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使用混合整数规划降低代理制导问题的计算负荷。

Computational load reduction of the agent guidance problem using Mixed Integer Programming.

机构信息

Divisão de Engenharia de Computação, Instituto Tecnológico de Aeronáutica, São José dos Campos, SP, Brazil.

Divisão de Engenharia Eletrônica, Instituto Tecnológico de Aeronáutica, São José dos Campos, SP, Brazil.

出版信息

PLoS One. 2020 Jun 5;15(6):e0233441. doi: 10.1371/journal.pone.0233441. eCollection 2020.

Abstract

This paper employs a solution to the agent-guidance problem in an environment with obstacles, whose avoidance techniques have been extensively used in the last years. There is still a gap between the solution times required to obtain a trajectory and those demanded by real world applications. These usually face a tradeoff between the limited on-board processing performance and the high volume of computing operations demanded by those real-time applications. In this paper we propose a deferred decision-based technique that produces clusters used for obstacle avoidance as the agent moves in the environment, like a driver that, at night, enlightens the road ahead as her/his car moves along a highway. By considering the spatial and temporal relevance of each obstacle throughout the planning process and pruning areas that belong to the constrained domain, one may relieve the inherent computational burden of avoidance. This strategy reduces the number of operations required and increases it on demand, since a computationally heavier problem is tackled only if the simpler ones are not feasible. It consists in an improvement based solely on problem modeling, which, by example, may offer processing times in the same order of magnitude than the lower-bound given by the relaxed form of the problem.

摘要

本文提出了一种在障碍物环境中解决代理制导问题的方法,该方法在过去几年中得到了广泛应用。在获得轨迹所需的求解时间和实际应用所需的求解时间之间仍然存在差距。这些应用通常面临着机载处理性能有限和实时应用所需的大量计算操作之间的权衡。在本文中,我们提出了一种基于延迟决策的技术,该技术在代理在环境中移动时生成用于避障的簇,就像驾驶员在夜间沿着高速公路行驶时照亮前方的道路一样。通过在规划过程中考虑每个障碍物的空间和时间相关性,并修剪属于约束域的区域,可以减轻避障的固有计算负担。这种策略减少了所需的操作数量,并根据需要增加了操作数量,因为只有在较简单的问题不可行时,才会解决计算量更大的问题。它仅基于问题建模进行改进,例如,它可能提供与问题松弛形式给出的下限相同数量级的处理时间。

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