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Imagine I have the following string:

"I'll have some %1%, some %42% and maybe some %5% as well."

Basically, I am interested in knowing the maximum integer value that follow the pattern %(integer)%.

I am not even sure it's possible to do with a regex. What regex could I use so that in the above example the answer would be 42?

P.S. One easy solution is evidently to simply look for any %(integer)% patterns, and use the script (c++ code) to iterate through all the matches and find the highest value. My question is: is it possible to do it straight away within the regex?

Background: understanding what follows is probably not necessary to answer the question, but I thought some of you might want to know.

Basically I am using C++ and boost::format. Formats are patterned with placeholders like this: %1%, %2%, etc. Boost::format throws an exception if the number of supplied variables do not correspond to the maximum integer value in the format itself. The formats I am going to use are supplied by (trusted) users (web site administrators). Still, to do things properly, I need to validate the patten. Thus, I need to find the maximum integer in the pattern to make sure no exception will be thrown at run time.

If you are using boost::format with user-supplied formats, how did you deal with this issue?

BTW, there is no boost-format tag! (although there are other boost-foo tags).

Solution

Billy ONeal provided the right answer and Beh Tou Cheh (in the comments to the selected answer) was kind enough to paste the actual code:

#include <iostream>
#include <string>
#include <deque>
#include "strtk.hpp"

int main() 
{
   std::string s = "I'll have some %1%, some %42% and maybe some %5% as well.";
   std::deque<int> int_list;
   strtk::split_regex("%([\\d]+)%",
                       s,
                       strtk::range_to_type_back_inserter(int_list),
                       strtk::match_mode::match_1);

   if (!int_list.empty())
   {
        std::cout << "max: " << strtk::max_of_cont(int_list) << std::endl;
   }

   return 0;
}
share|improve this question
    
I don't know the boost::regex library well enough to answer (just learning it), but I'd advise against anything but the simple solution you suggest yourself. Though Perl hackers may tell you otherwise, this is not what regexps are intended to do. They're nice for matching strings but a poor choice for arithmetic. – Fred Foo Nov 13 '10 at 1:50
2  
Really, don't make things more complicated by trying to cram it all into the regex. Just iterate. – Amber Nov 13 '10 at 1:50
    
I would just try to pass the parameters to the format string and convert it into a string, all within a try-catch statement that catches a bad format exception. Really, there's no simple way for you to validate the format string other than to try it. For example, the format string allows printf-syntax too. Otherwise, if you really want to do it, just iterate with a simple regex: "%\d+%". – Daniel Lidström Nov 14 '10 at 21:49
up vote 10 down vote accepted

Find all values like this: %([\d]+)%, parse the back reference as an integer (using something like lexical_cast), and choose the highest value. (You can use something like std::max_element for this)

share|improve this answer
1  
I.e., don't iterate over the solutions but let the library do it for you :) – Fred Foo Nov 13 '10 at 1:53
    
@Billy: you'd need to trim leading and trailing "%" as the regex you've provided will return those, and lexical_cast will barf a bad_lexical_cast exception if it seems them. – Matthieu N. Nov 13 '10 at 3:56
    
@Beh Tou Cheh: Did you notice the parenthesis in the regular expression? Those are important. Don't use the whole match, use the backreference. – Billy ONeal Nov 13 '10 at 4:04
2  
@Billy: Not 100% sure, but I thought it was called a captured group, and a backreference is how you match the same group multiple times in the same regex. – Ben Voigt Nov 13 '10 at 4:34
23  
Using Billy's suggestions and StrTk, I've got the following solution: pastie.org/1294443 – Matthieu N. Nov 13 '10 at 4:39

Even if someone did devise a regex capable of doing that, it would not perform as well as simply iterating the matches.

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