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A Control Engineering and System Identification Approach to Improve a Cocoa Biofertilization Process

机译:改善可可生物受精过程的控制工程和系统识别方法

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Agricultural production processes are complex systems with many external and internal variables involved that affect their productivity. From a systems perspective, the performance of these processes could be optimized by finding well validated mathematical models that are capable to describe their behavior. These models have been traditionally obtained via statistical methods that do not account for the time dynamic nature of agricultural processes. This paper presents a system identification and control systems approach to obtain a dynamical model for a cocoa biofertilization experiment that has been developed at the San Rafael farm in Bucay, Ecuador. The experiment is developed using a number of dosage schedules of biofertilizers for different agricultural parcels. External factors, such as ambient temperature and relative humidity, are considered in the estimation. An exhaustive search procedure is proposed to test different model orders for various parametric structures. The model is validated via percentage fits to a different set of data; a correlational residual error analysis is also presented. An improved biofertilizer dosing strategy is developed relying on the obtained model and using model predictive control (MPC) ideas. The control strategy is tested through a simulation study considering the obtained model, and under realistic conditions that resemble those from the original experiment.
机译:农业生产过程是复杂的系统,涉及许多影响其生产率的外部和内部变量。从系统角度看,可以通过找到能够描述其行为的经过验证的数学模型来优化这些过程的性能。这些模型传统上是通过统计方法获得的,这些方法并未考虑到农业过程的时间动态性质。本文提出了一种系统识别和控制系统的方法,以获得可可豆生物受精实验的动力学模型,该模型已在厄瓜多尔布凯的San Rafael农场开发。该实验是针对多种农业用地块,使用多种生物肥料的剂量方案开发的。估算中考虑了外部因素,例如环境温度和相对湿度。提出了穷举搜索程序来测试各种参数结构的不同模型顺序。通过对不同数据集的百分比拟合来验证模型;还提出了相关残差分析。依靠获得的模型并使用模型预测控制(MPC)思想,开发了一种改进的生物肥料计量策略。通过对获得的模型进行仿真研究,并在与原始实验相似的现实条件下,对控制策略进行了测试。

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