Papers › DoWhy-GCM: An extension of DoWhy for causal inference in graphical causal models

DoWhy-GCM: An extension of DoWhy for causal inference in graphical causal models

14 Jun 2022arXiv:2206.06821archive 2025-07-28

Patrick Blöbaum, Peter Götz, Kailash Budhathoki, Atalanti A. Mastakouri, Dominik Janzing

We present DoWhy-GCM, an extension of the DoWhy Python library, which leverages graphical causal models. Unlike existing causality libraries, which mainly focus on effect estimation, DoWhy-GCM addresses diverse causal queries, such as identifying the root causes of outliers and distributional changes, attributing causal influences to the data generating process of each node, or diagnosis of causal structures. With DoWhy-GCM, users typically specify cause-effect relations via a causal graph, fit causal mechanisms, and pose causal queries -- all with just a few lines of code. The general documentation is available at https://www.pywhy.org/dowhy and the DoWhy-GCM specific code at https://github.com/py-why/dowhy/tree/main/dowhy/gcm.

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choose_variables microsoft/dowhy/dowhy/causal_refuter.py community (archive-listed) ran · our draft was wrong fingerprinted MIT (permissive) · 36145701d6e173b8 · report
perform_bootstrap_test microsoft/dowhy/dowhy/causal_refuter.py community (archive-listed) ran · our draft was wrong MIT (permissive) · 80b0ffe65b0c7576 · report
perform_normal_distribution_test microsoft/dowhy/dowhy/causal_refuter.py community (archive-listed) ran · our draft was wrong MIT (permissive) · f00b9d8cb7351187 · report
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convert_to_binary microsoft/dowhy/dowhy/datasets.py community (archive-listed) unverified MIT (permissive) · 942ea7e9bbeed5c8 · report
stochastically_convert_to_three_level_categorical microsoft/dowhy/dowhy/datasets.py community (archive-listed) unverified MIT (permissive) · 8e71755d9b095ffe · report

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