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CDR-FRDpA

source code for CDR-FRDpA paper

CDR-FRDpA enhances the FCM-RDpA (Fuzzy C-Means Clustering, Regularization, DropRule, and Powerball AdaBelief; paper|arxiv|code|blog) via consistent dimensionality reduction to optimize TSK fuzzy systems for regression in high dimensionality

run demoCDR.m to reproduce the results on the Estate-costs dataset of Fig.2/3 in the paper.

run demoPS.m to reproduce the results on the Estate-costs dataset of Fig.4 in the paper.

run demoInit.m to reproduce the results on the Estate-costs dataset of Fig.5 in the paper.

run demoMF.m to reproduce the results on the Estate-costs dataset of Fig.7 in the paper.

run demoRP.m to reproduce the results on the Estate-costs dataset of Fig.8 in the paper.

We also provide a sugfis_mbgd_app.mlapp for simple test. Some examples are given as below:

FCM-RDpA

CDR-FRDpA

CDR-GRDpA

CDRP-FRDpA

Citation

@Article{Shi2021,
  author  = {Zhenhua Shi and Dongrui Wu and Chenfeng Guo and Changming Zhao and Yuqi Cui and Fei-Yue Wang},
  journal = {Information Sciences},
  title   = {{FCM-RDpA}: {TSK} Fuzzy Regression Model Construction Using Fuzzy C-Means Clustering, Regularization, {D}rop{R}ule, and {P}owerball {A}da{B}elief},
  year    = {2021},
  pages   = {490-504},
  volume  = {574},
}
@Article{Wu2020,
  author  = {Dongrui Wu and Ye Yuan and Jian Huang and Yihua Tan},
  journal = {IEEE Trans. on Fuzzy Systems},
  title   = {Optimize {TSK} Fuzzy Systems for Regression Problems: Mini-batch Gradient Descent With Regularization, {D}rop{R}ule, and {A}da{B}ound ({MBGD-RDA})},
  year    = {2020},
  number  = {5},
  pages   = {1003-1015},
  volume  = {28},
}

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source code for CDR-FRDpA paper

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