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Soft-sensing for Leaf Water Potential Based on Micro-environment Factors of Plant

机译:基于植物微环境因素的叶片水潜力软感

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Leaf water potential is the best parameter of estimating plant water status, evaluation from Penman-Monteith transpiration formula or retrieval from remote sensing data has complex calculations, too many parameters, poor transplantations and high costs. This paper selects accessible micro-environment factors of plant as auxiliary variables, and establishes a leaf water potential soft-sensing model with RBF neural network. Simulation result shows that this model is simple and practical, and has higher accuracy. It is one of effective methods estimating plant water status on line.
机译:叶水潜力是估算植物水位的最佳参数,从近遥感数据的Penman-Monteith蒸腾公式的评估或检索具有复杂的计算,参数太多,移植差和高成本。本文选择植物的可访问微环境因子作为辅助变量,并建立了具有RBF神经网络的叶水潜在软感应模型。仿真结果表明,该模型简单实用,精度更高。它是估算植物水位的有效方法之一。

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