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is this a variable or function

I mistakenly used something like:

int *arr = new int(100);

and it passes compile, but I knew this is wrong. It should be

int *arr = new int[100];

What does the compiler think it is when I wrote the wrong one?

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marked as duplicate by Krishnabhadra, stusmith, Jaguar, François Wahl, Brian Driscoll Dec 12 '12 at 13:12

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

4 Answers

up vote 39 down vote accepted

The first line allocates a single int and initializes it to 100. Think of the int(100) as a constructor call.

Since this is a scalar allocation, trying to access arr[1] or to free the memory using delete[] would lead to undefined behaviour.

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And the pointer will point to address 100. –  RedX Dec 10 '12 at 9:20
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@RedX: If you're thinking of placement new, this is not it (the syntax is different). –  NPE Dec 10 '12 at 9:21
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@RedX: no, it will point to a dynamically-allocated address that contains the int value 100. You're thinking of int *arr = (int*)100; –  Steve Jessop Dec 10 '12 at 9:21
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@SteveJessop Or, as NPE suggested, new (100) int. –  James Kanze Dec 10 '12 at 10:01
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@JamesKanze: I'm sure that would need a cast... new (reinterpret_cast<void *>(100)) int, so you really know you mean it. –  Dietrich Epp Dec 10 '12 at 13:16
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Wikipedia new(C++) quote:

int *p_scalar = new int(5); //allocates an integer, set to 5. (same syntax as constructors)
int *p_array = new int[5];  //allocates an array of 5 adjacent integers. (undefined values)
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+1 for a citation. –  Richard Dec 10 '12 at 9:21
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@Richard but I was taught that Wikipedia isn't a reliable source! –  Alvin Wong Dec 10 '12 at 9:30
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@AlvinWong It's not, almost by definition. The only "reliable" source (for this issue) would be the C++ standard (which is what you should cite, if you're citing anything). –  James Kanze Dec 10 '12 at 10:03
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Which is why I did not give +2, @AlvinWong ;-) But you'll notice that this is the only answer to this question which even attempts a citation. Since I like citations (the more so to reliable sources), I reward this behavior. –  Richard Dec 10 '12 at 12:07
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It allocates one object of type int and initialized it to value 100.

A lot of people doesn't know that you can pass an initializer to new, there's a particular idiom that should be made more widely known so as to avoid using memset:

new int[100]();

This will allocate an array of int and zero-initialize its elements.

Also, you shouldn't be using an array version of new. Ever. There's std::vector for that purpose.

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"a particular idiom that should be made more widely known ... you shouldn't be using an array version of new. Ever" -- so why should the idiom be more widely known? ;-) –  Steve Jessop Dec 10 '12 at 9:23
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@SteveJessop, good point :) Although when fixing an old codebase, it is much easier to delete memsets and add parentheses than to replace the new with vector. –  avakar Dec 10 '12 at 9:25
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The first one creates a single new integer, initializes it to the value 100 and returns a pointer to it.

In C/C++ there is no difference between a pointer to an array and a pointer to a single value (a pointer to an array is in fact just a pointer to its first element). So this is a valid way to create an array with one element.

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A pointer to an array looks like int (*arr)[100] and C++ can distinguish. It's just that new doesn't return a pointer to an array even when you allocate an array -- instead it returns a pointer to the first element of the array. The reason is that the size is part of the type of a pointer-to-array, and of course new can't return a different type depending what size you pass it at run time. –  Steve Jessop Dec 10 '12 at 9:18
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Should be "C++ can not distinguish between a pointer to an element of an array and a pointer to a single value." –  Joseph Mansfield Dec 10 '12 at 9:19
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