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| MRQAP Network Regression× | Uchambuzi wa Mitandao ya Kijamii× | |
|---|---|---|
| Nyanja≠ | Sociology | Uchanganuzi wa Mitandao |
| Familia≠ | Regression model | Machine learning |
| Mwaka wa asili≠ | 1988 (MRQAP); 2007 (double-semipartialing test) | 1934 (sociometry); 1994 (modern formalization) |
| Mwanzilishi≠ | David Krackhardt; David Dekker, David Krackhardt & Tom Snijders | Moreno, J.L.; formalized by Wasserman & Faust |
| Aina≠ | Permutation-based multiple regression for dyadic (matrix) outcomes | Structural/relational analysis framework |
| Chanzo asilia≠ | Krackhardt, D. (1988). Predicting with networks: Nonparametric multiple regression analysis of dyadic data. Social Networks, 10(4), 359–381. DOI ↗ | Wasserman, S. & Faust, K. (1994). Social Network Analysis: Methods and Applications. Cambridge University Press. ISBN: 978-0-521-38707-1 |
| Majina mbadala | MRQAP, multiple regression QAP, Dekker double-semipartialing, QAP regression | SNA, network analysis, sociometric analysis, relational analysis |
| Zinazohusiana≠ | 4 | 5 |
| Muhtasari≠ | Multiple regression quadratic assignment procedure (MRQAP) extends QAP to the regression setting: it predicts a dependent relational matrix from several independent relational matrices on the same actors — for example, modeling who collaborates with whom as a function of who is co-located, who shares a department, and who has prior friendship. Coefficients are estimated by ordinary least squares on the vectorized matrices, but significance is assessed by permutation, because dyadic dependence invalidates the standard regression standard errors. | Social Network Analysis (SNA) is a structural method that maps and measures relationships and flows between people, groups, organizations, or other entities modeled as nodes connected by ties (edges). Rather than focusing on individual attributes, SNA reveals how the pattern of connections shapes behavior, influence, information flow, and outcomes within a system. |
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