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I have to implement a queue by using circular linked lists with only one iterator. My doubt is which is the better way in terms of performance, maintaining an iterator to the first item or from the last item?

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that's the requirement. I have to maintain at most one iterator. –  nullPointer2 May 7 '12 at 17:05

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Well, if you have a pointer to the first item, then operations on the end of the list are going to be O(N). With a pointer to the end of the list, you can do operations on both the beginning and the end in O(1). Generally, if you have a circularly linked list, then you want to be able to reach the beginning and the end, so the answer is that you performance will be better with a pointer to the end.

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If it's doubly-linked, then the whole thing is symmetrical, so it doesn't matter... –  Oliver Charlesworth May 7 '12 at 17:06
    
I didn't understood. How can we do operations on both beginning and end with o(1). even with the pointer at end of list we have to iterate right? –  nullPointer2 May 7 '12 at 17:10
    
It's a circular list, so if you have a pointer to the end, then you can access the start of the list via its next pointer. But as Oli points out, if you have a doubly-linked list then you can also access the end from the start via the prev pointer. –  Stuart Golodetz May 7 '12 at 17:11
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I got it thanks!! –  nullPointer2 May 7 '12 at 17:12
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@OliCharlesworth I did not know that, it appears that the BSD LIST in queueu.h is also circular. I still think that the choice of circular or not for doubly linked lists is IMHO mostly a stylistic choice and that there is rarely a need for it. The only benefit of a circularly doubly linked list is that you can save a single pointer (you only need a head pointer instead of both head and tail), which I guess if you have lots of empty lists, could make a difference. The code for the boundary cases also changes, but in my experience I don't think there is any simplification. –  Nathan Binkert May 7 '12 at 17:34

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