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Frequency domain identification for multivariable motion control systems: Applied to a prototype wafer stage

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arxiv 2503.02869 v1 pith:MBA44AAG submitted 2025-03-04 eess.SY cs.SY

classification eess.SYcs.SY
keywords systemsmultivariablecomplexidentificationmethodmodelmodelsparametric
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Multivariable parametric models are essential for optimizing the performance of high-tech systems. The main objective of this paper is to develop an identification strategy that provides accurate parametric models for complex multivariable systems. To achieve this, an additive model structure is adopted, offering advantages over traditional black-box model structures when considering physical systems. The introduced method minimizes a weighted least-squares criterion and uses an iterative linear regression algorithm to solve the estimation problem, achieving local optimality upon convergence. Experimental validation is conducted on a prototype wafer-stage system, featuring a large number of spatially distributed actuators and sensors and exhibiting complex flexible dynamic behavior, to evaluate performance and demonstrate the effectiveness of the proposed method.

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Cited by 1 Pith paper

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  1. Statistically Optimal Structured Additive MIMO Continuous-time System Identification

    eess.SY 2025-05 conditional novelty 6.0 of 10

    A two-stage instrumental-variable estimator for structured additive MIMO continuous-time systems is proven consistent and asymptotically efficient in open loop, with minimum variance among IV estimators in closed loop.

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