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Event Data Analysis×Qualitative Comparative Analysis×Wordfish Scaling×
분야Political SciencePolitical SciencePolitical Science
계열Process / pipelineProcess / pipelineLatent structure
기원 연도19872008
창시자Conflict-studies and computational-social-science traditions (McClelland, Schrodt, King)Charles C. RaginJonathan Slapin and Sven-Oliver Proksch
유형Automated coding and analysis of who-did-what-to-whom event recordsSet-theoretic, configurational comparative methodUnsupervised latent-position model for word-count data
원전Schrodt, P. A. (2012). Precedents, Progress, and Prospects in Political Event Data. International Interactions, 38(4), 546–569. DOI ↗Ragin, C. C. (1987). The Comparative Method: Moving Beyond Qualitative and Quantitative Strategies. Berkeley: University of California Press. ISBN: 9780520058347Slapin, J. B., & Proksch, S.-O. (2008). A Scaling Model for Estimating Time-Series Party Positions from Texts. American Journal of Political Science, 52(3), 705–722. DOI ↗
별칭Event data coding, Political event data, Conflict event data, CAMEO event codingQCA, csQCA, fsQCA, Configurational comparative methodWordfish text scaling, Poisson scaling of texts, Unsupervised text scaling, Wordfish position estimation
관련334
요약Event data analysis converts streams of news reports into structured records of political interactions — who did what to whom, when — and aggregates them into time series of cooperation and conflict between actors. Each event is coded as a source actor, an action type drawn from an ontology such as CAMEO, a target actor, and a date. Modern systems extract these events automatically from millions of news stories, enabling near-real-time measurement of interstate and intrastate behavior for forecasting and analysis.Qualitative Comparative Analysis (QCA) is a set-theoretic, configurational method that identifies which combinations of conditions are necessary or sufficient for an outcome across a set of cases. Developed by Charles Ragin, it treats each case as a configuration of set memberships, builds a truth table of all logically possible combinations, and uses Boolean algebra to minimize them into the simplest expressions that account for the outcome. It bridges qualitative case knowledge and cross-case generalization, embracing causal complexity through conjunctural causation, equifinality, and asymmetry.Wordfish scaling is an unsupervised text-as-data method that estimates a single latent position for each political document — a party manifesto, a legislative speech, a press release — directly from its word frequencies, without any reference texts or hand coding. Introduced by Slapin and Proksch in 2008, it models word counts as draws from a Poisson distribution whose rate depends on a document position and word-specific parameters, recovering, for example, a left–right ordering of parties purely from how often each word appears in each text.
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ScholarGate방법 비교: Event Data Analysis · Qualitative Comparative Analysis · Wordfish Scaling. 2026-06-25에 다음에서 검색함: https://scholargate.app/ko/compare