Decentralized Vision-Based Byzantine Agent Detection in Multi-Robot Systems with IOTA Smart Contracts

Sahar Salimpour, Farhad Keramat, J. P. Queralta, Tomi Westerlund
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引用次数: 6

Abstract

Multiple opportunities lie at the intersection of multi-robot systems and distributed ledger technologies (DLTs). In this work, we investigate the potential of new DLT solutions such as IOTA, for detecting anomalies and byzantine agents in multi-robot systems in a decentralized manner. Traditional blockchain approaches are not applicable to real-world networked and decentralized robotic systems where connectivity conditions are not ideal. To address this, we leverage recent advances in partition-tolerant and byzantine-tolerant collaborative decision-making processes with IOTA smart contracts. We show how our work in vision-based anomaly and change detection can be applied to detecting byzantine agents within multiple robots operating in the same environment. We show that IOTA smart contracts add a low computational overhead while allowing to build trust within the multi-robot system. The proposed approach effectively enables byzantine robot detection based on the comparison of images submitted by the different robots and detection of anomalies and changes between them.
基于IOTA智能合约的多机器人系统中基于分散视觉的拜占庭代理检测
多个机会存在于多机器人系统和分布式账本技术(dlt)的交叉点。在这项工作中,我们研究了新的DLT解决方案(如IOTA)的潜力,用于以分散的方式检测多机器人系统中的异常和拜占庭代理。传统的区块链方法不适用于连接条件不理想的现实世界网络化和去中心化机器人系统。为了解决这个问题,我们利用IOTA智能合约在分区容忍和拜占庭容忍协作决策过程方面的最新进展。我们展示了我们在基于视觉的异常和变化检测方面的工作如何应用于检测在同一环境中操作的多个机器人中的拜占庭代理。我们表明,IOTA智能合约增加了较低的计算开销,同时允许在多机器人系统中建立信任。该方法通过对不同机器人提交的图像进行比较,并检测它们之间的异常和变化,有效地实现了拜占庭机器人检测。
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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