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I've got a program that sends text to stdout. But I only want to keep those lines where the fifth column isn't '*'. That is the asterisk char, not the regex expression that catches everything. I can't seem to use escape for this, I've tried

./a.out |awk '$5!=* {print}'
awk: $5!=* {print}
awk:     ^ syntax error
./a.out |awk '$5!=\* {print}'
awk: $5!=\* {print}
awk:     ^ backslash not last character on line

Awk is of course not a requirement, but I thought this would be the simplest.

Thanks

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4 Answers 4

up vote 4 down vote accepted

awk is similar to most Algol/C-family languages; literal strings require string quotes.

awk '$5 != "*" {print}'
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2  
Since the default action for awk is to print, you could simply write: awk '$5 != "*" filename –  JRFerguson Apr 11 '12 at 2:08
    
You do not need the print command, it is the default in awk: awk '$5 != "*"'. –  jfgagne Apr 11 '12 at 6:55

Try this:

awk '$5!="*"{print}'
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In Perl:

perl -ane 'print unless $F[4] eq q(*)' file

The -n switch wraps this loop aaround your script to read the filename argument(s) on the command line:

LINE:
while (<>) {
    ... # your script here
}

The -a arms an autosplit of the line (on whitespace) into a predeclared array called @F. Unlikeawk` $F[0] is the first field only.

The -e argument is simply your script.

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The -n switch adds this loop around your script to read one or more filename arguments: –  JRFerguson Apr 11 '12 at 1:46

This might work for you:

awk '$5 !~ /^[*]$/' file
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-1. Useless use of regex to do a fixed string comparison. –  Kaz Apr 17 '12 at 16:14
    
@kaz the intention was to show that the * could be shown unquoted as a class character –  potong Apr 17 '12 at 16:31
    
It's hardly unquoted. It's wrapped inside [], which is wrapped inside ^$, which is wrapped inside //. –  Kaz Apr 17 '12 at 16:35
    
@kaz [] represents a class, ^$ start/end of string and // are regexp delimiters. None of these are quotes. –  potong Apr 17 '12 at 16:44
    
quote, delimiter: potato, potaato. –  Kaz Apr 17 '12 at 17:35

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