Unstructured Data in Predictive Process Monitoring: Lexicographic and Semantic Mapping to ICD-9-CM Codes for the Home Hospitalization Service

计算机科学 杠杆(统计) 医学诊断 非结构化数据 服务(商务) 词典序 语义映射 过程(计算) 诊断代码 数据科学 自然语言处理 数据挖掘 人工智能
作者
Massimiliano Ronzani,Roger Ferrod,Chiara Di Francescomarino,Emilio Sulis,Roberto Aringhieri,Guido Boella,Enrico Brunetti,Luigi Di Caro,Mauro Dragoni,Chiara Ghidini,Renata Marinello
出处
期刊:Lecture Notes in Computer Science 卷期号:: 700-715
标识
DOI:10.1007/978-3-031-08421-8_48
摘要

AbstractThe large availability of hospital administrative and clinical data has encouraged the application of Process Mining techniques to the healthcare domain. Predictive Process Monitoring techniques can be used in order to learn from these data related to past historical executions and predict the future of incomplete cases. However, some of these data, possibly the most informative ones, are often available in natural language text, while structured information—extracted from these data—would be more beneficial for training predictive models.In this paper we focus on the scenario of the Home Hospitalization Service, supporting the team in making decisions on the home hospitalization of a patient, by predicting whether it is likely that a new patient will successfully undergo home hospitalization. We aim at investigating whether, in this scenario, we can take advantage of mapping unstructured textual diagnoses, reported by the doctor in the Emergency Department, into structured information, as the standardized disease ICD-9-CM codes, to provide more accurate predictions. To this aim, we devise two different approaches involving respectively lexicographic and semantic distance for mapping textual diagnoses in ICD-9-CM codes and leverage the structured information for making predictions.KeywordsHealthcare processesPredictive process monitoringNatural language processingHome hospitalization service
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