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This was asked in an IBM ISL interview.

I went through the question, How to find the middle node of the single linked list in single traversal (if length of list is not given) but it does not contain the answer I am looking for so posting here again.

I have a single linked list, let us say number of nodes are odd. Tell me 2 ways of finding middle node by traversing list only once?

I answered, take 2 pointers p1 & p2 move p2 by 2 nodes and p1 by 1 node. When p2 is null, p1 is at middle node.

Interviewer responded: That’s the simplest way using 2 pointers. Tell me one more way. Hint: is there a compiler property that can be used?

Can someone give me a way using the hint?

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1  
Compiler property? Is this C++? –  Tuzo Sep 6 '12 at 3:46
5  
That first solution sounds to me like traversing the list 1.5 times. –  Beta Sep 6 '12 at 4:12
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1 Answer 1

#include <vector>
#include <list>

typedef std::list<int> listT;

listT::const_iterator
find_middle(const listT &list)
{
  std::vector<listT::const_iterator> v;
  for (listT::const_iterator i = list.begin() ; i != list.end() ; ++i)
    v.push_back(i);

  return v[v.size() / 2];
}
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That's going to throw std::fit(); when the list is empty. I think you can fix it by just adding v.push_back(list.begin()) before the loop. That would change the definition of what the "middle" is of a loop with an even number of elements. –  Jive Dadson Sep 6 '12 at 8:41
    
... but that is easily fixed too. Left as an exercise for the reader. –  Jive Dadson Sep 6 '12 at 8:55
    
@JiveDadson - The question stipulated that the number of nodes is odd, so I figured it is ok to assume that. In real life, you are right it would be better to validate the assumption –  Nemo Sep 6 '12 at 12:44
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