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We can initialize, say, std::array<char, 3> with = { ' ', ' ', ' ' } but what if the size is given by a template parameter N ? Can't we do something like std::string::string(size_type count, CharT ch) which fills the instance with the given ch ?

Should I perhaps look at std::integer_sequence ?

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  • 3
    You can always fill the array after definition. – Some programmer dude Dec 21 '16 at 8:41
  • @Someprogrammerdude You are talking about only non-const arrays. With const, it would become as ugly as const std::array<char, N> arr([&arr, ch] { std::remove_const_t<decltype(arr)> tmp; std::fill_n(tmp.begin(), tmp.size(), ch); return tmp; }()); Well, it's doable, but... – nodakai Dec 21 '16 at 12:11
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You may use index sequence for that:

template <typename T, std::size_t...Is>
std::array<T, sizeof...(Is)> make_array(const T& value, std::index_sequence<Is...>)
{
    return {{(Is, value)...}};
}

template <std::size_t N, typename T>
std::array<T, N> make_array(const T& value)
{
    return make_array(value, std::make_index_sequence<N>());
}

Demo

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  • Interesting trick to map Is to a sequence of values, but if we need to introduce a helper function, it doesn't offer much benefits over fill_n() proposed in stackoverflow.com/questions/17923683/… – nodakai Dec 21 '16 at 11:45
  • @nodakai: It does the initialization once, but indeed, the two solutions are mostly equivalent. – Jarod42 Dec 21 '16 at 12:30

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