arXiv · 2409.04587
Low Depth Phase Oracle Using a Parallel Piecewise Circuit
Abstract
We explore the important task of applying a phase $\exp(i\,f(x))$ to a computational basis state $\left| x \right>$. The closely related task of rotating a target qubit by an angle depending on $f(x)$ is also studied. Such operations are key in many quantum subroutines, and frequently $f(x)$ can be well-approximated by a piecewise function; examples range from the application of diagonal Hamiltonian terms (such as the Coulomb interaction) in grid-based many-body simulation, to derivative pricing algorithms. Here we exploit a parallelisation of the piecewise approach so that all constituent elementary rotations are performed simultaneously, that is, we achieve a total rotation depth of one. Moreover, we explore the use of recursive catalyst `towers' to implement these elementary rotations efficiently. We find that strategies prioritising execution speed can achieve circuit depth as low as $O(\log{n}{+}\log{S})$ for a register of $n$ qubits and a piecewise approximation of $S$ sections (presuming prior preparation of enabling resource states), albeit total qubit count then scales with $S$. In the limit of multiple repetitions of the oracle, we find that catalyst tower approaches have an $O(S\cdot n)$ T-count.
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Zhu Sun, Gregory Boyd, Zhenyu Cai, Hamza Jnane, Balint Koczor, Richard Meister, Romy Minko, Benjamin Pring, Simon C. Benjamin, Nikitas Stamatopoulos. 2024-09-06. Low Depth Phase Oracle Using a Parallel Piecewise Circuit. https://doi.org/10.1103/m32k-7nq2
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