Classification of tea specimens using novel hybrid artificial intelligence methods

Two innovative systems based on feed-forward and recurrent neural network used for qualitative analysis has been applied to specimens of different fruit tea. Their performance was compared against the conventional methods of artificial intelligence. The proposed systems are a combination of data pre...

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Published inSensors and actuators. B, Chemical Vol. 192; pp. 117 - 125
Main Authors Pławiak, Paweł, Maziarz, Wojciech
Format Journal Article
LanguageEnglish
Published Elsevier B.V 01.03.2014
Subjects
Online AccessGet full text
ISSN0925-4005
1873-3077
DOI10.1016/j.snb.2013.10.065

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Abstract Two innovative systems based on feed-forward and recurrent neural network used for qualitative analysis has been applied to specimens of different fruit tea. Their performance was compared against the conventional methods of artificial intelligence. The proposed systems are a combination of data preprocessing methods, genetic algorithms and Levenberg–Marquardt (LM) algorithm used for learning feed forward and recurrent neural networks. The initial weights and biases of neural networks chosen by the use of genetic algorithms were then tuned with a LM algorithm. The evaluation was made on the basis of accuracy and complexity criteria. The main advantage of the proposed systems is the elimination of the random selection of the network weights and biases resulting in the increased efficiency of the systems.
AbstractList Two innovative systems based on feed-forward and recurrent neural network used for qualitative analysis has been applied to specimens of different fruit tea. Their performance was compared against the conventional methods of artificial intelligence. The proposed systems are a combination of data preprocessing methods, genetic algorithms and Levenberg-Marquardt (LM) algorithm used for learning feed forward and recurrent neural networks. The initial weights and biases of neural networks chosen by the use of genetic algorithms were then tuned with a LM algorithm. The evaluation was made on the basis of accuracy and complexity criteria. The main advantage of the proposed systems is the elimination of the random selection of the network weights and biases resulting in the increased efficiency of the systems.
Author Maziarz, Wojciech
Pławiak, Paweł
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Keywords Tea
Evolutionary-neural systems
Neural networks
E-nose
Artificial intelligence methods
Hybrid systems
Pattern recognition
Genetic algorithms
Fuzzy systems
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Snippet Two innovative systems based on feed-forward and recurrent neural network used for qualitative analysis has been applied to specimens of different fruit tea....
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SubjectTerms Algorithms
Artificial intelligence
Artificial intelligence methods
E-nose
Evolutionary-neural systems
Expert systems
Fuzzy systems
Genetic algorithms
Hybrid systems
Networks
Neural networks
Pattern recognition
Preprocessing
Recurrent neural networks
Tea
Title Classification of tea specimens using novel hybrid artificial intelligence methods
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