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  1. Mental State Detection Using Riemannian Geometry on Electroencephalogram Brain Signals.Selina C. Wriessnegger, Philipp Raggam, Kyriaki Kostoglou & Gernot R. Müller-Putz - 2021 - Frontiers in Human Neuroscience 15.
    The goal of this study was to implement a Riemannian geometry -based algorithm to detect high mental workload and mental fatigue using task-induced electroencephalogram signals. In order to elicit high MWL and MF, the participants performed a cognitively demanding task in the form of the letter n-back task. We analyzed the time-varying characteristics of the EEG band power features in the theta and alpha frequency band at different task conditions and cortical areas by employing a RG-based framework. MWL and MF (...)
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  • A Novel Method for Classifying Driver Mental Workload Under Naturalistic Conditions With Information From Near-Infrared Spectroscopy.Anh Son Le, Hirofumi Aoki, Fumihiko Murase & Kenji Ishida - 2018 - Frontiers in Human Neuroscience 12.
  • Supervised Classification of Operator Functional State Based on Physiological Data: Application to Drones Swarm Piloting.Alexandre Kostenko, Philippe Rauffet & Gilles Coppin - 2022 - Frontiers in Psychology 12.
    To improve the safety and the performance of operators involved in risky and demanding missions, human-machine cooperation should be dynamically adapted, in terms of dialogue or function allocation. To support this reconfigurable cooperation, a crucial point is to assess online the operator’s ability to keep performing the mission. The article explores the concept of Operator Functional State, then it proposes to operationalize this concept on the specific activity of drone swarm monitoring, carried out by 22 participants on simulator SUSIE. With (...)
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  • Hybrid eeg-fnirs bci fusion using multi-resolution singular value decomposition.Muhammad Umer Khan & Mustafa A. H. Hasan - 2020 - Frontiers in Human Neuroscience 14.
    Brain-computer interface multi-modal fusion has the potential to generate multiple commands in a highly reliable manner by alleviating the drawbacks associated with single modality. In the present work, a hybrid EEG-fNIRS BCI system—achieved through a fusion of concurrently recorded electroencephalography and functional near-infrared spectroscopy signals—is used to overcome the limitations of uni-modality and to achieve higher tasks classification. Although the hybrid approach enhances the performance of the system, the improvements are still modest due to the lack of availability of computational (...)
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  • Analysis of Human Gait Using Hybrid EEG-fNIRS-Based BCI System: A Review.Haroon Khan, Noman Naseer, Anis Yazidi, Per Kristian Eide, Hafiz Wajahat Hassan & Peyman Mirtaheri - 2021 - Frontiers in Human Neuroscience 14.
    Human gait is a complex activity that requires high coordination between the central nervous system, the limb, and the musculoskeletal system. More research is needed to understand the latter coordination's complexity in designing better and more effective rehabilitation strategies for gait disorders. Electroencephalogram and functional near-infrared spectroscopy are among the most used technologies for monitoring brain activities due to portability, non-invasiveness, and relatively low cost compared to others. Fusing EEG and fNIRS is a well-known and established methodology proven to enhance (...)
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  • Feature Extraction and Classification Methods for Hybrid fNIRS-EEG Brain-Computer Interfaces.Keum-Shik Hong, M. Jawad Khan & Melissa J. Hong - 2018 - Frontiers in Human Neuroscience 12.
  • Comparing the Relative Strengths of EEG and Low-Cost Physiological Devices in Modeling Attention Allocation in Semiautonomous Vehicles.Dean Cisler, Pamela M. Greenwood, Daniel M. Roberts, Ryan McKendrick & Carryl L. Baldwin - 2019 - Frontiers in Human Neuroscience 13.
  • Neurophysiological Measures of the Perception of Antismoking Public Service Announcements Among Young Population.Giulia Cartocci, Enrica Modica, Dario Rossi, Patrizia Cherubino, Anton Giulio Maglione, Alfredo Colosimo, Arianna Trettel, Marco Mancini & Fabio Babiloni - 2018 - Frontiers in Human Neuroscience 12.
  • Towards a Multimodal Model of Cognitive Workload Through Synchronous Optical Brain Imaging and Eye Tracking Measures.Erdinç İşbilir, Murat Perit Çakır, Cengiz Acartürk & Ali Şimşek Tekerek - 2019 - Frontiers in Human Neuroscience 13.
    Recent advances in neuroimaging technologies have rendered multimodal analysis of operators’ cognitive processes in complex task settings and environments increasingly more practical. In this exploratory study, we utilized optical brain imaging and mobile eye tracking technologies to investigate the behavioral and neurophysiological differences among expert and novice operators while they operated a human-machine interface in normal and adverse conditions. In congruence with related work, we observed that experts tended to have lower prefrontal oxygenation and exhibit gaze patterns that are better (...)
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