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Marius Lindauer

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Towards Leveraging AutoML for Sustainable Deep Learning: A Multi-Objective HPO Approach on Deep Shift Neural Networks

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Apr 04, 2024
Leona Hennig, Tanja Tornede, Marius Lindauer

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auto-sktime: Automated Time Series Forecasting

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Dec 19, 2023
Marc-André Zöller, Marius Lindauer, Marco F. Huber

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Interactive Hyperparameter Optimization in Multi-Objective Problems via Preference Learning

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Sep 13, 2023
Joseph Giovanelli, Alexander Tornede, Tanja Tornede, Marius Lindauer

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Self-Adjusting Weighted Expected Improvement for Bayesian Optimization

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Jun 30, 2023
Carolin Benjamins, Elena Raponi, Anja Jankovic, Carola Doerr, Marius Lindauer

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AutoML in Heavily Constrained Applications

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Jun 29, 2023
Felix Neutatz, Marius Lindauer, Ziawasch Abedjan

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Structure in Reinforcement Learning: A Survey and Open Problems

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Jun 28, 2023
Aditya Mohan, Amy Zhang, Marius Lindauer

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PriorBand: Practical Hyperparameter Optimization in the Age of Deep Learning

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Jun 21, 2023
Neeratyoy Mallik, Edward Bergman, Carl Hvarfner, Danny Stoll, Maciej Janowski, Marius Lindauer, Luigi Nardi, Frank Hutter

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Automated Machine Learning for Remaining Useful Life Predictions

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Jun 21, 2023
Marc-André Zöller, Fabian Mauthe, Peter Zeiler, Marius Lindauer, Marco F. Huber

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AutoML in the Age of Large Language Models: Current Challenges, Future Opportunities and Risks

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Jun 13, 2023
Alexander Tornede, Difan Deng, Theresa Eimer, Joseph Giovanelli, Aditya Mohan, Tim Ruhkopf, Sarah Segel, Daphne Theodorakopoulos, Tanja Tornede, Henning Wachsmuth, Marius Lindauer

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