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2019 | OriginalPaper | Chapter

Comparing Process Models for Patient Populations: Application in Breast Cancer Care

Authors : Francesca Marazza, Faiza Allah Bukhsh, Onno Vijlbrief, Jeroen Geerdink, Shreyasi Pathak, Maurice van Keulen, Christin Seifert

Published in: Business Process Management Workshops

Publisher: Springer International Publishing

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Abstract

Processes in organisations such as hospitals, may deviate from intended standard processes, due to unforeseeable events and the complexity of the organisation. For hospitals, the knowledge of actual patient streams for patient populations (e.g., severe or non-severe cases) is important for quality control and improvement. Process discovery from event data in electronic health records can shed light on the patient flows, but their comparison for different populations is cumbersome and time-consuming. In this paper, we present an approach for the automatic comparison of process models extracted from events in electronic health records. Concretely, we propose to compare processes for different patient populations by cross-log conformance checking, and standard graph similarity measures obtained from the directed graph underlying the process model. Results from a case study on breast cancer care show that average fitness and precision of cross-log conformance checks provide good indications of process similarity and therefore can guide the direction of further investigation for process improvement.

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Footnotes
1
promtools.​org last accessed 2019-05-06.
 
2
https://​networkx.​github.​io/​, last accessed 2019-05-20.
 
3
Process models for the other populations were omitted due to space constraints.
 
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Metadata
Title
Comparing Process Models for Patient Populations: Application in Breast Cancer Care
Authors
Francesca Marazza
Faiza Allah Bukhsh
Onno Vijlbrief
Jeroen Geerdink
Shreyasi Pathak
Maurice van Keulen
Christin Seifert
Copyright Year
2019
DOI
https://doi.org/10.1007/978-3-030-37453-2_40

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