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Hope I can explain my question well enough to obtain an answer - any help will be appreciated.

I have a number if data files which I need to merge into one. I use a for loop to do this and add a column which indicates which file it is.

In this case there are 6 files with up to 100 data entries in each.

When there are 6 files I have no problem in getting this to run.

But when there are less I have a problem.

What I would like to do is use the for loop to test for the files and use the for loop variable to assemble a vector which references the files that exist.

I can't seem to get the new variable to combine the new value of the for loop variable as it goes through the loop.

Here is the sample code I have written so far.

for ( rloop1 in 1 : 6) {
ReadFile=paste(rloop1,SampleName,"_",FileName,"_Stats.csv", sep="")
if (file.exists(ReadFile))
**files_found <- c(rloop1)**

What I am looking for is that files_found will contain those files where 1...6 are valid for the files found.

Regards Steve

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3 Answers 3

up vote 4 down vote accepted

There's a much shorter way to do this using list.files() as Henrik showed. In case you're not familiar with regular expressions (see ?regex), you could do.

n <- 6
Fnames <- paste(1:n,SampleName,"_",FileName,"Stats.csv",sep="")
Filelist <- Fnames[file.exists(Fnames)]

which is perfectly equivalent. Both paste and file.exists are vectorized functions, so you better make use of that. There's no need for a for-loop whatsoever.

To get the number of the filenames (assuming that's the only digits), you can do:

gsub("^[:digit:]","", Filelist)

See also ?regex

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Yeah, I agree that the vectorized version of file.exists is much prettier than the for-loop. But, from my point, list.files() is even nicer as you have it all in one line... (nevertheless +1) – Henrik Jan 17 '11 at 9:22
Thanks for the answers – Steve Sidney Jan 17 '11 at 21:01
Yes SampleName and FileName are strings. One small point, I would have liked to have obtained the number associated with each file found since I need to add a column to the file with that number for all the records in that file. Any ideas? – Steve Sidney Jan 17 '11 at 21:06
@Steve I added it in my answer. – Joris Meys Jan 18 '11 at 0:36
@Joris - Thanks. Have tried your gsub and I think corrected digits to digit (is that a typo error) but either way only get all the applicable files in Filelist. Have looked through regxex info but found it quite confusing. If you have time to take a look and guide me that would be great. To clarify if string was "3A_SampleName_FileName_stats.csv" I would get a 3 and if it was "2A....." I would get a 2 etc – Steve Sidney Jan 19 '11 at 15:10

It would probably be better to list the files you want to load, and then loop over that list to load them. list.files is your friend here. We can use a regular expression to list only those files that end in "_Stats.csv". For example, in my current working directory I have the following files:

$ ls | grep Stats

Only three of them are csv files I want to load (the .txt file doesn't match the pattern you showed). We can get these file names using list.files():

> list.files(pattern = "_Stats.csv$")
[1] "bar_Stats.csv"    "foo_Stats.csv"    "foobar_Stats.csv"

You can then loop over that and read the files in. Something like:

fnames <- list.files(pattern = "_Stats.csv$")
for(i in seq_along(fnames)) {
    assign(paste("file_", i, sep = ""), read.csv(fnames[i]))

That will create a series of objects file_1, file_2, file_3 etc in the global workspace. If you want the files in a list, you could instead lapply over the fnames:

lapply(fnames, read.csv)

and if suitable, might help combine the files from the list:, lapply(fnames, read.csv))
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+1 for the lapply and – Joris Meys Jan 17 '11 at 9:21
list.files + grep + lapply + is a winning combination in my book. – Roman Luštrik Jan 17 '11 at 12:47

I think there are better solutions (e.g., you could use list.files() to scan the folder and then loop over the length of the returned object), but this should (I didn't try it) do the trick (using your sample code):

files.found <- ""    
for (rloop1 in 1 : 6) {
    ReadFile=paste(rloop1,SampleName,"_",FileName,"_Stats.csv", sep="")
    if (file.exists(ReadFile)) files_found <- c(files.found, rloop1)

Alternatively, you could get the fileNames (other than their index) via:

files.found <- ""    
for (rloop1 in 1 : 6) {
    ReadFile=paste(rloop1,SampleName,"_",FileName,"_Stats.csv", sep="")
    if (file.exists(ReadFile)) files_found <- c(files.found, ReadFile)

Finally, in your case list.files could look something like this:

files.found <- list.files(pattern = "[[:digit:]]_SampleName_FileName_Stats.csv")
share|improve this answer
+1 for the list.files – Joris Meys Jan 17 '11 at 9:24
+1 for the list.files() pointer and the regexp. In the regexp, SampleName and FileName were not literals but strings in R objects, at least that was my reading of the Q. – Gavin Simpson Jan 17 '11 at 9:26
@Gavin my reading, too. Perhaps I should clarify that SampleName and FileName should be replaced by their values and can not be variables. – Henrik Jan 17 '11 at 9:31

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