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Jakob Kruse
Jakob Kruse
Bürgerwerke eG
Verified email at iwr.uni-heidelberg.de - Homepage
Title
Cited by
Cited by
Year
Analyzing inverse problems with invertible neural networks
L Ardizzone, J Kruse, S Wirkert, D Rahner, EW Pellegrini, RS Klessen, ...
arXiv preprint arXiv:1808.04730, 2018
7772018
Guided image generation with conditional invertible neural networks
L Ardizzone, C Lüth, J Kruse, C Rother, U Köthe
arXiv preprint arXiv:1907.02392, 2019
4242019
Learning to push the limits of efficient FFT-based image deconvolution
J Kruse, C Rother, U Schmidt
Proceedings of the IEEE International Conference on Computer Vision, 4586-4594, 2017
1292017
Benchmarking invertible architectures on inverse problems
J Kruse, L Ardizzone, C Rother, U Köthe
arXiv preprint arXiv:2101.10763, 2021
722021
Framework for Easily Invertible Architectures (FrEIA), 2018-2022
L Ardizzone, T Bungert, F Draxler, U Köthe, J Kruse, R Schmier, ...
URL https://github. com/vislearn/FrEIA 755, 0
62*
Conditional invertible neural networks for diverse image-to-image translation
L Ardizzone, J Kruse, C Lüth, N Bracher, C Rother, U Köthe
DAGM German Conference on Pattern Recognition, 373-387, 2020
602020
HINT: Hierarchical invertible neural transport for density estimation and Bayesian inference
J Kruse, G Detommaso, U Köthe, R Scheichl
Proceedings of the AAAI Conference on Artificial Intelligence 35 (9), 8191-8199, 2021
57*2021
Uncertainty-aware performance assessment of optical imaging modalities with invertible neural networks
TJ Adler, L Ardizzone, A Vemuri, L Ayala, J Gröhl, T Kirchner, S Wirkert, ...
International journal of computer assisted radiology and surgery, 1-11, 2019
422019
Technical report: Training mixture density networks with full covariance matrices
J Kruse
arXiv preprint arXiv:2003.05739, 2020
162020
Towards learned emulation of interannual water isotopologue variations in General Circulation Models
J Wider, J Kruse, N Weitzel, JC Bühler, U Köthe, K Rehfeld
Environmental Data Science 2, e35, 2023
22023
Conditional normalizing flow for predicting the occurrence of rare extreme events on long time scales
J Kruse, B Ellerhoff, U Köthe, K Rehfeld
EGU22, 2022
2022
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Articles 1–11