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Data-Efficient Active Weighting Algorithm for Composite Adaptive Control Systems

delete2023-05-01
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OA
AI
S
Seong-hun Kim
H
Hanna Lee
N
Namhoon Cho
Y
Youdan Kim *
DOI:10.1109/TAC.2022.3197702delete
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Abstract

Abstract

En 中文
We propose an active weighting algorithm for composite adaptive control to reduce the state and estimate errors while maintaining the estimation quality. Unlike previous studies that construct the composite term by simply stacking, removing, and pausing observed data, the proposed method efficiently utilizes the data by providing a theoretical set of weights for observations that can actively manipulate the composite term to have desired characteristics. As an example, a convex optimization formulation is provided, which maximizes the minimum eigenvalue while keeping other constraints, and an illustrative numerical simulation is also presented.
Keywords:
Eigenvalues and eigenfunctions
Weight measurement
Stacking
Numerical simulation
Numerical models
Lyapunov methods
Estimation
Composite adaptive control
parameter estimation
rank-one update

Journal

IEEE Transactions on Automatic Control cover
IEEE Transactions on Automatic Control
IF:
7
Papers:
1.3W
Citations:
6.7W

Organization

S
seoul national university (snu)
Scholars:
7.2W
Papers: 6.6W
Citations: 86
C
cranfield university
Scholars:
6.3K
Papers: 6.6K
Citations: 1