元表结构中模糊概念集成的数据仓库模型

Daniel Fasel, K. Shahzad
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引用次数: 24

摘要

在经典数据仓库(DWH)中,值的分类以一种尖锐的方式进行,因为无法测量真实值,而且不会发生类之间的平滑转换。本文提出了一种模糊数据仓库(FDWH)建模方法,该方法可以在不影响模糊数据仓库核心的情况下集成模糊概念。这是通过添加元表结构来实现的,该结构可以集成维度和事实上的模糊概念,同时保持DWH的时不变性,并允许对清晰和模糊的数据进行分析。对DWH中模糊概念集成的现有方法进行了比较。本文还概述了模糊元表建模的指导方针和FDWH的元模型。通过一个零售公司的例子说明了所提出的方法的使用。最后,对模糊数据仓库方法和经典数据仓库方法进行了比较。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Data Warehouse Model for Integrating Fuzzy Concepts in Meta Table Structures
In classical data warehouses (DWH), classification of values takes place in a sharp manner, because of this true values cannot be measured and smooth transition between classes does not occur. In this paper, a fuzzy data ware- house (FDWH) modeling approach, which allows integration of fuzzy concepts without affecting the core of a DWH is presented. This is accomplished through the addition of a meta-table structure, which enables integration of fuzzy concepts on dimensions and facts, while preserving the time-invariability of the DWH and allowing analysis of data both sharp and fuzzy. A comparison to existing approaches for integrating fuzzy concepts in DWH is presented. Guide- lines for modeling the fuzzy meta-tables and a meta-model for the FDWH are also outlined in this paper. The use of the proposed approach is demonstrated by a retail company example. Finally, a comparison of fuzzy and classical data warehousing approaches is presented.
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