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I have this simple program

#include <stdio.h>
int main(void)
{
 unsigned int a = 0x120;
 float b = 1.2;
 printf("%X %X\n", b, a);
 return 0;
}

I expected the output to be

some-value 120  (some-value will depend on the bit pattern of `float b` )

But I see

40000000 3FF33333

Why is the value of a getting screwed up? %X treats its arguments as signed int and hence it should have retrieved 4 bytes from the stack and printed the calue of b and then fetching the next 4 bytes print the value of a which is 0x120

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Don't lie to printf() and the like. Ever. If you promise it to give an int, give it an int or a short or a char. If you promise to give it a long, give it a long. Ditto for long long. If you promise to give it a floating-point value, give it a float or a double. If you promise it a long floating point value, give it a long double. –  Alexey Frunze May 3 '12 at 18:11

2 Answers 2

up vote 8 down vote accepted

Firstly, it's undefined behaviour to pass arguments to printf not matching the format specifiers.

Secondly, the float is promoted to double when passed to printf, so it's eight bytes instead of four. Which bytes get interpreted as the two unsigned values expected by the printf format depends on the order in which the arguments are pushed.

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Why the automatic promotion to double when I've clearly defined it to be float? –  xeek May 3 '12 at 18:08
1  
@Stacker That's just the way varargs work. Floating-point types smaller than double get promoted to double. Integer types smaller than int get promoted to int. –  Mysticial May 3 '12 at 18:08
    
@Stacker: that's how floats work in C. float vs. double is only a storage declaration. Floating point values are "always" handled as doubles in computations. –  wallyk May 3 '12 at 18:08
3  
@wallyk: floats are not always handled as doubles in computations. However, they are always promoted to doubles when passed as arguments to a varargs function (this is one of the default argument promotions) –  Stephen Canon May 3 '12 at 18:18
1  
@Stacker: yes, it's undefined behavior; what actually happens will be dependent on the parameter passing conventions of the target platform, and you will see different behavior on different platforms. –  Stephen Canon May 3 '12 at 18:21

If you want to see the bits of a stored float, use a union:

 float b = 1.2;
 union {
      float  f;
      int    i;
 } u;
 u.f = b;

 printf ("%x\n", u.i);

results (32-bit x86):

3f99999a
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