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I'm trying to write a remove function for a linked list, but I'm getting some strange results. Any time I remove a node that isn't the final one in the list, I can display the list data up until the node that was removed. After that, I get one random set of data, and the program ends.

In the code below, if I take out the "delete t;" line, everything works as expected, but as soon as I add the "delete t;" line back in, it goes back to the odd behavior I've been seeing. I've tried moving around where I set t equal to head, or where I delete t, but I get the same result regardless of what I do.

void List::remove(int d) {
    Node *t, *prev;
    if (!head) return;
    t = head;
    if (head->data == d) {      
        head = head->next;
        delete t;
    }
    else {
        while (t != nullptr && t->data != d) {
            prev = t;
            t = t->next;
        }
        if (t) {
            prev->next = t->next;
            delete t;
        }
        else {
            cout << "value not found" << endl;
        }
    }
}

I'm using a for loop to insert integers 0-9 into the list. If I then try to remove the node containing the number 5, I get the following output when trying to display the remaining data:

0

1

2

3

4

-572662307

Press any key to continue...

Where I'm expecting:

0

1

2

3

4

6

7

8

9

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  • @DavidC.Rankin He is maintaining prev, current, next pointers. He has prev and t. Here t is current pointer. And before deleting he used t->next which is next pointer here. I don't think anything wrong here. Jul 13 '19 at 7:19
  • @FarukHossain so he is... Using descriptive names like victim instead of t makes things much more readable. The error is elsewhere in his code. Good catch. Jul 13 '19 at 7:48
  • You keep processing after the delete t;. Presumably you just want to return then, since the head case does only the one removal. Jul 13 '19 at 21:21

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