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Status ListDelete(LinkList *L, int i, int *e)
   int j=0;
   LinkList p=L,q;
   while(p->next && j > i-1)
     p = p->next;

     return ERROR;
   return OK;

the code is correct, but I need some explanation on the position change of the pointer p.

My question is:
if I want to delete the second(i=2) element in the linklist, then the condition in while() for the first time should be (j<i-1 => 0<2-1), so actually, the while only execute once, but the p in the while loop already points to the second element, so I believe q->next should points to the third element.

When I execute the code, it works well, if the input i = 2, it will delete the second element, but in my understanding, it should delete the third element. Why?

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LinkList p=L -> LinkList *p=L –  BLUEPIXY Mar 29 '13 at 20:56

2 Answers 2

up vote 0 down vote accepted

The second part of the loop condition tells the code how many elements the loop must skip before the deletion. When you need to delete the second element, you need to skip one element ahead of it. In general, to delete element number N, you need to skip N-1 elements.

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I missed one important condition, this linklist has a header element. so the third position should contain the second element. –  albert Mar 29 '13 at 21:25
@albert This makes sense: that is why the code deletes q, which is set to q=p->next, and not p. –  dasblinkenlight Mar 29 '13 at 21:30

Because of the i-1, which makes i = 1, which points to the second element in the list. HTH.

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