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Optimal learning rates for Kernel Conjugate Gradient regression
29 September 2010
Gilles Blanchard
Nicole Krämer
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Papers citing
"Optimal learning rates for Kernel Conjugate Gradient regression"
20 / 20 papers shown
Title
Optimal Kernel Quantile Learning with Random Features
Caixing Wang
Xingdong Feng
148
1
0
24 Aug 2024
Early stopping by correlating online indicators in neural networks
M. Ferro
V. Darriba
Francisco J. Ribadas Pena
Jesús Vilares
48
9
0
04 Feb 2024
Capacity dependent analysis for functional online learning algorithms
Xin Guo
Zheng-Chu Guo
Lei Shi
65
20
0
25 Sep 2022
Non-asymptotic Optimal Prediction Error for Growing-dimensional Partially Functional Linear Models
Huiming Zhang
Xiaoyu Lei
88
1
0
10 Sep 2020
Random Features for Kernel Approximation: A Survey on Algorithms, Theory, and Beyond
Fanghui Liu
Xiaolin Huang
Yudong Chen
Johan A. K. Suykens
BDL
134
177
0
23 Apr 2020
Large-scale Kernel Methods and Applications to Lifelong Robot Learning
Raffaello Camoriano
84
1
0
11 Dec 2019
KTBoost: Combined Kernel and Tree Boosting
Fabio Sigrist
89
27
0
11 Feb 2019
Kernel Conjugate Gradient Methods with Random Projections
Bailey Kacsmar
Douglas R Stinson
61
4
0
05 Nov 2018
Accurate, Fast and Scalable Kernel Ridge Regression on Parallel and Distributed Systems
Yang You
J. Demmel
Cho-Jui Hsieh
R. Vuduc
60
33
0
01 May 2018
Learning Theory of Distributed Regression with Bias Corrected Regularization Kernel Network
Zheng-Chu Guo
Lei Shi
Qiang Wu
47
43
0
07 Aug 2017
Kernel partial least squares for stationary data
Marco Singer
Tatyana Krivobokova
Axel Munk
46
7
0
12 Jun 2017
Faster Kernel Ridge Regression Using Sketching and Preconditioning
H. Avron
K. Clarkson
David P. Woodruff
127
125
0
10 Nov 2016
Distributed learning with regularized least squares
Shaobo Lin
Xin Guo
Ding-Xuan Zhou
184
191
0
11 Aug 2016
Convergence rates of Kernel Conjugate Gradient for random design regression
Gilles Blanchard
Nicole E. Kramer
75
38
0
08 Jul 2016
Generalization Properties of Learning with Random Features
Alessandro Rudi
Lorenzo Rosasco
MLT
102
331
0
14 Feb 2016
Partial least squares for dependent data
Marco Singer
Tatyana Krivobokova
B. L. de Groot
Axel Munk
67
16
0
16 Oct 2015
Iterative Regularization for Learning with Convex Loss Functions
Junhong Lin
Lorenzo Rosasco
Ding-Xuan Zhou
94
43
0
31 Mar 2015
Learning with incremental iterative regularization
Lorenzo Rosasco
S. Villa
69
14
0
30 Apr 2014
Early stopping and non-parametric regression: An optimal data-dependent stopping rule
Garvesh Raskutti
Martin J. Wainwright
Bin Yu
151
301
0
15 Jun 2013
Divide and Conquer Kernel Ridge Regression: A Distributed Algorithm with Minimax Optimal Rates
Yuchen Zhang
John C. Duchi
Martin J. Wainwright
381
379
0
22 May 2013
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