English

Performance Analysis of Physical Layer Security: From Far-Field to Near-Field

Information Theory 2025-04-11 v2 Signal Processing math.IT

Abstract

The secrecy performance in both near-field and far-field communications is analyzed using two fundamental metrics: the secrecy capacity under a power constraint and the minimum power requirement to achieve a specified secrecy rate target. 1) For the secrecy capacity, a closed-form expression is derived under a discrete-time memoryless setup. This expression is further analyzed under several far-field and near-field channel models, and the capacity scaling law is revealed by assuming an infinitely large transmit array and an infinitely high power. A novel concept of "depth of insecurity" is proposed to evaluate the secrecy performance achieved by near-field beamfocusing. It is demonstrated that increasing the number of transmit antennas reduces this depth and thus improves the secrecy performance. 2) Regarding the minimum required power, a closed-form expression is derived and analyzed within far-field and near-field scenarios. Asymptotic analyses are performed by setting the number of transmit antennas to infinity to unveil the power scaling law. Numerical results are provided to demonstrate that: i) compared to far-field communications, near-field communications expand the areas where secure transmission is feasible, specifically when the eavesdropper is located in the same direction as the intended receiver; ii) as the number of transmit antennas increases, neither the secrecy capacity nor the minimum required power scales or vanishes unboundedly, adhering to the principle of energy conservation.

Keywords

Cite

@article{arxiv.2408.10706,
  title  = {Performance Analysis of Physical Layer Security: From Far-Field to Near-Field},
  author = {Boqun Zhao and Chongjun Ouyang and Xingqi Zhang and Yuanwei Liu},
  journal= {arXiv preprint arXiv:2408.10706},
  year   = {2025}
}

Comments

16 pages, 15 figures