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Interactive construction of graphical decision models based on causal mechanisms

机译:基于因果机制的图形决策模型的交互式构建

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摘要

We propose a framework for building graphical decision models from individual causal mechanisms. Our approach is based on the work of Simon [Simon, H.A., 1953. Causal ordering and identifiability. In: Hood, W.C., Koopmans, T.C. (Eds.), Studies in Econometric Method. Cowles Commission for Research in Economics. Monograph No. 14. John Wiley and Sons Inc., New York, NY, pp. 49-74 (Ch. III)], who proposed a causal ordering algorithm for explicating causal asymmetries among variables in a self-contained set of structural equations. We extend the causal ordering algorithm to under-constrained sets of structural equations, common during the process of problem structuring. We demonstrate that the causal ordering explicated by our extension is an intermediate representation of a modeler's understanding of a problem and that the process of model construction consists of assembling mechanisms into self-contained causal models. We describe IMAGENIE, an interactive modeling tool that supports mechanism-based model construction and demonstrate empirically that it can effectively assist users in constructing graphical decision models.
机译:我们提出了一个框架,用于从各个因果机制构建图形决策模型。我们的方法基于Simon [Simon,H.A.,1953年的工作。因果排序和可识别性。在:华盛顿州胡德市,库普曼斯市(编辑),计量经济学方法研究。考尔斯经济学研究委员会。专着第14号,John Wiley and Sons Inc.,纽约,纽约,第49-74页(第三章)],他提出了一种因果排序算法,用于解释一组独立的结构方程式中变量之间的因果不对称性。我们将因果排序算法扩展到问题方程组构建过程中常见的约束不足的结构方程组。我们证明了扩展所表达的因果顺序是建模者对问题的理解的中间表示,并且模型构建的过程由将机制组装成独立的因果模型组成。我们描述了IMAGENIE,这是一个交互式建模工具,支持基于机制的模型构建,并通过经验证明了它可以有效地帮助用户构建图形决策模型。

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