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Analyzing Plans with Conditional Effects

机译:分析有条件影响的计划

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摘要

Several tasks, such as plan reuse and agent modeling, rely on interpreting a given or observed plan to generate the underlying plan rationale. Although there are several previous methods that successfully extract plan rationales, they do not apply to complex plans, in particular to plans with actions that have conditional effects. In this paper, we introduce SPRAWL, an algorithm to find a minimal annotated partially ordered structure that maximizes a given evaluation function for an observed totally ordered plan with conditional effects. The algorithm proceeds in a two-phased approach, first preprocessing the given plan using a novel needs analysis technique that builds a needs tree to identify the dependencies between operators in the totally ordered plan. The needs tree is then processed to construct a partial ordering that captures the complete rationale of the given plan. We also provide a polynomial-time algorithm to find non-optimal minimal annotated partial orderings of observed totally ordered plans with conditional effects. We provide illustrative examples and discuss the challenges we faced.
机译:诸如计划重用和代理建模之类的若干任务依赖于解释给定或观察到的计划以生成基础计划基本原理。尽管以前有几种方法可以成功地提取计划的基本原理,但它们不适用于复杂的计划,特别是不适用于具有条件性作用的计划。在本文中,我们介绍了SPRAWL,SPRAWL是一种算法,用于找到带注释的最小有序结构,该结构最大程度地提高了观察到的具有条件效应的完全有序计划的给定评估功能。该算法采用两阶段方法进行,首先使用一种新颖的需求分析技术对给定计划进行预处理,该技术会构建需求树以识别完全有序计划中运营商之间的依存关系。然后,对需求树进行处理,以构建部分排序,以捕获给定计划的完整原理。我们还提供了多项式时间算法,以发现具有条件效应的观测到的全序计划的非最优最小带注释局部排序。我们提供了说明性示例,并讨论了我们面临的挑战。

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