Non-Markovian noise sources for quantum error mitigation
Doyeol Ahn (1,2), Byeongyong Park (1,2) ((1) Department of, Electrical, Computer Engineering, University of Seoul, Republic of Korea, (2) First Quantum, Inc, Republic of Korea)

TL;DR
This paper introduces a non-Markovian model for quantum state evolution and a tailored error mitigation cost function for NISQ devices, emphasizing the role of environment coupling strength in error mitigation.
Contribution
It develops a non-Markovian framework using projection operators and derives a time-convolutionless reduced-density operator for quantum error mitigation.
Findings
Error mitigation cost increases with system-environment coupling strength
Model aligns with experimental data from ion-trap and superconducting systems
Highlights importance of non-Markovian effects in quantum error correction
Abstract
Reducing the impact of errors and decoherence in near-term quantum computers, such as noisy intermediate-scale quantum (NISQ) devices, is critical for their practical implementation. These factors significantly limit the applicability of quantum algorithms, necessitating a comprehensive understanding of their physical origins to establish effective error mitigation strategies. In this study, we present a non-Markovian model of quantum state evolution and a quantum error mitigation cost function tailored for NISQ devices interacting with an environment represented by a set of simple harmonic oscillators as a noise source. Employing the projection operator formalism and both advanced and retarded propagators in time, we derive the reduced-density operator for the output quantum states in a time-convolutionless form by solving the quantum Liouville equation. We examine the output quantum…
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Taxonomy
TopicsQuantum Computing Algorithms and Architecture · Quantum Information and Cryptography · Advancements in Semiconductor Devices and Circuit Design
