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JCR 2016
جستجوی مقالات
شنبه 22 آذر 1404
Iranian Journal of Fuzzy Systems
، جلد ۲، شماره ۲، صفحات ۱-۱۳
عنوان فارسی
INTEGRATED ADAPTIVE FUZZY CLUSTERING (IAFC) NEURAL NETWORKS USING FUZZY LEARNING RULES
چکیده فارسی مقاله
The proposed IAFC neural networks have both stability and plasticity because they
use a control structure similar to that of the ART-1(Adaptive Resonance Theory) neural network.
The unsupervised IAFC neural network is the unsupervised neural network which uses the fuzzy
leaky learning rule. This fuzzy leaky learning rule controls the updating amounts by fuzzy
membership values. The supervised IAFC neural networks are the supervised neural networks
which use the fuzzified versions of Learning Vector Quantization (LVQ). In this paper,
several important adaptive learning algorithms are compared from the viewpoint of structure and
learning rule. The performances of several adaptive learning algorithms are compared using
Iris data set.
کلیدواژههای فارسی مقاله
Neural Networks، Fuzzy logic، Fuzzy neural networks، Learning rule، Fuzzification،
عنوان انگلیسی
INTEGRATED ADAPTIVE FUZZY CLUSTERING (IAFC) NEURAL NETWORKS USING FUZZY LEARNING RULES
چکیده انگلیسی مقاله
The proposed IAFC neural networks have both stability and plasticity because they
use a control structure similar to that of the ART-1(Adaptive Resonance Theory) neural network.
The unsupervised IAFC neural network is the unsupervised neural network which uses the fuzzy
leaky learning rule. This fuzzy leaky learning rule controls the updating amounts by fuzzy
membership values. The supervised IAFC neural networks are the supervised neural networks
which use the fuzzified versions of Learning Vector Quantization (LVQ). In this paper,
several important adaptive learning algorithms are compared from the viewpoint of structure and
learning rule. The performances of several adaptive learning algorithms are compared using
Iris data set.
کلیدواژههای انگلیسی مقاله
Neural Networks, Fuzzy logic, Fuzzy neural networks, Learning rule, Fuzzification
نویسندگان مقاله
یونگ soo کیم | yong soo
division of computer engineering, daejeon university, daejeon, 300-716, korea
z zenn bien | zenn bien
department of elecrical engineering and computer science, kaist, daejeon, 305-701, korea
نشانی اینترنتی
http://ijfs.usb.ac.ir/article_477_b026c6b686fee4da511735fefc3be005.pdf
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