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Is an array with 0 elements the same as an unallocated pointer?

Is int arr[0]; the same as int* arr;?

Edit: What if I did something similar to this:

int x[0];
int* const arr = x;

I tried this code and it compiled. To my knowledge, both x and arr should be pointing to the same location in memory. What would be the difference in this case?

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A pointer can always point to something new, whereas an array is statically defined. –  chrisaycock Apr 20 '12 at 15:17
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3 Answers 3

up vote 13 down vote accepted

Not at all.

In the case of arr[0], arr has a well defined address.

In the case of *arr, arr is just uninitialized.

After your EDIT, where you initialize the const arr with an array defined just before : there would just be no difference in the content of the variables, but in the actions you would be allowed to perform on them.

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What about int* const arr? –  Dasaru Apr 20 '12 at 15:18
    
@Dasaru Did you try it? That doesn’t compile … –  Konrad Rudolph Apr 20 '12 at 15:19
    
@Dasaru : normally you could ... but you'd have to initialize manually the arr to a given memory location, as it is const. Take a look at stackoverflow.com/questions/355258/… –  Skippy Fastol Apr 20 '12 at 15:27
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In C++ it's not legal to have a zero length array, therefore the array will not have a well defined address. –  bames53 Apr 20 '12 at 17:24
    
@bames53 : thanks for the clarification. Would you have the source of that info ? –  Skippy Fastol Apr 21 '12 at 15:45
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A locally declared zero-length array is illegal in C++ so it's not the same as an unallocated pointer.

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A zero-length array points to a specific address, the beginning of the array. After the end of the array, you will have undefined data, in this case, at the address pointed to.

int arr[0];
int* ptr;

// arr is a reliable value;
// *arr is not;
// ptr is not;

One way this is useful: http://gcc.gnu.org/onlinedocs/gcc-4.1.2/gcc/Zero-Length.html

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As far as I know there still is no consensus about whether this usage is actually legal according to the standard, since array access outside of bounds is simply UB (and does cause bugs in software, this is not merely a hypothetical). –  Konrad Rudolph Apr 20 '12 at 15:37
    
@KonradRudolph In C90, there was no question: int arr[0] was illegal, including in a structure. And it was clear that if the array was declared int arr[1];, and you accessed with and index 2, it was undefined behavior. C99 (but not C++), you can declare the final member of a struct as int arr[]; to support this usage (but int arr[0]; remains an error). –  James Kanze Apr 20 '12 at 16:58
    
@James Ah, that was it. So what about C++? I’m pretty sure that out-of-bounds array access was never legal, am I right? –  Konrad Rudolph Apr 20 '12 at 18:30
    
@KonradRudolph Generally speaking, for the basic types, pointers and C style arrays, the intent of C++ is to be identical to C. (There is one exotic architecture which C++ formally forbid, but C allowed, at least in C++03. This was accepted as a defect, and has presumably been fixed in C++11, although I've not verified.) –  James Kanze Apr 23 '12 at 8:14
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