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Facilitating post-surgical complication detection through sublanguage analysis

机译:通过亚语言分析促进术后并发症的检测

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摘要

Identification of postsurgical complications is the first step towards improving patient safety and health care quality as well as reducing heath care cost. Existing NLP-based approaches for retrieving postsurgical complications are based on search strategies. Here, we conduct a sublanguage analysis study using free text reports available for a cohort of patients with postsurgical complications identified manually to compare the keywords identified by subject matter experts with words/phrases automatically identified by sublanguage analysis. The results suggest that search-based approaches may miss some cases and the sublanguage analysis results can be used as a base to develop an information extraction system or support search-based NLP approaches by augmenting search queries.
机译:识别术后并发症是提高患者安全性和医疗质量以及降低保健费用的第一步。检索术后并发症的基于NLP的现有方法是基于搜索策略的。在这里,我们使用免费文本报告进行了亚语言分析研究,该报告可用于一组人工识别的术后并发症患者,以将主题专家识别的关键词与通过亚语言分析自动识别的词/短语进行比较。结果表明,基于搜索的方法可能会遗漏某些情况,并且子语言分析结果可以用作开发信息提取系统的基础或通过扩展搜索查询来支持基于搜索的NLP方法。

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