השוואת שיטות
סקרו את השיטות שבחרתם זו לצד זו; שורות שבהן יש הבדל מודגשות.
| מחקר בדיקת מודלים בייסיאניים× | ניתוח גורמים מאשר (CFA)× | |
|---|---|---|
| תחום≠ | תכנון מחקר | פסיכומטריה |
| משפחה≠ | Process / pipeline | Latent structure |
| שנת המקור≠ | 1935 (Jeffreys); widely adopted in social and behavioral sciences from the 1990s onward | 1969 |
| הוגה השיטה≠ | Harold Jeffreys; formalized for applied sciences by Robert Kass and Adrian Raftery | Karl Gustav Jöreskog |
| סוג≠ | Quantitative inferential research design | Hypothesis-testing latent variable model |
| מקור מכונן≠ | Kass, R. E., & Raftery, A. E. (1995). Bayes factors. Journal of the American Statistical Association, 90(430), 773–795. DOI ↗ | Jöreskog, K. G. (1969). A general approach to confirmatory maximum likelihood factor analysis. Psychometrika, 34(2), 183–202. DOI ↗ |
| כינויים | Bayesian hypothesis testing, Bayesian model comparison, Bayes factor analysis, BMT | CFA, confirmatory FA, measurement model, restricted factor analysis |
| קשורות | 4 | 4 |
| תקציר≠ | Bayesian model testing research is a quantitative design in which competing theoretical models or hypotheses are evaluated by comparing their marginal likelihoods given observed data. The central tool is the Bayes factor — a ratio that quantifies how much more likely the data are under one model than under another. Unlike null-hypothesis significance testing, Bayesian model testing yields direct evidence for or against specific hypotheses, incorporates prior knowledge, and can support a null hypothesis rather than merely failing to reject it. | Confirmatory factor analysis tests a researcher-specified factor structure against observed data. Unlike exploratory approaches, the researcher decides in advance which indicators load on which latent factor, and the model is evaluated by how closely the implied covariance matrix reproduces the sample covariance matrix. CFA is central to scale validation, construct validity assessment, and measurement invariance testing. |
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