3

I have a function taking a reference to a vector of longs

Void blarf(std::vector<long>&);

This is given and shouldn't be modified. Deep into xyz.cpp is an attempt to feed blarf() a vector of ints:

std::vector<int>  gooddata;
. . . 
blarf(gooddata);

In my case and all cases for this software, int and long are the same size. Of course I can't change the definition of gooddata either.

What kind of typecast is appropriate here? I tried dynamic_cast but that's only for polymorphic class conversion. static_cast no worky either. I'm no genius at c++ type casts.

3
  • Yee, this is ugly formatting. Will fix it when i get home.
    – DarenW
    Nov 2, 2016 at 21:16
  • 3
    You can use reinterpret_cast if you're willing to risk undefined behavior. Nov 2, 2016 at 21:19
  • 1
    As an aside, consider templates if your code can afford it: template <typename T> void blarf(std::vector<T> &);
    – a_caban
    Nov 2, 2016 at 21:48

1 Answer 1

14

No, you can't. int and long will stay different types, this would break strict aliasing rules.

You can create a vector<long> from your vector<int> very easily:

std::vector<int> vec{5, 3, 7, 9};
std::vector<long> veclong(begin(vec), end(vec));

This will copy vec into veclong, with the constructor of vector that takes two iterators.

If you want to do it the bad way (i.e. that exhibits undefined behavior), then feel free to use:

*reinterpret_cast<std::vector<long>*>(&vec)
2
  • 2
    or simply reinterpet_cast<std::vector<long>&> (vec)
    – Catriel
    Feb 25, 2021 at 16:13
  • @Catriel typo reinterpret_cast<std::vector<long>&> (vec)
    – hojin
    Oct 26, 2021 at 3:11

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

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