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say if I have two structure types:

typedef struct
{
   unsigned int * a;
   char * b;
   char * c;
}TYPEA;

typedef struct
{
   unsigned int * a;
   unsigned int * b;
}TYPEB;

And I also have a pointer array, which contains pointer pointing to TYPEA types:

TYPEA* AArray[1] =
{
   &ga,
};

ga is defined as:

TYPEA ga =
{
   &num1,
   &b,
   &c,
};

If I have another TYPEA var defined, I can modify AArray[0]'s content's value, like this:

TYPEA another_ga =
{
   &num3,
   &b,
   &c,
};

void change_AArray()
{
   *AArray[0] = another_ga;
}

This works perfectly good, but the question is, as TYPEA and TYPEB's first 32bits are same(Both are unsigned int) is it possible for me to change AArray's ga's content to a TYPEB structure?

Here are my attempts:

void change_AArray()
{
   /* *AArray[0] = another_ga; */

   /* Compile Error */
   /* *AArray[0] = gb; */

   /* Compile Error */
   /* *AArray[0] = (TYPEA)gb; */

   /* Passed compile, but AArray[0] is not changed */
   /* AArray[0] = (TYPEA*)&gb; */
}

I then tried to add another pointer and put it in AArray[0] instead of using &ga, but it can't pass compile stage, I think C is requiring a constant in the initialize list.

TYPEA * pga = &ga;
TYPEA* AArray[1] =
{
   pga, // error, needs a constant expression.
};
void change_AArray()
{
   AArray[0] = (TYPEA*)&gb;
}

Is it possible to do the type conversion?

The entire code:

#include <stdio.h>

typedef struct
{
   unsigned int * a;
   char * b;
   char * c;
}TYPEA;

typedef struct
{
   unsigned int * a;
   unsigned int * b;
}TYPEB;

int num1 = 10, num2 = 20, num3 = 30;
char b = 'b', c = 'c';

TYPEA ga =
{
   &num1,
   &b,
   &c,
};

TYPEA another_ga =
{
   &num3,
   &b,
   &c,
};

TYPEB gb =
{
   &num2,
   &num3,
};

TYPEA* AArray[1] =
{
   &ga,
};

void change_AArray()
{
   *AArray[0] = another_ga;
   /* How can I do this conversion? */
   /* *AArray[0] = gb; */
}

int main(int argc, const char *argv[])
{
   printf("ga.a: %d\n", *ga.a);
   printf("gb.b: %d\n", *gb.a);

   change_AArray();

   printf("After calling change_AArray()\n");
   printf("ga.a: %d\n", *ga.a);
   printf("gb.b: %d\n", *gb.a);

   return 0;
}
share|improve this question

3 Answers 3

up vote 1 down vote accepted
void change_AArray()
{   
   *AArray[0] = *((TYPEA*) &gb);  //#1
   /* error:
   *(AArray[0]) = (TYPEA) gb;     //#2
   */
}

You can use #1 for your purpose.

If use #2, gcc gives me an error:
error: conversion to non-scalar type requested

Questions are:
- What's scalar/non-scalar type?
- What does this error message mean?
- Why #2 fails?

What's scalar/non-scalar type?
int, char, pointers are scalar type, and a structure is not.
See details here,http://herbert.the-little-red-haired-girl.org/en/prgmsc1/docs/part2a.pdf

What does this error message mean?
If you do assignment between scalar and non-scalar type, you'll get this error.

Why #2 fails?
For *(AArray[0]) = (TYPEA) gb;, both sides are non-scalar types. So, it looks like it shouldn't get the above error.
However, C doesn't allow cast between structures. See http://msdn.microsoft.com/en-us/library/d9f2bsy2.aspx.

A test program,

struct a{ int i;};
struct b{ int i; };

int main (int argc, char *argv[])
{
    struct a aaa;
    struct b bbb;
    bbb = (struct b)aaa;

    return 0;
}

gcc reports an error: error: conversion to non-scalar type requested

So to conclude, the reason for failure of #2 is that C language doesn't allow cast between structures.

share|improve this answer

Well, you can use union

union UNION_AB {
  TYPEA a;
  TYPEB b;
};

UNION_AB* UARRAY[1] = { &ua };
share|improve this answer
1  
This will work if you only ever access the first field (UARRAY[0]->a.a or equivalently UARRAY[0]->b.a), since unions of structs do have defined behavior if those structs have compatible members, but once you go past those, you enter Undefined Behavior land. –  Adam Rosenfield Oct 10 '13 at 3:41
    
Not only then; if the code always accesses the structure that is in the union at that time, it is defined behaviour. –  Adrian Panasiuk Oct 10 '13 at 11:14

You can't cast two different types of struct directly, you have to assign the fields like this:

(*AArray[0]).a = gb.a;
share|improve this answer
    
I think I can if AArray[0] is a lvalue, but seems like initialize lists can't have lvalues inside. –  shengy Oct 10 '13 at 3:20
1  
@shengy Basically what you are trying to do is struct foo a = struct bar b. Well, you can't do that directly or through a pointer. –  Yu Hao Oct 10 '13 at 3:24

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