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首页> 外文期刊>Journal of healthcare engineering. >A Lightweight API-Based Approach for Building Flexible Clinical NLP Systems
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A Lightweight API-Based Approach for Building Flexible Clinical NLP Systems

机译:基于轻量级API的方法来构建灵活的临床NLP系统

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摘要

Natural language processing (NLP) has become essential for secondary use of clinical data. Over the last two decades, many clinical NLP systems were developed in both academia and industry. However, nearly all existing systems are restricted to specific clinical settings mainly because they were developed for and tested with specific datasets, and they often fail to scale up. Therefore, using existing NLP systems for ones own clinical purposes requires substantial resources and long-term time commitments for customization and testing. Moreover, the maintenance is also troublesome and time-consuming. This research presents a lightweight approach for building clinical NLP systems with limited resources. Following the design science research approach, we propose a lightweight architecture which is designed to be composable, extensible, and configurable. It takes NLP as an external component which can be accessed independently and orchestrated in a pipeline via web APIs. To validate its feasibility, we developed a web-based prototype for clinical concept extraction with six well-known NLP APIs and evaluated it on three clinical datasets. In comparison with available benchmarks for the datasets, three high F1 scores (0.861, 0.724, and 0.805) were obtained from the evaluation. It also gained a low F1 score (0.373) on one of the tests, which probably is due to the small size of the test dataset. The development and evaluation of the prototype demonstrates that our approach has a great potential for building effective clinical NLP systems with limited resources.
机译:自然语言处理(NLP)对于临床数据的二次使用已变得至关重要。在过去的二十年中,学术界和工业界都开发了许多临床NLP系统。但是,几乎所有现有系统都限于特定的临床环境,这主要是因为它们是为特定的数据集开发和测试的,并且通常无法按比例扩展。因此,将现有的NLP系统用于自己的临床目的需要大量资源和长期时间用于定制和测试。而且,维护也麻烦且费时。这项研究提出了一种在资源有限的情况下构建临床NLP系统的轻量级方法。遵循设计科学研究方法,我们提出了一种轻量级体系结构,该体系结构被设计为可组合,可扩展和可配置的。它以NLP作为外部组件,可以独立访问并通过Web API在管道中进行编排。为了验证其可行性,我们开发了一个基于Web的原型,用于使用六个著名的NLP API提取临床概念,并在三个临床数据集上对其进行了评估。与数据集的可用基准进行比较,从评估中获得了三个较高的F1分数(0.861、0.724和0.805)。在其中一项测试中,它的F1得分也很低(0.373),这可能是由于测试数据集的大小所致。原型的开发和评估表明,我们的方法具有在资源有限的情况下构建有效的临床NLP系统的巨大潜力。

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