DocumentCode
1832860
Title
Dynamical Properties of a Plastic Neural Network Model for Tinnitus Therapy and Inhibition of Oscillation Using Noise Stimulus
Author
Fujimoto, K. ; Nagashino, H. ; Kinouchi, Y. ; Danesh, A.A. ; Pandya, A.S.
Author_Institution
Univ. of Tokushima, Tokushima
fYear
2007
fDate
22-26 Aug. 2007
Firstpage
2408
Lastpage
2411
Abstract
Tinnitus is the perception of phantom sounds in the ears or in the head. Sound therapy techniques for tinnitus have been proposed. To account for mechanisms of tinnitus generation and the clinical effects of sound therapies from the viewpoint of neural engineering, we have proposed a plastic neural network model for the human auditory system. We found that this model has a bistable state, i.e., a stable oscillatory state and a stable equilibrium (non-oscillatory) state coexist at a certain parameter region. We also found that the oscillation can be inhibited by supplying sinusoidal stimulus, which is hypothesized as sound for treatment of tinnitus, to the model. By hypothesizing that the oscillation and the equilibrium correspond to generation and inhibition of tinnitus, respectively, we reported that these phenomena could explain the fact that the habituated human auditory system temporarily halts perception of tinnitus following sound therapy. This paper describes dynamical properties of the model and inhibition of the oscillation for two kinds of noise stimuli which correspond to sound for treatment of tinnitus in clinical. Through numerical simulations we found that adequate noise stimulus can inhibits the oscillation.
Keywords
diseases; hearing; medical computing; neural nets; patient treatment; dynamical properties; human auditory system; neural engineering; noise stimuli; noise stimulus; oscillation inhibition; phantom sounds; plastic neural network model; sinusoidal stimulus; sound therapy techniques; tinnitus therapy; Acoustic noise; Auditory system; Ear; Humans; Imaging phantoms; Medical treatment; Neural engineering; Neural networks; Numerical simulation; Plastics; Acoustic Stimulation; Equipment Design; Hearing; Humans; Models, Statistical; Models, Theoretical; Nerve Net; Neural Networks (Computer); Neurons; Noise; Normal Distribution; Oscillometry; Sound; Time Factors; Tinnitus;
fLanguage
English
Publisher
ieee
Conference_Titel
Engineering in Medicine and Biology Society, 2007. EMBS 2007. 29th Annual International Conference of the IEEE
Conference_Location
Lyon
ISSN
1557-170X
Print_ISBN
978-1-4244-0787-3
Type
conf
DOI
10.1109/IEMBS.2007.4352813
Filename
4352813
Link To Document