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I used R code from a user who answered my previous question (see here: Split values of a column in a data frame by specific tag and add them as extra row) to achieve the following:

df <- data.frame(var1 = c("A", "B", "C", "D", "E"),            

             var2 = c("test", "5 | 6", "X & Y", "M | N | O", "none"))

> df         
  var1          var2
1    A          test
2    B         5 | 6
3    C         X & Y
4    D     M | N | O
5    E          none

t1 <- c("", "|")[df$var1 %in% df$var1[grep("\\|", df$var2)]+1]

t2 <- c("", "&")[df$var1 %in% df$var1[grep("&", df$var2)]+1]

t1[which(t2 == "&")] <- "&"

df$var3 <- t1

> df
  var1          var2     var3
1    A          test     
2    B         5 | 6        |
3    C         X & Y        &
4    D     M | N | O        |
5    E          none     

I was just wondering if there is a better way of doing it as I really want to improve the way I do my R coding. For me, this wasn't really a simple task to achieve but I am willing to learn :-)

share|improve this question
The first thing that comes to mind is something like df$var3 = gsub("([a-zA-Z0-9 ])", "", df$var2) but it is not exactly what you want. – A Handcart And Mohair Jul 17 '12 at 11:43

You can use this instead :

t3 <- rep("",length(df$var1))
t3[which(grepl("&",df$var2))] <- "&"
t3[which(grepl("\\|",df$var2))] <- "|"
df$var3 <- t3
share|improve this answer

Assuming your data is really this nicely organized, with proper spacing and so on, you can use gsub along with substring.

df$var3 = substring(gsub("([a-zA-Z0-9 ])", "", df$var2), 1, 1)
#   var1      var2 var3
# 1    A      test     
# 2    B     5 | 6    |
# 3    C     X & Y    &
# 4    D M | N | O    |
# 5    E      none
  1. For your search pattern, look for all letters and numbers and spaces, and replace them with nothing.
  2. Then, use substring (or substr) with start and stop as 1.


A more general approach, assuming there might be different punctuation marks in var2, would be:

gsub("[^[:punct:]]", "", df$var2)
# [1] ""   "|"  "&"  "||" ""  

Again, using substr would allow you to select only the first character in each string.

substr(gsub("[^[:punct:]]", "", df$var2), 1, 1)
# [1] ""  "|" "&" "|" "" 

If you definitely only have those two separating characters, you can change the search pattern from [^[:punct:]] to [^\\||\\&].

In the examples in this update, the ^ (within square brackets) means to match everything but these characters.

share|improve this answer

is the same as

df$var1 %in% df$var1[grep("\\|", df$var2)]
df$var1 %in% df$var1[grep("&", df$var2)]+1

so you can use for example

share|improve this answer

I found another solution which works great for me in only one line :-)


df$var3 <- str_extract(df$var2, "\\||&")

However, I have to say that I do not care about the code adding 's to where no matches are found.

Thanks for all of your solutions though! Great work indeed!

share|improve this answer
If you look at the code for str_extract, you'll see that it does pretty much exactly the same thing that I proposed ... also in one line, BTW ;-) – A Handcart And Mohair Jul 17 '12 at 16:49
yes, that is right! However, in your code you need to cover really everything (i mean special characters and normal characters) to be sure to only get | and & back whereas mine works on checking for those two directly. Your code is still pretty good though :-) Cheers! – user969113 Jul 17 '12 at 19:39
Please read again, particularly the "Update" section. – A Handcart And Mohair Jul 17 '12 at 19:42
Ah great. Sorry, I missed the Update section. Yes that would work as the only two special characters I match are | and &. Will have a closer look at that now. – user969113 Jul 17 '12 at 20:17

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