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I am using this command

num1=2.2
num2=4.5

result=$(awk 'BEGIN{print ($num2>$num1)?1:0}')

This always returns 0. Whether num2>numl or num1>num2 But when I put the actual numbers as such

result=$(awk 'BEGIN{print (4.5>2.2)?1:0}')

I would get a return value of 1. Which is correct.

What can I do to make this work?

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@potong that would only work for integers –  Ed Morton Nov 21 '12 at 15:47

4 Answers 4

up vote 1 down vote accepted

The reason it fails when you use variables is because the awk script enclosed by single quotes is evaluated by awk and not bash: so if you'd like to pass variables you are using from bash to awk, you'll have to specify it with the -v option as follows:

num1=2.2
num2=4.5

result=$(awk -v n1=$num1 -v n2=$num2 'BEGIN{print (n2>n1)?1:0}')

Note that program variables used inside the awk script must not be prefixed with $

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Thank you, I attempted this form as well but instead add $n2 and $n1 which does not work. Thanks again for another answer –  jenglee Nov 20 '12 at 19:19
    
@jenglee glad it helped =) –  sampson-chen Nov 20 '12 at 19:28
1  
"awk shell"??? awk is not shell, just like C is not shell. You wouldn't expect to be able to access the value of shell variables in a C program you call from shell and nor should you expect to in an awk program you call from shell. –  Ed Morton Nov 20 '12 at 19:44
    
@EdMorton poor choice of word there; edited my answer. –  sampson-chen Nov 20 '12 at 19:50
    
thanks, it's just that so many people seem to think awk IS shell and that leads to confusion over syntax and variables so it's important to make the distinction. –  Ed Morton Nov 20 '12 at 19:53

Try doing this :

result=$(awk -v num1=2.2 -v num2=4.5 'BEGIN{print (num2 > num1) ? 1 : 0}')

See :

man awk | less +/'^ *-v'
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Because $num1 and $num2 are not expanded by bash -- you are using single quotes. The following will work, though:

result=$(awk "BEGIN{print ($num2>$num1)?1:0}")

Note, however, as pointed out in the comments that this is poor coding style and mixing bash and awk. Personally, I don't mind such constructs; but in general, especially for complex things and if you don't remember what things will get evaluated by bash when in double quotes, turn to the other answers to this question.

See the excellent example from @EdMorton below in the comments.

EDIT: Actually, instead of awk, I would use bc:

$num1=2.2
$num2=4.5

result=$( echo "$num2 > $num1" | bc ) 

Why? Because it is just a bit clearer... and lighter.

Or with Perl (because it is shorter and because I like Perl more than awk and because I like backticks more than $():

result=`perl -e "print ( $num2 > $num1 ) ? 1 : 0;"`

Or, to be fancy (and probably inefficient):

if [ `echo -e "$num1\n$num2" | sort -n | head -1` != "$num1" ] ; then result=0 ; else result=1 ; fi

(Yes, I know)

I had a brief, intensive, 3-year long exposure to awk, in prehistoric times. Nowadays bash is everywhere and can do loads of stuff (I had sh/csh only at that time) so often it can be used instead of awk, while computers are fast enough for Perl to be used in ad hoc command lines instead of awk. Just sayin'.

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Also adding single quotes around '$num1' and '$num2" worked. –  jenglee Nov 20 '12 at 19:15
    
No, absolutely do NOT do either of those things. Google for why. –  Ed Morton Nov 20 '12 at 19:45
    
@EdMorton -- you mean code injection using the variables? Well, in a setting where variables are tainted one should probably not use awk at all. –  January Nov 20 '12 at 21:02
    
Nothing to do with variables being tainted, they could have exactly the values you want them to and still screw you up, plus with the double-quoted version you then have to escape other characters in your script like $s and backslashes and it quickly becomes a mess. Finally if your script grows to the point where you want to put it in a file for execution using -f, you then simply can't jump back and forth to shell. You should just never do it. –  Ed Morton Nov 20 '12 at 21:17
    
Well, yeah, mixing two languages like that is not precisely the highest point of coding etiquette. However, I would never say never and I think it is good enough here. Yes, I'm a Perl coder. –  January Nov 20 '12 at 21:29

This might work for you:

result=$(awk 'BEGIN{print ('$num2'>'$num1')?1:0}')

Think of the ''s as like poking holes through the awk command to the underlying bash shell.

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...and then think long and hard about the implications of that to your script and then don't do it. See the discussion I just had with January in this same thread. –  Ed Morton Nov 21 '12 at 3:04

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