English

Classical simulation of photonic linear optics with lost particles

Quantum Physics 2019-01-01 v1 Mathematical Physics math.MP

Abstract

We explore the possibility of efficient classical simulation of linear optics experiments under the effect of particle losses. Specifically, we investigate the canonical boson sampling scenario in which an nn-particle Fock input state propagates through a linear-optical network and is subsequently measured by particle-number detectors in the mm output modes. We examine two models of losses. In the first model a fixed number of particles is lost. We prove that in this scenario the output statistics can be well approximated by an efficient classical simulation, provided that the number of photons that is left grows slower than n\sqrt{n}. In the second loss model, every time a photon passes through a beamsplitter in the network, it has some probability of being lost. For this model the relevant parameter is ss, the smallest number of beamsplitters that any photon traverses as it propagates through the network. We prove that it is possible to approximately simulate the output statistics already if ss grows logarithmically with mm, regardless of the geometry of the network. The latter result is obtained by proving that it is always possible to commute ss layers of uniform losses to the input of the network regardless of its geometry, which could be a result of independent interest. We believe that our findings put strong limitations on future experimental realizations of quantum computational supremacy proposals based on boson sampling.

Keywords

Cite

@article{arxiv.1801.06166,
  title  = {Classical simulation of photonic linear optics with lost particles},
  author = {Michał Oszmaniec and Daniel J. Brod},
  journal= {arXiv preprint arXiv:1801.06166},
  year   = {2019}
}

Comments

26 pages, 14 figures, comments and suggestions are welcome

R2 v1 2026-06-22T23:49:08.855Z