8

The code is as follow:

int B[] = {3,5};
int C[] = {4,5};
cout << distance(B,C);

The output is:

-4

Can anyone explain why is this?

  • 9
    It is undefined behaviour. distance works with iterators to single containers. – juanchopanza Oct 10 '14 at 5:45
  • 2
    Undefined behaviour. There's nothing reliable to explain. – chris Oct 10 '14 at 5:45
  • 1
    Probably you have wrong understanding of std::distance ? – P0W Oct 10 '14 at 5:47
  • 5
    From the usage, I guess the mistaken understanding was that it would calculate the Euclidean distance between points specified by their Cartesian coordinates. – celtschk Oct 10 '14 at 6:19
24

The distance(first, last) function tells you how many items are between the iterator at first and last. Note that pointers are iterators, random-access iterators to be specific. So the distance between one pointer and another is their difference, as defined by operator-.

So your question boils down to "How many ints are there between the int pointed to by B and the int pointed to by C?

distance dutifully subtracts the pointers and tells you.

The trick is that distance is supposed to be applied to iterators from the same container. Your code does not live up to that promise. The compiler is free to place the B and C arrays wherever it pleases, hence the result you see is meaningless. Like many things in C++, it's up to you to ensure that you're using distance properly. If you don't, you'll get undefined behavior, where the language makes no guarantees what will happen.

  • one more question, is there a way to show it is undefined behavior? – Euler Oct 10 '14 at 7:13
  • 7
    You look at the documentation. – Adam Oct 10 '14 at 7:18
4

std::distance(__first, __last) is designed to generalize pointer arithmetic, it returns a value n such that __first + n = __last.
for your case, the arguments are pointers of int*, in terms of iteration, they are random accessed iterators. the implementation simply returns a value of __last - __first:
simply (int*)C - (int*)B.

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.