Phase Correction using Deep Learning for Satellite-to-Ground CV-QKD
- URL: http://arxiv.org/abs/2305.18737v1
- Date: Tue, 30 May 2023 04:21:27 GMT
- Title: Phase Correction using Deep Learning for Satellite-to-Ground CV-QKD
- Authors: Nathan K. Long, Robert Malaney, Kenneth J. Grant
- Abstract summary: We introduce a new method for estimating phase corrections for an RLO by using only intensity measurements from RPs as input to a convolutional neural network.
We show that the phase correction accuracy needed to provide for non-zero secure key rates through satellite-to-ground channels is achieved by our intensity-only measurements.
- Score: 0.5156484100374059
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: Coherent measurement of quantum signals used for continuous-variable (CV)
quantum key distribution (QKD) across satellite-to-ground channels requires
compensation of phase wavefront distortions caused by atmospheric turbulence.
One compensation technique involves multiplexing classical reference pulses
(RPs) and the quantum signal, with direct phase measurements on the RPs then
used to modulate a real local oscillator (RLO) on the ground - a solution that
also removes some known attacks on CV-QKD. However, this is a cumbersome task
in practice - requiring substantial complexity in equipment requirements and
deployment. As an alternative to this traditional practice, here we introduce a
new method for estimating phase corrections for an RLO by using only intensity
measurements from RPs as input to a convolutional neural network, mitigating
completely the necessity to measure phase wavefronts directly. Conventional
wisdom dictates such an approach would likely be fruitless. However, we show
that the phase correction accuracy needed to provide for non-zero secure key
rates through satellite-to-ground channels is achieved by our intensity-only
measurements. Our work shows, for the first time, how artificial intelligence
algorithms can replace phase-measuring equipment in the context of CV-QKD
delivered from space, thereby delivering an alternate deployment paradigm for
this global quantum-communication application.
Related papers
- Composable free-space continuous-variable quantum key distribution using discrete modulation [3.864405940022529]
Continuous-variable (CV) quantum key distribution (QKD) allows for quantum secure communication.
We present a CV QKD system using discrete modulation that is especially designed for urban atmospheric channels.
This will allow to expand CV QKD networks beyond the existing fiber backbone.
arXiv Detail & Related papers (2024-10-16T18:02:53Z) - Deep Reinforcement Learning for IRS Phase Shift Design in
Spatiotemporally Correlated Environments [93.30657979626858]
We propose a deep actor-critic algorithm that accounts for channel correlations and destination motion.
We show that, when channels aretemporally correlated, the inclusion of the SNR in the state representation with function approximation in ways that inhibit convergence.
arXiv Detail & Related papers (2022-11-02T22:07:36Z) - Finite-size security proof of binary-modulation continuous-variable
quantum key distribution using only heterodyne measurement [0.9786690381850356]
Continuous-variable quantum key distribution (CV-QKD) has many practical advantages including compatibility with current optical communication technology.
We propose an all-heterodyne CV-QKD protocol with binary modulation and prove its security against general attacks in the finite-key regime.
arXiv Detail & Related papers (2022-08-25T10:27:27Z) - Model-based Deep Learning Receiver Design for Rate-Splitting Multiple
Access [65.21117658030235]
This work proposes a novel design for a practical RSMA receiver based on model-based deep learning (MBDL) methods.
The MBDL receiver is evaluated in terms of uncoded Symbol Error Rate (SER), throughput performance through Link-Level Simulations (LLS) and average training overhead.
Results reveal that the MBDL outperforms by a significant margin the SIC receiver with imperfect CSIR.
arXiv Detail & Related papers (2022-05-02T12:23:55Z) - Performance of teleportation-based error correction circuits for bosonic
codes with noisy measurements [58.720142291102135]
We analyze the error-correction capabilities of rotation-symmetric codes using a teleportation-based error-correction circuit.
We find that with the currently achievable measurement efficiencies in microwave optics, bosonic rotation codes undergo a substantial decrease in their break-even potential.
arXiv Detail & Related papers (2021-08-02T16:12:13Z) - Simple and loss-tolerant free-space QKD using a squeezed laser [0.0]
We consider a continuous-variable (CV) quantum key distribution (QKD) protocol over free-space channels.
It uses a bright laser, squeezed and modulated in the amplitude quadrature, and self-homodyne detection.
We analyse security of the QKD protocol in the composable finite-size regime.
arXiv Detail & Related papers (2021-07-08T06:46:37Z) - Composably secure data processing for Gaussian-modulated continuous
variable quantum key distribution [58.720142291102135]
Continuous-variable quantum key distribution (QKD) employs the quadratures of a bosonic mode to establish a secret key between two remote parties.
We consider a protocol with homodyne detection in the general setting of composable finite-size security.
In particular, we analyze the high signal-to-noise regime which requires the use of high-rate (non-binary) low-density parity check codes.
arXiv Detail & Related papers (2021-03-30T18:02:55Z) - Round-robin differential phase-time-shifting protocol for quantum key
distribution: theory and experiment [58.03659958248968]
Quantum key distribution (QKD) allows the establishment of common cryptographic keys among distant parties.
Recently, a QKD protocol that circumvents the need for monitoring signal disturbance, has been proposed and demonstrated in initial experiments.
We derive the security proofs of the round-robin differential phase-time-shifting protocol in the collective attack scenario.
Our results show that the RRDPTS protocol can achieve higher secret key rate in comparison with the RRDPS, in the condition of high quantum bit error rate.
arXiv Detail & Related papers (2021-03-15T15:20:09Z) - Error mitigation and quantum-assisted simulation in the error corrected
regime [77.34726150561087]
A standard approach to quantum computing is based on the idea of promoting a classically simulable and fault-tolerant set of operations.
We show how the addition of noisy magic resources allows one to boost classical quasiprobability simulations of a quantum circuit.
arXiv Detail & Related papers (2021-03-12T20:58:41Z) - Use of a Local Local Oscillator for the Satellite-to-Earth Channel [0.0]
Continuous variable quantum key distribution (CV-QKD) offers information-theoretic secure key sharing between two parties.
The sharing of a phase reference frame is an essential requirement for coherent detection in CV-QKD.
We develop a new noise model of a current state-of-the-art LLO scheme in the context of the satellite-to-Earth channel.
arXiv Detail & Related papers (2020-10-19T11:39:22Z) - Feasibility Assessment For Practical Continuous Variable Quantum Key
Distribution Over The Satellite-to-Earth Channel [0.0]
Quantum key distribution (QKD) using continuous variable (CV) technology has only been demonstrated over short-range terrestrial links.
We first review the concepts and technologies that will enable CV-QKD over the satellite-to-Earth channels.
We conclude that for a wide range of pragmatic system models, CS-QKD with information-theoretic security in the satellite-to-Earth channel is feasible.
arXiv Detail & Related papers (2020-05-21T05:08:16Z)
This list is automatically generated from the titles and abstracts of the papers in this site.
This site does not guarantee the quality of this site (including all information) and is not responsible for any consequences.