1

I want to replace the string text=s_o_m_e=text with text=s-o-m-e=text

I have a starting and ending index:

std::string str("text=s_o_m_e=text");

std::string::size_type start = str.find("text="), end;

if (start != std::string::npos) {
    end = str.find("=", start);

    if (end != std::string::npos) {
        //...
    }
}

So, I'm looking for a function like this:

replaceAll(string, start, end, '_', '-');

UP:

std::replace(str.begin() + start, str.begin() + end, '_', '-');

Thanks, Blastfurnace

1

2 Answers 2

10

There is a function in <algorithm> for that.

std::replace(str.begin(), str.end(), '_', '-');
6
  • More thx! So, my solution: std::replace(str.begin() + start, str.end() + end, '_', '-');
    – Duglas
    Commented Jun 4, 2012 at 7:17
  • 4
    @Duglas: You don't want to reference past the end of the string. Because you are using offsets, I think you want std::replace(str.begin() + start, str.begin() + end, '_', '-'); Commented Jun 4, 2012 at 7:21
  • There is a huge limitation of using std::replace, the old_string and new_string must have the same length. i.e. std::replace(my_str.begin(), my_str.end(), "old string", "can't touch this"); will fail at template argument deduction i.e. "template argument deduction/substitution failed; note: deduced conflicting types for parameter ‘const _Tp’ (‘char [11]’ and ‘char [17]’)"
    – Alex Bitek
    Commented Dec 3, 2012 at 15:26
  • @BadDesign: It's not so much a limitation as a misuse of the algorithm. Your example wouldn't work even if the string literals were the same length. std::string is a container of char elements and those string literals can't be converted from const char * to char. Commented Dec 3, 2012 at 16:30
  • 1
    @BadDesign: Unfortunately, I don't think there's a simple Standard Library replacement for that Boost function. You'd probably have to do it the hard way using std::string::find, std::string::erase, and std::string::insert. Commented Dec 3, 2012 at 19:52
5

Use std::replace. Here is more details.

2
  • -1, Bad answer: a little snippet to show how to use it would make it much better. Commented Jun 4, 2012 at 7:24
  • -1. Even the link referenced in this answer doesn't provide enough information Commented Jun 4, 2012 at 15:42

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