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I am kind of new to c++ and got headache with this pointer and stuff!

I need to iterate through list of struct which is linked list, read the data of struct and pop that entry!

this my struct :

struct node {
    map<string,double> candidates;
    double pathCost;
    string source;
    node *next;             // the reference to the next node
};

by reading this post I create my list like :

list<node*> nodeKeeper;

and then initialized the first value:

    node *head;
    head= new node;
    head->pathCost = 0.0;
    head->source="head";
    head->next = NULL; 

thin fill the list and struct :

for(unsigned int i = 0; i < sourceSentence.size(); i++){

    node *newNode= new node;             //create a temporary node


    //DO STUFF HERE


    //push currunt node to stack
    nodeKeeper.push_back(newNode);

    head = newNode;

}

now I have list of struct and I want to iterate through it and pop the elements:

for (list<node*>::const_iterator it=nodeKeeper.begin();it!=nodeKeeper.end();it++){

    it->pop_front();

}

which gives me this error:

error: request for member 'pop_front' in '* it.std::_List_const_iterator<_Tp>::operator->()', which is of pointer type 'node* const' (maybe you meant to use '->' ?) make: * [main3.o] Error 1

It looks like that my iterator points inside the list , not the list itself!

Can you tell me what is wrong here?!

share|improve this question
    
Why not using a list of lists, if you're allowed to use STL? – Andy Prowl Feb 18 '13 at 23:35
    
@bilz Yes I also tried that! I as said I am new to c++, I am just trying everything that read – Moj Feb 18 '13 at 23:37
    
@AndyProwl how does that help? I need to have pointer to next node! – Moj Feb 18 '13 at 23:38
    
@Moj list is a doubly linked list structure. Each element has a pointer to the next and previous node. That is how you iterate over it. – juanchopanza Feb 18 '13 at 23:38
    
@Moj: That's what list does for you. I would remove the next member from node and I would use a list<list<node>> (or probably a vector<list<node>>, unless you have a reason to choose list) – Andy Prowl Feb 18 '13 at 23:39
up vote 2 down vote accepted

If your goal is to have a single list of your node struct, there is no need to manage next pointers your self. Inserting would stay the same (minus the head = line)

To pop all element of the list you would do something like

int sizeOfList = nodeKeeper.size();
for( int i =0; i < sizeOfList; i++) {
    //if you want to do something with the last element
    node * temp = nodeKeeper.back();
    //do stuff with that node

    //done with the node free the memory
    delete temp;
    nodeKeeper.pop_back();
}

Compiling/running example here: http://ideone.com/p6UlyN

share|improve this answer
    
Thanks @Robert. Helped a lot – Moj Feb 19 '13 at 0:24

If all you need to do is remove the elements, use std::list::clear:

nodeKeeper.clear();

To read the contents of the element, then remove, try this:

for (std::list<node*>::const_iterator it = nodeKeeper.begin(); it != nodeKeeper.end(); ++it) {
    std::cout << (*it)->source;
    // do more reading

    nodeKeeper.pop_front();
}

or with C++11:

for (const auto& a : nodeKeeper) {
    std::cout << a->source;

    nodeKeeper.pop_front();
}
share|improve this answer
    
Surely nodekeeper.clear() would make more sense? – juanchopanza Feb 18 '13 at 23:47
    
@juanchopanza wasn't aware of that method. I'll use it in my answer. thx – 0x499602D2 Feb 18 '13 at 23:49
    
how can I access to data of each element ? something like : nodeKeeper.front()->source; because right now it just prints the last element which "head" – Moj Feb 18 '13 at 23:52
1  
@Moj BTW, it would be (*it)->source and nodeKeeper.pop_front() – 0x499602D2 Feb 19 '13 at 0:13
1  
@Moj Does my update help now? I read the data with cout<< (*it)->source then I pop it out with nodeKeeper.pop_front(). Does that work for you? – 0x499602D2 Feb 19 '13 at 0:17

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