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Analiza kompozicionih podataka (CoDA)×Симболичка анализа података×
OblastStatistikaMeko računarstvo
PorodicaRegression modelMachine learning
Godina nastanka19822003
TvoracJohn AitchisonEdwin Diday; Lynne Billard
TipConstrained multivariate statistical methodStatistical framework for aggregate and set-valued data
Temeljni izvorAitchison, J. (1982). The statistical analysis of compositional data. Journal of the Royal Statistical Society: Series B, 44(2), 139–177. DOI ↗Billard, L., & Diday, E. (2003). From the statistics of data to the statistics of knowledge: symbolic data analysis. Journal of the American Statistical Association, 98(462), 470–487. DOI ↗
Drugi naziviCoDA, Simplex Analysis, Log-Ratio Analysis, Bileşim Veri AnaliziSDA, Interval Data Analysis, Distributional Data Analysis, Sembolik Veri Analizi
Srodne21
SažetakCompositional Data Analysis (CoDA) is a branch of multivariate statistics designed for data that represent parts of a whole — proportions, percentages, or concentrations that sum to a constant. Introduced by John Aitchison in his landmark 1982 paper, CoDA recognises that standard Euclidean methods fail on the simplex and instead operates through log-ratio transformations that respect the relative nature of compositional information.Symbolic Data Analysis (SDA) is a statistical framework designed to analyze complex, aggregate, or set-valued data — called symbolic data — in which each observation represents a group or concept rather than a single scalar. Introduced in its modern statistical form by Lynne Billard and Edwin Diday in 2003, SDA extends classical statistics to handle interval-valued, histogram-valued, and multi-valued variables, enabling rigorous inference at the level of knowledge rather than raw individual records.
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ScholarGateUporedite metode: Compositional Data Analysis · Symbolic Data Analysis. Preuzeto 2026-06-15 sa https://scholargate.app/sr/compare