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I need to convert const_iterator into a type that I can do int and string operations to. results[1] contains the text from the regex_search that I need to work with. I've spent a couple hours already trying cast into a workable format, no success...

boost::match_results<std::string::const_iterator> results;
      boost::regex ex(pattern, boost::regex::perl);
      if(boost::regex_search(line, results, ex))
        (results[1] > 10) ? cout << "Fail" : cout << "Pass";

Thanks, Joe

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2 Answers 2

up vote 4 down vote accepted

You could create an std::string out of a match result of const string iterators like this:

std::string result_string( results[1].first, results[1].second );

...or simply:

std::string result_string = results[1].str();

You can coerce the string to an int like this:

int result_int = boost::lexical_cast< int >( result_string );

...or, as pointed by @Jonathan Wakely, if you are using C++11:

int result_int = std::stoi( result_string );
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Thanks, works like a charm now :) –  J.Bet-Eivazi Dec 19 '12 at 19:36
    
why not std:stoi() instead of lexical_cast? –  Jonathan Wakely Dec 19 '12 at 19:45
    
@Jonathan Wakely: No mention of C++11, and Boost is already there... –  K-ballo Dec 19 '12 at 19:48
    
AH good point, sorry! You had my +1 anyway –  Jonathan Wakely Dec 19 '12 at 19:49

results[1].first is an iterator that points to the beginning of the text that matched; results[1].second is an iterator that points past the end of the text that matched. Use this pair of iterators to access individual characters in the match. If you just want a string object that holds a copy of the matched text, use results[1].str().

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Thanks for the explanation on the first and second methods, I was noticing them on my searching but didnt quit grasp their ideo clearly. –  J.Bet-Eivazi Dec 19 '12 at 19:38
    
first and second are not functions; they're data members. –  Pete Becker Dec 19 '12 at 23:09

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