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首页> 外文期刊>Journal of Mechanisms and Robotics: Transactions of the ASME >Decomposition of Collaborative Surveillance Tasks for Execution in Marine Environments by a Team of Unmanned Surface Vehicles
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Decomposition of Collaborative Surveillance Tasks for Execution in Marine Environments by a Team of Unmanned Surface Vehicles

机译:由无人面车辆团队进行海洋环境执行的协同监督任务的分解

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摘要

This paper introduces an approach for decomposing exploration tasks among multiple unmanned surface vehicles (USVs) in congested regions. In order to ensure effective distribution of the workload, the algorithm has to consider the effects of the environmental constraints on the USVs. The performance of a USV is influenced by the surface currents, risk of collision with the civilian traffic, and varying depths due to tides and weather. The team of USVs needs to explore a certain region of the harbor and we need to develop an algorithm to decompose the region of interest into multiple subregions. The algorithm overlays a two-dimensional grid upon a given map to convert it to an occupancy grid, and then proceeds to partition the region of interest among the multiple USVs assigned to explore the region. During partitioning, the rate at which each USV is able to travel varies with the applicable speed limits at the location. The objective is to minimize the time taken for the last USV to finish exploring the assigned area. We use the particle swarm optimization (PSO) method to compute the optimal region partitions. The method is verified by running simulations in different test environments. We also analyze the performance of the developed method in environments where speed restrictions are not known in advance.
机译:本文介绍了一种用于在拥挤地区的多个无人面车辆(USV)之间分解勘探任务的方法。为了确保有效分配工作量,该算法必须考虑环境限制对USV的影响。 USV的性能受到表面电流的影响,与平民交通碰撞的风险,以及由于潮汐和天气而变化的深度。 USVS团队需要探索港口的某个地区,我们需要开发一种算法来将感兴趣区域分解为多个子区域。该算法在给定地图上覆盖二维网格以将其转换为占用网格,然后继续进行分配给探索该区域的多个USV之间的感兴趣区域。在分区期间,每个USV能够旅行的速率随着位置的适用速度限制而变化。目的是最大限度地减少最后一个USV完成探索分配区域所花费的时间。我们使用粒子群优化(PSO)方法来计算最佳区域分区。通过在不同的测试环境中运行模拟来验证该方法。我们还分析了在速度限制未提前已知的环境中的开发方法的性能。

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