Divide-and-Conquer Simulation of Open Quantum Systems

Fuente: arXiv
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Main Authors: Azevedo, Thiago Melo D., Almeida, Caio, Linck, Pedro, da Silva, Adenilton J., Bernardes, Nadja K.
Format: Preprint
Published: 2025
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author Azevedo, Thiago Melo D.
Almeida, Caio
Linck, Pedro
da Silva, Adenilton J.
Bernardes, Nadja K.
author_facet Azevedo, Thiago Melo D.
Almeida, Caio
Linck, Pedro
da Silva, Adenilton J.
Bernardes, Nadja K.
contents One of the promises of quantum computing is to simulate physical systems efficiently. However, the simulation of open quantum systems - where interactions with the environment play a crucial role - remains challenging for quantum computing, as it is impossible to implement deterministically non-unitary operators on a quantum computer without auxiliary qubits. The Stinespring dilation can simulate an open dynamic but requires a high circuit depth, which is impractical for NISQ devices. An alternative approach is parallel probabilistic block-encoding methods, such as the Sz.-Nagy and Singular Value Decomposition dilations. These methods result in shallower circuits but are hybrid methods, and we do not simulate the quantum dynamic on the quantum computer. In this work, we describe a divide-and-conquer strategy for preparing mixed states to combine the output of each Kraus operator dilation and obtain the complete dynamic on quantum hardware with a lower circuit depth. The work also introduces a balanced strategy that groups the original Kraus operators into an expanded operator, leading to a trade-off between circuit depth, CNOT count, and number of qubits. We perform a computational analysis to demonstrate the advantages of the new method and present a proof-of-concept simulation of the Fenna-Matthews-Olson dynamic on current quantum hardware.
format Preprint
id arxiv_https___arxiv_org_abs_2505_01623
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Divide-and-Conquer Simulation of Open Quantum Systems
Azevedo, Thiago Melo D.
Almeida, Caio
Linck, Pedro
da Silva, Adenilton J.
Bernardes, Nadja K.
Quantum Physics
Emerging Technologies
One of the promises of quantum computing is to simulate physical systems efficiently. However, the simulation of open quantum systems - where interactions with the environment play a crucial role - remains challenging for quantum computing, as it is impossible to implement deterministically non-unitary operators on a quantum computer without auxiliary qubits. The Stinespring dilation can simulate an open dynamic but requires a high circuit depth, which is impractical for NISQ devices. An alternative approach is parallel probabilistic block-encoding methods, such as the Sz.-Nagy and Singular Value Decomposition dilations. These methods result in shallower circuits but are hybrid methods, and we do not simulate the quantum dynamic on the quantum computer. In this work, we describe a divide-and-conquer strategy for preparing mixed states to combine the output of each Kraus operator dilation and obtain the complete dynamic on quantum hardware with a lower circuit depth. The work also introduces a balanced strategy that groups the original Kraus operators into an expanded operator, leading to a trade-off between circuit depth, CNOT count, and number of qubits. We perform a computational analysis to demonstrate the advantages of the new method and present a proof-of-concept simulation of the Fenna-Matthews-Olson dynamic on current quantum hardware.
title Divide-and-Conquer Simulation of Open Quantum Systems
topic Quantum Physics
Emerging Technologies
url https://arxiv.org/abs/2505.01623