Suivre
Frederic Koehler
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Année
Information theoretic properties of Markov random fields, and their algorithmic applications
L Hamilton, F Koehler, A Moitra
Advances in Neural Information Processing Systems 30, 2017
692017
Uniform Convergence of Interpolators: Gaussian Width, Norm Bounds and Benign Overfitting
F Koehler, L Zhou, D Sutherland, N Srebro
Advances in Neural Information Processing Systems 34, 20657-20668, 2021
532021
A spectral condition for spectral gap: fast mixing in high-temperature Ising models
R Eldan, F Koehler, O Zeitouni
Probability theory and related fields 182 (3), 1035-1051, 2022
502022
Entropic independence I: Modified log-Sobolev inequalities for fractionally log-concave distributions and high-temperature ising models
N Anari, V Jain, F Koehler, HT Pham, TD Vuong
arXiv preprint arXiv:2106.04105, 2021
41*2021
Provable algorithms for inference in topic models
S Arora, R Ge, F Koehler, T Ma, A Moitra
International Conference on Machine Learning, 2859-2867, 2016
372016
Mean-field approximation, convex hierarchies, and the optimality of correlation rounding: a unified perspective
V Jain, F Koehler, A Risteski
Proceedings of the 51st Annual ACM SIGACT Symposium on Theory of Computing …, 2019
352019
Statistical efficiency of score matching: The view from isoperimetry
F Koehler, A Heckett, A Risteski
arXiv preprint arXiv:2210.00726, 2022
342022
Online and distribution-free robustness: Regression and contextual bandits with huber contamination
S Chen, F Koehler, A Moitra, M Yau
2021 IEEE 62nd Annual Symposium on Foundations of Computer Science (FOCS …, 2022
312022
Learning restricted Boltzmann machines via influence maximization
G Bresler, F Koehler, A Moitra
Proceedings of the 51st Annual ACM SIGACT Symposium on Theory of Computing …, 2019
312019
Classification Under Misspecification: Halfspaces, Generalized Linear Models, and Connections to Evolvability
S Chen, F Koehler, A Moitra, M Yau
Advances in Neural Information Processing Systems 33, 2020
302020
The mean-field approximation: Information inequalities, algorithms, and complexity
V Jain, F Koehler, E Mossel
Conference On Learning Theory, 1326-1347, 2018
292018
Optimal batch schedules for parallel machines
F Koehler, S Khuller
Algorithms and Data Structures: 13th International Symposium, WADS 2013 …, 2013
292013
Learning some popular gaussian graphical models without condition number bounds
J Kelner, F Koehler, R Meka, A Moitra
Advances in Neural Information Processing Systems 33, 10986-10998, 2020
262020
The comparative power of relu networks and polynomial kernels in the presence of sparse latent structure
F Koehler, A Risteski
International Conference on Learning Representations, 2018
26*2018
Entropic independence: optimal mixing of down-up random walks
N Anari, V Jain, F Koehler, HT Pham, TD Vuong
Proceedings of the 54th Annual ACM SIGACT Symposium on Theory of Computing …, 2022
222022
Optimistic Rates: A Unifying Theory for Interpolation Learningand Regularization in Linear Regression
L Zhou, F Koehler, DJ Sutherland, N Srebro
ACM/JMS Journal of Data Science, 2021
212021
Representational aspects of depth and conditioning in normalizing flows
F Koehler, V Mehta, A Risteski
International Conference on Machine Learning, 5628-5636, 2021
212021
On the power of preconditioning in sparse linear regression
JA Kelner, F Koehler, R Meka, D Rohatgi
2021 IEEE 62nd Annual Symposium on Foundations of Computer Science (FOCS …, 2022
182022
Entropic independence ii: optimal sampling and concentration via restricted modified log-Sobolev inequalities
N Anari, V Jain, F Koehler, HT Pham, TD Vuong
arXiv preprint arXiv:2111.03247, 2021
172021
Fast convergence of belief propagation to global optima: Beyond correlation decay
F Koehler
Advances in Neural Information Processing Systems 32, 2019
162019
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