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Optimization to the Culture Conditions for Phellinus Production with Regression Analysis and Gene-Set Based Genetic Algorithm

机译:回归分析和基于基因集的遗传算法优化桑黄生产条件

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摘要

Phellinus is a kind of fungus and is known as one of the elemental components in drugs to avoid cancers. With the purpose of finding optimized culture conditions for Phellinus production in the laboratory, plenty of experiments focusing on single factor were operated and large scale of experimental data were generated. In this work, we use the data collected from experiments for regression analysis, and then a mathematical model of predicting Phellinus production is achieved. Subsequently, a gene-set based genetic algorithm is developed to optimize the values of parameters involved in culture conditions, including inoculum size, PH value, initial liquid volume, temperature, seed age, fermentation time, and rotation speed. These optimized values of the parameters have accordance with biological experimental results, which indicate that our method has a good predictability for culture conditions optimization.
机译:桑黄(Phellinus)是一种真菌,被称为避免癌症的药物中的基本成分之一。为了在实验室中找到用于桑黄生产的最佳培养条件,进行了大量针对单因素的实验,并生成了大量实验数据。在这项工作中,我们使用从实验中收集的数据进行回归分析,然后获得预测桑黄产量的数学模型。随后,开发了一种基于基因集的遗传算法来优化培养条件中涉及的参数值,包括接种量,PH值,初始液体量,温度,种子年龄,发酵时间和旋转速度。这些优化的参数值与生物学实验结果一致,表明我们的方法对于培养条件的优化具有良好的可预测性。

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