8

Consider auto var = 5u;. Here, I am using suffix u, so that var will be deduced as unsigned int. Is there any way to achieve something similar for uint32_t or uint64_t types? Is there any suffix in C++11 or C++14?

  • No, there is no such thing. Spelling out the type is your option. Or define your own literal. – DeiDei Jan 8 at 16:48
  • Possible duplicate of How to input int64_t / uint64_t constants? – 0x5453 Jan 8 at 16:50
  • 2
    If you know exactly what type you want, why use auto? – nate Jan 9 at 20:33
15

I'm assuming you're working with the AAA style suggested by Herb Sutter.

In that case, a nice solution is to simply write:

auto variable_name = uint64_t{ 5000000000 };

This is clear, consistent, and explicitly typed with no nasty C-preprocessor necessary.


Edit: if you want to be absolutely sure when using a literal, an appropriate suffix can be added to the integer literal to ensure great enough range, while still explicitly typing the variable.

  • 1
    Try an initializer bigger than 2^32. – Maxim Egorushkin Jan 8 at 17:08
  • 2
    @MaximEgorushkin the literal can automatically go up to long long int, but unsigned long long int does require the u suffix. – Quentin Jan 8 at 17:11
  • Will downvoters please comment to explain? I believe this demonstrably works for numbers out of the 32-bit range. – JMAA Jan 8 at 17:14
  • I imagine the down votes are due to it being easier (less typing) to not use auto at all. – nate Jan 9 at 20:32
4

You could always define your own suffix

#include <cstdint>
#include <type_traits>

uint32_t operator ""_u32 (unsigned long long v) { return uint32_t (v); } 

int main ()
{
    auto v = 10_u32;

    static_assert (std::is_same <decltype (v), uint32_t>::value);
}

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