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Quantum walk informed variational algorithm design

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arxiv 2406.11620 v2 pith:SSYYRSXT submitted 2024-06-17 quant-ph

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keywords graphoptimisationquantumqvasalgorithmsanalysiscombinatorialconvergence
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abstract

We present a theoretical framework for the analysis of amplitude transfer in Quantum Variational Algorithms (QVAs) for combinatorial optimisation with mixing unitaries defined by vertex-transitive graphs, based on their continuous-time quantum walk (CTQW) representation and the theory of graph automorphism groups. This framework leads to a heuristic for designing efficient problem-specific QVAs. Using this heuristic, we develop novel algorithms for unconstrained and constrained optimisation. We outline their implementation with polynomial gate complexity and simulate their application to the parallel machine scheduling and portfolio rebalancing combinatorial optimisation problems, showing significantly improved convergence over preexisting QVAs. Based on our analysis, we derive metrics for evaluating the suitability of graph structures for specific problem instances, and for establishing bounds on the convergence supported by different graph structures. For mixing unitaries characterised by a CTQW over a Hamming graph on $m$-tuples of length $n$, our results indicate that the amplification upper bound increases with problem size like $\mathcal{O}(e^{n \log m})$.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. A matching decomposition algorithm for simulating quantum walk Hamiltonians

    quant-ph 2026-01 conditional novelty 6.0 of 10

    Matching decomposition with edge compression builds quantum-walk circuits that need up to 43% fewer CX gates and 54% less depth than Pauli decomposition on tested sparse graphs.

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