165

Is it possible in C++ to replace part of a string with another string?

Basically, I would like to do this:

QString string("hello $name");
string.replace("$name", "Somename");

But I would like to use the Standard C++ libraries.

13 Answers 13

259

There's a function to find a substring within a string (find), and a function to replace a particular range in a string with another string (replace), so you can combine those to get the effect you want:

bool replace(std::string& str, const std::string& from, const std::string& to) {
    size_t start_pos = str.find(from);
    if(start_pos == std::string::npos)
        return false;
    str.replace(start_pos, from.length(), to);
    return true;
}

std::string string("hello $name");
replace(string, "$name", "Somename");

In response to a comment, I think replaceAll would probably look something like this:

void replaceAll(std::string& str, const std::string& from, const std::string& to) {
    if(from.empty())
        return;
    size_t start_pos = 0;
    while((start_pos = str.find(from, start_pos)) != std::string::npos) {
        str.replace(start_pos, from.length(), to);
        start_pos += to.length(); // In case 'to' contains 'from', like replacing 'x' with 'yx'
    }
}
  • 2
    How would I fix it if the original string had more that one instance of "$name" and I wanted to replace all of them. – Tom Leese Aug 5 '10 at 19:14
  • 1
    Why aren't from and to passed per const reference? What does your function if from isn't there? -1 from me for that. – sbi Aug 5 '10 at 19:15
  • 9
    @sbi Fixed, although you could've phrased it as recommendations instead of attacks -- it simply didn't occur to me, I rarely think to use const and if I wrote a utility method like this I would only call it if I knew the replacement were valid – Michael Mrozek Aug 5 '10 at 19:19
  • 10
    @Michael: Good, I turned my down-vote into an up-vote. Dismissing const is disregarding one of C++' best tools. Passing per const reference should be the default mode for function parameters. (FTR, without the const, you couldn't even pass string literals to your function, because you cannot bind temporaries to non-const references. So the function wouldn't even do what it was written to.) – sbi Aug 5 '10 at 21:13
  • 5
    Is this still the only solution in 2018? If so and any C++ committee are reading this, sort it out. It's embarrassing. split(string, string) and replace(string, string) please! – user997112 Jul 31 '18 at 12:53
73

With C++11 you can use std::regex like so:

    std::string string("hello $name");
    string = std::regex_replace(string, std::regex("\\$name"), "Somename");

The double backslash is required for escaping an escape character.

  • I'm pretty sure std::regex_replace doesn't accept Qt's string. – BartoszKP Jul 23 '15 at 19:06
  • 1
    You are right. As it happens QString provides a replace method which accepts a QRexExp, allowing to use Qt's own stuff. But I think The current answer could be corrected by replacing string with string.toStdString(). – Tom Jul 24 '15 at 22:36
  • 1
    Or just by changing String to std::string, because the question is not related to Qt. Please consider doing that - I'll gladly upvote your answer afterwards. – BartoszKP Jul 25 '15 at 10:07
  • 4
    Raw string allows to write R"(\$name)" instead of "\\$name". – Jarod42 Jul 22 '16 at 12:30
  • This deserves much more visiblity – rmobis Feb 1 at 4:03
18

std::string has a replace method, is that what you are looking for?

You could try:

s.replace(s.find("$name"), sizeof("$name") - 1, "Somename");

I haven't tried myself, just read the documentation on find() and replace().

  • From what I can see the std::string replace method doesn't take two strings as I would like. – Tom Leese Aug 5 '10 at 19:10
  • 1
    This doesnt work for me. sizeof should be replaced by string("Somename").size()-1 – TimZaman Apr 10 '14 at 8:34
  • @TimZaman: That puzzles me, the documentation clearly states you can initialize from a C-style string. – S.C. Madsen Apr 10 '14 at 18:26
  • 3
    the 2nd argument should be the length of "$name" (instead of the length of "Somename"), shouldn't it? – Daniel Kiss Jan 13 '16 at 19:56
8

To have the new string returned use this:

std::string ReplaceString(std::string subject, const std::string& search,
                          const std::string& replace) {
    size_t pos = 0;
    while ((pos = subject.find(search, pos)) != std::string::npos) {
         subject.replace(pos, search.length(), replace);
         pos += replace.length();
    }
    return subject;
}

If you need performance, here is an optimized function that modifies the input string, it does not create a copy of the string:

void ReplaceStringInPlace(std::string& subject, const std::string& search,
                          const std::string& replace) {
    size_t pos = 0;
    while ((pos = subject.find(search, pos)) != std::string::npos) {
         subject.replace(pos, search.length(), replace);
         pos += replace.length();
    }
}

Tests:

std::string input = "abc abc def";
std::cout << "Input string: " << input << std::endl;

std::cout << "ReplaceString() return value: " 
          << ReplaceString(input, "bc", "!!") << std::endl;
std::cout << "ReplaceString() input string not modified: " 
          << input << std::endl;

ReplaceStringInPlace(input, "bc", "??");
std::cout << "ReplaceStringInPlace() input string modified: " 
          << input << std::endl;

Output:

Input string: abc abc def
ReplaceString() return value: a!! a!! def
ReplaceString() input string not modified: abc abc def
ReplaceStringInPlace() input string modified: a?? a?? def
  • Your call to subject.replace in ReplaceStringInPlace() is that really modifying the string inplace? – Damian Jul 13 '16 at 9:08
  • I briefly looked at the source and it looks like it does use move semantics to move the front of the old string into place, so that is not copied, but the new piece inserted is copied into the old string and the tail of the old string is copied into the resized buffered of the old string. It is possible that the string expands so much the entire underlying buffer is reallocated, but if you replace 1 to 1 as in his example, I think it does occur "in place", or without any copying, but if you expand the string, only the first part of the old string is not copied, and only maybe then. – Motes Oct 13 '16 at 21:38
6

Yes, you can do it, but you have to find the position of the first string with string's find() member, and then replace with it's replace() member.

string s("hello $name");
size_type pos = s.find( "$name" );
if ( pos != string::npos ) {
   s.replace( pos, 5, "somename" );   // 5 = length( $name )
}

If you are planning on using the Standard Library, you should really get hold of a copy of the book The C++ Standard Library which covers all this stuff very well.

  • 1
    it's size_t and not size_type – revo Jan 8 '13 at 23:54
  • It's std::string::size_type, not size_t or the unadorned size_type. – jmucchiello May 18 '13 at 16:33
4

This sounds like an option

string.replace(string.find("%s"), string("%s").size(), "Something");

You could wrap this in a function but this one-line solution sounds acceptable. The problem is that this will change the first occurence only, you might want to loop over it, but it also allows you to insert several variables into this string with the same token (%s)

  • 1
    Like the style but found the different strings confusing ^^ str.replace(str.find("%s"), string("%s").size(), "Something"); – Paul Würtz Apr 23 '17 at 14:18
4

I use generally this:

std::string& replace(std::string& s, const std::string& from, const std::string& to)
{
    if(!from.empty())
        for(size_t pos = 0; (pos = s.find(from, pos)) != std::string::npos; pos += to.size())
            s.replace(pos, from.size(), to);
    return s;
}

It repeatedly calls std::string::find() to locate other occurrences of the searched for string until std::string::find() doesn't find anything. Because std::string::find() returns the position of the match we don't have the problem of invalidating iterators.

  • Your replace() function works perfectly. But in case variable from is empty, it enters in endless loop. std::string a("Hello"); replace(a, "", "world"); – Hill Jun 20 '15 at 11:53
  • @Hill Thanks for spotting that! I thought std::string::find would return npos if you didn't give it anything to find but apparently not! Fixed. – Galik Jun 20 '15 at 12:30
3

If all strings are std::string, you'll find strange problems with the cutoff of characters if using sizeof() because it's meant for C strings, not C++ strings. The fix is to use the .size() class method of std::string.

sHaystack.replace(sHaystack.find(sNeedle), sNeedle.size(), sReplace);

That replaces sHaystack inline -- no need to do an = assignment back on that.

Example usage:

std::string sHaystack = "This is %XXX% test.";
std::string sNeedle = "%XXX%";
std::string sReplace = "my special";
sHaystack.replace(sHaystack.find(sNeedle),sNeedle.size(),sReplace);
std::cout << sHaystack << std::endl;
2
std::string replace(std::string base, const std::string from, const std::string to) {
    std::string SecureCopy = base;

    for (size_t start_pos = SecureCopy.find(from); start_pos != std::string::npos; start_pos = SecureCopy.find(from,start_pos))
    {
        SecureCopy.replace(start_pos, from.length(), to);
    }

    return SecureCopy;
}
  • 2
    Can you please explain this code (in your answer)? You might get more upvotes that way! – The Guy with The Hat Apr 17 '14 at 15:04
2
wstring myString = L"Hello $$ this is an example. By $$.";
wstring search = L"$$";
wstring replace = L"Tom";
for (int i = myString.find(search); i >= 0; i = myString.find(search))
    myString.replace(i, search.size(), replace);
1

If you want to do it quickly you can use a two scan approach. Pseudo code:

  1. first parse. find how many matching chars.
  2. expand the length of the string.
  3. second parse. Start from the end of the string when we get a match we replace, else we just copy the chars from the first string.

I am not sure if this can be optimized to an in-place algo.

And a C++11 code example but I only search for one char.

#include <string>
#include <iostream>
#include <algorithm>
using namespace std;

void ReplaceString(string& subject, char search, const string& replace)
{   
    size_t initSize = subject.size();
    int count = 0;
    for (auto c : subject) { 
        if (c == search) ++count;
    }

    size_t idx = subject.size()-1 + count * replace.size()-1;
    subject.resize(idx + 1, '\0');

    string reverseReplace{ replace };
    reverse(reverseReplace.begin(), reverseReplace.end());  

    char *end_ptr = &subject[initSize - 1];
    while (end_ptr >= &subject[0])
    {
        if (*end_ptr == search) {
            for (auto c : reverseReplace) {
                subject[idx - 1] = c;
                --idx;              
            }           
        }
        else {
            subject[idx - 1] = *end_ptr;
            --idx;
        }
        --end_ptr;
    }
}

int main()
{
    string s{ "Mr John Smith" };
    ReplaceString(s, ' ', "%20");
    cout << s << "\n";

}
0

I'm just now learning C++, but editing some of the code previously posted, I'd probably use something like this. This gives you the flexibility to replace 1 or multiple instances, and also lets you specify the start point.

using namespace std;

// returns number of replacements made in string
long strReplace(string& str, const string& from, const string& to, size_t start = 0, long count = -1) {
    if (from.empty()) return 0;

    size_t startpos = str.find(from, start);
    long replaceCount = 0;

    while (startpos != string::npos){
        str.replace(startpos, from.length(), to);
        startpos += to.length();
        replaceCount++;

        if (count > 0 && replaceCount >= count) break;
        startpos = str.find(from, startpos);
    }

    return replaceCount;
}
0

My own implementation, taking into account that string needs to be resized only once, then replace can happen.

template <typename T>
std::basic_string<T> replaceAll(const std::basic_string<T>& s, const T* from, const T* to)
{
    auto length = std::char_traits<T>::length;
    size_t toLen = length(to), fromLen = length(from), delta = toLen - fromLen;
    bool pass = false;
    std::string ns = s;

    size_t newLen = ns.length();

    for (bool estimate : { true, false })
    {
        size_t pos = 0;

        for (; (pos = ns.find(from, pos)) != std::string::npos; pos++)
        {
            if (estimate)
            {
                newLen += delta;
                pos += fromLen;
            }
            else
            {
                ns.replace(pos, fromLen, to);
                pos += delta;
            }
        }

        if (estimate)
            ns.resize(newLen);
    }

    return ns;
}

Usage could be for example like this:

std::string dirSuite = replaceAll(replaceAll(relPath.parent_path().u8string(), "\\", "/"), ":", "");

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