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I am trying to implement the Merge sort algorithm:

#include <list>
#include <functional>
#include <iterator>
#include <iostream>
#include <random>

template <typename TIterator, typename TObject>
void mergeSort(const TIterator& begin, const TIterator& end,
               std::function<bool (const TObject& left,
                                   const TObject& right)> criterium)
{
    //...
}

bool compare(int a, int b)
{
    return a < b;
}

int main(int argc, char** argv)  // And now to test the algorithm
{
    std::list<int> container;
    for (int i = 0; i < 100; ++i)
        container.push_back(random() % 20);

    mergeSort(container.begin(), container.end(), compare);

    for (auto it = container.begin(); it != container.end(); ++it)
        std::cout << (*it) << std::endl;

    return 0;
}

This program does not compile:

error: no matching function for call to 
mergeSort(std::list<int>::iterator, std::list<int>::iterator, bool (&)(int, int))

candidate is:

template<class TIterator, class TObject> 
void mergeSort(const TIterator&, const TIterator&, 
std::function<bool(const TObject&, const TObject&)>)

at global scope

I know that I messed something simple in my declaration but I cannot figure it out.

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5 Answers 5

up vote 2 down vote accepted

Your function compare isn't a std::function but your mergeSort expects one. Moreover, you should not pass const_iterator to your function because it's supposed to modify the array.

If you change your code and use this:

std::function<bool(const int&, const int&)> myCompare = compare;
mergeSort(container.begin(), container.end(), myCompare);

It works (see http://ideone.com/7FdKTP).

In my opinion, it's easier to implement comparators as structs with an operator(). This way, you pass an object instead of a function, which is easier to manage.

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1  
std::function is constructible from any callable entity, so this is not a problem. The problem here is template argument deduction. –  Xeo Oct 23 '12 at 8:27
    
The problem would be the std::function arguments? –  alestanis Oct 23 '12 at 8:28
    
The std::function<bool(const TObject&, const TObject&)> means "anything that can be called with two same arguments that returns a result implicitly converitble to a bool". This is exactly what I want –  Martin Drozdik Oct 23 '12 at 8:30
    
Thank you! Indeed your suggestion works! But why is my program invalid? –  Martin Drozdik Oct 23 '12 at 8:37
    
Nitpick: you absolutely do not want a const_iterator actually, since a sort has to shuffle elements around. –  Matthieu M. Oct 23 '12 at 8:41

The TObject in std::function<bool(TObject const&, TObject const&)> can not be deduced from any argument that is not a std::function already, see this question.

You're also misusing std::function - only use it if you want to store any callable entity. If you just want to take anything callable as a parameter, make it a template parameter:

template<class Iter, class Comp>
void mergeSort(Iter first, Iter last, Comp comp)
{
  // use 'comp(a, b)'
}

This is also the way the stdlib does it (see virtually every algorithm with a predicate, like std::sort). This way, you're also avoiding the (in your case unnecessary) type erasure that std::function performs.

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Thank you! I tried to declare the criterium as an additional parameter, but it still doesn't compile. I think, that the problem is with the TObject template parameter. That is the object that the iterator is pointing to. –  Martin Drozdik Oct 23 '12 at 8:54
2  
@Martin: You never need to know what TObject really is in C++11 thanks to auto, so just declare the function as I did in the answer. :) –  Xeo Oct 23 '12 at 8:56
    
This approach probably instantiates the entire algorithm for each new criterium. Is there a way to avoid this? –  Martin Drozdik Oct 23 '12 at 8:56
1  
@Martin: Only if you've read books that are long outdated. Nowadays, disk-space is cheap anyways. A good linker will also fold identical instantiations, and anything that is left after that would need to be written anyways for every TObject if you didn't use templates. –  Xeo Oct 23 '12 at 9:01
3  
@MartinDrozdik: if the user decides that he has created too many distinct instantiations of the template, then he can change his code to use fewer different types for the Comp template parameter. One way to do that would be to use std::function to get only one instantiation per signature. The result would be the same as what you were aiming to do, but it's the user's choice rather than your algorithm restricting it. Having a different instantiation per comparator and inlining it is often a win for algorithms, but by trying to prevent "code bloat" you prevent that too. –  Steve Jessop Oct 23 '12 at 9:44

You could just take a look at std::sort:

template< class RandomIt, class Compare >
void sort( RandomIt first, RandomIt last, Compare comp );

http://en.cppreference.com/w/cpp/algorithm/sort

This way you can use whatever callable thing you want to.

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Hmm, for some odd reason this gives the same error –  Martin Drozdik Oct 23 '12 at 8:46

Though I don't know how to completely fix this, it's obvious that the compiler fails to deduce the arguments. Explicitly stating them could work as a workaround:

mergeSort< std::list<int>::iterator, bool >(container.begin(), container.end(), compare);

Another way would be explicitly converting the function you are passing into std::function.

You could also implement this by making the last argument a operator< instead of a comparing function, that would be more intuitive I think.

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The mergeSort expects const TIterator and yours isn't.

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That is true, but is not the problem in this case. The problem would be if it were the other way around. That is, if I would try to pass a const TIterator to a function where it is not declared constant. –  Martin Drozdik Oct 23 '12 at 8:27
    
Converting non-const to const is always allowed. –  Griwes Oct 23 '12 at 8:41
1  
@MartinDrozdik: Actually, if the function takes the parameter by copy, the const is irrelevant (for the caller). –  Matthieu M. Oct 23 '12 at 8:42

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