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I want one regular expression in which i want to validate values up-to 32 starting from 1 and up-to 64 from 1.

I tried with following: ^1|2|64$ but it is not working, and ^1|2|32$ but failed to find right answer. Kindly help .

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surely 1 to 64 includes 1 to 32, so I don't see why you mention them seperately. Please explain what you exactly mean! –  Vorsprung Jan 6 '14 at 15:33
3  
Regex is not an ideal tool for range validation and you're better off parsing it to an int with a built in function. What circumstances bring you to regex? –  16807 Jan 6 '14 at 15:34
    
Hi Vorspring ,we created two filed where we want to check value only upto 32 and 64 . –  user3134939 Jan 6 '14 at 15:41

3 Answers 3

up vote 3 down vote accepted

Regex is probably not a good solution to this problem. Why not just parse it to an integer, then do some simple ">0 && <33" type of check?

However, since you asked, here is my answer: For 1-32:

^(?:(?:3[0-2])|(?:[1-2]\d)|[1-9])$

(In action: http://rubular.com/r/oVKeR28T98)

For 1-64:

^(?:(?:6[0-4])|(?:[1-5]\d)|[1-9])$

(In action: http://rubular.com/r/Zu5Kk3zuDh)

I probably made those regexes a little uglier than they can be, but like I said, this is almost certainly not actualy the answer you should be looking for!

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thanks tom lord –  user3134939 Jan 6 '14 at 16:02

The regular expression:

^([1-9]|[12][0-9]|3[012])$

will work for 1–32, and

^([1-9]|[1-5][0-9]|6[0-4])$

will work for 1–64.

Explanations can be found here:

That said, I do not think you should use regex in this situation. A simple check if num >= 1 and num <= 32 (or num <= 64) should work.

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in simple on one filed when user enter 33 value not accepted ,similarly one second filed when user enter 65 value not accepted. –  user3134939 Jan 6 '14 at 15:55
    
@user3134939 Could you word that differently? I can't really understand what you are trying to say. –  The Guy with The Hat Jan 6 '14 at 15:58

Here's my perl test program with the regexp for 1 to 32 wired in (altered to not match zero, thanks TimLord)

use warnings;
use strict;

my $r=qr/^([123456789]|[123][012]?|[12]\d)$/;

for my $n (1..32) {
    die $n unless($n =~ /$r/);
}
for my $n (33..64) {
    die $n  if ($n =~ /$r/ );
}

for my $n(65..99) {

    die $n if ($n =~ /$r/ );
}

And here's one for 1 to 64, with slightly better testing

 use warnings;
use strict;

my $r=qr/^([123456789]|[12345]\d|6[01234])$/;

for my $n(-32..0) {
    die $n if ($n =~ /$r/ );
}
for my $n (1..32) {
    die $n unless($n =~ /$r/);
}
for my $n (33..64) {
    die $n  unless ($n =~ /$r/ );
}

for my $n(65..1000) {
    die $n if ($n =~ /$r/ );
}
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That regex matches "0", too! –  Tom Lord Jan 6 '14 at 15:52
    
@TomLord so it does, naughty me. Should have tested for it. Fixed now –  Vorsprung Jan 6 '14 at 15:56

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