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Multidimensional normal forms for data warehouse design

机译:数据仓库设计的多维范式

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A data warehouse is an integrated and time-varying collection of data derived from operational data and primarily used in strategic decision making by means of OLAP techniques. Although it is generally agreed that warehouse design is a non-trivial problem and that multidimensional data models as well as star or snowflake schemata are relevant in this context, there exist neither methods for deriving such a schema from an operational database nor measures for evaluating a warehouse schema. In this paper, a sequence of multidimensional normal forms is established that allow reasoning about the quality of conceptual data warehouse schemata in a rigorous manner. These normal forms address traditional database design objectives such as faithfulness, completeness, and freedom of redundancies as well as the notion of summarizability, which is specific to multidimensional database schemata.
机译:数据仓库是从运营数据中获得的集成且随时间变化的数据集合,主要用于通过OLAP技术进行战略决策。尽管人们普遍认为仓库设计不是一个简单的问题,并且多维数据模型以及星型或雪花模式在这种情况下都是相关的,但是,既没有从运营数据库中推导出这种模式的方法,也没有用于评估产品质量的措施。仓库模式。在本文中,建立了一系列多维标准形式,这些形式允许以严格的方式对概念数据仓库模式的质量进行推理。这些标准形式解决了传统的数据库设计目标,例如忠诚度,完整性和裁员自由以及可汇总性的概念,该概念特定于多维数据库模式。

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