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Mining fuzzy association rules on large numerical data: A data mining system for NAWN.

机译:在大型数值数据上挖掘模糊关联规则:NAWN的数据挖掘系统。

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摘要

Mining numerical data has been and still is a burgeoning research area in computer science. This thesis introduces the problem of mining numerical data from very large databases, such as the data obtained from the Niagara Agricultural Weather Network (NAWN), using fuzzy logic and the data mining technique called association rule mining. The numerical data attributes are processed by converting them into categorical data or fuzzy sets using fuzzy logic. The converted numerical data can then be effectively mined using association rule mining algorithms. The first algorithm introduced is referred to as Fuzzy Apriori 1 (FA1), and is a simple implementation that allows each numeric datum to be represented by multiple fuzzy sets. This algorithm was found to take a lot of execution time. An improvement was made, resulting in a new algorithm referred to as Fuzzy Apriori 2 (FA2), which reduced the execution time by almost 60% but generated a lot of similar rules, compared to the rules generated by the FA1 algorithm. (Abstract shortened by UMI.)
机译:挖掘数值数据一直是并且仍然是计算机科学领域一个新兴的研究领域。本文介绍了使用模糊逻辑和称为关联规则挖掘的数据挖掘技术从超大型数据库(如从尼亚加拉农业气象网络(NAWN)获得的数据)中挖掘数值数据的问题。通过使用模糊逻辑将数值数据属性转换为分类数据或模糊集,可以对其进行处理。然后可以使用关联规则挖掘算法有效地挖掘转换后的数值数据。引入的第一个算法称为“模糊先验1”(FA1),它是一种简单的实现,允许每个数字数据由多个模糊集表示。发现此算法需要大量执行时间。进行了改进,产生了一种称为模糊先验2(FA2)的新算法,与FA1算法生成的规则相比,该算法将执行时间减少了近60%,但生成了许多相似的规则。 (摘要由UMI缩短。)

著录项

  • 作者

    Komo, Zimpi.;

  • 作者单位

    The University of Manitoba (Canada).;

  • 授予单位 The University of Manitoba (Canada).;
  • 学科 Computer Science.
  • 学位 M.Sc.
  • 年度 2003
  • 页码 106 p.
  • 总页数 106
  • 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

  • 入库时间 2022-08-17 11:45:04

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