First steps towards quantum machine learning applied to the classification of event-related potentials

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Authors GrΓ©goire Cattan, Alexandre Quemy, Anton Andreev arXiv ID 2302.02648 Category cs.HC: Human-Computer Interaction Cross-listed stat.ML Citations 3 Last Checked 4 months ago
Abstract
Low information transfer rate is a major bottleneck for brain-computer interfaces based on non-invasive electroencephalography (EEG) for clinical applications. This led to the development of more robust and accurate classifiers. In this study, we investigate the performance of quantum-enhanced support vector classifier (QSVC). Training (predicting) balanced accuracy of QSVC was 83.17 (50.25) %. This result shows that the classifier was able to learn from EEG data, but that more research is required to obtain higher predicting accuracy. This could be achieved by a better configuration of the classifier, such as increasing the number of shots.
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