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Some remarks on dimension-free estimates for the discrete Hardy-Littlewood maximal functions (2010.07379v2)

Published 14 Oct 2020 in math.CA

Abstract: Dependencies of the optimal constants in strong and weak type bounds will be studied between maximal functions corresponding to the Hardy--Littlewood averaging operators over convex symmetric bodies acting on $\mathbb Rd$ and $\mathbb Zd$. Firstly, we show, in the full range of $p\in[1,\infty]$, that these optimal constants in $Lp(\mathbb Rd)$ are always not larger than their discrete analogues in $\ellp(\mathbb Zd)$; and we also show that the equality holds for the cubes in the case of $p=1$. This in particular implies that the best constant in the weak type $(1,1)$ inequality for the discrete Hardy--Littlewood maximal function associated with centered cubes in $\mathbb Zd$ grows to infinity as $d\to\infty$, and if $d=1$ it is equal to the largest root of the quadratic equation $12C2-22C+5=0$. Secondly, we prove dimension-free estimates for the $\ellp(\mathbb Zd)$ norms, $p\in(1,\infty]$, of the discrete Hardy--Littlewood maximal operators with the restricted range of scales $t\geq C_q d$ corresponding to $q$-balls, $q\in[2,\infty)$. Finally, we extend the latter result on $\ell2(\mathbb Zd)$ for the maximal operators restricted to dyadic scales $2n\ge C_q d{1/q}$.

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