2021
DOI: 10.1101/2021.09.16.460615
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Hybrid EEG-EMG system to detect steering actions in car driving settings

Abstract: Understanding mental processes in complex human behaviour is a key issue in the context of driving, representing a milestone for developing user-centred assistive driving devices. Here we propose a hybrid method based on electroencephalographic (EEG) and electromyographic (EMG) signatures to distinguish left from right steering in driving scenarios. Twenty-four participants took part in the experiment consisting of recordings 128-channel EEG as well as EMG activity from deltoids and forearm extensors in non-ec… Show more

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Cited by 3 publications
(8 citation statements)
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“…The overall Biohub architecture, including its inter-stream synchronization, was "stress-tested" in the in-car BCI paradigm, which required the online application of advanced machine learning models for time series analysis. The successful findings reported in this test-case indicate the Biohub as a hybrid systemenabling the setting up of paradigms for measuring different psychophysiological variables, with better performance relative to conventional, unimodal BCI systems [20,39].…”
Section: Discussionmentioning
confidence: 88%
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“…The overall Biohub architecture, including its inter-stream synchronization, was "stress-tested" in the in-car BCI paradigm, which required the online application of advanced machine learning models for time series analysis. The successful findings reported in this test-case indicate the Biohub as a hybrid systemenabling the setting up of paradigms for measuring different psychophysiological variables, with better performance relative to conventional, unimodal BCI systems [20,39].…”
Section: Discussionmentioning
confidence: 88%
“…Then, the power spectral density (PSD) was calculated for each epoch in the range of [1,30] Hz window using the PSD multitaper function (Python MNE library [29,30]). Epochs with PSD > 60 dB in the [20,30] Hz window were rejected. In addition, each epoch was fitted with a linear fit model and rejected if the r squared linear correlation coefficient was larger than 0.85.…”
Section: Eeg Analysismentioning
confidence: 99%
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“…In the field of driving research, several studies addressed the issue of action detection and prediction based on the discrimination of different EEG features in simulated (Haufe et al, 2011;Gheorghe et al, 2013;Khaliliardali et al, 2015;Kim et al, 2015;Vecchiato et al, 2018Vecchiato et al, , 2020Vecchiato et al, , 2021 and real driving scenarios (Haufe et al, 2014;Zhang et al, 2015).…”
Section: Hybrid Systems In Car Driving Scenariosmentioning
confidence: 99%
“…This result demonstrates that brain-related EEG signals significantly improve the overall decoding performance, showing that the significant contribution in predicting steering comes from non-brain-related signals, such as ocular and muscular components. Brain and muscular activities underlying steering behavior were also investigated with the final aim to increase the overall ecology of the experimental setting (Vecchiato et al, 2021). In particular, EEG feature predicting steering action and direction elicited by responding to traffic signs displayed on a computer screen was extracted and later exploited to increase the predictive power of the EMG collected in a more ecological steering task, such as a driving simulation.…”
Section: Hybrid Systems In Car Driving Scenariosmentioning
confidence: 99%