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I have a number of columns that I would like to drop from a data frame. I know that we can drop them using something like:

df$x <- NULL

but I was hoping to do this with fewer commands.

Also, I know that I could use this:

df[ -c(1,3:6, 12) ]

but I am concerned that the relative position of my variables may change.

Given how powerful R is, I figured I would ask to see if there is another way beyond dropping each column 1 by 1.

Thanks in advance.

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1  
It would be important for new R users to realize that the first option would change the 'df'-dataframe but the second option would not, unless that value were assigned to 'df' with <- –  BondedDust Jul 24 at 16:43

13 Answers 13

up vote 227 down vote accepted

You can use a simple list of names :

DF <- data.frame(
  x=1:10,
  y=10:1,
  z=rep(5,10),
  a=11:20
)
drops <- c("x","z")
DF[,!(names(DF) %in% drops)]

Or, alternatively, you can make a list of those to keep and refer to them by name :

keeps <- c("y","a")
DF[keeps]

EDIT : For those still not acquainted with the drop argument of the indexing function, if you want to keep one column as a data frame, you do:

keeps <- "y"
DF[,keeps,drop=FALSE]

drop=TRUE (or not mentioning it) will drop unnecessary dimensions, and hence return a vector with the values of column y.

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1  
the subset function works better as it won't convert a data frame with one column into a vector –  mut1na Jun 28 '13 at 9:06
1  
@mut1na check the argument drop=FALSE of the indexing function. –  Joris Meys Jun 28 '13 at 10:10

There's also the subset command, useful if you know which columns you want:

df <- data.frame( a = 1:10, b = 2:11, c = 3:12 )
df <- subset(df, select = c(a,c))

UPDATED after comment by @hadley: To drop columns a,c you could do:

df <- subset(df, select = -c(a,c) )
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1  
I really wish the R subset function had an option like "allbut = FALSE", which "inverts" the selection when set to TRUE, i.e. retains all columns except those in the select list. –  Prasad Chalasani Jan 5 '11 at 14:56
3  
@prasad, see @joris answer below. A subset without any subset criteria is a bit of overkill. Try simply: df[c("a", "c")] –  JD Long Jan 5 '11 at 15:16
    
@JD I knew that, but I like the syntactic convenience of the subset command where you don't need to put quotes around the column names -- I guess I don't mind typing a few extra characters just to avoid quoting names :) –  Prasad Chalasani Jan 5 '11 at 15:18
56  
Or subset(df, select = -b)... –  hadley Jan 5 '11 at 18:32
1  

You could use %in% like this:

df[, !(colnames(df) %in% c("x","bar","foo"))]
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There is a potentially more powerful strategy based on the fact that grep() will return a numeric vector. If you have a long list of variables as I do in one of my dataset, some variables that end in ".A" and others that end in ".B" and you only want the ones that end in ".A" (along with all the variables that don't match either pattern, do this:

dfrm2 <- dfrm[ , -grep("\\.B$", names(dfrm)) ]

For the case at hand, using Joris Meys example, it might not be as compact, but it would be:

DF <- DF[, -grep( paste("^",drops,"$", sep="", collapse="|"), names(DF) )]
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Nice answer! But you should test your code before posting it :-) –  Antoine Lizée Jul 22 '13 at 19:14
    
I believe I have addressed the error. –  BondedDust Jul 22 '13 at 21:32
    
I edited it for the errors, you could have accepted it. You also need a right bracket inside the indexation of the first code line. + I think that only one use of "paste()" is needed. –  Antoine Lizée Jul 24 '13 at 22:33
    
Generally SO notifies me if there is an edit waiting for review. I didn't see a notice 2 days ago and I don't see one now. See if my edit works now. –  BondedDust Jul 24 '13 at 22:47
    
Wow that's weird, my edit has been rejected because supposedly 'changing the spirit of the post' even though I just fixed the code (with exactly the changes you made). I don't really know why SO doesn't automatically propose edits for reviews to the writer... Seems good to me now :-), apart from the missing bracket at the end of the first grep. –  Antoine Lizée Jul 25 '13 at 0:16

If you want remove the columns by reference and avoid the internal copying associated with data.frames then you can use the data.table package and the function :=

You can pass a character vector names to the left hand side of the := operator, and NULL as the RHS.

library(data.table)

df <- data.frame(a=1:10, b=1:10, c=1:10, d=1:10)
DT <- data.table(df)
# or more simply  DT <- data.table(a=1:10, b=1:10, c=1:10, d=1:10) #

DT[, c('a','b') := NULL]

If you want to predefine the names as as character vector outside the call to [, wrap the name of the object in () or {} to force the LHS to be evaluated in the calling scope not as a name within the scope of DT.

del <- c('a','b')
DT <- data.table(a=1:10, b=1:10, c=1:10, d=1:10)
DT[, (del) := NULL]
DT <-  <- data.table(a=1:10, b=1:10, c=1:10, d=1:10)
DT[, {del} := NULL]
# force or `c` would also work.   

You can also use set, which avoids the overhead of [.data.table, and also works for data.frames!

df <- data.frame(a=1:10, b=1:10, c=1:10, d=1:10)
DT <- data.table(df)

# drop `a` from df (no copying involved)

set(df, j = 'a', value = NULL)
# drop `b` from DT (no copying involved)
set(DT, j = 'b', value = NULL)
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Out of interest, this flags up one of R's weird multiple syntax inconsistencies. For example given a two-column data frame:

df <- data.frame(x=1, y=2)

This gives a data frame

subset(df, select=-y)

but this gives a vector

df[,-2]

This is all explained in ?[ but it's not exactly expected behaviour. Well at least not to me...

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Another possibility:

df <- df[, setdiff(names(df), c("a", "c"))]

or

df <- df[, grep('^(a|c)$', names(df), invert=TRUE)]
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Note that the closing ")" of grep function should be moved further so as to include the x and invert arguments. –  mbask Jan 11 '12 at 11:19
    
@Charlie oops, thanks--fixed now. –  scentoni Jan 11 '12 at 19:08
    
Too bad that this is not upvoted more because use of setdiff is the optimal especially in the case of a very large number of columns. –  Christopher Brown Mar 25 at 21:42

In addition to the subset and names() + %in% solutions, you can use within and rm, e.g.:

within(df, rm(x))

or for multiple variables:

within(df, rm(x, y))

If you're dealing with data.tables it's even easier (per How do you delete a column in data.table?):

dt[, x := NULL]   # deletes column x by reference instantly

dt[, !"x", with=F]   # selects all but x into a new data.table

or for multiple variables

dt[, c("x","y") := NULL]

dt[, !c("x", "y"), with=F]
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list(NULL) also works:

> dat <- mtcars
> colnames(dat)
 [1] "mpg"  "cyl"  "disp" "hp"   "drat" "wt"   "qsec" "vs"   "am"   "gear"
[11] "carb"
> dat[,c("mpg","cyl","wt")] <- list(NULL)
> colnames(dat)
[1] "disp" "hp"   "drat" "qsec" "vs"   "am"   "gear" "carb"
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Brilliant! This extends the NULL assignment to a single column in a natural way, and (seemingly) avoids copying (although I don't know what happens under the hood so it may be no more efficient in memory usage ... but seems to me clearly more efficient syntactically.) –  c-urchin May 20 at 16:15
2  
You do not need list(NULL), NULL is sufficient. e.g: dat[,4]=NULL –  CousinCocaine Jul 7 at 8:29
    
OP's question was how to delete multiple columns. dat[,4:5] <- NULL won't work. That is where list(NULL) comes in. It works for 1 or more columns. –  Vincent Sep 16 at 0:01

I keep thinking there must be a better idiom, but for subtraction of columns by name, I tend to do the following:

df <- data.frame(a=1:10, b=1:10, c=1:10, d=1:10)

# return everything except a and c
df <- df[,-match(c("a","c"),names(df))]
df
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2  
Not a good idea to negate match - df[,-match(c("e","f"),names(df))] –  hadley Jan 5 '11 at 18:33
1  
Uh oh, really? Why not? –  JD Long Jan 8 '11 at 22:17
    
@hadley why not? –  Abe Mar 12 '13 at 7:37
3  
Because of the example I gave: if there are no matches you get an error –  hadley Mar 14 '13 at 15:23

Quick-R has a very nice page describing how to subset data based on observation(rows) or variable(columns): http://www.statmethods.net/management/subset.html

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This was the most helpful of all the comments here. Thanks! –  George D Girton Aug 25 at 18:50
DF <- data.frame(
  x=1:10,
  y=10:1,
  z=rep(5,10),
  a=11:20
)
DF[c("a","x")] <- list(NULL)
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Here is a dplyr way to go about it:

#df[ -c(1,3:6, 12) ]  # original
df.cut <- df %.% select(-col.to.drop.1, -col.to.drop.2, ..., -col.to.drop.6)  # with dplyr::select()

I like this because it's intuitive to read & understand without annotation and robust to columns changing position within the data frame. It also follows the vectorized idiom using - to remove elements.

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