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The BQ Corpus: A Large-scale Domain-specific Chinese Corpus For Sentence Semantic Equivalence Identification

机译:BQ语料库:用于句子语义对等的大型领域专用中文语料库

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This paper introduces the Bank Question (BQ) corpus, a Chinese corpus for sentence semantic equivalence identification (SSEI). The BQ corpus contains 120,000 question pairs from 1-year online bank custom service logs. To efficiently process and annotate questions from such a large scale of logs, this paper proposes a clustering based annotation method to achieve questions with the same intent. First. the de-duplicated questions with the same answer are clustered into stacks by the Word Mover's Distance (WMD) based Affinity Propagation (AP) algorithm. Then, the annotators are asked to assign the clustered questions into different intent categories. Finally, the positive and negative question pairs for SSEI are selected in the same intent category and between different intent categories respectively. We also present six SSEI benchmark performance on our corpus, including state-of-the-art algorithms. As the largest manually annotated public Chinese SSEI corpus in the bank domain, the BQ corpus is not only useful for Chinese question semantic matching research, but also a significant resource for cross-lingual and cross-domain SSEI research. The corpus is available in public.
机译:本文介绍了银行问题(BQ)语料库,一个句子语义等效识别(SSEI)的中文语料库。 BQ语料库中包含1年的在线银行自定义服务日志的120,000个问题对。本文提出了从如此大规模的日志中进行了批准的问题,提出了一种基于聚类的注释方法,以实现具有相同意图的问题。第一的。具有相同答案的脱模问题通过Word Mover的距离(WMD)的关联传播(AP)算法集中成堆栈。然后,要求注释器将群集问题分配成不同的意图类别。最后,SSEI的正面和负问题对分别选择了同一意图类别和不同意图之间的类别。我们还在我们的语料库上为六个SSEI基准性能提供,包括最先进的算法。作为银行领域中最大的手动注释的公共中国SSEI语料库,BQ语料库不仅适用于中国问题语义匹配研究,而且还有一个用于交叉和跨域SSEI研究的重要资源。语料库在公共场合。

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