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Design and simulation of digital optical computing systems for artificial intelligence.

机译:人工智能数字光学计算系统的设计和仿真。

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Rule-based systems (RBSs) are one of the problem solving methodologies in artificial intelligence. Although RBSs have a vast potential in many application areas the slow execution speed of current RBSs has prohibited them from the full exploitation of their vast potential.;In this dissertation, to improve the speed of RBSs, we explore the use of optics for the fast and parallel RBS architectures. First, we propose an electro-optical rule-based system (EORBS). Using two-dimensional knowledge representation and a monotonic reasoning scheme, EORBS provides highly efficient implementation of the basic operations needed in rule-based systems, namely, matching, selection, and rule firing. The execution speed of the proposed system is theoretically estimated and is shown to be two orders of magnitude faster than the current electronic systems. Although EORBS shows the best performance in execution speed compared to other RBSs, the monotonic reasoning scheme restricts the application domains of EORBS.;In order to overcome this limitation on the application domain in EORBS, a general purpose RBS, called an Optical Content-Addressable Parallel Processor for Expert Systems (OCAPP-ES) is proposed. Using a general knowledge representation scheme and a parallel conflict resolution scheme, OCAPP-ES executes the three basic RBS operations on general knowledge (including variables, symbols, and numbers) in a highly parallel fashion. The performance of OCAPP-ES is theoretically estimated and is shown to be an order of magnitude slower than that of EORBS. However, the performance of OCAPP-ES is still an order of magnitude faster than any other RBS. Furthermore, OCAPP-ES is designed to support the general knowledge representation scheme so that it can be a high speed general purpose RBS.;To verify the proposed architectures, we developed a modeling and simulation methodology for digital optical computing systems. The methodology predicts maximum performance of a given optical computing architecture and evaluates its feasibility. As an application example, we apply this methodology to evaluate the feasibility and performance of OCAPP which is the optical match unit of OCAPP-ES. The proposed methodology is intended to reduce optical computing systems' design time as well as the design risk associated with building a prototype system.
机译:基于规则的系统(RBS)是人工智能中解决问题的方法之一。尽管RBS在许多应用领域中具有巨大的潜力,但是当前RBS的缓慢执行速度使它们无法充分利用其巨大的潜力。本文为了提高RBS的速度,我们探索了光学的快速应用。和并行RBS体系结构。首先,我们提出了一种基于电光规则的系统(EORBS)。 EORBS使用二维知识表示和单调推理方案,可以高效地实现基于规则的系统所需的基本操作,即匹配,选择和规则触发。理论上估计了所提出系统的执行速度,并且显示出比当前电子系统快两个数量级。尽管与其他RBS相比,EORBS在执行速度上表现出最佳的性能,但单调推理方案限制了EORBS的应用范围。为了克服EORBS在应用领域上的这种限制,通用RBS被称为“光学内容可寻址”提出了专家系统并行处理器(OCAPP-ES)。 OCAPP-ES使用常识表示方案和并行冲突解决方案,以高度并行的方式对常识(包括变量,符号和数字)执行三个基本RBS操作。从理论上估计OCAPP-ES的性能,并证明它比EORBS的性能慢一个数量级。但是,OCAPP-ES的性能仍然比任何其他RBS快一个数量级。此外,OCAPP-ES被设计为支持通用知识表示方案,从而使其成为一种高速通用RBS。为了验证所提出的体系结构,我们开发了一种用于数字光学计算系统的建模和仿真方法。该方法可以预测给定光学计算体系结构的最大性能,并评估其可行性。作为一个应用示例,我们将这种方法应用于评估OCAPP(它是OCAPP-ES的光学匹配单元)的可行性和性能。所提出的方法旨在减少光学计算系统的设计时间以及与构建原型系统相关的设计风险。

著录项

  • 作者

    Na, Jongwhoa.;

  • 作者单位

    The University of Arizona.;

  • 授予单位 The University of Arizona.;
  • 学科 Electrical engineering.;Artificial intelligence.;Computer science.
  • 学位 Ph.D.
  • 年度 1994
  • 页码 148 p.
  • 总页数 148
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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