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Welcome to the website of the Chair of Reliable Machine Learning

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The research group "Reliable Machine Learning" studies the properties of machine learning algorithms.
In view of the recent success of deep learning methods in applications like image recognition, speech recognition, and automatic translation, the group especially focuses on properties of deep neural networks.

Although a neural network trained e.g. for an image classification task might work well on "real inputs", it has been repeatedly shown empirically that such networks are vulnerable to adversarial examples:
a minimal perturbation (impercetible to a human) of the input data can cause the network to misclassify the input.
Thus, an important research area of the group is to mathematically understand the reasons for the existence of such adversarial examples (i.e., the instability of trained neural networks),
and - building on that understanding - to develop improved methods that yield provably robust neural networks.

The research group is supported by the Emmy Noether project "Stability and Solvability in Deep Learning".

Content of Chair of reliable machine learning

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European Meteorological Society at Georgianum

The European Meteorological Society (EMS) Council is meeting as a guest of MIDS at the Georgianum. The EMS is the association of meteorological societies in Europe, such as the German Meteorological Society, and is represented by the EMS Council. The meeting in Ingolstadt was initiated by EMS Vice President Dr. Joerg Steinwagner. The Council meets twice a year and, among other things, discusses the society’s strategic direction, deliberates on collaborations, and votes on nominations for the EMS’s numerous awards.

Mathematical Institute for Machine Learning and Data Science

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The Chair of Reliable Maschine Learning is part of the Mathematical Institute for Machine Learning and Data Science, MIDS.
Learn more about MIDS here.