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Updated: Nov 11, 2025

Cortical Source Analysis of High-Density EEG Recordings in Children
Published on: June 30, 2014
Nonlinear analysis of scalp EEGs from normal and brain tumour subjects
Salai Selvam V1, Shenbaga Devi S1
1Department of Electronics and Communication Engineering, College of Engineering, Guindy, Anna University, Chennai, 600 025, Tamil Nadu, India.
Abstract:
Measurement of features from the chaos theory or as popularly known, the concept of nonlinear dynamics, as indicatives of several pathological conditions and cognition states using the electroencephalography (EEG) signal is very popular. In this paper, the analysis of scalp EEG signals of normal subjects and brain tumour patients using the nonlinear dynamic features has been presented. The nonlinear dynamic features that represent the dimensional and waveform complexities of the signal being analyzed have been considered. The statistical analysis of the selected nonlinear dynamic features has been presented. The results show that the nonlinear dynamic features significantly discriminate the brain tumour group from the normal group.

