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This is possibly a candidate for a one-line answer. I would like know it anyway..

I am writing a simple circular buffer and for some reasons that are not important for the question I need to implement it using an array of doubles. In fact I have not investiated other ways to do it, but since an array is required anyway I have not spent much time on looking for alternatives.

template<typename T>
class CircularBuffer
{
public:
    CircularBuffer(unsigned int size);
    ~CircularBuffer();
    void Resize(unsigned int new_size);
    ...
private:
    T* buffer;
    unsigned int buffer_size;
};

Since I need to have the buffer dynamically sized the buffer_size is neither const nor a template parameter. Now the question:

During construction and in function Resize(int) I only require the size to be at least one, although a buffer of size one is effectively no longer a buffer. Of course using a simple double instead would be more appropriate but anyway.

Now when deleting the internal buffer in the destructor - or in function resize for that matter - I need to delete the allocated memory. Question is, how? First candidate is of course delete[] buffer; but then again, if I have allocated a buffer of size one, that is if the pointer was aquired with buffer = new T[0], is it still appropriate to call delete[] on the pointer or do I need to call delete buffer; (without brackets) ?

Thanks, Arne

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Actually I've always wondered why C++ doesn't define new T; as new T[1]; as it would simplify the deletion. My only guess is that it is for optimization reasons (the compiler wouldn't have to create a one-step loop when calling the destructor). –  Viktor Sehr Jun 7 '10 at 11:33
1  
@Victor Sehr: Doing so would restrict the user to parameterless constructors for type T. –  sharptooth Jun 7 '10 at 11:36
    
It would make the deletion more complex, as you would have to use delete []. –  anon Jun 7 '10 at 11:36
    
@sharptooth: what do you mean? @Neil Butterworth: If anything, it would make deletion more simple as only one form of delete is needed. –  Viktor Sehr Jun 7 '10 at 12:29
    
@Viktor Sehr: Using new[] requires that type has a default constructor. Implementing new through new[] would enforce that requirement on all classes you use new on. –  sharptooth Jun 7 '10 at 12:35

5 Answers 5

up vote 9 down vote accepted

If you allocate the memory with new T[x], you always delete it with delete[], even if x ≤ 1.

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Why not use a vector?

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1  
+1 That's the most sensible answer to all such questions: Simply avoid manual memory management altogether. What does it buy you over a std::vector? –  sbi Jun 7 '10 at 11:47
    
Well, as I said I do need to use an array. This is because I need to integrate with some code that uses pointers to certain elements for monitoring and I need to guarantee that for example the most recent elment stays at the same memory address during the lifetime of the CircularBuffer object. –  Arne Jun 7 '10 at 12:11
1  
@Arne: you have that guarantee if you don't change your vector. You also don't have that guarantee if you reallocate your array. –  stefaanv Jun 7 '10 at 12:33
    
@stefaanv I just realized that issue myself, but thanks anyway. –  Arne Jun 7 '10 at 12:49
    
this would be more helpful as a comment. It's a perfectly good suggestion, but it doesn't answer his question –  jalf Jun 7 '10 at 13:05

Only use delete[] on addresses returned by new[] - regardless of the buffer size. Using delete in this case is undefined behavior.

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+1 for pointing out the underlying reason! –  Baiyan Huang Feb 28 '11 at 12:36

buffer of size 1 should be allocated as buffer = new T[1] and then delete[] buffer should be used. No need to differentiate as n =1 as special case. Thumb rule :: every new [] should have corresponding delete []

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When you use "delete[]" it knows that it must delete an array of objects - it calls each destructor of the objects in the array. Do not slip away from the standard - it will only give you a lot of headaches. When using new use delete. When using new [] use delete []. Just as simple as that.

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