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I stuck on a minor problem and I haven't found the right search terms for it. I have letters from "A" - "N" and want to replace these one greater than "G" with "A"-"G" according to their position in the alphabet. using gsub for that seems cumbersome. Or are there any regex that can do it smarter?

k <- rep(LETTERS[1:14],2)
gsub(pattern="H", replace="A", x=k)
gsub(pattern="I", replace="B", x=k)
gsub(pattern="J", replace="C", x=k)
gsub(pattern="K", replace="D", x=k)
# etc.

Isn't there some way I can convert the the characters to integer and then simply calculate within the integer values and afterwards casting back? Or is there any inverse of LETTERS? as.numeric() and as.integer() returns NA.

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As you've probably figured out from the suggested answers, match is the as.numeric you're looking for: match(c("A","S","K"), LETTERS) will return {1, 19, 11}. –  Ananda Mahto Jun 23 '12 at 19:25
    
Yep thanks. match() I need to remember. So many new things and I nearly always forget something I came across earlier. Although match is pretty new for me. –  Sebastian Jun 24 '12 at 17:49

5 Answers 5

up vote 11 down vote accepted

This translates H-N to A-G:

chartr("HIJKLMN", "ABCDEFG", k)
share|improve this answer
    
Nice. Hard to beat that in this case, I'd say. –  Josh O'Brien Jun 23 '12 at 20:04
    
Yet again, I put reading through the list of functions in base on my to do list. Thanks for pointing this one out. –  Aaron Jun 23 '12 at 20:08
    
Uh, I came across that function when I was searching for a proper replace function. However I did not try it because I was assuming the old a new parameter was only applicable within one string not for vectors. I should have tried it. BTW anyone an idea what chartr stands for? Its easier to remember it. –  Sebastian Jun 24 '12 at 17:40
    
Yeah never mind as the help title says character translation –  Sebastian Jun 24 '12 at 18:25

My first thought whenever I see problems like this is match:

AG <- LETTERS[1:7]
HN <- LETTERS[8:14]

k <- rep(LETTERS[1:14],2)
n <- AG[match(k, HN)]
ifelse(is.na(n), k, n)
# [1] "A" "B" "C" "D" "E" "F" "G" "A" "B" "C" "D" "E" "F" "G" "A" "B" "C" "D" "E"
#[20] "F" "G" "A" "B" "C" "D" "E" "F" "G"

I'd construct an inverse LETTERS function the same way:

invLETTERS <- function(x) match(x, LETTERS[1:26])
invLETTERS(k)
# [1]  1  2  3  4  5  6  7  8  9 10 11 12 13 14  1  2  3  4  5  6  7  8  9 10 11
#[26] 12 13 14
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Here's a clean and straightforward solution:

k <- rep(LETTERS[1:14],2)

# (1) Create a lookup vector whose elements can be indexed into  
#     by their names and will return their associated values
subs <- setNames(rep(LETTERS[1:7], 2), LETTERS[1:14])
subs
#   A   B   C   D   E   F   G   H   I   J   K   L   M   N 
# "A" "B" "C" "D" "E" "F" "G" "A" "B" "C" "D" "E" "F" "G" 

# (2) Use it.
unname(subs[k])
#  [1] "A" "B" "C" "D" "E" "F" "G" "A" "B" "C" "D" "E" "F" "G"
# [15] "A" "B" "C" "D" "E" "F" "G" "A" "B" "C" "D" "E" "F" "G"
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I'm sure there's a way to make this more compact, but this is probably the sort of thing you were thinking of in your second, non-regex idea:

k <- factor(k)
> k1 <- as.integer(k) %% 7
> k1[k1 == 0] <- 7
> LETTERS[k1]
 [1] "A" "B" "C" "D" "E" "F" "G" "A" "B" "C" "D" "E" "F" "G" "A" "B" "C" "D" "E" "F" "G" "A"
[23] "B" "C" "D" "E" "F" "G"

There's probably a clever way to sidestep the 0 index issue, but I'm not feeling terribly clever at the moment.

Edit

Good suggestions from the comments. First, to handle the 0 form the modular arithmetic:

k1 <- ((as.integer(k)-1) %%7) + 1

and combined with match it turns into a one-liner:

k1 <- LETTERS[((match(k, LETTERS)-1) %% 7) + 1]
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Here, you can borrow some cleverness, and pay it back later ;) k1 <- ((as.integer(k)-1) %%7) + 1 –  Josh O'Brien Jun 23 '12 at 19:23
1  
@JoshO'Brien, I like the cleverness. It makes it so this can be solved in one line: k1 = LETTERS[((match(k, LETTERS)-1) %% 7) + 1]. –  Ananda Mahto Jun 23 '12 at 19:50

If your problem is only with A-N:

set.seed(1)
k = sample(LETTERS[1:14], 42, replace=TRUE)
temp = match(k, LETTERS)
# > table(k)
# k
# A B C D E F G I J K L M N 
# 2 2 5 2 1 6 3 3 5 4 3 3 3 
k[which(temp > 7)] = LETTERS[temp[temp > 7] -7]
# > table(k)
# k
# A  B  C  D  E  F  G 
# 2  5 10  6  4  9  6
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