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11

widget() is a pure rvalue (prvalue), so in the line widget c((widget())); // use widget c{widget()} or c{widget{}} for more clear code it will be moved. However, the compiler just performs copy/move elision. Compile with -fno-elide-constructors and you'll see the calls to the move constructors in all their glory. Whenever you explicitly use std::move to ...


8

In general, braced-init-lists like {} are not expressions and do not have a type. If you have a function template template<typename T> void f(T); and call f( {} ), no type will be deduced for T, and type deduction will fail. On the other hand, ABC{} is a prvalue expression of type ABC (an "explicit type conversion in functional notation"). For a ...


7

The most well-defined set of rules would come directly from the standard. Here are the relevant entries from standard draft N4296: Trivially-copyable types are defined in [basic.types]/9 Cv-unqualified scalar types, trivially copyable class types, arrays of such types, and nonvolatile const-qualified versions of these types are collectively called ...


7

Your code exhibits undefined behavior, as per [namespace.std]: The behavior of a C++ program is undefined if it adds declarations or definitions to namespace std or to a namespace within namespace std unless otherwise specified. A program may add a template specialization for any standard library template to namespace std only if the declaration ...


5

Cant compiler decide do if use of move shall be performed for simple cases, does any do it already? Even with only void setData(std::string arg);, the compiler will move values like temporaries automatically: x.setData(my_string + "more"); // move from temporary std::string x.setData(get_a_string()); // move returned-by-value string As for the ...


5

Why? When you make the tuple (p.choice, p.age) you memcpy both p.choice and p.age from your Person. It's OK to do this for p.age because it's a Copy type - you can continue using the old value after memcpying from it. p.choices is of type Choices which is not Copy. This means that the memcpy is treated as a "move", so the old value is not usable. This ...


4

When you move an item, you are transferring ownership of that item. That's a key component of Rust. Let's say I had a struct, and then I assign the struct from one variable to another. By default, this will be a move, and I've transferred ownership. The compiler will track this change of ownership and prevent me from using the old variable any more: pub ...


4

The instance stored in the vector will always be a different object than the one you push in, even if it's moved. Moving an object merely invokes the move constructor instead of the copy constructor for the corresponding object being created in the vector. So yes, you can push a moveable-only type into a vector, but no, it does not somehow magically ...


4

There's no right answer, but returning by value is safer. I have read several questions on SO relating to returning rvalue references, and have come to the conclusion that this is bad practice. Returning a reference to a parameter foists a contract upon the caller that either The parameter cannot be a temporary (which is just what rvalue references ...


3

You need to join the path to the file: os.path.join(source,f) layers is a directory so ...layers+filename does not exist but ...layers\filenamedoes. You are concatenating the two strings, you could have use source = r"C:\Project\layers\" with a backslash at the end but probably best to use join.


3

As always with variables which have been std::move'd, it is unsafe to use them afterwards That's not true at all. It's perfectly safe to use things that have been moved from. There are lots of places where they must be used after being moved from by Standard, for example std::swap or even just destructing locals. What you can't do is assume that they ...


3

Moving an object transfers state from one object to another; the two objects are separate, and at different locations, and remain separate objects at the same locations afterwards. So the answer to the question is yes: the object in the vector is on the heap, wherever the object used to initialise it resides.


3

Optimizing for r-values Comparing void setData(std::string arg) and void setData(std::string&& arg). In the first case I assume setData moves the data into place class Widget { std::string data; public: void setData(std::string data) { this->data = std::move(data); } }; And if we called it like this w.setData(std::move(data)); we will ...


2

The question is how to avoid C++11's default behavior and execute copy constructor instead of move here? That isn't the default behaviour. The default behaviour would be to elide the copy in this case. The move would only take place in the unlikely case that the implementation does not implement NRVO.


2

The short answer is, you cannot make return f; not move. When you return in C++, elision is default, and if not that it is moved, and if not that it is copied. If you use a non-trivial statement -- even true?v:v, or static_cast<whatever const&>(v) -- it will prevent auto-move and force a copy. But that won't help you. Avoiding the move won't ...


2

You're running into an operator precedence issue, sort of. When you use your macro: LOG_SCOPE_TIME << "Some scope"; That expands into: LogTimer ___t = Logger::Timer(__FILE__,__LINE__) << "Some scope"; Which gets evaluated as: LogTimer ___t = (Logger::Timer(__FILE__,__LINE__) << "Some scope"); since << has higher precedence ...


2

In VS2013 default and deleted functions and rvalue references are partially implemented. Upgrade to VS2015 where these feature according to Microsoft are fully implemented (your example compiles fine). C++11/14/17 Features In VS 2015 RC


2

Semantics Rust implements what is known as an Affine Type System: Affine types are a version of linear types imposing weaker constraints, corresponding to affine logic. An affine resource can only be used once, while a linear one must be used once. Types that are not Copy, and are thus moved, are Affine Types: you may use them either once or never, ...


2

The this.Capture=false tells the OS to stop capturing mouse events. The Message.Create creates a new message to be send to the message loop of the current application. 0xA1 is WM_NCLBUTTONDOWN; which is a non-client left-button down message. Meaning it simulated clicking the left mouse button on the missing border. Windows then picks up the rest of the ...


1

At a basic level, you are sending a message to your window and having it handle it. You are giving it a 0xA1 (WM_NCLBUTTONDOWN) and by sending a 0x02 as the parameter (HTCAPTION) you fool the process into thinking you are on the caption bar. Drags on a caption bar move the window around, hence you can drag the window by using your code. Samples of doing ...


1

I wonder if I use the move semantic correctly: By accepting only rvalue referencing you are restricting passing lvalues to this constructor. You would probably find out pretty quickly you can't use this like you would expect. If you accept the types by value... Vertex(Common::Point3D position, Common::Point3D normal, Common::Point2D uv, Common::Point2D ...


1

winfo_rootx() and winfo_rooty() return the coordinates relative to the screen's upper left corner. winfo_x and winfo_y return the coordinates of a window relative to its parent.


1

Some (non-representative) runtimes for the above versions of transform: run on coliru #include <iostream> #include <time.h> #include <sys/time.h> #include <unistd.h> using namespace std; double GetTicks() { struct timeval tv; if(!gettimeofday (&tv, NULL)) return (tv.tv_sec*1000 + tv.tv_usec/1000); else ...


1

When a file is renamed correctly, the History is not "Gone", it's associated to the "old name" instead. A rename that is done the right way (tracked as a rename and not as an delete+add) has a drilldown option to view the "older" history: Changeset 81~82 contain the changes to the old name Changeset 83 contains the delete + rename Changeset 84 a new ...


1

I think you are going wrong with slowing down the loop. The last thing you want to do is slow down the game loop or sleep the game loop. This will affect all you objects with in the game. There are multiple way to go about this: Smaller increments per tick One of the most obvious things you could do is make the increment of the bullet smaller. Lets take ...


1

Please let me answer my own question. I had trouble, but by asking a question here I did Rubber Duck Problem Solving. Now I understand: A move is a transfer of ownership of the value. For example the assignment let x = a; transfers ownership: At first a owned the value. After the let it's x who owns the value. Rust forbids to use a thereafter. In fact, if ...


1

Passing a value to function, also results in transfer of ownership; it is very similar to other examples: struct Example { member: i32 } fn take(ex: Example) { // 2) Now ex is pointing to the data a was pointing to in main println!("a.member: {}", ex.member) // 3) When ex goes of of scope so as the access to the data it // was pointing ...


1

Since the "internal pointer" method cannot give all the flexibility needed for the deferred evaluation, the typical solution used by C++ numerical libraries is to define specialized classes implementing lazy evaluation mechanisms. The old SO question Lazy evaluation in C++ and its best answers show the basics of such design and some sample code. Although I ...


1

Using the beautiful answer by mweerden in Checking from shell script if a directory contains files, you can say: if [ -n "$(find aaa/ -maxdepth 0 -empty)" ]; then mv -n /Folder/Source/* /Folder/Destination fi Or even shorter: [ -n "$(find aaa/ -maxdepth 0 -empty)" ] && mv -n /Folder/Source/* /Folder/Destination [ -n "$variable" ] checks if ...


1

Assuming you have a list of known directories, I would suggest an approach like this: for dir in path/one path/two path/three; do contents=( "$dir"/* ) if [[ ${#contents[@]} -gt 0 ]]; then mv "${contents[@]}" /destination/dir fi done A glob is used to fill an array with every path inside the directory. If the length of the array is ...



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