0

This is my first time posting here at SO, but I've been utilizing the answers and help here for a while now.

I'm working on a simple card game right now that I've been planning on and off for a few years. Ultimately it's going to be my senior project for school(not asking anyone to do my homework for me!)

I'm experienceing an issue right now when trying to pint the contents of a list to the console through a couple classes.

for(std::list<Card>::iterator it = Hand.begin(); it != Hand.end(); it++)
    std::cout<< *it.GetName();

I'm trying to figure out if the line

std::cout<< *it.GetName();

is going to be valid or not. I'm troubleshooting from work and I don't have the ability to try anything right now. Before I had to drop the project this morning I was having some compile errors that lead me to believe I needed to overload the << operator which I tried and ended up getting a couple linking errors for some reason.

I've been researching most of the day, but haven't come across any situations that jumped out at me as the correct solution, but this little block is what I've found that seems the most correct for what I'm trying to do.

Will that block print the names of the Card Objects stored in the Hand list as is right now? Yes, the Card Class does have that GetName() function and it is declared correctly.

4
  • 5
    I tend to prefer it->GetName(). (Actually, with C++11, it gets even better: for (Card& card : Hand) { std::cout << card.GetName(); }.)
    – cHao
    Commented Nov 21, 2013 at 21:18
  • 1
    if GetName() returns string or int or any other type that cout accepts, then you don't need to overload it.
    – Roman
    Commented Nov 21, 2013 at 21:20
  • @Roman Yes, sorry. GetName() is set up to return the name as a std::string. I don't know exactly why I kept coming up with answers that said to overload the operator. Maybe I was just searching the wrong terms. Commented Nov 21, 2013 at 21:43
  • @cHao thank you, that's something I'm still struggling with. I've done most of my work in C# where, as far as I know, everything just uses a.func(). Commented Nov 21, 2013 at 21:43

1 Answer 1

3
*it.getName();

is the same as

*(it.getName());

since . and function call have higher precedence than unary *. So the compiler looks for a member getName in class std::list<Card>::iterator, but there isn't one: getName is (I assume) a member of Card, and iterators don't have any inheritance or forwarding relationship to their object.

You probably meant

(*it).getName();

or equivalently,

it->getName();

(The arrow -> operator is just a short cut for dereferencing and then naming a member.)

2
  • Thank you for the answer. Pointers are something that still give me a lot of troulbe even though I've been doing this for a few years now. I've tried reading into them a little, but a lot of information online seems to say "don't use them unless you have to" Commented Nov 21, 2013 at 23:53
  • 1
    I agree with that advice, but there are no actual pointers involved here. Though most things you can learn about pointers also apply to iterators.
    – aschepler
    Commented Nov 22, 2013 at 1:33

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

Not the answer you're looking for? Browse other questions tagged or ask your own question.