Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

What's a regular expression that validates if a string is pandigital (containing all digits from 1 to 9 exactly once)?

For example:

123456789
891364572

But not:

11234556789
25896471

I know how to do this without regex but I was unable to form a regex for it.

Thanks.

This is not homework.

share|improve this question
3  
This is not what REs are for - you need to use a different approach. –  paxdiablo Apr 17 '09 at 2:01
add comment

5 Answers 5

up vote 15 down vote accepted

Short and sweet, using a negative lookahead:

/^(?!.*([1-9]).*\1)[1-9]{9}$/
  • [1-9] is the character class for nonzero digits - equivalent to [123456789]
  • .* matches any string of any length.
  • .*([1-9]).*\1.* matches any string with that contains at least two occurrences of the same nonzero digit
    • a nonzero digit is matched and captured by ([1-9])
    • a repeat of that nonzero digit is matched by \1, a back-reference to the first captured match.
    • the .* matches the arbitrary padding before, and between the nonzero digit and its repeat.
  • (?!<pattern>) matches any position where the contained pattern doesn't match. This is a negative lookahead, as it only matches a position in the string, and doesn't consume any of it - just looks ahead to compare it with the contained pattern.
  • [1-9]{9} matches nine nonzeo digits.
    • <pattern>{9} means match the preceding pattern 9 times.
  • ^<pattern>$ matches any string that exactly matches the contained pattern (rather than contains a substring that matches the pattern)
    • ^ matches the position at the beginning of a string OR the beginning of a line
    • $ matches the position at the end of a string OR the end of a line

So combined, we check to make sure that it's not repeating any digits, then we check that it's only digits. Since it's 9 digits long, and none repeat, all must show up exactly once. That's the pigeonhole principle at work!

The syntax for your specific regular expression engine may vary. The above is a PCRE (supported in Perl, Ruby, and a bunch of different other languages). Posix regular expressions have slightly different syntax. Not all engines support negative lookaheads, but most support back-references. Neither are part of the definition of formal theoretic regular expressions, but are very convenient.

share|improve this answer
1  
nice +1 for the explanation –  ojblass Apr 17 '09 at 2:12
    
+1 for a succinct answer with great explanation, but I'd still stick with the non-regex approach for readability. –  nickf Apr 17 '09 at 2:36
add comment

Regex is not exactly the best tool for the job here, but here you go:

^(?=[^1]*1[^1]*$)(?=[^2]*2[^2]*$)(?=[^3]*3[^3]*$)(?=[^4]*4[^4]*$)(?=[^5]*5[^5]*$)(?=[^6]*6[^6]*$)(?=[^7]*7[^7]*$)(?=[^8]*8[^8]*$)(?=[^9]*9[^9]*$)[1-9]+$

(?= ) is a look-ahead. It does not actually fit the description of regular expressions, as it does not describe a regular language.

share|improve this answer
    
That looks much more complicated than my existing solution.. perhaps regex isn't the tool I thought it was.. –  Jason Gin Apr 17 '09 at 2:06
    
+1 for the good advice, -1 for making my eyes bleed :-) [No, seriously, just +1] –  paxdiablo Apr 17 '09 at 2:08
add comment

If it's not homework, you shouldn't be using REs. The following C code should be a good start.

#include <stdio.h>
int isPandigital (char *inputStr) {
    /* Initial used states of false. */
    char used[] = {0,0,0,0,0,0,0,0,0,0};

    int count = 0;
    char ch;

    /* Process each character in string. */

    while ((ch = *inputStr++) != '\0') {
        /* Non-numeric, bad. */
        if ((ch < '0') || (ch > '9')) {
            return 0;
        }

        /* Too many, bad. */
        if (++count > 9) {
            return 0;
        }

        /* Multiples, bad. */
        if (used[ch - '0']) {
            return 0;
        }

        /* Store fact that this one's been used. */
        used[ch - '0'] = 1;
    }

    /* Good or bad depending on how many we've had. */
    return (count == 9);
}

 

int main (int argCount, char *argVar[]) {
    int i;
    for (i = 1; i < argCount; i++) {
        if (isPandigital (argVar[i])) {
            printf ("'%s' is pandigital\n", argVar[i]);
        } else {
            printf ("'%s' is NOT pandigital\n", argVar[i]);
        }
    }
    return 0;
}

Using your test data:

$ pandigital 123456789 891364572 11234556789 25896471

we get the following results:

'123456789' is pandigital
'891364572' is pandigital
'11234556789' is NOT pandigital
'25896471' is NOT pandigital
share|improve this answer
    
what's wrong with REs? –  rampion Apr 17 '09 at 2:56
    
There's nothing wrong with REs, they're just not suitable to every task. –  paxdiablo Apr 17 '09 at 3:02
    
I don't know... rampion's solution looks pretty elegant if it actually works. I'm not familiar with regexps, so I couldn't say. But his breakdown of the expression seems to make sense. –  Calvin Apr 17 '09 at 7:47
    
Hmm much longer than my existing solution, and I don't know C so I can't test it out. –  Jason Gin Apr 17 '09 at 14:18
add comment

This would be much easier to do in procedural code, looping through each character and marking them off in an array, ... or is this some homework?

share|improve this answer
add comment


bool chk(string s, int idx, set sofar) {
  return index == s.length ? true : isdigit(s[idx]) && !sofar.count(s[idx]) && chk(s,++idx,sofar.insert(s[idx]));
}

something like this could work. haven't been bothered checking it.

share|improve this answer
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.