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Generative Adversarial Networks Based Industrial Protocol Construction in the Fog Computing

机译:雾计算中基于对抗网络的工业协议构建

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Industrial protocols are critical communication elements for networking components in industrial applications, and plays core rule for security audit and anomalous detection. The emerging of fog computing paradigm makes that intelligence moves down to the industrial devices for enhanced local computational capability. In this work, deep convolutional generative adversarial networks (GAN) is applied for designing industrial protocol construction scheme, in which a discriminator and a generator are respectively established to achieve collaborative training and optimization. Siemens S7 protocol payloads are transformed into gray scale images for texture feature extraction, and a data set of industrial protocols are adopted for implementation. The adversarial training model could be uploaded in the industrial cloudlets, and the proposed protocol construction scheme will launch a perspective for establishing honeypots or honeynets in the fog computing.
机译:工业协议是工业应用中网络组件的关键通信元素,并扮演安全审核和异常检测的核心规则。雾计算范式的出现使智能向下转移到工业设备上,以增强本地计算能力。在这项工作中,将深度卷积生成对抗网络(GAN)用于设计工业协议构建方案,在该方案中,分别建立鉴别器和生成器以实现协作训练和优化。西门子S7协议有效载荷被转换为用于纹理特征提取的灰度图像,并采用工业协议的数据集来实现。对抗训练模型可以上传到工业云中,并且所提出的协议构建方案将为在雾计算中建立蜜罐或蜜网提供一个视角。

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