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So far I know that if you want to pass a default value for an argument to a function that is an object, you do it like this:

void function(MyObject obj = MyObject()){
    ...
}

However, I've come around to some interesting syntax lately, which confuses me. What happens when we call the function like this?

void function(MyObject obj = 0){
    ...
}

Note, we are passing an object, not a pointer. The above code compiles just fine, no errors or warnings. And this always calls the constructor with one argument - MyObject is defined like this:

class MyObject{
public:
    MyObject(double n){std::cout << "Argumented\n";}
    MyObject(){std::cout << "Default\n";}
};

Also, where is this behavior documented (because I searched and couldn't find it)?

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1  
C++ standard chapter 4 (Standard conversion) and chapter 12.3 (Special member functions/Conversions). And also 13.3.3.1 (implicit covnersion sequences). –  jrok Jun 18 '13 at 8:12
    
@jrok Thanks a lot. –  stiv.r Jun 18 '13 at 8:13
    
You're welcome. The chapter numbers are from draft n3337 but I'd expect them to be the same in official (c++11) standard. –  jrok Jun 18 '13 at 8:15
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3 Answers

up vote 11 down vote accepted

The pararameter defaults to a MyObject implicitly constructed from 0, by calling the MyObject(double) constructor. This constructor allows you to implicitly instantiate MyObjects like this:

MyObject o1 = 0;
MyObject o2 = 420/10.;

If this behaviour is not intended, then make the constructor explicit. This will also require a change to function's default parameter:

explicit MyObject(double n);

and

void function(MyObject obj = MyObject(0));
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1  
Also if you wish to disable this behavior, you can mark your constructor as explicit –  WaelJ Jun 18 '13 at 8:12
    
Oh right... Why didn't I think of that before? Thanks. –  stiv.r Jun 18 '13 at 8:12
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MyObject as shown has a so-called implicit converting constructor from double. As 0 is okay for double, the effect you see is like you did MyObject(0.0).

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Provided that the following expression:

MyObject obj = 0;

Compiles and has a value of type MyObject, then a function call taking a MyObject will be able to work in the same way.

Imagine this function signature:

void function(MyObject obj){
    ...
}

And the following caller code:

MyObject obj = 0;
function(obj);

This is equivalent to this second caller code:

function(MyObject obj = 0);

Because the value of MyObject obj = 0; is equal to the MyObject which has been constructed in that line of code.

You are just going one step forward and providing a default parameter value by taking advantage of the same rule.

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