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Titlebook: Business Process Management; 22nd International C Andrea Marrella,Manuel Resinas,Michael Rosemann Conference proceedings 2024 The Editor(s)

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楼主: 猛烈抨击
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On the Interplay Between BPMN Collaborations and the Physical Environmentental BPMN collaboration models. To facilitate a deeper understanding of the dynamics of these models, we provide a formal account of their semantics. We illustrate our findings through a fire-extinguishing collaborative scenario.
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Exploiting General Purpose Big-Data Frameworks in Process Mining: The Case of Declarative Process Dioping tailored systems for declarative processes. We build on top of a recent scalable framework, named SIESTA, which can perform efficient pattern analysis on large log files. Our approach yields promising results, significantly outperforming the existing Declare Miner and MINERful solutions.
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Unity through uniform private law DPNs. Furthermore, we discuss how PP can be used for process mining tasks and report on a prototype implementation of our translation. We also discuss further analysis scenarios that could be easily approached based on the proposed translation and available PP tools.
发表于 2025-3-31 09:11:02 | 显示全部楼层
Unity through uniform private law offering an aggregation of closely related variants. We propose a super-variant mining framework based on object-centric variants, evaluate its scalability, and demonstrate its utility through a practical use case. This new approach promises to enhance control-flow analysis by striking a new balance between complexity and aggregation.
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Data Petri Nets Meet Probabilistic Programming DPNs. Furthermore, we discuss how PP can be used for process mining tasks and report on a prototype implementation of our translation. We also discuss further analysis scenarios that could be easily approached based on the proposed translation and available PP tools.
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Super Variants offering an aggregation of closely related variants. We propose a super-variant mining framework based on object-centric variants, evaluate its scalability, and demonstrate its utility through a practical use case. This new approach promises to enhance control-flow analysis by striking a new balance between complexity and aggregation.
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