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I'm trying to create a function to sort a list of contacts in an address book by name or last name.

 void sortList (list<Contact> & address_book){

 //define two iterators - first to point to the first element from the list, second to the second element
 list<Contact>::iterator it = address_book.begin();
 list<Contact>::iterator it2 = address_book.begin();
 it2++;

 //get the last name for the first 2 contacts
 string last_name1 = it->get_last_name();
 string last_name2 = it2->get_last_name();

 int i = 0;

 while (i < last_name1.length() && i < last_name2.length()){

       if (last_name1[i] < last_name2[i]){
          swap(it, it2);
          break;
       }

 }
}

I'm sure I'm not doing it correctly, but I'm a little bit lost with these iterators. I also know I should have another while loop to loop through all my contacts until all of them are sorted but, honestly I have no idea how to implement it.

share|improve this question
up vote 6 down vote accepted

std::list has an overloaded member function sort, that

Sorts the elements in ascending order. The order of equal elements is guaranteed to be preserved. The first version uses operator< to compare the elements, the second version uses the given comparison function comp.

To give the comparison function you can use functors:

struct sort_by_name {
  bool operator()(const Contact &a, const Contact &b)
  { return a.get_name() < b.get_name(); }
};
struct sort_by_last_name {
  bool operator()(const Contact &a, const Contact &b)
  { return a.get_last_name() < b.get_last_name(); }
};

or simpler free functions

bool cmp_by_name(const Contact &a, const Contact &b)
{ return a.get_name() < b.get_name(); }
bool cmp_by_last_name(const Contact &a, const Contact &b)
{ return a.get_last_name() < b.get_last_name(); }

and you call it either

 address_book.sort(sort_by_name());
 address_book.sort(sort_by_last_name());

or

 address_book.sort(cmp_by_name);
 address_book.sort(cmp_by_last_name);

the accessors get_name() and get_last_name() must be const.

share|improve this answer
1  
These simpler functions worked like a charm. No errors what so ever. Thank you! – Adrian Feb 24 '12 at 0:48

Don't do your own sorting. Use std::sort(). You'll need to supply a custom comparator — something like this:

struct LastNameComp {
    bool operator()(const Contact& a, const Contact& b) const {
        return a.get_last_name() < b.get_last_name();
    }
}
⋮
std::sort(address_book.begin(), address_book.end(), LastNameComp());

If you have access to a C++11 compiler, you can do better:

std::sort(address_book.begin(), address_book.end(),
    [](const Contact& a, const Contact& b) {
        return a.get_last_name() < b.get_last_name();
    });
share|improve this answer
    
I get this error 24 passing const Contact' as this' argument of std::string Contact::get_last_name()' discards qualifiers – Adrian Feb 24 '12 at 0:25
1  
@Adrian: Your get_last_name() function should probably be declared const unless you have a really, really, really good reason not to: std::string get_last_name() const { //.... – greyfade Feb 24 '12 at 0:33
    
Followed the comments but still errors no matching function for call to sort(std::_List_iterator<Contact>, std::_List_iterator<Contact>, main(int, char**)::LastNameComp)' ` – Adrian Feb 24 '12 at 0:39
1  
@Adrian: It might be because I forgot to make LastNameComp::operator() a const member function. I've amended my answer accordingly. I hope this fixes it for you. You might also (or instead) need to declare the struct outside the scope of a function, but I'm less sure of this possibility. – Marcelo Cantos Feb 24 '12 at 7:59

Expanding on the answers given using std::lexicographical_compare and lists internal sort.

    struct LastNameComp {
        bool operator()(const Contact& a, const Contact& b) {
            return std::lexicographical_compare(
               a.get_last_name().begin(), a.get_last_name().end(),
               b.get_last_name().begin(), b.get_last_name().end(),  
            );
        }
    };

    address_book.sort(LastNameComp());
share|improve this answer
    
+1, this is especially a good idea for non-Anglicized names. – greyfade Feb 24 '12 at 0:35
    
forgive my nievity, but how is this better than operator< on strings? I cant think lexcompare handles utf8 or something... – Mooing Duck Feb 24 '12 at 16:14

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