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Dokumenttyp:
Masterarbeit
Autor(en):
Boe Krogh, H.
Titel:
Deep Reinforcement Learning in Production Scheduling
Abstract:
The thesis investigates deep reinforcement learning, specifically Proximal Policy Optimization, on online scheduling to minimise the schedule’s makespan. Invalid action masking was gradually applied with potential-based and auxiliary reward shaping to assess their individual and com- bined effect on the performance of the deep reinforcement learning algorithm. Hyperparameter tuning using Bayesian Optimization and Hyperband was implemented to find the optimal con- figuration of hyperparamete...     »
Betreuer:
Doerr, J.
Gutachter:
Grunow, M.
Jahr:
2023
Hochschule / Universität:
Technische Universität München
Fakultät:
TUM School of Management
TUM Einrichtung:
Chair of Production and Supply Chain Management
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