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Conceptualisation and Annotation of Drug Nonadherence Information for Knowledge Extraction from Patient-Generated Texts

机译:患者生成文本知识提取药物非正畸信息的概念化与注释

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Approaches to knowledge extraction (KE) in the health domain often start by annotating text to indicate the knowledge to be extracted, and then use the annotated text to train systems to perform the KE. This may work for annotating named entities or other contiguous noun phrases (drugs, some drug effects), but becomes increasingly difficult when items tend to be expressed across multiple, possibly noncontiguous, syntactic constituents (e.g. most descriptions of drug effects in user-generated text). Other issues include that it is not always clear how annotations map to actionable insights, or how they scale up to. or can form part of, more complex KE tasks. This paper reports our efforts in developing an approach to extracting knowledge about drug nonadherence from health forums which led us to conclude that development cannot proceed in separate steps but that all aspects—from conceptualisation to annotation scheme development, annotation, KE system training and knowledge graph instantiation—are interdependent and need to be co-developed. Our aim in this paper is two-fold: we describe a generally applicable framework for developing a KE approach, and present a specific KE approach, developed with the framework, for the task of gathering information about antidepressant drug nonadherence. We report the conceptualisation, the annotation scheme, the annotated corpus, and an analysis of annotated texts.
机译:在健康域中的知识提取(KE)的方法通常通过注释文本来表示要提取的知识,然后使用注释文本来训练系统以执行ke。这可能适用于注释命名实体或其他连续的名词短语(药物,一些药物效应),但是当物品倾向于跨多个,可能的非连续的句法成分(例如在用户生成的文本中的药物效果大多数描述的大多数描述中表达时,变得越来越困难)。其他问题包括,并不总是清楚注释如何映射到可操作的洞察力,或者它们如何扩展到。或者可以组成部分,更复杂的KE任务。本文报告了我们在制定一种提取有关卫生论坛中的毒品不正常知识的方法,使我们得出结论,发展无法在单独的步骤中进行,而是从概念化到注释计划开发,注释,KE系统培训和知识图表实例化 - 是相互依存的,需要共同开发。本文的宗旨是两倍:我们描述了一个普遍适用的开发KE方法的框架,并呈现了与框架开发的特定KE方法,用于收集有关抗抑郁药物不正常的信息的任务。我们报告了概念化,注释计划,注释语料库和注释文本的分析。

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