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指数ランダムグラフモデル (ERGM / p*)×テキストネットワーク分析×
分野ネットワーク分析テキストマイニング
系統Process / pipelineProcess / pipeline
提唱年1986 (foundational); modern ERGM framework 1996–20072011 (Paranyushkin); 2005 (Diesner & Carley)
提唱者Frank & Strauss (1986); extended by Wasserman & Pattison (1996) and Robins et al. (2007)Dmitry Paranyushkin; Jana Diesner & Kathleen M. Carley
種類Probabilistic generative network modelText-mining network method
原典Robins, G., Pattison, P., Kalish, Y., & Lusher, D. (2007). An introduction to exponential random graph (p*) models for social networks. Social Networks, 29(2), 173-191. DOI ↗Paranyushkin, D. (2011). Identifying the Pathways for Meaning Circulation Using Text Network Analysis. Nodus Labs. link ↗
別名ERGM, p-star model, p* model, Üstel Rastgele Graf Modeli (ERGM / p*)semantic network analysis, word co-occurrence network, Metin Ağ Analizi (Text Network Analysis)
関連64
概要The Exponential Random Graph Model (ERGM), also known as the p* model, is a statistical framework for network analysis that models the probability of an observed network as a function of its local structural features — such as reciprocity, triangles, and degree distribution. Developed from the foundational work of Frank and Strauss (1986) and extended into the modern framework by Wasserman and Pattison (1996) and Robins et al. (2007), ERGM is the inferential standard for social network analysis, capable of testing whether observed network structures arise by chance or reflect genuine social processes.Text network analysis models the words or concepts in a text as nodes and their co-occurrences as edges, then uses network metrics to reveal the structure of meaning. The approach was advanced by Diesner and Carley (2005) for communication networks and by Paranyushkin (2011) for tracing the pathways of meaning circulation in text.
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ScholarGate手法を比較: Exponential Random Graph Model · Text Network Analysis. 2026-06-15に以下より取得 https://scholargate.app/ja/compare