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Novel approach for security in Wireless Sensor Network using bio-inspirations

机译:利用生物灵感的无线传感器网络安全性的新方法

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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 communication and computing devices connected to sensor nodes which sense physical parameters. While the spread of viruses in wired systems has been studied in-depth, applying trust in WSN is an emerging research area. Security threats can be introduced in WSN through various means, such as a benevolent sensor node turning fraudulent after a certain period of time. The proposed research work uses biological inspirations and machine learning techniques for adding security against such threats. While it uses machine learning techniques to identify the fraudulent nodes, consecutively by deriving inspiration from human immune system it effectively nullify the impact of the fraudulent ones on the network. Proposed work has been implemented in LabVIEW platform and obtained results that demonstrate the accuracy, robustness of the proposed model.
机译:探索生物系统的共生性质可以为计算机网络带来有价值的知识。由于网络安全性和在病原体攻击下人体的生存之间的类比,因此受到生物学启发的网络安全性方法很值得评估。无线传感器网络(WSN)是一个基于多个低成本通信和计算设备的网络,这些设备连接到可感测物理参数的传感器节点。虽然已经深入研究了病毒在有线系统中的传播,但在WSN中应用信任是一个新兴的研究领域。可以通过各种方式在WSN中引入安全威胁,例如,在某个时间段之后,一个仁慈的传感器节点会变成欺诈行为。拟议的研究工作利用生物学灵感和机器学习技术来增加针对此类威胁的安全性。当它使用机器学习技术来识别欺诈节点时,它通过从人类免疫系统获得启发来连续地有效地消除了欺诈节点对网络的影响。拟议的工作已在LabVIEW平台中实现,并获得了表明拟议模型的准确性,鲁棒性的结果。

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