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Photonic Boson Sampling in a Tunable Circuit

2012/12/31 by Matthew A. Broome, Alessandro Fedrizzi, Saleh Rahimi-Keshari +4 · 2 citations
Physics and Astronomy · #quant-ph

paper · pdf · doi:10.1126/science.1231440

published as Science 339, 6121 (2013) · See also Crespi et al., arXiv:1212.2783; Spring et al., arXiv:1212.2622; and Tillmann et al., arXiv:1212.2240

arxiv created 2013/02/28 · arxiv updated 2013/03/01

Abstract

Quantum computers are unnecessary for exponentially-efficient computation or simulation if the Extended Church-Turing thesis---a foundational tenet of computer science---is correct. The thesis would be directly contradicted by a physical device that efficiently performs a task believed to be intractable for classical computers. Such a task is BosonSampling: obtaining a distribution of n bosons scattered by some linear-optical unitary process. Here we test the central premise of BosonSampling, experimentally verifying that the amplitudes of 3-photon scattering processes are given by the permanents of submatrices generated from a unitary describing a 6-mode integrated optical circuit. We find the protocol to be robust, working even with the unavoidable effects of photon loss, non-ideal sources, and imperfect detection. Strong evidence against the Extended Church-Turing thesis will come from scaling to large numbers of photons, which is a much simpler task than building a universal quantum computer.

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