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Individualized pattern recognition for detecting mind wandering from EEG during live lectures.

Kiret DhindsaAnita AcaiNatalie WagnerDan BosynakStephen KellyMohit BhandariBrad PetrisorRanil R Sonnadara
Published in: PloS one (2019)
Modelling mind wandering at the individual level may reveal important details about its neural correlates that are not reflected when using traditional observational and statistical methods. Using machine learning techniques for this purpose can provide new insight into the varieties of neural activity involved in mind wandering, while also enabling real-time detection of mind wandering in naturalistic settings.
Keyphrases
  • genome wide
  • cross sectional
  • loop mediated isothermal amplification
  • real time pcr