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On the Emerging Potential of Quantum Annealing Hardware for Combinatorial Optimization

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arxiv 2210.04291 v1 pith:RMTZMAH5 submitted 2022-10-09 math.OC quant-ph

classification math.OCquant-ph
keywords optimizationhardwareperformancequantumannealingbenchmarkingcombinatorialemerging
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Over the past decade, the usefulness of quantum annealing hardware for combinatorial optimization has been the subject of much debate. Thus far, experimental benchmarking studies have indicated that quantum annealing hardware does not provide an irrefutable performance gain over state-of-the-art optimization methods. However, as this hardware continues to evolve, each new iteration brings improved performance and warrants further benchmarking. To that end, this work conducts an optimization performance assessment of D-Wave Systems' most recent Advantage Performance Update computer, which can natively solve sparse unconstrained quadratic optimization problems with over 5,000 binary decision variables and 40,000 quadratic terms. We demonstrate that classes of contrived problems exist where this quantum annealer can provide run time benefits over a collection of established classical solution methods that represent the current state-of-the-art for benchmarking quantum annealing hardware. Although this work does not present strong evidence of an irrefutable performance benefit for this emerging optimization technology, it does exhibit encouraging progress, signaling the potential impacts on practical optimization tasks in the future.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. OpenAlex reports about 22 citations worldwide. Full citation record

  1. Accuracy and Performance Evaluation of Quantum, Classical and Hybrid Solvers for the Max-Cut Problem

    math.OC 2024-12 conditional novelty 5.0 of 10

    On 139 Max-Cut instances, classical simulated annealing and Toshiba's SBM match or beat D-Wave's Hybrid solver on large graphs, and the fast-annealing QPU misses the global optimum on nearly all small instances.

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