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Automatic recognition of handwritten medical forms for search engines

机译:自动识别搜索引擎的手写医疗表格

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摘要

A new paradigm, which models the relationships between handwriting and topic categories, in the context of medical forms, is presented. The ultimate goals are: (1) a robust method which categorizes medical forms into specified categories, and (2) the use of such information for practical applications such as an improved recognition of medical handwriting or retrieval of medical forms as in a search engine. Medical forms have diverse, complex and large lexicons consisting of English, Medical and Pharmacology corpus. Our technique shows that a few recognized characters, returned by handwriting recognition, can be used to construct a linguistic model capable of representing a medical topic category. This allows (1) a reduced lexicon to be constructed, thereby improving handwriting recognition performance, and (2) PCR (Pre-Hospital Care Report) forms to be tagged with a topic category and subsequently searched by information retrieval systems. We present an improvement of over 7% in raw recognition rate and a mean average precision of 0.28 over a set of 1,175 queries on a data set of unconstrained handwritten medical forms filled in emergency environments.
机译:提出了一种新的范例,该范例在医学形式的背景下模拟了笔迹和主题类别之间的关系。最终目标是:(1)将医学表格分类为指定类别的可靠方法,以及(2)将此类信息用于实际应用,例如改进对医学笔迹的识别或在搜索引擎中检索医学表格。医学形式具有由英语,医学和药理学语料库组成的各种,复杂且庞大的词典。我们的技术表明,通过手写识别返回的一些识别字符可用于构建能够表示医学主题类别的语言模型。这允许(1)构建简化的词典,从而提高手写识别性能,以及(2)将PCR(医院前护理报告)表格标记为主题类别,然后通过信息检索系统进行搜索。我们针对在紧急情况下填写的无约束手写医疗表格数据集进行了1175个查询,原始识别率提高了7%以上,平均平均精度提高了0.28。

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