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Data-driven type checking in open domain question answering

机译:开放域问答中的数据驱动类型检查

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摘要

Many open domain question answering systems answer questions by first harvesting a large number of candidate answers, and then picking the most promising one from the list. One criterion for this answer selection is type checking: deciding whether the candidate answer is of the semantic type expected by the question. We define a general strategy for building redundancy-based type checkers, built around the notions of comparison set and scoring method, where the former provide a set of potential answer types and the latter are meant to capture the relation between a candidate answer and an answer type. Our focus is on scoring methods. We discuss nine such methods, provide a detailed experimental comparison and analysis of these methods, and find that the best performing scoring method performs at the same level as knowledge-intensive methods, although our experiments do not reveal a clear-cut answer on the question whether any of the scoring methods we consider should be preferred over the others.
机译:许多开放域问答系统通过首先收集大量候选答案,然后从列表中选择最有希望的答案来回答问题。选择答案的一个标准是类型检查:确定候选答案是否属于问题所期望的语义类型。我们围绕比较集和评分方法的概念定义了一种构建基于冗余的类型检查器的通用策略,其中前者提供了一组潜在的答案类型,而后者旨在捕获候选答案和答案之间的关系。类型。我们的重点是评分方法。我们讨论了9种这样的方法,提供了对这些方法的详细实验比较和分析,并且发现效果最好的评分方法的性能与知识密集型方法的水平相同,尽管我们的实验并未给出明确的答案我们是否应该优先考虑我们考虑的任何一种评分方法。

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