Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm having trouble with auto and decltype.

void f(const vector<int>& a, vector<float>& b)
{
    typedef decltype(a[0]*b[0]) Tmp;
    for (int i=0; i < b.size(); ++i) {
      auto p0 = new auto(a[i]*b[i]);
      auto p1 = new decltype(a[i]*b[i]);
      *p0=a[i]*b[i];
      *p1=a[i]*b[i];
      cout<<*p0<<endl;
      cout<<*p1<<endl;
      delete p0;
      delete p1;
   }
}

 int main()
{

    vector<float>vec2;
    vec2.push_back(2.0);

    vector<int>vec1;
    vec1.push_back(5);

    return 0;
}

The above code runs well in GCC4.7. Could I use 'new auto(a[0]*b[0])' to allocate memory for the type of a[0]*b[0]? And I can not distinguish the difference between decltype and auto in this case.

share|improve this question
add comment

1 Answer

up vote 18 down vote accepted

The difference is that this:

  new auto(a[i]*b[i]);

is allocating an object of whatever type a[i]*b[i] is, and initializes the object with that value. That is, the parentheses are an initializer. Whereas using decltype:

  new decltype(a[i]*b[i]);

allocates an object of the same type, but there is no initializer. The object is default initialized.

Basically decltype(...) is treated as a type, while auto specifies a type to be deduced from an intializer.


C++11 Style

Since new shouldn't be used except in special cases, if for some reason these semantics are needed they'd properly be written something like this:

template<typename T, typename... Args> T make_unique(Args &&...args) {
  return std::unique_ptr<T>{std::forward<Args>(args)...};
}

template<typename T> T make_unique_auto(T &&t) {
    return std::unique_ptr<T>{std::forward<T>(t)};
}

// new auto(a[i]*b[i])
auto p1 = make_unique_auto(a[i]*b[i]);

// new decltype(a[i]*b[i])
auto p2 = make_unique<decltype(a[i]*b[i])>();

Furthermore, if one gets used to using C++11 uniform initialization universally the and if one stops using parentheses for initialization then eventually the parentheses used with decltype cease to look to the programmer like an initializer.

For this reason and others, I think it would be good for a 'modern' C++11 style to include a rule that one should always use braces and never use parentheses for initialization. (And constructors that cannot be called except with parentheses, e.g. std::vector<int>(int,int);, should be avoided; don't create new ones and don't use legacy ones.)

share|improve this answer
9  
In other words, the first is the same as new decltype(a[i]*b[i])(a[i]*b[i]);. –  R. Martinho Fernandes Jun 7 '12 at 15:31
4  
I am suddenly crying a little inside. I wish never to see that. –  Matthieu M. Jun 7 '12 at 16:21
    
Wouldn't new auto {a[i]*b[i]}; allocate a std::initializer_list? the type of cin auto c = {a[i]*b[i]}; is std::initializer_list. –  Kleist Jun 25 '13 at 21:00
    
@Kleist Aww, I'd forgotten about that. Not the first time that rule has seemed unfortunate to me. Although in this case it's both better and worse; using uniform initialization with auto and new is explicitly forbidden, but fortunately C++11 (well C++14) style doesn't permit the use of new at all. If for some reason the exact semantics called for here were needed it would properly be done like make_unique_auto(a[i]*b[i]) and make_unique<decltype(a[i]*b[i])>(). –  bames53 Jun 25 '13 at 21:30
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.