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I've got a function that takes as an argument a pointer to an array of structs:

void foo (int *StructArrayAddress)

Within the function, I then build a new struct that looks like this

struct
{
    int a;
    int b;
    char c[10];
}myStruct;  

What I would then like to do is copy that struct to my array of structs based on the pointer to that array that I received as an argument. Not having any luck with the syntax, or I'm missing something. Can anyone advise? Thanks!

EDIT: I'm not sure I explained myself correctly, as I don't think the solution posted here is what I want to do. To clarify: there is some array of structs outside my function here. I receive the address of the correct struct element in an array of structs as an argument to my function. Assume the caller already took care of passing me the correct address; I don't have to index it up at all.

I then locally build a struct from some other data. I now want to copy this struct that I built locally to the struct at the location in the array that I received as an argument.

void foo (int *StructArrayAddress)
{
    struct
    {
        int a;
        int b;
        char c[10];
    }myStruct;

    a = 5;
    b = 10;
    c = {1,2,3,4,5,6,7,8,9,10};

    //Copy local struct myStruct to location StructArrayAddress here
    StructArrayAddress = myStruct; //Something like this but I have the syntax wrong
}

I hope that makes more sense.

EDIT2: I may have just realized something that you guys have been trying to convey to me that I was missing: is a reference to my local struct needed in the argument somehow so that the format of the structure as I pass it back is known?

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2  
If the argument is supposed to be a pointer to an array of structs, why is it declared as int*?? –  Daniel Fischer Jan 8 '13 at 22:04
    
Can you post the rest of the code of your function? –  Tim Castelijns Jan 8 '13 at 22:05
    
@Daniel Fischer: My thinking was that though its an array of structs, the address is still the same size, no? –  nobby Jan 8 '13 at 22:15
    
That need not be. You're unlikely to meet a platform where pointers to different types have different sizes or representations, but that is allowed [but all pointers to struct types must have the same representation and alignment requirements]. However, if you pass in an int*, you can't use ptr[i] to access struct whatevers that are stored in the array. You'd need to cast the argument, but then, why not pass the correct type from the beginning? –  Daniel Fischer Jan 8 '13 at 22:24

1 Answer 1

First of all you should be given -10 points for this question. Now your function definition should be like

void foo (myStruct *StructArrayAddress, int index)
{
     myStruct x;
     x.a = 1;
     x.b = 2;
     strncpy(x.c, "Test", 9);

     /* Now copy this struct to the array of structs at index specified by second argument */

     memcpy((StructArrayAddress + index), &x, sizeof(myStruct));


}
share|improve this answer
1  
The memcpy could be omitted. StructArrayAddress[index] = x; is good. –  Daniel Fischer Jan 9 '13 at 1:54
    
x is a local variable and that will not be copied to the array of structures. –  Kanwar Saad Jan 9 '13 at 10:44
    
Can you clarify what I did wrong with the question? –  nobby Jan 9 '13 at 12:23
1  
@KanwarSaad structs are copied on assignment. Whether they're local variables doesn't matter. –  Daniel Fischer Jan 9 '13 at 14:34

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