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I have a list of files. I also have a list of "names" which I substr() from the actual filenames of these files. I would like to add a new column to each of the files in the list. This column will contain the corresponding element in "names" repeated times the number of rows in the file.

For example:

df1 <- data.frame(x = 1:3, y=letters[1:3])
df2 <- data.frame(x = 4:6, y=letters[4:6])
filelist <- list(df1,df2)
ID <- c("1A","IB")

Pseudocode

  for( i in length(filelist)){

       filelist[i]$SampleID <- rep(ID[i],nrow(filelist[i])

  }

// basically create a new column in each of the dataframes in filelist, and fill the column with repeted corresponding values of ID

my output should be like:

filelist[1] should be:

 x y SAmpleID
 1 1 a       1A
 2 2 b       1A
 3 3 c       1A

fileList[2]

 x y SampleID
 1 4 d       IB
 2 5 e       IB
 3 6 f       IB

and so on.....

Any Idea how it could be done. Thank you so much in advance

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2  
Your acceptance rate is very low. You should consider going through some of your previous questions and accepting the answers provided. –  Matthew Plourde Nov 15 '12 at 19:46

2 Answers 2

up vote 3 down vote accepted

An alternate solution is to use cbind, and taking advantage of the fact that R will recylce values of a shorter vector.

For Example

x <- df2  # from above
cbind(x, NewColumn="Singleton")
 #    x y NewColumn
 #  1 4 d Singleton
 #  2 5 e Singleton
 #  3 6 f Singleton

There is no need for the use of rep. R does that for you.

Therfore, you could put cbind(filelist[[i]], ID[[i]]) in your for loop or as @Sven pointed out, you can use the cleaner mapply:

filelist <- mapply(cbind, filelist, "SampleID"=ID, SIMPLIFY=F)
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1  
Thanks you so much everyone for your help and exceptional approaches. The for loop, the mapply() and the cbind all work like a charm. Its facinating to learn a language like this and I learn something new each time I pose a question on this board. I am sorry I could not write earlier to express my gratitude and appreciations. Thanks –  user1079898 Nov 18 '12 at 0:17

This is a corrected version of your loop:

for( i in seq_along(filelist)){

  filelist[[i]]$SampleID <- rep(ID[i],nrow(filelist[[i]]))

}

There were 3 problems:

  • A final ) was missing after the command in the body.
  • Elements of lists are accessed by [[, not by [. [ returns a list of length one. [[ returns the element only.
  • length(filelist) is just one value, so the loop runs for the last element of the list only. I replaced it with seq_along(filelist).

A more efficient approach is to use mapply for the task:

mapply(function(x, y) "[<-"(x, "SampleID", value = y) ,
       filelist, ID, SIMPLIFY = FALSE)
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6  
You dont really need the anonymous function in mapply. mapply(`[<-`, filelist, 'sampleID', value = ID, SIMPLIFY = FALSE) will work –  mnel Nov 15 '12 at 22:20
    
@mnel +1 Great idea, thank you. –  Sven Hohenstein Nov 16 '12 at 5:40
    
I accepted your answer as well. I thought you could accept two answers as all of them were very helpful. I am sorry but I did not mean to offend you in any way. Actually the for loop was great and the explanation most helpful. Thank you so much! –  user1079898 Nov 18 '12 at 10:10

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