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Network Autocorrelation Model×Аналіз соціальних мереж×
ГалузьSociologyМережевий аналіз
РодинаRegression modelMachine learning
Рік появи1980 (spatial/network models); 2002 (weight matrix)1934 (sociometry); 1994 (modern formalization)
Автор методуPatrick Doreian; Roger Leenders (weight-matrix synthesis)Moreno, J.L.; formalized by Wasserman & Faust
ТипRegression with an autoregressive term on a network weight matrixStructural/relational analysis framework
Основоположне джерелоLeenders, R. Th. A. J. (2002). Modeling social influence through network autocorrelation: Constructing the weight matrix. Social Networks, 24(1), 21–47. DOI ↗Wasserman, S. & Faust, K. (1994). Social Network Analysis: Methods and Applications. Cambridge University Press. ISBN: 978-0-521-38707-1
Інші назвиnetwork effects model, social influence model, network disturbances model, autoregressive network modelSNA, network analysis, sociometric analysis, relational analysis
Пов'язані45
ПідсумокThe network autocorrelation model adapts spatial-econometric regression to social networks to estimate peer influence: it explains an actor's outcome — an attitude, behavior, or performance — as a function of their own covariates plus a weighted average of their network partners' outcomes. The autocorrelation parameter ρ captures the strength of social influence, and the network weight matrix W encodes who influences whom and how strongly.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.
ScholarGateНабір даних
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ScholarGateПорівняння методів: Network Autocorrelation Model · Social Network Analysis. Отримано 2026-06-24 з https://scholargate.app/uk/compare