Quantum-Error-Mitigation Circuit Groups for Noisy Quantum Metrology
Yusuke Hama, Hirofumi Nishi

TL;DR
This paper introduces a quantum error mitigation protocol using circuit groups that restores the precision of quantum metrology measurements affected by noise, enabling high-sensitivity quantum sensing with entanglement.
Contribution
The work presents a novel QEM protocol applicable to any initial state and Hamiltonian, improving quantum metrology accuracy under noise through circuit groups.
Findings
Quantum-error-mitigated QFI approaches ideal QFI values.
The protocol is versatile for different initial states and Hamiltonians.
Restores scaling behavior of QFI in noisy environments.
Abstract
Quantum technologies work by utilizing properties inherent in quantum systems such as quantum coherence and quantum entanglement and are expected to be superior to classical counterparts for solving certain problems in science and engineering. The quantum technologies are, however, fragile against an interaction with an environment (decoherence) and in order to utilize them with high accuracy we need to develop error mitigation techniques which reduce decoherence effects. In this work, we analyze quantum error mitigation (QEM) protocol for quantum metrology in the presence of quantum noise. We demonstrate the effectiveness of our QEM protocol by analyzing three types of quantum Fisher information (QFI), ideal (error-free) QFI, noisy (erroneous) QFI, and quantum-error-mitigated QFI, and show both analytically and numerically that the scaling behaviors of quantum-error-mitigated QFI with…
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Taxonomy
TopicsQuantum Computing Algorithms and Architecture · Quantum Information and Cryptography · Advancements in Semiconductor Devices and Circuit Design
