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Main Authors: Scheer, Moritz, Baiardi, Alberto, Marty, Elisa Bäumer, Wei, Zhi-Yuan, Malz, Daniel
Format: Preprint
Published: 2025
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Online Access:https://arxiv.org/abs/2510.24681
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author Scheer, Moritz
Baiardi, Alberto
Marty, Elisa Bäumer
Wei, Zhi-Yuan
Malz, Daniel
author_facet Scheer, Moritz
Baiardi, Alberto
Marty, Elisa Bäumer
Wei, Zhi-Yuan
Malz, Daniel
contents A key challenge for quantum computers is the efficient preparation of many-body entangled states across many qubits. In this work, we demonstrate the preparation of matrix product states (MPS) using a renormalization-group(RG)-based quantum algorithm on superconducting quantum hardware. Compared to sequential generation, it has been shown that the RG-based protocol asymptotically prepares short-range correlated MPS with an exponentially shallower circuit depth (when scaling system size), but it is not yet clear for which system sizes it starts to convey an advantage. We thus apply this algorithm to prepare a class of MPS exhibiting a phase transition between a symmetry-protected topological (SPT) and a trivial phase for systems of up to 80 qubits. We find that the reduced depth of the RG-based circuits makes them more resilient to noise, and that they generally outperform the sequential circuits for large systems, as we showcase by measuring string-order-like local expectation values and energy densities. We thus demonstrate that the RG-based protocol enables large-scale preparation of MPS and, in particular, SPT-ordered states beyond the fixed point.
format Preprint
id arxiv_https___arxiv_org_abs_2510_24681
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Renormalization-group-based preparation of matrix product states on up to 80 qubits
Scheer, Moritz
Baiardi, Alberto
Marty, Elisa Bäumer
Wei, Zhi-Yuan
Malz, Daniel
Quantum Physics
A key challenge for quantum computers is the efficient preparation of many-body entangled states across many qubits. In this work, we demonstrate the preparation of matrix product states (MPS) using a renormalization-group(RG)-based quantum algorithm on superconducting quantum hardware. Compared to sequential generation, it has been shown that the RG-based protocol asymptotically prepares short-range correlated MPS with an exponentially shallower circuit depth (when scaling system size), but it is not yet clear for which system sizes it starts to convey an advantage. We thus apply this algorithm to prepare a class of MPS exhibiting a phase transition between a symmetry-protected topological (SPT) and a trivial phase for systems of up to 80 qubits. We find that the reduced depth of the RG-based circuits makes them more resilient to noise, and that they generally outperform the sequential circuits for large systems, as we showcase by measuring string-order-like local expectation values and energy densities. We thus demonstrate that the RG-based protocol enables large-scale preparation of MPS and, in particular, SPT-ordered states beyond the fixed point.
title Renormalization-group-based preparation of matrix product states on up to 80 qubits
topic Quantum Physics
url https://arxiv.org/abs/2510.24681