A Survey of Machine Learning-based Physical-Layer Authentication in Wireless Communications
Rui Meng, Bingxuan Xu, Xiaodong Xu, Mengying Sun, Bizhu Wang, Shujun, Han, Suyu Lv, Ping Zhang

TL;DR
This survey reviews machine learning-based physical-layer authentication methods in wireless communications, categorizing schemes, discussing datasets, and outlining future research directions for improved security.
Contribution
It provides a comprehensive overview of ML-based PLA techniques, categorizes existing schemes, and highlights open datasets and future research avenues.
Findings
Deep learning models, especially CNNs, are extensively used for device identification.
ML techniques automate attack detection, reducing manual threshold setting.
Open datasets for RF and channel fingerprints support ML-based PLA research.
Abstract
To ensure secure and reliable communication in wireless systems, authenticating the identities of numerous nodes is imperative. Traditional cryptography-based authentication methods suffer from issues such as low compatibility, reliability, and high complexity. Physical-Layer Authentication (PLA) is emerging as a promising complement due to its exploitation of unique properties in wireless environments. Recently, Machine Learning (ML)-based PLA has gained attention for its intelligence, adaptability, universality, and scalability compared to non-ML approaches. However, a comprehensive overview of state-of-the-art ML-based PLA and its foundational aspects is lacking. This paper presents a comprehensive survey of characteristics and technologies that can be used in the ML-based PLA. We categorize existing ML-based PLA schemes into two main types: multi-device identification and attack…
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Taxonomy
TopicsWireless Signal Modulation Classification · Wireless Communication Security Techniques · Asian Culture and Media Studies
