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LoCUS: A Multi-Robot Loss-Tolerant Algorithm for Surveying Volcanic Plumes

机译:基因座:用于测量火山羽毛的多机器人丢失算法

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Measurement of volcanic CO2 flux by a drone swarm poses special challenges. Drones must be able to follow gas concentration gradients while tolerating frequent drone loss. We present the LoCUS algorithm as a solution to this problem and prove its robustness. LoCUS relies on swarm coordination and self-healing to solve the task. As a point of contrast we also implement the MoBS algorithm, derived from previously published work, which allows drones to solve the task independently. We compare the effectiveness of these algorithms using drone simulations, and find that LoCUS provides a reliable and efficient solution to the volcano survey problem. Further, the novel data-structures and algorithms underpinning LoCUS have application in other areas of fault-tolerant algorithm research.
机译:Volcanic Co的测量 2 无人机群的助手造成特殊挑战。无人机必须能够遵循气体浓度梯度,同时耐受频繁的无人机损失。我们将基因座算法呈现为解决此问题的解决方案,并证明其鲁棒性。轨迹依赖于群体协调和自我修复来解决任务。作为对比度的目的,我们还实现了来自先前发布的工作的Mobs算法,这允许无人机独立解决任务。我们使用无人机仿真比较这些算法的有效性,并发现基因座对火山调查问题提供了可靠而有效的解决方案。此外,新的数据结构和算法基因座在其他容错算法研究领域具有应用。

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