175

What is the shortest way, preferably inline-able, to convert an int to a string? Answers using stl and boost will be welcomed.

4

11 Answers 11

403

You can use std::to_string in C++11

int i = 3;
std::string str = std::to_string(i);
2
  • 5
    std::to_string() does not work in MinGW, if anyone cares.
    – Archie
    Nov 9 '15 at 8:55
  • 4
    @bparker Right, it's been fixed in gcc 4.8.0 I guess. MinGW coming with latest Code::Blocks (13.12) still has gcc 4.7.1.
    – Archie
    Dec 2 '15 at 16:24
48
#include <sstream>
#include <string>
const int i = 3;
std::ostringstream s;
s << i;
const std::string i_as_string(s.str());
1
  • This is good to also include techniques for pre-C++11. Can this code also be written as: std::ostringstream().operator<<(i).str()?
    – kevinarpe
    Aug 9 at 13:38
37

boost::lexical_cast<std::string>(yourint) from boost/lexical_cast.hpp

Work's for everything with std::ostream support, but is not as fast as, for example, itoa

It even appears to be faster than stringstream or scanf:

4
  • 15
    Boost is your friend, if there wasn't a simple way of doing this in Standard C++... I of course like what lexical_cast brings, but feel Boost is pretty much overkill for this kind of tasks...
    – rubenvb
    Jan 12 '11 at 13:06
  • 2
    Overkill? Based on what? boost.org/doc/libs/1_53_0/doc/html/boost_lexical_cast/…
    – Catskul
    Jun 3 '13 at 22:34
  • 1
    Should consider your audience if they are unable to use Boost
    – Damian
    Feb 26 '16 at 23:49
  • 5
    "Answers using stl and boost will be welcomed." - Audience considered Oct 8 '17 at 17:45
32

Well, the well known way (before C++11) to do that is using the stream operator :

#include <sstream>

std::ostringstream s;
int i;

s << i;

std::string converted(s.str());

Of course, you can generalize it for any type using a template function ^^

#include <sstream>

template<typename T>
std::string toString(const T& value)
{
    std::ostringstream oss;
    oss << value;
    return oss.str();
}
4
  • 2
    Note: this requires #include <sstream>. Jul 18 '16 at 7:27
  • @TechNyquist: You're right. Not meant to be compilable, but changed !
    – neuro
    Jul 19 '16 at 12:46
  • 1
    So you didn't mean it to be compilable, but actually with the include it is :) Jul 19 '16 at 16:54
  • 1
    @TechNyquist: Yes, with some std:: ;)
    – neuro
    Jul 20 '16 at 9:34
16

If you cannot use std::to_string from C++11, you can write it as it is defined on cppreference.com:

std::string to_string( int value ) Converts a signed decimal integer to a string with the same content as what std::sprintf(buf, "%d", value) would produce for sufficiently large buf.

Implementation

#include <cstdio>
#include <string>
#include <cassert>

std::string to_string( int x ) {
  int length = snprintf( NULL, 0, "%d", x );
  assert( length >= 0 );
  char* buf = new char[length + 1];
  snprintf( buf, length + 1, "%d", x );
  std::string str( buf );
  delete[] buf;
  return str;
}

You can do more with it. Just use "%g" to convert float or double to string, use "%x" to convert int to hex representation, and so on.

14

Non-standard function, but its implemented on most common compilers:

int input = MY_VALUE;
char buffer[100] = {0};
int number_base = 10;
std::string output = itoa(input, buffer, number_base);

Update

C++11 introduced several std::to_string overloads (note that it defaults to base-10).

4
  • 3
    @DevSolar: You should elaborate. The boost example had already been given. This solution is available on most compilers when boost is not installed (or your requirements prohibit you from using it for whatever reason). The ostream works as well, until you need to save the number-string as something other than a binary, octal, or hex format (e.g. base-32). Jan 12 '11 at 13:08
  • 3
    I don't like it when non-standard functions like itoa() or stricmp() are given as the answer to anything.
    – DevSolar
    Jan 12 '11 at 13:23
  • 6
    Sorry to offend your sensibilities, but I did state it was a non-standard function in the first sentence. I didn't mention it, but sprintf can also accomplish the goal of the OP (though still suffers from the lack of flexibility if anything other than the common base numbers is needed). Jan 12 '11 at 14:14
  • 1
    Yes you did state it, and I didn't downvote your answer, even when it itched me to do so. So I think we're even. ;-)
    – DevSolar
    Jan 12 '11 at 16:00
8

The following macro is not quite as compact as a single-use ostringstream or boost::lexical_cast.

But if you need conversion-to-string repeatedly in your code, this macro is more elegant in use than directly handling stringstreams or explicit casting every time.

It is also very versatile, as it converts everything supported by operator<<(), even in combination.

Definition:

#include <sstream>

#define SSTR( x ) dynamic_cast< std::ostringstream & >( \
            ( std::ostringstream() << std::dec << x ) ).str()

Explanation:

The std::dec is a side-effect-free way to make the anonymous ostringstream into a generic ostream so operator<<() function lookup works correctly for all types. (You get into trouble otherwise if the first argument is a pointer type.)

The dynamic_cast returns the type back to ostringstream so you can call str() on it.

Use:

#include <string>

int main()
{
    int i = 42;
    std::string s1 = SSTR( i );

    int x = 23;
    std::string s2 = SSTR( "i: " << i << ", x: " << x );
    return 0;
}
15
  • 1
    @rubenvb: You tell me how to turn this into a template and I'll update all the C++ projects I've been using this construct in.
    – DevSolar
    Jan 12 '11 at 13:25
  • @rubenvb: Sorry, that was not as clear as it should have been. I do not see a way how I could turn this into a template (using C++98) without either losing the ability to daisy-chain outputs (as in my second example), or having to come up with a convoluted mess to handle any number of parameters and parameter types.
    – DevSolar
    Jan 12 '11 at 13:48
  • @DevSolar: wouldn't inline template<class T> std::string SSTR( T x ) { return dynamic_cast< std::ostringstream & >( (std::ostringstream() << std::dec << x) ).str() } do? (Haven't tested, but I do wonder what would go wrong and why?
    – rubenvb
    Jan 12 '11 at 14:20
  • @rubenvb: It would do for an individual int (my first example). But without the ostream visible to the compiler in main (as it is hidden within the template function), it will try to look up operator<<() for const char [] in my second example - which will croak. I know the OP asked only for an int, but this more generic macro is so useful (and actually quite widespread) that I thought I'd include it here.
    – DevSolar
    Jan 12 '11 at 15:59
  • For the versatility I prefer a template function. For the daisy-chain perhaps that can be handled in the same function with a bit of RTTI ...
    – neuro
    Jan 12 '11 at 16:02
2

You can use this function to convert int to std::string after including <sstream>:

#include <sstream>

string IntToString (int a)
{
    stringstream temp;
    temp<<a;
    return temp.str();
}
0

You might include the implementation of itoa in your project.
Here's itoa modified to work with std::string: http://www.strudel.org.uk/itoa/

-2
#include <string>
#include <stdlib.h>

Here, is another easy way to convert int to string

int n = random(65,90);
std::string str1=(__String::createWithFormat("%c",n)->getCString());

you may visit this link for more methods https://www.geeksforgeeks.org/what-is-the-best-way-in-c-to-convert-a-number-to-a-string/

1
  • must include following to use this methodheader files #include <string> #include <stdlib.h> Jan 5 '19 at 11:09
-3

Suppose I have integer = 0123456789101112. Now, this integer can be converted into a string by the stringstream class.

Here is the code in C++:

   #include <bits/stdc++.h>
   using namespace std;
   int main()
   {
      int n,i;
      string s;
      stringstream st;
      for(i=0;i<=12;i++)
      {
        st<<i;
      }
      s=st.str();
      cout<<s<<endl;
      return 0;

    }
2
  • were not similar but more complete answers already given many years ago?
    – Walter
    May 13 '16 at 21:41
  • Yeah, but this answer is perfect i think as i didn't get any effective answer from previous.
    – Shawon
    May 14 '16 at 6:33

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