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Extreme Fuzzy Broad Learning System: Algorithm, Frequency Principle, and Applications in Classification and Regression
Journal article
Duan, Junwei, Yao, Shiyi, Tan, Jiantao, Liu, Yang, Chen, Long, Zhang, Zhen, Chen, C. L.P.. Extreme Fuzzy Broad Learning System: Algorithm, Frequency Principle, and Applications in Classification and Regression[J]. IEEE Transactions on Neural Networks and Learning Systems, 2024.
Authors:
Duan, Junwei
;
Yao, Shiyi
;
Tan, Jiantao
;
Liu, Yang
;
Chen, Long
; et al.
Favorite
|
TC[WOS]:
2
TC[Scopus]:
1
IF:
10.2
/
10.4
|
Submit date:2024/05/16
Broad Learning System (Bls)
Classification
Deep Neural Network
Feature Extraction
Frequency Principle
Fuzzy Extreme Learning Machine (Elm)
Learning Systems
Mathematical Models
Neural Networks
Regression
Stacking
Task Analysis
Training
Fuzzy Adaptive Finite-Time Consensus Control for High-Order Nonlinear Multi-Agent Systems Based on Event-Triggered
Journal article
Zhou, Haodong, Sui, Shuai, Tong, Shaocheng. Fuzzy Adaptive Finite-Time Consensus Control for High-Order Nonlinear Multi-Agent Systems Based on Event-Triggered[J]. IEEE Transactions on Fuzzy Systems, 2022.
Authors:
Zhou, Haodong
;
Sui, Shuai
;
Tong, Shaocheng
Favorite
|
TC[WOS]:
36
TC[Scopus]:
39
IF:
10.7
/
9.7
|
Submit date:2022/05/17
Artificial Neural Networks
Backstepping
Consensus Control
Consensus Control
Control Design
Convergence
Eventtriggered
Finite-time
Fuzzy Logic
High-order Nonlinear Multi-agent Systems
Nonlinear Dynamical Systems
Fuzzy Neural Networks (FNNs) Training Algorithm with Dropout via Its Equivalent Fully Connected Fuzzy Inference Systems (F-CONFIS)
Conference paper
Wang,Jing, Chen,Philip, Ma,Zhenyuan, Xiao,Zhenghong. Fuzzy Neural Networks (FNNs) Training Algorithm with Dropout via Its Equivalent Fully Connected Fuzzy Inference Systems (F-CONFIS)[C], 2018, 80-84.
Authors:
Wang,Jing
;
Chen,Philip
;
Ma,Zhenyuan
;
Xiao,Zhenghong
Favorite
|
TC[Scopus]:
2
|
Submit date:2021/03/09
Adaptive Neural-Fuzzy Inference Systems(ANFIS)
Fuzzy Inference Systems
Fuzzy Neural Networks
Gradient Descent
Neural Networks
A new fast-F-CONFIS training of fully-connected neuro-fuzzy inference system
Conference paper
Jing Wang, Yuan-Yan Tang, Long Chen, C. L. Philip Chen, Chao-Tian Chen. A new fast-F-CONFIS training of fully-connected neuro-fuzzy inference system[C]:IEEE, 2015, 99-104.
Authors:
Jing Wang
;
Yuan-Yan Tang
;
Long Chen
;
C. L. Philip Chen
;
Chao-Tian Chen
Favorite
|
TC[WOS]:
0
TC[Scopus]:
0
|
Submit date:2019/02/11
Conjugate Gradients
Fuzzy Logic
Fuzzy Neural Networks
Gradient Descent
Neural Networks
Mixed radix systems of fully connected neuro-fuzzy inference systems with special properties
Conference paper
Wang J., Chen C.-T., Chen C.L.P., Yu Y.-Q.. Mixed radix systems of fully connected neuro-fuzzy inference systems with special properties[C], 2015, 105-109.
Authors:
Wang J.
;
Chen C.-T.
;
Chen C.L.P.
;
Yu Y.-Q.
Favorite
|
TC[WOS]:
0
TC[Scopus]:
0
|
Submit date:2019/02/11
Fully Connected Neuro-fuzzy System
Fuzzy Logic
Fuzzy Neural Networks
Gradient Descent
Neural Networks
Neuro-fuzzy System
A novel random fuzzy neural networks for tackling uncertainties of electric load forecasting
Journal article
Lou C.W., Dong M.C.. A novel random fuzzy neural networks for tackling uncertainties of electric load forecasting[J]. International Journal of Electrical Power and Energy Systems, 2015, 73, 34.
Authors:
Lou C.W.
;
Dong M.C.
Favorite
|
TC[WOS]:
56
TC[Scopus]:
63
|
Submit date:2018/10/30
Load Forecasting
Random Fuzzy Neural Networks
Random Fuzzy Variable
Uncertainty
The bounded capacity of fuzzy neural networks (FNNs) via a new fully connected neural fuzzy inference system (F-CONFIS) with its applications
Journal article
Wang J., Wang C.-H., Chen C.L.P.. The bounded capacity of fuzzy neural networks (FNNs) via a new fully connected neural fuzzy inference system (F-CONFIS) with its applications[J]. IEEE Transactions on Fuzzy Systems, 2014, 22(6), 1373-1386.
Authors:
Wang J.
;
Wang C.-H.
;
Chen C.L.P.
Favorite
|
TC[WOS]:
17
TC[Scopus]:
21
|
Submit date:2019/02/11
Capacity Of Neural Networks
Fuzzy Neural Networks (Fnns)
Fuzzy System
Iris Data
Neural Networks
A new learning algorithm for a fully connected neuro-fuzzy inference system
Journal article
Chen C.L.P., Wang J., Wang C.-H., Chen L.. A new learning algorithm for a fully connected neuro-fuzzy inference system[J]. IEEE Transactions on Neural Networks and Learning Systems, 2014, 25(10), 1741-1757.
Authors:
Chen C.L.P.
;
Wang J.
;
Wang C.-H.
;
Chen L.
Favorite
|
TC[WOS]:
43
TC[Scopus]:
46
|
Submit date:2019/02/11
Fully Connected Neuro-fuzzy Inference Systems (F-confis)
Fuzzy Logic
Fuzzy Neural Networks
Gradient Descent
Neural Networks (Nns)
Neuro-fuzzy System
Optimal Learning
Fuzzy neural network-based adaptive control for a class of uncertain nonlinear stochastic systems
Journal article
Chen C.L.P., Liu Y.-J., Wen G.-X.. Fuzzy neural network-based adaptive control for a class of uncertain nonlinear stochastic systems[J]. IEEE Transactions on Cybernetics, 2014, 44(5), 583.
Authors:
Chen C.L.P.
;
Liu Y.-J.
;
Wen G.-X.
Favorite
|
TC[WOS]:
447
TC[Scopus]:
485
|
Submit date:2018/10/30
Adaptive Control
Backstepping Design
Fuzzy-neural Networks
Nonlinear Stochastic Systems
On the conjugate gradients (CG) training algorithm of fuzzy neural networks (FNNs) via its equivalent fully connected neural networks (FFNNs)
Conference paper
Wang J., Chen C.L.P., Wang C.-H.. On the conjugate gradients (CG) training algorithm of fuzzy neural networks (FNNs) via its equivalent fully connected neural networks (FFNNs)[C], 2012, 2446-2451.
Authors:
Wang J.
;
Chen C.L.P.
;
Wang C.-H.
Favorite
|
TC[WOS]:
2
TC[Scopus]:
3
|
Submit date:2019/02/11
Conjugate Gradients
Fuzzy Logic
Fuzzy Neural Networks
Gradient Descent
Neural Networks