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Convergence and colored noise issues in bounding ellipsoid identification

机译:边界椭球识别中的收敛性和有色噪声问题

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摘要

The convergence and bias properties of a general class of optimal bounding ellipsoid (OBE) algorithms are discussed. OBE algorithms are set-membership (SM) based identification algorithms which are applied to models which are linear-in-parameters, and are closely related to weighted recursive least square error (WRLS) methods.
机译:讨论了一类最佳的最佳边界椭圆(OBE)算法的收敛性和偏差性质。 OBE算法是基于集成员身份(SM)的识别算法,适用于参数线性模型,并且与加权递归最小二乘误差(WRLS)方法密切相关。

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