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I want to declare an algorithm that takes a pair of iterators and a criterium. It then returns a vector of items from the range of the iterators which fulfil the criterium.

template <typename TIterator, typename TCriterium>
std::vector< Type that I will get after dereferencing TIterator >
filter (TIterator begin, TIterator end, TCriterium passes);

I can use C++11 features such as decltype or auto. I tried:

#include <vector>

template <typename TIterator, typename TCriterium>
auto filter (TIterator begin, TIterator end, TCriterium passes) 
                      -> std::vector< decltype(*begin) >
{
}

int main()
{
    std::vector<int*> vector;
    filter(vector.begin(), vector.end(), 0);
    return 0;
}

But this doesn't work. I get:

/usr/include/c++/4.7/ext/new_allocator.h:59: 
error: forming pointer to reference type 'int*&'
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1  
Note that ˙copy_if` behaves almost the same, only that you need to pass an output iterator. –  jrok May 8 '13 at 12:18

5 Answers 5

up vote 6 down vote accepted

You could use:

std::vector<typename std::iterator_traits<TIterator>::value_type>

As the return type of your function, which would then become:

#include <vector>
#include <iterator>

// ...

template <typename TIterator, typename TCriterium>
std::vector<typename std::iterator_traits<TIterator>::value_type> filter(
    TIterator begin, TIterator end, TCriterium passes)
{
    // Body...
}

If you want to go the decltype way, then you could do:

#include <vector>
#include <type_traits>

// ...

template <typename TIterator, typename TCriterium>
auto filter (TIterator begin, TIterator end, TCriterium passes)
    -> std::vector< typename std::decay<decltype(*begin)>::type >
{
}
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Thank you! This indeed compiles and works as I want it to work. –  Martin Drozdik May 8 '13 at 12:17
    
@MartinDrozdik: Glad it helped :) –  Andy Prowl May 8 '13 at 12:18
2  
But that will fail if TIterator is a real pointer (int*). What about using std::iterator_traits<TIterator>::value_type? –  rodrigo May 8 '13 at 12:18
    
@rodrigo: I guess you're right, going to edit. Thank you –  Andy Prowl May 8 '13 at 12:18
1  
What happens if I call filter(myrange.cbegin(), myrange.cend(), ...)? Do I end up with a vector<const T> in the first case? That would not be nice. –  Sebastian Redl May 8 '13 at 12:27

*begin is a reference, so you'll need to remove that:

-> std::vector< std::remove_reference<decltype(*vector)>::type >

although, having read the other answers, I'd probably prefer to use iterator_traits here.

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You might have a look at std::remove_reference and the type_traits header for manipulating types

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Oh, so this is why my code won't compile? –  Martin Drozdik May 8 '13 at 12:18

Use std::vector<typename std::iterator_traits<TIterator>::value_type> or possibly std::vector<typename std::decay<decltype(*begin)>::type>. I would prefer the former.

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Why would you advice std::decay rather than std::remove_reference ? It seems slightly "overpowered". –  Matthieu M. May 8 '13 at 12:24
2  
If the passed iterator is a const_iterator, operator* returns a const T&, and remove_reference will turn that into a const T. You don't want a vector<const T>. Come to think of it, iterator_traits::value_type might be const for const_iterators too. –  Sebastian Redl May 8 '13 at 12:25
    
Ah! I had not thought about const-ness issues. I don't think the value_type would be const though. They typically are "bare", probably for this very reason. –  Matthieu M. May 8 '13 at 12:45

You could use std::iterator_traits to get the type used by the iterator:

template <typename TIterator, typename TCriterium>
auto filter (TIterator begin, TIterator end, TCriterium passes) 
                  -> std::vector<std::iterator_traits<TIterator>::value_type>
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