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Triad Census×Dyadic Analysis×ソーシャルネットワーク分析×
分野SociologySociologyネットワーク分析
系統Process / pipelineRegression modelMachine learning
提唱年197019811934 (sociometry); 1994 (modern formalization)
提唱者Paul Holland & Samuel LeinhardtHolland & Leinhardt (p1); Kenny (Social Relations Model)Moreno, J.L.; formalized by Wasserman & Faust
種類Enumeration of the 16 isomorphism classes of directed triadsAnalysis of the dyad as the unit, decomposing relational effectsStructural/relational analysis framework
原典Holland, P. W., & Leinhardt, S. (1970). A method for detecting structure in sociometric data. American Journal of Sociology, 76(3), 492–513. DOI ↗Holland, P. W., & Leinhardt, S. (1981). An exponential family of probability distributions for directed graphs. Journal of the American Statistical Association, 76(373), 33–50. DOI ↗Wasserman, S. & Faust, K. (1994). Social Network Analysis: Methods and Applications. Cambridge University Press. ISBN: 978-0-521-38707-1
別名triad count, triadic census, 16-type triad census, MAN triad censusdyad analysis, dyadic data analysis, social relations model, dyad censusSNA, network analysis, sociometric analysis, relational analysis
関連445
概要The triad census counts how many of a directed network's three-actor subgroups fall into each of the 16 possible types of triad, providing a compact fingerprint of the network's local structure. Introduced by Paul Holland and Samuel Leinhardt in 1970, it is the standard way to test structural theories — balance, clustering, transitivity, ranked clusters — by comparing the observed distribution of triad types against what a random network would produce.Dyadic analysis treats the dyad — the pair of actors and the relation between them — as the unit of analysis, separating the relational outcome into what each actor brings to all their relationships and what is unique to the specific pair. It spans the descriptive dyad census of network analysis and statistical frameworks such as Holland and Leinhardt's p1 model and Kenny's Social Relations Model, all of which respect the structural non-independence inherent in relational data.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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ScholarGate手法を比較: Triad Census · Dyadic Analysis · Social Network Analysis. 2026-06-25に以下より取得 https://scholargate.app/ja/compare