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The following code (taken from here):

int* ptr = int();

compiles in Visual C++ and value-initializes the pointer.

How is that possible? I mean int() yields an object of type int and I can't assign an int to a pointer.

How is the code above not illegal?

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Not an answer, but great question! I've never seen such a thing. –  Josh Nov 9 '11 at 16:12
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Since primitives have a 'constructor' in C++, int() yields the value constructed value of int (which is I think a C++03 specified thing) and the default value of int is 0. This is equivalent to int *ptr = 0; –  birryree Nov 9 '11 at 16:13
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@EmanuelEy: No, any zero-valued integer constant can be used as a null pointer constant, regardless of how pointers are actually implemented. –  Mike Seymour Nov 9 '11 at 16:16
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@MooingDuck: I didn't say NULL could be a non-zero value. I said it could be any zero-valued integer constant (which includes int()). –  Mike Seymour Nov 9 '11 at 16:57
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@DanielPryden That is a use of the word "object" of which I was previously unaware. –  fluffy Nov 9 '11 at 21:43

5 Answers 5

up vote 105 down vote accepted

int() is a constant expression with a value of 0, so it's a valid way of producing a null pointer constant. Ultimately, it's just a slightly different way of saying int *ptr = NULL;

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+1, the constant expression bit is important and missing from the top-2 upvoted answers. –  David Rodríguez - dribeas Nov 9 '11 at 16:43
    
does this go away with C++0x? –  Neil G Nov 9 '11 at 22:45
    
@NeilG: This stays the same in C++11, though there is now also a nullptr, which you can use instead of 0 or NULL in new code. –  Jerry Coffin Nov 9 '11 at 23:02
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@Nils: Code clarity and declaring your intent through code. Ofcourse, with C++11, now you want to use nullptr because it also tosses the benefit of extra compile-time checks into the mix. –  Jamin Grey Feb 27 '13 at 1:07
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@Nils because quite obviously 0 could mean a null pointer constant or the number 0, while nullptr is obvious a null pointer constant. In addition, as Jamin said, it also has "extra compile-time checks". Do try to think before you type. –  Miles Rout Jun 11 at 6:34

The expression int() evaluates to a constant default-initialized integer, which is the value 0. That value is special: it is used to initialize a pointer to the NULL state.

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This is missing a very important detail present in Jerry's answer: it is not enough that the expression yields the value 0, but it must also be a constant-expression. For a counter-example, with int f() { return 0; }, the expression f() yields the value 0, but it cannot be used to initialize a pointer. –  David Rodríguez - dribeas Nov 9 '11 at 16:44
    
@DavidRodríguez-dribeas, in my rush to present an answer in the simplest possible terms I left that part out. I hope it's acceptable now. –  Mark Ransom Nov 9 '11 at 16:51

Because int() yields 0, which is interchangeable with NULL. NULL itself is defined as 0, unlike C's NULL which is (void *) 0.

Note that this would be an error:

int* ptr = int(5);

and this will still work:

int* ptr = int(0);

0 is a special constant value and as such it can be treated as a pointer value. Constant expressions that yield 0, such as 1 - 1 are as well allowed as null-pointer constants.

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Also note that C's NULL isn't necessarily (void *)0 either. It's simply an implementation defined "integer constant expression with the value 0, or such an expression cast to type void *". –  Jerry Coffin Nov 9 '11 at 16:52
    
@JerryCoffin I've never used a C compiler which defined NULL as (void*)0; it was always 0 (or maybe 0L). (But then, by the time C90 had made (void*)0 legal in C, I was already using C++.) –  James Kanze Nov 9 '11 at 17:07
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@JamesKanze: In ubuntu 11.04 and our own linux flavor, libio.h contains: #if !defined(__cplusplus) \n #define NULL ((void*)0) \n #else \n #define NULL (0) the current version of gcc in ubuntu is 4.5, in our system is 4.0. –  David Rodríguez - dribeas Nov 9 '11 at 17:33
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"0 is a special literal" - only because it's a constant expression, and it has the special value 0. (1-1) is equally special, it's also a null pointer constant, and so is int(). The fact of 0 being a literal is sufficient but not necessary condition to be a constant expression. Something like strlen(""), although it also has the special value 0, isn't a constant expression and hence isn't a null pointer constant. –  Steve Jessop Nov 9 '11 at 17:37
    
@SteveJessop: I agree about the correction, it's really about the constant value 0, not the 0 literal. –  Blagovest Buyukliev Nov 9 '11 at 18:00

From n3290 (C++03 uses similar text), 4.10 Pointer conversions [conv.ptr] paragraph 1 (the emphasis is mine):

1 A null pointer constant is an integral constant expression (5.19) prvalue of integer type that evaluates to zero or a prvalue of type std::nullptr_t. A null pointer constant can be converted to a pointer type; the result is the null pointer value of that type and is distinguishable from every other value of object pointer or function pointer type. Such a conversion is called a null pointer conversion. [...]

int() is such an integral constant expression prvalue of integer type that evaluates to zero (that's a mouthful!), and thus can be used to initialize a pointer type. As you can see, 0 is not the only integral expression that is special cased.

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Well int isn't an object.

I beleive what's happening here is you're telling the int* to point to some memory address determined by int()

so if int() creates 0, int* will point to memory address 0

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int() most certainly is an object. –  Lightness Races in Orbit Nov 9 '11 at 19:14
    
@Tomalak: I don't think it is. It's a temporary of non-class type, and I think I'm right in saying that these are not objects as far as the C++ standard is concerned. It's a bit odd, though, the section on "temporary objects" starts out carefully talking only about temporaries of class type, but later on it talks about binding references, and of course you can bind a reference to int(). Define int i;, then no question, i is an object. –  Steve Jessop Nov 9 '11 at 23:36
    
@Steve: I'd only expect debate over this in that "objects" are a region of storage in C++, and temporaries don't really have storage, right? 1.8/1 doesn't explicitly list temporaries, but it feels as if the intent is there to include them. –  Lightness Races in Orbit Nov 9 '11 at 23:41
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@Tomalak: yes indeed, temporaries of non-class type don't need storage unless you take a reference. Never mind though, it doesn't matter much. The statement "well int isn't an object" is only true because int is a type, not an object. Whether int() yields an object or just an rvalue doesn't affect anything anyone has said elsewhere. –  Steve Jessop Nov 9 '11 at 23:43
    
@Steve: That much is undebateable :) –  Lightness Races in Orbit Nov 9 '11 at 23:45

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