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Operational challenges of retinal prostheses

机译:视网膜假体的操作挑战

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摘要

Two computational models for research on retinal implants are presented. In the first model, the electric field produced by a multi-electrode array in a uniform retina is calculated. It is shown how cross' talk of activated electrodes and the resulting bunching of field lines in monopole and dipole activation prevent high resolution imaging with retinal implants. Furthermore, it is demonstrated how sequential stimulation and multipolar stimulation may overcome this limitation. In the second model a target volume, i.e., a probe cylinder approximating a bipolar cell, in the retina is chosen, and the passive Heaviside cable equation is solved inside this target volume to calculate the depolarization of the cell membrane. The depolarization as a function of time indicates that shorter signals stimulate better as long as the current does not change sign during stimulation of the retina, i.e., mono-phasic stimulation. Both computational models are equally applicable to epiretinal, subretinal, and suprachoroidal vision implants. (C) 2014 IPEM. Published by Elsevier Ltd. All rights reserved.
机译:提出了两种用于视网膜植入物研究的计算模型。在第一模型中,计算出由均匀视网膜中的多电极阵列产生的电场。它显示了激活电极的串扰以及单极和偶极激活中产生的场线束如何阻止视网膜植入物的高分辨率成像。此外,证明了顺序刺激和多极刺激可以如何克服该限制。在第二个模型中,选择了视网膜中的目标体积,即近似双极细胞的探针圆柱,并在该目标体积内求解了无源Heaviside电缆方程,以计算细胞膜的去极化。作为时间的函数的去极化表明,只要电流在视网膜的刺激即单相刺激期间不改变信号,则较短的信号刺激得更好。两种计算模型均适用于视网膜上,视网膜下和脉络膜上视觉植入物。 (C)2014年IPEM。由Elsevier Ltd.出版。保留所有权利。

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