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Is it possible to write a regular expression that matches all strings that does not only contain numbers? If we have these strings:

  • abc
  • a4c
  • 4bc
  • ab4
  • 123

It should match the four first, but not the last one. I have tried fiddling around in RegexBuddy with lookaheads and stuff, but I can't seem to figure it out.

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5 Answers 5

up vote 16 down vote accepted

(?!^\d+$)^.+$

This says lookahead for lines that do not contain all digits and match the entire line.

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This is basically what I ended up with :) –  Svish Oct 1 '10 at 9:58
    
So...basically you came up with a complicated expression for /\D/. –  Daniel Standage Oct 1 '10 at 18:06
1  
Well no \D is different than mine because it only matches non digits. Mine returns matches that include the entire string when a match is made while just \D could be multiple matches per line. My regex returns 4 matches while \D returns 17 (for each non-digit). –  Mike Cheel Oct 1 '10 at 19:20
    
@Mike Cheel I see. If that's what Svish was looking for, it definitely wasn't clear from his question. I see how that could be advantageous though. –  Daniel Standage Oct 1 '10 at 23:57
    
@Daniel, how was that not clear from my question? I even had 5 examples where I marked the strings I wanted matched... –  Svish Oct 3 '10 at 12:46

Unless I am missing something, I think the most concise regex is...

/\D/

...or in other words, is there a not-digit in the string?

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this will fail if there is a digit in the string as far as I can see –  Svish Oct 1 '10 at 9:56
    
@Svish: your statement makes no sense. –  SilentGhost Oct 1 '10 at 11:06
    
@Svish, maybe you should actually try it out before saying something. It is much more concise than the answer you selected, and it does work. It will not fail if there are digits in the string, it will only fail if it cannot find a "not-digit", which is exactly what you asked. –  Daniel Standage Oct 1 '10 at 13:47
1  
I did. And this does not match a string that does not contain only numbers. It matches a single letter that is not a digit. If I put that between a ^ and a $ for matching a string, it matches only the first of my test strings. –  Svish Oct 3 '10 at 12:43

Since you said "match", not just validate, the following regex will match correctly

\b.*[a-zA-Z]+.*\b

Passing Tests:

abc
a4c
4bc
ab4
1b1
11b
b11

Failing Tests:

123
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Could \b.*\D+.*\b work as well? –  Jin Kwon Oct 18 '12 at 8:07
1  
@Jin, depends, [a-zA-Z] is not the same as \D. \D is "not a digit". So if they're literally not wanting 0-9 and are ok with punctuation, then yes, \D would be more accurate. –  CaffGeek Oct 18 '12 at 13:03

jjnguy had it correct (if slightly redundant) in an earlier revision.

.*?[^0-9].*

@Chad, your regex,

\b.*[a-zA-Z]+.*\b

should probably allow for non letters (eg, punctuation) even though Svish's examples didn't include one. Svish's primary requirement was: not all be digits.

\b.*[^0-9]+.*\b

Then, you don't need the + in there since all you need is to guarantee 1 non-digit is in there (more might be in there as covered by the .* on the ends).

\b.*[^0-9].*\b

Next, you can do away with the \b on either end since these are unnecessary constraints (invoking reference to alphanum and _).

.*[^0-9].*

Finally, note that this last regex shows that the problem can be solved with just the basics, those basics which have existed for decades (eg, no need for the look-ahead feature). In English, the question was logically equivalent to simply asking that 1 counter-example character be found within a string.

We can test this regex in a browser by copying the following into the location bar, replacing the string "6576576i7567" with whatever you want to test.

javascript:alert(new String("6576576i7567").match(".*[^0-9].*"));
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/^\d*[a-z][a-z\d]*$/

May be a digit at the beginning, then at least one letter, then letters or digits

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