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Only print field if it can be converted to an integer

If I have this sample text file

1 cat
2 dog
3 7
4 fish5
5 22

I want my awk script to only print the field if it can be converted to an integer.

I don't want rows 1,2 and 4 to be printed.

example awk script

   print "testing conversion to integer on " ARGV[1];
   myinteger = 0;  # my atmept to force this var to an integer
 myinteger = $2;
 myinteger != 0 { print $2; }

This doesn't work.

How can I get this to work?

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2 Answers 2

up vote 6 down vote accepted

Awk has issues calculating strings so:

awk '$2 + 0 == $2' file.txt

3    7
5    22

This also works for me: awk '$2 + 0' file.txt

But as Ed Morton pointed out in the comments this would also include strings starting with digits then maybe this is more correct: awk '/[a-z]/{next}{print $0}' file.txt i.e. if letter in line go to next line.

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What do you mean by "Awk has issues calculating strings"? Could you give an example? What you posted tests that the input is a real number, not that it's an integer. – Ed Morton Nov 16 '12 at 17:38
I see the OP has selected this as the correct answer. It is not.$ echo "1e2" | awk '$1 + 0 == $1' produces the output 1e2. Try it with input of "1.2" as well. – Ed Morton Nov 16 '12 at 17:58
You are right. Awk is weakly typed. Variables have no data type. By issues I meant problems. string + string != number. – AWE Nov 16 '12 at 19:29
That's not the only issue, it'll also truncate strings that start with a number to just the number part so if $2 was 3c then '$2 + 0' would be 3 and so the record would print. – Ed Morton Nov 17 '12 at 3:29
wrt the posted update of awk '/[a-z]/{next}{print $0}' file.txt, there's no need for {print $0} and you need to specifically check the field you're working on, $2, so it should be written as `awk '$2~/[a-z]/{next}' but this would allow fields with punctuation marks or other non-alphanumeric characters and has other issues. – Ed Morton Nov 18 '12 at 14:46

You can match using a pattern:

awk '$2 ~ /^[0-9]+$/'

If you want to allow negative values, you can do this:

awk '$2 ~ /^-?[0-9]+$/'
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Thanks, but this prints fish5 which I didn't want. I only want to print fields where the characters exclusively contain digits. – Angus Comber Nov 16 '12 at 16:14
@user619818: fixed – Vaughn Cato Nov 16 '12 at 16:34
Sorry to be a pain but I tried the first example and it doesn't print any of the lines now. Actually without the $ at the end it works. – Angus Comber Nov 16 '12 at 16:43
@user619818 Then you have some control characters at the end of the second field in each line. cat -v file to see them. – Ed Morton Nov 16 '12 at 17:01
@VaughnCato: no need for ` { print }`, that's what awk will do by default. – Ed Morton Nov 16 '12 at 17:05

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