9

I want to delete a line if it contains a value that is specified.

2 5 8
1 3 7
8 5 9

So if I wanted to delete a line containing 7 as the third field:

{
if($3 == 7){
####delete the line
}
}
19

It should be enough to say

$ awk '$3 != 7'

Note that this a numerical comparison, and will omit lines in which the third field is, for example, "0.7e1", but it will work for the sample data you provide.

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9

delete a line containing 7

awk '!/7/' yourFile
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  • 8
    Escaping ! is not the solution. The solution is to not use tcsh! – William Pursell Apr 24 '14 at 13:31
7

The other answers work. Here's why

Awk's standard processing model is to read a line of input, optionally match that line, and if matched (optionally) print the input. The other solutions use a negation match, so lines are printed unless the match is made.

Your code sample doesn't use a negation match: it says "if something is true, do it". Because you want to delete the input, when you match that target, you can just skip printing it.

{
  if($3 == 7){
     #skip printing this line
     next
  }
}

IHTH.

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  • This does not work unless you add an else statement which says print in it. – Matt Nov 5 '13 at 15:52
  • 1
    The question was "So if I wanted to delete a line containing 7 as the third field:". I think I've answered that question.Thanks for your concern! :-) – shellter Nov 5 '13 at 16:00
1

You can do this:

awk '$3  /7/ {next} {print}'
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