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首页> 外文期刊>Pattern Recognition: The Journal of the Pattern Recognition Society >Contextual texton-text stroke classification in online handwritten notes with conditional random fields
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Contextual texton-text stroke classification in online handwritten notes with conditional random fields

机译:具有条件随机字段的在线手写笔记中的上下文文本/非文本笔划分类

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摘要

Analysing online handwritten notes is a challenging problem because of the content heterogeneity and the lack of prior knowledge, as users are free to compose documents that mix text, drawings, tables or diagrams. The task of separating text from non-text strokes is of crucial importance towards automated interpretation and indexing of these documents, but solving this problem requires a careful modelling of contextual information, such as the spatial and temporal relationships between strokes. In this work, we present a comprehensive study of contextual information modelling for texton-text stroke classification in online handwritten documents. Formulating the problem with a conditional random field permits to integrate and combine multiple sources of context, such as several types of spatial and temporal interactions. Experimental results on a publicly available database of freely hand-drawn documents demonstrate the superiority of our approach and the benefit of contextual information combination for solving texton-text classification.
机译:由于内容的异构性和缺乏先验知识,分析在线手写笔记是一个具有挑战性的问题,因为用户可以自由编写包含文本,图形,表格或图表的文档。将文本与非文本笔划分开的任务对于自动解释和索引这些文档至关重要,但是要解决此问题,需要对上下文信息(例如笔划之间的空间和时间关系)进行仔细的建模。在这项工作中,我们对在线手写文档中文本/非文本笔划分类的上下文信息建模进行了全面的研究。用条件随机场来表述问题允许集成和组合多种上下文源,例如几种类型的空间和时间交互。在公开提供的免费手绘文档数据库上的实验结果证明了我们方法的优越性以及上下文信息组合在解决文本/非文本分类方面的优势。

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