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From a shell script, how do I check if a directory contains files?

Something similar to this

if [ -e /some/dir/* ]; then echo "huzzah"; fi;

but which works if the directory contains one or several files (the above one only works with exactly 0 or 1 files).

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For what it's worth your example good does what you want in ksh and zsh –  Dave Webb Sep 18 '08 at 10:31
1  
@DaveWebb No it doesn't. If the glob expands to more than one word, the zsh test reports 'test: too many arguments'. –  Jens Sep 11 '12 at 13:13
    
"huzzah" means "the directory is not empty". –  funroll Jan 7 '13 at 18:38
    
If the directory contains only an empty subdirectory, does that count as "containing files"? –  Keith Thompson Apr 30 '13 at 20:02

18 Answers 18

up vote 29 down vote accepted

The solutions so far use ls. Here's an all bash solution:

shopt -s nullglob
shopt -s dotglob # To include hidden files
files=(/some/dir/*)
if [ ${#files[@]} -gt 0 ]; then echo "huzzah"; fi
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5  
as long as you remember to set the options back to their original value at the end of the script :) –  Jean Sep 18 '08 at 11:07
1  
which is done with shopt -u nullglob –  bryan kennedy Feb 28 '11 at 0:43
6  
Why not use a subshell to reset the settings: files=$(shopt -s nullglob;shopt -s dotglob;echo /some/dir/*) –  teambob Oct 11 '12 at 3:29
4  
@teambob if using a sub-shell: files=$(shopt -s nullglob;shopt -s dotglob;echo /some/dir/*) then the if statement should change to if [ ${#files} -gt 0 ]; or maybe you just forgot the () around the sub-shell command? files=($(shopt -s nullglob;shopt -s dotglob;echo /some/dir/*)) –  stoutyhk Jul 4 '13 at 17:48
2  
@stoutyhk $(...) restores the settings, no separate subshell is required. Using $(...) spawns a new instance of the shell. The environment of this new instance is thrown away once the command is finished. Edit: Found a reference tldp.org/LDP/abs/html/commandsub.html "Command substitution invokes a subshell." –  teambob Jul 15 '13 at 23:42

How about the following:

if find /some/dir/ -maxdepth 0 -empty | read v; then echo "Empty dir"; fi

This way there is no need for generating a complete listing of the contents of the directory. The read is both to discard the output and make the expression evaluate to true only when something is read (i.e. /some/dir/ is found empty by find).

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1  
or simply find /some/dir/ -maxdepth 0 -empty -exec echo "huzzah" \; –  doubleDown Nov 12 '12 at 2:34
2  
+1 This the most elegant solution. It does not involve parsing of ls output and it does not rely on non-default shell features. –  user1019830 May 16 '13 at 17:56
3  
It does, however, rely on the non-standard -maxdepth and -empty primaries. –  chepner Oct 18 '13 at 17:43

three best tricks

Please also up-vote the original contributors ;)


(( ${#files} ))

This trick is 100% bash but invokes (spawns) a sub-shell. The idea is from Bruno De Fraine and improved by teambob's comment.

files=$(shopt -s nullglob dotglob; echo your/dir/*)
if (( ${#files} ))
then 
  echo "contains files"
else 
  echo "empty (or does not exist or is a file)"
fi

Note: no difference between an empty directory and a non-existing one (and even when the provided path is a file).


[ -n "$(ls -A your/dir)" ]

This trick is inspired from nixCraft's article posted in 2007. Andrew Taylor answered in 2008 and gr8can8dian in 2011.

if [ `ls -A your/dir` ]
then
  echo "contains files (or is a file)"
else
  echo "empty (or does not exist)"
fi

or the one-line bashism version:

[[ $(ls -A your/dir) ]] && echo "contains files" || echo "empty"

Note: ls returns $?=2 when the directory does not exist. But no difference between a file and an empty directory.


[ -n "$(find your/dir -prune -empty)" ]

This last trick is inspired from gravstar's answer where -maxdepth 0 is replaced by -prune and improved by phils's comment.

if [ `find your/dir -prune -empty` ]
then
  echo "empty (directory or file)"
else
  echo "contains files (or does not exist)"
fi

a variation using -type d:

if [ `find your/dir -prune -empty -type d` ]
then
  echo "empty directory"
else
  echo "contains files (or does not exist or is not a directory)"
fi

Explanation:

  • find -prune is similar than find -maxdepth 0 using less characters
  • find -empty prints the empty directories and files
  • find -type d prints directories only
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2  
I think you can simplify the find option to [ -n "$(find "your/dir" -prune -empty)" ], to avoid the repetition of the directory path. –  phils Nov 27 '13 at 2:27
    
Whilst using if [ ``ls -A your/dir`` ] in a script I came to the conclusion that it works fine for a directory with 0, 1 or 2 subdirectories, but fails for a directory with more than 2 subdirectories. line 17: [: 20150424-002813: unary operator expected where 20150424-002813 was one of the directory names. The used shell was /bin/bash/. I finally changed it to ls "$destination" | tail -1 –  Christophe De Troyer Apr 23 at 22:31
    
Hi @ChristopheDeTroyer I cannot reproduce your issue. On my side if [ ``ls -A my/dir`` ] exits on error bash: [: -A: binary operator expected. Tested on bash versions 4.1.2 and 4.2.53. –  olibre Apr 28 at 15:04

Try:

if [ ! -z `ls /some/dir/*` ]; then echo "huzzah"; fi
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This worked for me, but I can't format this d*mn message!!! <br>export tmp=/bin/ls <some_dir>/* 2> /dev/null if [ ! -z "$tmp" ]; then echo Something is there fi –  AndrewStone May 25 '11 at 20:00
1  
For Bash idiots like me, if you want to check the opposite - that the directory is empty - just use if [ -z ls /some/dir/* ]; then echo "huzzah"; fi –  Chris Moschini Sep 24 '13 at 16:38
2  
You can use -n instead of ! -z (they're both equivalent, but why not use the shorter form when it exists). –  n.st Jan 26 '14 at 2:18
# Works on hidden files, directories and regular files
### isEmpty()
# This function takes one parameter:
# $1 is the directory to check
# Echoes "huzzah" if the directory has files
function isEmpty(){
  if [ "$(ls -A $1)" ]; then
    echo "huzzah"
  else 
    echo "has no files"
  fi
}
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Take care with directories with a lot of files! It could take a some time to evaluate the ls command.

IMO the best solution is the one that uses

find /some/dir/ -maxdepth 0 -empty
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DIR="/some/dir"
if [ "$(ls -A $DIR)" ]; then
     echo 'There is something alive in here'
fi
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Could you compare the output of this?

 ls -A /some/dir | wc -l
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# Checks whether a directory contains any nonhidden files.
#
# usage: if isempty "$HOME"; then echo "Welcome home"; fi
#
isempty() {
    for _ief in $1/*; do
        if [ -e "$_ief" ]; then
            return 1
        fi
    done
    return 0
}

Some implementation notes:

  • The for loop avoids a call to an external ls process. It still reads all the directory entries once. This can only be optimized away by writing a C program that uses readdir() explicitly.
  • The test -e inside the loop catches the case of an empty directory, in which case the variable _ief would be assigned the value "somedir/*". Only if that file exists will the function return "nonempty"
  • This function will work in all POSIX implementations. But be aware that the Solaris /bin/sh doesn't fall into that category. Its test implementation doesn't support the -e flag.
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This would ignore dotfiles in the directory if dotglob is not set - shopt -s dotglob –  l0b0 Sep 11 '12 at 9:19
    
he already told that this is for non-hidden files. –  akostadinov Sep 18 '13 at 8:46

This may be a really late response but here is a solution that works. This line only recognizes th existance of files! It will not give you a false positive if directories exist.

if find /path/to/check/* -maxdepth 0 -type f | read
  then echo "Files Exist"
fi
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if ls /some/dir/* >/dev/null 2>&1 ; then echo "huzzah"; fi;
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I like this one as there are no quotes or brackets crufting up the command. –  Dave Webb Sep 18 '08 at 10:45
    
Careful not to use this if you set nullglob, because then the ls command will succeed. –  Steve Kehlet Oct 12 '12 at 16:57

I am surprised the wooledge guide on empty directories hasn't been mentioned. This guide, and all of wooledge really, is a must read for shell type questions.

Of note from that page:

Never try to parse ls output. Even ls -A solutions can break (e.g. on HP-UX, if you are root, ls -A does the exact opposite of what it does if you're not root -- and no, I can't make up something that incredibly stupid).

In fact, one may wish to avoid the direct question altogether. Usually people want to know whether a directory is empty because they want to do something involving the files therein, etc. Look to the larger question. For example, one of these find-based examples may be an appropriate solution:

   # Bourne
   find "$somedir" -type f -exec echo Found unexpected file {} \;
   find "$somedir" -maxdepth 0 -empty -exec echo {} is empty. \;  # GNU/BSD
   find "$somedir" -type d -empty -exec cp /my/configfile {} \;   # GNU/BSD

Most commonly, all that's really needed is something like this:

   # Bourne
   for f in ./*.mpg; do
        test -f "$f" || continue
        mympgviewer "$f"
    done

In other words, the person asking the question may have thought an explicit empty-directory test was needed to avoid an error message like mympgviewer: ./*.mpg: No such file or directory when in fact no such test is required.

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So far I haven't seen an answer that uses grep which I think would give a simpler answer (with not too many weird symbols!). Here is how I would check if any files exist in the directory using bourne shell:

this returns the number of files in a directory:

ls -l <directory> | egrep -c "^-"

you can fill in the directory path in where directory is written. The first half of the pipe ensures that the first character of output is "-" for each file. egrep then counts the number of line that start with that symbol using regular expressions. now all you have to do is store the number you obtain and compare it using backquotes like:

 #!/bin/sh 
 fileNum=`ls -l <directory> | egrep -c "^-"`  
 if [ $fileNum == x ] 
 then  
 #do what you want to do
 fi

x is a variable of your choice.

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dir_is_empty() {
   [ "${1##*/}" = "*" ]
}

if dir_is_empty /some/dir/* ; then
   echo "huzzah"
fi

Assume you don't have a file named * into /any/dir/you/check, it should work on bash dash posh busybox sh and zsh but (for zsh) require unsetopt nomatch.

Performances should be comparable to any ls which use *(glob), I guess will be slow on directories with many nodes (my /usr/bin with 3000+ files went not that slow), will use at least memory enough to allocate all dirs/filenames (and more) as they are all passed (resolved) to the function as arguments, some shell probably have limits on number of arguments and/or length of arguments.

A portable fast O(1) zero resources way to check if a directory is empty would be nice to have.

update

The version above doesn't account for hidden files/dirs, in case some more test is required, like the is_empty from Rich’s sh (POSIX shell) tricks:

is_empty () (
cd "$1"
set -- .[!.]* ; test -f "$1" && return 1
set -- ..?* ; test -f "$1" && return 1
set -- * ; test -f "$1" && return 1
return 0 )

But, instead, I'm thinking about something like this:

dir_is_empty() {
    [ "$(find "$1" -name "?*" | dd bs=$((${#1}+3)) count=1 2>/dev/null)" = "$1" ]
}

Some concern about trailing slashes differences from the argument and the find output when the dir is empty, and trailing newlines (but this should be easy to handle), sadly on my busybox sh show what is probably a bug on the find -> dd pipe with the output truncated randomically (if I used cat the output is always the same, seems to be dd with the argument count).

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This tells me if the directory is empty or if it's not, the number of files it contains.

directory="/some/dir"
number_of_files=$(ls -A $directory | wc -l)

if [ "$number_of_files" == "0" ]; then
    echo "directory $directory is empty"
else
    echo "directory $directory contains $number_of_files files"
fi
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Can anyone explain me why I was downvoted ? If am writing craps, Id' like to know why ;) –  Daishi Kaszer May 18 at 13:15
    
I didn't downvote this, but at a guess it's because you're parsing the output of ls. –  Toby Speight Jun 4 at 18:26
    
@TobySpeight okay, but what's wrong with that ? –  Daishi Kaszer Jun 10 at 14:34
    
is the linked article unclear? If so, email the author (not me). –  Toby Speight Jun 10 at 15:50
    
@TobySpeight I see the point. But in this case I am counting the lines not enumerating 'em. It should give a false result only if a file name contains a new line. And if file names are containing new lines, something much more important must have f**ked up somewhere ;) –  Daishi Kaszer Jun 16 at 1:46

I dislike the ls - A solutions posted. Most likely you wish to test if the directory is empty because you don't wish to delete it. The following does that. If however you just wish to log an empty file, surely deleting and recreating it is quicker then listing possibly infinite files?

This should work...

if !  rmdir ${target}
then
    echo "not empty"
else
    echo "empty"
    mkdir ${target}
fi
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4  
This does not work if the user has no write permission to ${target}/... –  Jens Sep 11 '12 at 13:06

to test a specific target directory

if [ -d $target_dir ]; then
    ls_contents=$(ls -1 $target_dir | xargs); 
    if [ ! -z "$ls_contents" -a "$ls_contents" != "" ]; then
        echo "is not empty";
    else
        echo "is empty";
    fi;
else
    echo "directory does not exist";
fi;
share|improve this answer

Works well for me this (when dir exist):

some_dir="/some/dir with whitespace & other characters/"
if find "`echo "$some_dir"`" -maxdepth 0 -empty | read v; then echo "Empty dir"; fi

With full check:

if [ -d "$some_dir" ]; then
  if find "`echo "$some_dir"`" -maxdepth 0 -empty | read v; then echo "Empty dir"; else "Dir is NOT empty" fi
fi
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