What is the best way, using Bash, to rename files in the form:

(foo1, foo2, ..., foo1300, ..., fooN)

With zero-padded file names:

(foo00001, foo00002, ..., foo01300, ..., fooN)
up vote 27 down vote accepted

In case N is not a priori fixed:

 for f in foo[0-9]*; do mv $f `printf foo%05d ${f#foo}`; done
  • spent a solid hour looking an applicable solution this morning, and this by far the "best" one I came across, ie. working on Linux, macOS, and no dependency on the rename utility. On side note, this solution did strip the "file extensions" for the files I was working with, so after applying this solution, a for f in *; do mv "$f" "$f.ext"; done was a quick band-aid® to get the desired extension back onto the files I was working with. 👍 – ipatch Jun 18 at 17:35
  • 1
    You could also add the .ext to the printf command: printf foo%05d.ext ${f#foo}. See man printf for the full details. – Chris Conway Jun 18 at 21:03

It's not pure bash, but much easier with the rename command:

rename 's/\d+/sprintf("%05d",$&)/e' foo*
  • It handles filenames with spaces too. – palacsint Oct 19 '13 at 10:03

I had a more complex case where the file names had a postfix as well as a prefix. I also needed to perform a subtraction on the number from the filename.

For example, I wanted foo56.png to become foo00000055.png.

I hope this helps if you're doing something more complex.

#!/bin/bash

prefix="foo"
postfix=".png"
targetDir="../newframes"
paddingLength=8

for file in ${prefix}[0-9]*${postfix}; do
  # strip the prefix off the file name
  postfile=${file#$prefix}
  # strip the postfix off the file name
  number=${postfile%$postfix}
  # subtract 1 from the resulting number
  i=$((number-1))
  # copy to a new name with padded zeros in a new folder
  cp ${file} "$targetDir"/$(printf $prefix%0${paddingLength}d$postfix $i)
done

Pure Bash, no external processes other than 'mv':

for file in foo*; do
  newnumber='00000'${file#foo}      # get number, pack with zeros
  newnumber=${newnumber:(-5)}       # the last five characters
  mv $file foo$newnumber            # rename
done

The oneline command that I use is this:

ls * | cat -n | while read i f; do mv "$f" `printf "PATTERN" "$i"`; done

PATTERN can be for example:

  • rename with increment counter: %04d.${f#*.} (keep original file extension)
  • rename with increment counter with prefix: photo_%04d.${f#*.} (keep original extension)
  • rename with increment counter and change extension to jpg: %04d.jpg
  • rename with increment counter with prefix and file basename: photo_$(basename $f .${f#*.})_%04d.${f#*.}
  • ...

You can filter the file to rename with for example ls *.jpg | ...

You have available the variable f that is the file name and i that is the counter.

For your question the right command is:

ls * | cat -n | while read i f; do mv "$f" `printf "foo%d05" "$i"`; done

The following will do it:

for i in ((i=1; i<=N; i++)) ; do mv foo$i `printf foo%05d $i` ; done

EDIT: changed to use ((i=1,...)), thanks mweerden!

  • Instead of using seq I would suggest writing for ((i=1; i<=N; i++)); do etc. Besides being part of bash, this also avoids having to first generate all numbers and then executing the for. – mweerden Sep 11 '08 at 6:18

Here's a quick solution that assumes a fixed length prefix (your "foo") and fixed length padding. If you need more flexibility, maybe this will at least be a helpful starting point.

#!/bin/bash

# some test data
files="foo1
foo2
foo100
foo200
foo9999"

for f in $files; do
    prefix=`echo "$f" | cut -c 1-3`        # chars 1-3 = "foo"
    number=`echo "$f" | cut -c 4-`         # chars 4-end = the number
    printf "%s%04d\n" "$prefix" "$number"
done

Your Answer

 

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

Not the answer you're looking for? Browse other questions tagged or ask your own question.