Online Discovery of Simulation Models for Evolving Business Processes (Extended Version)

June 11, 2025 Β· Declared Dead Β· πŸ› International Conference on Business Process Management

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Authors Francesco Vinci, Gyunam Park, Wil van der Aalst, Massimiliano de Leoni arXiv ID 2506.10049 Category cs.SE: Software Engineering Cross-listed cs.LG Citations 0 Venue International Conference on Business Process Management Last Checked 5 months ago
Abstract
Business Process Simulation (BPS) refers to techniques designed to replicate the dynamic behavior of a business process. Many approaches have been proposed to automatically discover simulation models from historical event logs, reducing the cost and time to manually design them. However, in dynamic business environments, organizations continuously refine their processes to enhance efficiency, reduce costs, and improve customer satisfaction. Existing techniques to process simulation discovery lack adaptability to real-time operational changes. In this paper, we propose a streaming process simulation discovery technique that integrates Incremental Process Discovery with Online Machine Learning methods. This technique prioritizes recent data while preserving historical information, ensuring adaptation to evolving process dynamics. Experiments conducted on four different event logs demonstrate the importance in simulation of giving more weight to recent data while retaining historical knowledge. Our technique not only produces more stable simulations but also exhibits robustness in handling concept drift, as highlighted in one of the use cases.
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