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Generative Adversarial Network in the Air: Deep Adversarial Learning for Wireless Signal Spoofing

机译:在空中生成的对抗网络:无线信号欺骗的深度逆境学习

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The spoofing attack is critical to bypass physical-layer signal authentication. This paper presents a deep learning-based spoofing attack to generate synthetic wireless signals that cannot be statistically distinguished from intended transmissions. The adversary is modeled as a pair of a transmitter and a receiver that build the generator and discriminator of the generative adversarial network, respectively, by playing a minimax game over the air. The adversary transmitter trains a deep neural network to generate the best spoofing signals and fool the best defense trained as another deep neural network at the adversary receiver. Each node (defender or adversary) may have multiple transmitter or receiver antennas. Signals are spoofed by jointly capturing waveform, channel, and radio hardware effects that are inherent to wireless signals under attack. Compared with spoofing attacks using random or replayed signals, the proposed attack increases the probability of misclassifying spoofing signals as intended signals for different network topology and mobility patterns. The adversary transmitter can increase the spoofing attack success by using multiple antennas, while the attack success decreases when the defender receiver uses multiple antennas. For practical deployment, the attack implementation on embedded platforms demonstrates the low latency of generating or classifying spoofing signals.
机译:欺骗攻击对于绕过物理层信号认证至关重要。本文介绍了基于深度学习的欺骗攻击,以产生不能与预期传输统计学地区分的合成无线信号。对手通过在空气中播放最小游戏,作为一对发射器和接收器,该发射器和接收器分别构建生成的对抗网络的发电机和鉴别器。对手发射器训练了一个深度神经网络,以产生最好的欺骗信号,愚弄作为逆向接收器的另一个深神经网络的最佳防御。每个节点(防御者或对手)可以具有多个发射机或接收器天线。通过联合捕获攻击的无线信号所固有的波形,通道和无线电硬件效果来欺骗信号。与使用随机或重放信号的欺骗攻击相比,所提出的攻击增加了以不同网络拓扑和移动模式的预期信号错误分类欺骗信号的概率。对手发射器可以通过使用多个天线来增加欺骗攻击成功,而当防守接收机使用多个天线时,攻击成功会降低。对于实际部署,嵌入式平台上的攻击实现演示了生成或分类欺骗信号的低延迟。

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