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Section 1: Examining the Role of Statistical and Linguistic Knowledge Sources in a General-Knowledge Question-Answering System

机译:第1节:审查统计和语言知识来源在一般知识问答系统中的作用

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We describe and evaluate an implemented system for general-knowledge question answering. The system combines techniques for standard ad-hoc information retrieval (IR), query-dependent text summarization, and shallow syntactic and semantic sentence analysis. In a series of experiments we examine the role of each statistical and linguistic knowledge source in the question-answering system. In contrast to previous results, we find first that statistical knowledge of word co-occurrences as computed by IR vector space methods can be used to quickly and accurately locate the relevant documents for each question. The use of query-dependent text summarization techniques, however, provides only small increases in performance and severely limits recall levels when inaccurate. Nevertheless, it is the text summarization component that allows subsequent linguistic filters to focus on relevant passages. We find that even very weak linguistic knowledge can offer substantial improvements over purely IR-based techniques for question answering, especially when smoothly integrated with statistical preferences computed by the IR subsystems.
机译:我们描述并评估了一个实施的一般知识问题的系统。该系统将标准ad-hoc信息检索(IR),查询相关文本摘要和浅句法和语义句子分析的技术组合了。在一系列实验中,我们研究了在问答系统中每个统计和语言知识来源的作用。与以前的结果相比,我们首先发现由IR矢量空间方法计算的单词共同发生的统计知识可以用于快速,准确地定位每个问题的相关文档。然而,使用查询依赖文本摘要技术仅提供性能的小幅增加,并且在不准确时严重限制召回级别。尽管如此,它是文本摘要组件,允许后续语言过滤器专注于相关段落。我们发现,即使是非常弱的语言知识也可以通过基于IR的纯粹的问题的技术提供大量改进,特别是当与IR子系统计算的统计偏好平滑地集成。

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