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I'm trying out the C RegEx Library. This is the code I've written for testing example patterns and strings. However, this only prints out a single pattern per string. For eg in this case when I run the code it only prints out "asd f g ". It does not recognize "xty y z ". Is there anything wrong with my code or some fundamental mistake in my understanding of how the library works. Any and all help would be appreciated.

int main(int argc, char **argv)
{
    regmatch_t arr[10];
    regex_t *reg=malloc(sizeof(regex_t));
    char *str="\t\t  asd f g  \t   =\t\t  xty y z \t   \t";

    if(regcomp(reg,"[a-z][a-z ]*",REG_EXTENDED | REG_NEWLINE))
        printf("Unsuccessful Compilation\n");
    int i,j;
    int status=regexec(reg,str,10,arr,0);
    if(status)
    {   
        printf("Match Not Found\n");
        return;
    }   
    else
        printf("Match found\n");

    for(i=0;i<10;i++)
    {
        if(arr[i].rm_so!=-1)
            {
                j=arr[i].rm_so;
                printf(":");
                while(j<arr[i].rm_eo)
                {
                    printf("%c",str[j]);
                    j++;
                }
                printf(":\nNewline\n");
            } 
    }   
    return 0;
}
share|improve this question
    
I believe regexec has to be called multiple times, basically it will stop on the first match. – ColWhi Apr 20 '11 at 8:32
    
Also you need a regfree() on the regular expression to avoid memory leaks. – ColWhi Apr 20 '11 at 8:38
1  
@Sasquiha -Yes,calling regexec multiple times should do the trick. Though like Henno Brandsma has mentioned in his answer, I will have to probably match the string the first time with regexec, then trim the string after the last character of the previous match using the previous rm_eo, then call regexec again until either there is no more string left or no more matches. – Sandman Apr 20 '11 at 10:35
    
+1 for string trimming – ColWhi Apr 20 '11 at 10:57
up vote 1 down vote accepted

I think you misunderstand what arr does. arr[0] contains the match, and arr[1] and onwards will contain matches for subexpressions that you matched (bracketed ones). regexec will only match once, and you will need to repeat it in a loop, continuing while regexec matches 0, e.g., and starting the next match one further than the rm_so of the previous match. You then need only one element in the arr array, as you have no nested expressions.

But e.g. if you wanted to match both sides on the equal sign, you could use the regex ([a-z][a-z ]*).*=.*([a-z][a-z ]*) and then after a match arr[0] would be a struct that describes the whole match, and arr[1] one that describes the one before the = sign and arr[2] the one after (the bracketed subexpressions). So if you only want to match lines as the example, you can effectively use subexpressions.

share|improve this answer
    
@Henno Brandsma-Thanks for that wonderful answer. I guess I need to improve my understanding of how regular expressions are matched. Any links or books on that topic? Also the first para of your answer, continuing while regcomp matches 0 - you mean regexec right? Also, one further than the rm so -I guess that should be rm_eo? After reading your answer, I dug further on how those data structures are filled. Came across this link which explains the intricacies Using Registers. Thanks again for you answer! – Sandman Apr 20 '11 at 10:30
    
yes, regexec, indeed. I'll fix it. There is an O' Reilly book (Mastering Regular Expressions) which could be useful, but it's more oriented towards Perl/Python etc, but also contains lots of general info. – Henno Brandsma Apr 20 '11 at 10:33
    
@Henno Brandsma - Please have a look at my comment to Sasquiha in my original post. I hope that is what you meant in the first para of your answer. The alternative that you have mentioned in the 2ns para, actually would work better for me. I didn't know it could be done that way. – Sandman Apr 20 '11 at 10:38
    
just a reminder, watch out for regfree() as well. – ColWhi Apr 20 '11 at 10:57
    
@Sasquiha- Thanks for pointing that out.I will keep that in mind. – Sandman Apr 20 '11 at 11:09

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