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dtControl 2.0: Explainable Strategy Representation via Decision Tree Learning Steered by Experts

机译:DTControl 2.0:通过专家转向的决策树学习可解释策略表示

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Recent advances have shown how decision trees are apt data structures for concisely representing strategies (or controllers) satisfying various objectives. Moreover, they also make the strategy more explainable. The recent tool dtControl had provided pipelines with tools supporting strategy synthesis for hybrid systems, such as SCOTS and Uppaal Stratego. We present dtControl 2.0, a new version with several fundamentally novel features. Most importantly, the user can now provide domain knowledge to be exploited in the decision tree learning process and can also interactively steer the process based on the dynamically provided information. To this end, we also provide a graphical user interface. It allows for inspection and re-computation of parts of the result, suggesting as well as receiving advice on predicates, and visual simulation of the decision-making process. Besides, we interface model checkers of probabilistic systems, namely STORM and PRISM and provide dedicated support for categorical enumeration-type state variables. Consequently, the controllers are more explainable and smaller.
机译:最近的进步已经示出了决策树是如何简明地代表满足各种目标的策略(或控制器)的APT数据结构。此外,他们还使策略更加解释。最近的工具DTControl提供了管道,具有支持策略合成的工具,用于混合系统,如苏格兰系统和UPPAAL STRATEGO。我们呈现DTControl 2.0,一个新版本,具有几个基本新颖的功能。最重要的是,用户现在可以提供在决策树学习过程中利用的域知识,并且还可以基于动态提供的信息交互式转向处理。为此,我们还提供了一个图形用户界面。它允许检查和重新计算结果,建议以及接收谓词的建议,以及决策过程的视觉模拟。此外,我们界面概率系统的模型检查,即风暴和棱镜,并为分类枚举型状态变量提供专用支持。因此,控制器更可说明并且更小。

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