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For life of me, I don't know what is wrong here and thought there might be something I am doing wrong:

As with all my other stuff I've asked, this related to genetics

I'm trying to split genetic variables with a string such as A/A, with the following R code:

gt$A1 <- sapply(strsplit(as.character(gt[c(4)]), "/"), function(x) x[1])
gt$A2 <- sapply(strsplit(as.character(gt[c(4)]), "/"), function(x) x[2])

However, what comes out is

A1 = ' c("G '  
A2 = ' G", "G '

for every single variant even if there if the genotypes are not G/G.

Example of my file looks like this:

ID  MGT FGT CGT
001 A/A A/G G/A
002 T/C T/C C/C
003 T/C C/C T/C

Is there a reason why this doesn't split cleanly? I'm assuming maybe the length of the string might be messing this up - but not sure whether this is a problem in R.

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marked as duplicate by Chinmay Patil, Aaron, Robby Pond, thelatemail, joran Mar 25 at 2:45

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
As a starting point check the difference here: as.character(gt[4]) vs. as.character(gt[,4]) –  thelatemail Mar 25 at 0:09
    
Could you also post a dput(gt) or dput(head(gt))? –  hrbrmstr Mar 25 at 0:12
    
This is probably also duplicating this question: stackoverflow.com/questions/4350440/… –  thelatemail Mar 25 at 0:15
    
as.character(gt[,4]) lists the genotypes in quotations - looks legit. as.character(gt[4]) does not and genotypes are in the form: \"C/C\" (the exact same one in the list was "C/C"). –  user2726449 Mar 25 at 0:23
1  
Yep - and your code will work fine if you make that replacement. –  thelatemail Mar 25 at 0:28
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1 Answer 1

Problem is that gt[c(4)] will return a data.frame (because it means gt[4] which is list) instead of a vector/matrix and then sapply is not able give the result you expect when applied to a list.

Instead, you need to supply a vector.matrix doing (assuming that you want to split 4th column of the input).

gt$A1 <- sapply(strsplit(as.character(gt[, 4]), "/"), function(x) x[1])
gt$A2 <- sapply(strsplit(as.character(gt[, 4]), "/"), function(x) x[2])
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1  
gt[4] returns a data.frame, which is a list. It is NOT a matrix in any formal sense, even if it looks like one. See: is(gt[4]). If gt[4] returned a matrix, there would be no drama, as a matrix is essentially a vector with dimensions - e.g.: as.character(as.matrix(gt[4])) is okay. –  thelatemail Mar 25 at 2:29
    
thanks for that correction, I edited my answer –  romantsegelskyi Mar 25 at 2:55
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