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I want to get a list of all the files in a directory, like with ls, so that each filename will be on a seperate line, without the extra details supplied by ls -l. I looked at ls --help and didn't find a solution. I tried doing

ls -l | cut --fields=9 -d" "

but ls doesn't use a fixed number of spaces between columns. Any idea on how to do this, preferably in one line?

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7 Answers 7

up vote 111 down vote accepted

ls -1

That is a number, not small L.

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ls -1. From the help:

-1 list one file per line

Works on cygwin and FreeBSD, so it's probably not too GNU-specific.

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man 1p ls is posix documentation –  Let_Me_Be Mar 1 '11 at 14:26

solution without pipe-ing :-)

 ls --format single-column

Note that the long options are only supported on the GNU coreutils where BSD ls only supports the short arguments -1

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Note: this is for GNU coreutils only, which has support for long options, such as "--format". For BSD ls, e.g., used on Mac/Darwin, this command is not supported. –  gustafbstrom Mar 4 at 13:30
@gustafbstrom Taken care off –  rene Mar 4 at 14:27


ls | awk '{print $NF}'
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Use sed command to list single columns

ls -l | sed 's/\(^[^0-9].\*[0-9]\*:[0-9]\*\) \(.*\)/\2/'
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ls | cat ... or possibly, ls -1

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Please do avoid the useless use of cat :) –  jhwist Mar 1 '11 at 14:25

first you can use this. it will display the one file per line.

ls -l | sed 's/(.* )(.*)$/\2/'

or else you can use thus

find . -maxdepth 1 | sed 's/.///'

both the things are the same.

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