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Erschienen in: Knowledge and Information Systems 2/2016

01.05.2016 | Regular Paper

Leveraging path information to generate predictions for parallel business processes

verfasst von: Merve Unuvar, Geetika T. Lakshmanan, Yurdaer N. Doganata

Erschienen in: Knowledge and Information Systems | Ausgabe 2/2016

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Abstract

In semi-structured processes, the set of activities that need to be performed, their order and whether additional steps are required are determined by human judgment. There is a growing demand for operational support of such processes during runtime particularly in the form of predictions about the likelihood of future tasks. We address the problem of making predictions for a running instance of a semi-structured process that contains parallel execution paths where the execution path taken by a process instance influences its outcome. In particular, we consider five different models for how to represent an execution trace as a path attribute for training a prediction model. We provide a methodology to determine whether parallel paths are independent, and whether it is worthwhile to model execution paths as independent based on a comparison of the information gain obtained by dependent and independent path representations. We tested our methodology by simulating a marketing campaign as a business process model and selected decision trees as the prediction model. In the evaluation, we compare the complexity and prediction accuracy of a prediction model trained with five different models.

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Fußnoten
1
The diagram in Fig. 1 is in the Business Process Modeling Notation (BPMN) language. For execution semantics of the gateways in Fig. 1, refer to page 462 http://​www.​omg.​org/​spec/​BPMN/​ISO/​19510/​PDF/​.
 
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Metadaten
Titel
Leveraging path information to generate predictions for parallel business processes
verfasst von
Merve Unuvar
Geetika T. Lakshmanan
Yurdaer N. Doganata
Publikationsdatum
01.05.2016
Verlag
Springer London
Erschienen in
Knowledge and Information Systems / Ausgabe 2/2016
Print ISSN: 0219-1377
Elektronische ISSN: 0219-3116
DOI
https://doi.org/10.1007/s10115-015-0842-7

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