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Few Single-Qubit Measurements Suffice to Certify Any Quantum State

Published: June 12, 2025 | arXiv ID: 2506.11355v2

By: Meghal Gupta, William He, Ryan O'Donnell

BigTech Affiliations: University of California, Berkeley

Potential Business Impact:

Checks quantum computers with fewer tests.

Business Areas:
Quantum Computing Science and Engineering

A fundamental task in quantum information science is state certification: testing whether a lab-prepared $n$-qubit state is close to a given hypothesis state. In this work, we show that every pure hypothesis state can be certified using only $O(n^2)$ single-qubit measurements applied to $O(n)$ copies of the lab state. Prior to our work, it was not known whether even subexponentially many single-qubit measurements could suffice to certify arbitrary states. This resolves the main open question of Huang, Preskill, and Soleimanifar (FOCS 2024, QIP 2024). Our algorithm also showcases the power of adaptive measurements: within each copy of the lab state, previous measurement outcomes dictate how subsequent qubit measurements are made. We show that the adaptivity is necessary, by proving an exponential lower bound on the number of copies needed for any nonadaptive single-qubit measurement algorithm.

Country of Origin
πŸ‡ΊπŸ‡Έ United States

Page Count
13 pages

Category
Physics:
Quantum Physics