On Recommendation of Process Mining Algorithms

ICWS(2012)

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摘要
While many process mining algorithms have been proposed recently, there does not exist a widely-accepted benchmark to evaluate and compare these process mining algorithms. As a result, it can be difficult to choose a suitable process mining algorithm for a given enterprise or application domain. Some recent benchmark systems have been developed and proposed to address this issue. However, evaluating available process mining algorithms against a large set of business models (e.g., in a large enterprise) can be computationally expensive, tedious and time-consuming. This paper proposes a novel framework that can efficiently select the process mining algorithms that are most suitable for a given model set. In particular, it attempts to investigate how we can avoid evaluating numerous process mining algorithms on all given process models.
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process models,process model,process mining algorithm,benchmarking,numerous process mining algorithm,business process mining,business models,recent benchmark system,widely-accepted benchmark,benchmark systems,process mining algorithms,suitable process mining algorithm,data mining,available process mining algorithm,large set,business data processing,large enterprise,evaluation,model set,business,feature extraction,benchmark testing,computational modeling,algorithm design and analysis
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