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I was practicing single linked list in c++ (practicing how to find the beginning node of the circular list), but found the use of operator -> very confusing. I'm using Visual studio 2010 C++ Express

This works perfectly: head->append(2)->append(3)->append(4)->append(5)

But this doesn't work (to create a circular linked list): head->append(2)->append(3)->append(4)->append(5)->append(head->next)

When I jump in this method and debug, it seems head->next is not passed correctly into the method.

But this works:

  1. Node* tail=head->append(2)->append(3)->append(4)->append(5); tail->append(head->next);
  2. Or after I change return c->next to return head in the two methods, head->append(2)->append(3)->append(4)->append(5)->append(head->next) also works.

What am I missing here? Thank you!

Details of my code is as follows:

void main(){
    Node* head=new Node(1);
    Node* tail=head->append(2)->append(3)->append(4)->append(5)->append(head->next);
    cin.get();
}

class Node{
public:
    Node* next;
    int data;
    bool marked;

    Node(int d){
        data=d;
        marked=false;
        next=NULL;
    }

    Node* append(int d){
        Node* c=this;
        while(c->next!=NULL){
            c=c->next;
        }
        c->next=new Node(d);
        return c->next;
    }

    Node* append(Node* n){
        Node* c=this;
        while(c->next!=NULL){
            c=c->next;
        }
        c->next=n;
        return c->next;
    }
};
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1  
Is that a new record for indirection chaining? –  Mysticial Jan 3 '12 at 19:26
    
Is this UB by any chance? –  David Heffernan Jan 3 '12 at 19:27
    
@Mysticial - I think I used a longer chain in a project once, but I've lost track of it. –  Martin James Jan 3 '12 at 19:32
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4 Answers

up vote 10 down vote accepted

You are experiencing undefined behavior.

The problem is that you are expecting head->next to be evaluated at a particular time (right before calling the last append(). But that is not guaranteed.

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So it's not defined in c++ standard, and every compiler can interpret it in their own ways? –  user1128516 Jan 3 '12 at 19:32
1  
That is correct. When the order of evaluation is important to you (as it is here), separate those calls. –  Drew Dormann Jan 3 '12 at 19:35
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When you're passing head->next - its before changing it with head->append. I'm afraid you're confusing the order of writing with the order of execution.

In this case you're changing the value and reading it in the same execution statement, that's undefined behavior.

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Thank you! Got it. –  user1128516 Jan 3 '12 at 19:37
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head->next is evaluated first. The compiler is at liberty to do so; see this question.

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I got it! Thank you –  user1128516 Jan 3 '12 at 19:35
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head->next is NULL (doesn't point to anything) at the time that statement is evaluated.

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Maybe, maybe not. –  Benjamin Lindley Jan 3 '12 at 19:49
    
Maybe not, but very likely. We'd have to examine what the compiler outputs to know for sure, but it's most likely it uses the value of head->next at the beginning of the evaluation of the whole statement. The constructor sets next to NULL. –  Rob K Jan 3 '12 at 21:00
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