Approximating under the Influence of Quantum Noise and Compute Power
Simon Thelen, Hila Safi, Wolfgang Mauerer

TL;DR
This paper investigates how quantum noise and computational resources impact the performance of QAOA variants through detailed simulations, aiming to inform automated optimization and software design for quantum algorithms.
Contribution
It provides a comprehensive analysis of factors affecting QAOA performance under realistic imperfections, guiding the development of automated tools and abstractions for quantum optimization.
Findings
Strong differences identified between QAOA variants due to specific effects.
Influential co-variables and non-functional goals are pinpointed.
Simulations cover ideal and imperfect quantum scenarios.
Abstract
The quantum approximate optimisation algorithm (QAOA) is at the core of many scenarios that aim to combine the power of quantum computers and classical high-performance computing appliances for combinatorial optimisation. Several obstacles challenge concrete benefits now and in the foreseeable future: Imperfections quickly degrade algorithmic performance below practical utility; overheads arising from alternating between classical and quantum primitives can counter any advantage; and the choice of parameters or algorithmic variant can substantially influence runtime and result quality. Selecting the optimal combination is a non-trivial issue, as it not only depends on user requirements, but also on details of the hardware and software stack. Appropriate automation can lift the burden of choosing optimal combinations for end-users: They should not be required to understand technicalities…
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Taxonomy
TopicsQuantum Mechanics and Applications · Quantum Computing Algorithms and Architecture
