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Preliminary Exploration of Adaptive State Predictor Based Human Operator Modeling
Author(s) -
Anna Trujillo,
Irene M. Gregory
Publication year - 2012
Publication title -
aiaa modeling and simulation technologies conference
Language(s) - English
Resource type - Conference proceedings
DOI - 10.2514/6.2012-5010
Subject(s) - computer science , operator (biology) , state (computer science) , algorithm , biochemistry , chemistry , repressor , transcription factor , gene
Control-theoretic modeling of the human operator dynamic behavior in manual control tasks has a long and rich history. In the last two decades, there has been a renewed interest in modeling the human operator. There has also been significant work on techniques used to identify the pilot model of a given structure. The purpose of this research is to attempt to go beyond pilot identification based on collected experimental data and to develop a predictor of pilot behavior. An experiment was conducted to quantify the effects of changing aircraft dynamics on an operator’s ability to track a signal in order to eventually model a pilot adapting to changing aircraft dynamics. A gradient descent estimator and a least squares estimator with exponential forgetting used these data to predict pilot stick input. The results indicate that individual pilot characteristics and vehicle dynamics did not affect the accuracy of either estimator method to estimate pilot stick input. These methods also were able to predict pilot stick input during changing aircraft dynamics and they may have the capability to detect a change in a subject due to workload, engagement, etc. or the effects of changes in vehicle dynamics on the pilot.

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