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Use of Two-Block Partial Least-Squares to Study Covariation in Shape

Systematic Biology · 2000 · Vol. 49(4) · pp. 740–753
F. James RohlfMarco Corti

Abstract

The relatively new two-block partial least-squares method for analyzing the covariance between two sets of variables is described and contrasted with the well-known method of canonical correlation analysis. Their statistical properties, type of answers, and visualization techniques are discussed. Examples are given to show its usefulness in comparing two sets of variables--especially when one or both of the sets of variables are shape variables from a geometric morphometric study.

Morphological variations and asymmetryImage Retrieval and Classification TechniquesBiologyBlock (permutation group theory)Partial least squares regressionStatisticsMathematicsLeast-squares function approximationEvolutionary biologyCombinatoricsEstimator

MeSH terms

Analysis of VarianceAnimalsBone and BonesFibulaHumerusSkullTibiaUlnaLeast-Squares AnalysisMice

Funding

  • National Science Foundation
Citations
887
FWCI
11.94
field-weighted impact
References
25
Percentile
99%
vs. same field & year
Citations per year
References
A revolution morphometrics
Trends in Ecology & Evolution · 1993 · 1,972 citations
Principal warps: thin-plate splines and the decomposition of deformations
IEEE Transactions on Pattern Analysis and Machine Intelligence · 1989 · 4,879 citations
A User's Guide to Principal Components
Technometrics · 1993 · 3,347 citations
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