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What is supposed to happen in the following case:

int functionA() {
    return 25;
}

void functionB(const int& ref) {
    cout << ref << endl;
}

void start() {
    functionB(functionA());
}

When compiling this example, it outputs the correct value 25. How does this work? Should'nt the referenced return value on the stack be deleted (removed from the stack) when using only a reference to it, or is the behaviour undefined?

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1  
see C++11 standard 12.2/4,5 for the effect of constant references of temporary objects –  nijansen Sep 16 '13 at 14:39

2 Answers 2

up vote 5 down vote accepted

This "works" because of const int& ref - when a reference is const (guarantees that you don't want to change it), the compiler will produce a temporary object in the calling code (start in your case), and then pass the reference to that.

If you remove const it will fail to compile because functionA's result can't be turned into a reference.

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There is no "return value on the stack" (let alone a "stack"): functionA returns an int by value, so the expression functionA() is simply a temporary value of type int. This value binds to the constant reference in functionB, and since its lifetime is that of the full expression, everything is fine.

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