I want to find the first nonzero element from a map, therefore I did the following code:

#include <map>
#include <iostream>
#include <algorithm>

bool nonzero(std::map<char,int>::const_iterator& it);

int main()  {
    std::map<char, int> m;
    m['a'] = 0;
    m['b'] = 1;
    std::map<char,int>::iterator it = std::find_if(m.begin(), m.end(), nonzero);
    std::cout << it->first << '\t' << it->second << std::endl;
    return 0;
}


bool nonzero(std::map<char,int>::const_iterator& it)    {
    return it->second;
}

The g++ give errors that is very complicated, saying that:

/usr/include/c++/5/bits/predefined_ops.h:234:30: error: invalid initialization of reference of type ‘std::_Rb_tree_const_iterator<std::pair<const char, int> >&’ from expression of type ‘std::pair<const char, int>’
  { return bool(_M_pred(*__it)); }

I don't understand what does it saying and why my program will fail.

  • 2
    find_if passes *i to your function, not i. – Tavian Barnes Oct 20 '16 at 15:25
  • 2
    Double check the predicate requirements here – NathanOliver Oct 20 '16 at 15:26
  • 2
    Look up any example of using std::find_if. – juanchopanza Oct 20 '16 at 15:26
up vote 5 down vote accepted

The type expected for your nonzero function called by find_if is not a std::map<char,int>::const_iterator&, but a const std::pair<const char, int> &.

In fact, if you check some online documentation for find_if, you'll see that the unary predicate has the form:

bool UnaryPredicate(const Type&)

where Type is in your case std::pair<const char, int> (for a general std::map<Key, Value>, the type is std::pair<const Key, Value>).

So you may adjust your function passing a const& to that std::pair:

bool nonzero(const std::pair<const char, int> & p)
{
    return (p.second != 0);
}

Note that using C++14 auto with lambdas would have simplified your code, e.g.:

auto it = std::find_if(m.begin(), m.end(), [](const auto& p){
    return (p.second != 0);
});

Note also that the pair is of the general form std::pair<const Key, Value> (not just pair<Key, Value> with non-const Key).

find_if passes value_type (actually, iterator.operator*()) to the function/function object passed to it. Your nonzero should accept std::map<char,int>::value_type const& as a parameter, or, more succintly: std::pair<const char, int> const&

bool nonzero(std::pair<const char, int> const& element) {
    return it.second;
}

Note that the pair's key is const. if you omit it, you'll be copying every map element you check.

If you can use C++14 or newer, you could also make it even shorter with auto and a generic lambda:

auto it = std::find_if(m.begin(), m.end(), [](auto const& pair){ return p.second; });

And C++11 version:

auto it = std::find_if(m.begin(), m.end(), [](std::pair<const char, int> const& pair){ return p.second; })
  • Note, lambda's Are C++11 or higher only. – Sombrero Chicken Oct 20 '16 at 15:29
  • @GillBates right. Fixed. – krzaq Oct 20 '16 at 15:31

Function accepts:

bool nonzero(const std::map<char,int>::value_type& value);

which is std::pair<const char,int>, not iterator

You should check result of find_if by comparing with std::map::end() before using that iterator.

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