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Simulation based computation model for epiretinal prosthesis

机译:基于仿真的视网膜上假体计算模型

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The degenerative retina diseases such as Age Related Macular Degeneration (AMD) and Retinitis Pigmentosa (RP) are recently encountered because of visual loss. There is not any known cure for these diseases, but studies are in progress on restoration of visual perception. In studies carried out recently by virtue of innovations in the field of microtechnology, bioengineering, packaging, it is aimed to develop visual prosthesis systems for purposes of activation of visual perception. In this study, various factors affecting efficiency of the visual prosthesis systems are reviewed, and then electric field distribution on tissue is simulated under quasi-static limits by using the finite element analysis. In this context, a layered retina tissue, stimulation and return electrodes which are in contact with the retina tissue are modeled. It is seen that deeper nerve cell communities are stimulated as the potential difference applied between the electrodes increases. Given that the nerve cells need to be stimulated individually for a visual prosthesis system with high resolution, it is concluded that the stimulation electrodes in contact with the tissue need to be penetrated into the tissue.
机译:由于视力丧失,近来发生了诸如年龄相关性黄斑变性(AMD)和色素性视网膜炎(RP)之类的变性视网膜疾病。目前尚无治疗这些疾病的已知方法,但有关恢复视觉的研究正在进行中。在最近借助微技术,生物工程,包装领域的创新而进行的研究中,旨在开发视觉假体系统以激活视觉感知。在这项研究中,回顾了影响视觉假体系统效率的各种因素,然后使用有限元分析在准静态极限下模拟组织上的电场分布。在本文中,对分层的视网膜组织,与视网膜组织接触的刺激和返回电极进行了建模。可以看出,随着电极之间施加的电势差的增加,将刺激更深的神经细胞群落。鉴于对于具有高分辨率的视觉假体系统,需要单独地刺激神经细胞,因此得出结论,与组织接触的刺激电极需要穿透到组织中。

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