Machine Learning assisted excess noise suppression for
continuous-variable quantum key distribution
- URL: http://arxiv.org/abs/2207.10444v1
- Date: Thu, 21 Jul 2022 12:31:13 GMT
- Title: Machine Learning assisted excess noise suppression for
continuous-variable quantum key distribution
- Authors: Kexin Liang, Geng Chai, Zhengwen Cao, Qing Wang, Lei Wang and Jinye
Peng
- Abstract summary: An excess noise suppression scheme based on equalization is proposed.
In this scheme, the distorted signals can be corrected through equalization assisted by a neural network and pilot tone.
The experimental results show that the scheme can suppress the excess noise to a lower level, and has a significant performance improvement.
- Score: 10.533604439090514
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: Excess noise is a major obstacle to high-performance continuous-variable
quantum key distribution (CVQKD), which is mainly derived from the amplitude
attenuation and phase fluctuation of quantum signals caused by channel
instability. Here, an excess noise suppression scheme based on equalization is
proposed. In this scheme, the distorted signals can be corrected through
equalization assisted by a neural network and pilot tone, relieving the
pressure on the post-processing and eliminating the hardware cost. For a
free-space channel with more intense fluctuation, a classification algorithm is
added to classify the received variables, and then the distinctive equalization
correction for different classes is carried out. The experimental results show
that the scheme can suppress the excess noise to a lower level, and has a
significant performance improvement. Moreover, the scheme also enables the
system to cope with strong turbulence. It breaks the bottleneck of
long-distance quantum communication and lays a foundation for the large-scale
application of CVQKD.
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