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首页> 外文期刊>International journal of biomathematics >Model penicillin fermentation by least squares support vector machine with tuning based on amended harmony search
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Model penicillin fermentation by least squares support vector machine with tuning based on amended harmony search

机译:基于修正和谐搜索的最小二乘支持向量机建模的青霉素发酵模型。

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摘要

Penicillin fermentation is an important part of microbial fermentation. Due to the existence of error date in the independent variables and dependent variables of the penicillin fermentation sample data, the accuracy of the model of penicillin fermentation is affected. In this paper, an amended harmony search (AHS) algorithm is developed to adjust the hyper- parameters of least squares support vector machine (LS-SVM) in order to build penicillin fermentation process model with prediction accuracy. The AHS algorithm is investigated by unconstrained benchmark functions with different characteristics. Compared with other several optimization approaches, AHS demonstrates a better performance. Moreover, using the simulation data from the PenSim simulation platform to validate the effectiveness of the penicillin fermentation process modeling, experiment results show that the penicillin fermentation process modeling based on the tuned LS-SVM by AHS possesses robustness and generalization ability.
机译:青霉素发酵是微生物发酵的重要组成部分。由于青霉素发酵样品数据的自变量和因变量中存在错误日期,因此会影响青霉素发酵模型的准确性。本文提出了一种修正的和谐搜索(AHS)算法,调整最小二乘支持向量机(LS-SVM)的高参数,以建立具有预测精度的青霉素发酵过程模型。通过具有不同特征的无约束基准函数研究了AHS算法。与其他几种优化方法相比,AHS表现出更好的性能。此外,利用PenSim仿真平台的仿真数据验证了青霉素发酵过程建模的有效性,实验结果表明,基于AHS调整的LS-SVM的青霉素发酵过程建模具有鲁棒性和泛化能力。

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