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Incremental Heuristic Search for Planning with Temporally Extended Goals and Uncontrollable Events

机译:增量启发式搜索,用于临时扩展目标和无法控制的事件的计划

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Planning with temporally extended goals and uncontrollable events has recently been introduced as a formal model for system reconfiguration problems. An important application is to automatically reconfigure a real-life system in such a way that its subsequent internal evolution is consistent with a temporal goal formula.In this paper we introduce an incremental search algorithm and a search-guidance heuristic, two generic planning enhancements. An initial problem is decomposed into a series of subproblems, providing two main ways of speeding up a search. Firstly, a subproblem focuses on a part of the initial goal. Secondly, a notion of action relevance allows to explore with higher priority actions that are heuristically considered to be more relevant to the subproblem at hand.Even though our techniques are more generally applicable, we restrict our attention to planning with temporally extended goals and uncontrollable events. Our ideas are implemented on top of a successful previous system that performs online learning to better guide planning and to safely avoid potentially expensive searches. In experiments, the system speed performance is further improved by a convincing margin.
机译:最近将具有时间扩展目标和不可控制事件的计划作为系统重新配置问题的正式模型引入。一个重要的应用是自动重新配置现实生活中的系统,使其后续内部演化与时间目标公式一致。 在本文中,我们介绍了一种增量式搜索算法和一个搜索指导启发式算法,这是两个通用的计划增强功能。最初的问题分解为一系列子问题,提供了两种加快搜索速度的主要方式。首先,一个子问题侧重于最初目标的一部分。其次,动作相关性的概念允许以更高优先级来探索被启发认为与当前子问题更相关的动作。 即使我们的技术更普遍适用,我们也将注意力集中在具有暂时性目标和无法控制的事件的计划上。我们的想法是在成功的先前系统的基础上实现的,该系统执行在线学习以更好地指导计划并安全地避免潜在的昂贵搜索。在实验中,令人信服的裕度进一步提高了系统速度性能。

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