Assessment of cockpit information and control field using neural networks and methods

 
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Abstract

The paper deals with the methodology of estimating the cockpit information and control field using indicators of oculomotor activity and a probabilistic neural network, which is used to calculate the final estimate of the considered display version. This methodology was tested on the universal prototyping bench basis with the participation of pilots. The using of this methodology contributes to the rapid and qualitative ergonomic assessment of the cockpit information and control field, which in turn increases the efficiency of human-machine interaction and, as a consequence, the safety of air transportation.

General Information

Keywords: ergonomic assessment, oculomotor activity, cockpit information and control field, probabilistic neural network

Journal rubric: Data Analysis

OpenAlex citations: 0

OpenAlex trends: Aerospace Engineering and Applications, Technology and Human Factors in Education and Health, Technical Engine Diagnostics and Monitoring

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Number of citations: 0

Topics

Aerospace Engineering and Applications

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Technology and Human Factors in Education and Health

This cluster of papers explores the future of personalized medicine in healthcare, focusing on topics such as artificial intelligence, healthcare technology, medical innovation, ergonomics, biomedical signal analysis, digital health, cyber-physical systems, healthcare automation, and clinical decision support. The papers cover a wide range of interdisciplinary research related to advancing personalized medical treatments and technologies.

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Technical Engine Diagnostics and Monitoring

This cluster of papers focuses on advancements in transportation engineering and maintenance, with a particular emphasis on condition-based maintenance, energy policies, marine engine diagnostics, gas turbine blade assessment, semi-Markov modeling, intelligent transport systems, environmental impact analysis, and operational quality assessment. The research also delves into the application of big data analysis in optimizing transportation operations.

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Work details in OpenAlex

Article type: scientific article

DOI: https://doi.org/10.17759/mda.2023130302

Acknowledgements. The authors are grateful for scientific and technical support Kuravsky L.S.

Received 15.07.2023

Accepted

Published

For citation: Makhortov, I.A., Greshnikov, I.I. (2023). Assessment of cockpit information and control field using neural networks and methods. Modelling and Data Analysis, 13(3), 28–38. (In Russ.). https://doi.org/10.17759/mda.2023130302

© Makhortov I.A., Greshnikov I.I., 2023

License: CC BY-NC 4.0

References

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  2. Greshnikov I.I., Zlatomrezhev V.I., Ispol'zovanie peredovyh tekhnologij dlya optimizacii informacionno-upravlyayushchego polya kabiny perspektivnogo samolyota. XVIII vserossijskaya nauchnaya konferenciya «nejrokomp'yutery i ih primenenie», abstracts. 2020 г. (In Russ.).
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Information About the Authors

Innokenty A. Makhortov, Graduate Student, Moscow State University of Psychology and Education, Engineer of the 2nd Category, State Research Institute of Aviation Systems (GosNIIAS), Moscow, Russian Federation, ORCID: https://orcid.org/0009-0006-6919-9419, e-mail: inok546@ya.ru

Ivan I. Greshnikov, Candidate of Science (Engineering), Head of laboratory, State Research Institute of Aviation Systems (GosNIIAS), Moscow, Russian Federation, ORCID: https://orcid.org/0000-0001-5474-3094, e-mail: vvanes@mail.ru

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