Entropy-driven entanglement forging

Fuente: arXiv
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Hauptverfasser: Pérez-Obiol, Axel, Masot-Llima, Sergi, Romero, Antonio M., Menéndez, Javier, Rios, Arnau, García-Sáez, Artur, Juliá-Díaz, Bruno
Format: Preprint
Veröffentlicht: 2024
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author Pérez-Obiol, Axel
Masot-Llima, Sergi
Romero, Antonio M.
Menéndez, Javier
Rios, Arnau
García-Sáez, Artur
Juliá-Díaz, Bruno
author_facet Pérez-Obiol, Axel
Masot-Llima, Sergi
Romero, Antonio M.
Menéndez, Javier
Rios, Arnau
García-Sáez, Artur
Juliá-Díaz, Bruno
contents Simulating physical systems with variational quantum algorithms is a well-studied approach, but it is challenging to implement in current devices due to demands in qubit number and circuit depth. We show how limited knowledge of the system, namely the entropy of its subsystems, its entanglement structure or certain symmetries, can be used to reduce the cost of these algorithms with entanglement forging. To do so, we simulate a Fermi-Hubbard one-dimensional chain with a parametrized hopping term, as well as atomic nuclei ${}^{28}$Ne and ${}^{60}$Ti with the nuclear shell model. Using an adaptive variational quantum eigensolver we find significant reductions in both the maximum number of qubits (up to one fourth) and the amount of two-qubit gates (over an order of magnitude) required in the quantum circuits. Our findings indicate that our method, entropy-driven entanglement forging, can be used to adjust quantum simulations to the limitations of noisy intermediate-scale quantum devices.
format Preprint
id arxiv_https___arxiv_org_abs_2409_04510
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Entropy-driven entanglement forging
Pérez-Obiol, Axel
Masot-Llima, Sergi
Romero, Antonio M.
Menéndez, Javier
Rios, Arnau
García-Sáez, Artur
Juliá-Díaz, Bruno
Quantum Physics
Nuclear Theory
Simulating physical systems with variational quantum algorithms is a well-studied approach, but it is challenging to implement in current devices due to demands in qubit number and circuit depth. We show how limited knowledge of the system, namely the entropy of its subsystems, its entanglement structure or certain symmetries, can be used to reduce the cost of these algorithms with entanglement forging. To do so, we simulate a Fermi-Hubbard one-dimensional chain with a parametrized hopping term, as well as atomic nuclei ${}^{28}$Ne and ${}^{60}$Ti with the nuclear shell model. Using an adaptive variational quantum eigensolver we find significant reductions in both the maximum number of qubits (up to one fourth) and the amount of two-qubit gates (over an order of magnitude) required in the quantum circuits. Our findings indicate that our method, entropy-driven entanglement forging, can be used to adjust quantum simulations to the limitations of noisy intermediate-scale quantum devices.
title Entropy-driven entanglement forging
topic Quantum Physics
Nuclear Theory
url https://arxiv.org/abs/2409.04510