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I can not really find an elegant way achieving this, please help.

I have a DT data.table:

name,value
"lorem pear ipsum",4
"apple ipsum lorem",2
"lorem ipsum plum",6

And based on a list Fruits <- c("pear", "apple", "plum") I'd like to create a factor type column.

name,value,factor
"lorem pear ipsum",4,"pear"
"apple ipsum lorem",2,"apple"
"lorem ipsum plum",6,"plum"

I guess that's basic, but I'm kinda stuck, this is how far I got:

DT[grep("apple", name, ignore.case=TRUE), factor := as.factor("apple")]

Thanks in advance.

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I guess I need to replace the as.factor("apple") part with a custom function. –  Nyitrai Lőrinc Mar 7 '13 at 17:37

3 Answers 3

up vote 6 down vote accepted

You can vectorize this with regular expressions, e.g. by using gsub():

Set up the data:

strings <- c("lorem pear ipsum", "apple ipsum lorem", "lorem ipsum plum")
fruit <- c("pear", "apple", "plum")

Now create a regular expression

ptn <- paste0(".*(", paste(fruit, collapse="|"), ").*")
gsub(ptn, "\\1", strings)
[1] "pear"  "apple" "plum" 

The regular expression works by separating each search element with |, embedded inside parentheses:

ptn
[1] ".*(pear|apple|plum).*"

To do this inside a data table, as per your question is then as simple as:

library(data.table)
DT <- data.table(name=strings, value=c(4, 2, 6))
DT[, factor:=gsub(ptn, "\\1", strings)]
DT

                name value factor
1:  lorem pear ipsum     4   pear
2: apple ipsum lorem     2  apple
3:  lorem ipsum plum     6   plum
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(+1) my last vote for the day. neat trick. –  Arun Mar 7 '13 at 18:29
    
beautiful, thank you –  Nyitrai Lőrinc Mar 7 '13 at 18:45

I don't know if there is a more "data.table" way to do it, but you can try this:

DT[, factor := sapply(Fruits, function(x) Fruits[grep(x, name, ignore.case=TRUE)])]
DT
#                 name value factor
# 1:  lorem pear ipsum     4   pear
# 2: apple ipsum lorem     2  apple
# 3:  lorem ipsum plum     6   plum
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1  
(+1) This is not essentially a "typical" data.table problem, I'd say. –  Arun Mar 7 '13 at 17:50
    
It might be me, but this code fills up the DT$factor column with DT-long lists like c(NA,NA,"pear",NA,"apple",...). I'm investigating further, I'm sure that your hint (sapply) will lead me to the solution. –  Nyitrai Lőrinc Mar 7 '13 at 18:13
    
@NyitraiLőrinc, I'm suspecting then that your mini data example isn't accurately reflective of the problem you're trying to solve. –  Ananda Mahto Mar 7 '13 at 18:14

Here is my coded solution. The hard part is getting the matched string from regex. The best general solution (that finds whatever is matched to any regular expression) I know of is the regexec and regmatches combination (see below).

# Create the data frame
name <- c("lorem pear ipsum", "apple ipsum lorem", "lorem ipsum plum")
value <- c(4,2,6)
DT <- data.frame(name=name, value=value, stringsAsFactors=FALSE)

# Create the regular expression
Fruits <- c("pear", "apple", "plum")
myRegEx <- paste(Fruits, collapse = "|")

# Find the matches
r <- regexec(myRegEx, DT$name, ignore.case = TRUE)
matches <- regmatches(DT$name, r)

# Extract the matches, convert to factors
factor <- sapply(matches, function(x) as.factor(x[[1]]))

# Add to data frame
DT$factor <- factor

This is probably a longer solution than you wanted.

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