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Divide-and-conquer verification method for noisy intermediate-scale quantum computation

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arxiv 2109.14928 v3 pith:2I6MBML4 submitted 2021-09-30 quant-ph

classification quant-ph
keywords quantummethodintermediate-scalenoisychipcomputationranglestate
verification ladder T0 review T1 audit T2 compute T3 formal

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abstract

Several noisy intermediate-scale quantum computations can be regarded as logarithmic-depth quantum circuits on a sparse quantum computing chip, where two-qubit gates can be directly applied on only some pairs of qubits. In this paper, we propose a method to efficiently verify such noisy intermediate-scale quantum computation. To this end, we first characterize small-scale quantum operations with respect to the diamond norm. Then by using these characterized quantum operations, we estimate the fidelity $\langle\psi_t|\hat{\rho}_{\rm out}|\psi_t\rangle$ between an actual $n$-qubit output state $\hat{\rho}_{\rm out}$ obtained from the noisy intermediate-scale quantum computation and the ideal output state (i.e., the target state) $|\psi_t\rangle$. Although the direct fidelity estimation method requires $O(2^n)$ copies of $\hat{\rho}_{\rm out}$ on average, our method requires only $O(D^32^{12D})$ copies even in the worst case, where $D$ is the denseness of $|\psi_t\rangle$. For logarithmic-depth quantum circuits on a sparse chip, $D$ is at most $O(\log{n})$, and thus $O(D^32^{12D})$ is a polynomial in $n$. By using the IBM Manila 5-qubit chip, we also perform a proof-of-principle experiment to observe the practical performance of our method.

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  1. Verifying a stabilizer state with few observables but many shots

    quant-ph 2024-12 conditional novelty 6.0 of 10

    A random-basis, minimum-of-means stabilizer certification protocol accepts good states and rejects bad states with error probabilities exponentially small in qubit number under a wide fidelity gap.

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