52
#include <iostream>

using namespace std;

int main()
{  
    char          c1 = 0xab;
    signed char   c2 = 0xcd;
    unsigned char c3 = 0xef;

    cout << hex;
    cout << c1 << endl;
    cout << c2 << endl;
    cout << c3 << endl;
}

I expected the output are as follows:

ab
cd
ef

Yet, I got nothing.

I guess this is because cout always treats 'char', 'signed char', and 'unsigned char' as characters rather than 8-bit integers. However, 'char', 'signed char', and 'unsigned char' are all integral types.

So my question is: How to output a character as an integer through cout?

PS: static_cast(...) is ugly and needs more work to trim extra bits.

  • afaik, casting is the most effective way... (e.g. static_cast<int>()) – Nim Feb 1 '13 at 10:55
  • casting it to int? – Kiril Kirov Feb 1 '13 at 10:55
  • 1
    btw. the only reason you need to resort to "trimming" is that you are clearly not using the types correctly (the first two clearly overflows) and this is what you get as a result. If you always used the correct type, then the cast is simply, static_cast<unsigned>(...)... – Nim Feb 1 '13 at 11:10
  • 1
    There is also the option of cout << +c1; – PlasmaHH Feb 1 '13 at 11:23
  • @Nim where do you see any overflow? There's even no arithmetic going here, the values assigned are just 0xffffffab and 0xffffffcd on systems with 32 bit two's complement ints, and are then casted to smaller chars, which fit them perfectly due to the nature of two's complement representation. – Ruslan Jul 24 '15 at 7:27
97
char a = 0xab;
cout << +a; // promotes a to a type printable as a number, regardless of type.

This works as long as the type provides a unary + operator with ordinary semantics. If you are defining a class that represents a number, to provide a unary + operator with canonical semantics, create an operator+() that simply returns *this either by value or by reference-to-const.

source: Parashift.com - How can I print a char as a number? How can I print a char* so the output shows the pointer's numeric value?

  • 1
    Working link: cs.technion.ac.il/users/yechiel/c++-faq/… – GetFree May 11 '17 at 8:58
  • 1
    This is rather obfuscated. A simple static_cast as in sheu's answer clearly conveys the intend. – sigy Jun 29 '17 at 6:52
  • why is this the most upvoted answer. it is so much more obscure that a simple cast eg: (int) – deltanine Mar 21 '18 at 22:32
  • Yes, it is obscure, but is very useful in generic code. – Evg Aug 24 '18 at 7:01
  • This is cool, but I'm not convinced it's good. – Apollys supports Monica Aug 28 at 22:50
9

Cast them to an integer type, (and bitmask appropriately!) i.e.:

#include <iostream>

using namespace std;

int main()
{  
    char          c1 = 0xab;
    signed char   c2 = 0xcd;
    unsigned char c3 = 0xef;

    cout << hex;
    cout << (static_cast<int>(c1) & 0xFF) << endl;
    cout << (static_cast<int>(c2) & 0xFF) << endl;
    cout << (static_cast<unsigned int>(c3) & 0xFF) << endl;
}
  • 2
    And the output of c1 and c2 is ffffffab and ffffffcd, which is not what the OP expected. – Mr.C64 Feb 1 '13 at 10:58
  • @Mr.C64 Good point. Edited, thanks. – sheu Feb 1 '13 at 11:01
  • However, 'char', 'signed char', and 'unsigned char' are all integral types. static_cast(...) is ugly and needs more work to trim extra bits. – xmllmx Feb 1 '13 at 11:09
  • @xmllmx: ostream also has overloads that print the char types as their character representations -- not what the poster wants, – sheu Feb 1 '13 at 11:12
6

Maybe this:

char c = 0xab;
std::cout << (int)c;

Hope it helps.

0

Another way to do it is with std::hex apart from casting (int):

std::cout << std::hex << (int)myVar << std::endl;

I hope it helps.

0

What about:

char c1 = 0xab;
std::cout << int{ c1 } << std::endl;

It's concise and safe, and produces the same machine code as other methods.

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