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I am tring to use back-reference in boost version 1.44 but this don't work for me. this is my code:

 boost::regex_constants::syntax_option_type flags = boost::regex::extended;
 std::string regx="(aaa)bb\1";
 std::cout << "Expression:  \"" << regx << "\"\n";
 std::string str ="aaabbaaa";
 boost::regex e(regx,flags);
 if(boost::regex_match(text, what, e))//, boost::match_extra))
 {
   std::cout<<"found";
 } else
 {
   std::cout<<"not found";
 }

and this is my ouput:

   Expression:  "(aaa)bbb☺"
   ** not found **
   Press any key to continue . . .

what I am missing? when I try std::string regx="(aaa)bb\\1" program crashed in boost::regex e(regx,flags); mybe I miss some flag?

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4 Answers 4

"(aaa)bb\\1". You need to escape the backslash.

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what is body? and I try \\1 but crashed in boost::regex e(regx,flags); –  herzl shemuelian Jun 23 '11 at 14:04
    
@herzl, I ment use \\1 instead of \1, not as a whole separate regex. –  Qtax Jun 23 '11 at 14:08
    
yes I did std::string regx="(aaa)bb\\1" and crashed. –  herzl shemuelian Jun 23 '11 at 14:14

Both C++ and the regex use \ as an escape character. When you use it in your string C++ is interpreting it as octal character constant 1. You'll need to double escape the 1: std::string regx="(aaa)bb\\1";

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but when I try \\1 it is crashed in boost::regex e(regx,flags); –  herzl shemuelian Jun 23 '11 at 14:08
up vote 0 down vote accepted

I fix this problem by chaning this row

   boost::regex_constants::syntax_option_type flags = boost::regex::extended;

to

   boost::regex_constants::syntax_option_type flags = boost::regex::bk_vbar;

and ofcourse use \\ and this work for me.

thanks

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In addition to needing to escape your backslash:

Boost::regex sets the extended-syntax specific no_bk_refs flag by default. If you want to use back-references with extended syntax you'll have to unset it yourself:

flags = boost::regex::extended  & ~boost::regex::no_bk_refs;
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