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Is the new operator guaranteed to allocate a continuous chunk of heap memory? I.e. is

objects=new Base[1024];

in terms of memory allocation the same as

objects=(Base*)malloc(1024*sizeof(base));

or can there be gaps?

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up vote 8 down vote accepted

Yes, the memory will be continuous. In terms of allocation, it's the same as the malloc version, but there are several differences (calls to constructor, new doesn't return NULL, malloc doesn't throw exceptions, etc.`).

Note that you can't mix up new[] with delete or free, you have to use delete[] objects to free the memory.

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It's not quite the same. The new[] version will call the default constructor on each object. – edA-qa mort-ora-y May 4 '12 at 8:34
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@edA-qamort-ora-y that's what I said... – Luchian Grigore May 4 '12 at 8:34
    
Sorry, I'm blind today I guess. The new version will however allocate a bit more space to remember the size of the array so delete[] can call the correct number of destructors. It's of course a minor difference in space. – edA-qa mort-ora-y May 4 '12 at 8:36
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@edA-qamort-ora-y that comment is missleading. It will allocate precisely as much as you instruct it to. The implementation may reserve some memory to keep track of the length, but that's an implementation detail. It appears nowhere in the standard. – Luchian Grigore May 4 '12 at 8:37
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@edA-qamort-ora-y: it's not like free magically know the size of the allocated region. A similar construct is needed there. – KillianDS May 4 '12 at 8:38

Maybe. The new operator does two things: it calls the operator new function, which will return a contiguous block of memory, adequately aligned for all possible types (except when it doesn't; e.g. a misused placement new); it then calls the constructor of the object, which can do just about anything. Including allocating additional blocks, which will not be contiguous with the first.

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If the new operator is not overloaded, yes the allocated block of memory is contiguous. But if it's overloaded, we can't know (some evil programmers might have overloaded it ? :D)

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