68

I am able to list all the directories by

find ./ -type d

I attempted to list the contents of each directory and count the number of files in each directory by using the following command

find ./ -type d | xargs ls -l | wc -l

But this summed the total number of lines returned by

find ./ -type d | xargs ls -l

Is there a way I can count the number of files in each directory?

  • Are you looking for a way to count the number of files in each of the sub-directories directly under ./ ? – Tuxdude Mar 5 '13 at 5:25
  • 4
    How's this an off-topic question?? I would like to see close-voters comments with reason! If this is off-topic then where does this belong to? super user? I don't think so.. – InfantPro'Aravind' Mar 5 '13 at 8:30
  • 4
    shell-script, batch-script are under programming scope! – InfantPro'Aravind' Mar 5 '13 at 8:31
  • I was about to post Pythonic solution then I noticed that the question is closed. – anatoly techtonik Nov 14 '13 at 15:20
  • voted to reopen it. There may be other answers that could be useful in many situations (including script programming, which is the reason I reached this question). – lepe Jul 25 '14 at 8:13

14 Answers 14

77

Assuming you have GNU find, let it find the directories and let bash do the rest:

find . -type d -print0 | while read -d '' -r dir; do
    files=("$dir"/*)
    printf "%5d files in directory %s\n" "${#files[@]}" "$dir"
done
  • 1
    Its just a slighly different version from the above, so: ( hint: its sorted by name and its in csv) for x in find . -maxdepth 1 -type d | sort; do y=find $x | wc -l; echo $x,$y; done – pcarvalho May 11 '13 at 17:25
  • 2
    That will not work if any filename has spaces. – glenn jackman May 12 '13 at 4:07
  • 4
    Great one! Putting it into a single line (so it's confortable for direct usage in shell): find . -type d -print0 | while read -d '' -r dir; do files=("$dir"/*); printf "%5d files in directory %s\n" "${#files[@]}" "$dir"; done – lucaferrario Dec 12 '13 at 23:33
  • 9
    I needed to get the number of all files (recursively count) in each subdirectory. This modification gives you that: find . -maxdepth 1 -type d -print0 | while read -d '' -r dir; do num=$(find $dir -ls | wc -l); printf "%5d files in directory %s\n" "$num" "$dir"; done – OmidS Dec 8 '15 at 10:21
  • @glennjackman : I guess this is not counting so called .hidden files. – sjsam May 10 '16 at 16:01
99

This prints the file count per directory for the current directory level:

du -a | cut -d/ -f2 | sort | uniq -c | sort -nr
  • 5
    By far the best (and most elegant) solution if one wants to list the number of files in top level directories recursively. – itoctopus Apr 29 '17 at 13:41
  • 6
    This has two problems: It counts one file per directory more than there actually is and it gives a useless line containing the size of the current directory as "1 size". Both can be fixed with du -a | sed '/.*\.\/.*\/.*/!d' | cut -d/ -f2 | sort | uniq -c. Add | sort -nr to sort by the count instead of the directory name. – dessert Aug 4 '17 at 11:57
  • 1
    I'd like to point out that this works in OSX, too. (Just copy-pasting Linux advice into an OSX shell usually doesn't work.) – Pistos Apr 6 '18 at 16:33
  • 2
    it fetches unneeded size by du -a . Better way is using find command. but main idea is exactly the same :) – Znik Jun 20 '18 at 10:34
12

You could arrange to find all the files, remove the file names, leaving you a line containing just the directory name for each file, and then count the number of times each directory appears:

find . -type f |
sed 's%/[^/]*$%%' |
sort |
uniq -c

The only gotcha in this is if you have any file names or directory names containing a newline character, which is fairly unlikely. If you really have to worry about newlines in file names or directory names, I suggest you find them, and fix them so they don't contain newlines (and quietly persuade the guilty party of the error of their ways).


If you're interested in the count of the files in each sub-directory of the current directory, counting any files in any sub-directories along with the files in the immediate sub-directory, then I'd adapt the sed command to print only the top-level directory:

find . -type f |
sed -e 's%^\(\./[^/]*/\).*$%\1%' -e 's%^\.\/[^/]*$%./%' |
sort |
uniq -c

The first pattern captures the start of the name, the dot, the slash, the name up to the next slash and the slash, and replaces the line with just the first part, so:

./dir1/dir2/file1

is replaced by

./dir1/

The second replace captures the files directly in the current directory; they don't have a slash at the end, and those are replace by ./. The sort and count then works on just the number of names.

  • 1
    This doesn't output directory names which don't contain any files. Not sure if this is required. – Austin Phillips Mar 5 '13 at 5:51
  • True, it doesn't. 'Tis not particularly trivial to fix it to do so, since the empty directory names are not guaranteed even to appear in the output of find. Some might: if there's a file dir1/dir2/dir3/file1, but dir1/dir2 contains only sub-directories (no plain files), then you can infer its presence. But if dir1/dir4 has no files, it name simply doesn't appear. – Jonathan Leffler Mar 5 '13 at 6:00
  • Very useful answer if you just want to see the subdirectories of the current directory. – xixixao Oct 21 '14 at 19:09
  • Just stopped by to say thank you. 3 years after this was posted, I was looking to count 2nd level folders per folder. Your post saved me potentially many hours of tinkering with sed, find and who knows what else – Corvin Dec 29 '16 at 19:59
10

Here's one way to do it, but probably not the most efficient.

find -type d -print0 | xargs -0 -n1 bash -c 'echo -n "$1:"; ls -1 "$1" | wc -l' --

Gives output like this, with directory name followed by count of entries in that directory. Note that the output count will also include directory entries which may not be what you want.

./c/fa/l:0
./a:4
./a/c:0
./a/a:1
./a/a/b:0
  • It seems very expensive to run 3 commands (bash, ls, wc) for each directory found by find. – Jonathan Leffler Mar 5 '13 at 5:43
  • @JonathanLeffler Agreed, hence the first line of my answer. Your solution is better. – Austin Phillips Mar 5 '13 at 5:47
  • cool this is what i am looking for may i ask what is the '--' at the end? – once Mar 21 '16 at 2:58
  • 1
    @once The -- belongs to the bash command which will be spawned by xargs. From man bash, A -- signals the end of options and disables further option processing. In this case it would prevent a misnamed file found as part of the find from becoming part of the argument processing for bash. – Austin Phillips Mar 21 '16 at 4:15
  • 2
    upvoted for one line solution – Ghilas BELHADJ May 27 '16 at 7:04
6

Everyone else's solution has one drawback or another.

find -type d -readable -exec sh -c 'printf "%s " "$1"; ls -1UA "$1" | wc -l' sh {} ';'

Explanation:

  • -type d: we're interested in directories.
  • -readable: We only want them if it's possible to list the files in them. Note that find will still emit an error when it tries to search for more directories in them, but this prevents calling -exec for them.
  • -exec sh -c BLAH sh {} ';': for each directory, run this script fragment, with $0 set to sh and $1 set to the filename.
  • printf "%s " "$1": portably and minimally print the directory name, followed by only a space, not a newline.
  • ls -1UA: list the files, one per line, in directory order (to avoid stalling the pipe), excluding only the special directories . and ..
  • wc -l: count the lines
  • 1
    Modification to show the file counts first on the line, and to sort by them: find -type d -readable -exec sh -c 'ls -1UA "$1" | wc -l | tr -d "\n" ; printf "\t%s\n" "$1" ' sh {} ';' | sort -n – Evgeni Sergeev Nov 22 '17 at 15:27
  • it executes shell many times, then it is slow and highly utilizes resources. – Znik Jun 20 '18 at 10:36
  • This is the only command that worked for me. Thank you! – Geek Dec 23 '18 at 22:34
4

This can also be done with looping over ls instead of find

for f in */; do echo "$f -> $(ls $f | wc -l)"; done

Explanation:

for f in */; - loop over all directories

do echo "$f -> - print out each directory name

$(ls $f | wc -l) - call ls for this directory and count lines

  • This does not work properly if the directory names contain whitespaces. – Xylol Oct 5 '17 at 14:45
2

Slightly modified version of Sebastian's answer using find instead of du (to exclude file-size-related overhead that du has to perform and that is never used):

 find ./ -mindepth 2 -type f | cut -d/ -f2 | sort | uniq -c | sort -nr

-mindepth 2 parameter is used to exclude files in current directory. If you remove it, you'll see a bunch of lines like the following:

  234 dir1
  123 dir2
    1 file1
    1 file2
    1 file3
      ...
    1 fileN

(much like the du-based variant does)

If you do need to count the files in current directory as well, use this enhanced version:

{ find ./ -mindepth 2 -type f | cut -d/ -f2 | sort && find ./ -maxdepth 1 -type f | cut -d/ -f1; } | uniq -c | sort -nr

The output will be like the following:

  234 dir1
  123 dir2
   42 .
1

This should return the directory name followed by the number of files in the directory.

findfiles() {
    echo "$1" $(find "$1" -maxdepth 1 -type f | wc -l)
}

export -f findfiles

find ./ -type d -exec bash -c 'findfiles "$0"' {} \;

Example output:

./ 6
./foo 1
./foo/bar 2
./foo/bar/bazzz 0
./foo/bar/baz 4
./src 4

The export -f is required because the -exec argument of find does not allow executing a bash function unless you invoke bash explicitly, and you need to export the function defined in the current scope to the new shell explicitly.

  • This seems unduly complicated. It also looks to me like it gives cumulative counts for a directory hierarchy such as ./dir1/dir2/dir3 (counting the files in dir1 and its subdirectories all together, rather than counting the files in dir1/dir2/dir3 separately from those in dir1/dir2 and both separately from those in /dir1). – Jonathan Leffler Mar 5 '13 at 5:45
  • I understood that was what the author wanted. If that not be the case, then I agree the answer is not relevant to the question. – Tuxdude Mar 5 '13 at 5:46
  • @JonathanLeffler - Okay, reading the question once again, I realized you're right - have modified the answer accordingly. – Tuxdude Mar 5 '13 at 5:52
1

I am living this here, for future reminder

ls |parallel 'echo {} && ls {}|wc -l'
  • My shell colorizes folders. I use ls --color=never | parallel 'echo -n {} && ls {} | wc -l' – Hyunjun Kim Sep 20 '17 at 2:06
1

find . -type f -printf '%h\n' | sort | uniq -c

gives for example:

  5 .
  4 ./aln
  5 ./aln/iq
  4 ./bs
  4 ./ft
  6 ./hot
0

I tried with some of the others here but ended up with subfolders included in the file count when I only wanted the files. This prints ./folder/path<tab>nnn with the number of files, not including subfolders, for each subfolder in the current folder.

for d in `find . -type d -print` 
do 
  echo -e "$d\t$(find $d -maxdepth 1 -type f -print | wc -l)"
done
0

This will give the overall count.

for file in */; do echo "$file -> $(ls $file | wc -l)"; done | cut -d ' ' -f 3| py --ji -l 'numpy.sum(l)'
  • No it will not. It will only consider one level of subdirectories. – Kusalananda May 20 '18 at 11:29
  • Yes @Kusalananda, It works for one level only. – Naga Venkatesh Gavini May 20 '18 at 11:31
0

I combined @glenn jackman's answer and @pcarvalho's answer(in comment list, there is something wrong with pcarvalho's answer because the extra style control function of character '`'(backtick)).

My script can accept path as an augument and sort the directory list as ls -l, also it can handles the problem of "space in file name".

#!/bin/bash
OLD_IFS="$IFS"
IFS=$'\n'
for dir in $(find $1 -maxdepth 1 -type d | sort); 
do
    files=("$dir"/*)
    printf "%5d,%s\n" "${#files[@]}" "$dir"
done
FS="$OLD_IFS"

My first answer in stackoverflow, and I hope it can helps you ^_^

0

Easy way to recursively find files of a given type. In this case, .jpg files for all folders in current directory:

find . -name *.jpg -print | wc -l

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