90

I have a file

ABCD.csv 

The length before the .csv is not fixed and vary to any length.

How can I extract the portion before the .csv.

0
157

There's a built in file_path_sans_ext from the standard install tools package that grabs the file without the extension.

tools::file_path_sans_ext("ABCD.csv")
## [1] "ABCD"
1
  • 9
    Anyone looking for more details on this and similar functions, take a look at ?tools::file_ext Mar 18 '15 at 4:19
44

basename will also remove the path leading to the file. And with this regex, any extension will be removed.

filepath <- "d:/Some Dir/ABCD.csv"
sub(pattern = "(.*)\\..*$", replacement = "\\1", basename(filepath))

# [1] "ABCD"

Or, using file_path_sans_ext as Tyler Rinker suggested:

file_path_sans_ext(basename(filepath))

# [1] "ABCD"
1
  • 1
    Special case: a file having "several extensions", like "ABCD.txt.csv" (yeah, it happens), then just add a '?' to make the expression non-greedy: sub(pattern = "(.*?)\\..*$", replacement = "\\1", basename(filepath))
    – Jason V
    Nov 14 '15 at 3:08
21

You can use sub or substr

sub('\\.csv$', '', str1) 
#[1] "ABCD"

or

substr(str1, 1, nchar(str1)-4)
#[1] "ABCD"

Using the 'file_path' from @JasonV's post

sub('\\..*$', '', basename(filepath))
#[1] "ABCD"

Or

library(stringr)
str_extract(filepath,  perl('(?<=[/])([^/]+)(?=\\.[^.]+)'))
#[1] "ABCD"

data

str1 <- 'ABCD.csv'
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  • 1
    Yes, it would remove too. Why do you need the . after the \\. Could that be also a . literally i.e. foo..
    – akrun
    Sep 17 '20 at 15:18
  • You are right of course, this was a typo. My bad. Now I cannot edit this anymore.
    – stephanmg
    Sep 17 '20 at 15:25
  • 1
    @stephanmg There could be edge cases like foo. Not sure what to do with those
    – akrun
    Sep 17 '20 at 15:26
  • 1
    @stephanmgI would say that regex would be more custom case i.e. it cannot be applied to all the general cases. Suppose if the OP mentioin that he/she will only have .<word> at the end and there are no other cases, this would work
    – akrun
    Sep 17 '20 at 16:07
  • 1
    Okay, I think this is fine then.
    – stephanmg
    Sep 18 '20 at 7:22
6

You can try this also:

data <- "ABCD.csv"
gsub(pattern = "\\.csv$", "", data)

#[1] "ABCD"

This will be helpful in case of list of files as well, say

data <- list.files(pattern="\\.csv$") , using the code will remove extension of all the files in the list.

5

If you have filenames with multiple (possible extensions) and you want to strip off only the last extension, you can try the following.

Consider the filename foo.bar.baz.txt this

sub('\\..[^\\.]*$', '', "foo.bar.baz.txt")

will leave you with foo.bar.baz.

3

fs::path_ext_remove() "removes the last extension and returns the rest of the path".

fs::path_ext_remove(c("ABCD.csv", "foo.bar.baz.txt", "d:/Some Dir/ABCD.csv"))

# Produces: [1] "ABCD"             "foo.bar.baz"      "D:/Some Dir/ABCD"
2

Here is an implementation that works for compression and multiple files:

remove.file_ext <- function(path, basename = FALSE) {
  out <- c()
  for (p in path) {
    fext <- file_ext(path)
    compressions <- c("gzip", "gz", "bgz", "zip")
    areCompressed <- fext %in% compressions
    if (areCompressed) {
      ext <- file_ext(file_path_sans_ext(path, compression = FALSE))
      regex <- paste0("*\\.",ext,"\\.", fext,"$")
    } else {
      regex <- paste0("*\\.",fext,"$")
    }
    new <- gsub(pattern = regex, "", path)
    out <- c(out, new)
  }
  return(ifelse(basename, basename(out), out))
}
1

Loading the library needed :

> library(stringr)

Extracting all the matches from the regex:

> str_match("ABCD.csv", "(.*)\\..*$")
     [,1]       [,2]  
[1,] "ABCD.csv" "ABCD"

Returning only the second part of the result, which corresponds to the group matching the file name:

> str_match("ABCD.csv", "(.*)\\..*$")[,2]
[1] "ABCD"

EDIT for @U-10-Forward:

It is basically the same principle as the other answer. Just that I found this solution more robust.

Regex wise it means:

  • () = group

  • .* = any single character except the newline character any number of time

  • // is escape notation, thus //. means literally "."

  • .* = any characters any number of time again

  • $ means should be at the end of the input string

The logic is then that it will return the group preceding a "." followed by a group of characters at the end of the string (which equals the file extension in this case).

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