DocumentCode
471723
Title
Large-Scale Inverse and Forward Modeling of Adaptive Resonance in the Tinnitus Decompensation
Author
Low, Yin Fen ; Trenado, Carlos ; Delb, Wolfgang ; Amelio, Roberto D. ; Falkai, Peter ; Strauss, Daniel J.
Author_Institution
Comput. Diagnostics & Biocybern. Unit, Saarlandes Univ., Saarbrucken
fYear
2006
fDate
Aug. 30 2006-Sept. 3 2006
Firstpage
2585
Lastpage
2588
Abstract
Neural correlates of psychophysiological tinnitus models in humans may be used for their neurophysiological validation as well as for their refinement and improvement to better understand the pathogenesis of the tinnitus decompensation and to develop new therapeutic approaches. In this paper we make use of neural correlates of top-down projections, particularly, a recently introduced synchronization stability measure, together with a multiscale evoked response potential (ERP) model in order to study and evaluate the tinnitus decompensation by using a hybrid inverse-forward mathematical methodology. The neural synchronization stability, which according to the underlying model is linked to the focus of attention on the tinnitus signal, follows the experimental and inverse way and allows to discriminate between a group of compensated and decompensated tinnitus patients. The multiscale ERP model, which works in the forward direction, is used to consolidate hypotheses which are derived from the experiments for a known neural source dynamics related to attention. It is concluded that both methodologies agree and support each other in the description of the discriminatory character of the neural correlate proposed, but also help to fill the gap between the top-down adaptive resonance theory and the Jastreboff model of tinnitus
Keywords
auditory evoked potentials; neurophysiology; physiological models; synchronisation; Jastreboff model; adaptive resonance theory; hybrid inverse-forward mathematical methodology; multiscale evoked response potential model; neural correlation; neural source dynamics; neural synchronization stability; neurophysiological validation; pathogenesis; psychophysiological tinnitus models; therapeutic approach; tinnitus decompensation; Enterprise resource planning; Humans; Inverse problems; Large-scale systems; Mathematical model; Particle measurements; Pathogens; Psychology; Resonance; Stability;
fLanguage
English
Publisher
ieee
Conference_Titel
Engineering in Medicine and Biology Society, 2006. EMBS '06. 28th Annual International Conference of the IEEE
Conference_Location
New York, NY
ISSN
1557-170X
Print_ISBN
1-4244-0032-5
Electronic_ISBN
1557-170X
Type
conf
DOI
10.1109/IEMBS.2006.259445
Filename
4462325
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