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Simulation, application, and resilience of an organic neuromorphic architecture, made with organic bistable devices and organic field effect transistors.

机译:由有机双稳态器件和有机场效应晶体管制成的有机神经形态结构的仿真,应用和弹性。

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摘要

This thesis presents work done simulating a type of organic neuromorphic architecture, modeled after Artificial Neural Network, and termed Synthetic Neural Network, or SNN. The first major contribution of this thesis is development of a single-transistor-single-organic-bistable-device-per-input circuit that approximates behavior of an artificial neuron. The efficacy of this design is validated by comparing the behavior of a single synthetic neuron to that of an artificial neuron as well as two examples involving a network of synthetic neurons. The analysis utilizes electrical characteristics of polymer electronic elements, namely Organic Bistable Device and Organic Field Effect Transistor, created in the laboratory at University of Denver. Polymer electronics is a new branch of electronics that is based on conductive and semi-conductive polymers. These new elements hold a great advantage over the inorganic electronics in the form of physical flexibility and low cost of fabrication. However, their device variability between individual devices is also much greater. Therefore the second major contribution of this thesis is the analysis of resilience of neural networks subjected to physical damage and other manufacturing faults.
机译:本文提出了一种模拟有机神经形态结构的工作,该结构以人工神经网络为模型,并被称为合成神经网络(SNN)。本论文的第一个主要贡献是开发了一种单晶体管单有机双稳态设备每输入电路,该电路近似人工神经元的行为。通过比较单个合成神经元与人造神经元的行为以及涉及合成神经元网络的两个示例,可以验证该设计的有效性。该分析利用了在丹佛大学实验室中创建的聚合物电子元件的电学特性,即有机双稳态器件和有机场效应晶体管。聚合物电子学是电子学的一个新分支,它基于导电和半导电聚合物。这些新元素以物理柔韧性和低制造成本的形式比无机电子产品具有巨大优势。但是,它们在各个设备之间的设备差异也更大。因此,本文的第二个主要贡献是对遭受物理损坏和其他制造故障的神经网络的弹性进行分析。

著录项

  • 作者

    Nawrocki, Robert A.;

  • 作者单位

    University of Denver.;

  • 授予单位 University of Denver.;
  • 学科 Engineering Computer.;Artificial Intelligence.;Engineering Electronics and Electrical.
  • 学位 M.S.
  • 年度 2011
  • 页码 125 p.
  • 总页数 125
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:44:26

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