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How do smart pointers handle arrays? For example,

void function(void)
{
    std::unique_ptr<int> my_array(new int[5]);
}

When my_array goes out of scope and gets destructed, does the entire integer array get re-claimed? Is only the first element of the array reclaimed? Or is there something else going on (such as undefined behavior)?

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2 Answers 2

up vote 25 down vote accepted

It will call delete[] and hence the entire array will be reclaimed but i believe you need to indicate that you are using a array form of unique_ptrby:

std::unique_ptr<int[]> my_array(new int[5]);

This is called as Partial Specialization of the unique_ptr.

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10  
Trivia: This is where this syntax got invented: groups.google.com/group/comp.lang.c++/browse_thread/thread/… –  Howard Hinnant Jul 16 '11 at 0:55
4  
@Howard Hinnant: Thanks for the trivia, I did'nt knew about it. You are the one who invented it, way back in 2001! That is so cool to have you around in here :) –  Alok Save Jul 16 '11 at 4:54
    
That's also the only method which makes any sense, consider typedef int (three_ints)[3]; template<typename T> void function(void) { unique_ptr<T> p(new T); } function<three_ints>(); –  Ben Voigt Jul 16 '11 at 14:42
    
@Als: I get credit for getting it standardized. Luca (no, I don't know who Luca is) gets credit for inventing it, just by asking the right question. :-) –  Howard Hinnant Jul 16 '11 at 15:15
    
Are you certain std::~unique_ptr<int[]>() actually would call delete [] rather than delete? I am not really sure... –  Albus Dumbledore Nov 13 '13 at 14:32

Edit: This answer was wrong, as explained by the comments below. Here's what I originally said:

I don't think std::unique_ptr knows to call delete[]. It effectively has an int* as a member -- when you delete an int* it's going to delete the entire array, so in this case you're fine.

The only purpose of the delete[] as opposed to a normal delete is that it calls the destructors of each element in the array. For primitive types it doesn't matter.

I'm leaving it here because I learned something -- hope others will too.

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1  
If you use new[] you should use delete[] and std::unique_ptr is smart enough to handle this as well as many other improvements which is why it will replace std::auto_ptr soon. –  AJG85 Jul 15 '11 at 22:17
4  
-1 : delete must always and only be used with new; similarly delete[] must always and only be used with new[]. See C++2003, section 5.3.5 (expr.delete), para 2. –  Robᵩ Jul 15 '11 at 22:24
2  
@Nathan: It does matter. Its not just the destructor. The memory allocation routines depend on you deleting the memory with the matching allocation method. Thus new/delete and new[]/delete[] are matched pairs. –  Loki Astari Jul 16 '11 at 4:24

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