39

I'm trying to implement a function similar to std::transform algorithm but instead of taking the output iterator by an argument I want to create and return a container with transformed input elements.

Let's say that it's named transform_container and takes two arguments: container and functor. It should return the same container type but possibly parametrized by a different element type (the Functor can return element of different type).

I'd like to use my function as in the example below:

std::vector<int> vi{ 1, 2, 3, 4, 5 };
auto vs = transform_container(vi, [] (int i) { return std::to_string(i); }); 
//vs will be std::vector<std::string>
assert(vs == std::vector<std::string>({"1", "2", "3", "4", "5"}));

std::set<int> si{ 5, 10, 15 };
auto sd = transform_container(si, [] (int i) { return i / 2.; }); 
//sd will be of type std::set<double>
assert(sd == std::set<double>({5/2., 10/2., 15/2.}));

I was able two write two functions — one for std::set and one for std::vector — that seem to work properly. They are identical, except of the container typename. Their code is listed below.

template<typename T, typename Functor>
auto transform_container(const std::vector<T> &v, Functor &&f) -> std::vector<decltype(f(*v.begin()))>
{
    std::vector<decltype(f(*v.begin()))> ret;
    std::transform(std::begin(v), std::end(v), std::inserter(ret, ret.end()), f);
    return ret;
}

template<typename T, typename Functor>
auto transform_container(const std::set<T> &v, Functor &&f) -> std::set<decltype(f(*v.begin()))>
{
    std::set<decltype(f(*v.begin()))> ret;
    std::transform(std::begin(v), std::end(v), std::inserter(ret, ret.end()), f);
    return ret;
}

However, when I attempted to merge them into a single general function that works with any container, I encountered numerous issues. The set and vector are class templates, so my function template must take a template template parameter. Moreover, set and vector templates have a different number of type parameters that needs to be properly adjusted.

What is the best way to generalize the two function templates above into a function that works with any compatible container type?

  • 3
    Use variadic templates. – Constructor May 26 '14 at 13:56
  • @Constructor Well, I have tried to no avail. Perhaps I have missed something or got tricked by the syntax — if you know how to do this, please show me how. :) I can accept a template template parameter that is parametrized by the variadic number of parameters but then I don't know how to express the returned type. The usually hidden default container parameters (like allocator) needs to be expressed explicitly and appropriately adjusted — I don't know how to do this in a generic manner. – Michał W. Urbańczyk May 26 '14 at 14:08
  • Yes, I understand now. I'll think about your problem. – Constructor May 26 '14 at 14:32
  • Instead of returning a container of modified type (which, as you'll note below, cannot reasonably be done), how about returning a container-builder that, when converted to a container, builds it? It prevents auto x = blah(), but std::vector<double> y = blah() works. – Yakk - Adam Nevraumont May 26 '14 at 19:21
  • @Yakk Not having to explicitly state the resulting container type was one of the reasons why I wanted to write the transform_container function. That way I not only save on typing but also I am able to pass the resulting container as an argument in a function call (and possible have template parameter deduction work on it). The approach you're suggesting has its own merits but I prefer the solutions proposed below — reasonable or not, they provide the functionality I was seeking for. :) – Michał W. Urbańczyk May 26 '14 at 19:45
36

Simplest cases: matching container types

For the simple case where the input type matches the output type (which I've sinced realized is not what you're asking about) go one level higher. Instead of specifying the type T that your container uses, and trying to specialize on a vector<T>, etc., just specify the type of the container itself:

template <typename Container, typename Functor>
Container transform_container(const Container& c, Functor &&f)
{
    Container ret;
    std::transform(std::begin(c), std::end(c), std::inserter(ret, std::end(ret)), f);
    return ret;
}

More complexity: compatible value types

Since you want to try to change the item type stored by the container, you'll need to use a template template parameter, and modify the T that the returned container uses.

template <
    template <typename T, typename... Ts> class Container,
    typename Functor,
    typename T, // <-- This is the one we'll override in the return container
    typename U = std::result_of<Functor(T)>::type,
    typename... Ts
>
Container<U, Ts...> transform_container(const Container<T, Ts...>& c, Functor &&f)
{
    Container<U, Ts...> ret;
    std::transform(std::begin(c), std::end(c), std::inserter(ret, std::end(ret)), f);
    return ret;
}

What of incompatible value types?

This only gets us partway there. It works fine with a transform from signed to unsigned but when resolved with T=int and S=std::string, and handling sets, it tries to instantiate std::set<std::string, std::less<int>, ...> and thus doesn't compile.

To fix this, we want to take an arbitrary set of parameters and replace instances of T with U, even if they are the parameters to other template parameters. Thus std::set<int, std::less<int>> should become std::set<std::string, std::less<std::string>>, and so forth. This involves some custom template meta programming, as suggested by other answers.

Template metaprogramming to the rescue

Let's create a template, name it replace_type, and have it convert T to U, and K<T> to K<U>. First let's handle the general case. If it's not a templated type, and it doesn't match T, its type shall remain K:

template <typename K, typename ...>
struct replace_type { using type = K; };

Then a specialization. If it's not a templated type, and it does match T, its type shall become U:

template <typename T, typename U>
struct replace_type<T, T, U> { using type = U; };

And finally a recursive step to handle parameters to templated types. For each type in a templated type's parameters, replace the types accordingly:

template <template <typename... Ks> class K, typename T, typename U, typename... Ks>
struct replace_type<K<Ks...>, T, U> 
{
    using type = K<typename replace_type<Ks, T, U>::type ...>;
};

And finally update transform_container to use replace_type:

template <
    template <typename T, typename... Ts> class Container,
    typename Functor,
    typename T,
    typename U = typename std::result_of<Functor(T)>::type,
    typename... Ts,
    typename Result = typename replace_type<Container<T, Ts...>, T, U>::type
>
Result transform_container(const Container<T, Ts...>& c, Functor &&f)
{
    Result ret;
    std::transform(std::begin(c), std::end(c), std::inserter(ret, std::end(ret)), f);
    return ret;
}

Is this complete?

The problem with this approach is it is not necessarily safe. If you're converting from Container<MyCustomType> to Container<SomethingElse>, it's likely fine. But when converting from Container<builtin_type> to Container<SomethingElse> it's plausible that another template parameter shouldn't be converted from builtin_type to SomethingElse. Furthermore, alternate containers like std::map or std::array bring more problems to the party.

Handling std::map and std::unordered_map isn't too bad. The primary problem is that replace_type needs to replace more types. Not only is there a T -> U replacement, but also a std::pair<T, T2> -> std::pair<U, U2> replacement. This increases the level of concern for unwanted type replacements as there's more than a single type in flight. That said, here's what I found to work; note that in testing I needed to specify the return type of the lambda function that transformed my map's pairs:

// map-like classes are harder. You have to replace both the key and the key-value pair types
// Give a base case replacing a pair type to resolve ambiguities introduced below
template <typename T1, typename T2, typename U1, typename U2>
struct replace_type<std::pair<T1, T2>, std::pair<T1, T2>, std::pair<U1, U2>>
{
    using type = std::pair<U1, U2>;
};

// Now the extended case that replaces T1->U1 and pair<T1,T2> -> pair<T2,U2>
template <template <typename...> class K, typename T1, typename T2, typename U1, typename U2, typename... Ks>
struct replace_type<K<T1, T2, Ks...>, std::pair<const T1, T2>, std::pair<const U1, U2>>
{
    using type = K<U1, U2, 
        typename replace_type< 
            typename replace_type<Ks, T1, U1>::type,
            std::pair<const T1, T2>,
            std::pair<const U1, U2>
        >::type ...
    >;
};

What about std::array?

Handling std::array adds to the pain, as its template parameters cannot be deduced in the template above. As Jarod42 notes, this is due to its parameters including values instead of just types. I've gotten partway by adding specializations and introducing a helper contained_type that extracts T for me (side note, per Constructor this is better written as the much simpler typename Container::value_type and works for all types I've discussed here). Even without the std::array specializations this allows me to simplify my transform_container template to the following (this may be a win even without support for std::array):

template <typename T, size_t N, typename U>
struct replace_type<std::array<T, N>, T, U> { using type = std::array<U, N>; };

// contained_type<C>::type is T when C is vector<T, ...>, set<T, ...>, or std::array<T, N>.
// This is better written as typename C::value_type, but may be necessary for bad containers
template <typename T, typename...>
struct contained_type { };

template <template <typename ... Cs> class C, typename T, typename... Ts>
struct contained_type<C<T, Ts...>> { using type = T; };

template <typename T, size_t N>
struct contained_type<std::array<T, N>> { using type = T; };

template <
    typename Container,
    typename Functor,
    typename T = typename contained_type<Container>::type,
    typename U = typename std::result_of<Functor(T)>::type,
    typename Result = typename replace_type<Container, T, U>::type
>
Result transform_container(const Container& c, Functor &&f)
{
    // as above
}

However the current implementation of transform_container uses std::inserter which does not work with std::array. While it's possible to make more specializations, I'm going to leave this as a template soup exercise for an interested reader. I would personally choose to live without support for std::array in most cases.

View the cumulative live example


Full disclosure: while this approach was influenced by Ali's quoting of Kerrek SB's answer, I didn't manage to get that to work in Visual Studio 2013, so I built the above alternative myself. Many thanks to parts of Kerrek SB's original answer are still necessary, as well as to prodding and encouragement from Constructor and Jarod42.

  • 1
    transform_container can return a container which is parametrized by another type. It is a key point in the current problem. – Constructor May 26 '14 at 14:31
  • 1
    There is an example of using transform_container function in the question. std::vector<int> transforms to std::vector<std::string> in it and std::set<int> transforms to std::set<double>. – Constructor May 26 '14 at 14:39
  • @Constructor Ah, I totally missed that part; I tunnel-visioned on the difference between set and vector, not int and double. I'll revisit. – Michael Urman May 26 '14 at 14:55
  • And it is not complete: it doesn't handle container like std::array<T, N> ^_^. – Jarod42 May 26 '14 at 16:31
  • 1
    5 is not a type but a value. – Jarod42 May 26 '14 at 16:58
8

Some remarks

The following method allows to transform containers of any type from the standard library (there is a problem with std::array, see below). The only requirement for the container is that it should use default std::allocator classes, std::less, std::equal_to and std::hash function objects. So we have 3 groups of containers from the standard library:

  1. Containers with one non-default template type parameter (type of value):

    • std::vector, std::deque, std::list, std::forward_list, [std::valarray]
    • std::queue, std::priority_queue, std::stack
    • std::set, std::unordered_set
  2. Containers with two non-default template type parameters (type of key and type of value):

    • std::map, std::multi_map, std::unordered_map, std::unordered_multimap
  3. Container with two non-default parameters: type parameter (type of value) and non-type parameter (size):

    • std::array

Implementation

convert_container helper class convert types of known input container type (InputContainer) and output value type (OutputType) to the type of the output container(typename convert_container<InputContainer, Output>::type):

template <class InputContainer, class OutputType>
struct convert_container;

// conversion for the first group of standard containers
template <template <class...> class C, class IT, class OT>
struct convert_container<C<IT>, OT>
{
    using type = C<OT>;
};

// conversion for the second group of standard containers
template <template <class...> class C, class IK, class IT, class OK, class OT>
struct convert_container<C<IK, IT>, std::pair<OK, OT>>
{
    using type = C<OK, OT>;
};

// conversion for the third group of standard containers
template
    <
        template <class, std::size_t> class C, std::size_t N, class IT, class OT
    >
struct convert_container<C<IT, N>, OT>
{
    using type = C<OT, N>;
};

template <typename C, typename T>
using convert_container_t = typename convert_container<C, T>::type;

transform_container function implementation:

template
    <
        class InputContainer,
        class Functor,
        class InputType = typename InputContainer::value_type,
        class OutputType = typename std::result_of<Functor(InputType)>::type,
        class OutputContainer = convert_container_t<InputContainer, OutputType>
    >
OutputContainer transform_container(const InputContainer& ic, Functor f)
{
    OutputContainer oc;

    std::transform(std::begin(ic), std::end(ic), std::inserter(oc, oc.end()), f);

    return oc;
}

Example of use

See live example with the following conversions:

  • std::vector<int> -> std::vector<std::string>,
  • std::set<int> -> std::set<double>,
  • std::map<int, char> -> std::map<char, int>.

Problems

std::array<int, 3> -> std::array<double, 3> conversion doesn't compile because std::array haven't insert method which is needed due to std::inserter). transform_container function shouldn't also work for this reason with the following containers: std::forward_list, std::queue, std::priority_queue, std::stack, [std::valarray].

  • Thanks! Not supporting array is ok, it's quite different from other containers. However, I wasn't able to compile your code with VS 2013, it says it could not deduce template argument for 'OutputContainer'. Might be a compiler bug, their C++11 support is quirky — I'll look closer into this tomorrow. – Michał W. Urbańczyk May 26 '14 at 18:28
  • Oh man, did I really just implement the long-way around to get Container::value_type? When all you have is a template... – Michael Urman May 26 '14 at 18:38
  • @MichałW.Urbańczyk It looks like a bug in vc++. – Constructor May 26 '14 at 18:43
  • @MichaelUrman As I can see, yes. :-) But it was not so long and interesting enough, isn't it? – Constructor May 26 '14 at 18:44
  • I'm glad I did it, if only so next time maybe I'll remember the simple way. But your post shows I'm not done yet; I'm still trying to figure out how to handle both std::map and std::unordered_map somewhat generically with my approach. Ah, yours handles it by only specifying the first two template parameters, so default allocators and such! – Michael Urman May 26 '14 at 19:11
6

Doing this in general is going to be pretty hard.

First, consider std::vector<T, Allocator=std::allocator<T>>, and let's say your functor transforms T->U. Not only do we have to map the first type argument, but really we ought to use Allocator<T>::rebind<U> to get the second. This means we need to know the second argument is an allocator in the first place ... or we need some machinery to check it has a rebind member template and use it.

Next, consider std::array<T, N>. Here we need to know the second argument should be copied literally to our std::array<U, N>. Perhaps we can take non-type parameters without change, rebind type parameters which have a rebind member template, and replace literal T with U?

Now, std::map<Key, T, Compare=std::less<Key>, Allocator=std::allocator<std::pair<Key,T>>>. We should take Key without change, replace T with U, take Compare without change and rebind Allocator to std::allocator<std::pair<Key, U>>. That's a little more complicated.

So ... can you live without any of that flexibility? Are you happy to ignore associative containers and assume the default allocator is ok for your transformed output container?

4

The major difficulty is to somehow get the container type Container from Conainer<T>. I have shamelessly stolen the code from template metaprogramming: (trait for?) dissecting a specified template into types T<T2,T3 N,T4, ...>, in particular, Kerrek SB's answer (the accepted answer), as I am not familiar with template metaprogramming.

#include <algorithm>
#include <cassert>
#include <type_traits>

// stolen from Kerrek SB's answer
template <typename T, typename ...>
struct tmpl_rebind {
    typedef T type;
};

template <template <typename ...> class Tmpl, typename ...T, typename ...Args>
struct tmpl_rebind<Tmpl<T...>, Args...> {
    typedef Tmpl<Args...> type;
};
// end of stolen code

template <typename Container,
          typename Func,
          typename TargetType = typename std::result_of<Func(typename Container::value_type)>::type,
          typename NewContainer = typename tmpl_rebind<Container, TargetType>::type >
NewContainer convert(const Container& c, Func f) {

    NewContainer nc;

    std::transform(std::begin(c), std::end(c), std::inserter(nc, std::end(nc)), f);

    return nc;
}

int main() {

    std::vector<int> vi{ 1, 2, 3, 4, 5 };
    auto vs = convert(vi, [] (int i) { return std::to_string(i); });
    assert( vs == std::vector<std::string>( {"1", "2", "3", "4", "5"} ) );

    return 0;
}

I have tested this code with gcc 4.7.2 and clang 3.5 and works as expected.

As Yakk points out, there are quite a few caveats with this code though: "... should your rebind replace all arguments, or just the first one? Uncertain. Should it recursively replace T0 with T1 in later arguments? Ie std::map<T0, std::less<T0>> -> std::map<T1, std::less<T1>>?" I also see traps with the above code (e.g. how to deal with different allocators, see also Useless' answer).

Nevertheless, I believe the above code is already useful for simple use cases. If we were writing a utility function to be submitted to boost, then I would be more motivated to investigate these issues further. But there is already an accepted answer so I consider the case closed.


Many thanks to Constructor, dyp and Yakk for pointing out my mistakes / missed opportunities for improvements.

  • Why do you set NewType template parameter explicitly instead of obtaining it using a functor as OP does in his answer? – Constructor May 26 '14 at 15:19
  • @Constructor Yes, thanks, I have fixed that. By the way, std::result_of gives a more readable way of achieving the same thing. – Ali May 26 '14 at 15:28
  • std::inserter(nc, std::end(nc)) Why not a back_inserter? – dyp May 26 '14 at 15:46
  • 1
    Add some template<class T>using foo_t=typename foo<T>::type to reduce the noise of your return type (to foo_t<T> from typename foo<T>::type) – Yakk - Adam Nevraumont May 26 '14 at 15:46
  • 2
    Second, should your rebind replace all arguments, or just the first one? Uncertain. Should it recursively replace T0 with T1 in later arguments? Ie std::map<T0, std::less<T0>> -> std::map<T1, std::less<T1>>? hmm – Yakk - Adam Nevraumont May 26 '14 at 15:49

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