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Biocybernetic Closed-Loop System for Mitigating Hazardous States of
Awareness
The past century of passenger flight has seen continuous improvement in aviation safety by the aerospace industry. However, while commercial aviation accident rates have continued to decline, human error-related incident and accident rates remain remarkably constant across all types of aviation (Shappell, et al., 2007).
Unfortunately, this level of human error is unacceptable when considering projections for increased traffic volume (FAA, 2009), and is likely to yield more incidents and accidents unless a more complete understanding of operator error is achieved and remediations are implemented. One area of interest highlighted by researchers is Hazardous States of Awareness (HSAs) that can result from deficiencies in the design and inappropriate use of human-machine interfaces. Identifying and mitigating HSAs is critical for reducing operator errors. One promising approach uses psychophysiological measures which enable automated systems to adapt to the operator?s state and modify modes of operation to support optimal human performance (Scerbo, 2007).

This paper will survey previous research and describe future directions for the application of psychophysiological measures of operators derived from cortical and autonomic assessment to perform real-time adaptive modulation of human-automation task mode mixes. The authors will present a summary of previous work done at NASA LaRC and Old Dominion University using a Psychophysiologically Adaptive System (PAS) in which the level of automation of the NASA Multi-Attribute Task Battery was modulated
based on Engagement Indices derived from the users? electroencephalogram (Pope, Bogart, & Bartolome, 1995; for review see, Scerbo, Freeman, & Mikulka, 2003). Future theoretical and methodological directions for this type of closed-loop research will be discussed. Specifically, the capacity for this type of PAS to
maintain effective operator state and to enable validation of candidate physiological indices will be described. Consideration will also be given to critical system characteristics (e.g., engagement indices, methods for invoking changes among system states, individual differences among users, etc.) that have been or still need to be studied. The potential of the PAS approach for interactive system design and prototyping will also be described. Examples of adaptive automation flight deck concepts in recent experiments will be highlighted and discussed.
Document ID
20200004836
Acquisition Source
Langley Research Center
Document Type
Presentation
Authors
Chad L Stephens
(Langley Research Center Hampton, United States)
Alan T Pope
(Distinguished Research Associates Hampton, Virginia, United States)
Mark W Scerbo
(Old Dominion University Norfolk, United States)
Date Acquired
May 11, 2020
Subject Category
Man/System Technology and Life Support
Report/Patent Number
NF1676L-12231
Meeting Information
Meeting: Association for Applied Psychophysiology and Biofeedback 42nd Annual Meeting
Location: New Orleans, LA
Country: US
Start Date: March 8, 2011
End Date: March 13, 2011
Funding Number(s)
WBS: 284848.02.04.07.02
Distribution Limits
Public
Copyright
Portions of document may include copyright protected material.
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