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I'm trying to create a sorted vector from a map, sorted according to a value that isn't the map's key. The map value is block object, and I want the vector to be sorted according to size, attribute of block.
My code:

#include <map>
#include <string>
#include <vector>

struct block {
    string data;
    int size;
};

struct vecotrCompare {
    bool operator()(pair<const string, block*> &left,
      pair<const string, block*> &right) {
        return left.second -> size < right.second -> size;
    }
};

int main() {
    map<const string, block*> myMap;
    vector<pair<const string, block*> > myVector(
      myMap.begin(), myMap.end());
    sort(myVector.begin(), myVector.end(), vecotrCompare());
}

The sort(...) line can't compile, and I'm getting a compile-error:

error: no match for call to ‘(vecotrCompare) (std::pair<const
  std::basic_string<char>, block*>&, const std::pair<const
  std::basic_string<char>, block*>&)’
share|improve this question
2  
required from here is only part of the error, and the most useless part at that. – chris Jun 6 '14 at 0:06
    
always post the full error – redFIVE Jun 6 '14 at 0:07
    
Anyway, you can't have non-copyable objects (like a pair of a const something) in a vector. It's redundant in the map, and won't work outside of that. – chris Jun 6 '14 at 0:09
    
I updated the question, thanks – Presen Jun 6 '14 at 0:12
1  
Good job! You've completely changed the error and the reason you're seeing it by getting rid of the const& from vecotrCompare::operator()'s arguments. Add the const& back in, and you'll run into the next error, which I've explained in my answer. – Praetorian Jun 6 '14 at 0:28
up vote 2 down vote accepted

Elements in a vector need to be MoveAssignable or CopyAssignable. A pair<const string, block*> is neither due to the const string. Change that to string and your code compiles.

map<string, block*> myMap;
vector<pair<string, block*> > myVector(myMap.begin(), myMap.end());

Also change your comparator so that the argument types are const&

struct vecotrCompare {
    bool operator()(pair< string, block*> const&left, 
                    pair< string, block*> const&right) const {
        return left.second -> size < right.second -> size;
    }
};

Live demo


The second part about the arguments needing to be const& is actually not a requirement. From §25.1/9

The BinaryPredicate parameter is used whenever an algorithm expects a function object that when applied to the result of dereferencing two corresponding iterators or to dereferencing an iterator and type T when T is part of the signature returns a value testable as true. In other words, if an algorithm takes BinaryPredicate binary_pred as its argument and first1 and first2 as its iterator arguments, it should work correctly in the construct binary_pred(*first1, *first2) contextually converted to bool (Clause 4). BinaryPredicate always takes the first iterator’s value_type as its first argument, that is, in those cases when T value is part of the signature, it should work correctly in the construct binary_pred(*first1, value) contextually converted to bool (Clause 4). binary_pred shall not apply any non-constant function through the dereferenced iterators.

So the standard never mentions that the functor's argument types must be const&, but libstdc++ seems to be passing temporaries to the functor and the code doesn't compile unless you add the const& (looks like this has been fixed in gcc-4.9).

On the other hand, both libc++ and VS2013 handle the case where the arguments are not const& correctly.

share|improve this answer
    
Almost; the OP took away the const from the functor's argument types, for no apparent reason. He needs to add it back in. – Lightness Races in Orbit Jun 6 '14 at 0:20
    
@LightnessRacesinOrbit No freaking wonder! I knew the code compiled the first time I tried it. Just copy-pasted his code again and retried to make sure there wasn't anything I'd tweaked while messing with it, and of course, it wouldn't compile anymore! – Praetorian Jun 6 '14 at 0:22
    
Yep, all correct now. :) – Lightness Races in Orbit Jun 6 '14 at 0:47

In addition to the change suggested by @Praetorian, you should add some const in vectorCompare::operator().

struct vecotrCompare {
    bool operator()(pair<const string, block*> const& left,
                    pair<const string, block*> const& right) const {
        return left.second -> size < right.second -> size;
    }
};

Here's the documentation on the requirements of comp from http://www.cplusplus.com/reference/algorithm/sort/.

comp

Binary function that accepts two elements in the range as arguments, and returns a value convertible to bool. The value returned indicates whether the element passed as first argument is considered to go before the second in the specific strict weak ordering it defines.

The function shall not modify any of its arguments.

This can either be a function pointer or a function object.

Some compilers force the argument types to be const& or an object passed by value. Others work with a reference.

share|improve this answer
    
Explain why, instead of just dumping code. It is because sort provides some temporaries (rvalues) to the comparator, and these do not bind to non-const ref. – Lightness Races in Orbit Jun 6 '14 at 0:21
    
@LightnessRacesinOrbit Excellent suggestion. I updated the answer. – R Sahu Jun 6 '14 at 0:28
    
The function shall not modify any of its arguments implies that types of the argument [etc] No, it doesn't. That is not the reason. – Lightness Races in Orbit Jun 6 '14 at 0:28
    
@LightnessRacesinOrbit In that case, I am missing some important aspect of this. – R Sahu Jun 6 '14 at 0:30
1  
@Praetorian: No, I mean, a requirement that the arguments not be modified is not the same as a requirement that the arguments be of const type. That is, the cited rule is not relevant. That you can get the sort to work with non-const arguments in alternative standard library implementations only further solidifies my claim that this answer is not quite correct. The cause of the problem is that libstdc++ is passing temporaries in, as I said. Your own answer agrees with me on all of this. – Lightness Races in Orbit Jun 6 '14 at 0:45

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