Machine Learning

Advancing frontiers of machine learning and data mining by developing novel methodologies and algorithmic solutions for the analysis of complex systems and applying them to address challenging problems in high-impact applications.

Machine learning is one of the main enabling technologies today and fast becoming ubiquitous in various scientific and technological fields. Given a great demand for advanced machine learning methodologies and tools, the field of Machine Learning at Simula seeks to create and apply novel methods to provide new insights in a wide variety of applications ranging from biomedical signals and image analysis, systems biology to climate and communication networks, while contributing to the foundations of the scientific field.

At Simula Metropolitan Center for Digital Engineering, the focus of the department of Data Science and Knowledge Discovery is to advance frontiers of machine learning and data mining by developing novel methodologies and algorithmic solutions for the analysis of complex systems and high-dimensional data in science and industry. Our research activities span three general areas: statistical learning and regularization theory; data mining with a focus on the matrix and tensor factorization; and deep learning applications.

 

Simula's research activity on machine learning is based at SimulaMet. 

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2023

Proceedings, refereed

In International conference on multimedia modeling. Springer International Publishing, 2023.
Status: Published
In IEEE International Conference on Acoustics, Speech and Signal Processing (ICASSP). IEEE, 2023.
Status: Published
In Nordic Artificial Intelligence Research and Development. Springer, 2023.
Status: Published
In 2023 IEEE 36th International Symposium on Computer-Based Medical Systems (CBMS). L'Aquila, Italy: IEEE, 2023.
Status: Published
In Workshop on Interpretability of Machine Intelligence in Medical Image Computing at MICCAI 2023, 2023.
Status: Accepted
2022

Proceedings, refereed

In ACM SIGKDD Conference on Knowledge Discovery and Data Mining. ACM, 2022.
Status: Published
In American Psychology-Law Society Conference 2022. Denver USA,: American Psychology-Law Society, 2022.
Status: Accepted
In Norwegian AI Symposium: Nordic Artificial Intelligence Research and Development. Springer, 2022.
Status: Published