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What are the rules to determine whether or not a particular static_cast will call a class's constructor? How about c style/functional style casts?

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up vote 11 down vote accepted

Any time a new object is created, a constructor is called. A static_cast always results in a new, temporary object (but see comment by James McNellis) either immediately, or through a call to a user defined conversion. (But in order to have an object of the desired type to return, the user defined conversion operator will have to call a constructor.)

When the target is a class type, C style casts and functional style casts with a single argument are, by definition, the same as a static_cast. If the functional style cast has zero or more than one argument, then it will call the constructor immediately; user defined conversion operators are not considered in this case. (And one could question the choice of calling this a "type conversion".)

For the record, a case where a user defined conversion operator might be called:

class A
{
    int m_value;
public
    A( int initialValue ) : m_value( initialValue ) {}
};

class B
{
    int m_value;
public:
    B( int initialValue ) : m_value( initialValue ) {}
    operator A() const { return A( m_value ); }
};

void f( A const& arg );

B someB;
f( static_cast<A>( arg ) );

In this particular case, the cast is unnecessary, and the conversion will be made implicitly in its absence. But in all cases: implicit conversion, static_cast, C style cast ((A) someB) or functional style cast (A( someB )), B::operator A() will be called.)

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1  
"A static_cast always results in a new, temporary object" is not true. As an example, given the class hierarchy struct B { }; struct D : B { };, the following static_cast creates no new object: D d; B& b(static_cast<B&>(d));. Any static_cast where the target type is an object type will create a new object. – James McNellis Jun 7 '11 at 16:19
    
@James Yes, I should have been more precise. I was thinking of class types (since the question involved constructors); in fact, the rule is simple (and the same for all casts): if the results are a reference, there is no new object; otherwise, there is. (In terms of the standard, the result of a type conversion is an lvalue if and only if the conversion is to a reference type.) – James Kanze Jun 8 '11 at 7:23

A constructor for a class type is called whenever a new instance of that type is created. If a cast creates a new object of that class type then a constructor is called. Overload resolution determines which of the constructors for a class type are called given particular arguments.

If the target type of a static_cast is a class type, it will create a new object of the target type.

A const_cast, dynamic_cast, or reinterpret_cast will never create a new class-type object, and thus will never call a constructor.

Since a C-style cast always performs some combination of static_cast, const_cast, and reinterpret_cast, it will create a new object in the same circumstances that a static_cast would create a new object.

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1  
That's right, but it's important to say when it creates a new instance (IIRC function-style cast always does and static cast does when it's more than cv-qualification). – Jan Hudec Jun 7 '11 at 5:51
    
The only time a new class type object is created is via static_cast when the target type is a class type. I've updated the answer with that detail. – James McNellis Jun 7 '11 at 5:57
    
But I read this – Karl von Moor Jun 7 '11 at 6:11
    
Note that if the source type has a conversion operator to the target type, then the static cast itself might not call a constructor, but nevertheless "a constructor is called". The conversion operator might well call one, plus there's a potentially-elided copy construction of the return value to consider. That copy can only be elided in situations where the conversion operator does call some ctor, directly or indirectly. – Steve Jessop Jun 7 '11 at 7:55

If there's a suitable conversion constructor that conversion constructor will be called by static_cast:

class Class {
public:
    Class( int ); //<< conversion constructor
};

int what = 0;
Class object = static_cast<Class>( what );

the same applies to C-style casts and "functional" casts.

int what = 0;
Class object = (Class)what;

int what = 0;
Class object = Class( what );
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What about if the constructor is explicit? I'd assume it would still be called. – Mankarse Jun 7 '11 at 5:50
    
@Mankarse: Yes, explicit means it can't be called without you specifying the type. When you specify the type it will be called. – sharptooth Jun 7 '11 at 5:58

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