Circuit design for multi-body interactions in superconducting quantum annealing system with applications to a scalable architecture
Nicholas Chancellor, Stefan Zohren, Paul A. Warburton

TL;DR
This paper presents an efficient superconducting circuit design enabling multi-body interactions in quantum annealing systems, facilitating scalable architectures for complex optimization problems with higher connectivity.
Contribution
It introduces a novel circuit design using ancilla qubits and two inductive couplers to implement multi-body interactions, advancing scalable quantum annealing hardware.
Findings
Design is robust to non-linear effects and parameter mismatches.
Enables implementation of arbitrary connectivity in quantum annealing.
Supports scalable architecture with logical qubits.
Abstract
Quantum annealing provides a way of solving optimization problems by encoding them as Ising spin models which are implemented using physical qubits. The solution of the optimization problem then corresponds to the ground state of the system. Quantum tunnelling is harnessed to enable the system to move to the ground state in a potentially highly non-convex energy landscape. A major difficulty in encoding optimization problems in physical quantum annealing devices is the fact that many real world optimization problems require interactions of higher connectivity as well as multi-body terms beyond the limitations of the physical hardware. In this work we address the question of how to implement multi-body interactions using hardware which natively only provides two-body interactions. The main result is an efficient circuit design of such multi-body terms using superconducting flux qubits in…
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