Saved in:
Bibliographic Details
Main Authors: Zhao, Benchi, Jing, Mingrui, Zhang, Lei, Zhao, Xuanqiang, CHen, Yu-Ao, Wang, Kun, Wang, Xin
Format: Preprint
Published: 2023
Subjects:
Online Access:https://arxiv.org/abs/2309.11403
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866911876913299456
author Zhao, Benchi
Jing, Mingrui
Zhang, Lei
Zhao, Xuanqiang
CHen, Yu-Ao
Wang, Kun
Wang, Xin
author_facet Zhao, Benchi
Jing, Mingrui
Zhang, Lei
Zhao, Xuanqiang
CHen, Yu-Ao
Wang, Kun
Wang, Xin
contents Accurately estimating high-order moments of quantum states is an elementary precondition for many crucial tasks in quantum computing, such as entanglement spectroscopy, entropy estimation, spectrum estimation, and predicting non-linear features from quantum states. But in reality, inevitable quantum noise prevents us from accessing the desired value. In this paper, we address this issue by systematically analyzing the feasibility and efficiency of extracting high-order moments from noisy states. We first show that there exists a quantum protocol capable of accomplishing this task if and only if the underlying noise channel is invertible. We then establish a method for deriving protocols that attain optimal sample complexity using quantum operations and classical post-processing only. Our protocols, in contrast to conventional ones, incur lower overheads and avoid sampling different quantum operations due to a novel technique called observable shift, making the protocols strong candidates for practical usage on current quantum devices. The proposed method also indicates the power of entangled protocols in retrieving high-order information, whereas in the existing methods, entanglement does not help. We further construct the protocol for large quantum systems to retrieve the depolarizing channels, making the proposed method scalable. Our work contributes to a deeper understanding of how quantum noise could affect high-order information extraction and provides guidance on how to tackle it.
format Preprint
id arxiv_https___arxiv_org_abs_2309_11403
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Retrieving non-linear features from noisy quantum states
Zhao, Benchi
Jing, Mingrui
Zhang, Lei
Zhao, Xuanqiang
CHen, Yu-Ao
Wang, Kun
Wang, Xin
Quantum Physics
Accurately estimating high-order moments of quantum states is an elementary precondition for many crucial tasks in quantum computing, such as entanglement spectroscopy, entropy estimation, spectrum estimation, and predicting non-linear features from quantum states. But in reality, inevitable quantum noise prevents us from accessing the desired value. In this paper, we address this issue by systematically analyzing the feasibility and efficiency of extracting high-order moments from noisy states. We first show that there exists a quantum protocol capable of accomplishing this task if and only if the underlying noise channel is invertible. We then establish a method for deriving protocols that attain optimal sample complexity using quantum operations and classical post-processing only. Our protocols, in contrast to conventional ones, incur lower overheads and avoid sampling different quantum operations due to a novel technique called observable shift, making the protocols strong candidates for practical usage on current quantum devices. The proposed method also indicates the power of entangled protocols in retrieving high-order information, whereas in the existing methods, entanglement does not help. We further construct the protocol for large quantum systems to retrieve the depolarizing channels, making the proposed method scalable. Our work contributes to a deeper understanding of how quantum noise could affect high-order information extraction and provides guidance on how to tackle it.
title Retrieving non-linear features from noisy quantum states
topic Quantum Physics
url https://arxiv.org/abs/2309.11403