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We need to write a email validation program in C. We are planning to use GNU Cregex.h) regular expression.

The regular expression we prepared is

[a-z0-9!#$%&'*+/=?^_`{|}~-]+(?:\.[a-z0-9!#$%&'*+/=?^_`{|}~-]+)*@(?:[a-z0-9](?:[a-z0-9-]*[a-z0-9])?\.)+[a-z0-9](?:[a-z0-9-]*[a-z0-9])?

But the below code is failing while compiling the regex.

#include <stdio.h>
#include <regex.h>

int main(const char *argv, int argc)
{

    const char *reg_exp = "[a-z0-9!#$%&'*+/=?^_`{|}~-]+(?:.[a-z0-9!#$%&'*+/=?^_`{|}~-]+)*@(?:[a-z0-9](?:[a-z0-9-]*[a-z0-9])?.)+[a-z0-9](?:[a-z0-9-]*[a-z0-9])?";

int status = 1;

    char email[71];

    regex_t preg;

    int rc;

    printf("The regex = %s\n", reg_exp);

    rc = regcomp(&preg, reg_exp, REG_EXTENDED|REG_NOSUB);
    if (rc != 0)
    {
            if (rc == REG_BADPAT || rc == REG_ECOLLATE)
                    fprintf(stderr, "Bad Regex/Collate\n");
            if (rc == REG_ECTYPE)
                    fprintf(stderr, "Invalid Char\n");
            if (rc == REG_EESCAPE)
                    fprintf(stderr, "Trailing \\\n");
            if (rc == REG_ESUBREG || rc == REG_EBRACK)
                    fprintf(stderr, "Invalid number/[] error\n");
            if (rc == REG_EPAREN || rc == REG_EBRACE)
                    fprintf(stderr, "Paren/Bracket error\n");
            if (rc == REG_BADBR || rc == REG_ERANGE)
                    fprintf(stderr, "{} content invalid/Invalid endpoint\n");
            if (rc == REG_ESPACE)
                    fprintf(stderr, "Memory error\n");
            if (rc == REG_BADRPT)
                    fprintf(stderr, "Invalid regex\n");

            fprintf(stderr, "%s: Failed to compile the regular expression:%d\n", __func__, rc);
            return 1;
    }
    while (status)
    {
            fgets(email, sizeof(email), stdin);
            status = email[0]-48;

            rc = regexec(&preg, email, (size_t)0, NULL, 0);
            if (rc == 0)
            {
                    fprintf(stderr, "%s: The regular expression is a match\n", __func__);
            }
            else
            {
                    fprintf(stderr, "%s: The regular expression is not a match: %d\n", __func__, rc);
            }
    }

    regfree(&preg);

    return 0;
}

The regex compilation is failing with the below error.

The regex = [a-z0-9!#$%&'*+/=?^_`{|}~-]+(?:.[a-z0-9!#$%&'*+/=?^_`{|}~-]+)*@(?:[a-z0-9](?:[a-z0-9-]*[a-z0-9])?.)+[a-z0-9](?:[a-z0-9-]*[a-z0-9])?
Invalid regex
main: Failed to compile the regular expression:13

What is the cause of this error? Whether the regex need to be modified?

Thanks, Mathew Liju

share|improve this question
    
After removing "?:" from the regular expression, the program is failing for email address like "test..test@test.com". –  Liju Mathew Jun 1 '10 at 10:14

3 Answers 3

up vote 1 down vote accepted

Your problem is the four instances of the sequence (?. That's meaningless - the ( starts a new sub-regex and you can't have ? at the start of a regex.

share|improve this answer
1  
(?: usually refers to a non-capturing subgroup, at least in the regex languages I've used. –  Turnor Jun 1 '10 at 8:07
    
@liju: Just drop the ?:, you'll get the same effect (due to using the REG_NOSUB flag) –  Hasturkun Jun 1 '10 at 8:22
    
Not in POSIX regexes. @Liju Mathew: If ?: is supposed to represent a non-addressable sub-regex, then just leave them out - you don't have any back-references so it won't make any difference. –  caf Jun 1 '10 at 8:27
    
When I removed ?: the program is failing for email address "test..@test.com" This is supposed to be rejected but accepted. –  Liju Mathew Jun 1 '10 at 10:11
    
Well, that would be because your regular expression doesn't do what you think it does. Additionally you don't seem to have transcribed it correctly into the C code; where you have a \. in your original regexp, you have just . in the C string (where I would expect to see \\.). –  caf Jun 1 '10 at 10:23

In case you're interested,

I saw recently the Perfect email regex finally found post on Hacker News and
it's about the Comparing E-mail Address Validating Regular Expressions.

The regexs,

// James Watts and Francisco Jose Martin Moreno are the first to develop one which  
// passes all of the tests.
/^([\w\!\#$\%\&\'\*\+\-\/\=\?\^\`{\|\}\~]+\.)*[\w\!\#$\%\&\'\*\+\-\/\=\?\^\`{\|\}\~]+@((((([a-z0-9]{1}[a-z0-9\-]{0,62}[a-z0-9]{1})|[a-z])\.)+[a-z]{2,6})|(\d{1,3}\.){3}\d{1,3}(\:\d{1,5})?)$/i

// Arluison Guillaume has also improved Warren Gaebel's regex.
// This one will work in JavaScript:
/^[-a-z0-9~!$%^&*_=+}{\'?]+(\.[-a-z0-9~!$%^&*_=+}{\'?]+)*@([a-z0-9_][-a-z0-9_]*(\.[-a-z0-9_]+)*\.(aero|arpa|biz|com|coop|edu|gov|info|int|mil|museum|name|net|org|pro|travel|mobi|[a-z][a-z])|([0-9]{1,3}\.[0-9]{1,3}\.[0-9]{1,3}\.[0-9]{1,3}))(:[0-9]{1,5})?$/i 
share|improve this answer

I use this POSIX expression in standard C:

const char *reg_exp = "^([a-z0-9])(([-a-z0-9._])*([a-z0-9]))*@([a-z0-9])"
                      "(([a-z0-9-])*([a-z0-9]))+(.([a-z0-9])([-a-z0-9_-])?"
                      "([a-z0-9])+)+$";
share|improve this answer

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