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Real-time imaging of human brain function by near-infrared spectroscopy using an adaptive general linear model

  • University of Pittsburgh

Research output: Contribution to journalArticlepeer-review

182 Scopus citations

Abstract

Near-infrared spectroscopy is a non-invasive neuroimaging method which uses light to measure changes in cerebral blood oxygenation associated with brain activity. In this work, we demonstrate the ability to record and analyze images of brain activity in real-time using a 16-channel continuous wave optical NIRS system. We propose a novel real-time analysis framework using an adaptive Kalman filter and a state-space model based on a canonical general linear model of brain activity. We show that our adaptive model has the ability to estimate single-trial brain activity events as we apply this method to track and classify experimental data acquired during an alternating bilateral self-paced finger tapping task.

Original languageEnglish
Pages (from-to)133-143
Number of pages11
JournalNeuroImage
Volume46
Issue number1
DOIs
StatePublished - May 15 2009

Keywords

  • Data classification
  • General linear model
  • Kalman filtering
  • NIRS

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