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Dual Lower Bounds for Approximate Degree and Markov-Bernstein Inequalities

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arxiv 1302.6191 v3 pith:LFY6YYVH submitted 2013-02-25 cs.CC

classification cs.CC
keywords degreelowerapproximateboundsdualepsiloninequalitiesboolean
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abstract

The $\epsilon$-approximate degree of a Boolean function $f: \{-1, 1\}^n \to \{-1, 1\}$ is the minimum degree of a real polynomial that approximates $f$ to within $\epsilon$ in the $\ell_\infty$ norm. We prove several lower bounds on this important complexity measure by explicitly constructing solutions to the dual of an appropriate linear program. Our first result resolves the $\epsilon$-approximate degree of the two-level AND-OR tree for any constant $\epsilon > 0$. We show that this quantity is $\Theta(\sqrt{n})$, closing a line of incrementally larger lower bounds. The same lower bound was recently obtained independently by Sherstov using related techniques. Our second result gives an explicit dual polynomial that witnesses a tight lower bound for the approximate degree of any symmetric Boolean function, addressing a question of \v{S}palek. Our final contribution is to reprove several Markov-type inequalities from approximation theory by constructing explicit dual solutions to natural linear programs. These inequalities underly the proofs of many of the best-known approximate degree lower bounds, and have important uses throughout theoretical computer science.

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  1. A Paturi Theorem for Signed Subcube Representations

    cs.CC 2026-08 conditional novelty 7.0 of 10

    For symmetric Boolean functions, approximate signed-subcube weight is 2^Theta(D) and sparsity is 2^Theta(D) log n up to log factors, where D is the deepest transition depth.

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