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Integration of Matched Filtering within the RF-DNA Fingerprinting Process

机译:RF-DNA指纹识别过程中匹配过滤的集成

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Radio-Frequency Distinct Native Attributes (RFDNA) fingerprinting is a Specific Emitter Identification (SEI) approach developed as a mechanism for enhancing wireless network security. RF-DNA fingerprinting exploits unintentional and distinctively unique Physical (PHY) Layer characteristics that are imparted upon the waveform during its generation and transmission. The RF-DNA fingerprinting approach specifically leverages those PHY Layer characteristics that color a fixed, known sequence of waveform symbols (e.g., IEEE 802.11a preamble). This makes the RF-DNA fingerprinting process well suited to matched filter (MF) integration, because (i) both are generated from a fixed sequence and (ii) the MF maximizes SNR while RF-DNA based radio identification performance is degraded as SNR decreases. In this work, the MF is applied prior to signal transformation, which results in four RF-DNA fingerprint generation scenarios: Fast Fourier Transform (FFT) with a MF (FFT-MF), FFT with an All-Pass Filter (FFT- APF), Gabor Transform with a MF (GT-MF), and GT with an APF (GT-APF). Performance of these four scenarios is assessed using average percent correct classification over degrading signal- to-noise channel conditions. When considering classification performance and IoT device constraints (e.g., memory, computation resources and time), RF-DNA fingerprints generated using the FFT-MF scenario proved superior to the other three.
机译:射频独特的本机属性(RFDNA)指纹识别是一种特定的发射器标识(SEI)方法,被开发为一种增强无线网络安全性的机制。 RF-DNA指纹技术利用无意且独特的物理(PHY)层特性,该特性在波形的生成和传输过程中赋予波形。 RF-DNA指纹识别方法特别利用了那些PHY层特征,这些特征为固定的已知波形符号序列(例如IEEE 802.11a前导码)着色。这使得RF-DNA指纹识别过程非常适合匹配滤波器(MF)集成,因为(i)两者都是从固定序列生成的;并且(ii)MF使SNR最大化,而随着SNR的降低,基于RF-DNA的无线电识别性能会降低。在这项工作中,在信号转换之前先应用MF,这会导致四种RF-DNA指纹生成场景:带MF的快速傅立叶变换(FFT)(FFT-MF),带全通滤波器的FFT(FFT-APF) ),带MF的Gabor变换(GT-MF)和带APF的GT(GT-APF)。在降低信噪比的条件下,使用平均正确分类百分比来评估这四个方案的性能。在考虑分类性能和物联网设备约束条件(例如内存,计算资源和时间)时,使用FFT-MF场景生成的RF-DNA指纹证明优于其他三个指纹。

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