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I have a typedeffed struct and an union. The union contains the struct and a single uint32_t. The goal is to assign a value to foo that corresponds to the 'bits' in the struct.

#include <stdio.h>
#include <stdlib.h>
#include <stdint.h>

typedef struct {
    uint32_t valA :1;
    uint32_t valB :1;
    uint32_t valC :1;
    uint32_t valD :1;
    uint32_t valE :1;
} ValStruct_Type;

typedef union {
    ValStruct_Type valStruct;
    uint32_t valUint;
} ValUnion_Type;

uint32_t foo = 0;

int main(void)
    ValStruct_Type Vals;
    Vals.valA = 0x0;
    Vals.valB = 0x1;
    Vals.valC = 0x0;
    Vals.valD = 0x1;
    Vals.valE = 0x1;

    ValStruct_Type *Vals_ptr;
    Vals_ptr = &Vals;

    foo = ((ValUnion_Type *)Vals_ptr)->valUint;

    return 0;

foo becomes:

Decimal:    4194330
Hex:        0x40001a
Binary:     10000000000000000011010

Who can explain what is happening here exactly (union pointer to a struct pointer, defererenced to a union member?)?

Secondly: why is bit 22 of foo set in addition to bit 1,3 and 4?

share|improve this question
Try memseting Vals to zero before assigning to it. – D.Shawley Aug 8 '13 at 11:00
The ValStructType defines a 5 bit field which you set to 11010. The valUint is a 32 bit field. The Union will assign enough storage for the larger of the two but does not initialise that storage. So you never initialised ->valUint and I guess the 1 in the most sig bit is just garbage. The most significant 27 bits will not be initialised by your code. – David Elliman Aug 8 '13 at 11:08

2 Answers 2

up vote 2 down vote accepted

Bit 22 is set due to undefined behavior. You've created a local variable that you never fully initialized, and you then set 5 bits of it. The remaining bits are whatever they happen to be, which is the case with uninitialized locals.

Regarding the first part of your question... what isn't clear? Your question (union pointer to a struct pointer, defererenced to a union member) seems to answer itself. Casting something to the type it already is doesn't have any effect.

share|improve this answer
Thanks for that. It has indeed to do with the local variable being unitialzed. Is there a better way than using memset to initialize it to 0? – wlamers Aug 8 '13 at 11:19
@wlamers ValStruct_Type Vals = {0}; – Lundin Aug 8 '13 at 11:21
Indeed seems to do the trick also on GCC. I expected that would only set the first bitfiled to 0, but it actually sets the whole memory space to 0. – wlamers Aug 8 '13 at 11:25

When you define a union you instruct the compiler to reserve enough memory for any instances that can fit either of it's members.

When you typedef a bitfield it is padded to some byte size (normally 4 or 8 bytes, but could be 1 byte in your small case).

Since you only allocated enough memory for your struct (check with sizeof(ValStruct_Type)) and then cast it to a union taking up more memory you got undefined behaviour.

Whatever filled up that part of your stack was copied into foo.

What you approximately did equals to

char a = 0x1a;
int foo = *(int *)&a;

To get the correct behaviour you need to

  • allocate the union
  • initialise it
  • then start setting your bitfield.
share|improve this answer
I see no reason to believe sizeof(ValStruct_Type) > sizeof(ValUnion_Type) in this case, since depending on the compiler, sizeof(ValStruct_Type) is either equal to sizeof(uint32_t) or equal to 5*sizeof(uint32_t), and overlaying a single uint_t on top of that isn't any larger. – mah Aug 8 '13 at 11:06
No, most likely (but double check it please) sizeof(ValStruct_Type) = 1 < sizeof(ValUnion_Type) = 4. The whole point of bitfields is to pack those bits as compact as possible. 5 bits can be packed into one byte. – Sergey L. Aug 8 '13 at 11:07
On my compiler, sizeof(ValStruct_Type) == 4: gcc version 4.7.2 20120921 (Red Hat 4.7.2-2) (GCC) letting my initial assertion stand. – mah Aug 8 '13 at 11:12
I stand corrected. In this case - initialise your struct before filling the bitfields. memset(&Vals, 0, sizeof(Vals)) and you will get the expected behaviour. – Sergey L. Aug 8 '13 at 11:14
Thanks for the tip. Both the size of the struct and union appear to be 4. You mention to allocate memory for some union and initialize it. But I do not have a union variable at all. I only use a cast to a declared (not defined) union. Can you explain in more detail what you mean? – wlamers Aug 8 '13 at 11:21

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