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I am writing a card game in C++. I have a game class which keeps track of the players. I also have an abstract base class player, from which the classes person and computer derives.

I would like to keep the players in an array. The number of players is unknown at compile time. Because some players are persons and other computers, I need a player pointer for each, stored in an array, which is dynamically allocated because the number of players is unknown, right?

As I am relatively new to C++, I could not figure out how the syntax looks for this kind of thing.

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1  
You could simplify the problem by using a vector of pointers to Player. –  juanchopanza Jan 27 '14 at 17:36
    
@juanchopanza Simplify it even more by using a vector of Players rather than pointers (cuz pointers in vectors are kindof the devil). –  IdeaHat Jan 27 '14 at 17:37
3  
@MadScienceDreams: This would slice the derived objects. –  Johnsyweb Jan 27 '14 at 17:37
    
@Johnsyweb oh yeah your right, didn't notice it was abstract, my bad... –  IdeaHat Jan 27 '14 at 17:38
    
@MadScienceDreams Right idea, wrong implementation, Use smart pointers if you must store pointers in a std::vector. –  Mgetz Jan 27 '14 at 17:39

3 Answers 3

up vote 2 down vote accepted

For a dynamic array, the standard library provides std::vector.

Since you need to store pointers to an abstract base type, rather than the objects themselves, you'll need to make sure you manage the object's lifetimes correctly. The easiest way is to store smart pointers (in this case std::unique_ptr, for simple single ownership), so that objects are automatically destroyed when they're removed from the vector.

So your array would look like

// Declaration
std::vector<std::unique_ptr<player>> players;

// Adding players
players.push_back(std::unique_ptr<person>(new person("Human"))); // C++11
players.push_back(std::make_unique<computer>("CPU"));            // C++14 (hopefully)

// Accessing players
for (auto & player : players) {
    player->play();
}
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When accessing, what does 'auto' and '&' mean? Also, when I try this in Xcode, it says I need to use '->' instead of '.' –  user3124010 Jan 27 '14 at 18:28
    
auto means "figure out the type for me"; you could write player instead if you wanted. & means "reference". Xcode is right: you do need -> rather than . to dereference the smart pointer (I've fixed my answer). –  Mike Seymour Jan 27 '14 at 18:35

you need

std::vector<std::shared_ptr<Player>> players;

if you want to use the standard library (which you should)

otherwise

Player** players;
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2  
Why shared? I see nothing in OP's post to justify that. –  juanchopanza Jan 27 '14 at 17:45
    
Player** players is not an array. –  Johnsyweb Jan 27 '14 at 18:01
    
:) @Johnsyweb . strictly speaking he asked for a pointer to an array, not an array. So you are saying 'Player* is not an array'. You and I know whats behind that statement - he doesn't, so lets not confuse him given that Player * and Player[] will both work fine –  pm100 Jan 27 '14 at 18:10
    
But Player * and Player[] are not the same thing! Since the OP is "relatively new to C++", it would be better to explain the differences. –  Johnsyweb Jan 27 '14 at 18:20

You can declare a pointer variable using as the following

Player *playerptr;

It means playerptr is a pointer to type Player.It can hold an address of a Player as well as an array of Players.In C++ and C array is implemented as pointer to the first element of the array.

And as per your requirement you can allocate the array dynamically.

playerptr=new Player[20];

Here 20 is the size of array.

playerptr=new Player[20]();

The second syntax will initialize all the elements in the array to their default value.

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