Is this code legal? It compiles but I'm wondering what happens with the return value. Undefined behavior?
class Foo {
public:
void test1() {
}
auto test() -> decltype(test1()) {
return test1(); //<---return void here!
}
};
asked Dec 31, 2019 at 9:32
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2A void function can return another void function. A void function can even return (void)"I'm a void";– mfnxDec 31, 2019 at 9:41
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2There are rules in place in the C++ spec that allow a void function to return a void value, to handle cases where templated functions may need to do exactly that without having to use special treatment just for void– Remy LebeauDec 31, 2019 at 10:11
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1@RemyLebeau Indeed this question came from a doubt using a template function :)– greywolf82Dec 31, 2019 at 10:29
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2 Answers
The code is legal. auto deduces to void and a void function can return another void function. A void function can even
return static_cast<void>("I'm a void");
It's legal, but you can't, for example, assign the result to a variable. [1]
class Foo {
public:
void test1() {
}
auto test() -> decltype(test1()) {
return test1(); //<---return void here!
}
};
int main() {
Foo foo;
auto x = foo.test(); //<---compile error here
}
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1I guess this should be obvious, as you cannot have a
void x = whatever();anyway [?]– MacDadaFeb 14 at 1:46