0

This question already has an answer here:

iterator1 and iterator2 are two pointers of a structure.

I know that size_t(iterator1 - iterator2) is to get the length. But how can we use size_t like that? Is that similar to the forced type conversion like (size_t)(iterator1 - iterator2)?

marked as duplicate by Guillaume Racicot, Galik c++ Feb 12 at 19:46

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

  • Although using szie_t for a difference doesn't make a lot of sense since you can have a negative difference – NathanOliver Feb 12 at 19:39
3

Your syntax is merely an instruction to create a size_t based on the value of the expression iterator1 - iterator2.

size_t is not the best type for this (as it's unsigned), and neither is the method taken the best approach.

Assuming that iterator1 and iterator2 are iterators on the same container (otherwise the behaviour of what I present and what you have is undefined),

auto diff = std::distance(iterator1, iterator2);

is to be preferred.

  • 1
    I rather suspect that the only reason you would cast the result to a size_t like this is if you needed the result to be a size_t which would make it the best type for this. Although some test to ensure data is not corrupted would be appropriate. – Galik Feb 12 at 19:45

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