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Appropriate Causal Models and Stability of Causation

机译:适当的因果模型和因果稳定性

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摘要

Causal models defined in terms of structural equations have proved to be quite a powerful way of representing knowledge regarding causality. However, a number of authors have given examples that seem to show that the Halpern-Pearl (HP) definition of causality (Halpern & Pearl 2005) gives intuitively unreasonable answers. Here it is shown that, for each of these examples, we can give two stories consistent with the description in the example, such that intuitions regarding causality are quite different for each story. By adding additional variables, we can disambiguate the stories. Moreover, in the resulting causal models, the HP definition of causality gives the intuitively correct answer. It is also shown that, by adding extra variables, a modification to the original HP definition made to deal with an example of Hopkins and Pearl (2003) may not be necessary. Given how much can be done by adding extra variables, there might be a concern that the notion of causality is somewhat unstable. Can adding extra variables in a "conservative" way (i.e., maintaining all the relations between the variables in the original model) cause the answer to the question "Is X = x a cause of Y = y?" to alternate between "yes" and "no"? Here it is shown that adding an extra variable can change the answer from "yes' to "no", but after that, it cannot cannot change back to "yes".
机译:在结构方程方面定义的因果模型被证明是代表因果关系的知识的强大方式。然而,许多作者已经给出了似乎表明Halpern-Pearl(HP)的因果关系定义(Halpern&Pearl 2005)的定义提供了直观的不合理答案。这里示出了,对于这些示例中的每一个,我们可以给出两个故事与该示例中的描述一致,使得关于每个故事的关于因果的直觉是完全不同的。通过添加其他变量,我们可以消除故事。此外,在结果的因果模型中,因果关系的HP定义给出了直观的正确答案。还表明,通过添加额外变量,可能不是必要的对原始HP定义的修改,可能是不需要处理霍普金斯和珍珠(2003)的例子。鉴于添加额外变量可以完成多少,可能有一个担心因果关系的概念有点不稳定。可以以“保守派”方式添加额外变量(即,维护原始模型中的变量之间的所有关系)导致问题的答案“是x = x y = y的原因?”在“是”和“否”之间交替?这里显示添加额外变量可以将答案从“是”更改为“否”,但之后,它不能重新返回“是”。

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