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PhonebookEntry pb1("olaNormann");
pb1.add("Home","11234567");
pb1.add("Work","11065432");
cout << pb1.getNumbers()["Home"] << endl;
cout << pb1.getNumbers()["Work"] << endl;

map<string,string>::iterator it;
for(it = pb1.getNumbers().begin(); it != pb1.getNumbers().end(); ++it){
    cout << (*it).first << ": " << (*it).second << endl;
}

I have used the first two cout's to ensure that the two pairs are added properly. The code will print out the first two numbers with labels Home and Work, but fails to print both numbers in the for loop. The for loop only prints out "Home: 11234567". Can anyone see why? Below is my header file with relevant method implemented.

class PhonebookEntry{
private:
    std::string name;
    std::map<std::string, std::string> numbers;
public:
    PhonebookEntry(std::string name) : name(name){}
    std::map<std::string, std::string> getNumbers() const {return numbers;}

    void add(const std::string label,const std::string number){numbers[label] = number;}
};
share|improve this question
6  
Does getNumbers() return a reference, or a copy of the map? If it returns a copy, then it's being destroyed before you iterate over it, so anything could happen. – Mike Seymour Apr 18 '12 at 15:25
1  
What's the return value of PhonebookEntry::getNumbers? If it does not return a reference, you're creating a temporary, inserting a value, and printing it---without modifying the actual phonebook. – mavam Apr 18 '12 at 15:26
    
does your program crash? ;) – Karoly Horvath Apr 18 '12 at 15:27
    
@MatthiasVallentin But isn't he inserting the values with the function pb1.add()? – Sebastian Dressler Apr 18 '12 at 15:28
1  
@Skogen: please extend your example by providing the relevant code of PhonebookEntry, including add. – mavam Apr 18 '12 at 15:33

getNumbers() is returning a copy of the map, rather than a reference to it. That copy is destroyed at the end of the expression containing the function call, and so during the loop the iterator is invalid, and doing anything with it will give undefined behaviour.

It should look something like:

map<string,string> & getNumbers();
                   ^

where the & indicates a reference. It would also be polite to provide a const overload:

map<string,string> const & getNumbers() const;
                   ^^^^^^^              ^^^^^

With that change, your code should work as expected; see demonstration.

share|improve this answer
    
And even if the copy continued to exist the loop is comparing iterators from different copies, which isn't valid. – bames53 Apr 18 '12 at 15:46
    
../PhonebookEntry.cpp:14: error: no match for 'operator=' in 'it = ((const std::map<std::basic_string<char, std::char_traits<char>, std::allocator<char> >, – Skogen Apr 18 '12 at 15:51
    
@Skogen: Perhaps you've only got the const version? That's fine if you don't want to expose a modifiable reference, but you'll need to change the type of it to const_iterator in that case. – Mike Seymour Apr 18 '12 at 16:23

If this is your method:

std::map<std::string, std::string> getNumbers() const {return numbers;} 

then it is returning a copy of the numbers map. So in your loop, the iterators are all messed up:

for(it = pb1.getNumbers().begin(); it != pb1.getNumbers().end(); ++it) { ... }

First, it gets initialized with one copy of the map. Then, it gets compared against the end iterator of another copy. You need to return the map by reference:

const std::map<std::string, std::string>& getNumbers() const {return numbers;} 
share|improve this answer

There are two separate issues going on here:

  1. Inserting a value into a temporary and printing it
  2. Using an iterator of a temporary after its destruction

Issue 1

cout << pb1.getNumbers()["Home"] << endl;

You see output because std::map<T,U>::operator[] returns U&, which is still valid when operator<<(std::cout, U&) is called. However, the temporary is destroyed at the of the expression.

Issue 2

for(it = pb1.getNumbers().begin(); it != pb1.getNumbers().end(); ++it) { ... }

The temporary returned by getNumbers() is invalid in the loop body, as Mike explains well in his answer.

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