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Robustní vícerozměrná korespondenční analýza (Robustní MCA)×Korepondenční analýza×
OborStatistikaStatistika
RodinaLatent structureLatent structure
Rok vzniku2000s1984
TvůrceExtensions by Hubert, Rousseeuw and collaborators; building on classical MCA by Benzécri (1973) and Greenacre (1984)Jean-Paul Benzécri; Michael Greenacre
TypRobust multivariate dimension reductionExploratory multivariate technique for categorical data
Původní zdrojGreenacre, M. J. (2017). Correspondence Analysis in Practice (3rd ed.). Chapman & Hall / CRC Press, Boca Raton. ISBN: 978-1498731775Greenacre, M. J. (1984). Theory and Applications of Correspondence Analysis. Academic Press. ISBN: 978-0-12-299050-2
Další názvyRobust MCA, Outlier-resistant MCA, Robust HOMALSCA, Simple Correspondence Analysis, Reciprocal Averaging, Karşılıklı Uyum Analizi
Příbuzné42
ShrnutíRobust Multiple Correspondence Analysis extends classical MCA to datasets containing outlying or atypical rows of categorical data. By downweighting influential observations before the singular value decomposition, it produces a low-dimensional map of category relationships that faithfully represents the bulk of the data rather than being distorted by a handful of anomalous cases.Correspondence Analysis (CA) is an exploratory multivariate technique for visualizing the association structure of a two-way contingency table. Developed systematically by Jean-Paul Benzécri in France during the 1960s–1970s and brought to an English-language audience by Michael Greenacre in 1984, CA decomposes the chi-square statistic of a cross-tabulation to produce a low-dimensional joint display — called a biplot — in which rows and columns are represented as points whose proximities reflect their associations.
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ScholarGatePorovnat metody: Robust Multiple Correspondence Analysis · Correspondence Analysis. Získáno 2026-06-17 z https://scholargate.app/cs/compare