DocumentCode :
2103991
Title :
Optimization of magnetic neurostimulation waveforms for minimum power loss
Author :
Goetz, Stefan M. ; Truong, N.C. ; Gerhofer, M.G. ; Peterchev, Angel V. ; Herzog, H. ; Weyh, Thomas
Author_Institution :
Dept. of Psychiatry & Behavioral Sci., Duke Univ., Durham, NC, USA
fYear :
2012
fDate :
Aug. 28 2012-Sept. 1 2012
Firstpage :
4652
Lastpage :
4655
Abstract :
Magnetic stimulation is a key tool in experimental brain research and several clinical applications. Whereas coil designs and the spatial field properties have been intensively studied in the literature, the temporal dynamics of the field has received little attention. The available pulse shapes are typically determined by the relatively limited capabilities of commercial stimulation devices instead of efficiency or optimality. Furthermore, magnetic stimulation is relatively inefficient with respect to the required energy compared to other neurostimulation techniques. We therefore analyze and optimize the waveform dynamics with a nonlinear model of a mammalian motor axon for the first time, without any pre-definition of waveform candidates. We implemented an unbiased and stable numerical algorithm using variational calculus in combination with a global optimization method. This approach yields very stable results with comprehensible characteristic properties, such as a first phase which reduces ohmic losses in the subsequent pulse phase. We compare the energy loss of these optimal waveforms with the waveforms generated by existing magnetic stimulation devices.
Keywords :
biomagnetism; magnetic field effects; medical computing; neuromuscular stimulation; numerical analysis; optimisation; variational techniques; global optimization method; magnetic field temporal dynamics; magnetic neurostimulation waveform optimization; mammalian motor axon nonlinear model; minimum power loss; pulse shape; stable numerical algorithm; unbiased numerical algorithm; variational calculus; waveform dynamics optimisation; Coils; Energy loss; Magnetic stimulation; Neurons; Neurophysiology; Optimization; Shape; Action Potentials; Animals; Axons; Computer Simulation; Energy Transfer; Humans; Magnetic Field Therapy; Magnetic Fields; Models, Neurological; Motor Neurons; Radiation Dosage;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Engineering in Medicine and Biology Society (EMBC), 2012 Annual International Conference of the IEEE
Conference_Location :
San Diego, CA
ISSN :
1557-170X
Print_ISBN :
978-1-4244-4119-8
Electronic_ISBN :
1557-170X
Type :
conf
DOI :
10.1109/EMBC.2012.6347004
Filename :
6347004
Link To Document :
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