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Document type:
IDP-Arbeit
Author(s):
Gleisberg, A.; Salkic, E.
Title:
Batching and Lot Streaming via Deep Learning
Abstract:
Effective production scheduling is crucial for optimizing manufacturing efficiency, particularly in environments characterized by stochastic demand, sequence-dependent setup times, and dynamic inventory costs. Traditional heuristic-based scheduling methods, while computationally efficient, often struggle to adapt to real-time uncertainties. To address these challenges, this interdisciplinary project explores the application of Deep Reinforcement Learning (DRL) for batching and lot streaming in a...     »
Advisor:
Doerr, J.
Referee:
Grunow, M.
Year:
2025
Language:
en
University:
Technical University Munich
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