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Indexing relational database content offline for efficient keyword-based search

机译:离线索引关系数据库内容,以进行基于关键字的有效搜索

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Information retrieval systems such as Web search engines offer convenient keyword-based search interfaces. In contrast, relational database systems require the user to learn SQL and to know the schema of the underlying data even to pose simple searches. We propose an architecture that supports highly efficient keyword-based search over relational databases: A relational database is "crawled" in advance, text-indexing virtual documents that correspond to interconnected database content. At query time, the text index supports keyword-based searches with interactive response, identifying database objects corresponding to the virtual documents matching the query. Our system, EKSO, creates virtual documents from joining relational tuples and uses the DB2 Net Search Extender for indexing and keyword-search processing. Experimental results show that index size is manageable and database updates (which are propagated incrementally as recomputed virtual documents to the text index) do not significantly hinder query performance. We also present a user study confirming the superiority of keyword-based search over SQL for a range of database retrieval tasks.
机译:诸如Web搜索引擎之类的信息检索系统提供了方便的基于关键字的搜索界面。相反,关系数据库系统甚至要求简单的搜索,都要求用户学习SQL并了解底层数据的架构。我们提出一种支持在关系数据库上进行基于关键字的高效搜索的体系结构:预先“爬网”关系数据库,对与互连的数据库内容相对应的虚拟文档进行文本索引。在查询时,文本索引支持具有交互式响应的基于关键字的搜索,可识别与匹配查询的虚拟文档相对应的数据库对象。我们的系统EKSO通过连接关系元组创建虚拟文档,并使用DB2 Net Search Extender进行索引和关键字搜索处理。实验结果表明,索引大小是可管理的,数据库更新(作为重新计算的虚拟文档以增量方式传播到文本索引)不会显着影响查询性能。我们还提供了一项用户研究,该研究证实了针对一系列数据库检索任务的基于关键字的搜索优于SQL。

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