4

Is the following code always valid or is it compiler/platform-dependent? Obviously I could have initialized edges using the value constructor, but I am curious to see if the copy assignment operator= works here when edges is initialized to size 0, and then set equal to a braced r-value.

It works on my macbook.

std::vector<std::vector<int>> edges;
edges = {{1,2,3},{4},{5,6}};
  • What are you worrying about? std::vector has an operator= taking std::initializer_list<T>. – songyuanyao Feb 8 at 2:56
  • @songyuanyao In C++, does a list of things enclosed with curly braces always equate to std::initializer_list<T>? – Iamanon Feb 8 at 3:09
  • Not always. Functions taking std::initializer_list<T> would be preferred when passed braced-list. – songyuanyao Feb 8 at 3:13
  • Oh I see. I guess my question was inspired by the fact that I wasn't sure the right hand side of edges = defaulted to an std::initializer_list<T>. – Iamanon Feb 8 at 3:14
6

It's valid (since C++11). std::vector has an overloaded operator= taking std::initializer_list.

Replaces the contents with those identified by initializer list ilist.

And std::initializer_list could be constructed from braced-list in specified contexts.

(emphasis mine)

A std::initializer_list object is automatically constructed when:

  • a braced-init-list is used to list-initialize an object, where the corresponding constructor accepts an std::initializer_list parameter
  • a braced-init-list is used as the right operand of assignment or as a function call argument, and the corresponding assignment operator/function accepts an std::initializer_list parameter
  • a braced-init-list is bound to auto, including in a ranged for loop

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.