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Dokumenttyp:
Masterarbeit
Autor(en):
Maier-Borst, M.
Titel:
Financial Forecasting: A Machine Learning-based Approach to Account for Imperfect Advance Demand Information
Abstract:
In an increasingly fast-paced and volatile world, accurate revenue forecasting is critical to companies in capital-intensive industries. Applying machine learning (ML) provides a more objective alternative to the inevitably biased human judgments commonly used. In this context, this work examines the added benefits of imperfect advance demand information (ADI) through a case study by employing exogenous information and cross-learning to predict different time series simultaneously. Here, trainin...     »
Betreuer:
Greil, T.
Gutachter:
Grunow, M.
Jahr:
2022
Hochschule / Universität:
Technical University Munich
Fakultät:
TUM School of Management
TUM Einrichtung:
Chair of Production and Supply Chain Management
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