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I have a variable in a dataframe where one of the fields typically has 7-8 values. I want to collpase them 3 or 4 new categories within a new variable within the dataframe. What is the best approach?

I would use a CASE statement if I were in a SQL-like tool but not sure how to attack this in R.

Any help you can provide will be much appreciated!

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9 Answers

If you got factor then you could change levels by standard method:

df <- data.frame(name = c('cow','pig','eagle','pigeon'), 
             stringsAsFactors = FALSE)
df$type <- factor(df$name) # First step: copy vector and make it factor
# Change levels:
levels(df$type) <- list(
    animal = c("cow", "pig"),
    bird = c("eagle", "pigeon")
)
df
#     name   type
# 1    cow animal
# 2    pig animal
# 3  eagle   bird
# 4 pigeon   bird

You could write simple function as a wrapper:

changelevels <- function(f, ...) {
    f <- as.factor(f)
    levels(f) <- list(...)
    f
}

df <- data.frame(name = c('cow','pig','eagle','pigeon'), 
                 stringsAsFactors = TRUE)

df$type <- changelevels(df$name, animal=c("cow", "pig"), bird=c("eagle", "pigeon"))
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Nice answer. I forgot you could use a list as the argument to levels with the old and the new names like that; my solution depends on one keeping the order of the levels straight, so this is better in that way. –  Aaron Sep 12 '11 at 17:10
    
Also, should the x in the last line be changelevels? –  Aaron Sep 12 '11 at 17:10
    
@Aaron :) Yep. Testing name. –  Marek Sep 12 '11 at 19:49
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Have a look at the cases function from the memisc package. It implements case-functionality with two different ways to use it. From the examples in the package:

z1=cases(
    "Condition 1"=x<0,
    "Condition 2"=y<0,# only applies if x >= 0
    "Condition 3"=TRUE
    )

where x and y are two vectors.

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i dont like any of these, they are not clear to the reader or the potential user. I just use an anonymous function, the syntax is not as slick as a case statement, but the evaluation is similar to a case statement and not that painful. this also assumes your evaluating it within where your variables are defined.

result <- ( function() { if (x==10 | y< 5) return('foo') 
                         if (x==11 & y== 5) return('bar')
                        })()

all of those () are necessary to enclose and evaluate the anonymous function.

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2  
1) The function part is unnecessary; you could just do result <- (if (x==10 | y< 5) 'foo' else if (x==11 & y== 5) 'bar' ). 2) This only works if x and y are scalars; for vectors, as in the original question, nested ifelse statements would be necessary. –  Aaron Sep 10 '11 at 19:58
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Here's a way using the switch statement:

df <- data.frame(name = c('cow','pig','eagle','pigeon'), 
                 stringsAsFactors = FALSE)
df$type <- sapply(df$name, switch, 
                  cow = 'animal', 
                  pig = 'animal', 
                  eagle = 'bird', 
                  pigeon = 'bird')

> df
    name   type
1    cow animal
2    pig animal
3  eagle   bird
4 pigeon   bird

The one downside of this is that you have to keep writing the category name (animal, etc) for each item. It is syntactically more convenient to be able to define our categories as below (see the very similar question How do add a column in a data frame in R. )

myMap <- list(animal = c('cow', 'pig'), bird = c('eagle', 'pigeon'))

and we want to somehow "invert" this mapping. I write my own invMap function:

invMap <- function(map) {
  items <- as.character( unlist(map) )
  nams <- unlist(Map(rep, names(map), sapply(map, length)))
  names(nams) <- items
  nams
}

and then invert the above map as follows:

> invMap(myMap)
     cow      pig    eagle   pigeon 
"animal" "animal"   "bird"   "bird" 

And then it's easy to use this to add the type column in the data-frame:

df <- transform(df, type = invMap(myMap)[name])

> df
    name   type
1    cow animal
2    pig animal
3  eagle   bird
4 pigeon   bird
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You can use recode from the car package:

library(ggplot2) #get data
library(car)
daimons$new_var <- recode(diamonds$clarity , "'I1' = 'low';'SI2' = 'low';else = 'high';")[1:10]
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3  
I just can't support a function that parses it's parameters from text –  hadley Jan 7 '11 at 16:23
    
Yes, but do you know if anyone has written a better version? sos::findFn("recode") finds doBy::recodeVar, epicalc::recode, memisc::recode, but I haven't looked at them in detail ... –  Ben Bolker Sep 12 '11 at 16:35
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There is a switch statement but I can never seem to get it to work the way I think it should. Since you have not provided an example I will make one using a factor variable:

 dft <-data.frame(x = sample(letters[1:8], 20, replace=TRUE))
 levels(dft$x)
[1] "a" "b" "c" "d" "e" "f" "g" "h"

If you specify the categories you want in an order appropriate to the reassignment you can use the factor or numeric variables as an index:

c("abc", "abc", "abc", "def", "def", "def", "g", "h")[dft$x]
 [1] "def" "h"   "g"   "def" "def" "abc" "h"   "h"   "def" "abc" "abc" "abc" "h"   "h"   "abc"
[16] "def" "abc" "abc" "def" "def"

dft$y <- c("abc", "abc", "abc", "def", "def", "def", "g", "h")[dft$x] str(dft)
'data.frame':   20 obs. of  2 variables:
 $ x: Factor w/ 8 levels "a","b","c","d",..: 4 8 7 4 6 1 8 8 5 2 ...
 $ y: chr  "def" "h" "g" "def" ...
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Imho, most straightforward and universal code:

dft=data.frame(x = sample(letters[1:8], 20, replace=TRUE))
dft=within(dft,{
    y=NA
    y[x %in% c('a','b','c')]='abc'
    y[x %in% c('d','e','f')]='def'
    y[x %in% 'g']='g'
    y[x %in% 'h']='h'
})
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A case statement actually might not be the right approach here. If this is a factor, which is likely is, just set the levels of the factor appropriately.

Say you have a factor with the letters A to E, like this.

> a <- factor(rep(LETTERS[1:5],2))
> a
 [1] A B C D E A B C D E
Levels: A B C D E

To join levels B and C and name it BC, just change the names of those levels to BC.

> levels(a) <- c("A","BC","BC","D","E")
> a
 [1] A  BC BC D  E  A  BC BC D  E 
Levels: A BC D E

The result is as desired.

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If you want to have sql-like syntax you can just make use of sqldf package. Tthe function to be used is also names sqldf and the syntax is as follows

sqldf(<your query in quotation marks>)
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