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arXiv · 1908.01020

Optimal Separation and Strong Direct Sum for Randomized Query Complexity

Abstract

We establish two results regarding the query complexity of bounded-error randomized algorithms. * Bounded-error separation theorem. There exists a total function $f : \{0,1\}^n \to \{0,1\}$ whose $ε$-error randomized query complexity satisfies $\overline{\mathrm{R}}_ε(f) = Ω( \mathrm{R}(f) \cdot \log\frac1ε)$. * Strong direct sum theorem. For every function $f$ and every $k \ge 2$, the randomized query complexity of computing $k$ instances of $f$ simultaneously satisfies $\overline{\mathrm{R}}_ε(f^k) = Θ(k \cdot \overline{\mathrm{R}}_{\fracεk}(f))$. As a consequence of our two main results, we obtain an optimal superlinear direct-sum-type theorem for randomized query complexity: there exists a function $f$ for which $\mathrm{R}(f^k) = Θ( k \log k \cdot \mathrm{R}(f))$. This answers an open question of Drucker (2012). Combining this result with the query-to-communication complexity lifting theorem of Göös, Pitassi, and Watson (2017), this also shows that there is a total function whose public-coin randomized communication complexity satisfies $\mathrm{R}^{\mathrm{cc}} (f^k) = Θ( k \log k \cdot \mathrm{R}^{\mathrm{cc}}(f))$, answering a question of Feder, Kushilevitz, Naor, and Nisan (1995).

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BibTeXRIS

Eric Blais, Joshua Brody. 2019-08-02. Optimal Separation and Strong Direct Sum for Randomized Query Complexity. https://doi.org/10.4230/lipics.ccc.2019.29

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