500

What is the effective way to replace all occurrences of a character with another character in std::string?

15 Answers 15

775

std::string doesn't contain such function but you could use stand-alone replace function from algorithm header.

#include <algorithm>
#include <string>

void some_func() {
  std::string s = "example string";
  std::replace( s.begin(), s.end(), 'x', 'y'); // replace all 'x' to 'y'
}
| improve this answer | |
  • 6
    std::string is a container specifically designed to operate with sequences of characters. link – Kirill V. Lyadvinsky May 24 '10 at 11:41
  • 172
    Unfortunately, this allows to replace only one char by another char. It cannot replace a char with more chars (that is, by a string). Is there a way to do a search-replace with more chars? – SasQ Aug 9 '12 at 9:26
  • 6
    @Kirill V. Lyadvinsky What If I just want to remove an occurrence. – SIFE Nov 22 '12 at 14:54
  • 4
    @KirillV.Lyadvinsky: When I use this method to replace all x's with y's, the result is a lengthy y string no matter what the original string is. I've curious what do you think would be the problem. (the code is exactly the same as you wrote) – Transcendent Oct 17 '13 at 12:08
  • 8
    @Transcendent: This is exactly what happens with std::string::replace() instead of std::replace()! 'x' (char) is implicitely casted to size_t [value 120], thus the whole string or or part of it will be filled up with 120 copies of 'y'. – IBue Feb 19 '15 at 18:41
132

The question is centered on character replacement, but, as I found this page very useful (especially Konrad's remark), I'd like to share this more generalized implementation, which allows to deal with substrings as well:

std::string ReplaceAll(std::string str, const std::string& from, const std::string& to) {
    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(); // Handles case where 'to' is a substring of 'from'
    }
    return str;
}

Usage:

std::cout << ReplaceAll(string("Number Of Beans"), std::string(" "), std::string("_")) << std::endl;
std::cout << ReplaceAll(string("ghghjghugtghty"), std::string("gh"), std::string("X")) << std::endl;
std::cout << ReplaceAll(string("ghghjghugtghty"), std::string("gh"), std::string("h")) << std::endl;

Outputs:

Number_Of_Beans

XXjXugtXty

hhjhugthty


EDIT:

The above can be implemented in a more suitable way, in case performances are of your concern, by returning nothing (void) and performing the changes directly on the string str given as argument, passed by address instead of by value. This would avoid useless and costly copy of the original string, while returning the result. Your call, then...

Code :

static inline void ReplaceAll2(std::string &str, const std::string& from, const std::string& to)
{
    // Same inner code...
    // No return statement
}

Hope this will be helpful for some others...

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  • 5
    This one has a performance issue in cases where the source string is large and there are many occurences of the string to be replaced. string::replace() would be called many times which causes lots of string copies. See my solution which addresses that problem. – minastaros Apr 21 '15 at 6:44
  • 1
    Nit picking ahead: by address => by reference. Whether it's an address or not is an implementation detail. – Max Truxa May 18 '15 at 16:16
  • 1
    You should actually check if from string is empty, otherwise an endless loop will occur. – newbie Sep 5 '15 at 2:23
131

I thought I'd toss in the boost solution as well:

#include <boost/algorithm/string/replace.hpp>

// in place
std::string in_place = "blah#blah";
boost::replace_all(in_place, "#", "@");

// copy
const std::string input = "blah#blah";
std::string output = boost::replace_all_copy(input, "#", "@");
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  • Then you are missing a few -I flags for your compiler in order for it to find the Boost libraries on your system. Perhaps you need to even install it first. – Martin Ueding May 17 '19 at 9:56
  • The above is more effective since it comes out with std lib.No all using boost library ;-) – hfrmobile Mar 20 at 10:49
37

Imagine a large binary blob where all 0x00 bytes shall be replaced by "\1\x30" and all 0x01 bytes by "\1\x31" because the transport protocol allows no \0-bytes.

In cases where:

  • the replacing and the to-replaced string have different lengths,
  • there are many occurences of the to-replaced string within the source string and
  • the source string is large,

the provided solutions cannot be applied (because they replace only single characters) or have a performance problem, because they would call string::replace several times which generates copies of the size of the blob over and over. (I do not know the boost solution, maybe it is OK from that perspective)

This one walks along all occurrences in the source string and builds the new string piece by piece once:

void replaceAll(std::string& source, const std::string& from, const std::string& to)
{
    std::string newString;
    newString.reserve(source.length());  // avoids a few memory allocations

    std::string::size_type lastPos = 0;
    std::string::size_type findPos;

    while(std::string::npos != (findPos = source.find(from, lastPos)))
    {
        newString.append(source, lastPos, findPos - lastPos);
        newString += to;
        lastPos = findPos + from.length();
    }

    // Care for the rest after last occurrence
    newString += source.substr(lastPos);

    source.swap(newString);
}
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  • This is by far the best solution here which is built on the STL alone. If you're going to drop in a custom function for easy use anywhere, make it this one. – Roger Sanders Jan 29 at 0:41
21

A simple find and replace for a single character would go something like:

s.replace(s.find("x"), 1, "y")

To do this for the whole string, the easy thing to do would be to loop until your s.find starts returning npos. I suppose you could also catch range_error to exit the loop, but that's kinda ugly.

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  • 7
    While this is probably a suitable solution when the number of characters to replace is small compared to the length of the string, it doesn't scale well. As the proportion of characters in the original string that need to be replaced increases, this method will approach O(N^2) in time. – andand May 24 '10 at 14:37
  • 7
    True. My general philosophy is to do the easy (to write and to read) thing until such time as the inefficiencies are causing real problems. There are some circumstances where you might have humoungous strings where O(N**2) matters, but 99% of the time my strings are 1K or less. – T.E.D. May 25 '10 at 3:40
  • 3
    ...that being said, I like Kirill's method better (and had already voted it up). – T.E.D. May 25 '10 at 3:41
  • What happens if "x" is not found? Also, why you are using double braces? – Prasath Govind Aug 25 '15 at 11:26
  • @PrasathGovind - I was just showing the calls required (hence "something like"). Important but obscuring details such as proper error handling were left as an exercise for the reader. As for "double braces", I'm not sure what those are, or what you are talking about. For me a "brace" is the { character. I don't know what a "double brace" is. Perhaps you have some kind of font issue? – T.E.D. Aug 25 '15 at 12:54
7

If you're looking to replace more than a single character, and are dealing only with std::string, then this snippet would work, replacing sNeedle in sHaystack with sReplace, and sNeedle and sReplace do not need to be the same size. This routine uses the while loop to replace all occurrences, rather than just the first one found from left to right.

while(sHaystack.find(sNeedle) != std::string::npos) {
  sHaystack.replace(sHaystack.find(sNeedle),sNeedle.size(),sReplace);
}
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  • This is O(n^). You could do it in O(n) time. – Changming Sun Sep 29 '16 at 9:30
  • 3
    @ChangmingSun which O(n) solution do you mean? – habakuk Nov 23 '17 at 10:20
  • 4
    This will infinite loop if kNeedle happens to be a substring of sReplace. – prideout Jan 11 at 23:39
  • Plus there's a find call twice. Consider making that result a temp variable. – Luc Bloom Jan 20 at 9:25
4

As Kirill suggested, either use the replace method or iterate along the string replacing each char independently.

Alternatively you can use the find method or find_first_of depending on what you need to do. None of these solutions will do the job in one go, but with a few extra lines of code you ought to make them work for you. :-)

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3
#include <iostream>
#include <string>
using namespace std;
// Replace function..
string replace(string word, string target, string replacement){
    int len, loop=0;
    string nword="", let;
    len=word.length();
    len--;
    while(loop<=len){
        let=word.substr(loop, 1);
        if(let==target){
            nword=nword+replacement;
        }else{
            nword=nword+let;
        }
        loop++;
    }
    return nword;

}
//Main..
int main() {
  string word;
  cout<<"Enter Word: ";
  cin>>word;
  cout<<replace(word, "x", "y")<<endl;
  return 0;
}
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  • If word is long, there may be a lot of overhead while calling the function. You can optimise this by passing word, target, and replacement as const-references. – TrebledJ Feb 21 '19 at 8:49
3

What about Abseil StrReplaceAll? From the header file:

// This file defines `absl::StrReplaceAll()`, a general-purpose string
// replacement function designed for large, arbitrary text substitutions,
// especially on strings which you are receiving from some other system for
// further processing (e.g. processing regular expressions, escaping HTML
// entities, etc.). `StrReplaceAll` is designed to be efficient even when only
// one substitution is being performed, or when substitution is rare.
//
// If the string being modified is known at compile-time, and the substitutions
// vary, `absl::Substitute()` may be a better choice.
//
// Example:
//
// std::string html_escaped = absl::StrReplaceAll(user_input, {
//                                                {"&", "&amp;"},
//                                                {"<", "&lt;"},
//                                                {">", "&gt;"},
//                                                {"\"", "&quot;"},
//                                                {"'", "&#39;"}});
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1

For simple situations this works pretty well without using any other library then std::string (which is already in use).

Replace all occurences of character a with character b in some_string:

for (size_t i = 0; i < some_string.size(); ++i) {
    if (some_string[i] == 'a') {
        some_string.replace(i, 1, "b");
    }
}

If the string is large or multiple calls to replace is an issue, you can apply the technique mentioned in this answer: https://stackoverflow.com/a/29752943/3622300

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1

Old School :-)

std::string str = "H:/recursos/audio/youtube/libre/falta/"; 

for (int i = 0; i < str.size(); i++) {
    if (str[i] == '/') {
        str[i] = '\\';
    }
}

std::cout << str;

Result:

H:\recursos\audio\youtube\libre\falta\

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0

This works! I used something similar to this for a bookstore app, where the inventory was stored in a CSV (like a .dat file). But in the case of a single char, meaning the replacer is only a single char, e.g.'|', it must be in double quotes "|" in order not to throw an invalid conversion const char.

#include <iostream>
#include <string>

using namespace std;

int main()
{
    int count = 0;  // for the number of occurences.
    // final hold variable of corrected word up to the npos=j
    string holdWord = "";
    // a temp var in order to replace 0 to new npos
    string holdTemp = "";
    // a csv for a an entry in a book store
    string holdLetter = "Big Java 7th Ed,Horstman,978-1118431115,99.85";

    // j = npos
    for (int j = 0; j < holdLetter.length(); j++) {

        if (holdLetter[j] == ',') {

            if ( count == 0 ) 
            {           
                holdWord = holdLetter.replace(j, 1, " | ");      
            }
            else {

                string holdTemp1 = holdLetter.replace(j, 1, " | ");

                // since replacement is three positions in length,
                // must replace new replacement's 0 to npos-3, with
                // the 0 to npos - 3 of the old replacement 
                holdTemp = holdTemp1.replace(0, j-3, holdWord, 0, j-3); 

                holdWord = "";

                holdWord = holdTemp;

            }
            holdTemp = "";
            count++;
        }
    } 
    cout << holdWord << endl;
    return 0;
}

// result:
Big Java 7th Ed | Horstman | 978-1118431115 | 99.85

Uncustomarily I am using CentOS currently, so my compiler version is below . The C++ version (g++), C++98 default:

g++ (GCC) 4.8.5 20150623 (Red Hat 4.8.5-4)
Copyright (C) 2015 Free Software Foundation, Inc.
This is free software; see the source for copying conditions.  There is NO
warranty; not even for MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.
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0

If you're willing to use std::strings, you can use this sample-app's strsub function as-is, or update it if you want it to take a different type or set of parameters to achieve roughly the same goal. Basically, it uses the properties and functionalities of std::string to quickly erase the matching set of characters, and insert the desired characters directly within the std::string. Every time it does this replacement operation, the offset updates if it can still find matching chars to replace, and if it can't due to nothing more to replace, it returns the string in its state from the last update.

#include <iostream>
#include <string>

std::string strsub(std::string stringToModify,
                   std::string charsToReplace,
                   std::string replacementChars);

int main()
{
    std::string silly_typos = "annoiiyyyng syyyllii tiipos.";

    std::cout << "Look at these " << silly_typos << std::endl;
    silly_typos = strsub(silly_typos, "yyy", "i");
    std::cout << "After a little elbow-grease, a few less " << silly_typos << std::endl;
    silly_typos = strsub(silly_typos, "ii", "y");

    std::cout << "There, no more " << silly_typos << std::endl;
    return 0;
}

std::string strsub(std::string stringToModify,
                   std::string charsToReplace,
                   std::string replacementChars)
{
    std::string this_string = stringToModify;

    std::size_t this_occurrence = this_string.find(charsToReplace);
    while (this_occurrence != std::string::npos)
    {
        this_string.erase(this_occurrence, charsToReplace.size());
        this_string.insert(this_occurrence, replacementChars);
        this_occurrence = this_string.find(charsToReplace,
                                           this_occurrence + replacementChars.size());
    }

    return this_string;
}

If you don't want to rely on using std::strings as your parameters so you can pass in C-style strings instead, you can see the updated sample below:

#include <iostream>
#include <string>

std::string strsub(const char * stringToModify,
                   const char * charsToReplace,
                   const char * replacementChars,
                   uint64_t sizeOfCharsToReplace,
                   uint64_t sizeOfReplacementChars);

int main()
{
    std::string silly_typos = "annoiiyyyng syyyllii tiipos.";

    std::cout << "Look at these " << silly_typos << std::endl;
    silly_typos = strsub(silly_typos.c_str(), "yyy", "i", 3, 1);
    std::cout << "After a little elbow-grease, a few less " << silly_typos << std::endl;
    silly_typos = strsub(silly_typos.c_str(), "ii", "y", 2, 1);

    std::cout << "There, no more " << silly_typos << std::endl;
    return 0;
}

std::string strsub(const char * stringToModify,
                   const char * charsToReplace,
                   const char * replacementChars,
                   uint64_t sizeOfCharsToReplace,
                   uint64_t sizeOfReplacementChars)
{
    std::string this_string = stringToModify;

    std::size_t this_occurrence = this_string.find(charsToReplace);
    while (this_occurrence != std::string::npos)
    {
        this_string.erase(this_occurrence, sizeOfCharsToReplace);
        this_string.insert(this_occurrence, replacementChars);
        this_occurrence = this_string.find(charsToReplace,
            this_occurrence + sizeOfReplacementChars);
    }

    return this_string;
}
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0

here's a solution i rolled, in a maximal DRI spirit. it will search sNeedle in sHaystack and replace it by sReplace, nTimes if non 0, else all the sNeedle occurences. it will not search again in the replaced text.

std::string str_replace(
    std::string sHaystack, std::string sNeedle, std::string sReplace, 
    size_t nTimes=0)
{
    size_t found = 0, pos = 0, c = 0;
    size_t len = sNeedle.size();
    size_t replen = sReplace.size();
    std::string input(sHaystack);

    do {
        found = input.find(sNeedle, pos);
        if (found == std::string::npos) {
            break;
        }
        input.replace(found, len, sReplace);
        pos = found + replen;
        ++c;
    } while(!nTimes || c < nTimes);

    return input;
}
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0

For completeness, here's how to do it with std::regex.

#include <regex>
#include <string>

int main()
{
    const std::string s = "example string";
    const std::string r = std::regex_replace(s, std::regex("x"), "y");
}
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