2008 IEEE International Conference on Fuzzy Systems (IEEE World Congress on Computational Intelligence) 2008
DOI: 10.1109/fuzzy.2008.4630676
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Fuzzy-Neural control of a distributed parameter bioprocess plant

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Cited by 6 publications
(15 citation statements)
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“…The structure of the entire control system, (Baruch et al, 2008a;Baruch et al, 2008b;Baruch et al, 2008c), contained Fuzzyfier, Fuzzy Rule-Based Inference System, containing twenty T-S fuzzy rules (five identification, five sliding mode control, five I-term control, five total control rules), and a defuzzyfier. Due to the learning abilities of the defuzzifier, the exact form of the control membership functions is not need to be known.…”
Section: Description Of the Indirect (Sliding Mode) Decentralized Fuzmentioning
confidence: 99%
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“…The structure of the entire control system, (Baruch et al, 2008a;Baruch et al, 2008b;Baruch et al, 2008c), contained Fuzzyfier, Fuzzy Rule-Based Inference System, containing twenty T-S fuzzy rules (five identification, five sliding mode control, five I-term control, five total control rules), and a defuzzyfier. Due to the learning abilities of the defuzzifier, the exact form of the control membership functions is not need to be known.…”
Section: Description Of the Indirect (Sliding Mode) Decentralized Fuzmentioning
confidence: 99%
“…3. The structure of the entire control system, (Baruch et al, 2008a;Baruch et al, 2008b;Baruch et al, 2008c) contained Fuzzyfier, Fuzzy Rule-Based Inference System (FRBIS), and defuzzyfier. The FRBIS contained five identification, five feedback control, five feedforward control, five I-term control, five total control T-S fuzzy rules (see Fig.…”
Section: Description Of the Direct Decentralized Fuzzy-neural Controlmentioning
confidence: 99%
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