Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

What is the quickest/best way to change a large number of columns to numeric from factor?

I used the following code but it appears to have re-ordered my data.

> head(stats[,1:2])
  rk                 team
1  1 Washington Capitals*
2  2     San Jose Sharks*
3  3  Chicago Blackhawks*
4  4     Phoenix Coyotes*
5  5   New Jersey Devils*
6  6   Vancouver Canucks*

for(i in c(1,3:ncol(stats))) {
    stats[,i] <- as.numeric(stats[,i])
}

> head(stats[,1:2])
  rk                 team
1  2 Washington Capitals*
2 13     San Jose Sharks*
3 24  Chicago Blackhawks*
4 26     Phoenix Coyotes*
5 27   New Jersey Devils*
6 28   Vancouver Canucks*

What is the best way, short of naming every column as in:

df$colname <- as.numeric(ds$colname)
share|improve this question

5 Answers 5

up vote 13 down vote accepted

Further to Ramnath's answer, the behaviour you are experiencing is that due to as.numeric(x) returning the internal, numeric representation of the factor x at the R level. If you want to preserve the numbers that are the levels of the factor (rather than their internal representation), you need to convert to character via as.character() first as per Ramnath's example.

Your for loop is just as reasonable as an apply call and might be slightly more readable as to what the intention of the code is. Just change this line:

stats[,i] <- as.numeric(stats[,i])

to read

stats[,i] <- as.numeric(as.character(stats[,i]))

This is FAQ 7.10 in the R FAQ.

HTH

share|improve this answer
    
No need for any kind of loop. Just use the indices and unlist(). Edit : I added an answer illustrating this. –  Joris Meys Sep 26 '10 at 22:19

you have to be careful while changing factors to numeric. here is a line of code that would change a set of columns from factor to numeric. i am assuming here that the columns to be changed to numeric are 1, 3, 4 and 5 respectively and you could change it accordingly

cols = c(1, 3, 4, 5);    
df[,cols] = apply(df[,cols], 2, function(x) as.numeric(as.character(x));
share|improve this answer
1  
This won't work correctly. Example: x<-as.factor(1:3); df<-data.frame(a=x,y=runif(3),b=x,c=x,d=x). I don't think that apply is appropriate to this kind of problems. –  Marek Sep 26 '10 at 15:07
    
apply works perfectly in these situations. the error in my code was using margin = 1, instead of 2 as the function needs to be applied column wise. i have edited my answer accordingly. –  Ramnath Sep 26 '10 at 19:46
    
Now it works. But I think it could be done without apply. Check my edit. –  Marek Sep 27 '10 at 10:00
2  
... or Joris answer with unlist. And as.character conversion in your solution is not needed cause apply converts df[,cols] to character so apply(df[,cols], 2, function(x) as.numeric(x)) will work too. –  Marek Sep 27 '10 at 10:12

This can be done in one line, there's no need for a loop, be it a for-loop or an apply. Use unlist() instead :

# testdata
Df <- data.frame(
  x = as.factor(sample(1:5,30,r=T)),
  y = as.factor(sample(1:5,30,r=T)),
  z = as.factor(sample(1:5,30,r=T)),
  w = as.factor(sample(1:5,30,r=T))
)
##

Df[,c("y","w")] <- as.numeric(as.character(unlist(Df[,c("y","w")])))

str(Df)

Edit : for your code, this becomes :

id <- c(1,3:ncol(stats))) 
stats[,id] <- as.numeric(as.character(unlist(stats[,id])))

Obviously, if you have a one-column data frame and you don't want the automatic dimension reduction of R to convert it to a vector, you'll have to add the drop=FALSE argument.

share|improve this answer
1  
Small improvement could be setting recursive and use.names parameters of unlist both to FALSE. –  Marek Sep 27 '10 at 10:10
    
@Marek : true. I love this game :-) –  Joris Meys Sep 27 '10 at 11:49
    
I am just going to add for those looking for answers in the future, this is not equivalent to op + gavin's method if the dataframe is of only one column. It will convert to a vector in that case, whereas op's will still be a dataframe. –  themartinmcfly Feb 27 '13 at 3:15
    
@themartinmcfly the good ol' drop=FALSE... But thx for pointing that out, I added it to the answer. –  Joris Meys Feb 27 '13 at 13:37
    
@JorisMeys +1, very good. –  themartinmcfly Feb 27 '13 at 22:31

I think that ucfagls found why your loop is not working.

In case you still don't want use a loop here is solution with lapply:

factorToNumeric <- function(f) as.numeric(levels(f))[as.integer(f)] 
cols <- c(1, 3:ncol(stats))
stats[cols] <- lapply(stats[cols], factorToNumeric)

Edit. I found simpler solution. It seems that as.matrix convert to character. So

stats[cols] <- as.numeric(as.matrix(stats[cols]))

should do what you want.

share|improve this answer
    
+10 for solving my problem- definitely going to remember the as.matrix() trick in future –  Chris Beeley Aug 3 '11 at 18:09

lapply is pretty much designed for this

unfactorize<-c("colA","colB")
df[,unfactorize]<-lapply(unfactorize, function(x) as.numeric(as.character(df[,x])))
share|improve this answer
    
Hi @transcom, and welcome to stackoverflow. Note that this question is about converting to numeric representation from a factor, not the other way around. See Marek's solution. –  Aaron Feb 10 at 16:54
    
@Aaron, understood. I posted this answer due to the ambiguity of the OP's title, operating under the assumption that others may land here looking for a way to convert multiple columns easily, regardless of class. Anyway, I've edited my answer to more appropriately address the question :) –  transcom Feb 18 at 16:56

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.