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A Marstrand-type restricted projection theorem in $\mathbb{R}^{3}$

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arxiv 1708.04859 v2 pith:UNSXV4CJ submitted 2017-08-16 math.CA math.MG

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keywords mathrmprojectiondimensionhausdorffmathbbtheoremalmostevery
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abstract

Marstrand's projection theorem from $1954$ states that if $K \subset \mathbb{R}^{3}$ is an analytic set, then, for $\mathcal{H}^{2}$ almost every $e \in S^{2}$, the orthogonal projection $\pi_{e}(K)$ of $K$ to the line spanned by $e$ has Hausdorff dimension $\min\{\dim_{\mathrm{H}} K,1\}$. This paper contains the following sharper version of Marstrand's theorem. Let $V \subset \mathbb{R}^{3}$ be any $2$-plane, which is not a subspace. Then, for $\mathcal{H}^{1}$ almost every $e \in S^{2} \cap V$, the projection $\pi_{e}(K)$ has Hausdorff dimension $\min\{\dim_{\mathrm{H}} K,1\}$. For $0 \leq t < \dim_{\mathrm{H}} K$, we also prove an upper bound for the Hausdorff dimension of those vectors $e \in S^{2} \cap V$ with $\dim_{\mathrm{H}} \rho_{e}(K) \leq t < \dim_{\mathrm{H}} K$.

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  1. Universal Sets for Projections

    math.CA 2024-11 conditional novelty 7.0 of 10

    There exist direction sets of Hausdorff dimension zero that are universal for AD-regular planar sets, and direction sets of arbitrarily small positive dimension universal for weakly regular sets.

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