17

Apparently, this ternary expression with void() as one argument compiles:

void foo() {}

//...
a == b ? foo() : void();

Is void() a valid expression by the standard, or is it just a compiler thing? If it's valid, then what kind of expression is it?

  • 8
    This is just someone trying to be smart. if(a==b){ foo(); } is clearer and has the same effect. – Cássio Renan Jan 28 at 20:38
  • 1
    @CássioRenan your version can't be used in an expression though . – M.M Jan 28 at 20:40
  • @M.M yes, but I really can't think of any useful way this could be used on an expression either, seeing that you cannot create objects of type void. (Although I will be the first to say that me not being able to think of one doesn't mean it can't exist) – Cássio Renan Jan 28 at 20:46
  • Maybe it could occur in a parameter pack expansion, or some template metaprogramming where void came from a template type and this expression is argument to another function call – M.M Jan 28 at 20:52
  • @M.M you can't pass void() as an argument. – Cássio Renan Jan 28 at 21:00
20

void() is a valid expression and yields a prvalue of type void. In C++ 20 this will be expanded to also include void{}. The relevant section for this is [expr.type.conv]/2

If the initializer is a parenthesized single expression, the type conversion expression is equivalent to the corresponding cast expression. Otherwise, if the type is cv void and the initializer is () or {} (after pack expansion, if any), the expression is a prvalue of the specified type that performs no initialization. Otherwise, the expression is a prvalue of the specified type whose result object is direct-initialized with the initializer. If the initializer is a parenthesized optional expression-list, the specified type shall not be an array type.

  • So, void{} should compile but it doesn't. According to this it should. But why it doesn't? – NutCracker Jan 28 at 20:37
  • @NutCracker It's only valid in C++20. Not all compilers have caught up yet. C++20 hasn't even been finalized . – NathanOliver Jan 28 at 20:39
  • @NutCracker No problem. It is a needed addition to try and make uniform initialization more uniform. – NathanOliver Jan 28 at 20:42
5

In addition to other answers, from here:

void - type with an empty set of values. It is an incomplete type that cannot be completed (consequently, objects of type void are disallowed). There are no arrays of void, nor references to void. However, pointers to void and functions returning type void (procedures in other languages) are permitted.

This means that you can initialize your void type to any value a == b ? foo() : void(1) or a == b ? foo() : void(1111) but it will perform nothing and would still compile successfully.

-1

Yes. void() is a perfectly valid expression. Whether that expression is valid in any given context is a different question.

  • 3
    OP has said that their code compiles. So clearly they already know that the expression is valid. To my eye, this adds nothing and doesn't clear up the confusion around what void() actually means or does at all. – scohe001 Jan 28 at 20:24
  • 4
    @scohe001 I read the question as OP knowing it compiles but not knowing if it is valid. Strictly speaking this answer does answer that, but I agree it could contain a bit more about the "why?" – idclev 463035818 Jan 28 at 20:27
  • 2
    If the answer to a question is as simple as "yes" or "no," then I'd probably close it for needing more clarity on what the real problem was. I think this question is pretty clear that OP is curious around what the expression actually means/why you would need a void expression like that. – scohe001 Jan 28 at 20:28
  • 1
    @scohe001 many questions are as simple as yes/no. I try to answer questions as asked, not interpret them into whatever I think they mean. If askers can't ask specific questions that don't have yes/no answers, that's not my problem. – Jesper Juhl Jan 28 at 20:30
  • 5
    @scohe001 OP literally asks "Is void() a valid expression" twice, and even explicitly asks whether it is standard or a compiler extension. I can't see how you interpret this as saying they already know it is valid . – M.M Jan 28 at 20:35

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