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Constraining the Parameters of High-Dimensional Models with Active
  Learning

Constraining the Parameters of High-Dimensional Models with Active Learning

19 May 2019
S. Caron
Tom Heskes
Sydney Otten
B. Stienen
    AI4CE
ArXivPDFHTML

Papers citing "Constraining the Parameters of High-Dimensional Models with Active Learning"

7 / 7 papers shown
Title
Deep Ensemble Bayesian Active Learning : Addressing the Mode Collapse
  issue in Monte Carlo dropout via Ensembles
Deep Ensemble Bayesian Active Learning : Addressing the Mode Collapse issue in Monte Carlo dropout via Ensembles
Remus Pop
Patric Fulop
UQCV
45
41
0
09 Nov 2018
GPyTorch: Blackbox Matrix-Matrix Gaussian Process Inference with GPU
  Acceleration
GPyTorch: Blackbox Matrix-Matrix Gaussian Process Inference with GPU Acceleration
Jacob R. Gardner
Geoff Pleiss
D. Bindel
Kilian Q. Weinberger
A. Wilson
GP
77
1,088
0
28 Sep 2018
Dropout-based Active Learning for Regression
Dropout-based Active Learning for Regression
Evgenii Tsymbalov
Maxim Panov
Alexander Shapeev
BDL
UQCV
20
56
0
26 Jun 2018
What Uncertainties Do We Need in Bayesian Deep Learning for Computer
  Vision?
What Uncertainties Do We Need in Bayesian Deep Learning for Computer Vision?
Alex Kendall
Y. Gal
BDL
OOD
UD
UQCV
PER
301
4,667
0
15 Mar 2017
QBDC: Query by dropout committee for training deep supervised
  architecture
QBDC: Query by dropout committee for training deep supervised architecture
Mélanie Ducoffe
F. Precioso
OOD
MU
25
19
0
19 Nov 2015
Dropout as a Bayesian Approximation: Representing Model Uncertainty in
  Deep Learning
Dropout as a Bayesian Approximation: Representing Model Uncertainty in Deep Learning
Y. Gal
Zoubin Ghahramani
UQCV
BDL
533
9,233
0
06 Jun 2015
Adam: A Method for Stochastic Optimization
Adam: A Method for Stochastic Optimization
Diederik P. Kingma
Jimmy Ba
ODL
1.1K
149,474
0
22 Dec 2014
1