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Two-stage Hybrid A* path-planning in large petrochemical complexes

机译:大型石化综合体的两阶段混合A *路径规划

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In this study, we aim to achieve path-planning for firefighter robots in large petrochemical complexes. In large environments, path-planning (e.g., Hybrid A*) requires a large computation memory and a long execution time. These constrains are not feasible for firefighter robots. In order to overcome these two challenges, we propose a two-stage hybrid A* path-planning. For the first stage we use a global path-planner that makes a path using a low-resolution grid map of 2 m. The global path-planner generates a path for an area of approx. 500 m ×1000 m in 10 seconds. In the second stage, we refine the path by using a local-planner that uses a local-map of 100 m ×100 m size around the robot with a high resolution grid of 1 m. The local planner receives its sub-goal from the global planner and recalculates a local path at a high speed of a few hundred milliseconds. Therefore, the local-planner can react to changes of the map due to obstacles in real-time. We evaluated our proposed method by comparing with conventional hybrid A* in simulated as well as real experimental data of petrochemical complexes. By employing the local-planner our method could drastically reduce the used memory and execution time for the re-planning. For a trajectory of 600 m, our method reduces the execution time by 99.2% for real data and by 94.34% for simulated data. The memory usage was likewise drastically reduced by 97.45% for real data and by 97.91% for simulated data.
机译:在这项研究中,我们旨在为大型石化工厂中的消防员机器人实现路径规划。在大型环境中,路径规划(例如Hybrid A *)需要大量的计算内存和较长的执行时间。这些约束对于消防员机器人是不可行的。为了克服这两个挑战,我们提出了两阶段混合A *路径规划。在第一阶段,我们使用全局路径规划器,该路径规划器使用2 m的低分辨率网格图进行绘制。全局路径规划器会生成一条约占地面积的路径。 10秒内达到500 m×1000 m。在第二阶段中,我们通过使用局部规划器来优化路径,该局部规划器使用具有1 m高分辨率网格的围绕机器人的100 m×100 m尺寸的局部地图。本地计划程序从全局计划程序接收其子目标,并以几百毫秒的高速重新计算本地路径。因此,本地规划人员可以实时对由于障碍物引起的地图变化做出反应。我们通过与常规杂化A *在石化配合物的模拟以及实际实验数据中进行比较来评估我们提出的方法。通过使用本地计划程序,我们的方法可以大大减少重新计划所需的内存和执行时间。对于600 m的轨迹,我们的方法对真实数据的执行时间减少了99.2 \%,对于模拟数据的执行时间减少了94.34 \%。同样,对于真实数据,内存使用量也大幅度降低了97.45%,对于模拟数据,则大幅降低了97.91%。

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