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Fault-Diagnosis Method Based on Support Vector Machine and Artificial Immune for Batch Process

Fault-Diagnosis Method Based on Support Vector Machine and Artificial Immune for Batch Process
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摘要 A new fault-diagnosis method to be used in batch processes based on multi-phase regression is presented to overcome the difficulty arising in the processes due to non-uniform sample data in each phase.Support vector machine is first used for phase identification,and for each phase,improved artificial immune network is developed to analyze and recognize fault patterns.A new cell elimination role is proposed to enhance the incremental clustering capability of the immune network.The proposed method has been applied to glutamic acid fermentation,comparison results have indicated that the proposed approach can better classify fault samples and yield higher diagnosis precision. A new fault-diagnosis method to be used in batch processes based on multi-phase regression is presented to overcome the difficulty arising in the processes due to non-uniform sample data in each phase.Support vector machine is first used for phase identification,and for each phase,improved artificial immune network is developed to analyze and recognize fault patterns.A new cell elimination role is proposed to enhance the incremental clustering capability of the immune network.The proposed method has been applied to glutamic acid fermentation,comparison results have indicated that the proposed approach can better classify fault samples and yield higher diagnosis precision.
机构地区 School of Automation
出处 《Journal of Beijing Institute of Technology》 EI CAS 2010年第3期337-342,共6页 北京理工大学学报(英文版)
基金 Sponsored by the Research Foundation of Beijing Institute of Technology (20080642001)
关键词 fault diagnosis support vector machine artificial immune batch process fault diagnosis support vector machine artificial immune batch process
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参考文献12

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