DocumentCode :
139922
Title :
A latent force model for describing electric propagation in deep brain stimulation: A simulation study
Author :
Alvarado, Pablo A. ; Alvarez, Mauricio A. ; Daza-Santacoloma, Genaro ; Orozco, Alvaro ; Castellanos-Dominguez, German
Author_Institution :
Dept. of Electr. Eng., Univ. Tecnol. de Pereira, Pereira, Colombia
fYear :
2014
fDate :
26-30 Aug. 2014
Firstpage :
2617
Lastpage :
2620
Abstract :
Deep brain stimulation (DBS) is a neurosurgical method used to treat symptoms of movement disorders by implanting electrodes in deep brain areas. Often, the DBS modeling approaches found in the literature assume a quasi-static approximation, and discard any dynamic behavior. Nevertheless, in a real DBS system the stimulus corresponds to a wave that changes as a function of time. It is clear that DBS demands an approach that takes into account the time-varying behavior of the input stimulus. In this work, we present a novel latent force model for describing the dynamic electric propagation occurred during DBS. The performance of the proposed model was studied by simulations under different conditions. The results show that our approach is able to take into account the time variations of the source and the produced field. Moreover, by restricting our model it is possible to obtain solutions for electrostatic formulations, here experimental results were compared with the finite element method. Additionally, our approach allows a solution to the inverse problem, which is a valuable clinical application allowing the appropriate tuning of the DBS device by the expert physician.
Keywords :
bioelectric phenomena; biomechanics; biomedical electrodes; brain; finite element analysis; inverse problems; medical disorders; neurophysiology; prosthetics; surgery; DBS device tuning; DBS modeling; clinical application; deep brain areas; deep brain stimulation; dynamic behavior; dynamic electric propagation; electrode implantion; electrostatic formulations; expert physician; finite element method; input stimulus; inverse problem; latent force model; movement disorders; neurosurgical method; quasistatic approximation; real DBS system; simulation study; time variations; time-varying behavior; Brain modeling; Brain stimulation; Electric potential; Force; Mathematical model; Propagation; Satellite broadcasting;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Engineering in Medicine and Biology Society (EMBC), 2014 36th Annual International Conference of the IEEE
Conference_Location :
Chicago, IL
ISSN :
1557-170X
Type :
conf
DOI :
10.1109/EMBC.2014.6944159
Filename :
6944159
Link To Document :
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