Fault-tolerant compiling of classically hard IQP circuits on hypercubes
Dominik Hangleiter, Marcin Kalinowski, Dolev Bluvstein, Madelyn Cain, Nishad Maskara, Xun Gao, Aleksander Kubica, Mikhail D. Lukin, Michael J. Gullans

TL;DR
This paper presents a hardware-efficient, fault-tolerant method for implementing complex IQP quantum circuits on hypercube architectures, combining error correction, co-design, and theoretical analysis to demonstrate classical hardness and scalability.
Contribution
It introduces a novel fault-tolerant compilation approach for IQP circuits using specific quantum error-detecting codes tailored for hypercube hardware architectures.
Findings
Sampling from hypercube IQP circuits is classically hard to simulate.
The linear cross-entropy benchmark effectively verifies quantum sampling.
Bell sampling from degree-4 IQP circuits is efficiently validated and intractable classically.
Abstract
Realizing computationally complex quantum circuits in the presence of noise and imperfections is a challenging task. While fault-tolerant quantum computing provides a route to reducing noise, it requires a large overhead for generic algorithms. Here, we develop and analyze a hardware-efficient, fault-tolerant approach to realizing complex sampling circuits. We co-design the circuits with the appropriate quantum error correcting codes for efficient implementation in a reconfigurable neutral atom array architecture, constituting what we call a fault-tolerant compilation of the sampling algorithm. Specifically, we consider a family of quantum error detecting codes whose transversal and permutation gate set can realize arbitrary degree- instantaneous quantum polynomial (IQP) circuits. Using native operations of the code and the atom array hardware, we compile a…
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Taxonomy
TopicsRadiation Effects in Electronics · Quantum Computing Algorithms and Architecture · Interconnection Networks and Systems
