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I have got a sequence of strings - 0000001, 0000002, 0000003.... upto 2 million. They are not contiguous. Meaning there are gaps. Say after 0000003 the next string might be 0000006. I need to find out all these gaps. In the above case (0000004, 0000005).

This is what I have done so far -

gaps  = list()
total = len(curr_ids)

for i in range(total):
    tmp_id = '%s' %(str(i).zfill(7))
    if tmp_id in curr_ids:
        continue
    else:
        gaps.append(tmp_id)
return gaps

But as you would have guessed, this is slow since I am using list. If I use a dict, to pre-populate curr_ids it'll be faster. But what's the complexity to populating a hash-table? What's the fastest way to do this.

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Is the input list sorted? –  khachik Nov 26 '10 at 11:22
    
Although they are not contiguous, are they in order? –  Paul Butcher Nov 26 '10 at 11:22
    
@khachik, @paul yes input is sorted... In anycase I can get it sorted if it improves overall performance... –  Srikar Appal Nov 26 '10 at 11:30

4 Answers 4

up vote 8 down vote accepted

You could sort the list of ids and then step through it once only:

def find_gaps(ids):
    """Generate the gaps in the list of ids."""
    j = 1
    for id_i in sorted(ids):
        while True:
            id_j = '%07d' % j
            j += 1
            if id_j >= id_i:
                break
            yield id_j

>>> list(find_gaps(["0000001", "0000003", "0000006"]))
['0000002', '0000004', '0000005']

If the input list is already in order, then you can avoid the sorted (though it does little harm: Python's adaptive mergesort is O(n) if the list is already sorted).

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For storing sequence of 2 millions ints you can use bitarray. Here each bit means one integer (the integer of that index in bitarray). Example code:

gaps = []
# bitarray is 0 based
a = bitarray.bitarray(total + 1)
a.setall(False)
for sid in curr_ids:
    a[int(sid)] = True
for i in range(1, total):
    if not a[i]:
        gaps.append('%07d' %(i))
return gaps
share|improve this answer
seq = *the sequence of strings*
n = 2000000

gaps = set(str(i).zfill(7) for i in range(1,n+1)) - set(seq)
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1  
this will multiply the memory... –  khachik Nov 26 '10 at 11:25

I would suggest take it int rather than string for processing and then making it a string again in output

j=0
n=2000000
#create a list of int number from your string
foo = [i for i in range(n)]
#creating gaps
foo.remove(1)
foo.remove(50)
while j<n:
    for i in foo:
        if i>j:
            print '%07d'%j
            j+=1
        j+=1
share|improve this answer
    
converting is an extra overhead, don't want to waste time doing this... –  Srikar Appal Nov 26 '10 at 15:51
    
well you can always compare performance..and post it here :) –  Rafi Nov 26 '10 at 15:56

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