Faster Generic Identification in Tree-Shaped Structural Causal Models
Yasmine Briefs, Markus Bläser
Abstract
Linear structural causal models (SCMs) are used to analyze the relationships between random variables. Directed edges represent direct causal effects and bidirected edges represent hidden confounders. Generically identifying the causal parameters from observed correlations between the random variables is an open problem in causality. Gupta and Bläser (AAAI 2024, pp. 20404–20411) solve the case of SCMs in which the directed edges form a tree by giving a randomized polynomial time algorithm with running time O ( n 6 ) . We present an improved algo-rithm with running time O ( n 3 log 2 n ) and demonstrate its feasibility by providing an implementation that outperforms existing state-of-the-art implementations.
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- Efficient Identification in Linear Structural Causal Models with Auxiliary CutsetsDaniel Kumor, Carlos Cinelli, Elias BareinboimICML 2020 · 21 citations
- On the Complexity of Identification in Linear Structural Causal ModelsJulian Dörfler, Benito van der Zander, Markus Bläser, Maciej LiskiewiczNeurIPS 2024 · 4 citations
- Identification for Tree-Shaped Structural Causal Models in Polynomial TimeAaryan Gupta, Markus BläserAAAI 2024 · 1 citation
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