2021
DOI: 10.7250/bjrbe.2021-16.518
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Driver Sleepiness Detection Algorithm Based on Relevance Vector Machine

Abstract: Driver sleepiness is one of the most important causes of traffic accidents. Efficient and stable algorithms are crucial for distinguishing nonfatigue from fatigue state. Relevance vector machine (RVM) as a leading-edge detection approach allows meeting this requirement and represents a potential solution for fatigue state detection. To accurately and effectively identify the driver’s fatigue state and reduce the number of traffic accidents caused by driver sleepiness, this paper considers the degree of driver’… Show more

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Cited by 3 publications
(3 citation statements)
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“…T3 is the time taken between maximum eyes opening and 20% pupil opening after closing the eyes. T4 is the time taken between maximum eyes opening and 80% pupil opening after closing the eyes [17].…”
Section: 1design Of Fatigue Driving Detection Algorithmmentioning
confidence: 99%
“…T3 is the time taken between maximum eyes opening and 20% pupil opening after closing the eyes. T4 is the time taken between maximum eyes opening and 80% pupil opening after closing the eyes [17].…”
Section: 1design Of Fatigue Driving Detection Algorithmmentioning
confidence: 99%
“…Usually, mouth features are combined with eye features to ensure drivers' psychophysiological states. Mouth features include yawning frequency, mouth opening ratio, mouth state, mouth aspect ratio (MAR), and Open Mouth Rate (OMR) Liu et al 2020;Rathi et al, 2021;Valsan et al 2021;Wang and Qu 2021;Wei et al 2021;Zhao et al 2021;Zhongwei et al 2021;Zhuang and Qi 2021).…”
Section: Literature Review Of Drivers' Psychophysiological State Dete...mentioning
confidence: 99%
“…The Bayesian extension of the SVM is called Relevance Vector Machine (RVM) and it is used to classify facial features. Compared to SVM, RVM requires fewer training cases (Wei et al 2021).…”
Section: Analysis Of Drivers' Psychophysiological State Detection Mea...mentioning
confidence: 99%