelerations on the choice reaction time to the horizontal acceleration of a vertical line on a cathode-ray tube. On each trial, one of three levels of rotary and visual acceleration was presented with the rotary stimulus preceding the visual by one of seven periods. The two accelerations were always equal and were presented in the same or opposite directions. The reaction time was found to increase with increases in the time the rotary acceleration preceded the visual acceleration, and to decrease with increased levels of visual and rotary acceleration. The reaction time was found to be shorter when the accelerations were in the same direction than when they were in opposite directions. These results suggest that these findings are a special case of a general effect that the authors have termed 'gyrovisual modulation'.
Twelve airline pilots were studied to determine the effects of whole-body rotation on choice-reaction time to the horizontal motion of a line on a cathode-ray tube. On each trial, one of five levels of visual acceleration and five corresponding proportions of rotary acceleration were presented simultaneously. Reaction time to the visual motion decreased with increasing levels of visual motion and increased with increasing proportions of rotary acceleration. The results conflict with general theories of facilitation during double stimulation but are consistent with neural-clock model of sensory interaction in choice-reaction time.
Choice reaction time to visual stimuli - analysis of major theoretical positions to perceptual recognition theories
Sequential analysis of electroencephalogram frequency and reaction time in vigilance task
Effects of carbon dioxide on electroencephalograms and reaction times in humans
Functional identification of perceptual and response biases in choice reaction time
EEG relation to average evoked potentials and human reaction time to visual stimuli for trials with and without feedback