Efficient Verification of Anticoncentrated Quantum States
Ryan S. Bennink

TL;DR
This paper introduces a novel, efficient quantum verification method for anticoncentrated states, achieving exponential quantum advantage and enabling scalable validation of complex quantum states.
Contribution
The paper presents a new fidelity estimation technique for dense quantum states that is efficient for anticoncentrated states, with improvements using importance sampling.
Findings
Achieves exponential quantum advantage in sample efficiency.
Efficient verification method for anticoncentrated quantum states.
Potential for scalable verification of complex quantum states.
Abstract
A promising use of quantum computers is to prepare quantum states that model complex domains, such as correlated electron wavefunctions or the underlying distribution of a complex dataset. Such states need to be verified in view of algorithmic approximations and device imperfections. As quantum computers grow in size, however, verifying the states they produce becomes increasingly problematic. Relatively efficient methods have been devised for verifying sparse quantum states, but dense quantum states have remained costly to verify. Here I present a novel method for estimating the fidelity between a preparable quantum state and a classically specified target state , using simple quantum circuits and on-the-fly classical calculation (or lookup) of selected amplitudes of . Notably, in the targeted regime the method demonstrates an exponential quantum…
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