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MAIHDA×Lojistik Regresyon×
AlanGender StudiesAraştırma istatistiği
AileRegression modelProcess / pipeline
Köken yılı20181958
KökenClare Evans & S. V. Subramanian (building on Juan Merlo)David Roxbee Cox
TürCross-classified random-effects multilevel modelMethod
Seminal kaynakEvans, C. R., Williams, D. R., Onnela, J.-P., & Subramanian, S. V. (2018). A multilevel approach to modeling health inequalities at the intersection of multiple social identities. Social Science & Medicine, 203, 64–73. DOI ↗Cox, D. R. (1958). The regression analysis of binary sequences. Journal of the Royal Statistical Society, Series B, 20(2), 215–242. DOI ↗
Diğer adlarIntersectional MAIHDA, Multilevel Analysis of Individual Heterogeneity and Discriminatory Accuracy, Intersectional Multilevel Analysislogit model, binomial logistic regression, LR
İlişkili33
ÖzetMAIHDA — Multilevel Analysis of Individual Heterogeneity and Discriminatory Accuracy — is a quantitative method for studying intersectional inequalities. Introduced for intersectionality by Clare Evans and S. V. Subramanian in 2018, building on Juan Merlo's discriminatory-accuracy framework, it treats the many strata formed by crossing social categories (for example gender × race/ethnicity × education) as level-2 units in a multilevel model, then partitions outcome variation between and within those strata to assess how much intersectional position predicts the outcome.Logistic regression is a statistical method for modeling the probability of a binary outcome (disease present/absent, success/failure) as a function of continuous and categorical predictors. Developed by David Roxbee Cox (1958), it solves the problem of predicting categorical outcomes by applying a logistic transformation to constrain predictions to the [0,1] probability interval, enabling accurate risk stratification, diagnostic prediction, and causal inference in epidemiology, medicine, and social science.
ScholarGateVeri seti
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  3. PUBLISHED

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ScholarGateYöntem Karşılaştırma: MAIHDA · Logistic Regression. 2026-06-24 tarihinde şu adresten erişildi: https://scholargate.app/tr/compare