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Algorithmen zur kausalen Entdeckung (PC, FCI, LiNGAM)×Instrumentalvariablen-Methode (IV) zur Kausalinferenz×
FachgebietKausale InferenzGesundheitsökonomie
FamilieRegression modelProcess / pipeline
Entstehungsjahr20001990s (modern applications)
UrheberSpirtes, Glymour & Scheines (PC/FCI); Shimizu et al. (LiNGAM)Angrist & Pischke (applied econometrics); rooted in econometric theory
TypCausal structure learningMethod
Wegweisende QuelleSpirtes, P., Glymour, C., & Scheines, R. (2000). Causation, Prediction, and Search (2nd ed.). MIT Press. ISBN: 978-0262194402Angrist, J. D., & Pischke, J. S. (2009). Mostly Harmless Econometrics: An Empiricist's Companion. Princeton: Princeton University Press. link ↗
AliasnamenPC algorithm, FCI algorithm, LiNGAM, causal structure learningIV, two-stage least squares, TSLS, causal estimation
Verwandt53
ZusammenfassungCausal discovery is a family of algorithms that automatically learn a directed acyclic graph (DAG) describing causal structure directly from observational data. The constraint-based PC and FCI algorithms were developed by Spirtes, Glymour and Scheines (2000), while the LiNGAM model of Shimizu et al. (2006) exploits linear non-Gaussian structure to orient edges.Instrumental variables (IV) is an econometric method to estimate causal effects when treatment or exposure is not randomly assigned and confounding is severe or unmeasured. IV relies on a third variable (instrument) that influences treatment but does not directly affect the outcome, allowing researchers to isolate the causal effect from the noise of confounding. Developed extensively in econometrics (Angrist & Pischke, 1990s–2000s), IV methods are increasingly used in health economics and health services research to leverage natural experiments and policy changes.
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ScholarGateMethoden vergleichen: Causal Discovery Algorithms · Instrumental Variables in Health Research. Abgerufen am 2026-06-18 von https://scholargate.app/de/compare