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Rule-based system architecting of Earth observation satellite systems

机译:基于规则的地球观测卫星系统系统架构

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摘要

System architecting is concerned with exploring the tradespace of early, high-level, system design decisions with a holistic, value-centric view. In the last few years, several tools and methods have been developed to support the system architecting process, focusing on the representation of an architecture as a set of interrelated decisions. These tools are best suited for applications that focus on breadth - i.e., enumerating a large and representative part of the architectural tradespace -as opposed to depth - modeling fidelity. However, some problems in system architecting require good modeling depth in order to provide useful results. In some cases, a very large body of expert knowledge is required. Current tools are not designed to handle such large bodies of knowledge because they lack scalability and traceability. As the size of the knowledge base increases, it becomes harder: a) to modify existing knowledge or add new knowledge; b) to trace the results of the tool to the model assumptions or knowledge base. This thesis proposes a holistic framework for architecture tradespace exploration of large complex systems that require a large body of expert knowledge. It physically separates the different bodies of knowledge required to solve a system architecting problem (i.e., knowledge about the domain, knowledge about the class of optimization or search problem, knowledge about the particular instance of problem) by using a rule-based expert system. It provides a generic population-based heuristic algorithm for search, which can be augmented with rules that encode knowledge about the domain, or about the optimization problem or class of problems. It identifies five major classes of system architecting problems from the perspective of optimization and search, and provides rules to enumerate architectures and search through the architectural tradespace of each class. A methodology is also defined to assess the value of an architecture using a rule-based approach. This methodology is based on a decomposition of stakeholder needs into requirements and a systematic comparison between system requirements and system capabilities using the rules engine. The framework is applied to the domain of Earth observing satellite systems (EOSS). Three EOSS are studied in depth: the NASA Earth Observing System, the NRC Earth Science Decadal Survey, and the Iridium GEOscan program. The ability of the framework to produce useful results is shown, and specific insights and recommendations are drawn.
机译:系统架构师着眼于以整体,以价值为中心的观点来探索早期,高层,系统设计决策的交易空间。在过去的几年中,已经开发了几种工具和方法来支持系统架构过程,重点是将体系结构表示为一组相互关联的决策。这些工具最适合专注于广度的应用程序-即枚举建筑贸易空间中较大且具有代表性的部分-与深度相反-建模逼真度。但是,系统架构中的某些问题需要良好的建模深度才能提供有用的结果。在某些情况下,需要大量的专业知识。当前的工具不能用于处理如此大量的知识,因为它们缺乏可伸缩性和可追溯性。随着知识库规模的增加,变得越来越困难:a)修改现有知识或添加新知识; b)将工具的结果追溯到模型假设或知识库。本文为需要大量专家知识的大型复杂系统的建筑贸易空间探索提出了一个整体框架。它通过使用基于规则的专家系统,从物理上分离了解决系统架构问题所需的不同知识体系(即,有关领域的知识,有关优化或搜索问题的类别的知识,有关特定问题实例的知识)。它提供了一种基于总体的基于启发式的搜索算法,可以使用对有关领域或优化问题或问题类别的知识进行编码的规则进行扩充。它从优化和搜索的角度确定了系统架构问题的五个主要类别,并提供了枚举体系结构并在每个类别的体系结构交易空间中进行搜索的规则。还定义了一种方法,以使用基于规则的方法来评估体系结构的价值。该方法基于利益相关者需求分解为需求,以及使用规则引擎对系统需求和系统功能之间的系统比较。该框架适用于地球观测卫星系统(EOSS)的领域。深入研究了三个EOSS:NASA地球观测系统,NRC地球科学年代调查和Iridium GEOscan计划。显示了该框架产生有用结果的能力,并提出了具体的见解和建议。

著录项

  • 作者

    Selva Valero Daniel;

  • 作者单位
  • 年度 2012
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类

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