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A Random Forest Approach for Predicting the Microwave Drying Process of Amaranth Seeds

机译:一种预测苋菜种子微波干燥过程的随机森林方法

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In this work, a model has been developed for the prediction of the fundamental variables of the microwave drying process of amaranth seeds, using the initial mass of seeds and the temperature of the process as input data. The model was developed by using the RandomForestRegressor classifier, which is found in the module sklearn.ensemble of the Python programming language. For the training and prediction of the model, the data of the measurements made of the drying time and energy consumption in the drying experiments carried out at three temperatures (35, 45, 55 ° C) in a domestic microwave oven were used, as well as the germination rate of the amaranth seeds obtained in the germination tests. The predictions made by the model have a precision of 99.6% for the drying time, 98.5% for energy consumption and 92.2% for the germination rate of the seeds.
机译:在这项工作中,已经开发了一种模型,用于预测苋菜种子的微波干燥过程的基本变量,使用初始的种子和过程的温度作为输入数据。该模型是通过使用WalneStregrarsor分类器开发的,该分类器在模块Sklearn中找到。蟒蛇编程语言的等义义。对于模型的训练和预测,使用在国内微波炉中的三个温度(35,45,55℃)的干燥实验中由干燥时间和能量消耗制成的测量数据,以及也是如此作为发芽试验中获得的苋菜种子的发芽率。模型的预测具有99.6%的干燥时间,能耗为98.5%,种子萌发率为92.2%。

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