论文标题

UWB角色分配具有分布式分类帐技术,用于在多机器人系统中可扩展的相对定位

UWB Role Allocation with Distributed Ledger Technologies for Scalable Relative Localization in Multi-Robot Systems

论文作者

Morón, Paola Torrico, Salimi, Salma, Queralta, Jorge Peña, Westerlund, Tomi

论文摘要

基于超宽带(UWB)范围的多机器人系统中相对定位的系统最近已成为GNSS贬低环境的强大解决方案。可伸缩性仍然是主要挑战之一,尤其是在临时部署中。最近的解决方案包括针对系统中不同机器人或节点的主动和被动定位模式的动态分配。随着较大规模的系统的分布越来越多,关键的研究问题在此类本地化系统的安全性和可信度领域都会出现。本文研究了协作决策过程与分布式分类帐技术的潜在整合。具体而言,我们研究了一种方法,用于在区块链中智能合约中运行UWB角色分配算法的方法。在以前的作品中,我们分别研究了ROS2与HyperLeDger织物区块链的集成,并引入了一种用于基于UWB的本地化的新算法。在本文中,我们通过(i)运行实验扩展了这些作品,其中大量的移动机器人在不同的空间配置之间切换,并且(ii)将动态UWB角色分配算法集成到织物智能合约中,以在多个移动机器人的系统中分布式决策。这使我们能够通过增强的身份和数据访问管理在安全且可信赖的过程中提供相同的功能。我们的结果表明,UWB角色分配对六个自动移动机器人的连续变化空间形成的有效性,同时证明对添加不影响本地化过程的区块链层的潜伏期和计算资源的影响很小。

Systems for relative localization in multi-robot systems based on ultra-wideband (UWB) ranging have recently emerged as robust solutions for GNSS-denied environments. Scalability remains one of the key challenges, particularly in ad-hoc deployments. Recent solutions include dynamic allocation of active and passive localization modes for different robots or nodes in the system. With larger-scale systems becoming more distributed, key research questions arise in the areas of security and trustability of such localization systems. This paper studies the potential integration of collaborative-decision making processes with distributed ledger technologies. Specifically, we investigate the design and implementation of a methodology for running an UWB role allocation algorithm within smart contracts in a blockchain. In previous works, we have separately studied the integration of ROS2 with the Hyperledger Fabric blockchain, and introduced a new algorithm for scalable UWB-based localization. In this paper, we extend these works by (i) running experiments with larger number of mobile robots switching between different spatial configurations and (ii) integrating the dynamic UWB role allocation algorithm into Fabric smart contracts for distributed decision-making in a system of multiple mobile robots. This enables us to deliver the same functionality within a secure and trustable process, with enhanced identity and data access management. Our results show the effectiveness of the UWB role allocation for continuously varying spatial formations of six autonomous mobile robots, while demonstrating a low impact on latency and computational resources of adding the blockchain layer that does not affect the localization process.

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