Quantified Effects of the Laser Seeding Attack in Quantum Key
Distribution
- URL: http://arxiv.org/abs/2310.17803v1
- Date: Thu, 26 Oct 2023 22:34:03 GMT
- Title: Quantified Effects of the Laser Seeding Attack in Quantum Key
Distribution
- Authors: Victor Lovic, Davide G. Marangon, Peter. R. Smith, Robert I. Woodward,
Andrew J. Shields
- Abstract summary: Quantum key distribution (QKD) enables private communications with information-theoretic security.
We study a prominent attack on QKD transmitters known as the laser seeding attack (LSA)
- Score: 0.0
- License: http://creativecommons.org/licenses/by/4.0/
- Abstract: Quantum key distribution (QKD) enables private communications with
information-theoretic security. To guarantee the practical security of QKD, it
is essential that QKD systems are implemented in accordance to theoretical
requirements and robust against side-channel attacks. Here we study a prominent
attack on QKD transmitters known as the laser seeding attack (LSA). It consists
in injecting photons into the laser of the transmitter in an attempt to modify
the outgoing light in some way that is beneficial to the eavesdropper. In this
work we measure the response of a QKD transmitter to the LSA as a function of
the optical power injected, allowing us to quantify the level of optical
attenuation required to mitigate the attack. Further, we employ a laser rate
equation model to numerically simulate the effects of the LSA on a
gain-switched laser. With this model we are able to reproduce previous
experimental results, as well as generate new insight into the LSA by examining
the effects of the LSA when the QKD transmitter is operated with different
laser current driving parameters.
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