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The BP Neural Network Model of Soil Water-Salt Dynamic State Analysis

机译:土壤水盐动态态分析的BP神经网络模型

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With the survey data of Luohui Canal Irrigation District, Shaanxi, China as the example, we employed the three-layer feed forward BP network modeling method to study the soil water-salt dynamic state under the comprehensive conditions of the irrigation district, and adopted the Additional Momentum Method and Self-adaptive Learning-rate Adjustment Strategy to modify the back propagation algorithm; on this basis, we employed the default-factor testing method to analyze the sensitivity degrees of soil salt content and soil alkalinity to every factor in the input layer. The results show this model has a high accuracy and can characterize effectively the internal relationships between the change of farmland soil water-salt dynamic state at a shallow water table during crop growth period and its influential factors. Soil moisture content, groundwater salt content and groundwater evaporating capacity are main sensitive factors of soil water-salt dynamic state; the factors interact and affect each other, giving rise to a coupling relationship under complex conditions. Combining the above methods can provide a feasible and effective approach to study the law of soil water-salt dynamic state under a shallow water table during crop growth period, which is a supplement to and improvement in conventional research methods for soil water-salt dynamic state.
机译:随着中国陕西州罗湖运河灌溉区的调查数据为例,我们采用了三层饲料前进BP网络建模方法,研究了灌区综合条件下的土壤水盐动态状态,采用了额外的势头方法和自适应学习速率调整策略来修改后传播算法;在此基础上,我们采用了违约因素测试方法,分析了对输入层中的每个因素的土壤盐含量和土壤碱度的敏感度。结果表明,该型号具有高精度,可有效地表征农田在作物生长期浅水台处的农田土壤水盐动态状态变化与其影响因素之间的变化。土壤含水量,地下水含量和地下水蒸发能力是土壤水盐动态状态的主要敏感因素;因素相互作用并影响彼此,在复杂条件下产生耦合关系。结合上述方法可以提供可行有效的方法来研究作物生长期下浅水表下的土壤水盐动力学定律,这是对土壤水盐动态状态传统研究方法的补充和改进。

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