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I'm in an introductory course and I am curious about casting with pointers.

What would be the difference between:

*(uint32_t*)(p) 
(uint32_t)(*p)

p is a pointer.

6
*(uint32_t*)(p)

Extracts 32 unsigned bits at the memory location.

(uint32_t)(*p)

Extracts p from the memory location in its native type, and cast that type to a 32 bit unsigned int.

The results will probably be most notable if p is a floating point type. When extracted the first way you can see the resulting bitwise format of a floating point number (sign|mantissa|exponent). When extracted the second way the number is converted to an integer, probably via some form of truncation.

Here's a fun example program:

main(){
    float x = 1.25, *xp = &x;
    uint32_t x1 = (uint32_t)(*xp);
    uint32_t x2 = *(uint32_t *)(xp);
    printf("x1 = %x\nx2 = %x\n",x1,x2);
}

and the output:

x1 = 1
x2 = 3fa00000
  • +1 for explaining WHY it makes a difference which way you do it. – Jerry Jeremiah Apr 7 '14 at 22:06
  • Another important difference is that the first can crash if p doesn't point to at least 4 bytes of memory (it could point to the last byte of a page which is not followed by another mapped page), or if p isn't correctly aligned for a 32-bit read (x86 typically doesn't care, other processors are not always so forgiving). – Andrew Medico Apr 7 '14 at 22:07
  • The version interpreting the raw bits as an integer violates the strict aliasing rule, resulting in undefined behaviour. – EOF Apr 7 '14 at 22:12
  • This doesn't violate strict aliasing. The only lvalues here are x,x1, and x2. Unless I am mistaken, they all point to different memory locations. We would be violating strict aliasing if we kept the result of (uint32_t *)(xp) in its own lvaulue, but that temporary is handily discarded. – Steve Cox Apr 7 '14 at 22:20
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In former, first you are casting p to uint32_t* and then dereferencing it.
In latter, first you are dereferencing p and then casting it to uint32_t.

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