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STOCHASTIC ADAPTIVE SWITCHING CONTROL BASED ON MULTIPLE MODELS

机译:基于多种模型的随机自适应切换控制

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摘要

It is well known that the transient behaviors of the traditional adaptive control may be very poor in general, and that the adaptive control designed based on switching between multiple models is an intuitively appealing and practically feasible approach to improve the transient perfor-mances. This paper proves that for a typical class of linear systems disturbed by white noises, the multiple model based least-squares (LS) adaptive switching control is stable and convergent, and has the same convergence rate as that established for the standard least-squares-based self-tuning regulators. Moreover, the mixed case combining adaptive models with fixed models is also considered.
机译:众所周知,传统的自适应控制的瞬态行为通常可能非常差,并且基于在多个模型之间切换而设计的自适应控制是一种改善瞬态性能的直观吸引人且实际可行的方法。本文证明,对于典型的一类受白噪声干扰的线性系统,基于多模型的最小二乘(LS)自适应切换控制是稳定且收敛的,并且收敛速度与为标准最小二乘建立的收敛速度相同。基于自整定的调节器。此外,还考虑了将自适应模型与固定模型相结合的混合案例。

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