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A novel Byzantine fault tolerance consensus for Green IoT with intelligence based on reinforcement

机译:基于加固的智能绿色物联网新型拜占庭容错共识

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摘要

To enhance the consensus performance of Blockchain in the Green Internet of Things (G-IoT) and improve the static network structure and communication overheads in the Practical Byzantine Fault Tolerance (PBFT) consensus algorithm, in this paper, we propose a Credit Reinforce Byzantine Fault Tolerance (CRBFT) consensus algorithm by using reinforcement learning. The CRBFT algorithm divides the nodes into three types, each with different responsibilities: master node, sub-nodes, and candidate nodes, and sets the credit attribute to the node. The node's credit can be adjusted adaptively through the reinforcement learning algorithm, which can dynamically change the state of nodes. CRBFT algorithm can automatically identify malicious nodes and invalid nodes, making them exit from the consensus network. Experimental results show that the CRBFT algorithm can effectively improve the consensus network's security. Besides, compared with the PBFT algorithm, in CRBFT, the consensus delay is reduced by about 40%, and the traffic overhead is reduced by more than 45%. This reduction is conducive to save energy and reduce emissions.
机译:为了加强在绿色互联网中区块链的共识性能(G-IOT)并提高静态网络结构和实际拜占庭耐受性的通信开销(PBFT)共识算法,在本文中,我们提出了一种信用加固拜占庭故障使用加强学习的公差(CRBFT)共识算法。 CRBFT算法将节点划分为三种类型,每个类型具有不同的职责:主节点,子节点和候选节点,并将信用属性设置为节点。可以通过加强学习算法自适应地调整节点的信用,这可以动态地改变节点状态。 CRBFT算法可以自动识别恶意节点和无效节点,使其退出共识网络。实验结果表明,CRBFT算法可以有效提高共识网络的安全性。此外,与CRBFT中的PBFT算法相比,共识延迟减少了约40%,交通开销减少超过45%。这种减少有利于节约能源和减少排放。

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