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Bio-inspired machine learning based Wireless Sensor Network security

机译:基于生物启发机基的无线传感器网络安全

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Exploring the symbiotic nature of biological systems can result in valuable knowledge for computer networks. Biologically inspired approaches to security in networks are interesting to evaluate because of the analogies between network security and survival of human body under pathogenic attacks. Wireless Sensor Network (WSN) is a network based on multiple low-cost, low-energy sensor nodes connected to physical signals. The network is made up of sensor nodes and gateways, where the server nodes acquire physical world data, while the gateway forwards the data to the end-user. While the spread of viruses in wired systems has been studied in-depth, applying trust in wireless sensor network nodes is an emerging area. This paper uses machine learning techniques to first differentiate between fraudulent and good nodes in the system. Next, it derives inspiration from the human immune system to present an idea of virtual antibodies in the system, to disable the fraudulent nodes in the system.
机译:探索生物系统的共生性质可能导致对计算机网络的宝贵知识。 由于在致病性攻击下的网络安全和人体存活之间的类比,可以评估网络中的安全性的生物学激发方法是有趣的。 无线传感器网络(WSN)是基于多个低成本,低能量传感器节点的网络,连接到物理信号。 网络由传感器节点和网关组成,服务器节点获取物理世界数据,而网关将数据转发到最终用户。 虽然有线系统中病毒的传播已经深入研究了无线传感器网络节点中的信任是新兴区域。 本文采用机器学习技术首先区分系统中的欺诈和良好节点。 接下来,它衍生来自人类免疫系统的灵感,呈现系统中虚拟抗体的想法,以禁用系统中的欺诈节点。

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