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Finding subsets of positive measure

Published 9 Aug 2014 in math.LO | (1408.1999v1)

Abstract: An important theorem of geometric measure theory (first proved by Besicovitch and Davies for Euclidean space) says that every analytic set of non-zero $s$-dimensional Hausdorff measure $\mathcal Hs$ contains a closed subset of non-zero (and indeed finite) $\mathcal Hs$-measure. We investigate the question how hard it is to find such a set, in terms of the index set complexity, and in terms of the complexity of the parameter needed to define such a closed set. Among other results, we show that given a (lightface) $\Sigma1_1$ set of reals in Cantor space, there is always a $\Pi0_1(\mathcal{O})$ subset on non-zero $\mathcal Hs$-measure definable from Kleene's $\mathcal O$. On the other hand, there are $\Pi0_2$ sets of reals where no hyperarithmetic real can define a closed subset of non-zero measure.

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