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- W3163223485 abstract "In the modern privacy-sensitive environment, identifying a particular radio device among a larger pool of Internet-of-Thing (IoT) facilities has become more difficult than ever. In particular, the identification process is susceptible to security, mobility, and environment changes. Machine learning techniques, on the other hand, offer a unique learning mechanism to reconstruct corrupted signals from noise and interference at wireless transceiver chains, providing a stable and accurate system for applications on wireless communication. In this paper, we exploit a Deep Learning (DL)-based identification strategy for Radio Frequency (RF) Fingerprints. Specifically, we introduce an Echo State Network (ESN), uniquely suited for nonlinear information processing, to discover dissimilar RF Fingerprints directly from raw transmitted signals, allowing the network to discriminate radio devices. Through an over-the-air WiFi transmission dataset, numerical evaluations demonstrate advantages of the ESN over the cutting-edge DL-based identification approaches, yielding an average classification accuracy of 98.11% while significantly reducing the training overhead. Furthermore, compared to our baseline models with various DL architectures, the ESN can be trained even with a very limited training set without degrading its accuracy." @default.
- W3163223485 created "2021-05-24" @default.
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- W3163223485 date "2021-04-07" @default.
- W3163223485 modified "2023-09-23" @default.
- W3163223485 title "Toward Intelligence in Communication Networks: A Deep Learning Identification Strategy for Radio Frequency Fingerprints" @default.
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- W3163223485 doi "https://doi.org/10.1109/isqed51717.2021.9424319" @default.
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