首页> 外文会议>Proceedings of the Twentieth international conference on automated planning and scheduling >Planning for Concurrent Action Executions Under Action Duration Uncertainty Using Dynamically Generated Bayesian Networks
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Planning for Concurrent Action Executions Under Action Duration Uncertainty Using Dynamically Generated Bayesian Networks

机译:使用动态生成的贝叶斯网络在行动持续时间不确定性下计划同时行动执行

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An interesting class of planning domains, including planning for daily activities of Mars rovers, involves achievement of goals with time constraints and concurrent actions with probabilistic durations. Current probabilistic approaches, which rely on a discrete time model, introduce a blow up in the search state-space when the two factors of action concurrency and action duration uncertainty are combined. Simulation-based and sampling probabilistic planning approaches would cope with this state explosion by avoiding storing all the explored states in memory, but they remain approximate solution approaches. In this paper, we present an alternative approach relying on a continuous time model which avoids the state explosion caused by time stamping in the presence of action concurrency and action duration uncertainty. Time is represented as a continuous random variable. The dependency between state time variables is conveyed by a Bayesian network, which is dynamically generated by a state-based forward-chaining search based on the action descriptions. A generated plan is characterized by a probability of satisfying a goal. The evaluation of this probability is done by making a query the Bayesian network.
机译:一类有趣的计划领域,包括计划火星漫游者的日常活动,涉及实现具有时间限制的目标和具有概率持续时间的并发动作。当前的概率方法依赖于离散时间模型,当将动作并发和动作持续时间不确定性这两个因素结合在一起时,会在搜索状态空间中引起爆炸。基于仿真和抽样的概率规划方法可以通过避免将所有探索的状态存储在内存中来应对这种状态爆炸,但是它们仍然是近似的解决方案。在本文中,我们提出了一种基于连续时间模型的替代方法,该方法可以避免在动作并发和动作持续时间不确定的情况下由时间戳引起的状态爆炸。时间表示为连续随机变量。贝叶斯网络传达了状态时间变量之间的依赖关系,贝叶斯网络是由基于状态描述的前向搜索基于动作描述动态生成的。生成的计划的特征在于满足目标的可能性。通过查询贝叶斯网络来完成对该概率的评估。

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