A Fuzzy Radial Basis Adaptive Inference Network and Its Application to Time-Varying Signal Classification
A fuzzy radial basis adaptive inference network (FRBAIN) is proposed for multichannel time-varying signal fusion analysis and feature knowledge embedding. The model which combines the prior signal feature embedding mechanism of the radial basis kernel function with the rule-based logic inference abi...
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| Published in | Computational intelligence and neuroscience Vol. 2021; no. 1; p. 5528291 |
|---|---|
| Main Authors | , , , , |
| Format | Journal Article |
| Language | English |
| Published |
New York
Hindawi
2021
John Wiley & Sons, Inc |
| Subjects | |
| Online Access | Get full text |
| ISSN | 1687-5265 1687-5273 1687-5273 |
| DOI | 10.1155/2021/5528291 |
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| Abstract | A fuzzy radial basis adaptive inference network (FRBAIN) is proposed for multichannel time-varying signal fusion analysis and feature knowledge embedding. The model which combines the prior signal feature embedding mechanism of the radial basis kernel function with the rule-based logic inference ability of fuzzy system is composed of a multichannel time-varying signal input layer, a radial basis fuzzification layer, a rule layer, a regularization layer, and a T-S fuzzy classifier layer. The dynamic fuzzy clustering algorithm was used to divide the sample set pattern class into several subclasses with similar features. The fuzzy radial basis neurons (FRBNs) were defined and used as parameterized membership functions, and typical feature samples of each pattern subclass were used as kernel centers of the FRBN to realize the embedding of the diverse prior feature knowledge and the fuzzification of the input signals. According to the signal categories of FRBN kernel centers, nodes in the rule layer were selectively connected with nodes in the FRBN layer. A fuzzy multiplication operation was used to achieve synthesis of pattern class membership information and establishment of fuzzy inference rules. The excitation intensity of each rule was used as the input of T-S fuzzy classifier to classify the input signals. The FRBAIN can adaptively establish fuzzy set membership functions, fuzzy inference, and classification rules based on the learning of sample set, realize structural and data constraints of the model, and improve the modeling properties of imbalanced datasets. In this paper, the properties of FRBAIN were analyzed and a comprehensive learning algorithm was established. Experimental validation was performed with classification diagnoses from four complex cardiovascular diseases based on 12-lead ECG signals. Results demonstrated that, in the case of small-scale imbalanced datasets, the proposed method significantly improved both classification accuracy and generalizability comparing with other methods in the experiment. |
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| AbstractList | A fuzzy radial basis adaptive inference network (FRBAIN) is proposed for multichannel time-varying signal fusion analysis and feature knowledge embedding. The model which combines the prior signal feature embedding mechanism of the radial basis kernel function with the rule-based logic inference ability of fuzzy system is composed of a multichannel time-varying signal input layer, a radial basis fuzzification layer, a rule layer, a regularization layer, and a T-S fuzzy classifier layer. The dynamic fuzzy clustering algorithm was used to divide the sample set pattern class into several subclasses with similar features. The fuzzy radial basis neurons (FRBNs) were defined and used as parameterized membership functions, and typical feature samples of each pattern subclass were used as kernel centers of the FRBN to realize the embedding of the diverse prior feature knowledge and the fuzzification of the input signals. According to the signal categories of FRBN kernel centers, nodes in the rule layer were selectively connected with nodes in the FRBN layer. A fuzzy multiplication operation was used to achieve synthesis of pattern class membership information and establishment of fuzzy inference rules. The excitation intensity of each rule was used as the input of T-S fuzzy classifier to classify the input signals. The FRBAIN can adaptively establish fuzzy set membership functions, fuzzy inference, and classification rules based on the learning of sample set, realize structural and data constraints of the model, and improve the modeling properties of imbalanced datasets. In this paper, the properties of FRBAIN were analyzed and a comprehensive learning algorithm was established. Experimental validation was performed with classification diagnoses from four complex cardiovascular diseases based on 12-lead ECG signals. Results demonstrated that, in the case of small-scale imbalanced datasets, the proposed method significantly improved both classification accuracy and generalizability comparing with other methods in the experiment. A fuzzy radial basis adaptive inference network (FRBAIN) is proposed for multichannel time-varying signal fusion analysis and feature knowledge embedding. The model which combines the prior signal feature embedding mechanism of the radial basis kernel function with the rule-based logic inference ability of fuzzy system is composed of a multichannel time-varying signal input layer, a radial basis fuzzification layer, a rule layer, a regularization layer, and a T-S fuzzy classifier layer. The dynamic fuzzy clustering algorithm was used to divide the sample set pattern class into several subclasses with similar features. The fuzzy radial basis neurons (FRBNs) were defined and used as parameterized membership functions, and typical feature samples of each pattern subclass were used as kernel centers of the FRBN to realize the embedding of the diverse prior feature knowledge and the fuzzification of the input signals. According to the signal categories of FRBN kernel centers, nodes in the rule layer were selectively connected with nodes in the FRBN layer. A fuzzy multiplication operation was used to achieve synthesis of pattern class membership information and establishment of fuzzy inference rules. The excitation intensity of each rule was used as the input of T-S fuzzy classifier to classify the input signals. The FRBAIN can adaptively establish fuzzy set membership functions, fuzzy inference, and classification rules based on the learning of sample set, realize structural and data constraints of the model, and improve the modeling properties of imbalanced datasets. In this paper, the properties of FRBAIN were analyzed and a comprehensive learning algorithm was established. Experimental validation was performed with classification diagnoses from four complex cardiovascular diseases based on 12-lead ECG signals. Results demonstrated that, in the case of small-scale imbalanced datasets, the proposed method significantly improved both classification accuracy and generalizability comparing with other methods in the experiment.A fuzzy radial basis adaptive inference network (FRBAIN) is proposed for multichannel time-varying signal fusion analysis and feature knowledge embedding. The model which combines the prior signal feature embedding mechanism of the radial basis kernel function with the rule-based logic inference ability of fuzzy system is composed of a multichannel time-varying signal input layer, a radial basis fuzzification layer, a rule layer, a regularization layer, and a T-S fuzzy classifier layer. The dynamic fuzzy clustering algorithm was used to divide the sample set pattern class into several subclasses with similar features. The fuzzy radial basis neurons (FRBNs) were defined and used as parameterized membership functions, and typical feature samples of each pattern subclass were used as kernel centers of the FRBN to realize the embedding of the diverse prior feature knowledge and the fuzzification of the input signals. According to the signal categories of FRBN kernel centers, nodes in the rule layer were selectively connected with nodes in the FRBN layer. A fuzzy multiplication operation was used to achieve synthesis of pattern class membership information and establishment of fuzzy inference rules. The excitation intensity of each rule was used as the input of T-S fuzzy classifier to classify the input signals. The FRBAIN can adaptively establish fuzzy set membership functions, fuzzy inference, and classification rules based on the learning of sample set, realize structural and data constraints of the model, and improve the modeling properties of imbalanced datasets. In this paper, the properties of FRBAIN were analyzed and a comprehensive learning algorithm was established. Experimental validation was performed with classification diagnoses from four complex cardiovascular diseases based on 12-lead ECG signals. Results demonstrated that, in the case of small-scale imbalanced datasets, the proposed method significantly improved both classification accuracy and generalizability comparing with other methods in the experiment. |
| Audience | Academic |
| Author | Wu, Lu Liu, Kun Yang, Ruiping Huang, Long Xu, Shaohua |
| AuthorAffiliation | 1 College of Computer Science and Engineering, Shandong University of Science and Technology, Qingdao 266590, Shandong Province, China 2 Shandong Computer Science Center (National Supercomputer Center in Jinan), Jinan 250014, Shandong Province, China |
| AuthorAffiliation_xml | – name: 1 College of Computer Science and Engineering, Shandong University of Science and Technology, Qingdao 266590, Shandong Province, China – name: 2 Shandong Computer Science Center (National Supercomputer Center in Jinan), Jinan 250014, Shandong Province, China |
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| Cites_doi | 10.1109/tcyb.2018.2838573 10.1109/9.802914 10.21629/JSEE.2017.01.18 10.1016/j.procs.2017.11.283 10.1109/EMBC.2018.8512757 10.1142/s0218001499000604 10.1109/JAS.2020.1003417 10.1145/3123266.3123433 10.21608/mjeer.2017.63423 10.1109/FUZZ-IEEE.2016.7738006 10.1016/j.eswa.2009.06.022 10.1016/j.ssci.2017.10.025 10.1109/TCYB.2015.2457894 10.1007/s13042-018-0792-y 10.1109/tmech.2020.2987963 10.1007/s10489-019-01626-x 10.1016/j.sigpro.2014.09.011 10.1016/j.eswa.2017.11.001 10.1109/ACCESS.2019.2946599 10.1016/0098-3004(84)90020-7 10.1007/s11760-017-1146-z 10.1016/j.oceaneng.2005.02.001 10.1109/JIOT.2019.2958185 10.1016/j.ins.2020.04.009 10.1007/978-3-319-08010-9_33 10.1145/3219819.3220068 10.1109/91.940970 10.1109/72.641471 10.1016/j.eswa.2014.09.041 10.1142/s0218213012400209 10.1016/j.procs.2020.03.288 10.1109/ACCESS.2017.2779939 10.1007/978-3-540-74048-3_4 10.1023/a:1024068626366 |
| ContentType | Journal Article |
| Copyright | Copyright © 2021 Long Huang et al. COPYRIGHT 2021 John Wiley & Sons, Inc. Copyright © 2021 Long Huang et al. This is an open access article distributed under the Creative Commons Attribution License (the “License”), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited. Notwithstanding the ProQuest Terms and Conditions, you may use this content in accordance with the terms of the License. https://creativecommons.org/licenses/by/4.0 Copyright © 2021 Long Huang et al. 2021 |
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| Snippet | A fuzzy radial basis adaptive inference network (FRBAIN) is proposed for multichannel time-varying signal fusion analysis and feature knowledge embedding. The... A fuzzy radial basis adaptive inference network (FRBAIN) is proposed for multichannel time‐varying signal fusion analysis and feature knowledge embedding. The... |
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| StartPage | 5528291 |
| SubjectTerms | Algorithms Cardiovascular diseases Classification Classifiers Clustering Constraint modelling Data mining Datasets EKG Electrocardiogram Electrocardiography Embedding Fuzzy logic Fuzzy sets Inference Kernel functions Machine learning Multiplication Neural networks Neurons Nodes Regularization Signal classification |
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| Title | A Fuzzy Radial Basis Adaptive Inference Network and Its Application to Time-Varying Signal Classification |
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