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The Prediction of Greenhouse Temperature and Humidity Based on LM-RBF Network

机译:基于LM-RBF网络的温室温湿度预测。

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In order to improve the accuracy of prediction for the temperature and humidity of the northern greenhouse, this paper proposes a model to predict the temperature and humidity of a greenhouse based on improved LM-RBF. The input data of the model were measured in a greenhouse in Tianjin in March. This model uses the inside and outside meteorological data of the greenhouse as input, and the temperature and humidity in a greenhouse as output. The higher prediction accuracy is obtained by the experimental results, which proved the feasibility of this scheme. This model can be used to forecast the temperature and humidity of a greenhouse and guide the control of the temperature and humidity of a greenhouse.
机译:为了提高北方温室温度和湿度预测的准确性,本文提出了一种基于改进LM-RBF的温室温度和湿度预测模型。该模型的输入数据是在三月份在天津的一个温室中测量的。该模型使用温室的内部和外部气象数据作为输入,并使用温室中的温度和湿度作为输出。实验结果表明,该方法具有较高的预测精度,证明了该方案的可行性。该模型可用于预测温室的温度和湿度,并指导控制温室的温度和湿度。

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