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Canonical correspondence analysis
In
applied statistics
,
canonical
correspondence analysis
is a
multivariate
constrained
ordination
technique
that
extracts
major
gradients
among
combinations
of
explanatory variables
in a
dataset
. The requirements of a
CCA
are that the
samples
are
random
and
independent
. Also, the
data
are
categorical
and that the
independent variables
are
consistent
within the
sample
site
and error-free.