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Fuzzy logic model to estimate seasonal pseudo steady state chlorophyll-a concentrations in reservoirs

机译:用模糊逻辑模型估算水库中季节性伪稳态叶绿素a的浓度

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A fuzzy logic model is developed to estimate pseudo steady state chlorophyll-a concentrations in a very large and deep dam reservoir, namely Keban Dam Reservoir, which is also highly spatial and temporal variable. The estimation power of the developed fuzzy logic model was tested by comparing its performance with that from the classical multiple regression model. The data include chlorophyll-a concentrations in Keban lake as a response variable, as well as several water quality variables such as PO_4 phosphorus, NO_3 nitrogen, alkalinity, suspended solids concentration, pH, water temperature, electrical conductivity, dissolved oxygen concentration and Secchi depth as independent environmental variables. Because of the complex nature of the studied water body, as well as non-significant functional relationships among the water quality variables to the chlorophyll-a concentration, an initial analysis is conducted to select the most important variables that can be used in estimating the chlorophyll-a concentrations within the studied water body. Following the outcomes from this initial analysis, the fuzzy logic model is developed to estimate the chlorophyll-a concentrations and the advantages of this new model is demonstrated in model fitting over the traditional multiple regression method.
机译:建立了一个模糊逻辑模型,以估算超大型深水库(即班班水库)的伪稳态叶绿素a浓度,该水库也是时空高度可变的。通过将其性能与经典多元回归模型的性能进行比较,测试了开发的模糊逻辑模型的估计能力。数据包括科班湖中的叶绿素a浓度作为响应变量,以及几个水质变量,例如PO_4磷,NO_3氮,碱度,悬浮固体浓度,pH,水温,电导率,溶解氧浓度和塞奇深度作为独立的环境变量。由于所研究水体的复杂性,以及水质变量与叶绿素a浓度之间的非显着功能关系,因此进行了初步分析,以选择可用于估算叶绿素的最重要变量。 -研究水体中的浓度。根据初步分析的结果,开发了模糊逻辑模型来估计叶绿素-a的浓度,并且该模型的优势在于模型拟合优于传统的多元回归方法。

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