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In Lisp, any expression can be evaluated. C++ adopts the concepts: "Expression", "Value", "Evaluation".

Please refer to the C++ standard 5.1 if you don't know the relations between "Expression", "Value", and "Evaluation".

I know ?: is an expression as same as + expression.

Any expression must be able to be evaluated and give a value. However ?: expression seems not always so.

void f1() {}
void f2() {}

void test(bool b)
{
    b ? f1() : f2(); // OK. What's the value of this expression?
}

Any expression should have a value; b ? f1() : f2(); is an expression; What's its value?

Any explanation?

Updates and my own answer:

Excerpted from the C++ standard 5.1:

An expression can result in a value and can cause side effects.

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3  
operator+ and ternary operator are completely different things. –  LihO Sep 16 '13 at 7:12
1  
They can both make an expression. –  xmllmx Sep 16 '13 at 7:12
1  
What is the question? In int a = 1 ? f1() : f2(); a will always get the result of f1() and f2() will never be called. Both f1 and f2 are declared void, so my example would be invalid with your functions. –  Jonathon Reinhart Sep 16 '13 at 7:14
    
The result is always f1() –  πάντα ῥεῖ Sep 16 '13 at 7:14
6  
The result is void. –  alk Sep 16 '13 at 7:14

5 Answers 5

The value of the expression b ? f1() : f2() is either f1() or f2() depending on the value of b. In your case, both functions return void, so the value of the expression is nothing.

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I think this answer doesn't catch the essence of this question. Compiler's optimazation is not its focus. It focuses on the concepts of "expression", "value", and "evaluation", which are important almost for any language. –  xmllmx Sep 16 '13 at 9:08
1  
@xmllmx: It doesn't make ANY difference. The expression value is still nothing irrespective of optimization level. In C++, value of an expression could be nothing. What essence are you looking for? –  Nawaz Sep 16 '13 at 9:10
    
The first sentence is false. Regardless of the value of the condition, the compiler synthesizes the type of the conditional expression from both of the controlled expressions, even if one of them will never be evaluated. For example true ? throw 42 : 42; has type int, despite the fact that throw 42 has type void. –  James Kanze Sep 16 '13 at 9:32
    
@JamesKanze: The type is void. Also the first sentence doesn't disagree with what you said.So I don't understand why it is false; Could you elaborate? –  Nawaz Sep 16 '13 at 9:35
    
@Nawaz The type in his particular example is void, but it's not true that in general, the type of a ? b : c is the same as b. It could be the same as c, or in some cases, a different type from either. –  James Kanze Sep 16 '13 at 9:42

The value of true ? f1() : f2() is void. From your edited part, your main question is whether a void type can be seen as an expression, the answer is YES.

C++11 §3.9.1 Fundamental types Section 9

The void type has an empty set of values. The void type is an incomplete type that cannot be completed. It is used as the return type for functions that do not return a value. Any expression can be explicitly converted to type cv void (5.4). An expression of type void shall be used only as an expression statement (6.2), as an operand of a comma expression (5.18), as a second or third operand of ?: (5.16), as the operand of typeid, or as the expression in a return statement (6.6.3) for a function with the return type void.

It doesn't make much sense to compare Lisp's concepts with C++. You can, at best, compare the concepts of C++ with other C family languages, such as C, Objective C, Java, etc. Lisp is like the on the other end of "language pool" from the C family languages.

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1  
Someone gave it downvote, without specifying the reason. VERY BAD. –  Nawaz Sep 16 '13 at 9:12
    
void is a type, it can never be a value. –  xmllmx Sep 16 '13 at 10:13
    
I don't think it is no use to compare Lisp's concepts with C++'s. Many concepts in programming languages are originated in Lisp. –  xmllmx Sep 16 '13 at 10:16

An expression can have a value. Not all expressions have a value, just as not all expressions have side effects. An expression does have a type; an expression of type void doesn't have a value (since the set of values for void is empty).

In an expression of the form cond ? expr1 : expr2, the type is determined based on the types of expr1 and expr2. If both expr1 and expr2 are void, then the type of the conditional expression is void, and it has no value.

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+1. That is a big answer. –  Nawaz Sep 16 '13 at 10:28

The value is f1(). However I don't get what you want to say about the relation between this and operator+.

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2  
This is C++, Lisp is a functional programming language with totally different concepts. As far as I remember (haven't done Lisp for years) in Lisp about everything is an expression, even program code. Some of Lisp's ideas just don't fit well with C++. –  Axel Sep 16 '13 at 7:35

The ternary operator evaluates expressions - in this case it means that true is evaluated to true and then f1() is evaluated, which does nothing (the expression is evaluated to void).

I think this is one of the reasons why we have void in the language.

Please see this nice article for details.

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