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Set-membership estimation theory for coupled mimo Wiener-like models

机译:耦合mimo Wiener型模型的集合成员估计理论

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In this paper, an approach for identifying coupled multiple-input, multiple-output (MIMO) Wiener-like models is presented. Each multiple-input, single-output (MISO) model structure contained in the MIMO model is parameterized using FInite sets of discrete Laguerre transfer functions followed by High Level Canonical Piecewise Linear (HLCPWL) that represents the static memoryless nonlinear block. For each MISO model, the parameters of the HLCPWL functions are found via Set-membership (SM) estimation theory, under mild error constraints. In this way, each MISO Wiener-like model is described as a set of parameters for the nonlinear static subsystem, whose values are obtained by solving a linear programming problem. The MIMO Wiener-like model structure is then represented as a set of coupled input-output MISO models, converting the identification of a coupled MIMO system into the identification of MISO systems. In order to validate the proposed identification algorithm, an illustrative example is provided.
机译:在本文中,提出了一种识别耦合的多输入,多输出(MIMO)Wiener类模型的方法。 MIMO模型中包含的每个多输入单输出(MISO)模型结构都使用离散Laguerre传递函数的FInite集参数化,后跟代表静态无记忆非线性块的高级规范分段线性(HLCPWL)。对于每个MISO模型,在轻度错误约束下,通过集成员(SM)估计理论可以找到HLCPWL函数的参数。这样,每个类似于MISO Wiener的模型都被描述为非线性静态子系统的一组参数,这些参数的值是通过解决线性规划问题获得的。然后将类似于MIMO Wiener的模型结构表示为一组耦合的输入输出MISO模型,将耦合的MIMO系统的标识转换为MISO系统的标识。为了验证所提出的识别算法,提供了说明性示例。

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