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首页> 外文期刊>African Journal of Agricultural Research >Modeling the terminal velocity of agricultural seeds with artificial neural networks
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Modeling the terminal velocity of agricultural seeds with artificial neural networks

机译:利用人工神经网络对农业种子的终末速度进行建模

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Terminal velocity (TV) is one of the important aerodynamic properties of materials, including seeds of agricultural crops that are necessary to design of pneumatic conveying systems, fluidized bed dryer and cleaning the product from foreign materials. Prior attempts to predict TV utilized various physical and empirical models with various degrees of success. In this study, supervised artificial neural networks (ANN) were used for predicting TV. Experimentally, the TV of rice, chickpea, and lentil seeds were obtained as a function of moisture content and seed size.?TV?was significantly influenced by seed type, moisture content and seed size. Using a combination of input variables, a database of 54 patterns was obtained for training,?verification?and testing of ANN models. The results obtained from this study showed that the ANN models learned the relationship between the three input factors (seed type, moisture content and seed size) and output (TV) successfully, and described the TV of seeds with different shapes extremely well. The best 4-layer ANN model produced a correlation coefficient of 0.997 between the actual and predicted TV. The ANN models compared to mathematical models were able to learn the relationship between dependent and independent variables through the data itself without producing a formula. These benefits significantly reduce the complexity of modeling for TV.
机译:终端速度(TV)是材料的重要空气动力学特性之一,包括设计气动输送系统,流化床干燥器和清洁产品中的异物所必需的农作物种子。先前预测电视的尝试利用了各种物理和经验模型,并取得了不同程度的成功。在这项研究中,监督人工神经网络(ANN)用于预测电视。通过实验,获得了稻米,鹰嘴豆和小扁豆种子的电视,这是水分含量和种子大小的函数。电视类型受种子类型,水分含量和种子大小的影响很大。使用输入变量的组合,获得了54种模式的数据库,用于训练,“验证”和测试ANN模型。从这项研究获得的结果表明,人工神经网络模型成功地了解了三个输入因素(种子类型,水分含量和种子大小)与产量(TV)之间的关系,并且非常好地描述了不同形状的种子的TV。最佳的4层ANN模型在实际电视和预测电视之间产生了0.997的相关系数。与数学模型相比,ANN模型能够通过数据本身了解因变量和自变量之间的关系,而无需产生公式。这些好处大大降低了电视建模的复杂性。

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