Discrete-phase-randomized coherent state source and its application in quantum key distribution
arXiv:1410.3217 · doi:10.1088/1367-2630/17/5/053014
Abstract
Coherent state photon sources are widely used in quantum information processing. In many applications, such as quantum key distribution (QKD), a coherent state is functioned as a mixture of Fock states by assuming its phase is continuously randomized. In practice, such a crucial assumption is often not satisfied and, therefore, the security of existing QKD experiments is not guaranteed. To bridge this gap, we provide a rigorous security proof of QKD with discrete-phase-randomized coherent state sources. Our results show that the performance of the discrete-phase randomization case is close to its continuous counterpart with only a small number (say, 10) of discrete phases. Comparing to the conventional continuous phase randomization case, where an infinite amount of random bits are required, our result shows that only a small amount (say, 4 bits) of randomness is needed.
4 figures, comments welcome
References in corpus (4)
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Cited by in corpus (6)
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- Improved key rate bounds for practical decoy-state quantum key distribution systems
- Discrete-phase-randomized measurement-device-independent quantum key distribution
- Optical transmitter tunable over a 65-nm wavelength range around 1550 nm for quantum key distribution
- Adaptive Techniques in Practical Quantum Key Distribution