Published July 24, 2024 | Version v1
Journal article Open

High-Fidelity, Multiqubit Generalized Measurements with Dynamic Circuits

  • 1. ETH Zürich
  • 2. University of British Columbia
  • 3. University of Chicago
  • 4. IBM T.J. Watson Research Center

Description

Generalized measurements, also called positive operator-valued measures (POVMs), can offer advantages over projective measurements in various quantum information tasks. Here, we realize a generalized measurement of one and two superconducting qubits with high fidelity and in a single experimental setting. To do so, we propose a hybrid method, the "Naimark-terminated binary tree," based on a hybridization of Naimark's dilation and binary tree techniques that leverages emerging hardware capabilities for midcircuit measurements and feed-forward control. Furthermore, we showcase a highly effective use of approximate compiling to enhance POVM fidelity in noisy conditions. We argue that our hybrid method scales better toward larger system sizes than its constituent methods and demonstrate its advantage by performing detector tomography of symmetric, informationally complete POVM (SIC POVM). Detector fidelity is further improved through a composite error-mitigation strategy that incorporates twirling and a newly devised conditional readout error mitigation. Looking forward, we expect improvements in approximate compilation and hardware noise for dynamic circuits to enable generalized measurements of larger multiqubit POVMs on superconducting qubits.

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Additional details

Identifiers

DOI
10.1103/PRXQuantum.5.030315
Other
oai:uchicago.tind.io:13007

Funding

ARO
W911NF-23-1-0077
ARO MURI
W911NF- 21-1-0325
AFOSR MURI
FA9550-19- 1-0399
AFOSR MURI
FA9550-21-1-0209
AFOSR MURI
FA9550-23-1- 0338
National Science Foundation
OMA-1936118
National Science Foundation
ERC-1941583
National Science Foundation
OMA-2137642
National Science Foundation
OSI-2326767
National Science Foundation
CCF-2312755
NTT Research
Packard Foundation
2020-71479

UChicago Information

Division(s)
Pritzker School of Molecular Engineering