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I know that in C++11 we can now use using to write type alias, like typedefs:

typedef int MyInt;

Is, from what I understand, equivalent to:

using MyInt = int;

And that new syntax emerged from the effort to have a way to express "template typedef":

template< class T > using MyType = AnotherType< T, MyAllocatorType >;

But, with the first two non-template examples, are there any other subtle differences in the standard? For example, typedefs do aliasing in a "weak" way. That is it does not create a new type but only a new name (conversions are implicit between those names).

Is it the same with using or does it generate a new type? Are there any differences?

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47  
I personally prefer the new syntax because it is much more similar to regular variable assignment, improving readability. For example, do you prefer typedef void (&MyFunc)(int,int); or using MyFunc = void(int,int); ? –  Matthieu M. May 25 '12 at 8:08
1  
I fully agree, I only use the new syntax now. That's why I was asking, to be sure there is really no difference. –  Klaim May 25 '12 at 8:21
14  
@MatthieuM. those two are different btw. It should be typedef void MyFunc(int,int); (which actually doesn't look as bad), or using MyFunc = void(&)(int,int); –  R. Martinho Fernandes May 25 '12 at 14:28
    
@R.MartinhoFernandes: Ah thanks, I did not know of the first form and thought it was equal to the using form I presented. Indeed the first is not too bad (except for having the name in the middle). –  Matthieu M. May 25 '12 at 14:36
4  
simple difference: using can be templated, while typedef cannot. –  texasbruce May 7 at 13:27

2 Answers 2

up vote 117 down vote accepted

They are equivalent, from the standard (emphasis mine) (7.1.3.2):

A typedef-name can also be introduced by an alias-declaration. The identifier following the using keyword becomes a typedef-name and the optional attribute-specifier-seq following the identifier appertains to that typedef-name. It has the same semantics as if it were introduced by the typedef specifier. In particular, it does not define a new type and it shall not appear in the type-id.

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5  
From the answer, using keyword seems to be a superset of typedef. Then, will typdef be deprecated in future ? –  iammilind May 25 '12 at 4:28
    
That makes it clear. –  Klaim May 25 '12 at 5:09
    
@iammilind probably not, but you can code as if it were. –  bames53 May 25 '12 at 5:09
5  
Deprecation doesn't necessarily indicate intent to remove--It merely stands as a very strong recommendation to prefer another means. –  Iron Savior Apr 20 '13 at 20:37
3  
But then I wonder why they didn't just allow typedef to be templated. I remember having read somewhere that they introduced the using syntax precisely because the typedef semantics didn't work well with templates. Which somehow contradicts the fact that using is defined to have exactly the same semantics. –  celtschk Jul 21 '13 at 9:44

The using syntax has an advantage when used within templates. If you need the type abstraction, but also need to keep template parameter to be possible to be specified in future. You should write something like this.

template <typename T> struct whatever {};

template <typename T> struct rebind
{
  typedef whatever<T> type; // to make it possible to substitue the whatever in future.
};

rebind<int>::type variable;

template <typename U> struct bar { rebind<U>::type _var_member; }

But using syntax simplifies this use case.

template <typename T> using my_type = whatever<T>;

my_type<int> variable;
template <typename U> struct baz { my_type<U> _var_member; }
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I already pointed this in the question though. My question is about if you don't use template is there any difference with typedef. As, for example, when you use 'Foo foo{init_value};' instead of 'Foo foo(init_value)' both are supposed to do the same thing but don't foillow exactly the same rules. So I was wondering if there was a similar hidden difference with using/typedef. –  Klaim May 2 at 19:57

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