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A non-factoid question answering system for prior art search

机译:用于现有技术搜索的非因子问题应答系统

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摘要

A patent gives the owner of an invention the exclusive rights to make, use and sell their invention. Before a new patent application is filed, patent lawyers are required to engage in Prior Art Search to determine the likelihood that an invention is novel, valid or to make sense of the domain. To perform this search, existing platforms utilize keywords and Boolean Logic, which disregards the syntax and semantics of natural language and thus, making the search extremely difficult. Consequently, studies regarding semantics using neural embeddings exist, but these only consider a narrow number of unidirectional words. In this study, we propose an end-to-end framework to consider bidirectional semantics, syntax and the thematic nature of natural language for prior art search. The proposed framework goes beyond keywords as input queries and takes a patent as the input. The contributions of this paper is twofold; adapting pre-trained embedding models (e.g., BERT) to address the semantics and syntax of language, followed by the second component, which exploits topic modeling to build a diversified answer that covers all themes across domains of the input patent. We evaluate the performance of the proposed framework on the CLEF-IP 2011 benchmark dataset and a real-world dataset obtained from Google patent repository and show that the proposed framework outperforms existing methods and returns meaningful results for a given patent.
机译:一项专利给出了一个发明的独家代理权,以制造,使用和销售其发明的所有者。一个新的专利申请已提交之前,专利律师需要现有技术检索搞来确定的发明是新颖的,有效的,或使该域感的可能性。要执行此搜索,现有的平台使用关键字和布尔逻辑,无视语法和自然语言,因此语义,使搜索变得极其困难。利用神经的嵌入因此,研究关于语义存在,但这些只考虑单向话狭窄号码。在这项研究中,我们提出了一个终端到终端的框架来考虑双向语义,语法和自然语言的现有技术检索的主题性。拟议的框架超越的关键字输入查询,并采取了专利作为输入。本文的贡献是双重的;调整预先训练嵌入模型(例如,BERT)解决语义和语言的语法,其次是第二部分,它利用主题建模建立一个多元化的答案是覆盖在整个输入专利的域的所有主题。我们评估的CLEF-IP 2011基准数据集所提出的框架,并从谷歌专利库,并显示获得真实世界的数据集的性能,现有的对于给定的专利方法,并返回有意义的结果所提出的框架性能优于。

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