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因果几何学

Causal Geometry.

作者信息

Chvykov Pavel, Hoel Erik

机构信息

Physics of Living Systems, Massachusetts Institute of Technology, Cambridge, MA 02139, USA.

Allen Discovery Center, Tufts University, Medford, MA 02155, USA.

出版信息

Entropy (Basel). 2020 Dec 26;23(1):24. doi: 10.3390/e23010024.

Abstract

Information geometry has offered a way to formally study the efficacy of scientific models by quantifying the impact of model parameters on the predicted effects. However, there has been little formal investigation of causation in this framework, despite causal models being a fundamental part of science and explanation. Here, we introduce causal geometry, which formalizes not only how outcomes are impacted by parameters, but also how the parameters of a model can be intervened upon. Therefore, we introduce a geometric version of "effective information"-a known measure of the informativeness of a causal relationship. We show that it is given by the matching between the space of effects and the space of interventions, in the form of their geometric congruence. Therefore, given a fixed intervention capability, an effective causal model is one that is well matched to those interventions. This is a consequence of "causal emergence," wherein macroscopic causal relationships may carry more information than "fundamental" microscopic ones. We thus argue that a coarse-grained model may, paradoxically, be more informative than the microscopic one, especially when it better matches the scale of accessible interventions-as we illustrate on toy examples.

摘要

信息几何提供了一种通过量化模型参数对预测效果的影响来正式研究科学模型功效的方法。然而,尽管因果模型是科学和解释的基本组成部分,但在这个框架中对因果关系的正式研究却很少。在这里,我们引入因果几何,它不仅形式化了结果如何受到参数的影响,还形式化了模型参数如何被干预。因此,我们引入了“有效信息”的几何版本——一种已知的因果关系信息量度。我们表明,它由效果空间和干预空间之间的匹配给出,形式为它们的几何全等。因此,给定固定的干预能力,一个有效的因果模型是与那些干预匹配良好的模型。这是“因果涌现”的结果,其中宏观因果关系可能比“基本”微观因果关系携带更多信息。因此,我们认为,矛盾的是,一个粗粒度模型可能比微观模型更具信息量,特别是当它更好地匹配可及干预的尺度时——正如我们在简单示例中所说明的那样。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f9b7/7824647/9ddfbb548b5a/entropy-23-00024-g001.jpg

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