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My apologies if this is a dupe. I found a number of posts re. preventing implicit conversions, but nothing re. encouraging implicit constructions.

If I have:

class Rect
{
public:
    Rect( float x1, float y1, float x2, float y2){};
};

and the free function:

Rect Scale( const Rect & );

why would

Rect s = Scale( 137.0f, 68.0f, 235.0f, 156.0f );

not do an implicit construction of a const Rect& and instead generate this compiler error

'Scale' : function does not take 4 arguments
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1  
If you're forcing it, then it isn't implicit! –  RQDQ Nov 5 '10 at 12:10
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4 Answers

up vote 11 down vote accepted

Because the language does not support this feature. You have to write

Rect s = Scale(Rect(137.0f, 68.0f, 235.0f, 156.0f));
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... or overload Scale to accept 4 floats. –  visitor Nov 5 '10 at 12:29
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"Conversions" in C++ are between objects of one type and another type. You have 4 objects (all of type float), so you could have 4 conversions to 4 other types. There's no way to convert (in the C++ sense of the word) 4 objects to one object.

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An implicit conversion via constructor takes place if and only if the constructor takes exactly 1 argument and isn't declared explicit. In this case it takes 4, thus the result.

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I think you're talking about implicitly constructing an object. For instance,

class IntWrapper {
    public:
        IntWrapper(int x) { }
};

void DoSomething( const IntWrapper& ) { }

int main() {
    DoSomething(5);
}

This works because IntWrapper's constructor takes only one argument. In your case, Rect needs 4 arguments, so there's no implicit construction.

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Check out this question on explicit, which is the way you forbid this behavior: stackoverflow.com/questions/121162/… –  Pedro d'Aquino Nov 5 '10 at 12:23
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