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Efficient sampling of ground and low-energy Ising spin configurations with a coherent Ising machine

Authors :
Edwin Ng
Tatsuhiro Onodera
Satoshi Kako
Peter L. McMahon
Hideo Mabuchi
Yoshihisa Yamamoto
Source :
Physical Review Research, Vol 4, Iss 1, p 013009 (2022)
Publication Year :
2022
Publisher :
American Physical Society, 2022.

Abstract

We show that the nonlinear stochastic dynamics of a measurement-feedback-based coherent Ising machine (MFB-CIM) in the presence of quantum noise can be exploited to sample degenerate ground and low-energy spin configurations of the Ising model. We formulate a general discrete-time Gaussian-state model of the MFB-CIM, which faithfully captures the nonlinear dynamics present at and above system threshold. This model overcomes the limitations of both mean-field models, which neglect quantum noise, and continuous-time models, which assume long photon lifetimes. Numerical simulations of our model show that when the MFB-CIM is operated in a quantum-noise-dominated regime with short photon lifetimes (i.e., low cavity finesse), homodyne monitoring of the system can efficiently produce samples of low-energy Ising spin configurations, requiring many fewer roundtrips to sample than suggested by established high-finesse, continuous-time models. We find that sampling performance is robust to, or even improved by, turning off or altogether reversing the sign of the parametric drive, but performance is critically reduced in the absence of optical nonlinearity. For the class of MAX-CUT problems with binary-signed edge weights, the number of roundtrips sufficient to fully sample all spin configurations up to the first-excited Ising energy, including all degeneracies, scales with the problem size N as 1.08^{N}. At N=100 with a few dozen (median ∼20) such desired configurations per instance, we have found median sufficient sampling times of 6×10^{6} roundtrips; in an experimental implementation of an MFB-CIM with a 10 GHz repetition rate, this corresponds to a wall-clock sampling time of 60 ms.

Subjects

Subjects :
Physics
QC1-999

Details

Language :
English
ISSN :
26431564
Volume :
4
Issue :
1
Database :
Directory of Open Access Journals
Journal :
Physical Review Research
Publication Type :
Academic Journal
Accession number :
edsdoj.ba04a8922b1d44cea63e47fba78b5ffe
Document Type :
article
Full Text :
https://doi.org/10.1103/PhysRevResearch.4.013009