模糊语法的演化以辅助实例匹配

T. Martin, B. Azvine
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引用次数: 5

摘要

信息融合的需求存在于半结构化和非结构化领域中——例如,将来自多个源的响应集成到一个统一的响应中。这可以看作是一个两阶段的过程——首先确定是否有任何两个来源考虑相同的现实世界实体,其次确定属性如何对应(例如,作者/作曲家应该几乎完全对应于创作者,业务位置应该对应于地址,等等)。在非结构化和半结构化的属性值中,经常有隐藏的结构——例如,一个标签为name的自由文本属性可能由标题、名字和姓氏组成。揭示这种结构可以极大地帮助匹配过程。在本文中,我们概述了一种来自不同数据源的实体的近似匹配方法,并展示了一种进化方法如何创建准确的近似语法来帮助信息集成
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Evolution of Fuzzy Grammars to aid Instance Matching
The need for information fusion exists in the semi-structured and unstructured domains - for example, to integrate responses from multiple sources into a unified response. This can be regarded as a two stage process - first to determine whether any two sources are considering the same real-world entities, and second, to ascertain how the attributes correspond (e.g. author/composer should correspond almost exactly to creator, business-location should correspond to address, etc). Within the unstructured and semi-structured attribute values there is frequently hidden structure -e.g. a free text attribute labeled as name might consist of title, first name and family name. Revealing this structure can greatly assist the matching process. In this paper, we outline a method for approximate matching of entities from different data sources and show how an evolutionary approach can create accurate approximate grammars to aid the information integration
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