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首页> 外文期刊>Automatica >A data-driven approach to robust control of multivariable systems by convex optimization
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A data-driven approach to robust control of multivariable systems by convex optimization

机译:通过凸优化控制多变量系统的数据驱动方法

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摘要

The frequency-domain data of a multivariable system in different operating points is used to design a robust controller with respect to the measurement noise and multimodel uncertainty. The controller is fully parameterized in terms of matrix polynomial functions and can be formulated as a centralized, decentralized or distributed controller. All standard performance specifications like H-2, H-infinity and loop shaping are considered in a unified framework for continuous- and discrete-time systems. The control problem is formulated as a convex-concave optimization problem and then convexified by linearization of the concave part around an initial controller. The performance criterion converges monotonically to a local optimum or a saddle point in an iterative algorithm. The effectiveness of the method is compared with fixed-structure controller design methods based on non-smooth optimization via multiple simulation examples. (C) 2017 Elsevier Ltd. All rights reserved.
机译:不同操作点中多变量系统的频域数据用于设计相对于测量噪声和多模型不确定性的鲁棒控制器。 根据矩阵多项式函数,控制器完全参数化,并且可以配制为集中式,分散或分布式控制器。 在连续和离散时间系统的统一框架中考虑了H-2,H-Infinity和环形成形等所有标准性能规范。 控制问题被配制为凸凹优化问题,然后通过初始控制器周围的凹部的线性化凸出。 性能标准在迭代算法中单调地收敛到局部最佳或鞍点。 将该方法的有效性与通过多仿真示例的非平滑优化的固定结构控制器设计方法进行比较。 (c)2017 Elsevier Ltd.保留所有权利。

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