Title :
Design and implementation of a human ECoG simulator for testing brain-machine interfaces
Author :
Fifer, Matthew S. ; Milsap, Griffin W. ; Greenwald, Elliot ; McMullen, David P. ; Anderson, William S. ; Thakor, Nitish V. ; Crone, Nathan E. ; Vinjamuri, R.
Author_Institution :
Dept. of Biomed. Eng., Johns Hopkins Univ., Baltimore, MD, USA
Abstract :
This paper presents the design and implementation of a signal simulator that emulates event-related human electrocorticographic (ECoG) signals. This real-time simulator renders a representative model of human ECoG encompassing prominent physiological modulation in the time domain (e.g., event-related potentials, or ERPs) and the frequency domain (e.g., alpha/mu, beta, and high gamma band). The simulated signals were generated in a MATLAB SIMULINK framework and output through a National Instruments PCI card for recording by a standard research-grade ECoG amplifier system. Trial-averaged event-related spectrograms computed offline from simulated signals exhibit characteristics similar to those of experimental human ECoG recordings. The presented simulator can serve as a useful tool for testing real-time brain-machine interface (BMI) applications. It can also serve as a potential framework for future implementation of neuronal models for generation of extracellular field potentials.
Keywords :
bioelectric potentials; brain-computer interfaces; medical signal processing; ECoG signals; ERP; Matlab-Simulink framework; National Instruments PCI card; alpha band; beta band; brain-machine interface testing; event-related human electrocorticographic signals; event-related potentials; extracellular field potential generation; frequency domain; high-gamma band; human ECoG recordings; human ECoG simulator design; human ECoG simulator implementation; mu band; neuronal models; physiological modulation; real-time BMI applications; real-time brain-machine interface; real-time simulator; standard research-grade ECoG amplifier system; time domain; trial-averaged event-related spectrograms; Computational modeling; Electrodes; MATLAB; Mathematical model; Oscillators; Testing; Tuning;
Conference_Titel :
Neural Engineering (NER), 2013 6th International IEEE/EMBS Conference on
Conference_Location :
San Diego, CA
DOI :
10.1109/NER.2013.6696182