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Relational model of temporal data based on 6th normal form

机译:基于第六范式的时态数据关系模型

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This paper brings together two different research areas, i.e. Temporal Data and Relational Modelling. Temporal data is data that represents a state in time while temporal database is a database with built-in support for handling data involving time. Most of temporal systems provide sufficient temporal features, but the relational models are improperly normalized, and modelling approaches are missing or unconvincing. This proposal offers advantages for a temporal database modelling, primarily used in analytics and reporting, where typical queries involve a small subset of attributes and a big amount of records. The paper defines a distinctive logical model, which supports temporal data and consistency, based on vertical decomposition and sixth normal form (6NF). The use of 6NF allows attribute values to change independently of each other, thus preventing redundancy and anomalies. Our proposal is evaluated against other temporal models and super-fast querying is demonstrated, achieved by database join elimination. The paper is intended to help database professionals in practice of temporal modelling.
机译:本文汇集了两个不同的研究领域,即时间数据和关系模型。时态数据是表示时间状态的数据,而时态数据库是内置支持处理涉及时间的数据的数据库。大多数时态系统提供了足够的时态特征,但是关系模型未正确归一化,并且缺少建模方法或令人信服。该提议为主要用于分析和报告的时态数据库建模提供了优势,其中典型查询涉及属性的小子集和大量的记录。本文定义了一个独特的逻辑模型,该模型基于垂直分解和第六范式(6NF)支持时态数据和一致性。 6NF的使用允许属性值彼此独立地更改,从而防止了冗余和异常。我们的建议针对其他时间模型进行了评估,并通过消除数据库联接实现了超快速查询。本文旨在帮助数据库专业人员进行时间建模。

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