השוואת שיטות
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| תפקוד פריט דיפרנציאלי בייסיאני (Bayesian DIF)× | תפקוד פריט דיפרנציאלי (DIF)× | |
|---|---|---|
| תחום | פסיכומטריה | פסיכומטריה |
| משפחה | Latent structure | Latent structure |
| שנת המקור≠ | 1990s–2000s | 1970s–1993 |
| הוגה השיטה≠ | H. Swaminathan & H. J. Rogers (classical DIF); Bayesian extensions developed through Markov chain Monte Carlo IRT methods in the 1990s–2000s | William H. Angoff and colleagues (ETS); systematized by Holland & Wainer |
| סוג≠ | Item bias detection / Bayesian inference | Item-level bias detection |
| מקור מכונן≠ | Swaminathan, H., & Rogers, H. J. (1990). Detecting differential item functioning using logistic regression procedures. Journal of Educational Measurement, 27(4), 361–370. DOI ↗ | Holland, P. W. & Wainer, H. (Eds.) (1993). Differential Item Functioning. Lawrence Erlbaum Associates. ISBN: 978-0805809589 |
| כינויים | Bayesian DIF, Bayesian DIF analysis, Bayesian item bias detection, BDIF | DIF, item bias analysis, measurement non-equivalence, item-level measurement bias |
| קשורות | 5 | 5 |
| תקציר≠ | Bayesian differential item functioning analysis detects whether a test item behaves differently across demographic or cultural groups — such as males vs. females — after accounting for the underlying ability or trait being measured. It applies Bayesian IRT estimation to obtain posterior distributions of item parameters separately per group, then evaluates group differences with posterior credibility intervals or Bayes factors rather than classical p-values. | Differential item functioning identifies test or survey items that behave differently for examinees from different groups — such as gender, ethnicity, or language background — after controlling for the underlying ability or trait being measured. DIF analysis is essential for fairness evaluation in educational testing and psychological scale development. |
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