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Is Question Answering an Acquired Skill?

机译:是问题回答了一个获得的技能吗?

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We present a question answering (QA) system which learns how to detect and rank answer passages by analyzing questions and their answers (QA pairs) provided as training data. We built our system in only a few person-months using on- the-shelf components: a part-of-speech tagger, a shallow parser, a lexical network, and a few well-known supervised learning algorithms. In contrast, many of the top TREC QA systems are large group efforts, using customized ontologies, question classifiers, and highly tuned ranking functions. Our ease of deployment arises from using generic, trainable algorithms that exploit simple feature extractors on QA pairs. With TREC QA data, our system achieves mean reciprocal rank (MRR) that compares favorably with the best scores in recent years, and generalizes from one corpus to another. Our key technique is to recover, from the question, fragments of what might have been posed as a structured query, had a suitable schema been available. One fragment comprises selectors: tokens that are likely to appear (almost) unchanged in an answer passage. The other fragment contains question tokens which give clues about the answer type, and are expected to be replaced in the answer passage by tokens which specialize or instantiate the desired answer type. Selectors are like constants in where-clauses in relational queries, and answer types are like column names. We present new algorithms for locating selectors and answer type clues and using them in scoring passages with respect to a question.
机译:我们提出了一个问题回答(QA)系统,它学习如何通过分析作为培训数据提供的问题及其答案(QA对)来检测和排列答案段落。我们在使用现成的组件中仅在几个月内构建了我们的系统:语音标记,一个浅地解析器,词汇网络和一些着名的监督学习算法。相比之下,许多顶级的TREC QA系统是大型群体工作,使用定制的本体,问题分类器和高度调整的排名功能。我们的易于部署源于使用通用,可训练算法,该算法在QA对上利用简单的功能提取器。通过TREC QA数据,我们的系统实现了平均互惠级别(MRR),近年来的最佳分数比较好,并从一个语料库到另一个语料库。我们的关键技术是从问题中恢复,从可能被归类为结构性查询的碎片,具有适当的架构。一个片段包括选择器:在答案通道中可能出现的令牌(几乎)不变。另一个片段包含问题令牌,其提供有关答案类型的线索,并且预计将在答案通道中替换为专门或实例化所需的答案类型。选择器就像在关系查询中的常量 - 条款中,回答类型就像列名称。我们提出了用于定位选择器和应答类型线索的新算法,并在关于问题的分段中使用它们。

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