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I am trying to make a tree template that can have any number of children on each node. This is my code for an addChild function in the node class -

template<typename T>
void Tree<T>::Node::addChild(T& value) {
    Node* temp = new Node(value, this); //second parameter is for parent
    numOfChildren++;
    children*[numOfChildren] = temp;
}

Instead of having a pointer for a left and right child, I thought I should make a double pointer (pointer to an array of Node*).

Node** children;

I keep getting an "Expected primary expression before '[' token" error. I'm guess I am accessing the 2D array wrong then? Or maybe I should just go about it a different way? Do you think it would work if I just had children as

Node* children ?

I feel like it might work if I just have a Node* and each element be a different Node.

Any help is appreciated.

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You are creating a B-Tree. See en.wikipedia.org/wiki/B-tree. You may want to search the web for existing examples. Also search for "Balanced B-Tree". –  Thomas Matthews Mar 3 '11 at 20:10
    
I guess what you WANTED to do is (children)[numOfChildren] (however, you must not dereference if you want to assing a Note. Erik's solution is the way to go. –  Philipp Mar 4 '11 at 5:53
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3 Answers 3

up vote 6 down vote accepted

Just use children[numOfChildren]. Or do it the right way with std::vector<Node *> children;

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Oh of course, I forgot all about using std::vector. Thanks! –  Sterling Mar 3 '11 at 18:36
    
However, when I do the line std::vector<Tree<T>::Node*> children;, I get an error saying error: type/value mismatch at argument 1 in template parameter list for 'template<class _Tp, class _Alloc> class std::vector' –  Sterling Mar 3 '11 at 18:44
    
std::vector<Node *> should work fine inside Tree or Node, no need for Tree<T>::Node. Post source if it still fails. –  Erik Mar 3 '11 at 18:47
    
@Sterling: you are missing a typename there. Basically Tree<T>::Node is a dependent name, and during the first pass of the template compilation process it is assuming that it is not a type. You have to tell the compiler that it is. Google/SO search for "dependent name" (Actual fix: std::vector<typename Tree<T>::Node*> children;) Otherwise, since you are in the context of Tree<> you can just use Node and the compiler will know (from the context) that it is a type. –  David Rodríguez - dribeas Mar 3 '11 at 18:49
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Erik,

Well if I put typedef in front of it, it compiles

typedef std::vector<Node*>& getChildren();

Whenever I just have

std::vector<Node*>& getChildren();

I get an error saying -

error: candidate is: std::vector<Tree<T>::Node*, std::allocator<Tree<T>::Node*> >&     Tree<T>::Node::getChildren()

The source for the class is this -

#include <vector>

template<typename T>
class Tree {

public:

    //node class
    //nodes should have value, their parent, and all of their children
    //and functions to get all of those
    class Node {

    public:
        //when declaring a node, give it
        //a value and a parent value
        Node(T&, Node*&);
        ~Node();

        T& getValue();
        Node*& getParent();
        std::vector<Node*>& getChildren();
        int getNumOfChildren();

        void setValue(T&);

        void addChild(T&);
    private:
        T value;
        Node* parent;
        std::vector<Node*> children;
    };

    Tree();
    Tree(T&);
    ~Tree();

    Node*& getRoot();


private:

    //root of tree
    Node* dummyroot;
    Node* root;
};
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It seems I was looking at the wrong place in my code. The above is for declaring a function. std::vector<Node*> children does compile fine. –  Sterling Mar 3 '11 at 19:00
    
BTW, you may want to define your member functions in the header file, or you'll get funny linker errors later on. –  Erik Mar 3 '11 at 19:04
    
Do you know I would get the errors I just posted for declaring that function? If I change it back to std::vector<Tree<T>::Node*>& getChildren(), I get the typevalue mismatch errors. Or could you tell me why typedef std::vector<Node*>& getchildren() works? Thanks for the heads up on defining the functions. –  Sterling Mar 3 '11 at 19:08
    
As David Rodriguez explained, Tree<T>::Node is a dependent name and needs a typename prefix in this context –  Erik Mar 3 '11 at 19:13
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std::vector::Node*> did not compile. I'm okay with leaving it as

typedef std::vector<Tree<T>::Node*> getChildren()

When I try to define it I do -

template<typename T>
std::vector<Tree<T>::Node*> Tree<T>::Node::getChildren() {return children;} 

And I get the type/value mismatch error again. I change it to the following -

template<typename T>
std::vector<typename Tree<T>::Node*> Tree<T>::Node::getChildren() {return children;}

I get an error saying

error: no 'std::vector<typename Tree<T>::Node*, std::allocator<typename Tree<T>::Node*> >     Tree<T>::Node::getChildren()' member function declared in class 'Tree<T>::Node'

and another saying

error: template definition of non-template 'std::vector<typename Tree<T>::Node*,     std::allocator<typename Tree<T>::Node*> >& Tree<T>::Node::getChildren()'

I'm confused about what this means. I feel like the answer is staring me in the face, but I don't quite see it. I also tried

template typename std::vector::Node*> Tree::Node::getChildren() {return children;}

and

template typedef std::vector::Node*> Tree::Node::getChildren() {return children;}

None of these worked.

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Add an & after Node*) –  Sterling Mar 3 '11 at 19:25
    
Problem is resolved. Thanks for all the help. –  Sterling Mar 3 '11 at 19:44
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