Parameters optimization and application to glutamate fermentation model using SVM (Q1665356)
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scientific article; zbMATH DE number 6926057
| Language | Label | Description | Also known as |
|---|---|---|---|
| English | Parameters optimization and application to glutamate fermentation model using SVM |
scientific article; zbMATH DE number 6926057 |
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Parameters optimization and application to glutamate fermentation model using SVM (English)
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27 August 2018
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Summary: Aimed at the parameters optimization in support vector machine (SVM) for glutamate fermentation modelling, a new method is developed. It optimizes the SVM parameters via an improved particle swarm optimization (IPSO) algorithm which has better global searching ability. The algorithm includes detecting and handling the local convergence and exhibits strong ability to avoid being trapped in local minima. The material step of the method was shown. Simulation experiments demonstrate the effectiveness of the proposed algorithm.
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support vector machine
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improved particle swarm optimization
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0.8454923
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0.8337089
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0.82019126
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0.81929266
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0.8101578
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0.80961615
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