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Simultaneous Multiresponse Optimization of the Medium for Submerged Fermenting Cordyceps Gunnii Mycelia Using Genetic Algorithm

机译:遗传算法对淹没冬虫夏草菌丝体培养基的同时多响应优化

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An experimental mixture design coupled with data analysis by means of genetic algorithm-artificial neural network (GA-ANN) was applied to optimize the fermentation medium of Cordyceps gunnii Mycelia for enhancing the yields of the intracellular polysaccharide. With the yield rate of intracellular polysaccharide as index, a sequential statistical strategy was investigated during this optimization process, which consisted of Plackett-Burman design (PBD), Box-Behnken design (BBD), Multi-quadratic regression (MQR), artificial neuron networks (ANN) and genetic algorithm (GA). PBD combined with linear modeling method was used for identifying the significant components, BBD was used for further optimization. MQR and ANN were used for modeling the BBD data. While the ANN model was developed, genetic algorithm (GA) was employed to search for the optimum medium which was as follow (g/L): lactose 29.81, beef extract 17.28, KH2PO4¡¤5H2O 3.0, MgSO4¡¤7H2O 2.0, NaCl 0.003 and VB1 0.271, with expected maximum yield rate of 0.1.213. Under the optimal conditions, the corresponding response value predicted for the intracellular polysaccharide yield rate was 1.201 g×g-1, which was confirmed by validation experiments.
机译:通过遗传算法-人工神经网络(GA-ANN)结合数据分析的实验混合物设计,优化了冬虫夏草菌丝体的发酵培养基,提高了胞内多糖的得率。以细胞内多糖的得率为指标,在该优化过程中研究了一种顺序统计策略,包括Plackett-Burman设计(PBD),Box-Behnken设计(BBD),多二次回归(MQR),人工神经元网络(ANN)和遗传算法(GA)。 PBD结合线性建模方法用于识别重要成分,BBD用于进一步优化。 MQR和ANN用于建模BBD数据。在建立神经网络模型的同时,采用遗传算法(GA)寻找最佳培养基(g / L):乳糖29.81,牛肉提取物17.28,KH2PO4·5H2O 3.0,MgSO4·7H2O 2.0,NaCl 0.003和VB1 0.271,预期最大产率为0.1.213。在最佳条件下,预测的细胞内多糖得率对应的响应值为1.201 g×g-1,这已通过验证实验得到证实。

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