7

I want to write a function that can take either of STL generic list, deque or vector and search for a key in it. What would be method signature of this function and how can we implement it?

What I know is that if we are accepting any of the derived classes in function argument we can use base abstract class assuming all relevant derived ones have the functions you need for your question.

EDIT: We cannot pass container's iterators in the function argument. If we can that is easy. It has to be a container.

I was thinking: Assuming 'Container' is an abstract base class from STL containers (which its not, according to first answer below).

template bool Search(std::Container C, T& key);

Thanks

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  • 4
    They have no base class. Look at <algorithm> functions to see what they do.
    – chris
    Feb 22, 2016 at 20:31
  • Thanks but your comment doesn't help with question asked. Most of <algorithm> pre-defined functions are helpful when provided a range but I need to pass in an STL container.
    – shaffooo
    Feb 22, 2016 at 20:41
  • 5
    Thanks but your comment doesn't help with question asked -- Yes it does. It is stating that there is no base class for the STL containers. So your question is based on a false assumption. So forget about base classes and think how to do this another way. Feb 22, 2016 at 21:01

3 Answers 3

13

As SergeyA mentioned in his answer, C++'s STL does not have polymorphic containers (opposing to Java or C# interfaces).

Regarding your requested function signature, look into STL <algorithm> header. There are lot of functions operating on some data, using two pointers (iterators) to the beginning and end of data block. For example,

template< class InputIt, class T >
InputIt find( InputIt first, InputIt last, const T& value );

searching for some value in [first, last).

If you really want to pass whole container to the function, you'll similarly write

template<class Container, class T>
bool Search(const Container& container, const T& value)
{
    for (auto iterator = container.begin(); iterator != container.end(); ++iterator)
    {
        if (*iterator == value)
            return true;
    }
    return false;
}
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  • This is what I wanted. How can I get iterators from this template container?
    – shaffooo
    Feb 22, 2016 at 21:19
  • 1
    If the container is of type T and your function is designed to work on the type that's in the container, then you don't need two parameters in the template definition: template<class Container> bool Search(const Container& container, const Container::value_type& value) Feb 22, 2016 at 21:26
  • 1
    @shaffooo, If you ever can't use auto, it's still possible through the typename Container::[const_]iterator convention.
    – chris
    Feb 22, 2016 at 21:26
  • 1
    @PaulMcKenzie, Unfortunately, this can have some undesired consequences. For example, you have a container of std::string and you want to find "abc" (except long enough that SSO doesn't apply). Now you need to create a new string with an allocation and all. Such problems aren't usually a worry unless you're making a library where users might care, however. One advantage to your approach is that you can use braces as an argument to construct the value.
    – chris
    Feb 22, 2016 at 21:28
  • 1
    @chris Then you can have default parameters for function templates. To illustrate: ideone.com/ZmMc0H Defaults to value::type, otherwise uses the provided T type. Of course I didn't even need to specify the first template argument -- it's to illustrate that if 1 arg is provided, the default does take effect. Feb 22, 2016 at 21:40
5

Luckily for us, there is no base class for standard library containers. The only place I know of where polymorphic inheritance is used in standard library is streams, and this is what earned them such a bad fame.

Standard containers are non-polymorphic, thus fast. You will have to make your function template to work with any container.

For example,

template <class CONTAINER> bool exists(const CONTAINER& ctr, const typename CONTAINER::value_type& key); 
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  • I understand that we have to make template but what I want to know is what would be function signature. what will we pass for container, key can be of some generic type T defined as template<typename T>.
    – shaffooo
    Feb 22, 2016 at 20:40
  • @shaffooo, think iterators.
    – SergeyA
    Feb 22, 2016 at 20:41
  • I think you are saying that we have an STL container in a caller function that we can get beginning and ending iterator and pass in both iterators and the key and search in that range or use 'find' function from <algorithm>. I know that solution. This question was asked in an interview and restriction is that I have to pass in any STL container itself
    – shaffooo
    Feb 22, 2016 at 20:46
  • so will the function argument be std::list<T> or std::deque<T> or std::vector<T>? I can only pass in one container argument and one key argument something like search(std::container<T> c, T key)
    – shaffooo
    Feb 22, 2016 at 20:56
3

Containers do not have base classes. They do not define an interface based on dynamic polymorphism. They define an interface based on static polymorphism. That is, they do implement certain methods in common, but they are not inherited from some prototype.

Therefore, you must use the standard C++ mechanism for static polymorphism: templates. The container itself must be a template parameter:

template<typename Container, ...>
bool IsFound(const Container &c, ...);

Of course, this will not prevent any user from passing types which are not vector, deque, or list. They could pass anything that fulfills the implicit static requirements that your IsFound function imposes.

You could pass a set for example, and it would probably work, to some degree. But it wouldn't be nearly as fast as calling set::find with the type.

2
  • That is helpful. Now how can we make this container accept template data type. Can we do template <typename Container<typename T>> for accepting containers of different data types, int or double etc.
    – shaffooo
    Feb 22, 2016 at 21:06
  • For STL containers, you know the type by utilizing Container::value_type. Feb 22, 2016 at 21:13

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