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How can I create a regex expression that will match only letters with numbers?

I've tried something like (?>[A-z]+)([a-z0-9]+).

The regex should give the following result:

1234b --> true
1234 --> false
abcd --> false
abcd4 --> true
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Quite curious why this question is downvoted... –  billybob Dec 19 '12 at 11:53
    
What should happen with 1a2 or a1b? –  Dio F Dec 19 '12 at 12:04
1  
Is é a letter in your scenario? Did you know [A-z] also matches characters like |? Which regex engine are you using? –  Tim Pietzcker Dec 19 '12 at 12:14
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4 Answers

up vote 2 down vote accepted

(?:\d+[a-z]|[a-z]+\d)[a-z\d]*

Basically, where 1 and a are any number and any letter, it matches 1a or a1, surrounded by any number of alphanumeric characters.

edit: shorter and probably faster now

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that works too! –  dazzafact Dec 19 '12 at 12:06
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Other answers are incorrect, and will allow any string that only contains letters, numbers or both. My expression will specifically exclude strings that consist only of letters or only of numbers.

[A-Za-z0-9]*([a-zA-Z]+[0-9]+|[0-9]+[a-zA-Z]+)

Any number of letters and numbers, followed by at least one letter followed by a number or at least one number followed by a letter.

There is possibly a simpler way of doing this, however. Mine seems long winded. Maybe it's not. Anyone care to pitch in? :P

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whoops... I just updated a same one –  billybob Dec 19 '12 at 11:56
    
Thanks Thats it! actually easy –  dazzafact Dec 19 '12 at 12:05
1  
Pitching in: ^(?:[0-9]*[A-Z]|[A-Z]*[0-9])[A-Z0-9]*$. Use the case-insensitive modifier of whatever regex engine you're using. –  Tim Pietzcker Dec 19 '12 at 12:06
    
@TimPietzcker actually not working: echo 'a1b2' | grep -o -E "(?:[0-9]*[A-Z]|[A-Z]*[0-9])[A-Z0-9]*$" –  billybob Dec 19 '12 at 13:25
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@billybob: Oops, you were right, I did make a blunder: It should be ^(?:[0-9]+[A-Z]|[A-Z]+[0-9])[A-Z0-9]*$. Sorry. –  Tim Pietzcker Dec 19 '12 at 13:34
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^([a-Z]+[0-9]+|[0-9]+[a-Z]+)[a-Z0-9]*$

and a simpler version inspired by TimPietzcker:

^([a-Z]+[0-9]|[0-9]+[a-Z])[a-Z0-9]*$

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Almost correct! It's good to see an ERE solution (since this is a simple problem and shouldn't require PCRE). But depending on your parser, [a-Z] may not mean the same thing as [A-Za-z]. –  ghoti Dec 19 '12 at 12:07
    
thats the same as above^ –  dazzafact Dec 19 '12 at 12:22
    
@dazzafact He updated his solution when I'm writing this answer :) –  billybob Dec 19 '12 at 13:28
    
When the range of possible best solutions is small, it's pretty much certain there'll be overlap :) –  Mark Hubbart Dec 19 '12 at 23:01
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Don't make it be one regex if you don't have to. Use two regexes that both have to match. In Perl, it would be like this

if ( /[a-zA-Z]/ && /\d/ ) 
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