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I'm trying to set a map of unique_ptr with a method.

class A {
    map<int, unique_ptr<B>> x;
public:
    void setx(const map<int, unique_ptr<B>>& x) {this->x = x;} // <-- error
    ...
};

However, I got this error.

'constexpr std::pair<_T1, _T2>::pair(const std::pair<_T1, _T2>&) [with _T1 = const int; _T2 = std::unique_ptr<ContextSummary>]' is implicitly deleted because the default definition would be ill-formed:

What's wrong with this assignment?

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1 Answer

up vote 4 down vote accepted

std::unique_ptr is non-copyable, therefore you can't copy a std::map that holds unique_ptrs. You can move it though:

void setx(map<int, unique_ptr<B>> x) {
    this->x = std::move(x);
}

Note that in order to move the map, you need it not to be a const reference, otherwise you can't move it. Taking it by value allows the caller to use either temporaries or moved lvalues.

So now, you'd use your code like this:

std::map<int, std::unique_ptr<B>> some_map = ...;
some_a.setx(std::move(some_map));

Or like this, using temporaries:

some_a.setx({
    {1, make_unique<B>(...)},
    {2, make_unique<B>(...)}
});

As pointed out by 0x499602D2, you can do this in your constructor directly:

A::A(map<int, unique_ptr<B>> x) 
: x(std::move(x)) {

}
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Can't he use the mem-initializer list to do that? –  0x499602D2 Jun 18 '13 at 14:18
    
@0x499602D2 do you mean instead of setx? –  mfontanini Jun 18 '13 at 14:22
    
Yes, through a constructor that takes such a parameter. –  0x499602D2 Jun 18 '13 at 14:23
    
@0x499602D2 of course, but that's not what OP is asking. I'll add an example though, thanks :P. –  mfontanini Jun 18 '13 at 14:24
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