Biophysical evaluation of the human vestibular system Status report, Jul. 1969 - Sep. 1970
Biophysical evaluation of human vestibular system for aerospace applications
Engineering topics
Publications and source records attributed to Meiry, J. L..
Biophysical evaluation of human vestibular system for aerospace applications
Biophysical evaluation of human vestibular system
Dynamic otolith model based on input-output experiments, including static component to permit steady output to acceleration or sustained tilt
Physical properties of labyrinthine fluids and semicircular canal response to angular and linear acceleration and thermal stimulation
Control theory applied to analysis of vestibular function for obtaining mathematical model of semicircular canals and otolith organs
Physical properties of labyrinthine fluids, and caloric stimulation of semicircular canals
Analytical model of canalicular response to rotation in linear acceleration fields
Physical properties of labyrinth fluids in human vestibular system
Stochastic modeling of human learning behavior in manual control task
The motion sensors of the vestibular system are studied to determine their role in human dynamic space orientation and manual vehicle control. The investigation yielded control models for the sensors, descriptions of the subsystems for eye stabilization, and demonstrations of the effects of motion cues on closed loop manual control. Experiments on the abilities of subjects to perceive a variety of linear motions provided data on the dynamic characteristics of the otoliths, the linear motion sensors. Angular acceleration threshold measurements supplemented knowledge of the semicircular canals, the angular motion sensors. Mathematical models are presented to describe the known control characteristics of the vestibular sensors, relating subjective perception of motion to objective motion of a vehicle. The vestibular system, the neck rotation proprioceptors and the visual system form part of the control system which maintains the eye stationary relative to a target or a reference. The contribution of each of these systems was identified through experiments involving head and body rotations about a vertical axis. Compensatory eye movements in response to neck rotation were demonstrated and their dynamic characteristics described by a lag-lead model. The eye motions attributable to neck rotations and vestibular stimulation obey superposition when both systems are active. Human operator compensatory tracking is investigated in simple vehicle orientation control system with stable and unstable controlled elements. Control of vehicle orientation to a reference is simulated in three modes: visual, motion and combined. Motion cues sensed by the vestibular system through tactile sensation enable the operator to generate more lead compensation than in fixed base simulation with only visual input. The tracking performance of the human in an unstable control system near the limits of controllability is shown to depend heavily upon the rate information provided by the vestibular sensors.
Control engineering approaches to study of vestibular organs and human orientation in space
Adaptive functions of man in vehicle control systems
Mathematical model for otolithic organs used to analyze human spatial orientation
Mathematical model for otolithic organs used to analyze human spatial orientation
Manual tracking with on-off controllers or complex situations in which human operator exerts control in bang-bang manner
Control characteristics of human operator in control situations limited to use of visual vestibular sensing of motion
Manual tracking with on-off controllers or complex situations in which human operator exerts control in bang-bang manner