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On a Linux machine I would like to traverse a folder hierarchy and get a list of all of the distinct file extensions within it.

What would be the best way to achieve this from a shell?

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11 Answers 11

up vote 63 down vote accepted

Try this (not sure if it's the best way, but it works):

find . -type f | perl -ne 'print $1 if m/\.([^.\/]+)$/' | sort -u

It work as following:

  • Find all files from current folder
  • Prints extension of files if any
  • Make a unique sorted list
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2  
just for reference: if you want to exclude some directories from searching (e.g. .svn), use find . -type f -path '*/.svn*' -prune -o -print | perl -ne 'print $1 if m/\.([^.\/]+)$/' | sort -u source –  Denis Golomazov Nov 22 '12 at 13:05
    
will this handle spaces in names correctly? –  Sergiy Byelozyorov Aug 19 '13 at 19:54
    
Spaces will not make any difference. Each file name will be in separate line, so file list delimiter will be "\n" not space. –  Ivan Nevostruev Aug 20 '13 at 20:43
1  
On Windows, this works better and is much faster than find: dir /s /b | perl -ne 'print $1 if m/\.([^^.\\\\]+)$/' | sort -u –  Ryan Shillington Dec 9 '13 at 22:30

No need for the pipe to sort, awk can do it all:

find . -type f -name "*.*" | awk -F. '!a[$NF]++{print $NF}'
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Powershell: dir -recurse | select-object extension -unique

thanks to http://kevin-berridge.blogspot.com/2007/11/windows-powershell.html

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Hey that's pretty cool, and very readable. –  GloryFish Apr 23 '10 at 14:51
1  
Thanks for linking to my blog! –  Kevin Berridge Jul 13 '10 at 2:25
5  
The OP said "On a Linux machine" –  Forbesmyester Aug 5 '13 at 13:37

Find everythin with a dot and show only the suffix.

find . -type f -name "*.*" | awk -F. '{print $NF}' | sort -u

if you know all suffix have 3 characters then

find . -type f -name "*.???" | awk -F. '{print $NF}' | sort -u

or with sed shows all suffixes with one to four characters. Change {1,4} to the range of characters you are expecting in the suffix.

find . -type f | sed -n 's/.*\.\(.\{1,4\}\)$/\1/p'| sort -u
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1  
No need for the pipe to 'sort', awk can do it all: find . -type f -name "." | awk -F. '!a[$NF]++{print $NF}' –  SiegeX Dec 6 '09 at 12:14
    
And it's output is also uniq! Nice! –  user224243 Dec 6 '09 at 20:21
    
@SiegeX Yours should be a separate answer. It found that command to work the best for large folders, as it prints the extensions as it finds them. But note that it should be: -name "." –  Ralf Aug 18 '11 at 7:54
    
@Ralf done, posted answer here. Not quite sure about what you mean by the -name "." thing because that's what it already is –  SiegeX Aug 24 '11 at 5:24
    
I meant it should be -name "*.*", but StackOverflow removes the * characters, which probably happened in your comment as well. –  Ralf Aug 24 '11 at 10:40

Using generators for very large directories, including blank extensions, and getting the number of times each extension shows up:

import json
import collections
import itertools
import os

root = '/home/andres'
files = itertools.chain.from_iterable((
    files for _,_,files in os.walk(root)
    ))
counter = collections.Counter(
    (os.path.splitext(file_)[1] for file_ in files)
)
print json.dumps(counter, indent=2)
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Since there's already another solution which uses Perl:

If you have Python installed you could also do (from the shell):

python -c "import os;e=set();[[e.add(os.path.splitext(f)[-1]) for f in fn]for _,_,fn in os.walk('/home')];print '\n'.join(e)"
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Reursive version:

find . -type f | sed -e 's/.*\.//' | sed -e 's/.*\///' | sort -u

If you want totals (how may times the extension was seen):

find . -type f | sed -e 's/.*\.//' | sed -e 's/.*\///' | sort | uniq -c | sort -rn

Non-recursive (single folder):

for f in *.*; do printf "%s\n" "${f##*.}"; done | sort -u

I've based this upon this forum post, credit should go there.

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you are going to execute bash for each file name you find?? –  ghostdog74 Dec 4 '09 at 0:02
    
Good point, changed the solution... –  ChristopheD Dec 4 '09 at 8:07

None of the replies so far deal with filenames with newlines properly (except for ChristopheD's, which just came in as I was typing this). The following is not a shell one-liner, but works, and is reasonably fast.

import os, sys

def names(roots):
    for root in roots:
        for a, b, basenames in os.walk(root):
            for basename in basenames:
                yield basename

sufs = set(os.path.splitext(x)[1] for x in names(sys.argv[1:]))
for suf in sufs:
    if suf:
        print suf
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Adding my own variation to the mix. I think it's the simplest of the lot and can be useful when efficiency is not a big concern.

find . -type f | grep -o -E '\.[^\.]+$' | sort -u
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+1 for portability, although the regex is quite limited, as it only matches extensions consisting of a single letter. Using the regex from the accepted answer seems better: $ find . -type f | grep -o -E '\.[^.\/]+$' | sort -u –  mMontu Dec 9 '13 at 11:48
    
Agreed. I slacked off a bit there. Editing my answer to fix the mistake you spotted. –  gkb0986 Dec 9 '13 at 17:38

you could also do this

find . -type f -name "*.php" -exec PATHTOAPP {} +
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I tried a bunch of the answers here, even the "best" answer. They all came up short of what I specifically was after. So besides the past 12 hours of sitting in regex code for multiple programs and reading and testing these answers this is what I came up with which works EXACTLY like I want.

 find . -type f -name "*.*" | grep -o -E "\.[^\.]+$" | grep -o -E "[[:alpha:]]{3,6}" | awk '{print tolower($0)}' | sort -u
  • Finds all files which may have an extension.
  • Greps only the extension
  • Greps for file extensions between 3 and 6 characters (just adjust the numbers if they don't fit your need). This helps avoid cache files and system files (system file bit is to search jail).
  • Awk to print the extensions in lower case.
  • Sort and bring in only unique values. Originally I had attempted to try the awk answer but it would double print items that varied in case sensitivity.

If you need a count of the file extensions then use the below code

find . -type f -name "*.*" | grep -o -E "\.[^\.]+$" | grep -o -E "[[:alpha:]]{3,6}" | awk '{print tolower($0)}' | sort | uniq -c | sort -rn

While these methods will take some time to complete and probably aren't the the best ways to go about the problem, they work.

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