JOURNAL ARTICLE

Dynamic Modeling of Biotechnical Process Based on Online Support Vector Machine

Xianfang WangZhiyong DuJindong ChenFeng Pan

Year: 2009 Journal:   Journal of Computers Vol: 4 (3)   Publisher: Academy Publisher

Abstract

Due to the complexity and high non-linearity of biotechnical process, most simple mathematical models cannot describe the behavior of biochemistry systems very well. Therefore, dynamic modeling of biotechnical process is indispensable. Support vector machine (SVM) is a novel machine learning method, which is powerful for the problem characterized by small sample, non-linearity, high dimension and local minima, and has high generalization. But currently most support vector machine regression (SVR) training algorithms are offline, which could not be suit for time-variant system. So an improved SVM called online support vector machine was presented to modeling for the dynamic feature of fermentation process. The model based on the modified SVM was developed and demonstrated using simulation experiments. Some models based on SVM were also presented. The result shows that the modeling based online SVM is superior to modeling based on SVW.

Keywords:
Support vector machine Computer science Process (computing) Generalization Machine learning Artificial intelligence Maxima and minima Feature (linguistics) Relevance vector machine Dimension (graph theory) Structured support vector machine Data mining Pattern recognition (psychology) Mathematics

Metrics

13
Cited By
0.75
FWCI (Field Weighted Citation Impact)
12
Refs
0.79
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Advanced Algorithms and Applications
Physical Sciences →  Engineering →  Control and Systems Engineering
Industrial Technology and Control Systems
Physical Sciences →  Engineering →  Control and Systems Engineering
Advanced Computational Techniques and Applications
Physical Sciences →  Computer Science →  Artificial Intelligence

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