Second order cone relaxations for quantum Max Cut
F. Huber, K. Thompson, O. Parekh, S. Gharibian, ArXiv:2411.04120 (2024).
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Huber, Felix;
Thompson, Kevin;
Parekh, Ojas;
Gharibian, SevagLibreCat
Abstract
Quantum Max Cut (QMC), also known as the quantum anti-ferromagnetic
Heisenberg model, is a QMA-complete problem relevant to quantum many-body
physics and computer science. Semidefinite programming relaxations have been
fruitful in designing theoretical approximation algorithms for QMC, but are
computationally expensive for systems beyond tens of qubits. We give a second
order cone relaxation for QMC, which optimizes over the set of mutually
consistent three-qubit reduced density matrices. In combination with Pauli
level-$1$ of the quantum Lasserre hierarchy, the relaxation achieves an
approximation ratio of $0.526$ to the ground state energy. Our relaxation is
solvable on systems with hundreds of qubits and paves the way to
computationally efficient lower and upper bounds on the ground state energy of
large-scale quantum spin systems.
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Journal Title
arXiv:2411.04120
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Cite this
Huber F, Thompson K, Parekh O, Gharibian S. Second order cone relaxations for quantum Max Cut. arXiv:241104120. Published online 2024.
Huber, F., Thompson, K., Parekh, O., & Gharibian, S. (2024). Second order cone relaxations for quantum Max Cut. In arXiv:2411.04120.
@article{Huber_Thompson_Parekh_Gharibian_2024, title={Second order cone relaxations for quantum Max Cut}, journal={arXiv:2411.04120}, author={Huber, Felix and Thompson, Kevin and Parekh, Ojas and Gharibian, Sevag}, year={2024} }
Huber, Felix, Kevin Thompson, Ojas Parekh, and Sevag Gharibian. “Second Order Cone Relaxations for Quantum Max Cut.” ArXiv:2411.04120, 2024.
F. Huber, K. Thompson, O. Parekh, and S. Gharibian, “Second order cone relaxations for quantum Max Cut,” arXiv:2411.04120. 2024.
Huber, Felix, et al. “Second Order Cone Relaxations for Quantum Max Cut.” ArXiv:2411.04120, 2024.