Published July 11, 2022 | Version v1
Journal article Open

Optimized SWAP networks with equivalent circuit averaging for QAOA

  • 1. University of California, Berkeley
  • 2. ColdQuanta
  • 3. Lawrence Berkeley National Laboratory
  • 4. University of Chicago

Description

The SWAP network is a qubit routing sequence that can be used to efficiently execute the Quantum Approximate Optimization Algorithm (QAOA). Even with a minimally connected topology on an $n$-qubit processor, this routing sequence enables $\mathcal{O}({n}^{2})$ operations to execute in $\mathcal{O}(n)$ steps. In this work, we optimize the execution of SWAP networks for QAOA through two techniques. First, we take advantage of an overcomplete set of native hardware operations [including 150-ns controlled-$\frac{{\pi}}{2}$ phase gates with up to 99.67(1)% fidelity] to decompose the relevant quantum gates and SWAP networks in a manner which minimizes circuit depth and maximizes gate cancellation. Second, we introduce equivalent circuit averaging, which randomizes over degrees of freedom in the quantum circuit compilation to reduce the impact of systematic coherent errors. Our techniques are experimentally validated at the Advanced Quantum Testbed through the execution of QAOA circuits for finding the ground state of two- and four-node Sherrington-Kirkpatrick spin-glass models with various randomly sampled parameters. We observe a ${\sim}60%$ average reduction in error (total variation distance) for QAOA of depth $p=1$ on four transmon qubits on a superconducting quantum processor.

Files

PhysRevResearch.4.033028.pdf

Files (2.1 MB)

Name Size Download all
md5:4340e92397a0f272af54b9c3ebe9447b
2.1 MB Preview Download

Additional details

Identifiers

DOI
10.1103/physrevresearch.4.033028
Other
oai:uchicago.tind.io:11669

Funding

National Science Foundation
Phy-1818914
National Science Foundation
2110860
National Science Foundation
OMA-2016136
National Science Foundation
CCF-1730449
U.S. Department of Energy
DE-SC0021526
U.S. Department of Energy
DE-AC02-05CH11231

UChicago Information

Division(s)
Physical Sciences Division
Department(s)
Computer Science