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Knowledge Extraction and Applications utilizing Context Data in Knowledge Graphs

机译:利用知识图中的上下文数据进行知识提取和应用

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Context is widely considered for NLP and knowledge discovery since it highly influences the exact meaning of natural language. The scientific challenge is not only to extract such context data, but also to store this data for further NLP approaches. Here, we propose a multiple step knowledge graphbased approach to utilize context data for NLP and knowledge expression and extraction. We introduce the graph-theoretic foundation for a general context concept within semantic networks and show a proof-of-concept-based on biomedical literature and text mining. We discuss the impact of this novel approach on text analysis, various forms of text recognition and knowledge extraction and retrieval.
机译:背景知识被广泛地用于自然语言处理和知识发现,因为它极大地影响了自然语言的确切含义。科学上的挑战不仅是提取此类上下文数据,而且还要存储此数据以用于进一步的NLP方法。在这里,我们提出了一种基于知识图的多步方法,可将上下文数据用于NLP以及知识表达和提取。我们介绍了语义网络中一般上下文概念的图论基础,并展示了基于生物医学文献和文本挖掘的概念证明。我们讨论了这种新颖方法对文本分析,各种形式的文本识别以及知识提取和检索的影响。

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