首页> 外文会议>The Tenth International World Wide Web Conference, May 1-5, 2001, Hong Kong >Learning Search Engine Specific Query Transformations for Question Answering
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Learning Search Engine Specific Query Transformations for Question Answering

机译:学习搜索引擎特定的查询转换以回答问题

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摘要

We introduce a method for learning query transformations that improves the ability to retrieve answers to questions from an information retrieval system. During the training stage the method involves automatically learning phrase features for classifying questions into different types, automatically generating candidate query transformations from a training set of question/answer pairs, and automatically evaluating the candidate transforms on target information retrieval systems such as real-world general purpose search engines. At run time, questions are transformed into a set of queries, and re-ranking is performed on the documents retrieved. We present a prototype search engine, Tritus, that applies the method to web search engines. Blind evaluation on a set of real queries from a web search engine log shows that the method significantly outperforms the underlying web search engines as well as a commercial search engine specializing in question answering.
机译:我们介绍了一种学习查询转换的方法,该方法提高了从信息检索系统检索问题答案的能力。在训练阶段,该方法包括自动学习短语特征以将问题分类为不同类型,从一组问题/答案对的训练集合中自动生成候选查询转换,以及在目标信息检索系统(例如现实世界中)上自动评估候选转换目的搜索引擎。在运行时,问题将转换为一组查询,并对检索到的文档进行重新排序。我们提供了一个原型搜索引擎Tritus,它将该方法应用于Web搜索引擎。对来自Web搜索引擎日志的一组实际查询的盲目评估表明,该方法明显优于基础Web搜索引擎以及专门研究问题解答的商业搜索引擎。

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