基于模糊和 IRLNC 的路由方法,提高物联网中的数据存储和系统可靠性

U. Indumathi;A. R. Arunachalam
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引用次数: 0

摘要

基于物联网(IoT)的传感器网络因其安装简便、成本低廉而被广泛应用于各种领域,用于传输大量数据。在整个过程中,数据很有可能在传输过程中损坏。另一方面,网络性能也会受到各种攻击的影响。为了解决这些问题,我们提出了一种有效的算法,它能共同提供改进的数据存储和可靠的路由选择。首先,在部署传感器节点后,基于模糊专家系统实现存储节点的选举。改进的随机线性网络编码(IRLNC)用于创建编码数据包。来自源节点和邻近节点的编码数据包被传输到存储节点。最后,使用目的地序列距离向量 (DSDV) 算法找到最短路径,将编码后的数据包从存储节点传输到目的地。通过评估一些统计指标,对提出的工作进行了实验分析。根据这些分析,可以看出使用该建议的工作可以获得更好的数据存储系统和系统可靠性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Fuzzy and IRLNC-Based Routing Approach to Improve Data Storage and System Reliability in IoT
Internet of Things (IoT) based sensor network is largely utilized in various field for transmitting huge amount of data due to their ease and cheaper installation. While performing this entire process, there is a high possibility for data corruption in the mid of transmission. On the other hand, the network performance is also affected due to various attacks. To address these issues, an efficient algorithm that jointly offers improved data storage and reliable routing is proposed. Initially, after the deployment of sensor nodes, the election of the storage node is achieved based on a fuzzy expert system. Improved Random Linear Network Coding (IRLNC) is used to create an encoded packet. This encoded packet from the source and neighboring nodes is transmitted to the storage node. Finally, to transmit the encoded packet from the storage node to the destination shortest path is found using the Destination Sequenced Distance Vector (DSDV) algorithm. Experimental analysis of the proposed work is carried out by evaluating some of the statistical metrics. Average residual energy, packet delivery ratio, compression ratio and storage time achieved for the proposed work are 8.8%, 0.92%, 0.82%, and 69 s. Based on this analysis, it is revealed that better data storage system and system reliability is attained using this proposed work.
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