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The Revival of the Notes Field: Leveraging the Unstructured Content in Electronic Health Records

机译:备注领域的复兴:利用电子健康记录中的非结构化内容

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Problem: Clinical practice requires the production of a time- and resource-consuming great amount of notes. They contain relevant information, but their secondary use is almost impossible, due to their unstructured nature. Researchers are trying to address this problems, with traditional and promising novel techniques. Application in real hospital settings seems not to be possible yet, though, both because of relatively small and dirty dataset, and for the lack of language-specific pre-trained models. Aim: Our aim is to demonstrate the potential of the above techniques, but also raise awareness of the still open challenges that the scientific communities of IT and medical practitioners must jointly address to realize the full potential of unstructured content that is daily produced and digitized in hospital settings, both to improve its data quality and leverage the insights from data-driven predictive models. Methods: To this extent, we present a narrative literature review of the most recent and relevant contributions to leverage the application of Natural Language Processing techniques to the free-text content electronic patient records. In particular, we focused on four selected application domains, namely: data quality, information extraction, sentiment analysis and predictive models, and automated patient cohort selection. Then, we will present a few empirical studies that we undertook at a major teaching hospital specializing in musculoskeletal diseases. Results: We provide the reader with some simple and affordable pipelines, which demonstrate the feasibility of reaching literature performance levels with a single institution non-English dataset. In such a way, we bridged literature and real world needs, performing a step further toward the revival of notes fields.
机译:问题:临床实践需要生产时间和资源消耗的大量笔记。它们包含相关信息,但由于其非结构化的性质,他们的二次使用几乎是不可能的。研究人员正在努力解决这种问题,具有传统和有前途的新颖技术。实际医院环境中的应用似乎是不可能的,但是,由于相对较小的数据集,以及缺乏语言特定的预训练模型。目的:我们的目标是展示上述技术的潜力,但也提高了对仍然开放挑战的意识,即它的科学社区和医学从业者必须共同地解决每天产生和数字化的非结构化内容的全部潜力医院设置,都可以提高其数据质量,并利用数据驱动的预测模型的见解。方法:在这种程度上,我们提出了对最新和相关贡献的叙述文献综述,利用自然语言处理技术在自由文本内容电子患者记录中的应用。特别是,我们专注于四个选定的应用域,即:数据质量,信息提取,情感分析和预测模型,以及自动患者队列选择。然后,我们将提出一些实证研究,我们在专门从事肌肉骨骼疾病的主要教学医院进行。结果:我们为读者提供了一些简单且实惠的管道,这表明了与单一机构非英语数据集到达文学性能水平的可行性。以这样的方式,我们桥接文学和现实世界的需求,进一步朝着备注领域的复兴进行一步。

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