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#include <vector>
#include <algorithm>

void foo( int )
{
}

int main()
{
  std::vector< int > v( { 1,2,3 } );

  std::for_each( v.begin(), v.end(), []( auto it ) { foo( it+5 ); } );
}

When compiled, the example above starts the error output like this :

h4.cpp: In function 'int main()':
h4.cpp:13:47: error: parameter declared 'auto'
h4.cpp: In lambda function:
h4.cpp:13:59: error: 'it' was not declared in this scope

Does it mean that the keyword auto should not be used in lambda expressions?

This works :

std::for_each( v.begin(), v.end(), []( int it ) { foo( it+5 ); } );

Why the version with the auto keyword doesn't work?

share|improve this question
1  
I think that even if it is a lambda, it still work as a function, and must have a signature. With auto you let the compiler decide of the type, so your lambda has no real signature until compile-time. –  Geoffroy Oct 10 '11 at 7:59
2  
We really need polymorphic lambdas (AKA implicit templates) in the next standard. This question is just one of several instances where people just assume auto works this way. I see no reason it shouldn't. –  deft_code Oct 10 '11 at 15:06
    
deft_code , I'm with you. It is a logical usage case for auto. –  Robert Jun 18 '13 at 11:34

3 Answers 3

up vote 37 down vote accepted

auto keyword does not work as a type for function arguments. If you don't want to use the actual type in lambda functions, then you could use the code below.

 for_each(begin(v), end(v), [](decltype(*begin(v)) it ){
       foo( it + 5);         
 });
share|improve this answer
9  
We're going to get auto support in lambdas in C++14. –  Aaron McDaid Oct 30 '13 at 13:27

This was discussed briefly by Herb Sutter during an interview. Your demand for auto arguments is in fact no different from demanding that any function should be declarable with auto, like this:

auto add(auto a, auto b) -> decltype(a + b) { return a + b; }

However, note that this isn't really a function at all, but rather it's a template function, akin to:

template <typename S, typename T>
auto add(S a, T b) -> decltype(a + b) { return a + b; }

So you are essentially asking for a facility to turn any function into a template by changing its arguments. Since templates are a very different sort of entity in the type system of C++ (think of all the special rules for templates, like two-phase look-up and deduction), this would be radical design change with unforeseeable ramifications, which certainly isn't going to be in the standard any time soon.

share|improve this answer
    
No, not asking or demanding :) I was just wondering why it doesn't work. –  BЈовић Oct 10 '11 at 10:50
5  
Well, it's essentially the same reason as for "why aren't all functions templates" -- it just doesn't fit into the design of the language. –  Kerrek SB Oct 10 '11 at 10:53

The type of the lambda needs to be known before the compiler can even instantiate std::for_each. On the other hand, even if it were theoretically possible, that auto could only be deduced after for_each has been instantiated by seeing how the functor is invoked.

If at all possible, forget about for_each, and use range-based for loops which are a lot simpler:

for (int it : v) { 
   foo(it + 5); 
}

This should also cope nicely with auto (and auto& and const auto&).

for (auto it : v) { 
   foo(it + 5); 
}
share|improve this answer
    
Yes but that only works with for_each, and not other algorithms. e.g. you want to sort on a lambda. –  CashCow Nov 7 '13 at 12:56

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