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Fundamental limits of quantum error mitigation

Physics

Fundamental limits of quantum error mitigation

R. Takagi, S. Endo, et al.

This groundbreaking research by Ryuji Takagi, Suguru Endo, Shintaro Minagawa, and Mile Gu explores the limits of quantum error mitigation techniques, revealing how much these algorithms can alleviate computational errors. The study showcases the exponential scaling of error mitigation for local depolarizing noise within layered circuits and establishes a benchmark for future error mitigation strategies.

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~3 min • Beginner • English
Abstract
The inevitable accumulation of errors in near-future quantum devices represents a key obstacle in delivering practical quantum advantages, motivating the development of various quantum error-mitigation methods. Here, we derive fundamental bounds concerning how error-mitigation algorithms can reduce the computation error as a function of their sampling overhead. Our bounds place universal performance limits on a general error-mitigation protocol class. We use them to show (1) that the sampling overhead that ensures a certain computational accuracy for mitigating local depolarizing noise in layered circuits scales exponentially with the circuit depth for general error-mitigation protocols and (2) the optimality of probabilistic error cancellation among a wide class of strategies in mitigating the local dephasing noise on an arbitrary number of qubits. Our results provide a means to identify when a given quantum error-mitigation strategy is optimal and when there is potential room for improvement.
Publisher
npj Quantum Information
Published On
Sep 22, 2022
Authors
Ryuji Takagi, Suguru Endo, Shintaro Minagawa, Mile Gu
Tags
quantum error mitigation
computational errors
sampling overhead
local depolarizing noise
layered circuits
performance limits
probabilistic error cancellation
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