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Exploring correlations with R using cor.prob and chart.Correlation
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## Correlation matrix with p-values. See http://goo.gl/nahmV for documentation of this function | |
cor.prob <- function (X, dfr = nrow(X) - 2) { | |
R <- cor(X, use="pairwise.complete.obs") | |
above <- row(R) < col(R) | |
r2 <- R[above]^2 | |
Fstat <- r2 * dfr/(1 - r2) | |
R[above] <- 1 - pf(Fstat, 1, dfr) | |
R[row(R) == col(R)] <- NA | |
R | |
} | |
## Use this to dump the cor.prob output to a 4 column matrix | |
## with row/column indices, correlation, and p-value. | |
## See StackOverflow question: http://goo.gl/fCUcQ | |
flattenSquareMatrix <- function(m) { | |
if( (class(m) != "matrix") | (nrow(m) != ncol(m))) stop("Must be a square matrix.") | |
if(!identical(rownames(m), colnames(m))) stop("Row and column names must be equal.") | |
ut <- upper.tri(m) | |
data.frame(i = rownames(m)[row(m)[ut]], | |
j = rownames(m)[col(m)[ut]], | |
cor=t(m)[ut], | |
p=m[ut]) | |
} | |
# get some data from the mtcars built-in dataset | |
mydata <- mtcars[, c(1,3,4,5,6)] | |
# correlation matrix | |
cor(mydata) | |
# correlation matrix with p-values | |
cor.prob(mydata) | |
# "flatten" that table | |
flattenSquareMatrix(cor.prob(mydata)) | |
# plot the data | |
library(PerformanceAnalytics) | |
chart.Correlation(mydata) |
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