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Fabrication And Application Of A Polymer Neuromorphic Circuitry Based On Polymer Memristive Devices And Polymer Transistors.

机译:基于聚合物忆阻器件和聚合物晶体管的聚合物神经形态电路的制作与应用。

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摘要

Neuromorphic engineering is a discipline that aims to address the shortcomings of today's serial computers, namely large power consumption, susceptibility to physical damage, as well as the need for explicit programming, by applying biologically-inspired principles to develop neural systems with applications such as machine learning and perception, autonomous robotics and generic artificial intelligence.;This doctoral dissertation presents work performed fabricating a previously developed type of polymer neuromorphic architecture, termed Polymer Neuromorphic Circuitry (PNC), inspired by the McCulloch-Pitts model of an artificial neuron. The major contribution of this dissertation is a development of processing techniques necessary to realize the Polymer Neuromorphic Circuitry, which required a development of individual polymer electronics elements, as well as customization of fabrication processes necessary for the realization of the circuitry on separate substrates as well as on a single substrate. This is the first demonstration of a fabrication of an entire neuron, and more importantly, a network of such neurons, that includes both the weighting functionality of a synapse and the somatic summing, all realized with polymer electronics technology.;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 conventional, inorganic electronics in the form of physical flexibility, low cost and ease of fabrication, manufacturing compatibility with many substrate materials, as well as greater biological compatibility. These advantages were the primary motivation for the choice to fabricate all of the electrical components required to realize the PNC, namely polymer transistors, polymer memristive devices, and polymer resistors, with polymer electronics components.;The efficacy of this design is validated by demonstrating that the activation function of a single neuron approximates the sigmoidal function commonly employed by artificial neural networks. The utility of the neuromorphic circuitry is further corroborated by illustrating that a network of such neurons, and even a single neuron, are capable of performing linear classification for a real-life problem.
机译:神经形态工程学是一门旨在通过应用生物学启发的原理开发诸如机器之类的神经系统的方法,以解决当今串行计算机的缺点,即大功率消耗,对物理损坏的敏感性以及明确编程的需求。学习和感知,自主机器人技术和通用人工智能。;该博士论文介绍了受人工神经元McCulloch-Pitts模型启发而完成的一种工作,该工作是制造先前开发的一种类型的聚合物神经形态电路,称为聚合物神经形态电路(PNC)。本论文的主要贡献是实现聚合物神经形态电路所必需的处理技术的发展,这需要开发单独的聚合物电子元件,以及实现在单独基板上实现电路所必需的制造工艺的定制。在单个基板上。这是制造整个神经元的第一个演示,更重要的是,这种神经元的网络包括了突触的加权功能和体细胞求和,所有这些都是通过高分子电子技术实现的。基于导电和半导电聚合物的电子产品分支。这些新元素在物理柔韧性,低成本和易于制造,与许多基材的制造相容性以及更大的生物相容性方面,具有优于常规无机电子产品的巨大优势。这些优势是选择制造具有PNC的所有电子元件的主要动机,这些电子元件即为聚合物晶体管,聚合物忆阻器件和聚合物电阻器以及聚合物电子元件。该设计的有效性通过证明单个神经元的激活函数近似于人工神经网络通常采用的S形函数。通过说明此类神经元甚至单个神经元的网络都能够对现实生活中的问题进行线性分类,进一步证实了神经形态电路的实用性。

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.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 248 p.
  • 总页数 248
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:53:40

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