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I am little confused on the parameters for the memcpy function. If I have

int* arr = new int[5];

int* newarr = new int[6];

and I want to copy the elements in arr into newarr using memcopy,

memcpy(parameter, parameter, parameter)

How do I do this?

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What documentation do you have for memcpy? –  Scott Hunter Oct 18 '13 at 0:47
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1 Answer

up vote 5 down vote accepted

So the order is memcpy(destination, source, number_of_bytes).

Therefore, you can place the old data at the beginning of newarr with

memcpy(newarr, arr, 5 * sizeof *arr);
/* sizeof *arr == sizeof arr[0]  == sizeof (int) */

or at the end with

memcpy(newarr+1, arr, 5 * sizeof *arr);

Because you know the data type of arr and newarr, pointer arithmetic works. But inside memcpy it doesn't know the type, so it needs to know the number of bytes.

Another alternative is std::copy or std::copy_n.

std::copy_n(arr, 5, newarr);

For fundamental types like int, the bitwise copy done by memcpy will work fine. For actual class instances, you need to use std::copy (or copy_n) so that the class's customized assignment operator will be used.

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@refp: Adding a comment was fine, but there was no need to complicate the code. –  Ben Voigt Oct 18 '13 at 2:31
    
sure the parentheses in conjunction with sizeof might have been a stylistic modification to your post, but I sure wouldn't consider it to be a method of making it more complicated. consistancy is key in programming (especially when dealing with novices, easier (for them) to just deal with one "form" of sizeof (excuse my weird wording)). –  Filip Roséen - refp Oct 18 '13 at 2:36
    
But there are two separate forms of sizeof –  Ben Voigt Oct 18 '13 at 2:41
    
of course, and our mutual edited comment now make that clear, I guess I don't mind the middle ground. now it's time (04:46am CET) to get some sleep. –  Filip Roséen - refp Oct 18 '13 at 2:47
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