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Accounting for uncertainty in simultaneous task and motion planning using task motion multigraphs

机译:使用任务运动多重图考虑任务和运动计划同时进行的不确定性

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This paper describes an algorithm that considers uncertainty while solving the simultaneous task and motion planning (STAMP) problem. Information about uncertainty is transferred to the task planning level from the motion planning level using the concept of a task motion multigraph (TMM). TMMs were introduced in previous work to improve the efficiency of solving the STAMP problem for mobile manipulators. In this work, Markov Decision Processes are used in conjunction with TMMs to select sequences of actions that solve the STAMP problem such that the resulting solutions have higher probability of feasibility. Experimental evaluation indicates significantly improved probability of feasibility for solutions to the STAMP problem, compared to algorithms that ignore uncertainty information when selecting possible sequences of actions. At the same time, the efficiency due to TMMs is largely maintained.
机译:本文介绍了一种在解决同步任务和运动计划(STAMP)问题时考虑不确定性的算法。使用任务运动多重图(TMM)的概念,将有关不确定性的信息从运动计划级别转移到任务计划级别。在以前的工作中引入了TMM,以提高解决移动机械手的STAMP问题的效率。在这项工作中,将马尔可夫决策过程与TMM结合使用,以选择解决STAMP问题的动作序列,从而使所得的解决方案具有更高的可行性。与在选择可能的动作顺序时忽略不确定性信息的算法相比,实验评估表明,解决STAMP问题的可行性大大提高。同时,很大程度上保持了由于TMM产生的效率。

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