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0

Your code does not make much sense as it would be logically equal to this: Foo bar( std::move( 123 ) ); There is no point to move constant, and string literal is a constant. Better question would be, and I think is that what you really meant by your question: class Foo { ... }; class Bar { public: Bar( const Foo &foo ); Bar( Foo ...


0

If that's even legal and I don't know if it is, it is not optimising anything. The literal is created at compile time in static space. It can't be moved. string will always own a copy of the data and not just "refer" to it.


3

No, there's no point moving a string literal. It's a static array (not a "temporary that's constructed"), which can't be moved, only copied.


0

If I get you right, you want to "move" the vector in a class member via a constructor call. In C++11 you would have to provide a constructor with std::vector<T>&& argument and call Foo my_foo(std::move(my_vector)); In C++03 you can add a "named constructor" or a friend which does this job for you. template <class T> class Foo { ...


4

You could define a type wrapping a reference, and a function to wrap it, to give something similar to move semantics at the call site. Something along the lines of template <typename T> struct move_ref { explicit move_ref(T & ref) : ref(ref) {} T & ref; }; template <typename T> move_ref<T> move(T & t) {return ...


0

C++03 way is to use std::auto_ptr to express passing ownership of the data class Foo { public: explicit Foo(std::auto_ptr<std::vector<int> > vec) : m_vec(vec) { } private: Foo(const Foo&); Foo& operator=(const Foo&); std::auto_ptr<std::vector<int> > m_vec; }; // usage: ...


3

Sure it is possible to have move semantics in C++03. Using Boost.Move: #include <vector> #include <utility> #include <boost/move/move.hpp> class Foo { public: Foo(BOOST_RV_REF(std::vector<int>) vec) { std::swap(vec, m_vec); // "move" vec into member vector } private: std::vector<int> m_vec; }; int ...


5

You may use some wrapper with explicit name: template <typename T> class MyMove { public: explicit MyMove(T& t) : t(t) {} T& get() {return t;} private: T& t; }; template <typename T> MyMove<T> myMove(T& t) { return MyMove<T>(t); } And then class Foo { public: ...


0

Sean Parents answers this question in a comment of his in this link. Lets say that you have a class Foo with an assignment operator as the example below: class Foo { Foo& operator=(Foo o) noexcept { member = move(o.member); return *this; } }; And wrap a Foo object in a struct, say struct wrap like in the example below: struct wrap { ...


2

Just do class mapContainer { public: mapContainer(map<int, unique_ptr<int> > smallMap) : smallMap_(std::move(smallMap)) { } private: const map<int, unique_ptr<int> > smallMap_; }; Live example


6

The second version, the one taking a reference, is a tiny bit more efficient, since there's no separate object constructed for the function parameter. You would find this kind of style in generic library code where you don't want to impose any unnecessary cost on the user. The first version is a bit easier to read and to remember, and allows the slightly ...


2

worker = std::thread (&Directory::working_loop,this); Here be danger when moving... The thread of execution is bound to a member function on a specific instance of on object. If the object changes location in memory, all sorts of trouble awaits your thread. Don't just move it. You don't show the implementation of the thread's function ...


5

Because the foo_class objects constructed in Data x{c,c+"3"}; are both temporaries. So they invoke move constructor instead of copy constructor. type constructor // 1. Construct a temporary foo_class object out of string "c" for a move constructor // 2. Move the temporary object created above to x.a destructor // 3. Destruct the temporary foo_class ...


13

Yes, *this is always an lvalue, no matter how a member function is called, so if you want the compiler to treat it as an rvalue, you need to use std::move or equivalent. It has to be, considering this class: struct A { void gun(); // leaves object usable void gun() &&; // makes object unusable void fun() && { gun(); gun(); } ...


1

Why does this asymmetry exist? Backward compatibility, and because the relationship between copying and moving is already asymmetrical. The definition of MoveConstructible is a special case of CopyConstructible, meaning that all CopyConstructible types are also MoveConstructible types. That's true because a copy constructor taking a reference-to-const ...


0

It is essentially to avoid migrated code to perform unexpected different actions. Copy and move require a certain level of coherence, so C++11 -if you declare just one- suppress the other. Consider this: C a(1); //init C b(a); //copy C c(C(1)); //copy from temporary (03) or move(11). Suppose you write this in C++03. Suppose I compile it later in C++11. ...


6

When a class would be moved but for the fact that no move constructor is declared, the compiler falls back to copy constructor. In the same situation, if move constructor is declared as deleted, the program would be ill-formed. Thus, if move constructor were implicitly declared as deleted, a lot of reasonable code involving existing pre-C++11 classes would ...


3

What is the correct syntax for the above assignment operator? If i is const it can't be assigned, so the implementation of the assignment operator should simply return *this assignment operator should be left as implicitly delete'ed. The default, compiler-generated assignment operator performs a member-wise assignment of each non-static data member. ...


1

The body would be: A& A::operator= (A&& a) { // code to move-assign other members return *this; } It is not possible to update i in this function because i is const. I don't see what you are trying to do in example 2.


6

So you have a function that takes an in-out parameter that it is going to modify to pass back information to the caller. But you want the parameter to be optional. So your solution is to make the parameter appear to be an in parameter, by requiring callers to move arguments (which would usually mean they lost whatever state they had or may be in an ...


8

void Foo(Bar&& b = Bar()) { /* stuff */ } That's certainly a valid use of r-value references, but it does not in any way reflect the actual semantics, and is thus "broken by design". What you want to do, is use a forwarder-function supplying the default argument like this: void Foo(Bar& b) { /* stuff */ } void Foo() { Bar b{}; Foo(b); } Or ...


3

GCC is correct (and Clang and EDG agree). myTemplate has a user-declared move constructor, therefore its copy assignment operator is deleted. You've provided a copy constructor, but not copy assignment operator. Just declare a copy assignment operator for myTemplate and define it as defaulted. That takes one extra line of code.


1

To remove the constness of an object, the cast to use is const_cast and not static_cast Do you want something like : template<typename T> T&& my_move(const T& t) noexcept { return std::move(const_cast<T&>(t)); } (with the possible problems to remove const from object)... Live example


1

Depending on your call hierarchy and what all those functions have to do except for passing down the object you might use another technique if you aim to store the object inside your class anyway. class A { A(const A& a) { initFrom(A(a)); // take a copy here } A(A&& a) { initFrom(std::move(a)); // move here } ...


2

You are using the non-conforming C++11 stack_alloc. As Hinnant himself wrote, I've updated this article with a new allocator that is fully C++11 conforming. The allocator it replaces was not fully C++03 nor C++11 conforming because copies were not equal. The corrected version is named short_alloc and is found here. Usage requires placing the stack ...


2

When you move-construct the second container, the container move-constructs the allocator and takes over the pointers. When the second container dies, the it tries to deallocate the pointers and does it wrongly, causing UB in the pointer comparison in deallocate(). The "allocator" does not satisfy the allocator requirements, particularly: X a1(move(a)) ...


2

Here are answers about argument evaluation order - In short: the order is not specified in standard and may be different per platform, compiler and calling convention. But I wanted to test it so here are results for Cygwin GCC: #include <iostream> #include <memory> using namespace std; void print(int* p) { cout << (p == nullptr ? ...


0

Calling std::move() on arguments is perfectly safe. What is not safe is tripping yourself up by writing to a raw pointer that was managed by an object that has relinquished the pointer's memory to the free store.


3

No, it's NOT safe. the eval order of argument is not specified in standard. So your code can be run as: std::move(p). call move constructor of std::unique_ptr<int>. p.get() (because of 2., this will be nullptr.) and pass this parameter. call foo. You have to do like this: int *raw = p.get(); foo(raw, std::move(p)); Notice that your code can ...


3

Suppose we have a type with a mutable state. Then const&& will both allow us to mutate that state, and indicate that such mutation is safe. struct bar; struct foo { mutable std::vector<char> state; operator bar() const&; operator bar() const&&; }; const is not absolute. Barring mutable state, it is not safe to cast away ...


3

Maybe, maybe not. It's not a question of whether the compiler is smart enough, but what other special member functions you have remembered, or forgotten, to define. The exact conditions when a move constructor will be implicitly defined by the compiler are listed under §12.8/9 [class.copy] If the definition of a class X does not explicitly declare a move ...


3

On the usefulness of const&&... The usefulness of the const&& qualifier on the member method is minimal at best. The object cannot be modified in the same manner as a && method would allow it to be modified; it is const after all (as noted, mutable does change this). So we will not be able to rip out its guts, since the temporary is ...


7

Will c++11 smartly do the move for my temporary variable? Or, how can I make sure it is a move instead of a copy? It depends. This vec.push_back(MyStruct()); will bind to std::vector<MyStruct>::push_back(MyStruct&&); but whether the rvalue passed is moved or copied depends fully on whether MyStruct has a move copy constructor ...


1

If the type is movable then it definitely will be. In general standard-complying compiler should always choose move semantics to copy semantics if such are available.


4

Because the MyStruct() will create an rvalue the T && overload will be called. It's actually very easy to verify (demo): #include <iostream> struct A{ int x; }; void foo(A &&x){ std::cout<<"&&" <<std::endl; } void foo(A &x){ std::cout<<"&" <<std::endl; } int main() { foo(A()); // prints ...


10

In C++11 std::vector::push_back will use a move constructor if passed an rvalue (and a move constructor exists for the type), but you should also consider using std::vector::emplace_back in such situations; std::vector::emplace_back will construct the object in place rather than moving it.


1

Yes, it is going to use push_back( T&& value ), and move the value.


1

Yes, a defaulted move constructor will perform a member-wise move of its base and members, so: Example(Example&& mE) : a{move(mE.a)}, b{move(mE.b)} { } is equivalent to: Example(Example&& mE) = default; we can see this by going to the draft C++11 standard section 12.8 Copying and moving class objects paragraph 13 which ...


11

See this answer for a detailed description of how vector move assignment must work. As you are using the std::allocator, C++11 puts you into case 2, which many on the committee considered a defect, and has been corrected to case 1 for C++14. Both case 1 and case 2 have identical run time behavior, but case 2 has additional compile-time requirements on the ...


17

C++11 The difference in the behaviours in the OP between C++03 and C++11 are due to the way move assignment is implemented. There are two main options: Destroy all elements of the LHS. Deallocate the LHS's underlying storage. Move the underlying buffer (the pointers) from the RHS to the LHS. Move-assign from the elements of the RHS to the elements of the ...



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