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Massive-Scale I/Q Datasets for WiFi Radio Fingerprinting

机译:WiFi无线电指纹图谱的大规模I / Q数据集

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Recent research has proved the effectiveness of neural networks (NNs) in "fingerprinting" (i.e., identifying) wireless radios, by determining the hardware impairments emitted from the transmitter during the waveform transmission process. The artificial neurons of the NN layers are employed to identify and track the radios' unique impairments by training a large amount of raw data released from these radios. Today, the radio fingerprinting field lacks such a large-scale waveform database that can provide a standard benchmark for researchers working on this field. In this paper, we publicly share 2TB of IEEE 802.11 a/g (WiFi) data obtained from 20 bit-similar Software-Defined-Radios (SDRs).
机译:通过确定波形传输过程期间从发射机发射的硬件损伤,最近的研究证明了神经网络(NNS)在“指纹识别”(即,识别)无线无线电中的有效性。 NN层的人工神经元用于通过培训从这些无线电释放的大量原始数据来识别和跟踪无线电的独特损伤。今天,无线电指纹识别领域缺乏如此大规模波形数据库,可以为研究该领域的研究人员提供标准基准。在本文中,我们公开共享从20位类似的软件定义 - 无线电(SDR)获得的IEEE 802.11 A / G(WiFi)数据的2TB。

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