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Asked: 2026-06-12T16:28:21+00:00

The following code compiles fine on my system: #include <array> #include <type_traits> static_assert(std::is_same<std::array<int, 5>::iterator,

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The following code compiles fine on my system:

#include <array>
#include <type_traits>

static_assert(std::is_same<std::array<int, 5>::iterator,
                           std::array<int, 7>::iterator>::value, ":(");

Is that behavior guaranteed by the standard? Is the iterator type independent of the array size?

If it is guaranteed, is there any way to abstract from the element type and ignore the size?

template<typename T, size_t n>
void foobar(std::array<T, n>::iterator it)

That is, is there any way to write the above array-specific code without mentioning the size n?

Note that I do not want to resort to T*, even though in release mode the iterator probably is a T*.

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1 Answer

  1. Editorial Team

    No, it’s not guaranteed. Each array type array<T, size_t> has a nested member typedef named iterator whose type is implementation defined.

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