Universality in the Anticoncentration of Chaotic Quantum Circuits

Fuente: arXiv
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Hauptverfasser: Sauliere, Arman, Magni, Beatrice, Lami, Guglielmo, Turkeshi, Xhek, De Nardis, Jacopo
Format: Preprint
Veröffentlicht: 2025
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author Sauliere, Arman
Magni, Beatrice
Lami, Guglielmo
Turkeshi, Xhek
De Nardis, Jacopo
author_facet Sauliere, Arman
Magni, Beatrice
Lami, Guglielmo
Turkeshi, Xhek
De Nardis, Jacopo
contents We identify a \emph{universal functional form} that governs anticoncentration in random quantum circuits-one that holds across diverse circuit architectures and depths, and crucially remains valid even at finite system sizes and shallow depth. We support this claim through analytical results for ensembles of random tensor-network states and random-phase models. This compact, universal expression for the output bitstring probability distribution is fully characterized by just two fitting parameters, as validated through extensive numerical simulations. Our findings underscore the pivotal role of finite-size and finite-depth effects in shaping anticoncentration and introduce a practical framework for benchmarking quantum devices using shallow circuits, thereby enabling validation of systems significantly larger than previously accessible.
format Preprint
id arxiv_https___arxiv_org_abs_2503_00119
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Universality in the Anticoncentration of Chaotic Quantum Circuits
Sauliere, Arman
Magni, Beatrice
Lami, Guglielmo
Turkeshi, Xhek
De Nardis, Jacopo
Quantum Physics
We identify a \emph{universal functional form} that governs anticoncentration in random quantum circuits-one that holds across diverse circuit architectures and depths, and crucially remains valid even at finite system sizes and shallow depth. We support this claim through analytical results for ensembles of random tensor-network states and random-phase models. This compact, universal expression for the output bitstring probability distribution is fully characterized by just two fitting parameters, as validated through extensive numerical simulations. Our findings underscore the pivotal role of finite-size and finite-depth effects in shaping anticoncentration and introduce a practical framework for benchmarking quantum devices using shallow circuits, thereby enabling validation of systems significantly larger than previously accessible.
title Universality in the Anticoncentration of Chaotic Quantum Circuits
topic Quantum Physics
url https://arxiv.org/abs/2503.00119