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A multi-level text representation model within background knowledge based on human cognitive process

机译:基于人体认知过程的背景知识中的多级文本表示模型

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Text representation is one of the most fundamental works in text comprehension, processing, and search. Various works have been proposed to mine the semantics in texts and then to represent them. However, most of them only focus on how to mine semantics from the text itself while the background knowledge, which is very important to text understanding, is not taken into consideration. In this paper, on the basis of human cognitive process, we propose a multi-level text representation model within background knowledge, called TRMBK. It is composed of three levels, which are machine surface code (MSC), machine text base (MTB) and machine situational model (MSM). All of the three are able to be automatically constructed to acquire semantics both inside and outside of the text. Simultaneously, we also propose a method to automatically establish background knowledge and offer supports for the current text comprehension. Finally, experiments and comparisons have been presented to show the better performance of TRMBK.
机译:文本表示是文本理解,处理和搜索中最基本的工作之一。已经提出了各种作品来在文本中挖掘语义,然后代表它们。然而,他们中的大多数只关注如何从文本本身挖掘语义,而背景知识对于文本理解非常重要,则不会考虑。本文在人类认知过程的基础上,我们提出了一个名为TRMBK的背景知识中的多级文本表示模型。它由三个级别组成,它是机器表面代码(MSC),机器文本基础(MTB)和机器情况模型(MSM)。所有三种都能够自动构建以在文本内部和外部获取语义。同时,我们还提出了一种自动建立背景知识的方法,并提供当前文本理解的支持。最后,已经提出了实验和比较以表现出TRMBK的更好表现。

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