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Welcome to the page of the Professorship for Data Assimilation

In order to be able to predict severe weather events or the melting of ice in the Arctic, information in the form of heterogeneous data must be linked with numerical models of dynamic systems. This is done through data assimilation, which makes it possible to better investigate processes and predict their further development.  In the field of data assimilation, the professorship is concerned with the further development of data science algorithms by incorporating physical conservation laws, and solving correspondingly large optimisation problems in the environmental sciences. Quantifying the uncertainties of predictions, numerical models and observations also plays a central role here.

About us

Prof. Janjic introduces herself and the chair

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Math News

[Translate to Englisch:] Oliver

Prof. Dr. Marcel Oliver new holder of the endowed Chair for Applied Mathematics

Prof. Dr. Marcel Oliver has been appointed holder of the new Chair for Applied Mathematics funded by the City of Ingolstadt. Oliver is one of a team…

[Translate to Englisch:] Voigtlaender

Prof. Dr. Felix Voigtlaender first holder of the Chair for Reliable Machine Learning

Prof. Dr. Felix Voigtlaender is the KU’s first holder of the new Chair for Reliable Machine Learning. The KU was awarded this new chair in a…

Mathematical Institute for Machine Learning and Data Science

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