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I have a data frame containing a factor. When I create a subset of this data frame using subset() or another indexing function, a new data frame is created. However, the factor variable retains all of its original levels -- even when they do not exist in the new data frame.

This creates headaches when doing faceted plotting or using functions that rely on factor levels.

What is the most succinct way to remove levels from a factor in my new data frame?

Here's my example:

df <- data.frame(letters=letters[1:5],
                    numbers=seq(1:5))

levels(df$letters)
## [1] "a" "b" "c" "d" "e"

subdf <- subset(df, numbers <= 3)
##   letters numbers
## 1       a       1
## 2       b       2
## 3       c       3    

## but the levels are still there!
levels(subdf$letters)
## [1] "a" "b" "c" "d" "e"
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1  
please consider changing your accepted answer - Roman's answer is more generally applicable now, and the accepted answer is out of date. –  naught101 Jul 9 at 3:30

8 Answers 8

up vote 114 down vote accepted

All you should have to do is to apply factor() to your variable again after subsetting:

> subdf$letters
[1] a b c
Levels: a b c d e
subdf$letters <- factor(subdf$letters)
> subdf$letters
[1] a b c
Levels: a b c

EDIT

From the factor page example:

factor(ff)      # drops the levels that do not occur

For dropping levels from all factor columns in a dataframe, you can use:

subdf <- as.data.frame(
    lapply(subset(df, numbers <= 3), 
           function(x) if(is.factor(x)) factor(x) else x
    )
)
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10  
That's fine for a one-off, but in a data.frame with a large number of columns, you get to do that on every column that is a factor ... leading to the need for a function such as drop.levels() from gdata. –  Dirk Eddelbuettel Jul 29 '09 at 14:16
4  
I see... but from a user-perspective it's quick to write something like subdf[] <- lapply(subdf,function(x) if(is.factor(x)) factor(x) else x) ...Is drop.levels() much more efficient computationally or better with large data sets? (One would have to rewrite the line above in a for-loop for a huge data frame, I suppose.) –  crippledlambda Jul 29 '09 at 17:09
    
Thanks Stephen & Dirk - I'm giving this one the thumbs up for the caes of one factor, but hopefully folks will read these comments for your suggestions on cleaning up an entire data frame of factors. –  medriscoll Jul 30 '09 at 4:18
    
As a side-effect the function converts the data frame to a list, so the mydf <- droplevels(mydf) solution suggested by Roman Luštrik and Tommy O'Dell below is preferable. –  Johan May 9 at 10:41
    
What also might be noteworthy: rlm really goes wrong when your data.frame contains factors which contain levels with no data. You'll get an error: singular fits are not implemented in 'rlm' . Most of the time your matrix is not singular, it's just exactly this problem. –  Matt Bannert Jun 19 at 14:31

Since R version 2.12, there's a droplevels() function.

levels(droplevels(subdf$letters))
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43  
I find mydf <- droplevels(mydf) far more useful than the other answers. –  Tommy O'Dell Nov 24 '11 at 8:02
1  
I wish answers were sorted by upvotes so that I could have seen yours first! –  user2932774 Nov 6 '13 at 21:29
5  
@user2932774 You can sort them by votes. See the tabs on the right side, just under the question. –  Roman Luštrik Nov 7 '13 at 8:47
1  
Alternatively, you can just scroll down a little bit... –  Señor O Jan 30 at 17:28
    
@TommyO'Dell - +1 for your answer as the best. –  Mark Nielsen Jul 8 at 15:08

It is a known issue, and one possible remedy is provided by drop.levels() in the gdata package where your example becomes

> drop.levels(subdf)
  letters numbers
1       a       1
2       b       2
3       c       3
> levels(drop.levels(subdf)$letters)
[1] "a" "b" "c"

There is also the dropUnusedLevels function in the Hmisc package. However, it only works by altering the subset operator [ and is not applicable here.

As a corollary, a direct approach on a per-column basis is a simple as.factor(as.character(data)):

> levels(subdf$letters)
[1] "a" "b" "c" "d" "e"
> subdf$letters <- as.factor(as.character(subdf$letters))
> levels(subdf$letters)
[1] "a" "b" "c"
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3  
The reorder parameter of the drop.levels function is worth mentioning: if you have to preserve the original order of your factors, use it with FALSE value. –  daroczig Jan 17 '11 at 11:31

If you don't want this behaviour, don't use factors, use character vectors instead. I think this makes more sense than patching things up afterwards. Try the following before loading your data with read.table or read.csv:

options(stringsAsFactors = FALSE)

The disadvantage is that you're restricted to alphabetical ordering. (reorder is your friend for plots)

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4  
You can also do read.csv(file='foo.csv', as.is=T). –  andrewj Jul 29 '09 at 1:37
    
What is the benefit of factors over characters, anyway? I guess factors are more efficient when you have few levels and large number of samples? –  naught101 Jul 9 at 11:17

Here's another way, which I believe is equivalent to the factor(..) approach:

> df <- data.frame(let=letters[1:5], num=1:5)
> subdf <- df[df$num <= 3, ]

> subdf$let <- subdf$let[ , drop=TRUE]

> levels(subdf$let)
[1] "a" "b" "c"
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This is obnoxious. This is how I usually do it, to avoid loading other packages:

levels(subdf$letters)<-c("a","b","c",NA,NA)

which gets you:

> subdf$letters
[1] a b c
Levels: a b c

Note that the new levels will replace whatever occupies their index in the old levels(subdf$letters), so something like:

levels(subdf$letters)<-c(NA,"a","c",NA,"b")

won't work.

This is obviously not ideal when you have lots of levels, but for a few, it's quick and easy.

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I wrote utility functions to do this. Now that I know about gdata's drop.levels, it looks pretty similar. Here they are (from here):

present_levels <- function(x) intersect(levels(x), x)

trim_levels <- function(...) UseMethod("trim_levels")

trim_levels.factor <- function(x)  factor(x, levels=present_levels(x))

trim_levels.data.frame <- function(x) {
  for (n in names(x))
    if (is.factor(x[,n]))
      x[,n] = trim_levels(x[,n])
  x
}
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here is a way of doing that

varFactor <- factor(letters[1:15])
varFactor <- varFactor[1:5]
varFactor[drop=T]
varFactor <- varFactor[drop=T]
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