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Timo Klock
Timo Klock
Independent
Verified email at timoklock.de - Homepage
Title
Cited by
Cited by
Year
A deep network construction that adapts to intrinsic dimensionality beyond the domain
A Cloninger, T Klock
Neural Networks 141, 404-419, 2021
39*2021
Consensus-based optimization methods converge globally in mean-field law
M Fornasier, T Klock, K Riedl
arXiv preprint arXiv:2103.15130, 2021
362021
Convergence of anisotropic consensus-based optimization in mean-field law
M Fornasier, T Klock, K Riedl
International Conference on the Applications of Evolutionary Computation …, 2022
192022
Managing the microvibration impact on satellite performances
F Steier, T Runte, A Monsky, T Klock, G Laduree
Acta Astronautica 162, 461-468, 2019
182019
Robust and resource-efficient identification of two hidden layer neural networks
M Fornasier, T Klock, M Rauchensteiner
Constructive Approximation, 1-62, 2019
172019
Adaptive multi-penalty regularization based on a generalized lasso path
M Grasmair, T Klock, V Naumova
Applied and Computational Harmonic Analysis 49 (1), 30-55, 2020
102020
Estimating covariance and precision matrices along subspaces
Ž Kereta, T Klock
Electronic Journal of Statistics 15 (1), 554-588, 2021
92021
Stable recovery of entangled weights: Towards robust identification of deep neural networks from minimal samples
C Fiedler, M Fornasier, T Klock, M Rauchensteiner
Applied and Computational Harmonic Analysis 62, 123-172, 2023
82023
Landscape analysis of an improved power method for tensor decomposition
J Kileel, T Klock, J M Pereira
Advances in Neural Information Processing Systems 34, 6253-6265, 2021
82021
Estimating multi-index models with response-conditional least squares
T Klock, A Lanteri, S Vigogna
Electronic Journal of Statistics 15 (1), 589-629, 2021
82021
A level set toolbox including reinitialization and mass correction algorithms for FEniCS
M Jahn, T Klock
Universität, 2016
72016
Semi-supervised manifold learning with complexity decoupled chart autoencoders
SC Schonsheck, S Mahan, T Klock, A Cloninger, R Lai
arXiv preprint arXiv:2208.10570, 2022
52022
Gradient is all you need?
K Riedl, T Klock, C Geldhauser, M Fornasier
arXiv preprint arXiv:2306.09778, 2023
42023
Numerical solution of the Stefan problem in level set formulation with the eXtended finite element method in FEniCS
M Jahn, T Klock
Universität, 2017
42017
Nonlinear generalization of the monotone single index model
Ž Kereta, T Klock, V Naumova
Information and Inference: A Journal of the IMA 10 (3), 987-1029, 2021
32021
Finite sample identification of wide shallow neural networks with biases
M Fornasier, T Klock, M Mondelli, M Rauchensteiner
arXiv preprint arXiv:2211.04589, 2022
22022
Zentrum für technomathematik
M Jahn, A Schmidt, E Bänsch
Berichte aus der Technomathematik 16 (01), 2016
12016
Chapter 6 Digital tracing, validation, and reporting
A Elmokashfi, S Funke, T Klock, M Kuchta, V Naumova, J Uv
Smittestopp− A Case Study on Digital Contact Tracing, 99-120, 2022
2022
Levelset methods (and XFEM) in FEniCS
M Jahn, T Klock, A Luttmann
An XFEM toolbox for FEniCS
M Jahn, A Luttmann, T Klock
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Articles 1–20