0

The objective is to convert a std::uint64_t (which is used as a bitmask), to a std::array<bool>.

This question is similar to the C# question How can I convert an int to an array of bool?, but for C++ and I'm looking for the algorithm with the bestest performance.

Given a std::uint64_t, which is used as a bitmask, I know it is possible to just loop over its content bitwise & bitcompare set the values to the ones at the same position in the std::array<bool>.

But in almighty C++ there has to be a more efficient way! Maybe some dirty casts, mallocs or whatnot? Everything is ok; I am on Windows / GCC, so even GCC-only features are totally allowed.

  • ...even inline asm is ok – nada Jul 6 '18 at 13:38
  • 5
    Do you really need a std::array<bool>? You could convert the bitmask to a std::bitset to get random access to the individual bits. – NathanOliver Jul 6 '18 at 13:40
  • @NathanOliver Sounds ok to me, but boring – nada Jul 6 '18 at 13:40
  • 2
    There's no cast that's going to take you from 64 bits to 64 bytes, assuming that's what a bool is on your system. bitset is likely the better way to go here. Is there a particular problem you're trying to solve? It seems to me the best performance would be to keep your uint64_t and extract the bits you need when you need them. – Retired Ninja Jul 6 '18 at 13:41
  • 1
    If you're targeting x86, you might be able to use some of the vector instructions (AVX?) to store parts of a word into different targets. Not sure about other ISAs. – Toby Speight Jul 6 '18 at 13:53
6

If you just need random access to the individual bits you can use a std::bitset instead of a std::array. That would look like

uint64_t mask = some_value;
std::bitset<64> random_access(mask);

// and now you can use random_access[some_index]

std::bitset does lack begin() and end() members though, so you can't use it with a ranged based for loop as-is. You can however iterate over a std::bitset using a regular index based for loop like

for (size_t i = 0; i < random_access.size(); ++i)
    std::cout << random_access[i] << "\n";
  • If I had known there exists such a simple (and thus boring) solution I hadn't troubled asking :'( – nada Jul 6 '18 at 13:56
  • 3
    @nada Sorry, sometimes C++ just gives you what you want ;) – NathanOliver Jul 6 '18 at 13:57

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.