Refined finite-size analysis of binary-modulation continuous-variable
quantum key distribution
- URL: http://arxiv.org/abs/2301.03171v3
- Date: Fri, 25 Aug 2023 00:15:11 GMT
- Title: Refined finite-size analysis of binary-modulation continuous-variable
quantum key distribution
- Authors: Takaya Matsuura, Shinichiro Yamano, Yui Kuramochi, Toshihiko Sasaki,
Masato Koashi
- Abstract summary: We extend the security proof based on complementarity, which is used in the discrete-variable QKD, to the previously developed binary-modulation CV-QKD protocols.
Notably, the key rate in the limit scales linearly against the attenuation rate, which is known to be optimal scaling but is not achieved in previous finite-size analyses.
- Score: 0.562479170374811
- License: http://creativecommons.org/licenses/by/4.0/
- Abstract: Recent studies showed the finite-size security of binary-modulation CV-QKD
protocols against general attacks. However, they gave poor key-rate scaling
against transmission distance. Here, we extend the security proof based on
complementarity, which is used in the discrete-variable QKD, to the previously
developed binary-modulation CV-QKD protocols with the reverse reconciliation
under the finite-size regime and obtain large improvements in the key rates.
Notably, the key rate in the asymptotic limit scales linearly against the
attenuation rate, which is known to be optimal scaling but is not achieved in
previous finite-size analyses. This refined security approach may offer
full-fledged security proofs for other discrete-modulation CV-QKD protocols.
Related papers
- Improved finite-size key rates for discrete-modulated continuous variable quantum key distribution under coherent attacks [0.0]
We consider a prepare-and-measure CVQKD protocol, where Alice chooses from a set of four coherent states and Bob performs a heterodyne measurement.
We provide a security proof against coherent attacks in the finite-size regime, and compute the achievable key rate.
arXiv Detail & Related papers (2024-07-03T13:18:31Z) - The Road to Near-Capacity CV-QKD Reconciliation: An FEC-Agnostic Design [53.67135680812675]
A new codeword-based QKD reconciliation scheme is proposed.
Both the authenticated classical channel (ClC) and the quantum channel (QuC) are protected by separate forward error correction (FEC) coding schemes.
The proposed system makes QKD reconciliation compatible with a wide range of FEC schemes.
arXiv Detail & Related papers (2024-03-24T14:47:08Z) - Practical quantum secure direct communication with squeezed states [55.41644538483948]
We report the first table-top experimental demonstration of a CV-QSDC system and assess its security.
This realization paves the way into future threat-less quantum metropolitan networks, compatible with coexisting advanced wavelength division multiplexing (WDM) systems.
arXiv Detail & Related papers (2023-06-25T19:23:42Z) - Calibrating a Deep Neural Network with Its Predecessors [39.3413000646559]
We study the limitions of early stopping and analyze the overfitting problem of a network considering each individual block.
We propose a novel regularization method, predecessor combination search (PCS), to improve calibration.
PCS achieves the state-of-the-art calibration performance on multiple datasets and architectures.
arXiv Detail & Related papers (2023-02-13T10:33:55Z) - 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) - Improved coherent one-way quantum key distribution for high-loss
channels [0.0]
We present a simple variant of COW-QKD and prove its security in the infinite-key limit.
Remarkably, the resulting key rate of our protocol is comparable with both the existing upper-bound on COW-QKD key rate and the secure key rate of the coherent-state BB84 protocol.
arXiv Detail & Related papers (2022-06-17T00:07:03Z) - Data post-processing for the one-way heterodyne protocol under
composable finite-size security [62.997667081978825]
We study the performance of a practical continuous-variable (CV) quantum key distribution protocol.
We focus on the Gaussian-modulated coherent-state protocol with heterodyne detection in a high signal-to-noise ratio regime.
This allows us to study the performance for practical implementations of the protocol and optimize the parameters connected to the steps above.
arXiv Detail & Related papers (2022-05-20T12:37:09Z) - 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) - Improved DIQKD protocols with finite-size analysis [2.940150296806761]
We show that positive randomness is achievable up to depolarizing noise values of $9.33%$, exceeding all previously known noise thresholds.
We also develop a modification to random-key-measurement protocols, using a pre-shared seed followed by a "seed recovery" step.
arXiv Detail & Related papers (2020-12-16T03:04:19Z) - Finite-size security of continuous-variable quantum key distribution
with digital signal processing [1.0499611180329804]
We propose a tight and robust method of estimating fidelity of an optical pulse to a coherent state via heterodyne measurements.
We then construct a binary phase CV QKD protocol and prove its security in the finite-key-size regime against general coherent attacks.
arXiv Detail & Related papers (2020-06-08T15:03:39Z)
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.