论文标题

路径依赖性结构方程模型

Path Dependent Structural Equation Models

论文作者

Srinivasan, Ranjani, Lee, Jaron, Bhattacharya, Rohit, Ahmidi, Narges, Shpitser, Ilya

论文摘要

纵向数据的因果分析通常假定与变量有关的定性因果结构随着时间的流逝仍然不变。在离散时间步骤中定性不同状态之间过渡的结构化系统中,这种方法在两个方面都不足。首先,随时间变化的变量可能具有需要捕获的州特异性因果关系。其次,干预可以导致干预措施下游的状态转变不同于数据中实际观察到的干预措施。换句话说,干预措施可能会反合改变系统的随后时间演变。我们介绍了可以描述此类系统的因果图形模型,依赖路径依赖性结构方程模型(PDSEM)的概括。我们展示了如何在此类模型中进行因果推断,并说明了其在隔膜外科手术过程中获得的模拟和数据中的使用。

Causal analyses of longitudinal data generally assume that the qualitative causal structure relating variables remains invariant over time. In structured systems that transition between qualitatively different states in discrete time steps, such an approach is deficient on two fronts. First, time-varying variables may have state-specific causal relationships that need to be captured. Second, an intervention can result in state transitions downstream of the intervention different from those actually observed in the data. In other words, interventions may counterfactually alter the subsequent temporal evolution of the system. We introduce a generalization of causal graphical models, Path Dependent Structural Equation Models (PDSEMs), that can describe such systems. We show how causal inference may be performed in such models and illustrate its use in simulations and data obtained from a septoplasty surgical procedure.

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