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Estimating Quantum Hamiltonians via Joint Measurements of Noisy Non-Commuting Observables

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arxiv 2206.08912 v2 pith:QUC6S6H5 submitted 2022-06-17 quant-ph

classification quant-ph
keywords classicaljointnoisymeasurementsobservablesquantumenergieslocally
verification ladder T0 review T1 audit T2 compute T3 formal
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Estimation of expectation values of incompatible observables is an essential practical task in quantum computing, especially for approximating energies of chemical and other many-body quantum systems. In this work we introduce a method for this purpose based on performing a single joint measurement that can be implemented locally and whose marginals yield noisy (unsharp) versions of the target set of non-commuting Pauli observables. We derive bounds on the number of experimental repetitions required to estimate energies up to a certain precision. We compare this strategy to the classical shadow formalism and show that our method yields the same performance as the locally biased classical shadow protocol. We also highlight some general connections between the two approaches by showing that classical shadows can be used to construct joint measurements and vice versa. Finally, we adapt the joint measurement strategy to minimise the sample complexity when the implementation of measurements is assumed noisy. This can provide significant efficiency improvements compared to known generalisations of classical shadows to noisy scenarios.

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  1. Pretty-good simulation of all quantum measurements by projective measurements

    quant-ph 2025-01 accept novelty 8.0 of 10

    Every POVM on C^d becomes projectively simulable after depolarizing with dimension-independent visibility c = 0.02, and can be simulated with postselection probability 1/8 using only a single auxiliary qubit.

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