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Application of Multi-Objective Optimisation to Process Measurement System Design

机译:多目标优化在过程测量系统设计中的应用

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摘要

Multi-objective optimisation (MOO) has been used with an equation solver data reconciliation software to develop a tool for sensor system design based on modifying the sensitivity matrix of a simulated process. MOO enables searching for the best tradeoff between two conflicting objectives: the cost of the system and the precision of key performance indicators (KPI) (variables that have to be measured or calculated). This methodology has been applied to design the sensor system of a two stage experimental air-water heat pump. Proper knowledge of modelling equations and constants helps to improve the estimation of the precision of variables, and lowers the cost of the system. Compared to single objective optimisation, the MOO strategy increases the number of solutions, yet the precision function still relates to different objectives for each KPI, and its formulation is shown to have an impact on the trade-off obtained.
机译:多目标优化(MOO)已与方程求解器数据协调软件一起使用,以开发基于修改模拟过程的灵敏度矩阵的传感器系统设计工具。 MOO可以在两个相互矛盾的目标之间寻求最佳权衡:系统成本和关键绩效指标(KPI)(必须测量或计算的变量)的精度。该方法已应用于设计两阶段实验性空气-水热泵的传感器系统。对方程式和常数建模的正确了解有助于改进变量精度的估计,并降低系统成本。与单目标优化相比,MOO策略增加了解决方案的数量,但精度函数仍与每个KPI的不同目标相关,并且其制定方式对权衡取舍有影响。

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