378

I would like to join the result of ls -1 into one line and delimit it with whatever i want.

Are there any standard Linux commands I can use to achieve this?

20 Answers 20

585

Similar to the very first option but omits the trailing delimiter

ls -1 | paste -sd "," -
  • 28
    Just as a note, the version of paste I tried requires a "-" argument at the end to tell it to read from STDIN. e.g. ls -1 | paste -s -d ":" - Not sure if that's universal with all versions of paste – Andy White May 10 '12 at 16:15
  • 4
    this one is better because it allows empty delimiter :) – Yura Purbeev Aug 15 '14 at 23:05
  • 2
    Note paste gets - (standard input) as default, at least on my paste (GNU coreutils) 8.22. – fedorqui Jul 29 '15 at 13:19
  • 1
    i just upvoted it, this is and now it has the same votes as the selected answer. THIS IS THE ANSWER. no trailing delimeter – thebugfinder Sep 14 '15 at 13:23
  • The empty delimiter can be specified using "\0", so paste -sd "\0" - worked for me! – Brad Parks Dec 17 '15 at 20:08
352

EDIT: Simply "ls -m" If you want your delimiter to be a comma

Ah, the power and simplicity !

ls -1 | tr '\n' ','

Change the comma "," to whatever you want. Note that this includes a "trailing comma"

  • 42
    +1, but a more elaborate version should handle last \n differently – mouviciel May 4 '10 at 9:24
  • 5
    If the file name contains a \n in it, this will replace that too. – codaddict May 4 '10 at 9:28
  • @unicornaddict you can use -b or -q for ls to handle strange cases like you mention. – zaf May 4 '10 at 9:40
  • 3
    @ShreevatsaR: he means to not append a trailing "," I believe. like so ls -1 | tr "\\n" "," | sed 's/\(.*\),/\1/' – Chris Mar 8 '12 at 20:21
  • 7
    @Chris: your sed could be a little more efficient with the end-marker character: ls -1 | tr "\\n" "," | sed 's/,$//'; echo '' – pieman72 Dec 17 '13 at 1:21
23

This replaces the last comma with a newline:

ls -1 | tr '\n' ',' | sed 's/,$/\n/'

ls -m includes newlines at the screen-width character (80th for example).

Mostly Bash (only ls is external):

saveIFS=$IFS; IFS=$'\n'
files=($(ls -1))
IFS=,
list=${files[*]}
IFS=$saveIFS

Using readarray (aka mapfile) in Bash 4:

readarray -t files < <(ls -1)
saveIFS=$IFS
IFS=,
list=${files[*]}
IFS=$saveIFS

Thanks to gniourf_gniourf for the suggestions.

  • This will not take care of files with white spaces in the name. Try this one: dir=/tmp/testdir; rm -rf $dir && mkdir $dir && cd /$dir && touch "this is a file" this_is_another_file && ls -1 && files=($(ls -1)) && list=${files[@]/%/,} && list=${list%*,} && echo $list – dimir Oct 23 '14 at 13:55
  • 1
    @dimir: Many of the answers to this question suffer from this problem. I have edited my answer to allow for filenames with tabs or spaces, but not newlines. – Dennis Williamson Oct 23 '14 at 15:58
  • Your bash version suffers from pathname expansions too. To build an array from lines, please consider using mapfile (Bash ≥4) as: mapfile -t files < <(ls -1). No need to fiddle with IFS. And it's shorter too. – gniourf_gniourf Oct 23 '14 at 16:08
  • And when you have your array, you can use IFS to join the fields: saveIFS=$IFS; IFS=,; list=${files[*]}; IFS=$saveIFS. Or use another method if you want a separator with more that one character. – gniourf_gniourf Oct 23 '14 at 16:10
  • 1
    @gniourf_gniourf: I have included your suggestions in my answer. Thanks. – Dennis Williamson Oct 23 '14 at 16:38
19

I think this one is awesome

ls -1 | awk 'ORS=","'

ORS is the "output record separator" so now your lines will be joined with a comma.

  • 5
    This does not exclude the trailing delimiter. – Derek Mahar Nov 21 '14 at 15:47
  • 4
    This is especially awesome due to handling multi-character record separators (e.g., " OR ") – Mat Schaffer Nov 16 '16 at 7:02
14

The combination of setting IFS and use of "$*" can do what you want. I'm using a subshell so I don't interfere with this shell's $IFS

(set -- *; IFS=,; echo "$*")

To capture the output,

output=$(set -- *; IFS=,; echo "$*")
  • 2
    Do you have some more information regarding how set works? Looks a bit like voodoo to me. shallow look through man set didn't net me much information either. – Ehtesh Choudhury Sep 12 '13 at 18:08
  • 3
    If you give set a bunch of arguments but no options, it sets the positional parameters ($1, $2, ...). -- is there to protect set in case the first argument (or filename in this case) happens to start with a dash. See the description of the -- option in help set. I find the positional parameters a convenient way to handle a list of things. I could also have implemented this with an array: output=$( files=(*); IFS=,; echo "${files[*]}" ) – glenn jackman Sep 12 '13 at 18:16
  • This is great since it doesn't require executing any additional programs and it works with file names that contain spaces or even newlines. – Eric Jan 21 '15 at 22:26
  • 1
    @EhteshChoudhury As type set will tell you, set is a shell builtin. So, man set will not help, but help set will do. Answer: "-- Assign any remaining arguments to the positional parameters." – Stéphane Gourichon Mar 30 '16 at 15:01
  • After a set -- *. Delaying expansion of * one level you may get the correct output without the need of a sub shell: IFS=',' eval echo '"$*"'. Of course that will change the positional parameters. – sorontar Jan 31 '17 at 20:01
13

Parsing ls in general is not advised, so alternative better way is to use find, for example:

find . -type f -print0 | tr '\0' ','

Or by using find and paste:

find . -type f | paste -d, -s

For general joining multiple lines (not related to file system), check: Concise and portable “join” on the Unix command-line.

9

Don't reinvent the wheel.

ls -m

It does exactly that.

  • The OP wanted any delimiter so you would still need a tr to convert the commas. It also adds a space after the commas i.e. file1, file2, file3 – rob Apr 26 '13 at 8:50
  • so using ls -m and tr to remove the space after the comma you would do ls -m | tr -d ' ' – Andy Apr 30 '13 at 12:33
  • 2
    that use of tr will delete spaces inside filenames. better to use sed 's/, /,/g – glenn jackman May 7 '13 at 10:45
7

just bash

mystring=$(printf "%s|" *)
echo ${mystring%|}
  • 5
    Slightly more efficient would be to use "printf -v mystring "%s|" *" - that avoids a fork for the $() – camh May 9 '10 at 9:56
  • But notably doesn't chomp the trailing |, @camh. – Christopher Jun 1 '15 at 16:40
  • 1
    Well, just bash and gnu coreutils printf – ThorSummoner Oct 8 '15 at 17:02
  • @camh But printf -v will work only in bash, while the presented answer works on many shell types. – sorontar Jan 31 '17 at 21:28
  • @Christopher Yes, that will remove the trailing |, provided that both lines are used: printf -v mystring "%s|" * ; echo ${mystring%|}. – sorontar Jan 31 '17 at 21:30
7

This command is for the PERL fans :

ls -1 | perl -l40pe0

Here 40 is the octal ascii code for space.

-p will process line by line and print

-l will take care of replacing the trailing \n with the ascii character we provide.

-e is to inform PERL we are doing command line execution.

0 means that there is actually no command to execute.

perl -e0 is same as perl -e ' '

  • 11
    My eyes........ – Malfist Jan 17 '14 at 15:15
  • 2
    "The gzip compression doesn't hurt Perl readability." :) – Ray Aug 3 '16 at 10:33
6

To avoid potential newline confusion for tr we could add the -b flag to ls:

ls -1b | tr '\n' ';'
4

It looks like the answers already exist.

If you want a, b, c format, use ls -m ( Tulains Córdova’s answer)

Or if you want a b c format, use ls | xargs (simpified version of Chris J’s answer)

Or if you want any other delimiter like |, use ls | paste -sd'|' (application of Artem’s answer)

3

If you version of xargs supports the -d flag then this should work

ls  | xargs -d, -L 1 echo

-d is the delimiter flag

If you do not have -d, then you can try the following

ls | xargs -I {} echo {}, | xargs echo

The first xargs allows you to specify your delimiter which is a comma in this example.

  • 2
    -d specifies the input delimiter with GNU xargs, so will not work. The second example exhibits the same issue as other solutions here of a stray delimiter at the end. – Thor Sep 13 '12 at 15:09
3
sed -e :a -e '/$/N; s/\n/\\n/; ta' [filename]

Explanation:

-e - denotes a command to be executed
:a - is a label
/$/N - defines the scope of the match for the current and the (N)ext line
s/\n/\\n/; - replaces all EOL with \n
ta; - goto label a if the match is successful

Taken from my blog.

3

The sed way,

sed -e ':a; N; $!ba; s/\n/,/g'
  # :a         # label called 'a'
  # N          # append next line into Pattern Space (see info sed)
  # $!ba       # if it's the last line ($) do not (!) jump to (b) label :a (a) - break loop
  # s/\n/,/g   # any substitution you want

Note:

This is linear in complexity, substituting only once after all lines are appended into sed's Pattern Space.

@AnandRajaseka's answer, and some other similar answers, such as here, are O(n²), because sed has to do substitute every time a new line is appended into the Pattern Space.

To compare,

seq 1 100000 | sed ':a; N; $!ba; s/\n/,/g' | head -c 80
  # linear, in less than 0.1s
seq 1 100000 | sed ':a; /$/N; s/\n/,/; ta' | head -c 80
  # quadratic, hung
2

You can use:

ls -1 | perl -pe 's/\n$/some_delimiter/'
  • Why the $ sign? – Adrien Oct 10 '13 at 17:49
  • This does not exclude the trailing delimiter. – Derek Mahar Nov 21 '14 at 15:42
2

ls produces one column output when connected to a pipe, so the -1 is redundant.

Here's another perl answer using the builtin join function which doesn't leave a trailing delimiter:

ls | perl -F'\n' -0777 -anE 'say join ",", @F'

The obscure -0777 makes perl read all the input before running the program.

sed alternative that doesn't leave a trailing delimiter

ls | sed '$!s/$/,/' | tr -d '\n'
1

Adding on top of majkinetor's answer, here is the way of removing trailing delimiter(since I cannot just comment under his answer yet):

ls -1 | awk 'ORS=","' | head -c -1

Just remove as many trailing bytes as your delimiter counts for.

I like this approach because I can use multi character delimiters + other benefits of awk:

ls -1 | awk 'ORS=", "' | head -c -2

EDIT

As Peter has noticed, negative byte count is not supported in native MacOS version of head. This however can be easily fixed.

First, instal coreutils. "The GNU Core Utilities are the basic file, shell and text manipulation utilities of the GNU operating system."

brew install coreutils

Commands also provided by MacOS are installed with the prefix "g". For example gls.

Once you have this done you can use, ghead which has negative byte count or better, make alias:

alias head="ghead"
  • Note: negative byte counts are only supported on certain versions of head, so this won't work on e.g. macos. – Peter Feb 4 at 22:09
  • Thanks, for pointing that out. I have added a workaround for MacOS. – Aleksander Stelmaczonek Feb 6 at 10:47
0

ls has the option -m to delimit the output with ", " a comma and a space.

ls -m | tr -d ' ' | tr ',' ';'

piping this result to tr to remove either the space or the comma will allow you to pipe the result again to tr to replace the delimiter.

in my example i replace the delimiter , with the delimiter ;

replace ; with whatever one character delimiter you prefer since tr only accounts for the first character in the strings you pass in as arguments.

0

You can use chomp to merge multiple line in single line:

perl -e 'while (<>) { if (/\$/ ) { chomp; } print ;}' bad0 >test

put line break condition in if statement.It can be special character or any delimiter.

0

Quick Perl version with trailing slash handling:

ls -1 | perl -E 'say join ", ", map {chomp; $_} <>'

To explain:

  • perl -E: execute Perl with features supports (say, ...)
  • say: print with a carrier return
  • join ", ", ARRAY_HERE: join an array with ", "
  • map {chomp; $_} ROWS: remove from each line the carrier return and return the result
  • <>: stdin, each line is a ROW, coupling with a map it will create an array of each ROW

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