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Informed RRT* towards optimality by reducing size of hyperellipsoid

机译:通过减少超环保的大小来告知RRT *对最优性

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Wrapping-based informed RRT* is a modified version of informed RRT*. Informed RRT* formulates an n-dimensional hyperellipsoid from which it generates new sample nodes. This has a dramatically increased chance of sampling nodes that will improve the current best solution compared to conventional RRT*. However, due to explorative and randomized behaviors of RRT*, the size of the hyperellipsoid will unlikely be small enough to call it effective. To solve this matter, wrapping-based informed RRT* proposed in this paper combines a size-diminishing procedure called `wrapping process' with informed RRT*. The proposed planner can advance from the first solution acquired by the planner to the improved, feasible solution which can drastically reduce the size of the hyperellipsoid. Therefore, the required time consumption in order to acquire the globally optimal solution is reduced dramatically. The algorithm was tested in various environments with different numbers of joint variables and showed much better performance than the existing planners. Furthermore, the wrapping process proved to be a comparably insignificant computational burden regardless of the number of dimensions of the configuration space.
机译:基于包装的信息RRT *是通知RRT *的修改版本。通知RRT *制定一个N维超环保,从中生成新的样本节点。与传统的RRT *相比,这具有显着增加的采样节点的采样节点,这将改善当前最佳解决方案。然而,由于RRT *的探索性和随机行为,超环保的大小不太可能足够小,以称之为有效。为了解决这一问题,本文提出的基于包装的信息的RRT *将尺寸减少过程与知情的RRT *相结合。拟议的计划者可以从计划者获得的第一个解决方案推进到改进的可行解决方案,这可以大大降低高度环保的大小。因此,为了获得全球最佳解决方案的所需时间消耗量大幅降低。该算法在具有不同数量的关节变量的各种环境中进行了测试,并且表现出比现有规划者更好的性能。此外,无论配置空间的维度数量如何,包装过程都被证明是相对微不足道的计算负担。

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