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I'm attempting to make a GPA validation regex in Perl, and I seem to have something wrong with my logic. You should be able to end a number 0-3 followed by a . with 1 more digit in the range of 0-9. or if the first digit is a 4 it must be followed with a .0 Here's my code:

$get_gpa_input =~ m/[0-3]\.\d[0-9]|[4].[0]/
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What happens when you try it? –  Andy Lester Apr 8 '13 at 0:27

4 Answers 4

up vote 1 down vote accepted

Remove the [0-9]. You've also got some extra brackets and you should escape the decimal in '4.0'.

$get_gpa_input =~ m/[0-3]\.\d|4\.0/
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\d matches way more than just [0-9] unless /a is in effect. –  Sinan Ünür Apr 8 '13 at 0:12
    
Correct, although more than likely not a concern here. –  Kevin Richardson Apr 8 '13 at 0:21
    
What does ` \ ` after the 4 and before the .0 mean? –  user1739860 Apr 8 '13 at 0:24
    
It escapes the . so it is treated as a literal character to match, not its special regex meaning. –  ysth Apr 8 '13 at 0:30
    
Thank you ysth! –  user1739860 Apr 8 '13 at 16:55
m/(?: [0-3] [.] [0-9] ) | 4[.]0 /x
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If you are doing validation, you don't want to search within a string but rather to force the entire string to match your regex; you do this by adding anchors to the beginning and ending:

/\A (?: [0-3]\.[0-9] | 4\.0 ) \z/x

\A matches only before the first character of the string, \z matches only after the last character of the string.

Avoid using \d in most code since it can match any number of Unicode "digits" that aren't 0 through 9 (though in newer perls, the /a flag reverts it to its old ASCII meaning).

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You have \d[0-9] which would require two digits following 0-3. You also don't escape the decimal in the 4 alternate, which may make a difference.

[0-3]\.\d|4\.0
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