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In C, NULL is defined as (void *)0 whereas in C++ it is 0. Why is it so? In C I can understand that if NULL is not typecast to (void *) then compilers may/may not generate warning. Other than this, is there any reason?

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One interesting difference is that in C, you can implicitly cast from void* to any pointer type, and in C++ you cannot. –  asveikau Aug 11 '11 at 17:30

4 Answers 4

up vote 60 down vote accepted

In C++, the null pointer is defined by the ISO specification (§4.10/1) as

A null pointer constant is an integral constant expression (5.19) rvalue of integer type that evaluates to zero.

This is why in C++ you can write

int* ptr = 0;

In C, this rule is similar, but is a bit different (§6.3.2.3/3):

An integer constant expression with the value 0, or such an expression cast to type void *, is called a null pointer constant.55) If a null pointer constant is converted to a pointer type, the resulting pointer, called a null pointer, is guaranteed to compare unequal to a pointer to any object or function.

Consequently, both

int* ptr = 0;

and

int* ptr = (void *)0

are legal. However, my guess is that the void* cast is here so that statements like

int x = NULL;

produce a compiler warning on most systems. In C++, this wouldn't be legal because you can't implicitly convert a void* to another pointer type implicitly without a cast. For example, this is illegal:

int* ptr = (void*)0; // Legal C, illegal C++

However, this leads to issues because the code

int x = NULL;

is legal C++. Because of this and the ensuing confusion (and another case, shown later), C++11 now has a keyword nullptr representing a null pointer:

int* ptr = nullptr;

This doesn't have any of the above problems.

The other advantage of nullptr over 0 is that it plays better with the C++ type system. For example, suppose I have these two functions:

void DoSomething(int x);
void DoSomething(char* x);

If I call

DoSomething(NULL);

It's equivalent to

DoSomething(0);

which calls DoSomething(int) instead of the expected DoSomething(char*). However, with nullptr, I could write

DoSomething(nullptr);

And it will call the DoSomething(char*) function as expected.

Similarly, suppose that I have a vector<Object*> and want to set each element to be a null pointer. Using the std::fill algorithm, I might try writing

std::fill(v.begin(), v.end(), NULL);

However, this doesn't compile, because the template system treats NULL as an int and not a pointer. To fix this, I would have to write

std::fill(v.begin(), v.end(), (Object*)NULL);

This is ugly and somewhat defeats the purpose of the template system. To fix this, I can use nullptr:

std::fill(v.begin(), v.end(), nullptr);

And since nullptr is known to have a type corresponding to a null pointer (specifically, std::nullptr_t), this will compile correctly.

Hope this helps!

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I find your statement about C misleading. Although it is right that in C things are a bit different, you seem to imply that int* ptr = 0; would not be correct. But clearly it is. –  Jens Gustedt Aug 10 '11 at 20:50
    
@Jens Gustedt- I was under the impression that this rule didn't exist in C and that the assignment above is legal but is an unsafe integer-to-pointer case. Is this incorrect? If so, I'll fix my answer. –  templatetypedef Aug 10 '11 at 20:56
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Have a look at @Keith Thompsons' answer. A "null pointer constant" in C is any constant integer expression of value 0 optionally cast to void*. –  Jens Gustedt Aug 10 '11 at 21:06
    
@Jens Gustedt- Can you review my edited answer to see if it's more correct? –  templatetypedef Aug 10 '11 at 21:14
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almost perfect! Just one nit pick, you still seem to imply that NULL must be (void*)0 in C. This isn't the case. Unfortunately it may be defined to just any null pointer constant, so it is not a very reliable concept in C. Therefore I personally think that NULL should just be avoided. And the reason some seem to prefer it to be of pointer type are more the rules for implicit argument promotion to functions without prototype, namely va_arg argument lists. But this is another story... –  Jens Gustedt Aug 10 '11 at 21:54

In C, NULL expands to an implementation-defined "null pointer constant". A null pointer constant is either an integer constant expression with the value 0, or such an expression cast to void*. So a C implementation may define NULL either as 0 or as ((void*)0).

In C++, the rules for null pointer constants are different. In particular, ((void*)0) is not a C++ null pointer constant, so a C++ implementation can't define NULL that way.

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The reason C++ uses just 0 instead of (void*)0 is so you can set a pointer-to-member-function (MFP) to NULL. MFPs are very strict in their typing and cannot be converted (implicitly or explicitly) into any type other than other MFPs of the same class. Since (void*) is not an MFP type, assigning (void*)0 to an MFP is not allowed.

Any other use other than with MFPs would seem to allow (void*)0 just fine.

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There is no implicit conversion from void* to any other pointer type in C++. –  AProgrammer Aug 10 '11 at 20:26
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"Any other use than with MFPs would seem to allog (void*)0 just fine": No, it won't. int * iptr = (void*)0; is legal in C, illegal in C++. g++, for example, complains with error: invalid conversion from 'void*' to 'int*', while clang rejects this statement with error: cannot initialize a variable of type 'int *' with an rvalue of type 'void *'. –  David Hammen Aug 10 '11 at 20:31

The C language was created to make it easier to program microprocessors. A C pointer is used to store the address of data in memory. A way was needed to represent that a pointer had no valid value. The address zero was chosen since all microprocessors used that address for booting up. Since it couldn't be used for anything else zero was a good choice to represent a pointer with no valid value. C++ is backward compatible with C so it's inherited that convention.

The requirement of casting zero when used as a pointer is only a recent add on. Later generations of C wanted to have more rigor (and hopefully fewer errors) so they started being more pedantic about syntax.

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From where do you get that there is a requirement to cast 0 to a pointer type. Neither C nor C++ have such a rule. In C you may have (void*)0 as a null pointer constant, but nothing is forcing you to do so. –  Jens Gustedt Aug 10 '11 at 20:52
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I think the burden of proof goes the other way - the standard doesn't say anywhere that the null pointer must have any particular representation. Search for "null pointer representation" and you'll see it discussed innumerable times. Note that the constant 0 in source is required to be a null pointer constant - but that doesn't require the internal representation of the null pointer to be all bits zero, nor for it to be the same as the representation of integer zero. –  ymett Aug 11 '11 at 14:41
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A pointer is represented in memory in some fashion (except where the compiler optimises it out). This representation is not present in source code. So there definitely is "some hidden internal representation". The normal representation is simply the address of the object pointed to. This obviously doesn't work for a null pointer because there is no object pointed to, so the compiler must use something else. All bits zero is often used, but the standard does not require this anywhere (and there have been compilers which used something else). –  ymett Aug 14 '11 at 7:31
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@Jay: I've used a system that used the value 1 for a null pointer, because the CPU would trap on a reference to an odd address. Admittedly this wasn't a C compiler, but there was a real advantage to using a non-zero representation for null pointers. Neither of us knows what future systems will be like, but we've already seen mass re-writes necessitated by similar changes, such as code that depends on *(int*)0 == 0. And writing code that doesn't assume a null pointer is all-bits-zero really isn't that difficult. –  Keith Thompson Aug 16 '11 at 20:46

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