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In the R data frame coded for below, I would like to replace all of the times that B appears with b.

junk <- data.frame(x <- rep(LETTERS[1:4], 3), y <- letters[1:12])
colnames(junk) <- c("nm", "val")

this provides:

   nm val
1   A   a
2   B   b
3   C   c
4   D   d
5   A   e
6   B   f
7   C   g
8   D   h
9   A   i
10  B   j
11  C   k
12  D   l

My initial attempt was to use a for and if statements like so:

for(i in junk$nm) if(i %in% "B") junk$nm <- "b"

but as I am sure you can see, this replaces ALL of the values of junk$nm with b. I can see why this is doing this but I can't seem to get it to replace only those cases of junk$nm where the original value was B.

Thank you.

NOTE: I managed to solve the problem with gsub but in the interest of learning R I still would like to know how to get my original approach to work (if it is possible)

share|improve this question
    
you might want to add stringsAsFactors = FALSE to the original data.frame construction. –  jimmyb Apr 28 '11 at 21:00
    
@jimmyb Why? Factors are useful, and necessary if one is modelling with most of R's modelling code. The correct way of dealing with this is to acknowledge that the data are a factor. If you don't want/need this conversion then you can do as you say. If you do want the factor, then there are easy ways to do the manipulation @Kenny wants to perform. –  Gavin Simpson Apr 28 '11 at 21:18
    
So factors used to be more popular because of performance, however, now that strings are immutable and hashed the value of factors is less obvious, as most of the base R functionality will just convert them (albeit with warnings) directly. I think factors result in a significant number of bugs that I find in peoples R code. –  jimmyb Apr 29 '11 at 0:15

6 Answers 6

up vote 61 down vote accepted

Easier to convert nm to characters and then make the change:

junk$nm <- as.character(junk$nm)
junk$nm[junk$nm == "B"] <- "b"

EDIT: And if indeed you need to maintain nm as factors, add this in the end:

junk$nm <- as.factor(junk$nm)
share|improve this answer
2  
It might be worth adding a line to convert back to factor in case that was an important part of the data structure. –  Gavin Simpson Apr 28 '11 at 20:37
    
@Gavin Thanks, just added the edit. –  diliop Apr 28 '11 at 20:50
2  
as.character() makes life so much easier when working with factors. +1 –  Brandon Bertelsen Apr 28 '11 at 22:38
    
what if you have multiple columns? –  geodex Apr 19 at 21:33

As the data you show are factors, it complicates things a little bit. @diliop's Answer approaches the problem by converting to nm to a character variable. To get back to the original factors a further step is required.

An alternative is to manipulate the levels of the factor in place.

> lev <- with(junk, levels(nm))
> lev[lev == "B"] <- "b"
> junk2 <- within(junk, levels(nm) <- lev)
> junk2
   nm val
1   A   a
2   b   b
3   C   c
4   D   d
5   A   e
6   b   f
7   C   g
8   D   h
9   A   i
10  b   j
11  C   k
12  D   l

That is quite simple and I often forget that there is a replacement function for levels().

Edit: As noted by @Seth in the comments, this can be done in a one-liner, without loss of clarity:

within(junk, levels(nm)[levels(nm) == "B"] <- "b")
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4  
Nice. I didn't know about the replacement function for levels(). How about the one liner junk <- within(junk, levels(nm)[levels(nm)=="B"] <- "b")? –  Seth Apr 28 '11 at 22:26
    
But you call it twice :) –  Marek Apr 28 '11 at 23:01
1  
@Marek slaps head Just goes to show that one shouldn't respond to comments on SO when it is well past ones bedtime. Lets try that again... –  Gavin Simpson Apr 29 '11 at 8:36
    
@Seth Indeed - nice. Not sure why I separated the steps? Perhaps for exposition... –  Gavin Simpson Apr 29 '11 at 8:37

another useful way to replace values

 library(plyr)
    revalue(junk$nm, c("B"="b"))
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Short answer is:

junk$nm[junk$nm %in% "B"] <- "b"

Take a look at Index vectors in R Introduction (if you don't read it yet).


EDIT. As noticed in comments this solution works for character vectors so fail on your data.

For factor best way is to change level:

levels(junk$nm)[levels(junk$nm)=="B"] <- "b"
share|improve this answer
    
Short addition: The usage of %in% only really helps if you have a set on the right side, as c("B","C"). Doing junk$nm[junk$nm == "B"] is the better way. –  Thilo Apr 28 '11 at 20:14
1  
Oh, another, important addition: Doing it like this requires first adding the factor level b to the factor nm. diliop's version is in fact the better one if you want to work with characters, not factors. (Always think about the type your variables have first!) –  Thilo Apr 28 '11 at 20:18
    
that doesn't work on the data as created by @Kenny because the data are factors. Did you forget a step or do you have the global setting to stop converting characters to factors? –  Gavin Simpson Apr 28 '11 at 20:27
    
thanks for the link to the additional information, that will be helpful! –  KennyPeanuts Apr 28 '11 at 20:36
3  
@Thilo One of the important differences between %in% and == is NA handling: c(1,2,NA)==1 gives TRUE, FALSE, NA but c(1,2,NA) %in% 1 gives TRUE, FALSE, FALSE. And yes I forgot to check if this work :/ –  Marek Apr 28 '11 at 20:41

The easiest way to do this in one command is to use which command and also need not to change the factors into character by doing this:

junk$nm[which(junk$nm=="B")]<-"b"
share|improve this answer

You have created a factor variable in nm so you either need to avoid doing so or add an additional level to the factor attributes. You should also avoid using <- in the arguments to data.frame()

Option 1:

junk <- data.frame(x = rep(LETTERS[1:4], 3), y =letters[1:12], stringsAsFactors=FALSE)
junk$nm[junk$nm == "B"] <- "b"

Option 2:

levels(junk$nm) <- c(levels(junk$nm), "b")
junk$nm[junk$nm == "B"] <- "b"
junk
share|improve this answer
    
@DWin thanks for your input on the problem and the need to consider the type of variable. I accepted @diliop's answer because it was the first working one. I know there are a lot of issues over <- vs = but (if it can be answered briefly) why should = be used with data.frame? –  KennyPeanuts Apr 28 '11 at 20:34
    
You don't need to add b as a level, just change the level that is B to b. –  Gavin Simpson Apr 28 '11 at 20:40
    
@KennyPeanuts: the column name is one issue, Look at a <- data.frame(x<-1:10) . Its column name is not x but rather a messy x....1.10. Better to use data.frame(x=1:10). Then you know what your column name is. –  BondedDust Apr 28 '11 at 20:52
    
@Gavin: Easier to add than to replace, and even easier not to make it a factor. –  BondedDust Apr 28 '11 at 20:53
    
@Dwin Easier? I disagree - see my Answer for something simple. Adding levels can catch you out, say in modelling with predict() which will complain if factors levels in new data don't match those used to fit the model. Cleaner in long run to get the data formatted as you want, properly, than rely on short cuts. I agree it might be easier to not make it a factor, but if it already is one, or needs to be one for some modelling exercise... –  Gavin Simpson Apr 28 '11 at 21:15

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