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given an array:

array = [16 16 16 22 23 23 23 25 52 52 52]

I want return a list of indices that point to the elements of three repeating numbers. In this case that would be :

indices = find_sequence(nbr_repeats = 3)
print indices
 [0 1 2  4 5 6  8 9 10] 

what is the fastest and most elegant algorithm to use in order to implement find_sequence?

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1  
is it always sorted??/? –  DarthVader Jun 12 '12 at 22:36
1  
is this homework? –  DarthVader Jun 12 '12 at 22:36
    
@DarthVader not homework, just curiosity, and yes, the list is sorted. –  memyself Jun 12 '12 at 22:36
    
what about for this: array = [16 16 16 16 22 23 23 23 25 52 52 52] what output do u expect? –  DarthVader Jun 12 '12 at 22:43
    
@DarthVader a number will repeat at most nbr_repeats times. so in your example i'd be searching for four repeats. –  memyself Jun 12 '12 at 22:50
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4 Answers

up vote 2 down vote accepted

Simplest way i know of...keep a track of the first place you saw a number. Keep on going til you find a different number, then if the sequence is long enough, add all the numbers from the start of the sequence til just before the end.

(Of course, you'll have to check the sequence length after you're done checking elements, too. I did it by iterating one past the end and just skipping the element check on the last iteration.)

To find_repeats (input : list, minimum : integer):
    start := 0
    result := []
    for each x from 0 to (input length):
        ' "*or*" here is a short-circuit or
        ' so we don't go checking an element that doesn't exist
        if x == (input length) *or* array[x] != array[start]:
            if (x - start) >= minimum:
                append [start...(x - 1)] to result
            start := x
    return result
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how would you implement the *or* in python or c? –  memyself Jun 13 '12 at 8:19
1  
In C, || short circuits, so no issue there. Not sure about Python, but it's common for a language's "logical or" operator to short circuit these days. Just needed to clarify that requirement, as the second part of the "or" will break if the first part is true. –  cHao Jun 13 '12 at 12:55
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Based on OP's assumption:

  1. the list is sorted
  2. the largest frequency is nbr_repeats

This might work:

def find_sequence(nbr_repeats, l):
    res = []
    current = -1
    count = 0
    idx = 0
    for i in l:
        if i == current:
            count += 1
            if count == nbr_repeats:
                for k in reversed(range(nbr_repeats)):
                    res.append(idx-k)
        else:
            current = i
            count = 1
        idx += 1
    return res
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This looks to me like a special case of the Boyer-Moore string search algorithm, and since any language you use will contain optimisations for string search, perhaps the most elegant answer is to treat your data as a character array (i.e. a string) and use your language's built in string search functions... Note that this only works if your numbers fit into your language's supported character set (e.g. no numbers bigger than 128 in ASCII)

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Since you did not specify a language, here is a pseudocode:

find_sequence(array: array of int, nbr_repeats: int) : array of int
  retVal = emty array of int // the return'd array
  last = empty array of int  // collection of last seen same elements
  i = -1
  for each element e in array
    ++i
    if (isempty(last))
      add(last, e)   // just starting
    else if (count(last, e) >= nbr_repeats)
      add(retVal, i-nbr_repeats) // found an index
    else if (e == first(last))
      add(last, e)   // we have encountered this element before
    else
      if (count(last, e) >= nbr_repeats)
        for (j=nbr_repeats-1; j>0; --j)
          add(retVal, i-j) // catching up to i with indices
      last = [e]     // new element

    if (count(last, e) >= nbr_repeats)
      for (j=nbr_repeats-1; j>0; --j)
        add(retVal, i-j) // handle end of array properly

  return retVal

Edit: removed comment about sorting as it would mangle the original indices.

Note: you could also just keep the last element and its seen-count instead of maintaining a list of last same elements

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2  
Why would it matter if the array is sorted? If you had [1 2 1 2 1] as an input, it seems improper to sort it, which generates [1 1 1 2 2] and then have a result of [0 1 2] when you should have had a result of [ ]. –  corsiKa Jun 12 '12 at 22:48
    
@corsiKa - I guess it depends on what the goal is, but you are correct. In fact sorting will mangle the indexes, so that is probably not desirable. –  Attila Jun 12 '12 at 22:53
    
@Attila isn't add(last, e) and last = [e] the same? –  memyself Jun 12 '12 at 22:59
    
@memyself - no, add(last, e) adds e to last (thereby increasing its length), last=[e] sets last to the singleton array containing e (thereby losing last's previous value) –  Attila Jun 13 '12 at 2:13
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