Ontology-Based Information Extraction from Handwritten Documents

Sebastian Ebert, M. Liwicki, A. Dengel
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引用次数: 7

Abstract

In this paper we introduce a new layer for the task of handwriting recognition. We add semantic information by means of ontologies. The task of our recognizer therefore is not only to recognize the ASCII transcription of the handwritten document, but also to identify the semantic concepts which appear in the text. This task is called ontology-based information extraction (OBIE), which has been applied to electronic documents recently. OBIE methods first segment the text into tokens, then identify their values and their corresponding instances of the ontology, and finally try to generate new facts based on the text. To the authors’ knowledge, in this paper OBIE is proposed for the first time in handwriting literature. In our experiments we have evaluated the process up to the instantiation. We have found that using not only the top alternative, but also the k-best alternatives increases the performance of information extraction. Furthermore, the use of an ontology-based lexicon results in another performance increase.
基于本体的手写文档信息提取
在本文中,我们引入了一个新的层来完成手写识别任务。我们通过本体添加语义信息。因此,我们的识别器的任务不仅是识别手写文档的ASCII转录,而且还要识别文本中出现的语义概念。这一任务被称为基于本体的信息提取(OBIE),近年来在电子文档中得到了广泛的应用。OBIE方法首先将文本分割成标记,然后识别它们的值和它们对应的本体实例,最后尝试基于文本生成新的事实。据作者所知,本文首次在手写体文献中提出了OBIE。在我们的实验中,我们已经评估了直到实例化的过程。我们发现,不仅使用最优方案,而且使用k-最优方案可以提高信息提取的性能。此外,使用基于本体的词典还可以提高性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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