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void * intptr = new int;
delete (int *) intptr;

Is the (int *) type cast required?

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1  
possible duplicate of deleting a buffer through a different type of pointer? –  Nemo Sep 29 '11 at 0:54
    
Not a duplicate. That question was asking about using delete on something allocated via new[] and deleting against pointer to a type other than the allocated type. Two invocations of undefined behavior in one statement. Here there is no undefined behavior; the new matches the delete and the types match as well. –  David Hammen Sep 29 '11 at 1:27
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Note that this is a delete expression, not operator. Because there actually is a delete operator (operator delete/operator delete[]), the distinction is important. –  GManNickG Sep 29 '11 at 1:42

4 Answers 4

up vote 11 down vote accepted

Yes.

The type must match that which was new'd. The only time it doesn't have to match is deletion of a derived type through a base pointer, where the base type has a virtual destructor.

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I was skeptical but found this in the standard: [Note: this means that the syntax of the delete-expression must match the type of the object allocated by new, not the syntax of the new-expression. —end note ] –  Pubby Sep 29 '11 at 1:55
    
Just to clarify: The only reason it needs to match isn't so it can be deleted, but so that the correct destructor can be called. –  Mahmoud Al-Qudsi Sep 30 '11 at 4:46

Yes. Since C++ is not an everything-is-and-object language, the delete command must know the type of what you want to delete in order to know how to delete it.

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Although that is correct, the comment doesn't make any sense. Anyway I don't see how int or and int* is not an object in the C++ sense. –  pmr Sep 29 '11 at 0:59
    
Compare it to C#. In C#, everything is an object - all data types derive from System.Object, and therefore can share common methods. If C# was not garbage collected, it could have a virtual d'tor in System.Object, enabling it to delete any variable without knowing it's type. In C++, every reference can be void*, but that doesn't mean void* can contain methods. If everything in C++ was an object, then void* was an object reference, and you could use delete on it(even if it had no virtual d'tor - it would compile and work, it just won't called the d'tor code...) –  Idan Arye Sep 29 '11 at 1:19
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@someboddy: Not simple unboxed types though :) So not everything. –  user405725 Sep 29 '11 at 1:22
    
I stand corrected. The autoboxing mechanism fooled me there... –  Idan Arye Sep 29 '11 at 1:24

3 destructors for int will be called.

There's no such thing as a "destructor for int". delete/delete[] will only call a destructor for things that aren't POD or POD-class types.

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It is required because delete will call a destructor for each allocated element, even for int.

Consider this:

char * chars = new char[3];

delete [] (int*)chars;

What will happen? 3 destructors for int will be called. First one for memory address of &chars[0], second one for &chars[4] and third one for &chars[8]. Consider that &chars[4] and &chars[8] exceed the size of allocated memory. Even though int destructor in most if not all compilers is dummy it is wrong behaviour. And imagine if you write

delete [] (Foo*)chars;

where Foo has destructor and sizeof(Foo) > sizeof(char). Behaviour of your program will be undefined.

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