Klaus-Robert Müller
Klaus-Robert Müller
TU Berlin & Korea University & Google Brain & MPII
Verified email at tu-berlin.de
Cited by
Cited by
Nonlinear component analysis as a kernel eigenvalue problem
B Schölkopf, A Smola, KR Müller
Neural computation 10 (5), 1299-1319, 1998
An introduction to kernel-based learning algorithms
KR Müller, S Mika, G Rätsch, K Tsuda, B Schölkopf
IEEE Transactions on Neural Networks 12 (2), 181 - 201, 2001
Efficient backprop
Y LeCun, L Bottou, G Orr, KR Müller
Neural networks: Tricks of the trade 7700, 9-53, 2012
Fisher discriminant analysis with kernels
S Mika, G Rätsch, J Weston, B Schölkopf, KR Müller
Neural Networks for Signal Processing IX, 1999. Proceedings of the 1999 IEEE …, 1999
Kernel principal component analysis
B Schölkopf, A Smola, KR Müller
Artificial Neural Networks—ICANN'97, 583-588, 1997
On pixel-wise explanations for non-linear classifier decisions by layer-wise relevance propagation
S Bach, A Binder, G Montavon, F Klauschen, KR Müller, W Samek
PloS one 10 (7), e0130140, 2015
Optimizing spatial filters for robust EEG single-trial analysis
B Blankertz, R Tomioka, S Lemm, M Kawanabe, KR Müller
IEEE Signal processing magazine 25 (1), 41-56, 2008
Input space versus feature space in kernel-based methods
B Schölkopf, S Mika, CJC Burges, P Knirsch, KR Müller, G Rätsch, ...
IEEE transactions on neural networks 10 (5), 1000-1017, 1999
Soft margins for AdaBoost
G Rätsch, T Onoda, KR Müller
Machine learning 42 (3), 287-320, 2001
Fast and accurate modeling of molecular atomization energies with machine learning
M Rupp, A Tkatchenko, KR Müller, OA Von Lilienfeld
Physical review letters 108 (5), 058301, 2012
Methods for interpreting and understanding deep neural networks
G Montavon, W Samek, KR Müller
Digital Signal Processing 73, 1-15, 2018
Predicting time series with support vector machines
KR Müller, A Smola, G Rätsch, B Schölkopf, J Kohlmorgen, V Vapnik
Artificial Neural Networks—ICANN'97, 999-1004, 1997
Kernel PCA and De-noising in feature spaces.
S Mika, B Schölkopf, AJ Smola, KR Müller, M Scholz, G Rätsch
Advances of Neural Information Processing Systems (NIPS) 11, 536-542, 1998
Single-trial analysis and classification of ERP components—a tutorial
B Blankertz, S Lemm, M Treder, S Haufe, KR Müller
NeuroImage 56 (2), 814-825, 2011
The non-invasive Berlin brain–computer interface: fast acquisition of effective performance in untrained subjects
B Blankertz, G Dornhege, M Krauledat, KR Müller, G Curio
NeuroImage 37 (2), 539-550, 2007
The BCI competition III: Validating alternative approaches to actual BCI problems
B Blankertz, KR Müller, DJ Krusienski, G Schalk, JR Wolpaw, A Schlogl, ...
IEEE transactions on neural systems and rehabilitation engineering 14 (2 …, 2006
Quantum-chemical insights from deep tensor neural networks
KT Schütt, F Arbabzadah, S Chmiela, KR Müller, A Tkatchenko
Nature Communications 8, 13890, 2017
Explainable artificial intelligence: Understanding, visualizing and interpreting deep learning models
W Samek, T Wiegand, KR Müller
ITU Journal: ICT Discoveries - The Impact of Artifcial Intelligence (AI) on …, 2017
The BCI competition 2003: progress and perspectives in detection and discrimination of EEG single trials
B Blankertz, KR Müller, G Curio, TM Vaughan, G Schalk, JR Wolpaw, ...
IEEE transactions on biomedical engineering 51 (6), 1044-1051, 2004
The connection between regularization operators and support vector kernels
AJ Smola, B Schölkopf, KR Müller
Neural networks 11 (4), 637-649, 1998
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