SEGMENTATION OF BRAIN ELECTRICAL-ACTIVITY INTO MICROSTATES - MODEL ESTIMATION AND VALIDATION

被引:719
作者
PASCUALMARQUI, RD
MICHEL, CM
LEHMANN, D
机构
[1] UNIV ZURICH HOSP,DEPT NEUROL,EEG EP MAPPING LAB,CH-8091 ZURICH,SWITZERLAND
[2] CUBAN NEUROSCI CTR,HAVANA,CUBA
关键词
D O I
10.1109/10.391164
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
A brain microstate is defined as a functional/physiological state of the brain during which specific neural computations are performed. It is characterized uniquely by a fixed spatial distribution of active neuronal generators with time varying intensity, Brain electrical activity is modeled as being composed of a time sequence of nonoverlapping microstates with variable duration, A precise mathematical formulation of the model for evoked potential recordings is presented, where the microstates are represented as normalized vectors constituted by scalp electric potentials due to the underlying generators, An algorithm is developed for estimating the microstates, based on a modified version of the classical k-means clustering method, in which cluster orientations are estimated, Consequently, each instantaneous multichannel evoked potential measurement is classified as belonging to some microstate, thus producing a natural segmentation of brain activity, Use is made of statistical image segmentation techniques for obtaining smooth continuous segments, Time varying intensities are estimated by projecting the measurements onto their corresponding microstates, A goodness of fit statistic for the model is presented, Finally, a method is introduced for estimating the number of microstates, based on nonparametric data-driven statistical resampling techniques.
引用
收藏
页码:658 / 665
页数:8
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