The statistical strength of experiments to reject local realism with photon pairs and inefficient detectors
arXiv:1001.1750 · doi:10.1103/PhysRevA.81.032117
Abstract
Because of the fundamental importance of Bell's theorem, a loophole-free demonstration of a violation of local realism (LR) is highly desirable. Here, we study violations of LR involving photon pairs. We quantify the experimental evidence against LR by using measures of statistical strength related to the Kullback-Leibler (KL) divergence, as suggested by van Dam et al. [W. van Dam, R. Gill and P. Grunwald, IEEE Trans. Inf. Theory. 51, 2812 (2005)]. Specifically, we analyze a test of LR with entangled states created from two independent polarized photons passing through a polarizing beam splitter. We numerically study the detection efficiency required to achieve a specified statistical strength for the rejection of LR depending on whether photon counters or detectors are used. Based on our results, we find that a test of LR free of the detection loophole requires photon counters with efficiencies of at least 89.71%, or photon detectors with efficiencies of at least 91.11%. For comparison, we also perform this analysis with ideal unbalanced Bell states, which are known to allow rejection of LR with detector efficiencies above 2/3.
18 pages, 3 figures, minor changes (add more references, replace the old plots, etc.).
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- (Nearly) optimal P-values for all Bell inequalities
- Certifying Quantum Randomness by Probability Estimation
- Bounding the plausibility of physical theories in a device-independent setting via hypothesis testing
- Generating multipartite nonlocality to benchmark quantum computers