Boson Sampling is Robust to Small Errors in the Network Matrix
arXiv:1412.2516 · doi:10.1103/PhysRevA.92.062326
Abstract
We demonstrate the robustness of BosonSampling to imperfections in the linear optical network that cause a small deviation in the matrix it implements. We show that applying a noisy matrix that is within of the desired matrix in operator norm leads to an output distribution that is within of the desired distribution in variation distance, where is the number of photons. This lets us derive a sufficient tolerance each beamsplitters and phaseshifters in the network. This result considers only errors that result from the network encoding a different unitary than desired, and not other sources of noise such as photon loss and partial distinguishability.
8 pages
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- Classical simulation of linear optics subject to nonuniform losses
- Distinguishing noisy boson sampling from classical simulations
- A robust W-state encoding for linear quantum optics
- Physical Unclonable Functions with Boson Sampling