English

Strategies for measurement-based quantum computation with cluster states transformed by stochastic local operations and classical communication

Quantum Physics 2015-05-30 v1

Abstract

We examine cluster states transformed by stochastic local operations and classical communication, as a resource for deterministic universal computation driven strictly by projective measurements. We identify circumstances under which such states in one dimension constitute resources for random length single-qubit rotations, in one case quasi-deterministically (N-U-N states) and in another probabilistically (B-U-B states). In contrast to the cluster states, the N-U-N states exhibit spin correlation functions that decay exponentially with distance, while the B-U-B states can be arbitrarily locally pure. A two-dimensional square N-U-N lattice is a universal resource for quasideterministic measurement-based quantum computation. Measurements on cubic B-U-B states yield two-dimensional cluster states with bond defects, whose connectivity exceeds the percolation threshold for a critical value of the local purity.

Keywords

Cite

@article{arxiv.1108.4909,
  title  = {Strategies for measurement-based quantum computation with cluster states transformed by stochastic local operations and classical communication},
  author = {Adam G. D'Souza and David L. Feder},
  journal= {arXiv preprint arXiv:1108.4909},
  year   = {2015}
}

Comments

16 pages, 6 figures