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1) When statements such as

cout << 3.0 + 3 ; 

are made, how does one know whether the value passed to cout is an int or a float?

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4 Answers 4

up vote 3 down vote accepted

It's neither. It's a double. 3.0 has type double, and 3 is promoted to double for the addition; the result of adding a double to a double is a double. That's independent of what's being done with the result.

There are a bunch of overloaded shift-left operators for ostreams, and there's one for an argument of type double on the right-hand side, so that's the one that's called:

template <class Elem, class Traits>
basic_ostream<Elem, Traits>& basic_ostream<Elem, Traits>::operator<<(double d);

For what it's worth, that's a member function, not a free function.

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Thanks for the answer.. But what are the rules which determine what the type of the result will be ? (for a given pair of operands of different types) –  mahela007 Oct 21 '12 at 10:35
    
@mahela007 - it gets a bit complicated, since there are so many types. But basically, integral types get promoted to the largest integral type in the expression, and floating-point types get promoted to the largest floating-point type. If the expression has both integral and floating-point types, the integral types get converted to floating-point types. This gets everything to the same type, and that's the type of the result. Now, that's just a sketch; it leaves out a lot of details that you can read about elsewhere. –  Pete Becker Oct 21 '12 at 14:17

It does this by taking advantage of overloading

ostream& operator<<(ostream& output, int i) {
  // It's an int
}

ostream& operator<<(ostream& output, float f) {
  // it's a float
}

The C++ compiler will pick the appropriate overload of the << operator based on the input types. If you pass a float it will pick the overload which has a float and the same for int

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Result of 3.0 + 3 operation is double thus cout will apply the << operator for double type.

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You may use Step into feature of debugger to determine this. In which cout method it will enter it is your answer

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