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A closed-loop particle swarm optimizer for multivariable process controller design

机译:用于多变量过程控制器设计的闭环粒子群优化器

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Design of general multivariable process controllers is an attractive and practical alternative to optimizing design by evolutionary algorithms (EAs) since it can be formulated as an optimization problem. A closed-loop particle swarm optimization (CLPSO) algorithm is proposed by mapping PSO elements into the closed-loop system based on control theories. At each time step, a proportional integral (PI) controller is used to calculate an updated inertia weight for each particle in swarms from its last fitness. With this modification, limitations caused by a uniform inertia weight for the whole population are avoided, and the particles have enough diversity. After the effectiveness, efficiency and robustness are tested by benchmark functions, CLPSO is applied to design a multivariable proportional-integral-derivative (PID) controller for a solvent dehydration tower in a chemical plant and has improved its performances.
机译:一般多变量过程控制器的设计是通过进化算法(EAS)优化设计的有吸引力和实用的替代方案,因为它可以被配制成优化问题。通过基于控制理论将PSO元素映射到闭环系统中来提出闭环粒子群优化(CLPSO)算法。在每个时间步骤中,比例积分(PI)控制器用于从其最后一个健身计算群中的每个粒子的更新的惯性权重。通过这种修改,避免了由整个群体均匀惯性重量引起的限制,并且颗粒具有足够的多样性。在通过基准函数测试的有效性,效率和稳健性之后,CLPSO用于设计用于化工厂的溶剂脱水塔的多变量比例积分 - 衍生物(PID)控制器,并提高了其性能。

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