Variation and oscillation inequalities for convolution products
We establish variation and oscillation inequalities for convolution products of probability measures on Z.
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Publications and source records attributed to Anna Savvopoulou.
We establish variation and oscillation inequalities for convolution products of probability measures on Z.
Let $(X,\mathcal{B},m,τ)$ be a dynamical system with $\ds (X,\mathcal{B},m)$ a probability space and $\ds τ$ an invertible, measure preserving transformation. The present paper deals with the almost everywhere convergence in $\ds{L}^1(X)$ of a sequence of operators of weighted averages. Almost everywhere convergence follows once we obtain an appropriate maximal estimate and once we provide a dense class where convergence holds almost everywhere. The weights are given by convolution products of members of a sequence of probability measures $\ds\{ν_i\}$ defined on $\ds\mathbb{Z}$. We then exhibit cases of such averages, where convergence fails.