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I recently encountered an algorithm for searching for numbers in a sorted list and this is how it goes:

Given: An oracle that tells you if a given number greater than or less than the number being searched for.

Begin at first element in the list. Skip 1 element ahead and ask the oracle if you have gone ahead of the number being searched for.

If not, ask skip 2 elements and ask the oracle if you have gone too far.

If not skip 4 elements ahead, etc....

When you find the first skip that causes you to pass over the number being searched for, you can determine a subinterval that contains the number being searched for.

Finally, perform binary search on the subinterval.

I was wondering what this algorithm was called so that I might be able to do some more research on it.

Thanks

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3  
Can I ask why you would do this? It seems to me that there's a 50% chance the subinterval found will just be the last half of the list, and thus could have been found in just one step of a binary search. –  Imre Kerr May 25 '13 at 15:20
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This article calls it an exponential binary search. –  hammar May 25 '13 at 15:31
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@ImreKerr A very good question, I can imagine only one case where binary search is not applicable/better: When the number of items is unbounded or not know ahead of time. –  delnan May 25 '13 at 15:59
    
@delnan Thanks, good catch. –  Imre Kerr May 25 '13 at 17:25

3 Answers 3

up vote 4 down vote accepted

That's how you binary search an unbounded set.

For example, to solve an inequality f(n) < t over the positive integers, where f is an increasing function.

Concrete example:

Solve n**2 + 10*n < 100 over the positive integers.

Let f(n) = n**2 + 10*n for n > 0
f is increasing because it's the sum of increasing functions.

f(1) = 1 + 10 = 11
f(2) = 4 + 20 = 24
f(4) = 16 + 40 = 56
f(8) = 64 + 80 = 144 > 100

Now we binary search the interval [4,8]

f(6) = 36 + 60 = 96
f(7) = 49 + 70 = 119 > 100

Thus n < 7
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Thanks, this is what I was referring to! –  user2305684 May 26 '13 at 14:48

I would suggest few changes in the algorithm. There should be 2 iterators one following the other and when you realize that you have move to a list node which has greater number than the number being searched..we should restart the same steps with the previous iterator..this goes on till we find the number..because i dont understand how would to do a binary serch i.e in log(N) time with a list...

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This data structure is called Skip Lists

enter image description here

A skip list is a data structure for storing a sorted list of items using a hierarchy of linked lists that connect increasingly sparse subsequences of the items. These auxiliary lists allow item lookup with efficiency comparable to balanced binary search trees (that is, with number of probes proportional to log n instead of n).

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Thanks for the reply, but I was not referring to skip lists. I apologize if my description was unclear. –  user2305684 May 26 '13 at 14:48

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