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Why is `std::move` named `std::move`?

The C++11 std::move(x) function doesn't really move anything at all. It is just a cast to r-value. Why was this done? Isn't this misleading?

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Howard Hinnant Avatar asked Jan 26 '14 01:01

Howard Hinnant


2 Answers

It is correct that std::move(x) is just a cast to rvalue - more specifically to an xvalue, as opposed to a prvalue. And it is also true that having a cast named move sometimes confuses people. However the intent of this naming is not to confuse, but rather to make your code more readable.

The history of move dates back to the original move proposal in 2002. This paper first introduces the rvalue reference, and then shows how to write a more efficient std::swap:

template <class T> void swap(T& a, T& b) {     T tmp(static_cast<T&&>(a));     a = static_cast<T&&>(b);     b = static_cast<T&&>(tmp); } 

One has to recall that at this point in history, the only thing that "&&" could possibly mean was logical and. No one was familiar with rvalue references, nor of the implications of casting an lvalue to an rvalue (while not making a copy as static_cast<T>(t) would do). So readers of this code would naturally think:

I know how swap is supposed to work (copy to temporary and then exchange the values), but what is the purpose of those ugly casts?!

Note also that swap is really just a stand-in for all kinds of permutation-modifying algorithms. This discussion is much, much bigger than swap.

Then the proposal introduces syntax sugar which replaces the static_cast<T&&> with something more readable that conveys not the precise what, but rather the why:

template <class T> void swap(T& a, T& b) {     T tmp(move(a));     a = move(b);     b = move(tmp); } 

I.e. move is just syntax sugar for static_cast<T&&>, and now the code is quite suggestive as to why those casts are there: to enable move semantics!

One must understand that in the context of history, few people at this point really understood the intimate connection between rvalues and move semantics (though the paper tries to explain that as well):

Move semantics will automatically come into play when given rvalue arguments. This is perfectly safe because moving resources from an rvalue can not be noticed by the rest of the program (nobody else has a reference to the rvalue in order to detect a difference).

If at the time swap was instead presented like this:

template <class T> void swap(T& a, T& b) {     T tmp(cast_to_rvalue(a));     a = cast_to_rvalue(b);     b = cast_to_rvalue(tmp); } 

Then people would have looked at that and said:

But why are you casting to rvalue?


The main point:

As it was, using move, no one ever asked:

But why are you moving?


As the years went on and the proposal was refined, the notions of lvalue and rvalue were refined into the value categories we have today:

Taxonomy

(image shamelessly stolen from dirkgently)

And so today, if we wanted swap to precisely say what it is doing, instead of why, it should look more like:

template <class T> void swap(T& a, T& b) {     T tmp(set_value_category_to_xvalue(a));     a = set_value_category_to_xvalue(b);     b = set_value_category_to_xvalue(tmp); } 

And the question everyone should be asking themselves is if the above code is more or less readable than:

template <class T> void swap(T& a, T& b) {     T tmp(move(a));     a = move(b);     b = move(tmp); } 

Or even the original:

template <class T> void swap(T& a, T& b) {     T tmp(static_cast<T&&>(a));     a = static_cast<T&&>(b);     b = static_cast<T&&>(tmp); } 

In any event, the journeyman C++ programmer should know that under the hood of move, nothing more is going on than a cast. And the beginner C++ programmer, at least with move, will be informed that the intent is to move from the rhs, as opposed to copy from the rhs, even if they don't understand exactly how that is accomplished.

Additionally, if a programmer desires this functionality under another name, std::move possesses no monopoly on this functionality, and there is no non-portable language magic involved in its implementation. For example if one wanted to code set_value_category_to_xvalue, and use that instead, it is trivial to do so:

template <class T> inline constexpr typename std::remove_reference<T>::type&& set_value_category_to_xvalue(T&& t) noexcept {     return static_cast<typename std::remove_reference<T>::type&&>(t); } 

In C++14 it gets even more concise:

template <class T> inline constexpr auto&& set_value_category_to_xvalue(T&& t) noexcept {     return static_cast<std::remove_reference_t<T>&&>(t); } 

So if you are so inclined, decorate your static_cast<T&&> however you think best, and perhaps you will end up developing a new best practice (C++ is constantly evolving).

So what does move do in terms of generated object code?

Consider this test:

void test(int& i, int& j) {     i = j; } 

Compiled with clang++ -std=c++14 test.cpp -O3 -S, this produces this object code:

__Z4testRiS_:                           ## @_Z4testRiS_     .cfi_startproc ## BB#0:     pushq   %rbp Ltmp0:     .cfi_def_cfa_offset 16 Ltmp1:     .cfi_offset %rbp, -16     movq    %rsp, %rbp Ltmp2:     .cfi_def_cfa_register %rbp     movl    (%rsi), %eax     movl    %eax, (%rdi)     popq    %rbp     retq     .cfi_endproc 

Now if the test is changed to:

void test(int& i, int& j) {     i = std::move(j); } 

There is absolutely no change at all in the object code. One can generalize this result to: For trivially movable objects, std::move has no impact.

Now lets look at this example:

struct X {     X& operator=(const X&); };  void test(X& i, X& j) {     i = j; } 

This generates:

__Z4testR1XS0_:                         ## @_Z4testR1XS0_     .cfi_startproc ## BB#0:     pushq   %rbp Ltmp0:     .cfi_def_cfa_offset 16 Ltmp1:     .cfi_offset %rbp, -16     movq    %rsp, %rbp Ltmp2:     .cfi_def_cfa_register %rbp     popq    %rbp     jmp __ZN1XaSERKS_           ## TAILCALL     .cfi_endproc 

If you run __ZN1XaSERKS_ through c++filt it produces: X::operator=(X const&). No surprise here. Now if the test is changed to:

void test(X& i, X& j) {     i = std::move(j); } 

Then there is still no change whatsoever in the generated object code. std::move has done nothing but cast j to an rvalue, and then that rvalue X binds to the copy assignment operator of X.

Now lets add a move assignment operator to X:

struct X {     X& operator=(const X&);     X& operator=(X&&); }; 

Now the object code does change:

__Z4testR1XS0_:                         ## @_Z4testR1XS0_     .cfi_startproc ## BB#0:     pushq   %rbp Ltmp0:     .cfi_def_cfa_offset 16 Ltmp1:     .cfi_offset %rbp, -16     movq    %rsp, %rbp Ltmp2:     .cfi_def_cfa_register %rbp     popq    %rbp     jmp __ZN1XaSEOS_            ## TAILCALL     .cfi_endproc 

Running __ZN1XaSEOS_ through c++filt reveals that X::operator=(X&&) is being called instead of X::operator=(X const&).

And that's all there is to std::move! It completely disappears at run time. Its only impact is at compile-time where it might alter what overload gets called.

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Howard Hinnant Avatar answered Oct 04 '22 00:10

Howard Hinnant


Let me just leave here a quote from the C++11 FAQ written by B. Stroustrup, which is a direct answer to OP's question:

move(x) means "you can treat x as an rvalue". Maybe it would have been better if move() had been called rval(), but by now move() has been used for years.

By the way, I really enjoyed the FAQ - it's worth reading.

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podkova Avatar answered Oct 04 '22 00:10

podkova