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A confluence matrix condition for exponential error convergence in overparametrized adaptive systems

机译:超参数化自适应系统中指数误差收敛的汇合矩阵条件

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Many practical adaptive feedforward systems are overparametrized and, for this reason, will not satisfy persistent excitation (PE) conditions. For these systems, a weaker PE condition is proposed under which it is shown that the while parameters may not converge, the cancellation error (the error between the desired and estimated outputs) still converges exponentially. Bounds are given on the exponential rate of convergence useful for understanding the various tradeoffs and for systematic optimization and design purposes. The convergence rate is determined by properties of the confluence matrix (defined herein) that plays a role similar to that played by the autocorrelation matrix for fully PE systems. As a case study, the structure of the confluence matrix is examined in detail for adaptive systems with a tap delay line (TDL) regressor and sinusoid excitation.
机译:许多实用的自适应前馈系统参数设置过高,因此,它们将无法满足持续激励(PE)条件。对于这些系统,提出了一个较弱的PE条件,在该条件下,虽然参数可能不收敛,但抵消误差(期望输出和估计输出之间的误差)仍然呈指数收敛。给出了指数收敛速度的界线,对理解各种折衷以及系统优化和设计目的很有用。收敛速率由融合矩阵的属性(在此定义)确定,该矩阵的作用类似于完全PE系统的自相关矩阵所发挥的作用。作为案例研究,针对带有抽头延迟线(TDL)回归器和正弦激励的自适应系统,详细检查了汇合矩阵的结构。

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