Title :
Sub-mm functional decoupling of electrocortical signals through closed-loop BMI learning
Author :
Ledochowitsch, Peter ; Koralek, A.C. ; Moses, D. ; Carmena, Jose M. ; Maharbiz, Michel M.
Author_Institution :
Bioeng. Dept., Univ. of California, Berkeley, Berkeley, CA, USA
Abstract :
Volitional control of neural activity lies at the heart of the Brain-Machine Interface (BMI) paradigm. In this work we investigated if subdural field potentials recorded by electrodes <; 1mm apart can be decoupled through closed-loop BMI learning. To this end, we fabricated custom, flexible microelectrode arrays with 200 μm electrode pitch and increased the effective electrode area by electrodeposition of platinum black to reduce thermal noise. We have chronically implanted these arrays subdurally over primary motor cortex (M1) of 5 male Long-Evans Rats and monitored the electrochemical electrode impedance in vivo to assess the stability of these neural interfaces. We successfully trained the rodents to perform a one-dimensional center-out task using closed-loop brain control to adjust the pitch of an auditory cursor by differentially modulating high gamma (70-110 Hz) power on pairs of surface microelectrodes that were separated by less than 1 mm.
Keywords :
auditory evoked potentials; biomedical electrodes; brain-computer interfaces; closed loop systems; electric impedance; electrochemical electrodes; electrodeposition; learning (artificial intelligence); medical signal processing; microelectrodes; microfabrication; neurophysiology; platinum; thermal noise; Pt; auditory cursor pitch adjustment; brain-machine interface; closed-loop BMI learning; closed-loop brain control; electrochemical electrode impedance; electrocortical signal decoupling; gamma power modulation; long-evans rat; neural activity; neural interface stability; one-dimensional center-out task; platinum black electrodeposition; primary motor cortex; size 200 mum; subdural field potential recording; surface microelectrode array; thermal noise reduction; Electric potential; Impedance; Microelectrodes; Platinum; Rats; Surface impedance;
Conference_Titel :
Engineering in Medicine and Biology Society (EMBC), 2013 35th Annual International Conference of the IEEE
Conference_Location :
Osaka
DOI :
10.1109/EMBC.2013.6610825