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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".

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Dissertation award for Dr. Alexander Rave

Dr. Alexander Rave honored with the dissertation award for the best doctoral thesis

Last Saturday, Dr. Alexander Rave received the award for the best doctoral thesis at WFI. In January, he successfully defended his dissertation titled "Mathematical models and metaheuristics for optimizing the transportation planning of drones: Case studies in parcel delivery and healthcare services" with the highest distinction (summa cum laude).

In his research, he developed mathematical models and efficient algorithms for the usage of drones. His work explored not only their use in package delivery in rural areas but also in the medical field to improve the availability of medications.

He was awarded the prize, sponsored by the City of Ingolstadt. Unfortunately, he was unable to attend this year’s graduation ceremony, so the certificate was presented to him shortly afterward by his doctoral advisor, Prof. Pirmin Fontaine.

We are delighted about this recognition and are thrilled that he will continue to work with our department as a postdoc.

Congratulations!

 

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.
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