Randomness in post-selected events
arXiv:1506.03953 · doi:10.1088/1367-2630/18/3/035007
Abstract
Bell inequality violations can be used to certify private randomness for use in cryptographic applications. In photonic Bell experiments, a large amount of the data that is generated comes from no-detection events and presumably contains little randomness. This raises the question as to whether randomness can be extracted only from the smaller post-selected subset corresponding to proper detection events, instead of from the entire set of data. This could in principle be feasible without opening an analogue of the detection loophole as long as the min-entropy of the post-selected data is evaluated by taking all the information into account, including no-detection events. The possibility of extracting randomness from a short string has a practical advantage, because it reduces the computational time of the extraction. Here, we investigate the above idea in a simple scenario, where the devices and the adversary behave according to i.i.d. strategies. We show that indeed almost all the randomness is present in the pair of outcomes for which at least one detection happened. We further show that in some cases applying a pre-processing on the data can capture features that an analysis based on global frequencies only misses, thus resulting in the certification of more randomness. We then briefly consider non-i.i.d strategies and provide an explicit example of such a strategy that is more powerful than any i.i.d. one even in the asymptotic limit of infinitely many measurement rounds, something that was not reported before in the context of Bell inequalities.
similar to published version, new section (III) on photonic experiments
References in corpus (9)
- Experimental loophole-free violation of a Bell inequality using entangled electron spins separated by 1.3 km
- Significant-loophole-free test of Bell's theorem with entangled photons
- A strong loophole-free test of local realism
- A convergent hierarchy of semidefinite programs characterizing the set of quantum correlations
- Bounding the set of quantum correlations
- Quantum randomness extraction for various levels of characterization of the devices
- A Robust Mathematical Model for Clauser-Horne Experiments, With Implications for Rigorous Statistical Analysis
- Challenging preconceptions about Bell tests with photon pairs
- Optimal randomness generation from optical Bell experiments
Cited by in corpus (16)
- Certified randomness in quantum physics
- Experimentally Generated Randomness Certified by the Impossibility of Superluminal Signals
- Advances in device-independent quantum key distribution
- Photonic verification of device-independent quantum key distribution against collective attacks
- Advantage distillation for device-independent quantum key distribution
- Device-independent quantum key distribution with single-photon sources
- Security of device-independent quantum key distribution protocols: a review
- Device-independent quantum key distribution with random postselection
- Semidefinite programming relaxations for quantum correlations
- Improved DIQKD protocols with finite-size analysis
- Device-independent quantum secret sharing with noise preprocessing and postselection
- Randomness Certification from Multipartite Quantum Steering for Arbitrary Dimensional Systems
- Security of differential phase shift QKD from relativistic principles
- Maximizing device-independent randomness from a Bell experiment by optimizing the measurement settings
- Upper bounds on key rates in device-independent quantum key distribution based on convex-combination attacks
- Quantum Chernoff divergence in advantage distillation for quantum key distribution and device-independent quantum key distribution