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Not sure if the title is suggestive enough but here's what I'm trying to do.

Let's say I have some code that I won't touch, basically let's say a function that fills in a structure.

Now that structure is defined somewhere else and I found it easy not to drag the whole thing into the project and just copying the struct definition would be an overkill.

So I defined a new struct with only the relevant fields and I'm trying to send it to the function so that it would be filled up with the relevant fields.

typedef struct {
 ......
} mytype;

The function header:

int function_header (struct type1 *p, ....);

Keep in mind struct type1 is not defined anywhere. Is there a way to abuse the preprocessor to get something like?

#define (struct type1) mytype

One solution would be I guess

#define type1 mytype
#define struct
int function_header (struct type1 *p, ....) {    
#undef struct

..............
}

But seems a bit retarded

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1  
"I defined a new struct with only the relevant fields" Are you trying to treat this struct as if it was the other struct? If so, that will not work. –  James McNellis Aug 10 '11 at 23:43
    
The issue is not what happens in the function. The issue is replacing struct type1 with mytype. –  celleritas Aug 10 '11 at 23:51

5 Answers 5

Why do you want to rename it? Just define

struct type1 {
    ...
};

in your own source file, and you're all set to go a-footshooting. (And remember, feet will be hurt unless you're 100% sure that your own definition leads to exactly the same in-memory layout as the one expected by the library).

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Won't work. I can't touch the function header, and I can't touch the struct definition. I'm trying to meld them together, it's messed up but this is what I need. I'm 110% sure about what happens in the function :) –  celleritas Aug 10 '11 at 23:49
    
@celleritas - You don't need to touch the struct definition, you just ought to use it. –  Chris Lutz Aug 10 '11 at 23:51
    
Who says you need to touch the function header? You place your own definition in your .c file, before or after you include the header. Your code will then use it while the function itself uses its definition. As long as the compiler doesn't see both definitions at once, it will compile along happily and leave you to deal with the results. –  Henning Makholm Aug 10 '11 at 23:51
    
Yeah but I already have mytype which is what I have to use. Adding other structures is not an option. That's why I needed to get struct type1 replaced with mytype. This is what I'm asking for, nothing more, nothing less. –  celleritas Aug 10 '11 at 23:56
    
struct type1 { mytype content; }; –  Henning Makholm Aug 10 '11 at 23:57

First of all, be careful. You cannot arbitrarily remove fields from the original struct and expect the function to "fill them in". You can define a compatible struct of your own making, but it must contain the exact same fields in the exact same order, or very bad things can happen. You can then send an instance of this structure with uninitialized field values to the function, and it will set values into your fields as it normally would. But you cannot remove a field and then expect the function to add it back.

Of course, even if you define an exact copy of the struct, you're risking all sorts of issues, as if someone changes the other struct without updating your version, things will break. Similarly things will break if your declaration is updated without a corresponding update made to the original struct. It would be far better to just move the definition of the original struct to a shared header file that can be included in all the places that need to use that struct. Then there's just one definition that everyone uses.

But anyways, as your function is just expecting a pointer to the structure, you can call it with pretty much anything you want. Just cast your parameter to void*, as shown here:

http://ideone.com/c4qtT

Of course, as noted above, this will only work correctly if the pointer that you are casting is pointing to something that has an in-memory layout exactly identical to the original struct.

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Don't worry about what happens in the function, that is being taken care of. Nop I have to use exactly what's written there struct type1 and mytype. So no struct mytype. –  celleritas Aug 10 '11 at 23:54
    
Yes, so do like in the ideone example. Forget about the #define tricks, and just cast your mytype* to void* in the call to your function. Your function takes a pointer as a parameter. And a pointer is a pointer is a pointer. They don't have types. –  aroth Aug 10 '11 at 23:59
    
@aroth: That's extremely untrue. Pointers do have types; different types of pointers are not necessarily compatible, and may even be of different sizes. There happen to be some special-case guarantees, such as that any object pointer can be converted to void* and back without loss of information (which means your idea could work), char* and void* have the same representation, and all struct pointers have the same representation. –  Keith Thompson Aug 11 '11 at 0:16
    
Sorry, I must disagree. At its most fundamental level, a pointer is just an integer that represents a location in memory. Size of the variable used to store this number is irrelevant, and should be consistent for every pointer on a given CPU architecture besides. The only possible exception is if you are casting a 64-bit pointer into a 32-bit (or smaller) type for the sake of saving some space. But doing that is pretty silly to begin with. –  aroth Aug 11 '11 at 0:22

You can define your new structure having the original structure as its first member. Example:

struct mytype {
    struct type1 original;
    int custom_field;
};

Since the ISO says there will be no padding before the first member of a struct, if you have a struct mytype*, it allows you to cast it to struct type1* without undefined behavior.

However, you'll get into trouble if the original code uses sizeof to traverse an array of struct type1 instances, whereas the original array is in fact of struct mytype instances.

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No, you can't do that. The external function doesn't "know" about any defines, redefines, redeclarations, etc. If you make your struct smaller, there is a chance that the function, thinking it is writing to the original struct, writes across the boundaries of your smaller struct.

Don't do this, unless you really really really know what you are doing.

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Yes I know, but I'm not worried about what happens in that function, it'll be ok, trust me :) –  celleritas Aug 10 '11 at 23:46
    
I'm worried about YOUR memory being overwritten. If you declare a struct that is smaller, your memory (e.g. your other stack variables or even your function return address) might be overwritten by the function --> kaboom! –  Rudy Velthuis Aug 10 '11 at 23:53

From what I understood you don't want to change the header file, but you have full access to the source file?

You wrote:

#define type1 mytype
#define struct
int function_header (struct type1 *p, ....) {    
#undef struct

..............
}

it seems you can easily modify the function body. Why don't you just manually change all the struct type1 references to mytype? It's just a simple find&replace in text editor... The thing that preprocessor would do is just the same, it replaces all the occurrences of one text with another.

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