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2001.11486
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MNIST-NET10: A heterogeneous deep networks fusion based on the degree of certainty to reach 0.1 error rate. Ensembles overview and proposal
30 January 2020
S. Tabik
R. F. Alvear-Sandoval
María M. Ruiz
J. Sancho-Gómez
A. Figueiras-Vidal
Francisco Herrera
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Papers citing
"MNIST-NET10: A heterogeneous deep networks fusion based on the degree of certainty to reach 0.1 error rate. Ensembles overview and proposal"
4 / 4 papers shown
Title
An Expert Ensemble for Detecting Anomalous Scenes, Interactions, and Behaviors in Autonomous Driving
Tianchen Ji
Neeloy Chakraborty
Andre Schreiber
Katherine Rose Driggs-Campbell
146
1
0
23 Feb 2025
BMI Prediction from Handwritten English Characters Using a Convolutional Neural Network
N. T. Diba
N. Akter
S. Chowdhury
J. E. Giti
46
0
0
04 Sep 2024
Community-Based Hierarchical Positive-Unlabeled (PU) Model Fusion for Chronic Disease Prediction
Yang Wu
Xurui Li
Xuhong Zhang
Yangyang Kang
Changlong Sun
Xiaozhong Liu
24
3
0
06 Sep 2023
Improving neural networks by preventing co-adaptation of feature detectors
Geoffrey E. Hinton
Nitish Srivastava
A. Krizhevsky
Ilya Sutskever
Ruslan Salakhutdinov
VLM
266
7,636
0
03 Jul 2012
1