Sensing-Assisted Secure Communications over Correlated Rayleigh Fading Channels
Abstract
:1. Introduction
1.1. Main Contributions
- We establish an inner bound on the rate region for stochastically degraded secure ISAC channels under bivariate Rayleigh fading by employing a Gaussian input. Our formulation shows how channel-output feedback can be leveraged to significantly improve the secrecy rate, enabling the system to surpass classical secrecy capacity results.
- We derive integral expressions stemming from the involved differential entropies in the achievable rate region. These expressions are amenable to numerically stable and simplified evaluations, facilitating practical performance analysis.
- For some integral expressions in the achievable rate region, we provide closed form solutions in special cases, such as high SNR regime and uncorrelated fading, which significantly simplifies the numerical evaluations.
- We provide fundamental insights into sensing-assisted secure communication systems, including parameter regimes where the achievable secure-ISAC rates can exceed the secrecy capacity and where approaching the channel capacity (i.e., the maximum possible rate without a secrecy constraint) can be possible. We further present accurate approximations that enable straightforward numerical evaluations and guide system design.
1.2. Paper Organization
1.3. Notation
2. System Model and Problem Definition
3. Correlated Fading AGN ISAC Channel Secrecy-Distortion Regions
3.1. Secrecy-Distortion Region
- (i)
- the outer bound applies to arbitrary random variables and does not assume any degradedness;
- (ii)
- there is a discretization procedure to generalize the achievability proof to well-behaved continuous-alphabet random variables, such as the considered fading and noise distributions ([24] Remark 3.8); and
- (iii)
- one can show that changing the estimator form does not change the entropy terms in the rate region, although achieved distortion levels might change since the estimators given in ([14], Theorem 1) should also be adapted.
3.2. Bivariate Rayleigh Fading
4. Achievable Rates for Gaussian Input
4.1. Evaluation of Equation (8a)
4.2. Evaluation of Equation (8b)
4.3. Evaluation of Equation (8c)
5. Numerical Results and Discussions
6. Conclusions
Author Contributions
Funding
Conflicts of Interest
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Mittelbach, M.; Schaefer, R.F.; Bloch, M.; Yener, A.; Günlü, O. Sensing-Assisted Secure Communications over Correlated Rayleigh Fading Channels. Entropy 2025, 27, 225. https://doi.org/10.3390/e27030225
Mittelbach M, Schaefer RF, Bloch M, Yener A, Günlü O. Sensing-Assisted Secure Communications over Correlated Rayleigh Fading Channels. Entropy. 2025; 27(3):225. https://doi.org/10.3390/e27030225
Chicago/Turabian StyleMittelbach, Martin, Rafael F. Schaefer, Matthieu Bloch, Aylin Yener, and Onur Günlü. 2025. "Sensing-Assisted Secure Communications over Correlated Rayleigh Fading Channels" Entropy 27, no. 3: 225. https://doi.org/10.3390/e27030225
APA StyleMittelbach, M., Schaefer, R. F., Bloch, M., Yener, A., & Günlü, O. (2025). Sensing-Assisted Secure Communications over Correlated Rayleigh Fading Channels. Entropy, 27(3), 225. https://doi.org/10.3390/e27030225