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Consistent Online Gaussian Process Regression Without the Sample
  Complexity Bottleneck

Consistent Online Gaussian Process Regression Without the Sample Complexity Bottleneck

23 April 2020
Alec Koppel
Hrusikesha Pradhan
K. Rajawat
ArXivPDFHTML

Papers citing "Consistent Online Gaussian Process Regression Without the Sample Complexity Bottleneck"

5 / 5 papers shown
Title
STEERING: Stein Information Directed Exploration for Model-Based
  Reinforcement Learning
STEERING: Stein Information Directed Exploration for Model-Based Reinforcement Learning
Souradip Chakraborty
Amrit Singh Bedi
Alec Koppel
Mengdi Wang
Furong Huang
Dinesh Manocha
24
8
0
28 Jan 2023
High-dimensional additive Gaussian processes under monotonicity
  constraints
High-dimensional additive Gaussian processes under monotonicity constraints
A. F. López-Lopera
François Bachoc
O. Roustant
35
9
0
17 May 2022
Online, Informative MCMC Thinning with Kernelized Stein Discrepancy
Online, Informative MCMC Thinning with Kernelized Stein Discrepancy
Cole Hawkins
Alec Koppel
Zheng Zhang
47
4
0
18 Jan 2022
Distributed Gaussian Process Mapping for Robot Teams with Time-varying
  Communication
Distributed Gaussian Process Mapping for Robot Teams with Time-varying Communication
James Di
Ehsan Zobeidi
Alec Koppel
Nikolay Atanasov
28
2
0
12 Oct 2021
Decision-Making Algorithms for Learning and Adaptation with Application
  to COVID-19 Data
Decision-Making Algorithms for Learning and Adaptation with Application to COVID-19 Data
S. Maranò
Ali H. Sayed
36
6
0
14 Dec 2020
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