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Heterogeneous Vehicle Routing and Teaming with Gaussian Distributed Energy Uncertainty

机译:具有高斯分布能量不确定性的异质车辆路由和团队

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For robot swarms operating on complex missions in an uncertain environment, it is important that the decision-making algorithm considers both heterogeneity and uncertainty. This paper presents a stochastic programming framework for the vehicle routing problem with stochastic travel energy costs and heterogeneous vehicles and tasks. We represent the heterogeneity as linear constraints, estimate the uncertain energy cost through Gaussian process regression, formulate this stochasticity as chance constraints or stochastic recourse costs, and then solve the stochastic programs using branch and cut algorithms to minimize the expected energy cost. The performance and practicality are demonstrated through extensive computational experiments and a practical test case.
机译:对于在不确定的环境中在复杂任务上运行的机器人群,重要的是决策算法考虑异质性和不确定性。本文为随机旅行能源成本和异构车辆和任务提供了一种随机编程框架。我们将异质性代表为线性约束,通过高斯过程回归估计不确定的能源成本,将这种随机性作为机会限制或随机追索费用制定,然后使用分支和切割算法来解决随机节目以最小化预期的能量成本。通过广泛的计算实验和实际测试用例证明了性能和实用性。

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