Fisher Information Limits of Satellite RF Fingerprint Identifiability for Authentication
Abstract
RF fingerprinting authenticates satellite transmitters by exploiting hardware-specific signal impairments, yet existing methods operate without theoretical performance guarantees. We derive the Fisher information matrix (FIM) for joint estimation of in-phase/quadrature (IQ) imbalance and power amplifier (PA) nonlinearity parameters, establishing Cram\'{e}r-Rao bounds (CRBs) whose structure depends on constellation moments. A necessary condition for full IQ identifiability is that the identifiability factor~ exceeds zero; for binary phase-shift keying (BPSK), yields a rank-deficient FIM, rendering IQ parameters unidentifiable. This provides a plausible theoretical explanation for OrbID's near-random performance (area under the ROC curve, AUC~) on Orbcomm. From the FIM, we define a discrimination metric that predicts which hardware parameters dominate authentication for a given modulation. For constant-modulus PSK signals, PA nonlinearity features are predicted to dominate while IQ features are ineffective. We validate the framework on 24~Iridium satellites using two recording campaigns, achieving cross-file PA fingerprint correlation and confirming all four CRB predictions. A discrimination-ratio-weighted (DR-weighted) authentication test achieves AUC~ from six features versus with equal weighting, outperforming machine-learning classifiers (AUC~) on the same data.
Keywords
Cite
@article{arxiv.2603.29766,
title = {Fisher Information Limits of Satellite RF Fingerprint Identifiability for Authentication},
author = {Haofan Dong and Ozgur B. Akan},
journal= {arXiv preprint arXiv:2603.29766},
year = {2026}
}