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Qubit-efficient encoding schemes for binary optimisation problems

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arxiv 2007.01774 v2 pith:CMBHTZJN submitted 2020-07-03 quant-ph cond-mat.dis-nn

classification quant-phcond-mat.dis-nn
keywords classicalquantumvariablescorrelationsproblemqubitsencodingstate
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abstract

We propose and analyze a set of variational quantum algorithms for solving quadratic unconstrained binary optimization problems where a problem consisting of $n_c$ classical variables can be implemented on $\mathcal O(\log n_c)$ number of qubits. The underlying encoding scheme allows for a systematic increase in correlations among the classical variables captured by a variational quantum state by progressively increasing the number of qubits involved. We first examine the simplest limit where all correlations are neglected, i.e. when the quantum state can only describe statistically independent classical variables. We apply this minimal encoding to find approximate solutions of a general problem instance comprised of 64 classical variables using 7 qubits. Next, we show how two-body correlations between the classical variables can be incorporated in the variational quantum state and how it can improve the quality of the approximate solutions. We give an example by solving a 42-variable Max-Cut problem using only 8 qubits where we exploit the specific topology of the problem. We analyze whether these cases can be optimized efficiently given the limited resources available in state-of-the-art quantum platforms. Lastly, we present the general framework for extending the expressibility of the probability distribution to any multi-body correlations.

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  1. Joint symmetry and dynamical accessibility in compact Hamiltonian encodings of set cover

    quant-ph 2026-08 conditional novelty 7.0 of 10

    A rigorous separation of global, symmetry-allowed, and dynamically accessible spectral gaps for compact Hamiltonian encodings of set cover, including an explicit even-cycle family with an Omega(n^-13) cyclic-gap certificate.

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