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I know how to cause it to be in hex:

unsigned char myNum = 0xA7;
clog << "Output: " std::hex << int(myNum) << endl;
// Gives:
//   Output: A7

Now I want it to always print a leading zero if myNum only requires one digit:

unsigned char myNum = 0x8;
// Pretend std::hex takes an argument to specify number of digits.
clog << "Output: " << std::hex(2) << int(myNum) << endl;
// Desired:
//   Output: 08

So how can I actually do this?

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You do realize that anyone trying to read your hex numbers back in will see them as octal numbers? Just asking.:-) –  Bo Persson Feb 27 '11 at 10:01
True, but this is for human consumption, not computer consumption. –  WilliamKF Feb 27 '11 at 17:09

5 Answers 5

up vote 11 down vote accepted

It's not as clean as I'd like, but you can change the "fill" character to a '0' to do the job:

your_stream << std::setw(2) << std::hex << std::setfill('0') << x;

Note, however, that the character you set for the fill is "sticky", so it'll stay '0' after doing this until you restore it to a space with something like your_stream << std::setfill(' ');.

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This works:

#include <iostream>
#include <iomanip>
using namespace std;

int main() {
  int x = 0x23;
  cout << "output: " << setfill('0') << setw(3) << hex << x << endl;

output: 023

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glog << "Output: " << std::setfill('0') << std::hex(2) << int(myNum) << endl;

See also:

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Take a look at the setfill and setw manipulators in <iomanip>

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It is a little bit dirty, but a macro did a good job for me:

#define fhex(_v) std::setw(_v) << std::hex << std::setfill('0')

So then you can do it:

#include <iomanip>
#include <iostream>
int value = 0x12345;
cout << "My Hex Value = 0x" << fhex(8) << value << endl;

The output:

My Hex Value = 0x00012345

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