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Given the following snippet of code:

int *iptr;
float *fptr;
float fval;
fval = 0.0;
fptr = &fval;
iptr = fptr;
printf("%d \n", *iptr);
fval = 1.0;
printf("%d \n", *iptr);

The output is:

0
1065353216

Why does the first print statement at least approximately match the value associated with *iptr (0.0), yet the second print statement doesn't?

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Try printf("%d", fval); – Don't You Worry Child Apr 11 '14 at 8:18
4  
Read up on the representation of float. Then you will understand. – RedX Apr 11 '14 at 8:19
1  
A good beginner's reference for floating-point representation can be found here: floating-point-gui.de. – Richard J. Ross III Apr 11 '14 at 8:20
up vote 12 down vote accepted

When you write printf("%d \n", *iptr);, you are asking printf to interpret the value pointed to by iptr as an integer.

It just so happens that float version of 0 is represented by the same bits of the int version of 0. In particular, the bits are all 0.

However, an arbitrary float, such as 1.0 will have a different bit representation (as defined by IEEE Standards) which will make little sense when interpreted as an int.

This Wikipedia article explains how a float is represented as bits.

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+1 Good explanation! – Rahul Tripathi Apr 11 '14 at 8:23
    
@merlin2011: is strict aliasing not an issue here? (e.g., here: stackoverflow.com/questions/98650/…, "So basically if you have an int* and a float* they are not allowed to point to the same memory location. If your code does not respect this, then the compiler's optimizer will most likely break your code." – user2793162 Apr 11 '14 at 8:51
    
@dmcr_code It definitely is. That's why I added my own answer. – ajay Apr 11 '14 at 8:58
1  
@ajay: Yes, I think it has to be mentioned; (unfortunately) C has many "nasty" details which one needs to know(I myself got acquainted with some of them recently, like this one, or signed/unsigned mixing, etc.) – user2793162 Apr 11 '14 at 9:02
    
@dmcr_code Writing safe, standards compliant C code is far from a trivial task and requires serious effort. I myself am learning it the hard way. – ajay Apr 11 '14 at 9:11

@merlin has explained the output of your code very nicely and clearly. However, there's more to it so I will add it here. Your code violates the strict aliasing rule and invokes undefined behaviour. Strict aliasing rule means different pointer types should not point to the same memory location.

iptr = fptr;

iptr is of type int * and fptr is of type float *. This statement assigns fptr to iptr - a different type - which means both now point to fval. This breaks the strict aliasing rule. This causes undefined behaviour which means unpredictable behaviour. The standard imposes no requirements on the implementation to deal which such cases. In short, you should avoid code which causes undefined behaviour.

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Its an undefined behavior: iptr = fptr;. You cannot print a float as an int, floats are stored in IEEE754 format

You need to try this:

printf("%d", fval);
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1  
+1, I pedantically removed the - after the colon. – Bathsheba Apr 11 '14 at 8:20

The statement iptr = fptr; will invoke undefined behaviour.

There is not much point in speculating about the outcome therefore.

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Why is it Undefined Behavior – Don't You Worry Child Apr 11 '14 at 8:19
1  
Because you're effectively doing a cast to an unrelated pointer type. – Bathsheba Apr 11 '14 at 8:20
    
@Bathsheba can you quote the relevant portion from the standard please, which explains this? – ajay Apr 11 '14 at 8:21
    
I'm in a coffee shop so can't. But it's rather like doing (int*)(void*)(float*)&fval which, we all know is UB. – Bathsheba Apr 11 '14 at 8:23

A zero floating point number consists of zeroes. Any other number is not just the number but an exponent and a mantissa - of course neither of them is just your number.

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Floats are stored in IEEE754 format, in which the value of a number such as 1.0 is quite different to 1 (it is offset to allow for negative numbers and exponents). You cannot print a float as an int and have the result resemble the number assigned to the float.

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