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This regex will trim the string at line breaks.
I want it to trim both end only and preserve any line breaks in the middle.

string s("     Stack \n Overflow    ");
boost::regex expr("^[ \t]+|[ \t]+$");
std::string fmt("");
cout << boost::regex_replace(s, expr, fmt) << endl;
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1 Answer 1

up vote 2 down vote accepted

If you want to make the regular expression match at the beginning and the end of the input string(want to preserve spaces around the in-between \n), \A and \z instead of ^ and $ might meet the purpose.
For example:

boost::regex expr("\\A[ \t]+|[ \t]+\\z");
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This does not seem to produce consistent results. Try to parse this for example: string s(" Stack \n Overflow\r ") –  user754425 May 19 '11 at 21:22
    
Could you tell the result you expect from that input? For example, it produced the result "Stack \n Overflow\r" in my environment. –  Ise Wisteria May 19 '11 at 22:59
    
My bad. The expression I wanted you to test is this string s(" Stack \n Over\rflow "). The result I get is this Stack\n flowOver –  user754425 May 19 '11 at 23:16
    
That produced "Stack \n Over\rflow" in my environment (the spaces around \n were preserved, and the spaces at the beginning and at the end were removed). If you mean flowOver is strange, probably the cause is \r(carriage return). Perhaps a code like int main() { puts("Stack \n Over\rflow"); } will produce the same output(that is, regex stuff is unrelated). If you mean totally different thing, could you tell the result you expect from that input? –  Ise Wisteria May 19 '11 at 23:52
    
You are absolutely correct. The result you are getting is what I was expecting and that is what I get if I print the result to file as opposed to the console. Side note: I tried the same expression on std::tr::regex and the program crashed.( Windows VS 2008 express ) –  user754425 May 20 '11 at 0:15

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