I'd like to print out a file containing a series of comments like:

    </Directory>
    ErrorLog ${APACHE_LOG_DIR}/error.log
    # Possible values include: debug, info, notice, warn, error, crit,
    # alert, emerg.
    LogLevel warn
    CustomLog ${APACHE_LOG_DIR}/ssl_access.log combined
    #   SSL Engine Switch:

In essence, the file contains multiple indentation levels, where a comment starts with a # symbol.

grep should remove blank lines, and also lines where there is a hash symbol before text (implying that these are comments).

I know that blank lines can be deleted via: grep -v '^$'

However how can I delete lines with leading whitespace, and then a # symbol, and print out only lines with actual code? I would like to do this in bash, using grep and/or sed.

16 Answers 16

up vote 52 down vote accepted

With grep:

grep -v '^$\|^\s*\#' temp
  • 3
    This doesn't seem to catch cases where the comments have leading whitespace, keep in mind. – draeath Apr 10 '16 at 20:22
  • 1
    It will not work if there are lines which are having only white spaces (space, tab etc). Below worked for me. egrep -v '^[[:space:]]*$|^ *#' <file_name> – Nikhil Gupta May 24 '16 at 10:17
  • egrep -v '^[[:blank:]]*#|^[[:blank:]]*$' <file_name> newline, vertical tab, form feed, and carriage return are not part of a line in grep (by default) and blank could occur in empty lines – NeronLeVelu Jan 24 '17 at 13:35
  • 1
    @ChrisStryczynski, you may not need to escape the |, however I suspect this has more to do with your version of grep (e.g. BSD vs GNU) than your choice of shell. – gbrener Nov 26 '17 at 23:32
  • 1
    Apologies, it does actually work for me. I forgot I had ripgrep aliased to grep. – Chris Stryczynski Nov 27 '17 at 7:47

With awk:

awk '!/^ *#/ && NF' file
  • !/^ *#/ - means select lines which do not have space followed by # symbol
  • NF - means select lines which are not blank
  • && - is an and operator which ensure if both of the above are true then print the line.
  • 1
    +1, Why not awk ?! – captcha Jul 1 '13 at 6:47

This is probably easier with sed than grep:

sed -e '/^[[:space:]]*$/d' -e '/^[[:space:]]*#/d' test.in

Or with an ERE:

# Gnu sed need -re instead of -Ee
sed -Ee '/^[[:space:]]*(#|$)/d' test.in

With the ERE, grep can do it fairly easily too:

# Not sure if Gnu grep needs -E or -r
grep -vE '^\s*(#|$)' test.in

# or a BRE
grep -v '^\s*\(#\|$\)' test.in
  • 1
    Is this the simplest form? – Joel G Mathew Jun 30 '13 at 17:23
  • You can do it somewhat nicer with an extended regex, see my edit. – Kevin Jun 30 '13 at 17:25

Code for GNU :

sed -r '/^(\s*#|$)/d;' file

$cat file
    </Directory>
    ErrorLog ${APACHE_LOG_DIR}/error.log
    # Possible values include: debug, info, notice, warn, error, crit,
    # alert, emerg.
    next line is empty

       line with leading space
       # line with leading space and #
    LogLevel warn
        #line with leading tab and #
        line with leading tab
    CustomLog ${APACHE_LOG_DIR}/ssl_access.log combined
    #   SSL Engine Switch:
$sed -r '/^(\s*#|$)/d;' file
    </Directory>
    ErrorLog ${APACHE_LOG_DIR}/error.log
    next line is empty
       line with leading space
    LogLevel warn
        line with leading tab
    CustomLog ${APACHE_LOG_DIR}/ssl_access.log combined

Little Upgrade

grep -v '^\s*$\|^#\|^\s*\#' filename

This code excludes empty lines or lines with only spaces, lines beginning with #, and lines containing nothing but spaces before #.

PS: ^# is different than ^\s*#

  • Would you care to explain how ^# is different from ^\s*#? – pipe Jun 14 '16 at 9:24
  • ^# -> only match hastag letter on beginning of the line <br/> ^\s*# -> also match hastag letter with spaces before – Mintaka Jun 26 at 10:36

This one should do:

sed 's/[[:space:]]*#.*//;/^[[:space:]]*$/d' file

On this input:

Hello everybody

# This is a comment and the previous line was empty

This is a genuine line followed by a comment # this is the comment


              # and here a comment in the middle of nowhere

you'll obtain this output:

Hello everybody
This is a genuine line followed by a comment

Caveat. This kind of method is not 100% foolproof: if you have a pound sign (#) not starting a comment, i.e., it's escaped or inside a string, well, you can imagine what will happen.

grep ^[^#] filename
  • ^ - begin of line

  • [^#]- exclude #.

If you have spaces in the begin of line it won't work.

egrep -v '^$|^#' /etc/sysctl.conf

  • 6
    plz explain your answer in simple words, instead of posting the code only – Saghir A. Khatri Jan 3 '14 at 4:07
  • This does not work on /etc/apache2/sites-enabled/000-default.conf – edib Jan 21 at 22:29

Using default space separator

  • empty line or line with blank only have an empty $1
  • line with first non blank¨char is #, have $1 starting with #

so, keep it simple

awk '$1 ~ /^[^#]/ ' YourFile
grep -v '^$\|^#\|^\s*\#' filename

Excludes empty lines, lines beginning with # and lines containing nothing but spaces before #.

  • 1
    This is really the same as the accepted answer. ^# is redundant as ^\s*# matches zero or more whitespace followed by a hash. – RobEarl May 30 '14 at 18:48
#!/bin/bash


#---------------------------------------------------------------#
#             Programacion Shell                                #
#             ------------------                                #
#  Programa:  xable.sh  (eXecutABLEs)                           #
###                                                           ###
#  OBJETIVO:  Filtrar solo las lineas ejecutables de un shell   #
#                                    (eXecutABLEs)              #
###                                                           ###
#  Autor...:  Francisco Eugenio Cabrera Perez                   #
#  Pais....:  Republica Dominicana                              #
#  Fecha...:  Abril 6 del 2015                                  #
#---------------------------------------------------------------#

         x_FILE=$1
if [ -z $x_FILE ];then
   echo
   echo "      $0 :  Sin Argumento^G"; echo
   echo "USO:  $0 ARCHIVO";            echo
###
   exit 1
fi
#####


#  Ignore COMMENTs and lines that...
#  ---------------------------------
#      EXPLANATION                            (PATTERN)         OBSERVATION
#      -----------                            ---------         -----------
#  1.  Begin_and_End_with_NOTHING             (^$)              NO_Characters
###
#  2.  Begin_with_HASH_symbol                 (^#)              COMMENT
#  3.  Begin_with_SPACE_and_then_HASH_symbol  (^\s*\#)          COMMENT
###
#  4.  Begin_and_End_with_SPACES              (^[[:space:]]*$)  Only_SPACES
#  -------------------------------------------------------------------------
#####
    grep -v '^$\|^#\|^\s*\#' $x_FILE | grep -v "^[[:space:]]*$" | more
#####
  • 1
    Show me only eXecutABLEs lines ( xable.sh ) – Francisco Cabrera Apr 6 '15 at 19:21
grep -v '^$\|^#\|^\s*\#' filename | grep -v "^[[:space:]]*$" | more
  • Show me only eXecutABLEs lines – Francisco Cabrera Apr 6 '15 at 19:43
  • Welcome to Stack Overflow! Generally, answers are much more helpful if they include an explanation of what the commands are intended to do, and why that solves the problem without introducing others. (This post was flagged by at least one user, presumably because they thought an answer without explanation should be deleted.) – Nathan Tuggy Apr 7 '15 at 1:23

With Perl:

perl -lne 'print if ! /^\s*(#.*)?$/' file

This will also ignore C++ comments (//)

perl -lne 'print if ! m{^\s*((#|//).*)?$}' file
sed -n '/^\s*[^#]\|^$/!'p filename

Pattern will match any amount of whitespaces (or zero) starting at the beginning of the line and following by any character that is not a #
OR empty string (nothing at all in between ^ and $).
To NOT match it, sed allows the usage of ! operator (invert match). Now pattern matches anything that regular expression don't fits in.
Thus with combination of -n (suppress of printing anything) and p flag (print) lines matching anything except the pattern will be printed.

The following:

grep -v '^#\|^$\|^\s+$' file

Would hide lines beginning with #, empty lines and lines that only contain white spaces from be printed out to the stdout. Notice that the | character has to be escaped. Hope that helps

  • This also does not handle leading whitespace ` #`, which technically is a comment too. – Christophe Roussy Mar 29 at 11:24
  • @ChristopheRoussy it does handle leading whitespaces, the ^\s+$ part takes care of that – Ernesto Iser Mar 29 at 15:10
  • but not leading whitespace + comment after that ? – Christophe Roussy Mar 29 at 15:46
  • @ChristopheRoussy I see what you are saying, you are right, working on a fix, thanks for pointing that out – Ernesto Iser Mar 29 at 21:16
cat filename| egrep -v "^\s*$|^;|^\s*#
  • First, cat the file
  • egrep -v removes
  • ^$ starting with empty line
  • ^; starting with ;
  • ^\s matches any leading whitespace, then any character until #
  • this is a very bad use of the cat command, you could just use egrep without the cat – Ernesto Iser Mar 29 at 21:25

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