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The automation of physical system modeling: Modeling strategies and AI implementation.

机译:物理系统建模的自动化:建模策略和AI实施。

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摘要

System modeling plays a key role in various engineering activities including system analysis, performance evaluation, control and design sensitivity studies. However, there are no tools available to assist engineers in creating dynamic models. The modeling, analysis and simulation programs that are commercially available have no or little modeling ability. Users of these programs are required to make almost all the model assumptions before preparing the program input.;Based on these proposed strategies, a prototype of a COMputer Modeling Assistant (COMMA) is implemented as a production system using LISP on a APPOLO workstation., and its capabilities is demonstrated by means of examples. It is concluded that the artful process of modeling has more structure than is conventionally assumed and that this process can be largely automated. The proposed strategies for automated modeling, as part of an automated modeling system, should facilitate novice and expert modelers to develop proper models (models with necessary yet sufficient complexity) more efficiently and increase the efficacy of using system models for design.;Modeling has always been considered a more artful than scientific activity. However, the author argues that the modeling process is more structured than is commonly believed. The objective of this thesis is to identify the basic structure of the general modeling process and to propose several strategies that could serve as the basis for an artificial intelligence (A.I.) based computer environment for automating the modeling process. The identified modeling structure and the proposed strategies for automated modeling include: (1) Decomposing, the process of transforming real systems into a collection of objects or components and assigning them "motion" attributes. This can be accomplished with a user-interactive dialog with the computer. (2) Mapping, the process of associating physical objects (components) with ideal phenomena (basic physics). This is a totally automated strategy based on associating energy phenomena with each identified motion of the components. (3) Structured Modeling, a systematic and thus totally automated process of lumping the energy phenomena, defining state variables and assembling the model based on motion constraints. (4) Modifying, a heuristic-based strategy, for altering the Decomposing and Structured Modeling processes to alter a model which failed to meet the modeling specifications. An example is presented to illustrate these strategies.
机译:系统建模在包括系统分析,性能评估,控制和设计敏感性研究在内的各种工程活动中起着关键作用。但是,没有可用的工具来帮助工程师创建动态模型。市售的建模,分析和仿真程序没有或只有很少的建模能力。这些程序的用户需要在准备程序输入之前做出几乎所有的模型假设。基于这些提议的策略,COMputer Modeling Assistant(COMMA)的原型被实现为在APPOLO工作站上使用LISP的生产系统,并通过示例演示其功能。结论是,巧妙的建模过程比常规假设具有更多的结构,并且该过程可以在很大程度上实现自动化。作为自动化建模系统的一部分,提出的自动化建模策略应有助于新手和专家建模者更有效地开发适当的模型(具有必要但足够复杂的模型),并提高使用系统模型进行设计的效率。被认为比科学活动更狡猾。但是,作者认为建模过程比通常认为的更为结构化。本文的目的是确定通用建模过程的基本结构,并提出几种策略,这些策略可以作为基于人工智能(A.I.)的计算机环境来自动化建模过程的基础。所确定的建模结构和所建议的自动建模策略包括:(1)分解,将实际系统转换为对象或组件的集合并为其分配“运动”属性的过程。这可以通过与计算机进行用户交互对话框来完成。 (2)映射,将物理对象(组件)与理想现象(基础物理学)相关联的过程。这是一种完全自动化的策略,其基于将能量现象与组件的每个已识别运动相关联。 (3)结构化建模,这是一种系统化的,因此完全自动化的过程,可以将能量现象集中在一起,定义状态变量并根据运动约束条件组装模型。 (4)修改,一种基于启发式的策略,用于更改分解和结构化建模过程,以更改不符合建模规范的模型。给出一个例子来说明这些策略。

著录项

  • 作者

    Tseng, Yih-Tun.;

  • 作者单位

    University of Michigan.;

  • 授予单位 University of Michigan.;
  • 学科 Engineering Mechanical.;Artificial Intelligence.;Computer Science.;Engineering General.
  • 学位 Ph.D.
  • 年度 1991
  • 页码 198 p.
  • 总页数 198
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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