使用共识算法的物联网安全区块链

P. Kalpana, I. Anusha Prem
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摘要

第一个内置信任结构的分布式记录保存系统是区块链。它通过跨多个节点的信息冗余为分散控制创建了可靠的体系结构。基于此,本研究提出了一种基于区块链的最小物联网信息交换安全框架。该框架使用双链方法,将数据区块链和交易区块链结合起来。在数据区块链中实现分布式存储和防篡改数据,并使用改进的实用拜占庭容错(PBFT)机制改进共识过程。交易区块链中基于部分盲签名的算法提高了数据注册效率、资源和数据传输以及隐私保护。本文重点介绍了用于物联网(IoT)的区块链系统中采用的共识算法的性能。这样的系统需要时间来完成。共识应该是最小的。三种最流行的共识算法——修正工作量证明、现实拜占庭容错和二元共识——在各种条件下进行评估,包括粒子类型、参与节点数量和无线电传播模型。为了使物联网节点能够在不同的共识算法之间切换,提出了一种综合解决方案。Contiki物联网操作系统模拟显示出强大的性能(达成共识的时间少于秒)
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Block Chain for IOT Security Using Consensus Algorithms
The first distributed recordkeeping system with a built-in trust structure is the block chain. It creates a dependable architecture for decentralized control through information redundancy across multiple nodes. Based on this, this study suggests a minimal block chain-based IoT information exchange security framework. The framework uses a double-chain approach that combines the data block chain and the transaction block chain. Distributed storage and tamper-proof data are implemented in the data block chain, and the consensus process is improved using the improved practical Byzantine fault-tolerant (PBFT) mechanism. Data registration efficiency, resource and data transfers, and privacy protection are all enhanced by better partial blind signature-based algorithms in the transaction block chain. This article focuses on how well the consensus algorithms employed in a block chain system for the Internet of Things perform (IoT). Such systems' time requirements to accomplish. Consensus ought to be minimal. The three most popular consensus algorithms—modified proof of work, realistic byzantine fault tolerance, and binary consensus—are assessed under various conditions, including mote type, number of participating nodes, and radio propagation model. To enable an IoT node to switch between different consensus algorithms, a comprehensive solution is put forward. The Contiki IoT operating system simulations display strong performance (time to achieve consensus less than seconds)
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