arXiv · 2610.01940
Optimal query complexity for fractional quantum evolution
Abstract
Given oracle access to an unknown unitary $U=e^{iH}$ , the fractional query problem asks how many queries are required to implement a noninteger power $U^t=e^{itH}$, $0<t<1$, when the spectrum is separated from the branch cut by a gap $δ$. Quantum singular value transformation gives an upper bound of $O\!\left(\frac{1}δ\log\frac{1}{\varepsilon}\right)$ queries for approximation error $\varepsilon$. We prove a matching lower bound for arbitrary query algorithms. Our argument reduces any $N$-query circuit to the approximation of $e^{itθ}$ by a trigonometric polynomial with degree bounded by $O(N)$, together with Remez inequality. This allows us to establish the lower bound of $Ω_τ\!\left(\frac{1}δ\log\frac{1}{\varepsilon}\right)$. Consequently, the optimal query complexity for fractional query problem is $Θ_τ\!\left(\frac{1}δ\log\frac{1}{\varepsilon}\right)$, showing that the known QSVT construction is asymptotically optimal. We also give an alternative lower bound proof based on constructing a linear functional that annihilates the approximant space, yielding a $Ω_τ\!\left(\log\frac{1}{\varepsilon}\right)$ bound uniform to $δ$.
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Anthony Yuezhang Liu, Adam Wesołowski, Jayne Thompson, Mile Gu, Lirandë Pira. 2026-10-01. Optimal query complexity for fractional quantum evolution. https://arxiv.org/abs/2610.01940
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