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I want to work with unsigned 8-bit variables in C++. Either unsigned char or uint8_t do the trick as far as the arithmetic is concerned (which is expected, since AFAIK uint8_t is just an alias for unsigned char, or so the debugger presents it.

The problem is that if I print out the variables using ostream in C++ it treats it as char. If I have:

unsigned char a = 0;
unsigned char b = 0xff;
cout << "a is " << hex << a <<"; b is " << hex << b << endl;

then the output is:

a is ^@; b is 377

instead of

a is 0; b is ff

I tried using uint8_t, but as I mentioned before, that's typedef'ed to unsigned char, so it does the same. How can I print my variables correctly?

Edit: I do this in many places throughout my code. Is there any way I can do this without casting to int each time I want to print?

share|improve this question
    
I think MartinStettner's answer is rather confusing, I don't think it is worth to implement an extra struct and an extra stream operator. anon's solution is straight forward and works good enough for me. –  tdihp Sep 28 '12 at 8:38

10 Answers 10

up vote 34 down vote accepted

I would suggest using the following technique:

struct HexCharStruct
{
  unsigned char c;
  HexCharStruct(unsigned char _c) : c(_c) { }
};

inline std::ostream& operator<<(std::ostream& o, const HexCharStruct& hs)
{
  return (o << std::hex << (int)hs.c);
}

inline HexCharStruct hex(unsigned char _c)
{
  return HexCharStruct(_c);
}

int main()
{
  char a = 131;
  std::cout << hex(a) << std::endl;
}

It's short to write, has the same efficiency as the original solution and it lets you choose to use the "original" character output. And it's type-safe (not using "evil" macros :-))

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5  
As long as we're eschewing macros: in order to be more fully C++, shouldn't you write (int)hs.c as static_cast<int>(hs.c)? :P –  Seth Johnson Jul 8 '09 at 11:10
10  
There is a slight bug in your code. If you feed a negative character in the code the hex value becomes 4 bytes instead of 2. Switching to unsigned char fixes the problem. –  witkamp Feb 22 '10 at 22:47
6  
Another bug(?) is that the above operator<< changes the mode of the given stream to hexadecimal: cout << hex(a) << 100 will give you a surprise. You should store the state of the stream before modifying it, and restore it later. –  musiphil Jun 19 '12 at 20:23

Use:

cout << "a is " << hex << (int) a <<"; b is " << hex << (int) b << endl;

And if you want padding with leading zeros then:

#include <iomanip>
...
cout << "a is " << setw(2) << setfill('0') << hex << (int) a ;

As we are using C-style casts, why not go the whole hog with terminal C++ badness and use a macro!

#define HEX( x )
   setw(2) << setfill('0') << hex << (int)( x )

you can then say

cout << "a is " << HEX( a );

Edit: Having said that, MartinStettner's solution is much nicer!

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2  
Can I convince you to eschew the evil C-style casts once and for all? stackoverflow.com/questions/527999/… –  Konrad Rudolph Mar 23 '09 at 12:54
    
Not in this case - it's about the only place I think they are justified. –  anon Mar 23 '09 at 12:57
    
I would do it the same, except to avoid the cast I would use cout << hex << int(a); It means the same thing as a cast, without the cast. :) –  Brian Neal Mar 23 '09 at 14:35

I'd do it like MartinStettner but add an extra parameter for number of digits:

inline HexStruct hex(long n, int w=2)
{
  return HexStruct(n, w);
}
// Rest of implementation is left as an exercise for the reader

So you have two digits by default but can set four, eight, or whatever if you want to.

eg.

int main()
{
  short a = 3142;
  std:cout << hex(a,4) << std::endl;
}

It may seem like overkill but as Bjarne said: "libraries should be easy to use, not easy to write".

share|improve this answer

Hm, it seems I re-invented the wheel yesterday... But hey, at least it's a generic wheel this time :) chars are printed with two hex digits, shorts with 4 hex digits and so on.

template<typename T>
struct hex_t
{
    T x;
};

template<typename T>
hex_t<T> hex(T x)
{
    hex_t<T> h = {x};
    return h;
}

template<typename T>
std::ostream& operator<<(std::ostream& os, hex_t<T> h)
{
    char buffer[2 * sizeof(T)];
    for (auto i = sizeof buffer; i--; )
    {
        buffer[i] = "0123456789ABCDEF"[h.x & 15];
        h.x >>= 4;
    }
    os.write(buffer, sizeof buffer);
    return os;
}
share|improve this answer
    
I like it. Succinct. No redundant info required. I'd love a bool to indicate whether upper or lowercase is desired. Or honour the std::uppercase and std::nouppercase manipulators (which manipulate the std::ios_base::flags::uppercase iosflag) –  sehe Sep 4 '13 at 10:47

I would suggest:

std::cout << setbase(16) << 32;

Taken from: http://www.cprogramming.com/tutorial/iomanip.html

share|improve this answer

You can try the following code:

unsigned char a = 0;
unsigned char b = 0xff;
cout << hex << "a is " << int(a) << "; b is " << int(b) << endl;
cout << hex
     <<   "a is " << setfill('0') << setw(2) << int(a)
     << "; b is " << setfill('0') << setw(2) << int(b)
     << endl;
cout << hex << uppercase
     <<   "a is " << setfill('0') << setw(2) << int(a)
     << "; b is " << setfill('0') << setw(2) << int(b)
     << endl;

Output:

a is 0; b is ff

a is 00; b is ff

a is 00; b is FF

share|improve this answer
    
While this does solve the problem, one of my requirements was not to have to cast to int whenever I want to do this, since this appears too many times in the code. –  Nathan Fellman May 7 '12 at 6:50

I think TrungTN and anon's answer is okay, but MartinStettner's way of implementing the hex() function is not really simple, and too dark, considering hex << (int)mychar is already a workaround.

here is my solution to make "<<" operator easier:

#include <sstream>
#include <iomanip>

string uchar2hex(unsigned char inchar)
{
  ostringstream oss (ostringstream::out);
  oss << setw(2) << setfill('0') << hex << (int)(inchar);
  return oss.str();
}

int main()
{
  unsigned char a = 131;
  std::cout << uchar2hex(a) << std::endl;
}

It's just not worthy implementing a stream operator :-)

share|improve this answer

This will also work:

std::ostream& operator<< (std::ostream& o, unsigned char c)
{
    return o<<(int)c;
}

int main()
{
    unsigned char a = 06;
    unsigned char b = 0xff;
    std::cout << "a is " << std::hex << a <<"; b is " << std::hex << b << std::endl;
    return 0;
}
share|improve this answer
    
But then he has to use casts if he actually wants them output as chars, which seems a little unnatural! –  anon Mar 23 '09 at 13:13

I'd like to post my re-re-inventing version based on @FredOverflow's. I made the following modifications.

fix:

  • Rhs of operator<< should be of const reference type. In @FredOverflow's code, h.x >>= 4 changes output h, which is surprisingly not compatible with standard library, and type T is requared to be copy-constructable.
  • Assume only CHAR_BITS is a multiple of 4. @FredOverflow's code assumes char is 8-bits, which is not always true, in some implementations on DSPs, particularly, it is not uncommon that char is 16-bits, 24-bits, 32-bits, etc.

improve:

  • Support all other standard library manipulators available for integral types, e.g. std::uppercase. Because format output is used in _print_byte, standard library manipulators are still available.
  • Add hex_sep to print separate bytes (note that in C/C++ a 'byte' is by definition a storage unit with the size of char). Add a template parameter Sep and instantiate _Hex<T, false> and _Hex<T, true> in hex and hex_sep respectively.
  • Avoid binary code bloat. Function _print_byte is extracted out of operator<<, with a function parameter size, to avoid instantiation for different Size.

More on binary code bloat:

As mentioned in improvement 3, no matter how extensively hex and hex_sep is used, only two copies of (nearly) duplicated function will exits in binary code: _print_byte<true> and _print_byte<false>. And you might realized that this duplication can also be eliminated using exactly the same approach: add a function parameter sep. Yes, but if doing so, a runtime if(sep) is needed. I want a common library utility which may be used extensively in the program, thus I compromised on the duplication rather than runtime overhead. I achieved this by using compile-time if: C++11 std::conditional, the overhead of function call can hopefully be optimized away by inline.

hex_print.h:

namespace Hex
{
typedef unsigned char Byte;

template <typename T, bool Sep> struct _Hex
{
    _Hex(const T& t) : val(t)
    {}
    const T& val;
};

template <typename T, bool Sep>
std::ostream& operator<<(std::ostream& os, const _Hex<T, Sep>& h);
}

template <typename T>  Hex::_Hex<T, false> hex(const T& x)
{ return Hex::_Hex<T, false>(x); }

template <typename T>  Hex::_Hex<T, true> hex_sep(const T& x)
{ return Hex::_Hex<T, true>(x); }

#include "misc.tcc"

hex_print.tcc:

namespace Hex
{

struct Put_space {
    static inline void run(std::ostream& os) { os << ' '; }
};
struct No_op {
    static inline void run(std::ostream& os) {}
};

#if (CHAR_BIT & 3) // can use C++11 static_assert, but no real advantage here
#error "hex print utility need CHAR_BIT to be a multiple of 4"
#endif
static const size_t width = CHAR_BIT >> 2;

template <bool Sep>
std::ostream& _print_byte(std::ostream& os, const void* ptr, const size_t size)
{
    using namespace std;

    auto pbyte = reinterpret_cast<const Byte*>(ptr);

    os << hex << setfill('0');
    for (int i = size; --i >= 0; )
    {
        os << setw(width) << static_cast<short>(pbyte[i]);
        conditional<Sep, Put_space, No_op>::type::run(os);
    }
    return os << setfill(' ') << dec;
}

template <typename T, bool Sep>
inline std::ostream& operator<<(std::ostream& os, const _Hex<T, Sep>& h)
{
    return _print_byte<Sep>(os, &h.val, sizeof(T));
}

}

test:

struct { int x; } output = {0xdeadbeef};
cout << hex_sep(output) << std::uppercase << hex(output) << endl;

output:

de ad be ef DEADBEEF

share|improve this answer

I have used in this way.

    char strInput[] = "yourchardata";
char chHex[2] = "";

int nLength = strlen(strInput);
char* chResut = new char[(nLength*2) + 1];
memset(chResut, 0, (nLength*2) + 1);



for (int i = 0; i < nLength; i++)
{
    sprintf(chHex, "%02X", strInput[i]& 0x00FF);    
    memcpy(&(chResut[i*2]), chHex, 2);
}

printf("\n%s",chResut);
delete chResut;
chResut = NULL;
share|improve this answer
    
This is a question about C++ and std::ostream not about C and printf. :) –  daminetreg Jul 7 at 9:57

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