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I was posting an answer to a question - and commenting it occured to me, thanks to another poster by the name metal that

C++ compiler allowed this:

int *p = 0; but not this int *p = 1. Is 0 considered a special number?

Edit: @DavidHefferman said Is 0 special? In the context of a pointer, yes it is. - why?

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marked as duplicate by Joce, Inisheer, Anirudh Ramanathan, P.T., Gururaj.T Mar 22 '13 at 5:43

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Is 0 special? In the context of a pointer, yes it is. –  David Heffernan Mar 21 '13 at 14:26
    
0 is another representation of the null pointer constant.See This –  Suvarna Mar 21 '13 at 14:28
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@StarPilot That's not the whole story. int *p = 0; is defined and useful and always works, whereas int *p = (int *)1; is at best implementation-defined (I'm not sure, it might also be UB), almost always useless, and almost always completely wrong. –  delnan Mar 21 '13 at 14:37
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In the end, the only real answer is: because the standard says so. Historically, the inventors of C forgot to provide null pointers. And the first implementations allowed implicit conversions of ints to pointers, so people got into the habit of using 0 for a null pointer constant. C++ formalized this, but restricted it to integral constants evaluating to 0, and the standards committee of C took the C++ formalization (but added an additional legal possibility). –  James Kanze Mar 21 '13 at 14:54
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@StarPilot No. 0 has type int. Always. But C++, like C, has a lot of implicit conversions. This one is special, in that it only works for "integral expressions evaluating to 0". (Note that NULL can be defined as (1 - 1), although I've never seen it. And for a long time, g++ defined it as __builtin__nullptr, or something like that---a compiler specific integral expression, which it could recognize, and generate a warning if it wasn't immediately converted to a pointer type.) –  James Kanze Mar 21 '13 at 14:57

3 Answers 3

up vote 2 down vote accepted

Section 4.10 of the standard, Pointer conversions [conv.ptr] says:

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 pointer to object or pointer to function type. Such a conversion is called a null pointer conversion. Two null pointer values of the same type shall compare equal. The conversion of a null pointer constant to a pointer to cv-qualified type is a single conversion, and not the sequence of a pointer conversion followed by a qualification conversion (4.4). A null pointer constant of integral type can be converted to a prvalue of type std::nullptr_t.

So, yes, 0 is a special value in the context of pointers.

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^ Accepted answer in 6 minutes –  Aniket Mar 21 '13 at 14:33
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Note, however, that constant expression is important -- for example, something like int i=0; int *p=i; will not work, because i is not a constant expression (even though it's pretty obvious from reading it that it'll always contain the value 0). –  Jerry Coffin Mar 21 '13 at 14:40
    
@JerryCoffin Of course, you can force it with a reinterpret_cast. But even then, the results of the conversion may be different than those resulting from the conversion of a null pointer constant. –  James Kanze Mar 21 '13 at 14:50

"A null-pointer constant is an integral constant expression that evaluates to zero (such as 0 or 0L)."

See http://www.cplusplus.com/reference/cstring/NULL/

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Ie. the number 0 is a null-pointer constant and thus can be assigned to a pointer without an explicit type-cast. –  Esa Lakaniemi Mar 21 '13 at 14:31

0 is NULL, while 1 is an invalid address.

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