A machine learning approach to rapid development of XML mapping queries

Atsuyuki Morishima, H. Kitagawa, Akira Matsumoto
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引用次数: 17

Abstract

We present XLearner, a novel tool that helps the rapid development of XML mapping queries written in XQuery. XLearner is novel in that it learns XQuery queries consistent with given examples (fragments) of intended query results. XLearner combines known learning techniques, incorporates mechanisms to cope with issues specific to the XQuery learning context, and provides a systematic way for the semiautomatic development of queries. We describe the XLearner system. It presents algorithms for learning various classes of XQuery, shows that a minor extension gives the system a practical expressive power, and reports experimental results to demonstrate how XLearner outputs reasonably complicated queries with only a small number of interactions with the user.
一种快速开发XML映射查询的机器学习方法
我们介绍XLearner,这是一种帮助快速开发用XQuery编写的XML映射查询的新工具。XLearner的新颖之处在于,它学习与预期查询结果的给定示例(片段)一致的XQuery查询。XLearner结合了已知的学习技术,结合了一些机制来处理特定于XQuery学习上下文的问题,并为查询的半自动开发提供了一种系统的方法。我们来描述一下XLearner系统。本文介绍了用于学习各种XQuery类的算法,展示了一个小扩展为系统提供了实用的表达能力,并报告了实验结果,以演示XLearner如何仅与用户进行少量交互就输出相当复杂的查询。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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