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Biosignal-Based Driving Skill Classification Using Machine Learning: A Case Study of Maritime Navigation

Permanent lenke
https://hdl.handle.net/10037/23078
DOI
https://doi.org/10.3390/app11209765
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Åpne
article.pdf (13.89Mb)
Publisert versjon (PDF)
Dato
2021-10-19
Type
Journal article
Tidsskriftartikkel
Peer reviewed

Forfatter
Xue, Hui; Batalden, Bjørn-Morten; Sharma, Puneet; Johansen, Jarle André; Prasad, Dilip K.
Sammendrag
This work presents a novel approach to detecting stress differences between experts and novices in Situation Awareness (SA) tasks during maritime navigation using one type of wearable sensor, Empatica E4 Wristband. We propose that for a given workload state, the values of biosignal data collected from wearable sensor vary in experts and novices. We describe methods to conduct a designed SA task experiment, and collected the biosignal data on subjects sailing on a 240° view simulator. The biosignal data were analysed by using a machine learning algorithm, a Convolutional Neural Network. The proposed algorithm showed that the biosingal data associated with the experts can be categorized as different from that of the novices, which is in line with the results of NASA Task Load Index (NASA-TLX) rating scores. This study can contribute to the development of a self-training system in maritime navigation in further studies.
Er en del av
Xue, H. (2023). Methods for enhanced learning using wearable technologies. A study of the maritime sector. (Doctoral thesis). https://hdl.handle.net/10037/31091.
Forlag
MDPI
Sitering
Xue H, Batalden B, Sharma P, Johansen JA, Prasad DK. Biosignal-Based Driving Skill Classification Using Machine Learning: A Case Study of Maritime Navigation. Applied Sciences. 2021
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  • Artikler, rapporter og annet (teknologi og sikkerhet) [360]
Copyright 2021 The Author(s)

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