English

Infinite-Dimensional Programmable Quantum Processors

Quantum Physics 2021-07-15 v2

Abstract

A universal programmable quantum processor uses program quantum states to apply an arbitrary quantum channel to an input state. We generalize the concept of a finite-dimensional programmable quantum processor to infinite dimension assuming an energy constraint on the input and output of the target quantum channels. By proving reductions to and from finite-dimensional processors, we obtain upper and lower bounds on the program dimension required to approximately implement energy-limited quantum channels. In particular, we consider the implementation of Gaussian channels. Due to their practical relevance, we investigate the resource requirements for gauge-covariant Gaussian channels. Additionally, we give upper and lower bounds on the program dimension of a processor implementing all Gaussian unitary channels. These lower bounds rely on a direct information-theoretic argument, based on the generalization from finite to infinite dimension of a certain replication lemma for unitaries.

Keywords

Cite

@article{arxiv.2012.00736,
  title  = {Infinite-Dimensional Programmable Quantum Processors},
  author = {Martina Gschwendtner and Andreas Winter},
  journal= {arXiv preprint arXiv:2012.00736},
  year   = {2021}
}

Comments

38 pages, 2 figures, published version