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I just started using Boost::regex today and am quite a novice in Regular Expressions too. I have been using "The Regulator" and Expresso to test my regex and seem satisfied with what I see there, but transferring that regex to boost, does not seem to do what I want it to do. Any pointers to help me a solution would be most welcome. As a side question are there any tools that would help me test my regex against boost.regex?

using namespace boost;
using namespace std;

vector<string> tokenizer::to_vector_int(const string s)
{
    regex re("\\d*");
    vector<string> vs;
    cmatch matches;
    if( regex_match(s.c_str(), matches, re) ) {
    	MessageBox(NULL, L"Hmmm", L"", MB_OK); // it never gets here
    	for( unsigned int i = 1 ; i < matches.size() ; ++i ) {
    		string match(matches[i].first, matches[i].second);
    		vs.push_back(match);
    	}
    }
    return vs;
}

void _uttokenizer::test_to_vector_int() 
{
    vector<string> __vi = tokenizer::to_vector_int("0<br/>1");
    for( int i = 0 ; i < __vi.size() ; ++i ) INFO(__vi[i]);
    CPPUNIT_ASSERT_EQUAL(2, (int)__vi.size());//always fails
}

Update (Thanks to Dav for helping me clarify my question): I was hoping to get a vector with 2 strings in them => "0" and "1". I instead never get a successful regex_match() (regex_match() always returns false) so the vector is always empty.

Thanks '1800 INFORMATION' for your suggestions. The to_vector_int() method now looks like this, but it goes into a never ending loop (I took the code you gave and modified it to make it compilable) and find "0","","","" and so on. It never find the "1".

vector<string> tokenizer::to_vector_int(const string s)
{
    regex re("(\\d*)");
    vector<string> vs;

    cmatch matches;

    char * loc = const_cast<char *>(s.c_str());
    while( regex_search(loc, matches, re) ) {
    	vs.push_back(string(matches[0].first, matches[0].second));
    	loc = const_cast<char *>(matches.suffix().str().c_str());
    }

    return vs;
}

In all honesty I don't think I have still understood the basics of searching for a pattern and getting the matches. Are there any tutorials with examples that explains this?

share|improve this question
    
It'd help if you explained exactly what wasn't working as intended - what results do you get, what do you expect to get? –  Amber Aug 12 '09 at 23:49
    
Thanks Dav. Hope I have added enough information with my question. –  ossandcad Aug 12 '09 at 23:57

1 Answer 1

up vote 9 down vote accepted

The basic problem is that you are using regex_match when you should be using regex_search:

The algorithms regex_search and regex_match make use of match_results to report what matched; the difference between these algorithms is that regex_match will only find matches that consume all of the input text, where as regex_search will search for a match anywhere within the text being matched.

From the boost documentation. Change it to use regex_search and it will work.

Also, it looks like you are not capturing the matches. Try changing the regex to this:

regex re("(\\d*)");

Or, maybe you need to be calling regex_search repeatedly:

char *where = s.c_str();
while (regex_search(s.c_str(), matches, re))
{
  where = m.suffix().first;
}

This is since you only have one capture in your regex.

Alternatively, change your regex, if you know the basic structure of the data:

regex re("(\\d+).*?(\\d+)");

This would match two numbers within the search string.

Note that the regular expression \d* will match zero or more digits - this includes the empty string "" since this is exactly zero digits. I would change the expression to \d+ which will match 1 or more.

share|improve this answer
    
Awesome. Thanks 1800 INFORMATION. I didn't realize how much of a noob I was in boost.regex. (In my defense both "The Regulator" and Expresso give me positive results in response to "Match", so I honed in a similarly named method in boost.regex.) I guess I didn't fathom the significance of the difference between regex_match and regex_search till you pointed it out. Thanks again. I wonder if there is anyway to reduce my "reputation score" even further to display my noobness :). –  ossandcad Aug 13 '09 at 3:11
    
I tested your suggestion 1800 INFORMATION to replace regex_match with regex_search and now I get two strings: "0" and " ". I don't seem to get the 2nd one as "1". Any suggestions on what I could still be missing? –  ossandcad Aug 13 '09 at 3:13
    
It looks like you aren't capturing the strings you match, try putting the () around the expression –  1800 INFORMATION Aug 13 '09 at 3:48
    
Thanks 1800 INFORMATION. I unfortunately cannot use the suggestion for regex re("(\\d+).*?(\\d+)"); as the basic structure is a bunch of integers (0+) separated by various punctuations, <br/> or "\r\n" etc. I have updated my question with the latest code version and have described a problem I faced with your suggestion. Any help would be doubly appreciated. –  ossandcad Aug 13 '09 at 14:45
    
I suspect your current regular expression is wrong - \d* will match zero or more digits - the empty string "" is included in the subset of zero digits which is why it is stopping there - you should change it to \d+ –  1800 INFORMATION Aug 13 '09 at 20:48

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