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I wrote the following code:

 #include <iostream>
 #include <iomanip>
 #include <stdint.h>

 using namespace std;

 int main()
 {
     uint8_t c;

     cin  >> hex >> c;
     cout << dec << c;

     return 0;
 }

But when I input c—hex for 12—the output is also c. I was expecting 12. Later I learned that:

uint8_t is usually a typedef for unsigned char. So it's actually reading c as ASCII 0x63.

Is there a 1 byte integer which behaves as an integer while doing I/O and not as char?

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1  
No there isn't, which is a shame –  user1773602 Dec 10 '12 at 16:12

2 Answers 2

Not that I know of.

You could do the I/O using a wider integer type, and use range checking and casting as appropriate.

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I'm afraid I don't know of a way either, but reading a hex number into an integer type can be accomplished as follows:

#include <iostream>
using namespace std;

int main () {
    short c;
    cin >> std::hex >> c;
    cout << c << endl;
    return 0;
}
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