Title :
Time Frequency Characterization of Evoked Brain Activity In Multiple Electrode Recordings
Author :
Majumdar, N.S. ; Pribram, K.H. ; Barrett, T.W.
Author_Institution :
Dept. of Comput. Sci., George Mason Univ., Fairfax, VA
Abstract :
This paper explores global time frequency approaches to EEG data analysis with the Wigner Distribution Function and the Symmetric Ambiguity Function. The task chosen was to characterize the activity profile of EEG signals in sample Frontal, Central and Occipital electrodes from human subjects, coincident with the perception of a reversal in the orientation of a bistable Necker cube figure. The result of this analysis has implications for blind signal processing as the goal was to identify an unknown input source eliciting the observed EEG signals. The methods demonstrate an internally initiated EEG signal source not tied to a regularly anticipated external source. The results demonstrate the general applicability of the methods for a wide variety of neural and biological signals and systems. The findings can be summarized as the observation of high energy activity patterns in terms of significant dissimilarities in the waveform, both in time and frequency, in the Frontal and Occipital electrodes, approximately 200-600 ms prior to the appearance of the premotor potentials in the medial electrodes
Keywords :
Wigner distribution; bioelectric potentials; biomedical electrodes; electroencephalography; medical signal processing; time-frequency analysis; 200 to 600 ms; EEG data analysis; Wigner distribution function; bistable Necker cube figure; blind signal processing; central electrodes; evoked brain activity; frontal electrodes; global time frequency characterization; multiple electrode recordings; occipital electrodes; premotor potentials; symmetric ambiguity function; Biomedical signal processing; Brain; Data analysis; Distribution functions; Electrodes; Electroencephalography; Humans; Signal analysis; Signal processing; Time frequency analysis; Ambiguity function diagrams; EEG; Wigner distribution function; bistable images; time frequency analysis; Algorithms; Brain Mapping; Computer Simulation; Electrodes; Evoked Potentials, Visual; Humans; Models, Neurological; Photic Stimulation; Reaction Time; Visual Cortex; Visual Perception;
Journal_Title :
Biomedical Engineering, IEEE Transactions on
DOI :
10.1109/TBME.2006.883733