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As output from one function, I get an object of type Foo. As an argument to another class, I need to pass an object of type std::shared_ptr<Foo>. How can I make the shared pointer from the original object?

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Can you change the function returning Foo or the function taking shared_ptr<Foo>, or are they both from some third-party library or something? (And, if so, maybe if you tell us which one, we can skim the docs and figure out what the intent is.) –  abarnert Aug 16 '12 at 17:34
    
And this is why taking shared_ptr arguments is suboptimal and should be avoided. –  R. Martinho Fernandes Aug 16 '12 at 17:49

5 Answers 5

up vote 5 down vote accepted

This is really quite simple:

auto val = std::make_shared<Foo>(FuncThatReturnsFoo(...));

Basically, just heap allocate a new Foo, copying/moving the result into it.

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2  
shouldn't that be std::make_shared<Foo>(FuncThatReturnsFoo(...))? –  josefx Aug 16 '12 at 17:22
    
@josefx: Fixed. Thanks! –  Nicol Bolas Aug 16 '12 at 17:30
1  
I think the template parameter to make_shared needs to be explicit. make_shared<Foo>(FuncThatReturnsFoo(...)). –  bames53 Aug 16 '12 at 17:33
    
@bames53: I was going to fix it, but Jonathan got there first. –  Nicol Bolas Aug 16 '12 at 17:45

I wouldn't do that if I were you. Mainly because std::shared_ptr manages memory, whereas if you get an object as a return type, the memory is managed automatically (usually, and most likely).

You'll either have to create a new object in dynamic storage

Foo getObject();
//...
std::shared_ptr<Foo> ptr(new Foo(getObject())); //construct new object in dynamic memory
                                                //using the copy constructor

or change the function to return a pointer to an object whose memory you manage.

Foo getObject(); 
//becomes
Foo* getObject();
//or, even better
std::shared_ptr<Foo> getObject();
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I suspect you want to prevent heap-allocation otherwise just heap-allocate a copy of the returned object and go ahead.

You need to prevent that the deleter actually deletes something and need the stack to take care of this:

// given the signatures
Foo f();
void other(std::shared_ptr<Foo> x);

Foo my_f = f();
std::shared_ptr<Foo> my_fptr{&my_f, [](Foo*) {}};
other(my_fptr);

That is a real code smell, though. Why would a function accept a shared_ptr if not to extend life-time?

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There are two ways to do this:

  1. Create a new copy on the heap and make a shared_ptr from that.
  2. Make a shared_ptr from it with a null deleter.

The first can be done by writing

auto newPtr = std::make_shared<Foo>( foo );

This works, if the class Foo is copy-constructable. The second thing can be accomplished by

auto newPtr = std::shared_ptr<Foot>( &foo, [](void*){} );

Here you don't create a new copy of the object. However, this is only safe, if you can guarantee that the pointer is not accessed, after foo goes out of scope. Otherwise, you will access a destroyed object and you program is likely to do random stuff.

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You can do this

std::shared_ptr<Foo> ptr(new Foo(f());

Semantically, it's making a copy of the return value, but the copy constructor should be elided.

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