DeepProcess: Supporting business process execution using a MANN-based recommender system
February 03, 2018 ยท Declared Dead ยท ๐ International Conference on Service Oriented Computing
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Authors
Asjad Khan, Hung Le, Kien Do, Truyen Tran, Aditya Ghose, Hoa Dam, Renuka Sindhgatta
arXiv ID
1802.00938
Category
cs.NE: Neural & Evolutionary
Citations
15
Venue
International Conference on Service Oriented Computing
Last Checked
4 months ago
Abstract
Process-aware Recommender systems can provide critical decision support functionality to aid business process execution by recommending what actions to take next. Based on recent advances in the field of deep learning, we present a novel memory-augmented neural network (MANN) based approach for constructing a process-aware recommender system. We propose a novel network architecture, namely Write-Protected Dual Controller Memory-Augmented Neural Network (DCw-MANN), for building prescriptive models. To evaluate the feasibility and usefulness of our approach, we consider three real-world datasets and show that our approach leads to better performance on several baselines for the task of suffix recommendation and next task prediction.
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