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Giorgi Oniani

Publications and source records attributed to Giorgi Oniani.

4 recordsLinked to original sources

Sharp Weak Type Estimates for Maximal Operators associated to Rare Bases

Let $\mathcal{B}$ denote a nonempty translation invariant collection of intervals in $\mathbb{R}^n$ (which we regard as a rare basis), and define the associated geometric maximal operator $M_\mathcal{B}$ by $$M_\mathcal{B}f(x) = \sup_{x \in R \in \mathcal{B}} \frac{1}{|R|}\int_R |f|.$$ We provide a sufficient condition on $\mathcal{B}$ so that the estimate $$ |\{x \in \mathbb{R}^n : M_{\mathcal{B}}f(x) > α\}|\leq C_n \int_{\mathbb{R}^{n}} \frac{|f|}α\left(1+\log^+\frac{|f|}α\right)^{n-1} $$ is sharp. As a corollary we obtain sharp weak type estimates for maximal operators associated to several classes of rare bases including Córdoba, Soria and Zygmund bases.

math.CA

On Sjölin-Soria-Antonov type extrapolation for locally compact groups

Sjölin-Soria-Antonov type extrapolation theorem for locally compact $σ$-compact non-discrete groups is proved. As an application of this result it is shown that the Fourier series with respect to the Vilenkin orthonormal systems on the Vilenkin groups of bounded type converge almost everywhere for functions from the class $L\log^{+}L\log^{+}\log^{+}\log^{+}L$.

math.CA

On the divergence of subsequences of partial Walsh-Fourier sums

A class of increasing sequences of natural numbers $(n_k)$ is found for which there exists a function $f\in L[0,1)$ such that the subsequence of partial Walsh-Fourier sums $(S_{n_k}(f))$ diverge everywhere. A condition for the growth order of a function $φ:[0,\infty)\rightarrow[0,\infty)$ is given fulfilment of which implies an existence of above type function $f$ in the class $φ(L)[0,1)$.

math.AP

On the differentiation of integrals with respect to translation invariant convex density bases

For a translation invariant convex density basis $B$ it is shown that its Busemann-Feller extension $B_{\mathrm{BF}}$ has close to $B$ properties, in particular, $B_{\mathrm{BF}}$ differentiates the same class of non-negative functions as $B$. Using the similarity between properties of the bases $B$ and $B_{\mathrm{BF}}$ some results known for Busemann-Feller bases are transferred to bases without restriction of being Busemann-Feller.

math.CA