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If I want to replicate a structure in another one (in C), what are the pro&con's of :

struct1 = struct2;

vs

memcpy(&struct1, &struct2, sizeof(mystruct_t));

Are they equivalent ? Is there a difference in performance or memory use ?

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migrated from programmers.stackexchange.com Mar 21 '11 at 20:34

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marked as duplicate by larsmans Jun 19 '14 at 20:48

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2  
Just be careful of memory allocation inside the struct. For example if you have a struct that contains a pointer to a string and you allocate memory for the string. That memory does not get copied. the pointer to the memory gets copied, but not the memory itself. In other word this type of assignment is not a deep copy. Neither is vanilla memcpy for that mater. It can get confusing as to who owns the allocated memory. –  Pemdas Mar 21 '11 at 15:22
    
I think this question is more suited to Stackoverflow. –  karlphillip Mar 21 '11 at 16:52
2  
I think this question was already well answered here: stackoverflow.com/q/4931123/176769 –  karlphillip Mar 21 '11 at 16:54

4 Answers 4

up vote 21 down vote accepted

The struct1=struct2; notation is not only more concise, but also shorter and leaves more optimization opportunities to the compiler. The semantic meaning of = is an assignment, while memcpy just copies memory. That's a huge difference in readability as well, although memcpy does the same in this case.

Use =.

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Check out this conversation about the very same topic: http://bytes.com/topic/c/answers/670947-struct-assignment

Basically, there are a lot of disagreements about the corner cases in that thread on what the struct copy would do. It's pretty clear if all the members of a struct are simple values (int, double, etc.). The confusion comes in with what happens with arrays and pointers, and padding bytes.

Everything should be pretty clear as to what happens with the memcpy, as that is a verbatim copy of every byte. This includes both absolute memory pointers, relative offsets, etc.

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I'm not sure of the performance difference, although I would guess most compilers would use memcpy under the hood.

I would prefer the assignment in most cases, it is much easier to read and is much more explicit as to what the purpose is. Imagine you changed the type of either of the structs, the compiler would guide you to what changes were needed, either giving a compiler error or by using an operator= (if one exists). Whereas the second one would blindly do the copy with the possibility of causing a subtle bug.

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There is no inherent reason why one would be better in performance than the other. Different compilers, and versions of them, may differ, so if you really care, you profile and benchmark and use facts as a basis to decide.

A straight assignment is clearer to read.

Assignment is a teeny bit riskier to get wrong, so that you assign pointers to structs rather than the structs pointed to. If you fear this, you'll make sure your unit tests cover this. I would not care about this risk. (Similarly, memcpy is risky because you might get the struct size wrong.)

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There's nothing risky about memcpy if you use sizeof and the correct struct. I suppose you could get the struct wrong and there would be no error. I think you'd probably get a segmentation fault eventually though. –  Michael K Mar 21 '11 at 17:05

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