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Knowledge Graph-Based Query Rewriting in a Relational Data Harmonization Framework

机译:基于知识图形的Query重写在关系数据协调框架中

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There are diverse data providers, storage formats and data schemas in many modern application domains from sales and marketing to health care. This leads to a high demand for a harmonized data management platform that hides the heterogeneity of the system from the end user. Using an abstraction layer that provides a single logical view of all data located in disparate data sources, makes the implementation of a harmonized data management platform effortless. This abstraction layer is called Data Virtualization and it can query the data sources via a single query which is usually in the common SQL format. However, the user needs to know where the desired data is located before submitting the SQL query to the virtualization middleware. In this paper, we present how to capture inter-database associations of relational data stores as a Resource Description Framework (RDF) graph for the purpose of automation in Data Virtualization. Furthermore, we propose an approach to enrich a nai?ve input SPARQL which can query the RDF graph and translate it to a SQL query that will be fed into the virtualization layer. Combining these two approaches results in the transparency of the data harmonization framework.
机译:许多现代应用领域中有多样化的数据提供商,存储格式和数据模式,从销售和营销到医疗保健。这导致对统一数据管理平台的高度需求,这些平台从最终用户隐藏系统的异质性。使用抽象层提供位于不同数据源中的所有数据的单个逻辑视图,使得实现统一的数据管理平台。此抽象层称为数据虚拟化,它可以通过单个查询查询数据源,该查询通常以常见的SQL格式。但是,在将SQL查询提交到虚拟化中间件之前,用户需要知道所需数据的位置。在本文中,我们介绍了如何捕获关系数据存储的间间关联作为资源描述框架(RDF)图表,以便在数据虚拟化中自动化。此外,我们提出了一种丰富的方法来丰富NAI ve输入sparql,它可以查询RDF图并将其转换为将被馈送到虚拟化层的SQL查询。结合这两种方法导致数据协调框架的透明度。

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