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I realize that awk has associative arrays, but I wonder if there is an awk equivalent to this:

http://php.net/manual/en/function.array-push.php

The obvious workaround is to just say:

array[$new_element] = $new_element

However, this seems less readable and more hackish than it needs to be.

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1  
I'd call that elegant and minimalist, not hackish! ;-). You can always write your own functions to manage arrays, but there is nothing built into the language for that. Good luck. –  shellter May 25 '12 at 18:00

2 Answers 2

I don't think an array length is immediately available in awk (at least not in the versions I fiddle around with). But you could simply maintain the length and then do something like this:

array[arraylen++] = $0;

And then access the elements it via the same integer values:

for ( i = 0; i < arraylen; i++ )
   print array[i];
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+1 - The length() function in GAWK will return the number of elements in an array, but since arrays are sparse, the length isn't necessarily the last element. –  Dennis Williamson May 25 '12 at 18:10

In gawk you can find the length of an array with length(var) so it's not very hard to cook up your own function.

function push(A,B) { A[length(A)+1] = B }

Notice this discussion, though: http://objectmix.com/awk/361598-gawk-length-array-question.html -- all the places I can access right now have gawk 3.1.5 so I cannot properly test my function, duh. But here is an approximation.

vnix$ gawk '# BEGIN: make sure arr is an array
>   BEGIN { delete arr[0] }
>   { print "=" length(arr); arr[length(arr)+1] = $1;
>     print length(arr), arr[length(arr)] }
>   END { print "---";
>     for (i=1; i<=length(arr); ++i) print i, arr[i] }' <<HERE
> fnord foo
> ick bar
> baz quux
> HERE
=0
1 fnord
=1
2 ick
=2
3 baz
---
1 fnord
2 ick
3 baz
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