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On Convergence of Oscillatory Ergodic Hilbert Transforms

Published 17 Oct 2016 in math.CA and math.DS | (1610.04968v3)

Abstract: We introduce sufficient conditions on discrete singular integral operators for their maximal truncations to satisfy a sparse bound. The latter imply a range of quantitative weighted inequalities, which are new. As an application, we prove the following ergodic theorem: let $p(t)$ be a Hardy field function which grows "super-linearly" and stays "sufficiently far" from polynomials. We show that for each measure-preserving system, $(X,\Sigma,\mu,\tau)$, with $\tau$ a measure-preserving $\mathbb{Z}$-action, the modulated one-sided ergodic Hilbert transform [ \sum_{n=1}\infty \frac{e{2\pi i p(n)}}{n} \taun f(x) ] converges $\mu$-a.e. for each $f \in Lr(X), \ 1 \leq r < \infty$. This affirmatively answers a question of J. Rosenblatt. In the second part of the paper, we establish almost sure sparse bounds for random one-sided ergodic Hilbert transforms, [ \sum_{n=1}\infty \frac{X_n}{n} \taun f(x), ] where ${ X_n }$ are uniformly bounded, independent, and mean-zero random variables.

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