Arrow Research search

Author name cluster

Marcel denNijs

Possible papers associated with this exact author name in Arrow. This page groups case-insensitive exact name matches and is not a full identity disambiguation profile.

2 papers
1 author row

Possible papers

2

YNIMG Journal 2014 Journal Article

Broadband changes in the cortical surface potential track activation of functionally diverse neuronal populations

  • Kai J Miller
  • Christopher J Honey
  • Dora Hermes
  • Rajesh PN Rao
  • Marcel denNijs
  • Jeffrey G Ojemann

We illustrate a general principal of electrical potential measurements from the surface of the cerebral cortex, by revisiting and reanalyzing experimental work from the visual, language and motor systems. A naive decomposition technique of electrocorticographic power spectral measurements reveals that broadband spectral changes reliably track task engagement. These broadband changes are shown to be a generic correlate of local cortical function across a variety of brain areas and behavioral tasks. Furthermore, they fit a power-law form that is consistent with simple models of the dendritic integration of asynchronous local population firing. Because broadband spectral changes covary with diverse perceptual and behavioral states on the timescale of 20–50ms, they provide a powerful and widely applicable experimental tool.

YNIMG Journal 2007 Journal Article

Real-time functional brain mapping using electrocorticography

  • Kai J. Miller
  • Marcel denNijs
  • Pradeep Shenoy
  • John W. Miller
  • Rajesh P.N. Rao
  • Jeffrey G. Ojemann

We demonstrate the feasibility of real-time cortical mapping from arrays of subdural electrodes using the electrocorticographic signal power in the higher spectral frequencies (76–200 Hz, or “χ-index”). Hand area was mapped offline in eight individuals using brief baseline and hand-movement measurements. In one patient, hand sensorimotor cortex was identified online during a handshake. We propose that this high-frequency component of the electrocorticogram provides a generic, reliable, clinically useful correlate of local cortical function.

v2026.09.13