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Learning or inferring medical concepts from medical transcripts using probabilistic models with words or phrases identification

机译:使用带有单词或短语识别的概率模型从医学笔录中学习或推断医学概念

摘要

A medical concept is learned about or inferred from a medical transcript. A probabilistic model is trained from medical transcripts. For example, the problem is treated as a graphical model. Discrimitive or generative learning is used to train the probabilistic model. A mutual information criterion can be employed to identify a discrete set of words or phrases to be used in the probabilistic model. The model is based on the types of medical transcripts, focusing on this source of data to output the most probable state of a patient in the medical field or domain. The learned model may be used to infer a state of a medical concept for a patient.
机译:医学概念是从医学成绩单中获悉或推断的。从医学成绩单中训练出一个概率模型。例如,该问题被视为图形模型。区分性或生成性学习用于训练概率模型。可以采用互信息标准来识别要在概率模型中使用的离散的单词或短语集。该模型基于医疗成绩单的类型,着眼于此数据源以输出医疗领域或领域中患者最可能的状态。所学习的模型可以用于为患者推断医学概念的状态。

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