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A planning system based on plan re-use and its application to geographical information systems and remote sensing.

机译:基于计划重用的计划系统及其在地理信息系统和遥感中的应用。

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摘要

This dissertation integrates the use of both transformational and derivational analogy into a general problem solving system. As the system faces new problems, cases are retrieved, adapted and subsequently generalized in order to enhance its performance. Empirical results show that the system can successfully address problems in simple domains and scales up smoothly to create solutions to problems in more complex domains including the management and processing of remote sensing and geographic information systems data for natural resource applications.; Most case-based reasoning systems rely on sophisticated indexing schemes and adaptation rules to find solutions to new problems. As a result, they expend considerable effort in retrieving and adapting cases to new problems. The approach presented in this dissertation introduces the use of generalization to case-based reasoning. Once a case has been retrieved and adapted to a new problem, the system will generalize the old case with the new case by using an algorithm similar to least general generalization. As the system gains experience, the case-base is generalized and, as is shown by the experimental results, the number of cases required to solve problems is significantly reduced.; To show that the approach scales up to real world problems, the system, dubbed PALERMO (Planning and LEarning for Resource Management and Organization), has been implemented and integrated into the SEIDAM environment. SEIDAM (System of Experts for Intelligent DAta Management) is a complex system that uses several AI approaches to manage large quantities of remote sensing and geographic data. It draws on expert system technology, software agents and case-based reasoning to gather and process remote sensing and digital geographic data. One of the goals of SEIDAM is to use remote sensing data to update digital forest cover maps to assist in land use decision making.
机译:本文将转换类比和衍生类比的使用整合到一个通用的问题解决系统中。当系统面临新问题时,将对案例进行检索,调整和推广,以增强其性能。实证结果表明,该系统可以成功解决简单领域中的问题,并可以平滑扩展以创建解决方案,以解决更复杂领域中的问题,包括为自然资源应用管理和处理遥感和地理信息系统数据。大多数基于案例的推理系统都依靠复杂的索引方案和适应规则来找到新问题的解决方案。结果,他们花费大量的精力来检索和适应新问题。本文提出的方法介绍了泛化在基于案例的推理中的应用。一旦检索到案例并将其适应新问题,系统将通过使用类似于最小泛化的算法将旧案例与新案例进行泛化。随着系统的经验积累,案例库得到了概括,并且如实验结果所示,解决问题所需的案例数也大大减少了。为了表明该方法可以扩展到实际问题,已实施了名为PALERMO(资源管理和组织的计划和学习)的系统,并将其集成到SEIDAM环境中。 SEIDAM(智能DAta管理专家系统)是一个复杂的系统,它使用几种AI方法来管理大量的遥感和地理数据。它利用专家系统技术,软件代理和基于案例的推理来收集和处理遥感和数字地理数据。 SEIDAM的目标之一是使用遥感数据来更新数字森林覆盖图,以帮助决策土地。

著录项

  • 作者

    Charlebois, Daniel.;

  • 作者单位

    University of Ottawa (Canada).;

  • 授予单位 University of Ottawa (Canada).;
  • 学科 Remote Sensing.; Computer Science.
  • 学位 Ph.D.
  • 年度 1997
  • 页码 175 p.
  • 总页数 175
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 遥感技术;自动化技术、计算机技术;
  • 关键词

  • 入库时间 2022-08-17 11:49:05

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