English

Probabilistic Interpolation of Quantum Rotation Angles

Quantum Physics 2024-03-28 v2

Abstract

Quantum computing requires a universal set of gate operations; regarding gates as rotations, any rotation angle must be possible. However a real device may only be capable of BB bits of resolution, i.e. it might support only 2B2^B possible variants of a given physical gate. Naive discretization of an algorithm's gates to the nearest available options causes coherent errors, while decomposing an impermissible gate into several allowed operations increases circuit depth. Conversely, demanding higher BB can greatly complexify hardware. Here we explore an alternative: Probabilistic Angle Interpolation (PAI). This effectively implements any desired, continuously parametrised rotation by randomly choosing one of three discretised gate settings and postprocessing individual circuit outputs. The approach is particularly relevant for near-term applications where one would in any case average over many runs of circuit executions to estimate expected values. While PAI increases that sampling cost, we prove that a) the approach is optimal in the sense that PAI achieves the least possible overhead and c) the overhead is remarkably modest even with thousands of parametrised gates and only 77 bits of resolution available. This is a profound relaxation of engineering requirements for first generation quantum computers where even 565-6 bits of resolution may suffice and, as we demonstrate, the approach is many orders of magnitude more efficient than prior techniques. Moreover we conclude that, even for more mature late-NISQ hardware, no more than 99 bits will be necessary.

Keywords

Cite

@article{arxiv.2305.19881,
  title  = {Probabilistic Interpolation of Quantum Rotation Angles},
  author = {Bálint Koczor and John Morton and Simon Benjamin},
  journal= {arXiv preprint arXiv:2305.19881},
  year   = {2024}
}

Comments

15 pages, 5 figures -- includes proof of optimality of protocol, generalisation to non-uniform settings etc

R2 v1 2026-06-28T10:52:03.454Z