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用于结核病诊断支持的病历初步文本分析。

Preliminary Text Analysis from Medical Records for TB Diagnosis Support.

出版信息

Annu Int Conf IEEE Eng Med Biol Soc. 2021 Nov;2021:2468-2471. doi: 10.1109/EMBC46164.2021.9631006.

Abstract

Tuberculosis is an infectious disease that is spread through the air from one person to another and is one of the top ten causes of death in the world according to the World Health Organization. From biomedical engineering, decision support systems based on artificial intelligence have shown advantages for healthcare personnel in tasks such as diagnosis and screening. A specific area of the artificial intelligence is the natural language processing, however, most of these approaches are based on available data. This paper shows the construction of a dataset based on medical records of subjects suspected of tuberculosis. In addition, an initial exploration of the contents of the constructed dataset and how this approach can be followed by a natural language processing to support tuberculosis diagnosis in data demanding scenarios are presented.Clinical Relevance- In some developing countries as Colombia, it is difficult to develop systems based on artificial intelligence due to the availability of data. This proposal holds a strategy to build a dataset to train machine learning models, and to obtain support diagnosis tools, employing natural language from the medical scenario from text written by health professionals in the medical record. In this way, trained models based on this information available can be employed in places where medical infrastructure is precarious.

摘要

结核病是一种传染病,通过空气从一个人传播到另一个人,是世界卫生组织(WHO)认定的十大死因之一。从生物医学工程的角度来看,基于人工智能的决策支持系统在诊断和筛查等医疗保健人员的任务中显示出了优势。人工智能的一个特定领域是自然语言处理,然而,这些方法大多基于现有数据。本文展示了一个基于疑似结核病患者病历的数据集的构建。此外,还对所构建数据集的内容进行了初步探索,并展示了如何通过自然语言处理在数据需求场景中支持结核病诊断。临床意义-在哥伦比亚等一些发展中国家,由于数据的可用性,很难开发基于人工智能的系统。本提案提出了一种构建数据集的策略,以训练机器学习模型,并获得支持诊断工具,利用来自医疗记录中卫生专业人员书写的医疗场景的自然语言。通过这种方式,基于这些可用信息的训练模型可以在医疗基础设施不完善的地方使用。

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