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Titel:

Identifying Total Causal Effects in Linear Models under Partial Homoscedasticity

Dokumenttyp:
Konferenzbeitrag
Autor(en):
Strieder, David; Drton, Mathias
Abstract:
A fundamental challenge of scientific research is inferring causal relations based on observed data. One commonly used approach involves utilizing structural causal models that postulate noisy functional relations among interacting variables. A directed graph naturally represents these models and reflects the underlying causal structure. However, classical identifiability results suggest that, without conducting additional experiments, this causal graph can only be identified up to a Markov equi...     »
Herausgeber:
Johan Kwisthout, Silja Renooij
Kongress- / Buchtitel:
Proceedings of Machine Learning Research
Band / Teilband / Volume:
246
Verlag / Institution:
ML Research Press
Jahr:
2024
Monat:
Sep
Seiten:
213-230
Print-ISBN:
2640-3498
Sprache:
en
WWW:
https://proceedings.mlr.press/v213/yu23a.html
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