Published December 9, 2025 | Version Published
Journal Article Open

Preparing matrix product states via fusion: Constraints and extensions

  • 1. ROR icon University of Colorado Boulder
  • 2. ROR icon California Institute of Technology

Abstract

In the era of noisy, intermediate-scale quantum devices, the efficient preparation of many-body resource states is a task of paramount importance. In this paper we focus on the deterministic preparation of matrix product states (MPS) in constant depth by utilizing measurements and classical communication to fuse smaller states into larger ones. We place strong constraints on the MPS that can be prepared using this method, which we refer to as MPS fusion. Namely, we establish that it is necessary for the MPS to have a flat entanglement spectrum. Using the recently introduced split-index MPS (SIMPS) representation, we then introduce a family of states that belong to interesting phases of matter protected by non-onsite symmetries, including anomalous and noninvertible symmetries, and also serve as resources for long-range quantum teleportation, but which lie beyond the scope of ordinary MPS fusion. It is shown constructively that these states can be prepared in constant depth using a broader class of measurement-assisted protocols, which we dub SIMPS fusion. Even in cases when MPS fusion is possible, using SIMPS fusion can give rise to significantly reduced resource overhead. We also discuss constraints on SIMPS fusion and propose a general framework for fusion that encompasses the MPS and SIMPS protocols. Our results therefore simultaneously establish the boundaries of conventional MPS fusion and push the envelope of which states can be prepared using measurement-assisted protocols.

Copyright and License

©2025 American Physical Society.

Funding

O.H. is supported by the Air Force Office of Scientific Research under Grant No. FA9550-20-1-0222. D.T.S. is supported by the Simons Collaboration on Ultra-Quantum Matter, which is a grant from the Simons Foundation (Grant No. 651440).

Files

cv3q-5l8w.pdf

Files (1.4 MB)

Name Size Download all
md5:3a2b99b4b91f327f5a9dc9ef636ae322
1.4 MB Preview Download

Additional details

Related works

Is new version of
Discussion Paper: arXiv:2404.16360 (arXiv)

Funding

United States Air Force Office of Scientific Research
FA9550-20-1-0222
Simons Foundation
651440

Dates

Submitted
2024-05-05
Accepted
2025-04-18

Caltech Custom Metadata

Caltech groups
Institute for Quantum Information and Matter, Division of Physics, Mathematics and Astronomy (PMA)
Publication Status
Published