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I have questions about typecasting. This is just a dummy program shown here. The actual code is too big to be posted.

typedef struct abc
{
    int a;
}abc_t;

main()
{
    abc_t *MY_str;
    char *p;
    MY_str = (abc_t *)p;
 }

Whenever I run the quality analysis check tool, I get a level 2 warning:

Casting to different object pointer type. REFERENCE - ISO:C90-6.3.4 Cast Operators - Semantics <next> Msg(3:3305) Pointer cast to stricter alignment. <next>

Can anyone please tell me how to resolve this issue?

share|improve this question
    
To have any hope of 'resolving' the issue, we have to know what your end-goal is. Without that knowledge, telling you to not cast a char* to a abc_t* is just as good any any other resolution. – Michael Burr Aug 26 '11 at 6:34
    
What's the name of this quality analysis check tool? – Roland Illig Aug 28 '11 at 18:46

Simple - your static analysis tool (which, btw?) has decided that a char* does not have a particular alignment requirement (it could point anywhere in memory) whereas an abc_t* likely has a word alignment requirement (int must be on a 4/8 byte boundary).

In reality, as the char* is on the stack, it will be word aligned on most architectures. Your tool cannot see this.

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@Yann..Can you please make it more clear if u dont mind – maddy Aug 26 '11 at 6:26
1  
The alignment of the char* itself doesn't matter - what matters is the alignment of the pointer's value. And we don't see anything about that in the example code. What will the alignment of p's pointer value be if it's initialized like so: p = strchr(some_string_var, ' '); – Michael Burr Aug 26 '11 at 6:37
2  
Your "in reality..." has no basis. There's no reason to expect the compiler to align char buffers on the stack. OP's code is simply invalid and should use a union, or better yet just use the right type to begin with and only cast to unsigned char * when needed. – R.. Aug 26 '11 at 6:39
    
@Michael..I just tried the p's alignment with p = strchr("maddy",'d'); the adddress of p is bffff6c0 and the address of 'm' of maddy is bffff6b8 – maddy Aug 26 '11 at 6:46
    
@maddy: the address of p doesn't matter - what would matter is that p would have a value of 0xbffff6ba which probably isn't an address with an appropriate alignment for an abc_t structure. – Michael Burr Aug 26 '11 at 7:12

In your implementation (and probably many others) each int must be at an address that is divisible by sizeof int, which is often 4.

On the other hand, a char can be at any address.

It's like assigning 3.25 to an int variable. That's also not possible.

So when you have a bad pointer, you will probably get an exception from your machine, and technically this code invokes undefined behavior.

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a char* can be aligned on any byte boundary, which means if you cast it to a structure, the alignment requirements of that struct might not be met (such as 16 byte boundaries required for SIMD types).

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Your code is invalid C. If you find yourself doing something like this, it's probably the result of a greater misunderstanding. For instance I'm guessing you want to read an abc_t object from a file/socket/etc. and you're used to passing a char pointer to the read/recv/whatever function. Instead you should just declare an object of type abc_t and pass its address to whatever reading function you're using.

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