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Network Text Analysis×Topic Modeling for Communication Research×
分野CommunicationCommunication
系統Process / pipelineMachine learning
提唱年20022003
提唱者Corman et al. (centering resonance analysis); network text traditionDavid Blei et al. (LDA); Roberts, Stewart & Tingley (STM)
種類Representation and analysis of text as networks of linked conceptsUnsupervised probabilistic model of latent themes in document collections
原典Corman, S. R., Kuhn, T., McPhee, R. D., & Dooley, K. J. (2002). Studying complex discursive systems: Centering resonance analysis of communication. Human Communication Research, 28(2), 157–206. DOI ↗Blei, D. M., Ng, A. Y., & Jordan, M. I. (2003). Latent Dirichlet allocation. Journal of Machine Learning Research, 3, 993–1022. link ↗
別名Text network analysis, Centering resonance analysis, Concept network analysis, Ağ Tabanlı Metin AnaliziLDA for communication, Structural topic modeling in communication, Topic models for media texts, İletişim Araştırmaları için Konu Modelleme
関連43
概要Network text analysis represents the content of text not as counts of words or topics but as a network of concepts linked by their relationships, then applies social-network methods to reveal which ideas are central and how they connect. Centering resonance analysis (CRA), introduced by Corman and colleagues in 2002, is a leading variant that builds concept networks from the noun phrases that structure discourse.Topic modeling is an unsupervised technique for discovering the latent themes that run through a large collection of documents, representing each document as a mixture of topics and each topic as a distribution over words. In communication research it surfaces the issues, frames, and themes in news archives, social media, and political text at a scale no manual reading can match, with Latent Dirichlet Allocation (LDA) and the Structural Topic Model (STM) as the dominant variants.
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ScholarGate手法を比較: Network Text Analysis · Topic Modeling for Communication Research. 2026-06-24に以下より取得 https://scholargate.app/ja/compare