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Extracting important information from Chinese Operation Notes with natural language processing methods

机译:用自然语言处理方法从中文操作说明中提取重要信息

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摘要

Extracting information from unstructured clinical narratives is valuable for many clinical applications. Although natural Language Processing (NLP) methods have been profoundly studied in electronic medical records (EMR), few studies have explored NLP in extracting information from Chinese clinical narratives. In this study, we report the development and evaluation of extracting tumor-related information from operation notes of hepatic carcinomas which were written in Chinese. Using 86 operation notes manually annotated by physicians as the training set, we explored both rule-based and supervised machine-learning approaches. Evaluating on unseen 29 operation notes, our best approach yielded 69.6% in precision, 58.3% in recall and 63.5% F-score.
机译:从非结构化的临床叙事中提取信息对于许多临床应用是有价值的。 虽然在电子医疗记录(EMR)中对自然语言处理(NLP)方法进行了深刻的研究,但很少有研究则探索了NLP从中国临床叙事中提取信息。 在这项研究中,我们报告了从中文撰写的肝癌的操作说明中提取肿瘤相关信息的开发和评估。 使用医师手动注释的86个操作说明作为培训集,我们探讨了基于规则和监督的机器学习方法。 评估看不见的29次操作说明,我们的最佳方法精确地产生了69.6%,召回的58.3%和63.5%。

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