AI Article Synopsis

  • The study examines how mental fatigue affects brain function by analyzing EEG data from 40 male subjects during low and high-demand tasks, revealing significant behavioral declines in cognitive performance before and after these tasks.
  • Results indicate that task duration correlates with increased characteristic path length in brain networks, suggesting that mental fatigue disrupts information processing efficiency.
  • The research highlights different brain network reorganizations between tasks and demonstrates high accuracy in classifying fatigue levels, supporting the potential of using functional connectivity metrics as biomarkers for monitoring fatigue.

Article Abstract

Despite the apparent importance of mental fatigue detection, a reliable application is hindered due to the incomprehensive understanding of the neural mechanisms of mental fatigue. In this paper, we investigated the topological alterations of functional brain networks in the theta band (4 - 7 Hz) of electroencephalography (EEG) data from 40 male subjects undergoing two distinct fatigue-inducing tasks: a low-intensity one-hour simulated driving and a high-demanding half-hour sustained attention task [psychomotor vigilance task (PVT)]. Behaviorally, subjects demonstrated a robust mental fatigue effect, as reflected by significantly declined performances in cognitive tasks prior and post these two tasks. Furthermore, characteristic path length presented a positive correlation with task duration, which led to a significant increase between the first and the last five minutes of both tasks, indicating a fatigue-related disruption in information processing efficiency. However, significantly increased clustering coefficient was revealed only in the driving task, suggesting distinct network reorganizations between the two fatigue-inducing tasks. Moreover, high accuracy (92% for driving; 97% for PVT) was achieved for fatigue classification with apparently different discriminative functional connectivity features. These findings augment our understanding of the complex nature of fatigue-related neural mechanisms and demonstrate the feasibility of using functional connectivity as neural biomarkers for applicable fatigue monitoring.

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Source
http://dx.doi.org/10.1109/TNSRE.2018.2791936DOI Listing

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