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I know that I can copy the structure member by member, instead of that can I do a memcpy on structures?

Is it advisable to do so?

In my structure, I have a string also as member which I have to copy to another structure having the same member. How do I do that?

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3  
Why are you talking about "member functions" in a question tagged as C? –  unwind Feb 8 '11 at 8:59
2  
Could you show us the struct or at least an extract of it? I assume that the string is not a member function, only a member as we're talking plain C here. Is the "string" a char array, a dynamically allocated char* or what? –  Cwan Feb 8 '11 at 9:00

4 Answers 4

up vote 25 down vote accepted

Copying by plain assignment is best, since it's shorter, easier to read, and has a higher level of abstraction. Instead of saying (to the human reader of the code) "copy these bits from here to there", and requiring the reader to think about the size argument to the copy, you're just doing a plain assignment ("copy this value from here to here"). There can be no hesitation about whether or not the size is correct.

Also, if the structure is heavily padded, assignment might make the compiler emit something more efficient, since it doesn't have to copy the padding (and it knows where it is), but mempcy() doesn't so it will always copy the exact number of bytes you tell it to copy.

If your string is an actual array, i.e.:

struct {
  char string[32];
  size_t len;
} a, b;

strcpy(a.string, "hello");
a.len = strlen(a.string);

Then you can still use plain assignment:

b = a;

To get a complete copy.

Beware though, that copying structs that contain pointers to heap-allocated memory can be a bit dangerous, since by doing so you're aliasing the pointer, and typically making it ambiguous who owns the pointer after the copying operation.

For these situations a "deep copy" is really the only choice, and that needs to go in a function.

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Since C90, you can simply use:

dest_struct = source_struct;

as long as the string is memorized inside an array:

struct xxx {
    char theString[100];
};

Otherwise, if it's a pointer, you'll need to copy it by hand.

struct xxx {
    char* theString;
};

dest_struct = source_struct;
dest_struct.theString = malloc(strlen(source_struct.theString) + 1);
strcpy(dest_struct.theString, source_struct.theString);
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great answer! thanks... –  Aad May 22 '13 at 11:00

If the structures are of compatible types, yes, you can, with something like:

memcpy (dest_struct, source_struct, sizeof (dest_struct));

The only thing you need to be aware of is that this is a shallow copy. In other words, if you have a char * pointing to a specific string, both structures will point to the same string.

And changing the contents of one of those string fields (the data that the char * points to, not the char * itself) will change the other as well.

If you want a easy copy without having to manually do each field but with the added bonus of non-shallow string copies, use strdup:

memcpy (dest_struct, source_struct, sizeof (dest_struct));
dest_struct->strptr = strdup (source_struct->strptr);

This will copy the entire contents of the structure, then deep-copy the string, effectively giving a separate string to each structure.

And, if your C implementation doesn't have a strdup (it's not part of the ISO standard), get one from here.

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You can memcpy structs, or you can just assign them like any other value.

struct {int a, b;} c, d;
c.a = c.b = 10;
d = c;
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does this hold even for strings as mentioned in the question? –  Jonas Feb 8 '11 at 8:59
1  
Yes, as long they are not just a pointer but an array. –  Simone Feb 8 '11 at 9:05

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