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Simulating Expert Clinical Comprehension: Adapting Latent Semantic Analysis to Accurately Extract Clinical Concepts from Psychiatric Narrative

机译:模拟专家的临床理解:调整潜在语义分析以从精神科叙事中准确提取临床概念

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摘要

Cognitive studies reveal that less-than-expert clinicians are less able to recognize meaningful patterns of data in clinical narratives. Accordingly, psychiatric residents early in training fail to attend to information that is relevant to diagnosis and the assessment of dangerousness. This manuscript presents cognitively motivated methodology for the simulation of expert ability to organize relevant findings supporting intermediate diagnostic hypotheses. Latent Semantic Analysis is used to generate a semantic space from which meaningful associations between psychiatric terms are derived. Diagnostically meaningful clusters are modeled as geometric structures within this space and compared to elements of psychiatric narrative text using semantic distance measures. A learning algorithm is defined that alters components of these geometric structures in response to labeled training data. Extraction and classification of relevant text segments is evaluated against expert annotation, with system-rater agreement approximating rater-rater agreement. A range of biomedical informatics applications for these methods are suggested.
机译:认知研究表明,不够专业的临床医生无法识别临床叙事中有意义的数据模式。因此,在训练初期的精神科住院医师无法获得与诊断和危险性评估有关的信息。这份手稿提出了基于认知动机的方法,用于模拟专家组织相关结果支持中间诊断假设的能力。潜在语义分析用于生成语义空间,从中可以导出精神科术语之间的有意义的关联。具有诊断意义的类集被建模为该空间内的几何结构,并使用语义距离度量与精神病学叙事文本的元素进行比较。定义了一种学习算法,该算法根据标记的训练数据来更改这些几何结构的组成部分。根据专家注释对相关文本段的提取和分类进行评估,其中系统评级者协议近似于评级者-评级者协议。建议了这些方法在生物医学信息学中的一系列应用。

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