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On the Achievable Error Region of Physical Layer Authentication Techniques over Rayleigh Fading Channels

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arxiv 1303.0707 v2 pith:ROS6GYO7 submitted 2013-03-04 cs.IT cs.CRmath.IT

On the Achievable Error Region of Physical Layer Authentication Techniques over Rayleigh Fading Channels

classification cs.IT cs.CRmath.IT
keywords solutionchannelerroriterativeproblemregionauthenticationbound
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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For a physical layer message authentication procedure based on the comparison of channel estimates obtained from the received messages, we focus on an outer bound on the type I/II error probability region. Channel estimates are modelled as multivariate Gaussian vectors, and we assume that the attacker has only some side information on the channel estimate, which he does not know directly. We derive the attacking strategy that provides the tightest bound on the error region, given the statistics of the side information. This turns out to be a zero mean, circularly symmetric Gaussian density whose correlation matrices may be obtained by solving a constrained optimization problem. We propose an iterative algorithm for its solution: Starting from the closed form solution of a relaxed problem, we obtain, by projection, an initial feasible solution; then, by an iterative procedure, we look for the fixed point solution of the problem. Numerical results show that for cases of interest the iterative approach converges, and perturbation analysis shows that the found solution is a local minimum.

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