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Artificial neural networks for simulating wind effects on sprinkler distribution patterns

机译:人工神经网络,模拟风对喷头分布模式的影响

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A new approach based on Artificial Neural Networks (ANNs) is presented to simulate the effects of wind on the distribution pattern of a single sprinkler under a center pivot or block irrigation system. Field experiments were performed under various wind conditions (speed and direction). An experimental data from different distribution patterns using a Nelson R3000 Rotator? sprinkler have been split into three and used for model training, validation and testing. Parameters affecting the distribution pattern were defined. To find an optimal structure, various networks with different architectures have been trained using an Early Stopping method. The selected structure produced R2= 0.929 and RMSE = 6.69 mL for the test subset, consisting of a Multi-Layer Perceptron (MLP) neural network with a backpropagation training algorithm; two hidden layers (twenty neurons in the first hidden layer and six neurons in the second hidden layer) and a tangent-sigmoid transfer function. This optimal network was implemented in MATLAB? to develop a model termed ISSP (Intelligent Simulator of Sprinkler Pattern). ISSP uses wind speed and direction as input variables and is able to simulate the distorted distribution pattern from a R3000 Rotator? sprinkler with reasonable accuracy (R2> 0.935). Results of model evaluation confirm the accuracy and robustness of ANNs for simulation of a single sprinkler distribution pattern under real field conditions.
机译:提出了一种基于人工神经网络(ANN)的新方法来模拟风对中心枢轴或块状灌溉系统下单个洒水喷头分布模式的影响。在各种风况(速度和风向)下进行了野外实验。使用Nelson R3000 Rotator从不同分布模式获得的实验数据?洒水喷头已分为三部分,用于模型训练,验证和测试。定义了影响分布模式的参数。为了找到最佳的结构,已经使用早期停止方法对具有不同体系结构的各种网络进行了训练。选定的结构为测试子集产生R2 = 0.929和RMSE = 6.69 mL,该结构由具有反向传播训练算法的多层感知器(MLP)神经网络组成;两个隐藏层(第一个隐藏层中的二十个神经元和第二个隐藏层中的六个神经元)和切线-S型传递函数。这个最佳网络是在MATLAB中实现的?开发称为ISSP(洒水模式的智能模拟器)的模型。 ISSP使用风速和风向作为输入变量,是否能够模拟R3000转子的扭曲分布模式?喷头精度合理(R2> 0.935)。模型评估的结果证实了人工神经网络在真实现场条件下模拟单个洒水喷洒模式的准确性和鲁棒性。

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