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Maksym Kyselov

Publications and source records attributed to Maksym Kyselov.

2 recordsLinked to original sources

Numerical Differentiation of Functions of Two Variables Using Chebyshev Polynomials

We investigate the problem of numerical differentiation of bivariate functions from weighted Wiener classes using Chebyshev polynomial expansions. We develop and analyze a new version of the truncation method based on Chebyshev polynomials and the idea of hyperbolic cross to reconstruct partial derivatives of arbitrary order. The method exploits the approximation properties of Chebyshev polynomials and their natural connection to weighted spaces through the Chebyshev weight function. We derive a choice rule for the truncation parameter as a function of the noise level, smoothness parameters of the function class, and the order of differentiation. This approach allows us to establish explicit error estimates in both weighted integral norms and uniform metric.

math.NA

Error Analysis of Truncation Legendre Method for Solving Numerical Differentiation

We study the problem of numerical differentiation of functions from weighted Wiener classes. We construct and analyze a truncation Legendre method to recover arbitrary order derivatives. The main focus is on obtaining error estimates in integral and uniform metrics. Unlike previous studies, which predominantly focused on first-order derivatives and specific functional spaces, we conduct a comprehensive analysis across a wide spectrum of function regularity parameters and various metrics for measuring errors. We establish precise error bounds for the truncation method in the metrics of C and L_q for 2 less than or equal to q less than or equal to infinity, and determine optimal truncation parameters as functions of the error level and smoothness parameters. Our results demonstrate that the truncation method achieves optimal convergence rates on weighted Wiener classes, requiring an optimal number of perturbed Fourier-Legendre coefficients for effective derivative recovery.

math.NA