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class Interface{};

class Foo: public Interface{};

class Bar{
public:
    vector<Interface*> getStuff();
private:
    vector<Foo*> stuff;
};

How do I implement the function getStuff()?

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Note that a related problem is that Foo** is not convertible to Interface** and multiple/virtual inheritance could make the conversion from a Foo* to a Interface* nontrivial. –  dyp Jan 1 '14 at 14:52

2 Answers 2

up vote 23 down vote accepted
vector<Interface*> result(stuff.begin(), stuff.end());
return result;
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std::vector<Inherited*> and std::vector<abstract*> are different, and pretty much unrelated, types. You cannot cast from one to the other. But you can std::copy or use iterator range constructor as @Grozz says.

Edit:

Answering your question in the comments: they are different the same way two classes with members of compatible types are different. Example:

struct Foo {
    char* ptr0;
};

struct Bar {
    char* ptr1;
};

Foo foo;
Bar bar = foo; // boom - compile error

For that last statement to work you'd need to define an explicit assignment operator like:

Bar& Bar::operator=( const Foo& foo ) {
    ptr1 = foo.ptr0;
    return *this;
}

Hope this makes it clear.

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can you explain me why they are different? in my point of view semantically every "vector of ptr_to_Inherited" IS also a "vector of ptr_to_abstract" –  Mat Oct 11 '10 at 2:14
    
for that to be true vector of ptr_to_Inherited would need to inherit from vector of ptr_to_abstract, but std::vector doesn't know it needs to do this and consequently doesn't do it. –  Flexo Mar 28 '11 at 15:02

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