Power and Limits of Collective Local Measurements in Multicopy State Discrimination
Mao-Sheng Li, Yan-Ling Wang, Zhu-Jun Zheng
Abstract
More than two decades ago, Bennett et al. [Phys. Rev. A 59, 1070 (1999)] asked whether perfect local discrimination of orthogonal quantum states can require more than two copies. This question was subsequently answered for adaptive protocols that process the copies separately [Phys. Rev. Lett. 126, 210505 (2021)], but remained open when each laboratory is allowed to process its local copies collectively. Here we resolve this stronger setting and identify collective access across repeated local inputs as a distinct resource. For every fixed odd-prime local dimension, there exist complete maximal-stabilizer eigenbases whose copy complexity under individual-copy separable measurements diverges with system size. Under collective processing this behavior changes sharply: every maximal-stabilizer eigenbasis in odd-prime local dimension is perfectly decoded by one-round collective LOCC using at most three copies. Collective processing, however, does not remove multicopy hardness in general. For every fixed local dimension d2, we prove the existence, within an explicit phase family, of complete bases whose copy complexity remains unbounded even under collective separable measurements, with a square root of the number of subsystems as lower-bound scale. Thus sample number, spatial measurement power, and coherent access across repeated local inputs are distinct resources in distributed quantum measurement.
Create a lesson
Related papers
Low-rank propagation for tridiagonalizable open quantum systems: near-linear scaling with system size
Roman Ovsiannikov, Kurt Jacobs, Andrii G. Sotnikov et al.
Superradiant Mpemba Relaxation in a Dicke Ladder
Matheus G. H. Santos, Hugo Sanchez, Italo M. de Araújo et al.
Thermalization and dephasing in an isolated system of coupled qubits
Jukka P. Pekola, Bayan Karimi
Effective Study of Superconducting Quantum Circuits
Carlos Raul Javier Valdez, Hector Hugo Hernandez Hernandez, Guillermo Chacon-Acosta
A Quantum Phase-based Comparator
Alessandro Berti, Alessandro Poggiali
Exploring Asymmetric QEC Code Concatenation
Sayam Sethi, Maxwell Poster, Aditi Awasthi et al.