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I can find some ways to do it but they mostly seem targeted towards c. Doesn't seem there's a native way to do it in c++. Pretty simple problem though, I've got an int which I'd like to convert to a hex string for later printing.

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5 Answers 5

up vote 51 down vote accepted

Use <iomanip>'s std::hex. If you print, just send it to std::cout, if not, then use std::stringstream

std::stringstream stream;
stream << std::hex << your_int;
std::string result( stream.str() );

You can prepend the first << with << "0x" or whatever you like if you wish.

Other manips of interest are std::oct (octal) and std::dec (back to decimal).

One problem you may encounter is the fact that this produces the exact amount of digits needed to represent it. You may use setfill and setw this to circumvent the problem:

stream << std::setfill ('0') << std::setw(sizeof(your_type)*2) 
       << std::hex << your_int;

So finally, I'd suggest such a function:

template< typename T >
std::string int_to_hex( T i )
{
  std::stringstream stream;
  stream << "0x" 
         << std::setfill ('0') << std::setw(sizeof(T)*2) 
         << std::hex << i;
  return stream.str();
}
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sizeof(your_type)*2 is a bit ugly; numeric_limits<your_type>::digits/4 is cleaner. –  MSalters Feb 24 '11 at 8:58
3  
@MSalters - quite on the contrary. Test your suggestion on the int type ;) –  Kornel Kisielewicz Feb 24 '11 at 10:13
    
@Kornel, great answer, but why template it? To support long int? –  Lex Dec 25 '12 at 22:31
1  
@LexFridman, to emit exactly the amount of hex digits as needed. Why emit 8 digits if the type is a uint8_t? –  Kornel Kisielewicz Dec 31 '12 at 5:41
1  
std::showbase will show a 0x prefix... –  quaylar Nov 11 '13 at 15:40

Use std::stringstream to convert integers into strings and its special manipulators to set the base. For example like that:

std::stringstream sstream;
sstream << std::hex << my_integer;
std::string result = sstream.str();
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Just print it as an hexadecimal number:

int i = /* ... */;
std::cout << std::hex << i;
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You can try this. it's working...

#include <iostream>
#include <fstream>
#include <string>
#include <sstream>
using namespace std;

template <class T>
string to_string(T t, ios_base & (*f)(ios_base&))
{
  ostringstream oss;
  oss << f << t;
  return oss.str();
}

int main () 
{
  cout<<to_string<long>(123456, hex)<<endl;  
  system("PAUSE");
  return 0;
}
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a nice answer, but beware that to_string is part of the namespace std in C++11 –  Alex Jun 3 at 9:00
    
@Alex yes, it is 2014 after all... heaven forbid we'll have to start dealing with C++14 soon. –  Alex Jun 22 at 13:53
int num = 30;
std::cout << std::hex << num << endl; // This should give you hexa- decimal of 30
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