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Wavelet Fingerprinting of Radio-Frequency Identification (RFID) Tags

机译:射频识别(RFID)标签的小波指纹

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摘要

Unintentional modulations of the electromagnetic signal of radio-frequency (RF) emitters are used to identify individual sources of signals as unique from emitters of the same type in a procedure known as RF fingerprinting. It allows for the identification and tracking of physical threats, prevention of unauthorized access, and detecting cloning of sensitive devices. Machine learning techniques assist RF fingerprinting by providing automatic recognition of these unique aspects of individual RF emitters. RF identification (RFID) tags are a common RF emitter used to track supplies and are also present in credit cards and passports to allow for automatic recognition or monetary transfers. Despite advances in RFID cryptography, RFID tags can still be easily cloned and tracked. Here, we implement RF fingerprinting to authenticate individual RFID tags at the physical layer. Features are extracted using the dynamic wavelet fingerprint, and supervised pattern classification techniques are used to identify unique RFID tags with up to 99% accuracy.
机译:射频(RF)发射器的电磁信号的无意调制被用来识别单个信号源,该信号源在称为RF指纹识别的过程中是同一类型的发射器唯一的。它允许识别和跟踪物理威胁,防止未经授权的访问以及检测敏感设备的克隆。机器学习技术通过自动识别单个RF发射器的这些独特方面来辅助RF指纹识别。射频识别(RFID)标签是一种常见的射频发射器,用于跟踪耗材,并且也存在于信用卡和护照中,以实现自动识别或汇款。尽管RFID加密技术取得了进步,但仍可以轻松地克隆和跟踪RFID标签。在这里,我们实现了RF指纹识别,以在物理层上对各个RFID标签进行身份验证。使用动态小波指纹提取特征,并使用监督模式分类技术以高达99%的精度识别唯一的RFID标签。

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