DocumentCode :
1195678
Title :
Stochastic Population Model for Electrical Stimulation of the Auditory Nerve
Author :
Imennov, Nikita S. ; Rubinstein, Jay T.
Author_Institution :
Dept. of Bioeng., Univ. of Washington, Seattle, WA, USA
Volume :
56
Issue :
10
fYear :
2009
Firstpage :
2493
Lastpage :
2501
Abstract :
We have developed a biophysical model of a population of electrically stimulated auditory nerve fibers. It can be used to interpret results from physiological and behavioral experiments with cochlear implants and propose novel stimulation strategies. Our model consists of myelinated internodes described by a passive resistor-capacitor network, membrane capacitance, and leakage current at the nodes of Ranvier, as well as stochastic representations of nodal voltage-dependent channels. To approximate physiological properties measured in the auditory nerve (AN) of an acutely deafened cat, electrical parameters of the model fiber were chosen based on literature-reported values. Using our model, we have replicated the following properties within 10% of the reported feline single-fiber measurements: relative spread (5.8%), spike latency (630 mus), jitter (93 mus), chronaxie (238 mus), relative refractory period (4.6 ms), and conduction velocity (14 m/s). Moreover, we have successfully matched response characteristics of a population of fibers with the same number of diameter-distributed model fibers, enabling us to simulate responses of the entire AN. To demonstrate the performance of our model, we compare responses of a population of ANs stimulated with two speech encoding strategies, continuous interleaved sampling and compressed analog.
Keywords :
bioelectric phenomena; biomembranes; cochlear implants; hearing; leakage currents; physiological models; speech coding; stochastic processes; Ranvier nodes; auditory nerve; cochlear implants; compressed analog; continuous interleaved sampling; electrical stimulation; leakage current; membrane capacitance; myelinated internodes; passive resistor-capacitor network; speech encoding; stochastic population model; time 630 mus; time 93 mus; velocity 14 m/s; Biomembranes; Capacitance; Cochlear implants; Deafness; Electric variables measurement; Electrical stimulation; Leakage current; Nerve fibers; Stochastic processes; Voltage; Auditory nerve (AN) fibers; cochlear implants; electrical stimulation; ion channel gating; neural prosthesis; relative spread (RS); sensory coding; stochastic ion channels; temporal jitter; Animals; Cats; Cochlear Implants; Cochlear Nerve; Computer Simulation; Electric Stimulation; Ion Channel Gating; Models, Neurological; Nerve Fibers; Signal Processing, Computer-Assisted; Spiral Ganglion; Stochastic Processes;
fLanguage :
English
Journal_Title :
Biomedical Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9294
Type :
jour
DOI :
10.1109/TBME.2009.2016667
Filename :
4801991
Link To Document :
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