Security-Aware Routing Protocol Based on Artificial Neural Network Algorithm and 6LoWPAN in the Internet of Things

Jiangdong Lu, Dongfang Li, Penglong Wang, Fen Zheng, Meng Wang
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引用次数: 6

Abstract

Today, with increasing information technology such as the Internet of Things (IoT) in human life, interconnection and routing protocols need to find optimal solution for safe data transformation with various smart devices. Therefore, it is necessary to provide an enhanced solution to address routing issues with respect to new interconnection methodologies such as the 6LoWPAN protocol. The artificial neural network (ANN) is based on the structure of intelligent systems as a branch of machine interference, has shown magnificent results in previous studies to optimize security-aware routing protocols. In addition, IoT devices generate large amounts of data with variety and accuracy. Therefore, higher performance and better data handling can be achieved when this technology incorporates data for sending and receiving nodes in the environment. Therefore, this study presents a security-aware routing mechanism for IoT technologies. In addition, a comparative analysis of the relationship between previous approaches discusses with quality of service (QoS) factors such as throughput and accuracy for improving routing mechanism. Experimental results show that the use of time-division multiple access (TDMA) method to schedule the sending and receiving of data and the use of the 6LoWPAN protocol when routing the sending and receiving of data can carry out attacks with high accuracy.
物联网中基于人工神经网络算法和6LoWPAN的安全感知路由协议
在物联网等信息技术日益深入人类生活的今天,互连和路由协议需要找到与各种智能设备进行安全数据转换的最佳解决方案。因此,有必要提供一个增强的解决方案来解决与新的互连方法(如6LoWPAN协议)相关的路由问题。人工神经网络(artificial neural network, ANN)是基于智能系统结构的机器干扰研究的一个分支,在优化安全感知路由协议方面取得了丰硕的成果。此外,物联网设备生成大量数据,具有多样性和准确性。因此,当该技术将环境中的发送和接收节点的数据合并在一起时,可以实现更高的性能和更好的数据处理。因此,本研究提出了一种物联网技术的安全感知路由机制。此外,本文还比较分析了以往方法之间的关系,讨论了吞吐量和精度等服务质量因素对改进路由机制的影响。实验结果表明,采用时分多址(TDMA)方法调度数据的发送和接收,在路由数据的发送和接收时使用6LoWPAN协议,可以进行高精度的攻击。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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