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I have a data.frame and I want to calculate correlation coefficients using one column against the other columns (there are some non-numeric columns in the frame as well).

ddply(Banks,.(brand_id,standard.quarter),function(x) { cor(BLY11,x) })
# Error in cor(BLY11, x) : 'y' must be numeric

I tested against is.numeric(x)

ddply(Banks,.(brand_id,standard.quarter),function(x) { if is.numeric(x) cor(BLY11,x) else 0 })

but that failed every comparison and returned 0 and returned only one column, as if its only being called once. What is being passed to the function? Just coming to R and I think there's something fundamental I'm missing.


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5 Answers 5

up vote 2 down vote accepted

Try something like this one

cor(longley[, 1], longley[ , sapply(longley, is.numeric)])

    GNP.deflator       GNP Unemployed Armed.Forces Population      Year  Employed
[1,]            1 0.9915892  0.6206334    0.4647442  0.9791634 0.9911492 0.9708985
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Basically the same as my answer, with sed s/d/longley/ <mine >yours ;) -- except I see now that there's not need for my explicitly conversion to a matrix. Thanks. –  Josh O'Brien Aug 29 '12 at 17:08
Great! So close, ddply(Banks,.(brand_id,standard.quarter),function(x) {cor(x$BLY11, x[ , sapply(x, is.numeric)])}) - gets me the correlations, but I've lost the column names. They are all V1 ... V167. How best to get the original column names to come along? –  LCricket Aug 29 '12 at 18:20
@LCricket wrap the cor(...) in as.data.frame() to force your function to return a data.frame rather than letting plyr coerce it to one. –  Justin Aug 29 '12 at 22:39

From ?cor:

If ‘x’ and ‘y’ are matrices then the covariances (or correlations) between the columns of ‘x’ and the columns of ‘y’ are computed.

So your only real job is to remove the non-numeric columns:

# An example data.frame containing a non-numeric column
d <- cbind(fac=c("A","B"), mtcars)

## Calculate correlations between the mpg column and all numeric columns
cor(d$mpg, as.matrix(d[sapply(d, is.numeric)]))
     mpg       cyl       disp         hp      drat         wt     qsec
[1,]   1 -0.852162 -0.8475514 -0.7761684 0.6811719 -0.8676594 0.418684
            vs        am      gear       carb
[1,] 0.6640389 0.5998324 0.4802848 -0.5509251

Edit: And in fact, as @MYaseen208's answer shows, there's no need to explicitly convert data.frames to matrices. Both of the following work just fine:

cor(d$mpg, d[sapply(d, is.numeric)])

cor(mtcars, mtcars)
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ddply splits a data.frame into chunks and sends them (smaller data.frames) to your function. your x is a data.frame with the same columns as Banks. Thus, is.numeric(x) is FALSE. is.data.frame(x) should return TRUE.


function(x) { 
  cor(x$BLY11, x$othercolumnname) 
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This will work for a specific column, but what if I want it to go against every other columns? There are over 100 of them. –  LCricket Aug 29 '12 at 16:40
you can write them out or use something like lapply(columnnames, function(n) cor(x$BLY11, x[n])) where columnnames is a vector of your column names you want to compare. –  Justin Aug 29 '12 at 16:48

It looks like what you're doing can be done with sapply as well:

  sapply( list(brand_id,standard.quarter), function(x) cor(BLY11,x) )
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Just tried this, and received the same error: Error in cor(BLY11, x) : 'y' must be numeric –  LCricket Aug 29 '12 at 16:40
Are your columns numeric? Check with is.numeric(Banks$brand_id) and similar. Or more generically, sapply(names(Banks), function(x) class(Banks[,x,drop=TRUE])) –  Blue Magister Aug 29 '12 at 16:46

This function operates on a chunk:

calc_cor_only_numeric = function(chunk) {
   is_numeric = sapply(chunk, is.numeric)

And can be used by ddply:

ddply(banks, .(cat1, cat2), calc_cor_only_numeric)

I could not check the code, but this should get you started.

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