9

I would like to print the contents of a file, but all lines starting with # I want to ignore. I was trying some stuff with grep and awk, but it kept printing the whole file, or just printed the lines starting with #. I you could give me a push in the right way, or a grep/awk command that would print anyline in the file that does not start with #.

19

Use the -v option of grep to negate the condition:

grep -v '^#' file
  • 1
    Thank you vary much! – Dasoren Mar 9 '13 at 22:27
  • What about if there are leading blank spaces at beginning of line, before the #? – Sigur Jun 2 '18 at 13:26
  • 1
    @Sigur: '^[[:space:]]*#' – choroba Jun 2 '18 at 14:25
5

You can use the ! operator:

awk '!/^ *#/ { print; }'

This negates the result of the match. I also included lines that start with spaces and then #, but you can tailor the regex how you like.

4

You could use grep to exclude all lines that begin with # using the -v option

grep -v '^#' filename

If you're a fan of sed:

sed '/^#/d' filename
  • Two good examples. But, in the sed example, you don't need the .* part. – cmevoli Mar 9 '13 at 22:39
  • @cmevoli - yes point taken, since the presence of the # at the beginning of the line is enough for the delete command :) – Tuxdude Mar 9 '13 at 22:47
3

This would also leave out lines with whitespace before the # :

awk '$1!~/^#/' file

or

grep -v '^[[:blank:]]*#' file
1

Here is the grep PCRE way,

grep -P '^(?!#)' file

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