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Trapped Ion Quantum Computing

Fermionic Insights into Measurement-Based Quantum Computation: Circle Graph States Are Not Universal Resources

arXiv
Authors: Brent Harrison, Vishnu Iyer, Ojas Parekh, Kevin Thompson, Andrew Zhao

Year

2025

Paper ID

51741

Status

Preprint

Abstract Read

~2 min

Abstract Words

177

Citations

0

Abstract

Measurement-based quantum computation (MBQC) is a strong contender for realizing quantum computers. A critical question for MBQC is the identification of resource graph states that can enable universal quantum computation. Any such universal family must have unbounded entanglement width, which is known to be equivalent to the ability to produce any circle graph state from the states in the family using only local Clifford operations, local Pauli measurements, and classical communication. Yet, it was not previously known whether or not circle graph states themselves are a universal resource. We show that, in spite of their expressivity, circle graph states are not efficiently universal for MBQC i.e., assuming $mathsf{BQP} neq mathsf{BPP}$. We prove this by articulating a precise graph-theoretic correspondence between circle graph states and a certain subset of fermionic Gaussian states. This is accomplished by synthesizing a variety of techniques that allow us to handle both stabilizer states and fermionic Gaussian states at the same time. As such, we anticipate that our developments may have broader applications beyond the domain of MBQC as well.

Why This Paper Matters

  • This paper contributes to the Trapped-Ion Quantum Computing research area in the Quantum Articles archive.
  • It adds a 2025 reference point for readers tracking recent quantum research.
  • Measurement-based quantum computation (MBQC) is a strong contender for realizing quantum computers.

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