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Research Articles

Regularized Nyström Subsampling in Covariate Shift Domain Adaptation Problems

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Pages 165-188 | Received 03 Sep 2023, Accepted 05 Feb 2024, Published online: 23 Feb 2024
 

Abstract

The unsupervised domain adaptation problem with covariate shift assumption is considered. Within the framework of the Reproducing Kernel Hilbert Space concept, an algorithm is constructed that is a combination of the Nyström subsampling and the iterated Tikhonov regularization. This approach allows significantly reduce the amount of computing resources involved and at the same time achieves the minimal (by order) approximation accuracy under the big data settings.

Additional information

Funding

The authors acknowledge partial financial support due to the project “Mathematical modeling of complex dynamical systems and processes caused by the state security” (Reg. No. 0123U100853).

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