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Emergence Detection in Bibliometrics×Co-word 분석×
분야Science Technology Studies과학계량학
계열Process / pipelineProcess / pipeline
기원 연도20031983
창시자Jon Kleinberg (burst detection); Daniele Rotolo, Diana Hicks & Ben Martin (emerging-technology criteria)Michel Callon, Jean-Pierre Courtial, and colleagues
유형Bibliometric / text-mining detection pipelineScientometric network analysis technique
원전Kleinberg, J. (2003). Bursty and hierarchical structure in streams. Data Mining and Knowledge Discovery, 7(4), 373-397. DOI ↗Callon, M., Courtial, J. P., Turner, W. A., & Bauin, S. (1983). From translations to problematic networks: An introduction to co-word analysis. Social Science Information, 22(2), 191–235. DOI ↗
별칭Emerging topic detection, Burst detection in bibliometrics, Emerging technology detectionkeyword co-occurrence analysis, co-word mapping, keyword co-word network, CWA
관련46
요약Emergence detection in bibliometrics is a family of text-mining and bibliometric methods for spotting emerging research topics and technologies early, by analysing the dynamics of terms, citations, and references in publication streams. It combines burst-detection algorithms that flag sudden surges in usage with operational criteria for what makes a topic genuinely 'emerging', turning large scholarly corpora into early signals of scientific and technological change.Co-word analysis is a scientometric technique that quantifies how often pairs of keywords, subject terms, or title words appear together across a corpus of publications. By treating simultaneous occurrence as a proxy for conceptual relatedness, it constructs networks and clusters that reveal the intellectual structure, dominant themes, and emerging sub-fields of a research domain.
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