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The data stucture must be like a stack. Only with one difference. I want to pop from any index not only last. When I have popped element n, the elements with indexes N > n must swap to N-1. Any ideas?

P.S.

  1. Pushing element n into the last index of the stack.
  2. Then popping it out.
  3. Then deleting stack[n]

is a bad idea.

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2  
Any time complexity constraint? –  KennyTM Jan 17 '12 at 19:55
    
I have never in my life wanted a linked list. Have you profiled your code? –  Mooing Duck Jan 17 '12 at 22:06

3 Answers 3

I think you're looking for a linked list.

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Indeed, such as std::list (cplusplus.com/reference/stl/list) –  Raphaël Saint-Pierre Jan 17 '12 at 20:12
    
Agreed, std::list is the right choice. But, if he has some unstated reason to prefer std::vector, it would work, using std::vector::erase() for the behavior he asks for. –  Robᵩ Jan 17 '12 at 20:26

You need to implement a linked list, but unlike an array, the order in a linked list is determined by a pointer in each object. So, you cannot use indices to access the elements.

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you can't use an index, but you do have auto iter = std::advance(mylist.begin(), 42); –  Mooing Duck Jan 17 '12 at 22:05

A linked list (std::list) will allow you to remove an element from the middle with O(1) complexity and automatically "pull" up the elements after it. You can use a linked list like a stack by using push_front. However you need to be aware that accessing an element in a linked list is O(n) as you would need to start at the head of the list and then walk along the links from one element to the next until you have arrived at element n (so there is no O(1) indexing)

Basically you would need to

  • Create an iterator
  • advance it to position n
  • Get the element from the iterator
  • erase the element the iterator is currently pointing to

Some example code can be found here.

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