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A distributed mobile agent conflation model utilizing an image change detection algorithm.

机译:利用图像变化检测算法的分布式移动代理合并模型。

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摘要

The Geographic Information System (GIS) is an integrated technology that incorporates concepts from computer graphics, spatial modeling, and database management. The distributed intelligent mobile agent technique, which successfully incorporated more powerful technology, is becoming an important issue in Geographical Information Systems. Within the distributed environment, the compatibilities and consistencies are mainly concerned issues. The “conflation” is an important and challenging technique to handle these issues.; Generally, conflation means to combine information from different sources and then to produce better information. Up to now, the conflation consideration has become much broader in GIS research fields. Many efforts have been made. However, conflation is still a challenging research field due to the complexity of real applications. Seen from the existing conflation paradigms, the conflation algorithms have been ad hoc, designed for specific purposes. The focus of the dissertation is placed mainly on processing the vector-based conflation problems.; Considered the vulnerability to deal with time in existing conflation algorithms, the endeavor of the dissertation is to explore the ways in which conflation capabilities can be augmented with the aid of change detection techniques. A general and flexible conflation model is proposed for the distributed mobile agent systems.; Based on the model, over time considerable effort is specially spent on the development of image change detection algorithm. Since image change detection, like many other applications in GIS, requires to handle fuzziness and uncertainty, an innovation is investigated—it is an intelligent approach in which the issue associated with fuzziness and uncertainty has been tackled by introducing a Certainty Factor. A hierarchical structure for the fuzzy inference is figured out. Theoretical analysis and real image evaluation show that it can provide significant results.
机译:地理信息系统(GIS)是一种集成技术,其中融合了计算机图形学,空间建模和数据库管理等概念。成功地结合了更强大的技术的分布式智能移动代理技术正在成为地理信息系统中的重要问题。在分布式环境中,兼容性和一致性是主要关注的问题。 “合并”是处理这些问题的重要且具有挑战性的技术。通常,合并意味着合并来自不同来源的信息,然后产生更好的信息。到目前为止,在GIS研究领域中,合并考虑已变得更加广泛。已经做了很多努力。但是,由于实际应用的复杂性,合并仍然是一个充满挑战的研究领域。从现有的合并范式来看,合并算法是专门为特定目的而设计的。本文的重点主要放在处理基于向量的合并问题上。考虑到现有合并算法中处理时间的脆弱性,本文的工作是探索借助变化检测技术来增强合并功能的方法。针对分布式移动代理系统,提出了一种通用而灵活的合并模型。基于该模型,随着时间的流逝,专门花费了大量精力来开发图像变化检测算法。由于像GIS中的许多其他应用程序一样,图像变化检测需要处理模糊性和不确定性,因此进行了一项创新研究,这是一种智能方法,其中通过引入确定性因子解决了与模糊性和不确定性相关的问题。提出了模糊推理的层次结构。理论分析和真实图像评估表明,它可以提供重要的结果。

著录项

  • 作者

    Yang, HuiQing Helen.;

  • 作者单位

    The University of Southern Mississippi.;

  • 授予单位 The University of Southern Mississippi.;
  • 学科 Computer Science.
  • 学位 Ph.D.
  • 年度 2002
  • 页码 p.4779
  • 总页数 102
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 自动化技术、计算机技术;
  • 关键词

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