0

We routinely iterate over containers with range-base for loop, or the pre-C++11 iterator based approach:

for(auto current = container.begin(); current != container.end(); ++current)

It is usually taught as a much preferred way over the "C-ish" iterations based on index increments:

for(auto currentId = 0; currentId != container.size(); ++currentId)

Yet, what if the requirement is to iterate every N th element, for example every third?

An erroneous rewrite of the above approach would give:

// Error
for(auto current = container.begin(); current != container.end(); current += 3)

Now, our programs exhibit undefined behaviour each time (container.size() % 3) != 0.

  • What would be the canonical C++ way to address such requirement?
  • Can it be done reasonably with iterator based iteration?
  • Should we fall-back to indexes (with comparison becoming <instead of !=)?
8
  • current != container.end() => std::distance(current, container.end()) >= 3?
    – cpplearner
    Apr 10 '20 at 12:38
  • @cpplearner This is also a potential UB, as it would not prevent to increment current past the end iterator. Or as you wrote it, it would more likely skip the last valid element to iterate, since the check occurs each time before the for body.
    – Ad N
    Apr 10 '20 at 12:51
  • current != container.end() => std::distance(current, container.end()) < step_size with step_size being 3 in the case shown.
    – G.M.
    Apr 10 '20 at 13:11
  • @G.M. exact same problem as above: Since the condition is evaluated before the for body, your approach would miss the last "valid" element in the range. As long as current is a valid iterator, we need to execute the loop body on it, we don't care how far it is from the end. It might well be the last element.
    – Ad N
    Apr 10 '20 at 13:45
  • @G.M. Also your condition is the other way around ; )
    – Ad N
    Apr 10 '20 at 14:04

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Browse other questions tagged or ask your own question.